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[0:00]
And um so thank you all for coming. Um
[0:04]
and great to see you all again.
[0:06]
Hopefully your summers are going well.
[0:07]
Um we've got a I think a I think a very
[0:11]
interesting agenda um here just with
[0:14]
we'll have our our typical updates.
[0:16]
There's a lot lot to update lot that's
[0:18]
happened so far this summer. Um and then
[0:22]
uh Christine's been working hard and
[0:25]
really trying to help us um
[0:28]
understand you know what is happening
[0:30]
there with flows through the breach and
[0:33]
changes in the south arm. So um so she's
[0:37]
going to review those things and and
[0:39]
then I want to make sure that we talk
[0:42]
through some of the members things at
[0:44]
the end. Um and but [snorts] that's the agenda. Um, [clears throat]
[0:50]
I'll get tapped in here shortly. Um, but
[0:54]
I think the first thing that we had on
[0:56]
our agenda was just we'll do an
[0:58]
introductions. We'll just go around the
[0:59]
table and and online and um, so I'm Jeff
[1:03]
Bener with Jacob's Engineering.
[1:06]
>> Christine Ramsey, USGS,
[1:08]
>> Ryan Roland, USGS, Joe Compass, Greg
[1:11]
Miller, water resources,
[1:15]
>> Lindfredo friends of Great Salt Lake and
[1:17]
Mrs. part
[1:19]
[laughter]
[1:22]
of Andrew Utah
[1:26]
resources for state
[1:45]
US officer. Hold
[1:48]
your privacy.
[1:50]
>> Andy Carlson US
[1:53]
division water quality
[1:54]
>> Vernon water resources
[1:57]
>> Anderson salt.
[2:01]
» All right. And then online I see Jake
[2:04]
Alexander with forestry fire lands. Jess
[2:07]
Stern with UGS. Um Justin Hipple and
[2:12]
Kyle Stone. Leila Motti. Bill Brown, Rob
[2:17]
Deuke,
[2:20]
and Craig Miller. There
[2:22]
>> I'm here, too. [laughter]
[2:25]
>> He's everywhere.
[2:28]
>> There's two of them.
[2:31]
>> Wonder how many.
[2:34]
[laughter]
[2:40]
» All right. So, I I think the the first
[2:42]
thing on our agenda is just um reviewing
[2:45]
our um
[2:48]
our meeting summary. And so, if you
[2:52]
remember, we had a meeting in in May, I
[2:54]
think May 27th, um which is our normal
[2:56]
meeting, went through our normal agenda,
[2:59]
and one of the things that came out of
[3:00]
there were um some recommendations that
[3:03]
we should consider modifications to the
[3:05]
BM. Um then we met again in June um for
[3:09]
an hour and out of that came a
[3:12]
recommendation
[3:13]
um to the to division of water quality
[3:16]
and forestry fire and state lands to
[3:18]
look into actually modifying the burn.
[3:21]
Um, and so the summary I sent out this
[3:25]
time was just for the um, the June
[3:27]
meeting and wanted to just see if
[3:29]
anybody had any comments um,
[3:33]
that any they'd like to change or
[3:38]
[clears throat] any gaps in it. And I
[3:39]
guess if not take a entertain a motion
[3:42]
to approve that summary.
[3:47]
» So move
[3:50]
Thomas.
[3:50]
We have a second.
[3:52]
>> Second,
[3:54]
>> thank you, Joe.
[3:55]
>> All right. All those in favor approving
[3:58]
the summary say I.
[4:00]
>> I.
[4:01]
>> Any opposed?
[4:03]
All right. It carries unanimously. Thank
[4:06]
you. Um All right. Well, the next thing
[4:10]
on our agenda is just an update on the
[4:12]
lake.
[4:14]
I don't know if Ryan
[4:15]
>> Yeah, I'm sorry. You got to put it with
[4:16]
me again. Um I think I start this off.
[4:19]
Um Christine's reading the slides.
[4:23]
[snorts]
[4:30]
» Okay, we're gonna jump in. Go ahead.
[4:32]
We'll just jump right in.
[4:33]
>> Great.
[4:35]
>> There's our disclaimer. Um this is
[4:38]
important. There's a lot of provisional
[4:39]
data. There's a lot of assumptions that
[4:41]
we uh are open with. So, um keep that in
[4:44]
mind. Here's our official disclaimer.
[4:47]
All right. Let's just start off with
[4:48]
what you guys already all know. I'm
[4:50]
hoping you guys are always looking at
[4:52]
the great salt lake hydro mapper or
[4:54]
looking at our data through the national
[4:56]
water dashboard etc. South arm great
[4:58]
salt lake elevations [clears throat] I'm
[5:00]
showing data from October 1st 2021 in
[5:03]
the current period. Uh the period of
[5:05]
record low is 4188.5 set in uh 2022.
[5:10]
Um the most recent data here at the end
[5:13]
of the plot, the daily value on August
[5:15]
5th came in at 4190.6.
[5:19]
That's down 1.7 feet [clears throat]
[5:21]
since the seasonal high that was not
[5:23]
influenced by the sesh. That little blue
[5:26]
peak right there is a was a sesh event.
[5:29]
Okay, I'm not counting that. So we're [clears throat] we're saying the
[5:33]
seasonal high was um about 310 of a feet
[5:37]
lower. Um, and so the bottom line is
[5:40]
since that seasonal peak, the lake is
[5:41]
down about 1.7 ft. All right. Um, this
[5:46]
puts us 2.1 ft above the period of
[5:49]
record low. All right. So, something to keep in mind going forward as we
[5:55]
anticipate, you know, snowpack,
[5:57]
[clears throat] you know, next season's
[5:59]
evaporation, etc. All right. Similarly,
[6:02]
for the north arm, the daily value
[6:04]
computed for August 4th came in at
[6:06]
4190.2.
[6:08]
That's down about 1.4 ft since the
[6:11]
seasonal peak,
[6:13]
this guy back here. Um, and that's 1.7
[6:16]
ft above the period of record low, which
[6:18]
is also 4188.5.
[6:21]
Both the north and south have the same
[6:23]
period of record low. Okay, so that's
[6:26]
the lake elevation data. Now, let's get
[6:28]
into major surface water inflow at our
[6:30]
on our stream gauges.
[6:32]
>> [clears throat]
[6:32]
>> First I just want to remark that these
[6:34]
cumulative flow hydrographs are coming
[6:37]
from a relatively new USGS software
[6:40]
package called high swap. That's the
[6:42]
hydraologic surface water analysis
[6:44]
package. [clears throat] This is a a
[6:46]
package of Python code that helps you
[6:48]
visualize USGS data publicly available.
[6:52]
Just Google it and you'll find it.
[6:54]
That's what was used to make these
[6:55]
plots. So here we have a plot of
[6:56]
cumulative discharge in acre feet.
[6:59]
[clears throat]
[7:00]
Y axis is or the excuse me the Y axis is
[7:03]
in acre feet. It's a linear
[7:05]
[clears throat] axis and the X axis is a
[7:07]
water year. The bold black line is the
[7:09]
current water year. Uh this top dash
[7:12]
line is the highest ever measured
[7:14]
cumulative flow for this site. That was
[7:16]
in 1984.
[7:18]
Uh small dash line at the bottom. Lowest
[7:20]
measured cumulative flow 1992. And then
[7:23]
the green shaded zone is the 25th to
[7:26]
75th percentile range. And so the the
[7:29]
middle of that green zone would be the
[7:31]
right the 50th percentile. Um, as
[7:34]
[clears throat] of August a couple of
[7:36]
days ago, the total volume of water
[7:38]
passing this gauge was at 541,000 acre
[7:41]
feet plus or minus a little bit. Next
[7:44]
slide or hit the next button. Exact same
[7:48]
format plot. This is for the Weaver
[7:50]
River near Plane City. Um, and first of
[7:53]
all note where the black line is
[7:56]
relative to those benchmarks. So at this
[7:58]
site we're we're hugging the the lowest
[8:01]
uh measured cumulative flow. Currently
[8:03]
we're at 54,000 acre feet of the Weber
[8:06]
River near Plane City. All right, next
[8:09]
slide or next plot. Dog and drain. I
[8:13]
made a huge error on this guy last time
[8:16]
we met. I had added a zero to this total
[8:19]
here. You might remember some very
[8:21]
surprised faces in there. You guys knew
[8:23]
I was wrong. you were just being nice to
[8:25]
me for not saying, "Hey, you're there's
[8:27]
something really wrong." Yes, I made a
[8:29]
mistake. I apologize. Um anyway, as of
[8:32]
early August, the total volume of water
[8:34]
passing this gauge is 46, uh 882
[8:38]
um acre feet and you know, we're we're
[8:41]
just below the the 25th percentile. And
[8:44]
then the Farmington Bay outflow gauge,
[8:46]
same [clears throat] format plot
[8:48]
currently, or at least as of July 29th.
[8:51]
There's some more recent data um that
[8:53]
are incomplete, some rating things we're
[8:55]
trying to tweak. So we we only have
[8:57]
daily values up to July 29 to compute
[8:59]
that bold black line, but close enough
[9:01]
to the current period, it's about
[9:03]
195,000 aces
[9:07]
within this 25th to 75th percentile
[9:10]
range. Um, if you add [clears throat]
[9:12]
all these numbers up,
[9:14]
uh, and also to put this in perspective
[9:17]
with the historic data, um, I have this
[9:19]
bar chart. So, here's the current water
[9:22]
year, 2026. If you add up those
[9:24]
cumulative flows for all those gauges,
[9:26]
we're at about 837,000
[9:28]
acre feet.
[9:30]
But I have the previous water years here
[9:33]
going back to 2014 on this bar chart.
[9:36]
All right. So last water year 2025 we
[9:39]
had uh 1,161,000
[9:42]
acre feet. I'm rounding as you can tell.
[9:44]
Uh 2024
[9:46]
2,100,000 acre feet. 2025 2.3 million
[9:51]
acre feet and so on. But you can see
[9:54]
currently um we are above 2021 or 2022
[9:58]
um which were really really bad years.
[10:01]
Um, but anyway, this plot gives you a
[10:03]
nice perspective on what the total line
[10:05]
of flows look like at these gauges back
[10:08]
to 2014. Are there any questions?
[10:11]
>> Very cool.
[10:13]
>> Yeah. Um, okay. And then, um, we'll wrap
[10:17]
up my little segment here before we do a
[10:19]
little more a little later in the
[10:20]
meeting, but just recent discharge
[10:22]
measurements at the Great Salt Lake
[10:23]
Bridge at Lakeside. So, this is the Far
[10:25]
West. This is not the new breach. Uh
[10:28]
basically we've had zero flows at this
[10:30]
site since uh April. Um and that's
[10:33]
indicated with this flat line here at
[10:35]
the zero mark on uh the cubic foot per
[10:38]
second scale on the y axis there. This
[10:40]
is showing data from October 1st to the
[10:42]
current period. So basically we're high
[10:44]
and dry at the site right now. And we'll
[10:46]
have more as proof of the agenda.
[10:50]
>> Okay. Quick update on salinities. We
[10:53]
actually the last set of samples we got
[10:56]
was in view. So, I'm going to show those
[10:58]
real fast and then I'll show you some
[10:59]
updated salinities from other locations.
[11:02]
But from our um Southarm monitoring
[11:05]
network, as of June 22nd, 2026, the
[11:08]
salinities ranged from 122 to 124 grams
[11:12]
per liter. Um that's up about four or
[11:14]
five since our seasonal low in April.
