1 Acknowledgements
2
3 The completion of this work in large part can be attributed to the efforts of the
4 U.S. Fish and Wildlife Service Arcata Field Office staff and in particular to Mr.
5 Thomas Shaw for providing much of the supporting site-specific field data,
6 habitat mapping, and fisheries data used in the analyses. The efforts of the
7 various Tribal fisheries personnel were critical in supplying additional fisheries
8 collection data, and intensive site substrate and cover mapping. In particular, the
9 efforts of Tim Hayden, Charlie Chamberlain and Mike Belchik. USGS personnel
10 from the Midcontinent Ecological Science Center also provided valuable
11 assistance and field data used in the cross section based hydraulic and habitat
12 modeling. Mr. Gary Smith and Mike Rode of the California Department of Fish
13 and Game also provided critical information on site-specific habitat suitability
14 criteria and conceptual foundations for the escape cover analysis used in the
15 habitat simulations. Much of this work was also supported by work of Tim
16 Harden (Harden and Associates). The Bureau of Reclamation also provided
17 valuable input during the Phase II study process on Klamath Project operations.
18 A special thanks is also given to Mr. Mike Deas (U.C. Davis) for providing water
19 temperature simulations below Iron Gate Dam. The Technical Team also
20 provided critical input and review of all technical elements of this work as well as
21 providing reviews of the report. Finally, the completion of this work would not
22 have been possible without the tireless efforts of Jennifer Ludlow, Mark
23 Winkelaar, James Shoemaker, Shannon Clemens, Jerilyn Brunson, William
24 Bradford, Sarah Blake, Brandy Blank, Matt Combes, Leon Basdekas, and Aaron
25 Hardy at the Institute for Natural Systems Engineering, Utah State University.
26
27 Executive Summary
28
29 Previous instream flow recommendations developed as part of Phase I (Hardy,
30 1999) recommended interim instream flows in the main stem Klamath River
31 based on analyses of hydrology data. At that time, site-specific data suitable for
32 analysis and evaluation using habitat based modeling were not available. This
33 report details the analytical approach and modeling results from site-specific
34 studies conducted within the main stem Klamath River below Iron Gate Dam
35 downstream to the estuary. Study results are utilized to make revised interim
36 instream flow recommendations necessary to protect the aquatic resources
37 within the main stem Klamath River between Iron Gate and the estuary. This
38 report also makes specific recommendations for future research needs as part of
39 the on-going strategic instream flow studies being undertaken by the U.S. Fish
40 and Wildlife Service and collaborating private, local, state, federal, and tribal
41 entities.
42
43 This report was developed for the Department of the Interior (DOI) who provided
44 access to a technical review team composed of representatives of the U.S. Fish
45 and Wildlife Service, Bureau of Reclamation, Bureau of Indian Affairs, U.S.
46 Geological Survey, and the National Marine Fisheries Service. The technical
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1 review team also included participation by the Yurok, Hoopa Valley, and Karuk
2 Tribes given the Departments trust responsibilities and the California Department
3 of Fish and Game as the state level resource management agency. The
4 technical review team provided invaluable assistance in the review of methods
5 and results used in the analysis, provided comments on draft sections of the
6 report, and provided data and supporting material for use in completion of the
7 Phase II report. In addition, several agencies and private individuals provided
8 written comments on the Preliminary Draft Report, which have been addressed in
9 this report where appropriate.
10
11 This report is organized to follow the general process used to implement the
12 technical studies. It first provides important background information on the
13 historical and current conditions of the anadromous species, highlights factors
14 that have contributed to their decline, provides an overview of the Phase I study
15 process and its principal findings. The report then continues with a description of
16 the Phase II technical study process. Key sections address methods and
17 findings for each technical component such as study design, study site selection,
18 field methods, analytical approaches, summary results, and recommended
19 instream flows.
20
21 The Phase II study relied on state-of-the-art field data collection methodologies
22 and modeling of physical habitat for target species and life stages of anadromous
23 fish. The field methods were directed toward achieving a three-dimensional
24 representation of each study site that incorporated between 0.6 to over one mile
25 of river depending on the specific study site. At each study site, a spatially
26 explicit substrate and vegetation map was developed and then integrated with
27 the three-dimensional channel topography in GIS. Fieldwork also involved
28 collection of hydraulic calibration data and fish observation data. The later
29 information was used in the development of habitat suitability criteria, conceptual
30 habitat model development and implementation, and habitat model validation
31 efforts.
32
33 Hydrology in the main stem Klamath River below Iron Gate Dam was estimated
34 differently for different purposes in Phase II. For example, we used simulated
35 unimpaired inflows (i.e., no depletions) to Upper Klamath Lake routed to Iron
36 Gate Dam with no Klamath Project imposed water demands. This simulated
37 scenario represents the best available estimates of the unimpaired flows below
38 Iron Gate Dam for the purposes of this study. The remaining flow scenarios
39 included the use of Upper Klamath Lake net inflows, historical Klamath Project
40 water demands, and the USFWS Biological Opinion (2000) target Upper Klamath
41 Lake water elevations. These scenarios represent different potential operational
42 flow scenarios as points of reference to the instream flow recommendations
43 developed as part of Phase II. Differences between these simulated flow
44 scenarios required the use of different models and/or modeling assumptions.
45 The assumptions and modeling tools are described in the appropriate technical
46 sections of the report. The estimated hydrology at each study site was used in
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1 both the physical habitat modeling and temperature simulations using the USGS
2 Systems Impact Assessment Model (SIAM) or its components.
3
4 Physical habitat modeling at each study site relied on two-dimensional hydraulic
5 simulations that were coupled to three-dimensional habitat models. The
6 analytical form of the habitat models varied for spawning, fry, and 'juveniles' (i.e.,
7 pre-smolts). These modeling results were compared to available 1-dimensional
8 cross section based hydraulic and habitat modeling at study sites that overlapped
9 between existing USFWS/USGS and Phase II studies.
10
11 Habitat suitability criteria for target species and life stages of anadromous fish
12 were developed from site-specific data for Chinook spawning, Chinook fry, and
13 steelhead 1+. These curves were validated both by field observations using the
14 habitat modeling results as well as by comparison to results from an individual
15 based bioenergetics model for drift feeding salmonids developed at USU. A
16 separate procedure was developed to obtain habitat suitability curves for Chinook
17 juvenile (i.e., pre-smolts), steelhead fry, and coho fry based on available
18 literature data. This approach used a systematic process to construct an
19 'envelope' habitat suitability curve that encompassed the available literature
20 curves. The overall process included a validation component that compared the
21 habitat versus discharge relationships between envelope curves to the site-
22 specific curves for Chinook spawning, Chinook fry, and steelhead 1+. The results
23 validated the use of the envelope curves for use as interim criteria pending
24 further research and development of site-specific curves for these species and
25 life stages within the Klamath River.
26
27 Habitat modeling involved the integration of substrate and cover mapping with
28 the three-dimensional topography and hydraulic properties at each study site with
29