[11:18]
And uh the water column is pretty well
[11:20]
mixed at this point. Our more recent
[11:23]
salinities we have uh from the new
[11:25]
breach. We measured salinity yesterday
[11:27]
and we're getting 131 gram per liter. So
[11:29]
that's kind of what we're seeing uh at
[11:32]
the brereech north to south flow which
[11:34]
we are seeing now is 273 grams per
[11:36]
liter. And then we also got a
[11:38]
measurement from saltier our where the
[11:41]
lake elevation gauge is for the south
[11:42]
arm that was also 131 gram per liter. of
[11:45]
that based on those if we assume those
[11:47]
are representative of the south arm
[11:49]
which this time of year is pretty good
[11:50]
assumption um we're up 13 grams per
[11:53]
liter since April and actually I'll use
[11:56]
those August measurements for the fall
[11:59]
and uh spring predictions just because
[12:02]
it's I would rather rely on our more
[12:04]
recent measurement rather than trying to
[12:06]
estimate from June forward. So just just
[12:09]
to give you a little info on that um the
[12:12]
volume weighted methodology requires
[12:14]
measurements from our four sites from
[12:17]
where GU collects samples. So um the
[12:20]
most recent volume weighted salinity
[12:21]
estimate we have is from June 22nd and
[12:24]
that is 123 grams per liter for the
[12:27]
upper bion layer volume weighted and the
[12:29]
full depth. But Gle did go out
[12:31]
yesterday. So we have a new fresh set of
[12:33]
samples and we're working on getting
[12:35]
those salinities uh measured right away.
[12:37]
So I can send out an updated volume
[12:40]
weighted salinity probably later today
[12:42]
or tomorrow for everybody.
[12:46]
Looking at our salt south arm salt mass
[12:48]
trend. So this is from 2022 to the
[12:51]
present. Southarm salt mass is in
[12:54]
millions of tons on the y- axis. And our
[12:57]
most recent again measurement which we
[13:00]
uh I used the um the G slept sample set
[13:04]
from June 2nd was 856 million tons as of
[13:08]
June 22nd. You can see you can see we're
[13:11]
kind of still following that that same
[13:14]
trend of uh decreasing 27 million tons
[13:18]
per year roughly. If we look at uh those
[13:21]
values in the context of elevation and
[13:24]
mass, you can kind of see where we fit
[13:26]
as of June 22nd 123 856 million tons and
[13:30]
we were sitting at 4191.4 at that point
[13:33]
kind of clustered right around um this
[13:35]
black dot cluster. If I just put on our
[13:38]
August 4th measurement from those two
[13:41]
locations again salinities are 131 gram
[13:44]
per liter 864 million tons. If I
[13:47]
extrapolate that concentration across
[13:49]
the volume of the south arm at that
[13:51]
time, which the lake was at 4190.6.
[13:54]
So I think that's our best estimate of
[13:56]
what current conditions are right about
[13:58]
now. I'm sitting at 131 grams per liter.
[14:02]
>> Okay. And I think that's our first
[14:05]
segment, the end of our first segment.
[14:07]
Great.
[14:08]
>> Thank you.
[14:09]
>> Unless there's any questions.
[14:14]
» Well, great. Well, Ben, could you you're
[14:17]
next on the agenda. Just an update on
[14:19]
the Burm that's been going on there.
[14:21]
>> Well, we lowered the recommendation of
[14:24]
the committee. I want to give a shout
[14:27]
out to water resources for helping uh
[14:29]
with construction
[14:32]
uh oversight. So, Eric and BJ did a
[14:35]
great job making that happen. And then
[14:38]
also to Union Pacific, they also
[14:40]
volunteered their time and labor and
[14:42]
everything to the gym. So that was
[14:44]
awesome. We were able to get that done
[14:45]
within days of asking them. So [cough]
[14:49]
everything [clears throat] went as
[14:50]
planned. I think they got it down to the
[14:52]
elevation 4183 as uniform as possible
[14:56]
for Craig's request. I guess we'll have
[14:57]
to see if uh surveys represent that, but
[15:02]
we tried to get it down to a nice
[15:03]
uniform elevation. And right now it's
[15:07]
Yeah, it's open. We're looking forward
[15:08]
to understanding, you know, what type of
[15:10]
flows we're seeing through that and
[15:11]
reconvening as we get more information,
[15:14]
but we did work with USGS to increase
[15:17]
monitoring. So, I think that's also well
[15:18]
underway so we can keep tabs under the
[15:21]
on this. That's all I have anybody has
[15:25]
questions about it. So, building the BM
[15:28]
seemed pretty easy for the railroad.
[15:31]
This seemed like it would be more
[15:33]
difficult. Did they say anything about
[15:35]
how
[15:35]
>> I think they were pretty good. I mean,
[15:37]
um, they got it done in like two days,
[15:39]
so I think it was pretty simple for
[15:41]
them. So, I expected it might be a
[15:44]
little more challenging to to get down,
[15:46]
but they
[15:48]
>> awesome.
[15:48]
>> We do have one slight issue, which is uh
[15:53]
there's a there was a cation order of
[15:55]
their quarry based on some requirements
[15:58]
that need to be met. So, if we end up
[16:02]
needing to raise the B again, we're
[16:04]
going to have to probably source some
[16:05]
rock. figure that out. But we're trying
[16:08]
to work through that and [clears throat]
[16:09]
figure out what can be done or how we
[16:11]
can help on that. But
[16:13]
>> strong
[16:15]
pit
[16:16]
>> uh [clears throat]
[16:19]
strong is is just about a mile away from
[16:22]
Lakewood.
[16:26]
» Nice. Yeah, I don't think it's
[16:28]
insurmountable. I think just ends up not
[16:30]
being free, which we've been pretty
[16:31]
accustomed to lately and that's pretty
[16:33]
nice.
[16:34]
allows us to invest into other
[16:36]
activities. So
[16:39]
anyway, that's all I have for
[16:41]
>> Okay, any questions?
[16:43]
>> Maybe you can give them some cookies.
[16:46]
>> I didn't like that. I think the first
[16:48]
time we took them to to cook dinner. So,
[16:52]
>> I was amazed when like, oh my goodness,
[16:54]
you got it. It's done.
[16:55]
>> Yeah, that included everything. The
[16:57]
making sure everybody needed to know
[16:59]
knew and all of the other pieces. So
[17:02]
there's a lot of work in between a lot
[17:04]
of help from water resources and
[17:08]
[snorts]
[17:09]
>> what you said you said the the sesh
[17:12]
thing
[17:13]
>> would you kind of help me understand
[17:16]
um uni Pacific is concerned about that
[17:19]
at a certain level help me
[17:22]
>> well I mean as I don't know what
[17:25]
conversation you're referring to but I
[17:26]
think in general these sessions have
[17:28]
been known to take out rail cars if they
[17:30]
don't protect the costway proply so
[17:32]
they're constantly like rebuilding rock
[17:35]
walls or stabilizing them and keeping
[17:37]
the railroad from sinking.
[17:38]
>> But in our case the you know I think we
[17:42]
all agree that a session is what took
[17:44]
out the burm the first time it lowered
[17:46]
and made its own v notch and then
[17:48]
subsequent lowering of that has been
[17:50]
through just erosion based on like
[17:52]
didn't have all the protective rod would
[17:54]
have been in there. So now uh you know
[17:56]
one of the things that we're considering
[17:58]
and discussing is you know one through
[18:00]
the Jacob's proposal when we asked about
[18:02]
like a more intelligent structure that
[18:04]
could you know go up and down from the
[18:06]
bottom and all the things and we realize
[18:08]
that's going to be really expensive. But
[18:09]
one thing that did come with that is the
[18:11]
geotech was the big question mark on
[18:13]
that. But we could probably learn a lot
[18:15]
about what's necessary for the
[18:17]
geotechnical um you know stabilization
[18:20]
of that and what what support structure
[18:22]
um just by simply uh starting that
[18:25]
project by doing a component of putting
[18:26]
in like jetties uh in front of the burm
[18:29]
and I think that even if we stuck with a
[18:31]
rockill structure uh those jetties would
[18:34]
protect from siches and make it so we're
[18:36]
more um I guess diligent or intentional
[18:40]
about lowering the burm and not just
[18:41]
letting session should, you know, catch
[18:44]
us on, you know, flat fling
[18:46]
it by accident. This time it worked out
[18:48]
great. We've got a great lucky track
[18:51]
record on the B, but we want to be more
[18:53]
intentional for the future.
[18:55]
>> Thank you.
[18:56]
>> Yeah.
[18:58]
>> Great. And then do you have any other
[19:00]
updates?
[19:01]
>> Um, no, nothing too crazy. I think just
[19:03]
maybe an update on the CMP. We're going
[19:06]
to incorporate, you know, salinity
[19:08]
management that we've discussed here as
[19:10]
a group into that. But one of the things
[19:12]
that we're doing in our CMP and
[19:14]
hopefully everybody's heard this like a
[19:16]
hundred times is we're kind of
[19:17]
segregating out these, you know,
[19:19]
management activities from the CMP. So
[19:21]
the CMP is really how we make decisions
[19:23]
when someone's asking to use sovereign
[19:25]
lands. And then because we don't want
[19:26]
these things to get, you know, dried up
[19:28]
and dusted sitting on a shelf over 10
[19:30]
years, we're taking the like day-to-day
[19:32]
management, the information, the kind of
[19:35]
book report aspect of our old CMPS and
[19:37]
putting that on our website um and
[19:39]
making an interactive, you know, here's
[19:41]
the lake level, here's the salinity,
[19:44]
here are the things that we're doing
[19:45]
today. It doesn't really makeision.
[19:49]
It's just more about transparency for
[19:51]
the public so people can see like what
[19:52]
we're doing and then as we learn new
[19:54]
information or like you know develop
[19:56]
protocols for like the firm or
[19:57]
management of that we don't have to wait
[20:00]
10 years before we can tell people how
[20:01]
we're doing that we can update the
[20:03]
website immediately and show people how
[20:05]
that works. So we're really excited
[20:07]
about that. I think it'll have a there
[20:08]
will be a lot of the work that we've
[20:10]
done as a committee that shows up you
[20:12]
know there there will also be a lot of
[20:14]
other agency partner information. We'll
[20:15]
try to filter people to the appropriate
[20:17]
places so they can go to the right spot
[20:19]
to get the information so we're not
[20:21]
having to retell any of your stories and
[20:23]
we can direct people to the the right
[20:24]
spots. So that's probably the the
[20:27]
biggest thing there and I don't think we
[20:30]
have much else to update.
[20:32]
>> You know anybody has specific questions?
[20:34]
>> One of the u the ideas that Envision
[20:38]
Utah is incorporating in the VIP is for
[20:40]
these various scenarios an if then
[20:43]
>> kind of thing. And it I think it helps
[20:45]
the public understand that if we don't
[20:48]
do something then this could be the
[20:50]
outcome.
[20:51]
>> Sure.
[20:51]
>> If we do do something in a timely manner
[20:54]
then this is what the benefit of that
[20:56]
management decision gives.
[20:58]
>> So I don't know.
[21:00]
>> That's great. I think we can try to
[21:01]
consider that. We have you know kind of
[21:05]
a limited amount of funding and time to
[21:07]
finish this. It's already gone a little
[21:09]
longer than than more expensive than we
[21:12]
would like. But um I think those are the
[21:14]
kinds of things that you know given the
[21:15]
fact that we're taking that component
[21:17]
out of the plan. We don't have to wait
[21:19]
10 years to do that. We can work on that
[21:20]
now [clears throat]
[21:21]
>> and develop that tool out. So you know
[21:24]
division or someone else is doing that.
[21:25]
This is that's the beauty of segregating
[21:27]
these things is we can be more. Um, one
[21:29]
thing I actually did just think of that
[21:31]
I would like to update on that may be
[21:33]
something we need to discuss later is,
[21:34]
you know, we are working through the New
[21:37]
Ballet Basin project. That's something
[21:38]
that's still chugging forward and we're
[21:40]
trying to convene all of our agency
[21:41]
partners to, you know, help and work
[21:43]
through, you know, collecting data and
[21:45]
making sure that's a good project. That
[21:48]
will likely have some solidity impacts,
[21:50]
you know, based on what comes back to
[21:51]
the lake and also, you know, any water
[21:54]
source we get is going to change these,
[21:56]
you know, dynamics and it's going to
[21:57]
increase the need to to measure. And I
[21:58]
think we're going to, you know, work
[22:00]
with USGS and others to make sure that
[22:01]
we're measuring inflows and chemistry of
[22:04]
water that comes out of that. And then,
[22:06]
uh, and then the other one is, uh, you
[22:09]
know, our purchase of the US Magnesium
[22:11]
facility. We also have all of the water
[22:14]
that gets stopped in Stanbury Bay that
[22:17]
we think will, you know, amount to a
[22:21]
pretty significant amount of water, but
[22:23]
also there's a ton of accumulated salts
[22:25]
in Stanbury Bay. And so we're working
[22:27]
through different angles to figure out
[22:29]
just exactly how this will work out, how
[22:31]
we could potentially return water that
[22:32]
would otherwise make it through Stanbury
[22:34]
Bay to get to Gritzell Lake. Um we did
[22:37]
get I think it's finished. Well, I guess
[22:39]
we'll see. It's we don't have it till
[22:40]
the checks in our hand, but I think
[22:41]
we've got a $4.5 million appropriation
[22:44]
from Congress to uh implement this
[22:47]
project. So, we're hoping that we can
[22:50]
start to do some of this work and and
[22:52]
get, you know, find another source of
[22:54]
water that doesn't have intermediable
[22:57]
break. So, it would lots of cool stuff
[23:00]
happen out there.
[23:03]
>> Yeah, there's a lot going on.
[23:04]
>> Yeah.
[23:06]
>> And then Jim from DW updates any
[23:09]
updates? Uh no nothing [clears throat]
[23:12]
different uh than you know just to
[23:13]
reiterate there were some questions
[23:15]
about our rule and how this would apply
[23:18]
um with increasing salinity and um just
[23:22]
I'm not sure exactly what I informed
[23:24]
this group on but um we did have some
[23:26]
conversations [clears throat]
[23:28]
and uh you know our rule is kind of what
[23:31]
it is if if the lake does reach 150
[23:33]
there is a um you know a limit to um
[23:37]
allowing additional discharges to the
[23:40]
So, um, you know, it's our hope is that,
[23:43]
you know, management is careful not to
[23:46]
do that so that we're not put in that
[23:47]
position. Um, but, uh, other than
[23:50]
flexibilities, there really aren't any,
[23:53]
um, with the exception of some of the
[23:56]
built-in um, offramps for dimminimous
[23:59]
discharges. So, if there's any questions
[24:02]
about that.
[24:06]
» Any questions for them? Um,
[24:11]
if not, I think we can move on to
[24:14]
proceeding.
[24:15]
>> Cool.
[24:16]
>> Ryan's gonna give us the lowdown on
[24:18]
recent
[24:20]
monitoring, recent observations since
[24:22]
the BM has been forwarded.
[24:31]
All
[24:34]
» [clears throat]
[24:38]
» right, this is what we've all been
[24:40]
waiting for. So, um, next slide, please.
[24:43]
All right, before we get into the data,
[24:45]
let's just review um, uh, the setup at
[24:48]
the at the new brereech. Okay, so we
[24:51]
have the south side of the lake. This is
[24:53]
the causeway bridge here. So, we're
[24:54]
looking at a cross-section, the bridge
[24:56]
deck, south side of the lake on the left
[24:59]
side, right, north side of the lake to
[25:01]
the right. Um, [clears throat] we're
[25:03]
indicating the lake bottom with this
[25:05]
brown color. Um, and the burm is
[25:07]
indicated here, uh, on the north side of
[25:10]
the bridge. And then we have an
[25:12]
uplooking acoustic Doppler um current
[25:15]
profiler um mounted to an anchor and
[25:19]
it's measuring velocities at 10
[25:21]
different cells or 10 depths throughout
[25:23]
the water column. So cell one is close
[25:26]
to the bottom and cell 10 is is the
[25:29]
shallowest depth. Keep that in mind as
[25:31]
we as we look at data um going forward.
[25:34]
So the cell width, so [snorts] this it's
[25:37]
measuring velocities in the center of
[25:39]
these cells and the width of each cell
[25:41]
is 1.3 ft. We're making measurements um
[25:45]
calculating measurements every 15
[25:46]
minutes and there's a five minute
[25:48]
averaging interval and these data are
[25:50]
available to you via uh the natural
[25:52]
water dashboard. Um it's updated about
[25:55]
hourly um uh there. Uh so the station
[25:59]
number associated with that data is 100
[26:02]
125.
[26:04]
Okay. So, just kind of keep this um
[26:06]
schematic in mind and we all know that
[26:08]
we have south to north flow um
[26:10]
overalking the uh north to south flow.
[26:14]
So, everybody's clear on that. All
[26:15]
right, let's let's move into um data
[26:19]
from that uplooking velocity meter. So,
[26:21]
on [clears throat] the y- axis we have
[26:22]
velocity and feet per second. Here's the
[26:25]
zero mark. This is 3 feet per second at
[26:27]
the top. It's negative five feet per
[26:28]
second at the bottom of the plot. and
[26:30]
we're showing data from July 2000 uh or
[26:34]
excuse me July 9th uh [clears throat]
[26:37]
2026 through the through the current
[26:39]
period and I've indicated where you see
[26:42]
a big difference in the data leading
[26:44]
into the burn modification. So prior to
[26:47]
burn modification you had the cells
[26:50]
these [clears throat] cells in the in
[26:51]
the positive territory above the zero
[26:54]
mark uh on the plot these are the south
[26:57]
and north flows. Okay, so those
[26:59]
velocities are hug hugging around 0.5
[27:02]
feet per second. [clears throat] The
[27:03]
velocities that are measured closer to
[27:05]
the bottom, they're hugging around the
[27:08]
zero foot per second or slightly
[27:10]
negative. Uh and then we modify the burn
[27:13]
and it's completed sometime on the on
[27:15]
the 16th. I think the burn modification
[27:18]
complete. But anyway, you can we can
[27:20]
even see when they started working on it
[27:21]
in this data set, we see those shallower
[27:24]
velocities jump up to over, you know,
[27:27]
between one and two feet per second and
[27:29]
we see some of these velocities that are
[27:31]
measured closer to the bottom going to [clears throat] larger negative
[27:34]
values around one foot. Okay, so the big
[27:38]
picture with this data is that when we
[27:41]
modified this BM when it was lowered in
[27:43]
4183,
[27:45]
south to north velocities increased a
[27:46]
little bit and north to south velocities
[27:50]
increased a little bit. Okay. Well, that
[27:52]
was the intent of this, right? Was to
[27:54]
get more north to south water to the
[27:56]
south of the of the lake. And we we see
[28:00]
evidence that that is happening by these
[28:02]
more negative north south velocities
[28:05]
measured in those deeper cells. Does
[28:07]
that make sense to everybody? Okay,
[28:10]
that's observation one. [clears throat]
[28:13]
Um observation two, we still see these
[28:16]
big um
[28:19]
spikes in this data that are happening
[28:20]
periodically. So after burn modification
[28:24]
the velocity response to wind events is
[28:26]
still very evident in this data. These
[28:29]
are the result of wind events causing in
[28:31]
this case uh we had a wind event blowing
[28:35]
um out of the north and all the and at
[28:38]
some point the the dynamics of that at
[28:41]
that causeway changed so that north arm
[28:43]
water was all north arm water starting
[28:45]
to move south and so all the velocities
[28:48]
measured throughout [clears throat] the
[28:48]
water column are dipping down into this
[28:51]
negative territory. A negative velocity
[28:54]
is a north south direction. Does that
[28:57]
make sense? Okay. And we see many wind
[29:00]
events impacting the data through this
[29:02]
period, including a wind [clears throat]
[29:04]
event um that was pushing uh water into
[29:07]
very positive velocities
[29:09]
uh south and north flows. So almost
[29:11]
uniform flows south to north. Um so
[29:16]
the entire water column then starts to
[29:18]
shift um and blows uh to the south from
[29:21]
the north to the south in an event like
[29:23]
this. And it's just vice versa on an
[29:25]
event like this. Does that make sense?
[29:28]
Okay, we saw these wind events impacting
[29:31]
the velocity [clears throat]
[29:32]
data set here previously. So, we still
[29:35]
see that.
[29:37]
Next slide. All right. Now, let's just
[29:40]
zoom in on um a two-day period in that
[29:44]
data set. So from July 18th to July 20th
[29:48]
and let's take a really close look at
[29:51]
the complex nature of these uh velocity
[29:55]
measurements throughout the water
[29:56]
column. So these uh numbers well first
[29:59]
of all the zero velocity line is
[30:01]
indicated with the bold black line.
[30:03]
Anything above is a positive velocity
[30:06]
south to north. Anything below is a
[30:08]
negative velocity north south. All
[30:11]
right. Um the blue line in indicated
[30:15]
with the number one here that's that
[30:17]
first cell measured by that uplooker.
[30:19]
That's the deepest cell that we measure.
[30:23]
So that velocity at that blue line or
[30:26]
represented by the blue line is hugging
[30:28]
is close to this zero um mark zero line
[30:32]
on this plot. Now working our way up the
[30:34]
water column [clears throat] as we step
[30:37]
up um into uh the next layer of water.
[30:41]
uh above layer 1, the velocities are
[30:44]
slightly more negative. So that water is
[30:47]
moving a little bit faster
[30:49]
uh heading to in the north direction. As
[30:52]
we go further up, the water velocities
[30:56]
heading in the north direction are even
[30:57]
stronger, higher velocities.
[31:00]
Okay, so close to the uplooker, the
[31:03]
north to south velocities are slow and
[31:05]
as we work our way up, those north south
[31:06]
velocities start to pick up. All right,
[31:11]
here's cell four. So, [clears throat]
[31:13]
working our way up the water column.
[31:14]
Still in the negative territory here.
[31:17]
Pretty strong negative velocities at
[31:18]
time, but pretty big fluctuation. This
[31:21]
is four up here and this is four down
[31:23]
there. We're starting to get into the
[31:25]
transitions though where we're getting
[31:28]
out of just that north highly brine
[31:31]
water and we're working our way up the
[31:32]
water column into the south water. So by
[31:35]
the time we get to cell five, it's way
[31:38]
above the zero line and it can
[31:40]
[clears throat] come significantly below
[31:41]
the zero line. So we're in that
[31:43]
transition zone, okay? Where the north
[31:46]
to south water, you know, it's just
[31:48]
cruising over each other. But this cell
[31:50]
five, four, and five, mostly five in
[31:53]
that transition zone. That's at about
[31:55]
4185,
[31:57]
by the way, in terms of the the data,
[32:01]
the Great Salt Lake elevation data that
[32:03]
we're all familiar with. Now we work our
[32:05]
way up the water column. Cell six, uh,
[32:07]
these are strongly positive velocities.
[32:09]
That's 08 feet per second. And then, you
[32:13]
know, uh, cell,
[32:16]
uh, stronger velocity still. Cell nine
[32:19]
or eight, stronger velocity. And then as
[32:22]
we get close to the top of the lake
[32:26]
where we're measuring velocities, cell 9
[32:28]
and 10, the velocities are actually a
[32:29]
little bit a little bit lower, at least
[32:31]
in this little slice we're talking about
[32:34]
right here. The point here is it's a
[32:36]
complex velocity profile. Um, but in
[32:42]
general, we're uh accomplishing what we
[32:45]
wanted to accomplish with with this uh
[32:47]
BM obation. We're seeing stronger
[32:49]
velocities in the north south direction.
[32:52]
Pulse burner modification.
[32:54]
>> Question.
[32:55]
>> What was the elevation difference
[32:56]
between each of those different
[32:58]
profiles? You say
[32:59]
>> 1.3 ft. Well, 1.3 ft is the cell width.
[33:03]
Yeah, it's 1.3 ft distance between them.
[33:06]
>> Yeah.
[33:07]
So where So just
[33:10]
to make sure I'm understanding the those
[33:13]
one, two, three, and four would be
[33:15]
representative of like five feet of
[33:17]
north to south flows.
[33:19]
>> Yeah. Yeah. And that's at that's at
[33:22]
depth.
[33:23]
>> Yep.
[33:23]
>> And we only had during this time period,
[33:25]
we only had like less than half of a
[33:27]
foot of difference.
[33:29]
>> Less than a half a foot between that
[33:31]
difference north and south.
[33:33]
>> Yeah. I haven't looked into that in
[33:35]
detail. So It's just it's interesting
[33:38]
because I think one of the things that
[33:39]
we were working off of back when we were
[33:42]
looking at like you know how when we can
[33:44]
see north to south flows is like you
[33:47]
know this much of a head difference you
[33:48]
can see that north to south flow. It's
[33:50]
just interesting that we're seeing you
[33:52]
know such an increase in that flow at
[33:55]
those lower depths. I don't know if that
[33:57]
matters or maybe the difference in head
[33:59]
difference is what drives that but I
[34:01]
think you know before when we were
[34:02]
looking at things like you know siphons
[34:04]
or you know other ways to do that I I
[34:06]
recall that maybe there [snorts] was
[34:07]
like a two or three feet of difference
[34:10]
that could be
[34:12]
worked into that but maybe I'm not
[34:13]
thinking of that the right way. I I
[34:16]
think right around 12 to 16 inches is
[34:20]
kind of the if we're below that we see
[34:24]
much more north water coming down. Um
[34:28]
and so I think where we are with that 6
[34:30]
in differential is probably the the most
[34:35]
north to south flow that we see.
[34:38]
>> Um
[34:39]
because now the density is much more
[34:42]
important. We don't have enough head
[34:44]
differential to push water north, but
[34:47]
you get more differential now that south
[34:49]
to north becomes more important.
[34:54]
[clears throat]
[34:56]
>> Okay. Well, uh these these uplookers,
[34:58]
this technology is it's been around a
[35:00]
while and I still I find it very
[35:02]
remarkable technology and um so this gives us some pretty precise uh
[35:08]
information on on what's happening with
[35:09]
the flow dynamics. You know, I one one
[35:12]
uh thing to keep in mind that cell one.
[35:16]
So, we have the uplooker. It's sitting
[35:18]
on an anchor that's about a foot thick.
[35:21]
And then there's the uplooker sitting on
[35:23]
top of the anchor. And then there's a
[35:24]
blanking distance where the the uplooker
[35:27]
can't measure velocity. There's some
[35:28]
distance right above the sensor where it
[35:30]
can't measure velocity. And then we hit
[35:32]
cell one. So, we've had a distance of
[35:38]
from here. Yeah, this blanks space, you
[35:41]
know, from the blue up to uh the number
[35:44]
one, that's a blanking distance where we
[35:46]
don't have data. Um, let's go back to
[35:50]
the velocity slide. But even with that,
[35:54]
we know that that cell one that where we
[35:56]
are getting data, which is can be almost
[35:58]
like potentially three feet above the
[36:00]
bottom, those velocities in cell one are
[36:03]
really low, really low. But we have a
[36:07]
lot of uncertainty. what happens below
[36:08]
cell one because we see these really
[36:10]
velocity really low velocities in cell
[36:13]
one. Um we think that water right now is not moving quickly. It's almost like
[36:21]
there's a um the water's coming over the modified BM and just kind of
[36:26]
shooting through represented by these
[36:30]
Let's go to the velocity slide.
[36:33]
represented by these higher velocities
[36:35]
here.
[36:37]
But the water um that's deeper than
[36:39]
cells three and four is relatively
[36:42]
quiet. Does that make sense?
[36:45]
>> Yeah. So in that um kind of redder area
[36:47]
right at the bottom, Mike Freeman is his
[36:50]
observations are that that's relative
[36:52]
like a stagnant pool and it's actually
[36:54]
advantageous that we have our instrument
[36:56]
where it is because just that's pretty
[36:58]
quiet water right there.
[37:06]
Okay. Um next slide. All right. So,
[37:09]
let's look at the actual field
[37:10]
measurements of discharge that we're
[37:12]
making with the downlooking ABC mounted
[37:14]
to a little boat that we can tow across.
[37:17]
Um, so we have discharge in cubic feet
[37:20]
per second on the y- axis going from
[37:23]
about 300 cfs at the bottom to 900 cfs
[37:25]
at the top showing data from October
[37:27]
1st, 2025 out [clears throat] to
[37:29]
yesterday. So, these are field
[37:31]
measurements of south to north flow
[37:33]
shown on this plot. Um let's
[37:35]
[clears throat] just kind of get over
[37:37]
here to the right side of the plot where
[37:38]
all the action is. Um the measurement
[37:41]
made on July 10th just before the burm
[37:43]
was lowered. So this is indicated of
[37:45]
July 16th right when the burm was
[37:49]
lowered. So that measurement just prior
[37:51]
to that event was 500 cfs. July 17th the
[37:55]
day after the burn modification was
[37:57]
completed uh we measured 376 cfs. July
[38:03]
24th back up to 928 cfs, but there was a
[38:06]
south to north wind event. So water's
[38:09]
pushing or wind is pushing water from
[38:10]
the south to the north. Uh causing a
[38:13]
higher discharge on that day, August
[38:15]
5th, couple days ago, very quiet
[38:19]
conditions. Um or was that yesterday?
[38:21]
Thank you. Yesterday, quiet conditions,
[38:24]
the discharge measurement came in at 542
[38:27]
cfs. So, just kind of looking at these
[38:30]
versus these,
[38:32]
not a not a huge dramatic change. Um,
[38:35]
you know, just kind of order of
[38:36]
magnitude. Uh, but right now we're about
[38:40]
540 CFS just as of yesterday. South to
[38:44]
north. Next.
[38:47]
All right. North to south. Um, same uh
[38:51]
axes definitions.
[38:53]
um other than the this is a zero at the
[38:56]
bottom and this is 200 CFS towards the
[38:58]
top of the plot and let's just go right
[39:01]
to the right side of the plot get into
[39:03]
the action on July 10th we measured 23
[39:06]
CFS remember there's higher uncertainty
[39:08]
with respect to these north and south
[39:10]
numbers part of it's due to the blanking
[39:12]
distance we just talked about but there are some other factors at play as
[39:15]
well um on July 17th the day after
[39:21]
84 CFS s not a huge jump. Um on July
[39:28]
24th, 16 CFS back down, but this July
[39:32]
24th is the when we had that significant
[39:34]
south um southern wind south to north
[39:38]
wind event. It's not surprising that value is suppressed because of that wind event. August 5th, this is
[39:47]
quiescent conditions. We feel pretty
[39:49]
good. We feel like the uncertainty
[39:51]
related to this August 5th measurement
[39:53]
is is less than the uncertainty related
[39:56]
to July 17th and July 24th. August 5th
[39:58]
came in at 233 CFS. All right, this is
[40:03]
great. This is a big jump from where we
[40:06]
were. So, uh I think the story here is
[40:10]
right now it's looking like this B
[40:12]
modification is doing what we wanted it
[40:15]
to do. flows have increased
[40:17]
significantly from the north direction
[40:20]
towards the south moving salt moving
[40:22]
nutrients um to the south and I think
[40:25]
that was the objective right all right
[40:28]
so [clears throat]
[40:29]
the uncertainty that I keep I mentioned
[40:31]
it last meeting with these north to
[40:33]
south flows um we're going to have much
[40:36]
more to say about this in the coming
[40:38]
months um we're doing a lot of work to
[40:41]
try to pin this down but for Now, the
[40:45]
uncertainty is higher for these north to
[40:47]
south values um relative to the south to
[40:51]
north values on the previous plot, but
[40:54]
we're working through it. And we think
[40:55]
this this August 5th measurement is is
[40:58]
the better of the the three we've made
[40:59]
since the burn was was
[41:03]
that
[41:08]
a question?
[41:13]
Okay, great.
[41:15]
>> And then I just threw in um salt fluxes
[41:19]
like what this would mean for salt flux.
[41:20]
So this the orange line here represents
[41:24]
July 16th and then to the right of that
[41:26]
represents the period where the BM is
[41:28]
lowered to 4183. And um these I mean
[41:32]
this is largely controlled by the
[41:34]
discharge. So you see like these two
[41:36]
we're still getting a lot of um net
[41:38]
south to north transport of salt because
[41:41]
those discharges were high. For this one
[41:43]
we have most confidence in the discharge
[41:45]
reading that was made yesterday. We're
[41:47]
approaching kind of this um net zero
[41:51]
flux and we'll be curious to see if this
[41:54]
we start trending into import territory
[41:56]
where we're starting to get salt from
[41:58]
the north to the south. So, we'll be
[42:01]
building out this data, but just
[42:02]
preliminarily, it does look like based
[42:04]
on the measurements that were made
[42:05]
yesterday, we're trending toward um
[42:08]
certainly lower net fluxes to the north
[42:10]
and potentially starting to import salt.
[42:18]
That's great.
[42:21]
Any any questions on that?
[42:26]
I was just curious, you know, with your
[42:29]
what you're seeing on the flux of south
[42:33]
to north and anticipating whether or not
[42:35]
we get a north to south or that just
[42:36]
that maybe stabilizes is that in line
[42:39]
with what you had anticipated would
[42:41]
happen with the you know the flourishing
[42:43]
that we're seeing from north to south
[42:45]
these reestablishment of those
[42:46]
>> close yeah it is that certainly that
[42:49]
trending down toward zero net flux of it
[42:53]
being equal is is what I would expect
[42:54]
because we removed a physical obstacle
[42:57]
and now we're getting a lot more salt in
[42:58]
from the north. Um, and so yeah, I would
[43:02]
expect, you know, us to be trending
[43:04]
toward net gaining of salt. It and
[43:07]
especially this time of year because
[43:09]
we're getting kind of the elevations to
[43:11]
be more equalized and as Jess said, it's
[43:13]
kind of dominated by density at that
[43:15]
point and you get flow from the north.
[43:17]
But I will say then I've been looking at
[43:20]
kind of how this current these current
[43:21]
measurements fit into like 2021 and 2022
[43:25]
and there's some variability in the
[43:27]
patterns we saw in 2021 and 2022 that I
[43:29]
can show you. Um that kind of
[43:32]
complicates the story because like and I can get into that but um it kind of
[43:38]
depends. It depends on water surface
[43:40]
elevation differences. It depends on the
[43:41]
density differential, but right now we
[43:44]
have a really large density differential
[43:45]
between the south and the north because
[43:47]
the salt is so much pressure. Um, so
[43:49]
that will also drive flow to the south
[43:51]
from the north. So yes, this is this is
[43:54]
what I would expect, but it it's kind of
[43:57]
a complicated
[43:59]
>> because I know you all were probably
[44:00]
thinking about like taking bets or doing
[44:03]
what the flows were going [laughter] to
[44:04]
be. Did you guys anticipate the any
[44:07]
certain flow with that lowering or did
[44:09]
you was it what you expected.
[44:12]
>> No, I mean I hadn't
[44:15]
>> didn't have an office pool.
[44:19]
» Guess
[44:22]
we
[44:25]
can ask a question about this. I mean,
[44:27]
even if it was at net zero, you're still
[44:28]
exporting more volumetric water. So, you
[44:31]
would still expect concentrations to,
[44:34]
you know, you just had a net was at net
[44:36]
zero in terms of mass exchange, but
[44:38]
you're still exchanging water. expect
[44:40]
concentrations to shift
[44:42]
>> in the southire
[44:43]
>> in both arms I guess because you're moving
[44:46]
>> water fast.
[44:46]
>> Yeah. Yep.
[44:49]
So Christine,
[44:50]
>> yeah,
[44:51]
>> when you say the the trend is a downward
[44:53]
trend, but then what are the factors
[44:55]
that would,
[44:56]
>> you know, allow that trend to continue?
[44:59]
Is it I mean, obviously the head
[45:01]
difference is one of them, but if we're
[45:02]
getting to already close to that minimum
[45:04]
head difference, what other factors
[45:06]
would still um have that trend continue?
[45:10]
>> That's a good question. I don't know. I
[45:12]
think really just Yeah, you're right.
[45:15]
the physics are what they are and that
[45:17]
the water surface elevation if if the
[45:18]
south arm continues to come down more
[45:20]
that would drive more flow to the north
[45:22]
um wind events this is something also
[45:24]
that is I'm really curious to look more
[45:27]
into but these episodic north wind
[45:29]
events where you can get full flow
[45:31]
reversal transport a lot of mass so it
[45:33]
can also depend on weather um because
[45:36]
during those events we just managed to
[45:38]
get these huge slugs of salt into the
[45:40]
south arm that would also help us trend
[45:42]
more into negative territory um and I
[45:45]
think just getting more measurements of
[45:47]
like is that 233 cfs representative is
[45:50]
that really kind of what we're seeing
[45:51]
and getting more paired measurements
[45:53]
will help us distinguish that because
[45:54]
there are there's quite a bit of
[45:56]
uncertainty in those first two
[45:57]
measurements made
[45:59]
>> as we continue to look at this salt flex
[46:02]
flux as long as we compare it to the
[46:04]
actual salt mass and potential changes
[46:07]
in the salt mass right
[46:08]
>> that would give us a way to confirm or
[46:12]
deny what we're calculating Yeah, and I
[46:14]
think that's what's really great about
[46:16]
our monitoring program is because we
[46:17]
have two completely independent sets of
[46:19]
data. One from the south arm of of the
[46:22]
samples that Gub collects and then one
[46:24]
at the breach. And so we can kind of
[46:25]
corroborate both of those stories.
[46:30]
» You're you're doing more monitoring now
[46:32]
than what you typically do, right? Can
[46:34]
you describe what you're doing?
[46:38]
>> Yep. We're doing roughly every other
[46:40]
week. Um, we hit it right after the BM
[46:43]
was lowered as Ryan said. Then we did a
[46:45]
week after because we were just trying
[46:46]
to capture any, you know, conditions
[46:49]
right after the change. And now we're on
[46:51]
an every two week interval. So, and
[46:53]
we'll do that until we raise the B.
[46:56]
>> Yeah. If if
[46:58]
>> you're capturing the salinity and the
[47:00]
nitrogen.
[47:02]
>> Yes. Um, we're getting nutrient samples,
[47:05]
right? Yes. I'm pretty sure we're
[47:08]
definitely we're definitely comparing
[47:09]
the water quality.
[47:11]
>> Okay, fair enough. Fair enough. We're
[47:13]
comparing the we're getting a water
[47:15]
quality sample every time they get a
[47:16]
measure for this more intensive and I'm
[47:18]
almost positive nutrients are
[47:20]
>> that's what we discussed. But we're not
[47:22]
going to see the results of the
[47:23]
nutrients.
[47:23]
>> Correct. For a much longer Yes, exactly.
[47:26]
Y
[47:28]
>> great.
[47:30]
I think that's exciting. I think that's
[47:31]
what we were hoping we would see
[47:35]
something along Zero Netflix.
[47:37]
[clears throat]
[47:40]
» Yeah. And there's many other like the
[47:42]
interface um the depth to the interface
[47:44]
is changed. It's probably a two to three
[47:48]
feet higher than it was before. So we're
[47:49]
just getting the cross-sectional area of
[47:51]
north to south flow has grown along with
[47:53]
increases in velocity. So multiple lines
[47:56]
of evidence to suggest there's more flow
[47:58]
and constituent flux coming in from the
[48:00]
north.
[48:04]
» Great.
[48:07]
» So any other questions on on what
[48:09]
they've been observing after the BM?
[48:13]
>> Sorry. Did you say the interface drop?
[48:16]
Is that
[48:17]
>> um It's higher. Sorry if I said sorry if
[48:19]
I misspoke. It's higher now. So it's
[48:21]
probably five to six feet below the
[48:23]
water surface and before it was like 8 n
[48:25]
10. So yeah, it's it's the north to
[48:28]
south cross-section is has grown.
[48:37]
» All right. Well, good. Well, now with
[48:40]
all these things that we've learned in
[48:41]
the last couple weeks, you've been
[48:42]
crunching numbers,
[48:44]
>> right? Um right. Okay. Let's see what we
[48:47]
get. All right. So taking the kind of I
[48:50]
have calculated the fall salinities
[48:52]
using a couple of different approaches.
[48:54]
One is this kind of standard water salt
[48:56]
balance model. Um and kind of the
[48:59]
results of that I only did predictions
[49:02]
for a dry warm scenario and an average
[49:04]
given the conditions that we're under.
[49:06]
Um and the resulting salinity and I'm
[49:09]
predicting through October. So roughly
[49:12]
November kind of salinity or a seasonal
[49:14]
high uh estimated using this method is
[49:18]
138 grams per liter for a dry condition,
[49:20]
dry warm condition and 133 for an
[49:23]
average. Um and not much you know not
[49:27]
much change in the salt mass really
[49:29]
given the short amount of time between
[49:31]
now and the seasonal low.
[49:35]
I kind of kept in this simplified way of
[49:39]
estimating uh fall salenities also which
[49:42]
is essentially saying from our spring
[49:44]
peak elevation to our fall low elevation
[49:47]
what is kind of a typical decline in
[49:50]
surface elevation what are the
[49:52]
associated volumes and then backing out
[49:55]
um the fall salinity based on based on
[49:58]
that and this assumes no real change in
[50:00]
salt mass but using this this approach
[50:03]
you get a range of 138 243 gram per
[50:06]
liter. So those methods, both two
[50:08]
different methods are fairly consistent,
[50:11]
around 140 grams per liter for the fall
[50:13]
low. And again, our most recent
[50:15]
measurements made Tuesday and yesterday
[50:17]
were 131 grams per liter.
[50:21]
Okay. So now for the spring, um we know,
[50:25]
you know, moving from fall to spring,
[50:27]
these these salinity predictions are
[50:30]
really controlled by the amount of
[50:31]
water. that has the largest lever on the
[50:33]
estimates we get for the spring. It's
[50:35]
the amount of water coming into the
[50:36]
system. But Jeff asked me to kind of
[50:38]
play around with a couple of scenarios
[50:40]
and I hope that this captures what
[50:42]
you're after. But um one is to raise the
[50:44]
burm on October 1, that's arbitrary. Um
[50:48]
really if you were to raise it when the
[50:49]
south arm hits 4190, that would probably
[50:52]
honestly be beginning of September based
[50:54]
on the current rate of change in the
[50:56]
south arm. But if we raise it on October
[50:58]
1st, um
[51:01]
that's one scenario. And then the second
[51:03]
scenario is to raise it not to keep it
[51:05]
open and raise it in the spring. And
[51:06]
that's just a scenario that Jeff is that
[51:09]
right
[51:11]
out a lot of things.
[51:12]
>> Okay.
[51:13]
Hopefully hopefully that captures
[51:15]
it. Um and then there's also the burm
[51:17]
height to consider. If it's a 4190,
[51:20]
there's a higher likelihood that they
[51:21]
will be over topped in the spring at a
[51:23]
certain point. So I estimated that based
[51:26]
on previous rates of change to be around
[51:28]
February 1st is when we might see overt
[51:30]
topping from south to north and then
[51:32]
again start to lose solar mass. So these
[51:34]
are the kinds of um factors that I was
[51:37]
working with. So and I'm going to
[51:38]
display this all using our um iso mass
[51:41]
plots which integrate elevation the
[51:43]
salinity and the mass. So starting with
[51:45]
our most recent measurements on August
[51:47]
4th again 131 grams per liter sitting at
[51:51]
4190.6 six feet in the south arm and an
[51:54]
estimate of 864 million tons of salt.
[51:57]
Moving forward to then um the fall
[52:00]
prediction and kind of just walking
[52:01]
through this is a slightly different
[52:04]
approach that I took on the previous
[52:05]
two, but the this results on 147 grams
[52:08]
per liter and that's assuming that's
[52:10]
trying to account for the amount of salt
[52:12]
mass we gain due to the um the breach
[52:14]
being open. And that's based on previous
[52:18]
conditions. Uh almost 20 million tons
[52:20]
between now and October is the amount of
[52:22]
salt mass um that I'm estimating might
[52:25]
be added.
[52:28]
And then kind of moving forward into
[52:30]
May, again, this is largely controlled
[52:32]
by the amount of water being added
[52:35]
between the fall and the spring. So the
[52:38]
different water conditions that I um
[52:40]
consider are basically a repeat of 2026
[52:44]
runoff. So that would put us at 4190.6.
[52:46]
That's the lowest kind of horizontal
[52:49]
dashed line you see here. For a mean
[52:51]
runoff condition, that's about 2.2 feet
[52:53]
of gain. That's 4191.5
[52:56]
here. this middle line and then kind of
[52:58]
an extreme uh end of the spectrum if we
[53:01]
repeat 2023 runoff which is that high
[53:04]
end and um and then we have these kind
[53:07]
of different salt mass configurations if
[53:09]
we over top the burm on February 1 if we
[53:12]
assume no over topping because in some
[53:14]
of these instances if it's at 4192 you
[53:17]
would not over top and then um and then
[53:20]
kind of just assuming a median rate of
[53:22]
net flux the scenario two is where we
[53:24]
keep it open and so actually in this
[53:26]
scenario
[53:26]
And I'll show plots of this, but in this
[53:28]
scenario, if you keep it open, you
[53:30]
actually end up losing losing salt, a
[53:32]
net loss because of how um because when
[53:37]
you get a pulse of water into the south
[53:38]
arm, you end up having kind of a net
[53:40]
loss of salt to the north and during
[53:42]
these seasons of winter and uh spring.
[53:45]
So the results of this is really in you
[53:48]
know what the take-home for all of you
[53:50]
are in these summarized in these boxes.
[53:52]
So for a dry warm condition estimate of
[53:55]
130ish gram per liter in the spring it
[53:58]
really these different scenarios of this
[54:00]
salt mass exchange don't change it a
[54:01]
whole lot maybe by 2 to three gram per
[54:03]
liter according to these calculations
[54:04]
it's really driven by the water.
[54:06]
[snorts] So average conditions you're
[54:08]
sitting more at about 122 to 125 grams
[54:11]
per liter and then for a very wet
[54:13]
condition 122 to 105 g. That gives you
[54:17]
some idea of um what spring could be
[54:20]
like.
[54:23]
But I wanted to um to just make it clear
[54:26]
that I I based these estimates of the
[54:29]
flux and the amount of mass change in
[54:31]
the south arm on a median condition. So
[54:34]
on a distribution of when the breach was
[54:37]
at for the breach condition was similar
[54:38]
to what it is now. So when the burm was
[54:40]
at 4183. This is the period from 2018 to
[54:43]
2022. And then for each month I
[54:46]
basically just calculated the daily the
[54:48]
net daily flux. So for the box plots
[54:51]
that are above zero that's a net salts
[54:54]
export from the south arm. So basically
[54:56]
net loss of salt and then for um for
[55:01]
values below zero that's a net import.
[55:03]
And just so you can see kind of the
[55:04]
seasonality of this
[55:07]
and that this is really driven by
[55:08]
conditions in like 2019 and 2020.
[55:12]
Based on kind of all this data clumped
[55:14]
together, you really kind of get an
[55:16]
import of salt during these months from
[55:18]
May to October. That's when you start to
[55:20]
get um the large surface elevations
[55:22]
getting closer together and you get a
[55:24]
net import of salt during that those
[55:27]
seasons. So, keeping it open longer may
[55:30]
not be beneficial um because you have a
[55:33]
net export of salt anyway, at least for
[55:35]
the purposes of wanting to get salt to
[55:37]
the um south arm.
[55:40]
But it varies and um so for 2021 this is
[55:45]
so same similar plot monthly for 2021 um
[55:49]
based on the conditions of that year we
[55:51]
actually estimate a net import during
[55:54]
most of that year. Contrast that with
[55:57]
2022 lake elevations were really low
[56:00]
salinities were really high in the south
[56:01]
arm and we actually had um much more
[56:04]
frequent salt export. So this is what
[56:07]
I've been racking my brain for the last
[56:09]
few days of like what are the conditions
[56:11]
now most represent what do they match
[56:13]
most closely 2021 2022
[56:16]
um we have water [clears throat] surface
[56:18]
elevations similar to 20 2022 but the
[56:21]
density differential is much different
[56:23]
in 2022 we had really high salinities in
[56:26]
the south arm um and so that difference
[56:29]
between the south and the north was less
[56:31]
now we have much fresher conditions so
[56:33]
the physics should dictate that we get
[56:35]
much more flow
[56:36]
um from the north coming in because of
[56:38]
that that density different. So um just
[56:42]
something to keep in mind as we try to
[56:44]
anticipate what the flux is going to be
[56:46]
now uh is that it can be quite
[56:48]
complicated. And another factor of
[56:50]
course is like wind. What if 2021 was a
[56:54]
particularly windy year with a lot of
[56:57]
wind out of the north that would drive
[56:59]
um a lot of salt into the south. So,
[57:02]
those are kind of a few other factors we
[57:04]
need to be considering as we try to like
[57:06]
think about what this year is going to
[57:08]
bring. Or at least that's what I've been
[57:10]
thinking about. Um,
[57:13]
this is just a time series of that same
[57:15]
data net salt flux from 2019 to 2022.
[57:18]
You can really see how um in these years
[57:23]
we had, you know, kind of this nice
[57:26]
seasonality 2022 or sorry, sorry, 2021
[57:29]
dominated by net flux to the north and
[57:32]
then in 2022 it really begins to break
[57:34]
down even though the water surface
[57:35]
elevations were similar. Um, so yeah,
[57:39]
maybe this is too much information as I
[57:42]
try to problem solve it myself, but um
[57:45]
these are just yeah and then water
[57:47]
surface elevation I just overlaid in
[57:48]
this black dotted line. So really
[57:50]
matches closely when we get these big
[57:52]
swings in water surface elevation you
[57:54]
see that salt flux sort of following
[57:56]
that pattern and then these two years
[57:58]
are just responding very differently to
[58:01]
that very same um variable which is the
[58:04]
water surface elevation difference. I
[58:06]
think this is mostly driven by increase
[58:08]
in density in the cell farm, but we got
[58:11]
to look at the wind too and just see
[58:13]
what the effect of that is too. And I
[58:16]
will say these are based on um daily
[58:18]
discharge estimates by S made by S and
[58:21]
Eric, his previous grad student.
[58:23]
[clears throat]
[58:25]
Um and with that, I'll just I'm happy to
[58:27]
take questions. I just kind of wanted to
[58:30]
run folks through um you know as we try
[58:33]
to predict what salt flux might be it's pretty complicated and there's a
[58:37]
number of factors to consider but that
[58:40]
the spring predictions again are really
[58:43]
driven by water so yeah
[58:47]
>> excellent yeah
[58:51]
» doesn't sound like it got simpler
[58:53]
[laughter]
[58:54]
>> I know I was hoping you would
[58:57]
but yeah
[58:58]
>> I I think you identified a lot of key
[59:00]
factors.
[59:00]
>> I guess they have a well
[59:02]
>> key variables that help
[59:04]
>> drive it.
[59:05]
>> Yeah. And I did have a call with some
[59:07]
this morning to just try and make sense
[59:08]
of all this stuff and it was he had a
[59:10]
lot of great insights. And so if you
[59:12]
want us to try and get to more precise
[59:15]
predictions about the salt flux, I think
[59:17]
he would have some really good insight
[59:20]
in how to do that um just given his
[59:23]
expertise of the physics of reach. So,
[59:26]
we can we can keep working on that if
[59:27]
that's of use. And I think I would yeah
[59:29]
try to bring some into trying to figure
[59:31]
out some of those methods and things.
[59:34]
>> Yeah.
[59:35]
>> Christine, can you bring that slide back
[59:37]
up?
[59:39]
>> I don't have a question. I just want to
[59:41]
look at it again.
[59:42]
>> All [laughter] right.
[59:43]
>> There you go.
[59:44]
>> No, the one right before this.
[59:46]
>> Oh,
[59:47]
>> it shows the predictions. Yeah. Thank
[59:49]
you.
[59:49]
>> Okay.
[59:52]
So with the in the next two months or
[59:54]
next couple month or month or two um we
[59:57]
reach open or burn low
[1:00:02]
we have a a bigger density
[1:00:05]
gradient between the two and so that's
[1:00:08]
where you're saying we should see more
[1:00:09]
north to south
[1:00:12]
>> so we'd be mimicking more the 20 21
[1:00:17]
pattern like you saw
[1:00:19]
>> I think so but I would have also
[1:00:20]
expected the same thing to happen in
[1:00:21]
2022 and for whatever Well, you're
[1:00:23]
right. The density was different.
[1:00:25]
>> Yeah, maybe it's closer to 2021.
[1:00:30]
» In the previous meeting, I thought you
[1:00:31]
had like an October 27.
[1:00:33]
>> We did that.
[1:00:37]
>> Well, it seems like there's maybe too
[1:00:39]
many variables, right? when we raise a
[1:00:42]
whether it's now then what kind of
[1:00:43]
weather
[1:00:48]
» I mean just one general comment is
[1:00:51]
regardless of what happens according to
[1:00:53]
your predictions we're in a good spot
[1:00:56]
that's just a general comment I would
[1:00:58]
make but the other one is um when we
[1:01:00]
look at salt mass it's it's a tool for
[1:01:03]
us to verify if you know what we thought
[1:01:06]
was going to happen is actually
[1:01:07]
happening but in order to try anticipate
[1:01:10]
what's going to happen at least towards
[1:01:12]
the future and refine that ability. I do
[1:01:15]
agree with you. Um I think at least
[1:01:17]
that's what you're uh you were saying is
[1:01:19]
that we could benefit from Psalms's
[1:01:22]
expertise and continue
[1:01:25]
to model that. I would certainly highly
[1:01:28]
recommend that if funds are available to
[1:01:31]
do that.
[1:01:35]
» Yeah. Yeah. especially his computational
[1:01:38]
fluid dynamics model which is based on
[1:01:40]
physics and I think he would be able to
[1:01:43]
um give much more insight into flow
[1:01:46]
dynamics. We did also did you mention
[1:01:48]
this? We surveyed the bethimemetry
[1:01:50]
yesterday also of the kind of the breach
[1:01:52]
opening. Um, and so that would also help
[1:01:54]
feed it into a model for someone like
[1:01:57]
SAM or water resources to say, well,
[1:01:59]
okay, how is this 4183 condition
[1:02:01]
different than 2021 2022 because it it
[1:02:04]
might be slightly different and um Craig
[1:02:06]
was just mentioning how there could be
[1:02:08]
other factors that are controlling the
[1:02:10]
flow that we may not be aware of
[1:02:12]
>> because right now there's beimemetry,
[1:02:14]
there's um density um and then there's
[1:02:18]
lake elevation and the head difference.
[1:02:21]
I mean that's
[1:02:23]
factors that are playing into this
[1:02:25]
>> and there might be other exampations
[1:02:36]
you talked about how if I remember right
[1:02:39]
when there is no burn we expect to see a
[1:02:41]
deep layer
[1:02:43]
>> do do we know what time frame that would
[1:02:47]
expect to happen if we keep this open
[1:02:49]
how that affect
[1:02:52]
What did we measure the last time? Like
[1:02:54]
six six months.
[1:02:55]
>> Yeah, there was like a sixmon lag. Yeah,
[1:02:59]
this is based on the what were the years
[1:03:02]
for that study?
[1:03:03]
>> 2016
[1:03:05]
well no 2015 to 2017
[1:03:08]
>> and that's published by one of Bill
[1:03:10]
Johnson's graduate students in a
[1:03:12]
journal. So we would point you to it but
[1:03:13]
it seems like that was a
[1:03:17]
last time
[1:03:17]
>> and we haven't observed it yet. There
[1:03:19]
are Mr. Buys up there that might be able
[1:03:22]
to catch a thermocline. If we can get a
[1:03:24]
water quality measurement associated
[1:03:25]
with that, we be able to see when it
[1:03:26]
develops. Um, another factor to consider
[1:03:30]
is how shallow the cell farm is. Right
[1:03:32]
now, you get a lot of wind action that
[1:03:34]
can actually mix that out. So, we'll see
[1:03:37]
what we see.
[1:03:37]
>> If we do see that, do we expect a change
[1:03:40]
in the way that the BM actually flows?
[1:03:46]
Expect a difference in the transfer from
[1:03:48]
north to south, right?
[1:03:51]
um with the deep grind layer.
[1:03:53]
>> Yeah,
[1:03:54]
>> not to my knowledge.
[1:03:56]
>> I think that
[1:03:58]
that's putting up that schematic
[1:04:01]
use.
[1:04:09]
» Yeah, maybe not not so useful, but we we have we we have kind of a deep
[1:04:14]
[clears throat] pool where our uplooker
[1:04:15]
is right right now. Um I don't know.
[1:04:20]
Let's let's just do the monitoring and
[1:04:22]
see how it holds out. Yeah.
[1:04:25]
>> Curiosity.
[1:04:26]
>> Yeah.
[1:04:30]
So I think one of the I think one of the
[1:04:32]
hopes or things that we had talked about
[1:04:35]
was
[1:04:36]
that we saw this decline in nitrogen
[1:04:39]
flux to the south arm that if we were
[1:04:43]
able to lower the burm and open that
[1:04:45]
breach up, we could get reestablish the
[1:04:47]
birectional flow hopefully get to a net
[1:04:50]
zero salt flux. But um the big question
[1:04:56]
is going to be just the nitrogen flux.
[1:04:59]
We're getting more nitrogen now coming
[1:05:01]
from the north arm, but are we exporting
[1:05:04]
nitrogen?
[1:05:06]
Does that offset the birectional flow?
[1:05:10]
>> Yep.
[1:05:10]
>> We don't know.
[1:05:13]
>> I guess historically when we had
[1:05:15]
birectional flow, the nitrogen
[1:05:18]
was okay, right? So, so maybe
[1:05:25]
» it was maintained at certain levels.
[1:05:26]
Yeah. And it as we know the breach is
[1:05:29]
the largest source of nitrogen and
[1:05:31]
phosphorus to the south farm. So,
[1:05:36]
» fantastic. Any other questions or
[1:05:38]
comments on that? Thank you.
[1:05:42]
>> Takes a lot of wizardry.
[1:05:45]
>> Yeah. And if there I if there are more
[1:05:48]
um if there are specific questions or
[1:05:50]
specific scenarios I think we could we
[1:05:52]
could tackle it you know just need a
[1:05:54]
little more just probably some time um
[1:05:56]
to chew on things but if if any of this
[1:05:59]
if you like any of it in more depth I
[1:06:01]
think it's possible and we can learn a
[1:06:02]
lot.
[1:06:05]
» Great.
[1:06:07]
Thank you. Um Craig I don't want to mean
[1:06:10]
to put you on the spot but I know you
[1:06:12]
you've been working with Psalm and state
[1:06:16]
on just the hydraulic modeling. Do you
[1:06:19]
want to speak to that or do you want to
[1:06:21]
we can do it next time too?
[1:06:23]
>> We're we're still developing things.
[1:06:26]
It's getting closer. I I I'm hoping that
[1:06:30]
the time will come when regardless of
[1:06:33]
the salinity difference, regardless of
[1:06:35]
the elevation of of the burm, we'll have
[1:06:39]
a more reliable way of quickly
[1:06:43]
estimating the flows through the the
[1:06:45]
bridge, but I I don't have anything for
[1:06:48]
you right now. Okay. We're looking
[1:06:51]
forward to it. USGS is is telling us
[1:06:54]
that soon they'll have additional data
[1:06:56]
for us and they told us that a couple of
[1:06:58]
months ago and uh we're we're still
[1:07:01]
looking forward to some additional data
[1:07:03]
to help us with that.
[1:07:04]
>> Yeah, once once again uh we're kind of
[1:07:07]
holding the show up a little bit. Um
[1:07:09]
this has this gets to the uncertainty um
[1:07:12]
in in the build measurements
[1:07:14]
particularly the the north to south. Um
[1:07:16]
but also we've been doing a lot of work
[1:07:19]
um Andy and Mike Freeman on developing
[1:07:22]
an index velocity rating for both flow
[1:07:24]
directions. And so that's just that's a
[1:07:26]
standard you know way USGS
[1:07:29]
uh will develop um discharge ratings for for gauges that are unusual or you
[1:07:36]
can't get by with a simple stage
[1:07:37]
discharge rating. So these guys have
[1:07:39]
been working really hard on this and um
[1:07:44]
we're getting close. Um but the the um
[1:07:48]
the field measurements of discharge uh
[1:07:51]
the uncertainty there that that's
[1:07:52]
something we want to um
[1:07:55]
make sure we completely understand
[1:07:56]
before we lay out our progress on index
[1:07:59]
velocity uh ratings because everything's
[1:08:03]
sort of based on the field measurements
[1:08:05]
of discharge. So, SAS is about ready to
[1:08:08]
finish up her work on this uh another
[1:08:11]
week or so and uh
[1:08:15]
and her dissertation won't be done for
[1:08:17]
another two years. So, we'll we'll have
[1:08:20]
I suspect we'll have her back again next
[1:08:22]
summer and kind of complete this with
[1:08:25]
the uh wonderful data that you will be
[1:08:27]
providing us and we look forward to
[1:08:30]
that.
[1:08:32]
>> Fantastic.
[1:08:33]
>> All right,
[1:08:34]
>> that's about it. Okay. Well, thank you.
[1:08:38]
So, I I think that was I mean I have one
[1:08:43]
more thing on the agenda was just to
[1:08:45]
discuss the salinity management
[1:08:47]
framework or the [snorts] guide on the
[1:08:49]
plan and that's been I don't know what
[1:08:53]
direction if you know I don't know that
[1:08:56]
anybody's reading that again and again. Um but that's still on the
[1:09:02]
agenda. um in terms of things that we're
[1:09:06]
working on as a committee um and I think
[1:09:10]
the la the last change was made um in
[1:09:13]
April and mostly was just to make sure
[1:09:15]
that it was flexible for such issues
[1:09:17]
like nitrogen
[1:09:19]
um you know that that that it wasn't too
[1:09:23]
prescriptive that we would be able to
[1:09:25]
adapt for things like that that come up
[1:09:29]
um but I think what we want to try to do
[1:09:33]
is um we want to be able to reference it
[1:09:35]
in the CMP and and as a as a I guess
[1:09:39]
another document that that the CMP is um
[1:09:44]
can rely upon. So we'd love to get it
[1:09:47]
finalized and is that Ben do you think
[1:09:50]
that's something we can move forward
[1:09:52]
with? You want to move forward?
[1:09:54]
I mean, I'm comfortable with it, but I
[1:09:56]
think uh you know, I think ideally we
[1:09:58]
probably need to nudge people before the
[1:10:00]
meeting, give them a reminder that we're
[1:10:02]
going to, you know, tell that
[1:10:05]
just knowing how busy everybody is. I
[1:10:06]
would imagine not a lot of people were
[1:10:08]
looking at it right before this meeting.
[1:10:09]
So maybe it's something that we, you
[1:10:12]
know, unless someone feels strongly
[1:10:14]
maybe we table this till the next
[1:10:16]
meeting and then a week or so before the
[1:10:18]
meeting we remind people that they need
[1:10:19]
to pop in and provide any final comments
[1:10:23]
or concerns
[1:10:25]
unless anybody uh is ready to roll.
[1:10:30]
Sounds like we should just wait.
[1:10:32]
>> Yep, let's do that.
[1:10:33]
>> Okay,
[1:10:34]
great. Well, I I think then all that's
[1:10:37]
left is to schedule our next meeting. Um
[1:10:40]
I think the you know, if we go by our
[1:10:43]
typical pattern, it would be Thursday,
[1:10:46]
October 22nd.
[1:10:49]
Um unless you want to meet before then.
[1:10:52]
>> I suggest we meet before them just
[1:10:53]
because it's I think there's a crucial
[1:10:55]
time period in October that we need to
[1:10:58]
decide if we're going to you know raise
[1:11:01]
the BM. That would be probably at least
[1:11:03]
one of the decision points is whether we
[1:11:05]
do it at the end of October as Christine
[1:11:07]
kind of model or if we're waiting and I
[1:11:10]
think we're going to need a little bit
[1:11:11]
of be time to figure out if we're going
[1:11:14]
to get a freebie again or we're going to
[1:11:15]
have to contract it or how that'll pan
[1:11:17]
out.
[1:11:20]
So um so September probably in a month
[1:11:24]
from now
[1:11:24]
>> maybe
[1:11:26]
is there like any um sampling dates that
[1:11:29]
correspond where we could you know get
[1:11:31]
the most fresh recent data that we could
[1:11:35]
say you know let's meet this many days
[1:11:37]
after that gives you a chance to do your
[1:11:39]
modeling so we're not like
[1:11:41]
>> for the south
[1:11:42]
>> yeah I mean like this time we're looking
[1:11:43]
at June 22nd is there a time frame so we
[1:11:45]
could be like a little further along and
[1:11:46]
get a little more
[1:11:48]
>> recent I know Gle was trying to get out
[1:11:50]
last week. It really I [clears throat]
[1:11:52]
mean it was wind. They couldn't get out
[1:11:53]
and get samples. So
[1:11:55]
>> yeah, I can try to work with Kyle to see
[1:11:57]
when um we we don't know their sampling
[1:12:01]
schedule. So we kind of just respond
[1:12:02]
once they give us the samples, but I can
[1:12:05]
try to So no, at this time I don't have
[1:12:07]
the samples.
[1:12:08]
>> I was just going to say if if like it'd
[1:12:10]
be really nice to have the most recent
[1:12:12]
stuff so we make a decision or
[1:12:14]
recommendations pretty fresh. But I
[1:12:16]
would I would suggest it's somewhere
[1:12:17]
like that first week of October. I think
[1:12:19]
that would be a you know good time frame
[1:12:21]
and we would know what we do or maybe
[1:12:23]
last week of September at the earliest
[1:12:27]
>> they try to go out we'll say G tries
[1:12:29]
correct me if I'm wrong but they try to
[1:12:31]
go out at the first of the month. So 1
[1:12:33]
of October if Gle goes out that week
[1:12:35]
that won't give us enough time to look
[1:12:36]
at the data. So maybe second week of
[1:12:38]
October um would be good.
[1:12:42]
Just looking at October 8th. Um
[1:12:46]
October 1st is the first Thursday.
[1:12:49]
October 8th is the actually the first
[1:12:51]
week. So maybe that might not be enough
[1:12:53]
time.
[1:12:58]
» This is Kyle. I can chime in on this if
[1:13:00]
you guys want.
[1:13:02]
>> Yeah, that'd be great.
[1:13:03]
>> Yeah. So we just try to keep our
[1:13:06]
nutrient sampling once a month and in
[1:13:09]
that kind of four-w week time span. If
[1:13:13]
we need to sample the last week of
[1:13:15]
September so that we can have a meeting
[1:13:16]
in the first week of October, we can put
[1:13:18]
that on the calendar now and just sample
[1:13:21]
a little earlier and that would be fine
[1:13:23]
with us.
[1:13:26]
» I think Thursday the 8th sounds good.
[1:13:28]
that gives maybe enough time that works
[1:13:30]
for me.
[1:13:33]
>> So, and then I guess does the we
[1:13:37]
historically we met at 10:00 in the
[1:13:39]
morning till noon and today we're at
[1:13:42]
1:00. Um does 10 still work in the
[1:13:46]
morning work better?
[1:13:48]
>> Okay, we'll plan on 10 10 to 12 on the
[1:13:53]
8th then.
[1:13:56]
So then I guess in terms of agenda
[1:13:58]
items, we'll just have our updates on it
[1:14:01]
and we'll just be thinking about whether
[1:14:05]
we need to make adjustments to the BM
[1:14:08]
and and how much
[1:14:09]
>> we calendar the solenity management plan
[1:14:13]
and make sure we send out like a
[1:14:15]
>> yeah update I'll send
[1:14:18]
a reminder the night before maybe two
[1:14:20]
hours before as well. [laughter]
[1:14:25]
Do you want us to kind of dig into these
[1:14:27]
calculations a bit more of trying to
[1:14:29]
predict what fluxes might be or what
[1:14:32]
might be at the breach? Can we can we
[1:14:34]
give you I mean do you how far in
[1:14:35]
advance do you need to know like what we
[1:14:38]
want to model what
[1:14:40]
>> I mean honestly for something like this
[1:14:43]
probably like three weeks
[1:14:46]
>> something like
[1:15:01]
Great. Well, if there isn't anything
[1:15:04]
else, entertain a motion to adjourn.
[1:15:06]
>> Actually, weren't you going to discuss
[1:15:10]
the comp?
[1:15:10]
>> Oh, the membership. Yes. Thank you. Um,
[1:15:14]
I did update. So, in in the agenda that
[1:15:18]
I sent out, um, we had,
[1:15:23]
um, some changes that we talked about
[1:15:25]
last time and
[1:15:31]
There we go. Um,
[1:15:36]
and so the changes that we had talked
[1:15:37]
about, uh, Bonnie had pointed out that
[1:15:39]
what we have on online still says
[1:15:41]
Westminster College. So, we'll update
[1:15:43]
that. And then um Paul Juel had asked to
[1:15:49]
be to withdraw as a um alternate and
[1:15:53]
then we had a switch between Andrew and
[1:15:56]
Elliott in terms of their roles on the
[1:15:58]
committee and then um then Ryan Dhy was
[1:16:02]
going to be our member with Travis our
[1:16:06]
alternate for our mineral traction.
[1:16:09]
>> Did that work out between
[1:16:11]
>> you guys?
[1:16:13]
Um, and then I think we want to follow
[1:16:16]
up. Um, see if we if there's another
[1:16:20]
university representative we could add
[1:16:22]
to the committee as well.
[1:16:24]
>> Hey Jeff, u we were going to I was going
[1:16:26]
to take this offline, but since you're
[1:16:28]
discussing it, we're going to suggest if
[1:16:30]
Phil Brown could become my alternate
[1:16:32]
rather than Tim Hawks.
[1:16:34]
>> Okay.
[1:16:34]
>> Yeah,
[1:16:37]
for sure. I was actually wondering about
[1:16:39]
that. Phil's here every time. So, um,
[1:16:43]
>> and then you and Kyle. Okay.
[1:16:47]
>> I had that and then I went back to the
[1:16:49]
notes and I didn't see it that we talked
[1:16:52]
about it, but we must have talked about
[1:16:53]
it afterwards.
[1:16:54]
>> We talked about it in an email
[1:16:55]
afterwards.
[1:16:56]
>> Will you be Kyle's alter?
[1:16:58]
>> Yeah,
[1:17:00]
you have to have an IQ to write this,
[1:17:02]
right? I don't know why.
[1:17:07]
So I I think the way our our charter is
[1:17:10]
we just as a committee we make
[1:17:11]
recommendations for changes and then
[1:17:15]
the divisions make the final decisions
[1:17:17]
on that. But I think I would um
[1:17:20]
entertain a motion. Let's change this to
[1:17:26]
I'm assuming Kyle's more than happy to
[1:17:28]
serve in that role.
[1:17:31]
And
[1:17:31]
>> that is correct.
[1:17:33]
[laughter]
[1:17:35]
>> Thanks Kyle. And then if you can make
[1:17:36]
that change for too.
[1:17:38]
>> Oh yes.
[1:17:45]
» So make those changes and I entertain a
[1:17:48]
motion to make that recommendation of
[1:17:51]
these changes.
[1:17:54]
>> So move.
[1:17:55]
>> Thanks. Second.
[1:17:56]
>> All right. Thanks. Would you please
[1:17:58]
remind me what the role of the Great
[1:18:00]
Salt Lake Commissioner is with the
[1:18:04]
salinity advisory committee or how if
[1:18:08]
when kind of
[1:18:12]
>> That's a great question. [laughter]
[1:18:14]
I'll take that one. Uh so when we are
[1:18:18]
making recommendations to modify the BM
[1:18:20]
there the commissioner plays a role in
[1:18:21]
that. So they we inform the commissioner
[1:18:25]
who has ties into the senate and the you
[1:18:28]
know the house and the governor. So all
[1:18:30]
of those folks are notified and
[1:18:32]
understand what's happening because this
[1:18:34]
has become a very important issue. One
[1:18:36]
of the you know
[1:18:38]
I guess one of the things that's moved
[1:18:40]
the needle a lot on how we manage the
[1:18:42]
lake. So, they're very interested, but
[1:18:44]
um but that is they've historically
[1:18:47]
they're invited to come join, but we
[1:18:49]
we've talked about having them on as a
[1:18:51]
member and I think they prefer the role
[1:18:53]
of being in the seat of like we don't
[1:18:55]
vote our position as water quality and I
[1:18:57]
think they like the arrangement,
[1:18:59]
>> right?
[1:19:00]
>> At least when Brian was there. So, we
[1:19:02]
can revisit with that that with Hannah
[1:19:03]
and ask her if she's interested in
[1:19:06]
participating as a book member, but I
[1:19:08]
anticipate she'll have the same time
[1:19:10]
constraints that Brian did. Sure. Yeah.
[1:19:13]
But that's a that's a perfect
[1:19:15]
transitional communication.
[1:19:17]
>> Yeah. I think it works well. It gives
[1:19:18]
the you know since she or you know Brian
[1:19:21]
was there they have that in and it helps
[1:19:24]
us to make sure we have all those
[1:19:25]
necessary communications. So I think it
[1:19:27]
works out pretty well.
[1:19:28]
>> But it's it's still water quality and
[1:19:32]
forestry fire and state lands that
[1:19:34]
approve that recommendation and then you
[1:19:37]
communicate it
[1:19:38]
>> the commissioner. How does that work?
[1:19:40]
It's a consultation.
[1:19:41]
>> Who decides?
[1:19:41]
>> So I I call up like, "Hey yo, Brian,
[1:19:45]
here's here's what we're thinking."
[1:19:46]
>> Exactly.
[1:19:46]
>> You know, but no, it's it's just a it's
[1:19:48]
a consultation and typically between
[1:19:50]
>> the three of you.
[1:19:52]
>> Um yeah, like when with this one, we met
[1:19:54]
with uh water quality and we had a
[1:19:58]
discussion and then uh sat down with the
[1:20:00]
commissioner at the time. And this was
[1:20:02]
kind of in a weird time where there was
[1:20:03]
a transition going on, but we met with
[1:20:05]
the [snorts] commissioner and said,
[1:20:06]
"Here's what we're planning to do. do
[1:20:08]
you have any issues or you know any
[1:20:10]
comment explained it
[1:20:12]
>> and then you know the rest of it
[1:20:14]
happened organically but uh I think you
[1:20:17]
know ideally ideally they have someone
[1:20:20]
from the commissioner's office here
[1:20:21]
that's able to report out on each of
[1:20:23]
these and so that's the intend to have
[1:20:25]
them involved in here but and we'll work
[1:20:28]
on trying to get someone here whether
[1:20:31]
it's Anna or one of her folks I'm sure
[1:20:33]
she'll hire a deputy at some point that
[1:20:35]
can help so
[1:20:36]
>> PS Ben I I'm here.
[1:20:38]
>> Oh, there's Hannah. Awesome.
[1:20:42]
>> Sorry, I had a meeting run long and I
[1:20:44]
didn't want to disrupt the inerson
[1:20:45]
meeting, but I joined. And uh I I would
[1:20:48]
just add like I appreciate the
[1:20:50]
communication that we've had. Um you all
[1:20:53]
are certainly the experts on this and so
[1:20:55]
I appreciate um Ben's done a really good
[1:20:57]
job looping me in and I've been trying
[1:20:59]
uh to be a more regular presence at your
[1:21:01]
meetings and to be in the loop as these
[1:21:03]
decisions are made and so I'm happy to
[1:21:05]
remain in that role. I don't think that
[1:21:07]
I need a voting role. Um I just like to
[1:21:10]
be advisory and and know what's going on
[1:21:12]
so I can speak um well to the subject.
[1:21:16]
>> And I' I'd also just add one other
[1:21:18]
thing. You know, the commissioner's
[1:21:19]
office has the ability to, you know,
[1:21:22]
tell any division to do something or not
[1:21:24]
do something. And so I think it's also
[1:21:26]
important that, you know, they maintain
[1:21:28]
that ability. We've never run into a
[1:21:29]
situation yet where we've had to where I
[1:21:31]
think they've had to use that power. But
[1:21:33]
I think that that gives them an option
[1:21:34]
if they're not in a voting capacity here
[1:21:36]
to be able to, you know, exercise that
[1:21:38]
role as well. So I think it's a good
[1:21:40]
set.
[1:21:41]
>> Is that within the DNR or across the
[1:21:44]
state?
[1:21:45]
>> I don't have to answer that, but the the
[1:21:47]
code originally I think was it excluded
[1:21:49]
certain agencies, but I think was you
[1:21:51]
know obviously relation
[1:21:53]
they have some authority that
[1:21:56]
>> Yeah. The legislation just reads state
[1:21:58]
agencies.
[1:22:03]
I don't know. Hannah Hannah told me I
[1:22:06]
need to rip out all my grass, so I did
[1:22:07]
it. [laughter]
[1:22:12]
[clears throat]
[1:22:14]
>> That's beautiful.
[1:22:16]
>> Thanks, Hannah. Um, Ben. Um, so I think
[1:22:20]
we had a motion on the table and just um
[1:22:23]
all those in favor of of the motion to
[1:22:27]
make these recommended committee changes
[1:22:30]
say I.
[1:22:32]
>> Any opposed?
[1:22:35]
No. All right. I'll pass unanimously.
[1:22:37]
So, we'll um I'll get this over to where
[1:22:40]
she fire and say lands and they can
[1:22:43]
approve it and we'll update the website
[1:22:46]
with this updated list. So,
[1:22:49]
>> so that does leave one that we should
[1:22:51]
talk about at some point again which is
[1:22:52]
another university
[1:22:55]
position and I think if I remember
[1:22:58]
correctly Brian Krookton had some
[1:23:00]
interest but maybe some capacity
[1:23:02]
limitations like coming in person and I
[1:23:04]
think you know I think our charter now
[1:23:06]
says that we prefer folks to be here you
[1:23:08]
know in person participating
[1:23:11]
so we should discuss you know if there's
[1:23:13]
any holes in our you know expertise or I
[1:23:16]
guess our
[1:23:17]
committee on work that we would like to
[1:23:19]
fill. So maybe save that agenda if we
[1:23:22]
need to.
[1:23:23]
>> Yeah, I know there were I think in the
[1:23:26]
May meeting um there were
[1:23:30]
that's not not scrolling for me. Um
[1:23:33]
there we go. There were several names
[1:23:36]
that were brought up. Um
[1:23:39]
Michael Warner, Brian Krookton, and
[1:23:41]
David Tarbotton. Um,
[1:23:44]
and Brian and David, I don't know,
[1:23:46]
Michael.
[1:23:48]
Um, but Brian and David certainly bring
[1:23:51]
that hydraology, hydraulics component of
[1:23:54]
it.
[1:23:56]
So,
[1:23:57]
>> maybe I can just reach out again and
[1:23:59]
just find out from them. Last time I
[1:24:01]
talked to Brian, he seemed willing to do
[1:24:03]
that, but find out from them if they
[1:24:05]
have the capacity.
[1:24:06]
>> Yeah. Great. Great.
[1:24:09]
>> All right. Well, anything else? If not,
[1:24:12]
Oh yes, maybe this is silly, but it's
[1:24:15]
never been explicitly told me
[1:24:17]
alternative.
[1:24:21]
» What's my role?
[1:24:24]
>> You hear her when she's not here. So you
[1:24:26]
can go
[1:24:28]
>> and you should sit at the table next.
[1:24:32]
You got to have a cookie. Sit at the
[1:24:34]
table. Bonnie usually brings two
[1:24:36]
requirements.
[1:24:38]
>> It's actually
[1:24:41]
cookies.
[1:24:42]
>> I usually
[1:24:44]
[laughter]
[1:24:44]
>> I didn't bring much, but I did bring a
[1:24:46]
sticker,
[1:24:49]
» but that's good to know. It was just
[1:24:51]
never explicitly. [clears throat]
[1:24:54]
Yeah, I think we hope that the if the
[1:24:57]
member is not here that the alternate
[1:24:59]
would be here and then the alternate can
[1:25:01]
communicate what was discussed back and
[1:25:05]
um and then the alternate would also be
[1:25:09]
voter if we needed to vote on anything
[1:25:11]
at that meeting. So glad you're here.
[1:25:16]
So all right well I think that is all.
[1:25:20]
We will adjourn.
[1:25:23]
Thanks everybody. You'll see October
[1:25:24]
8th.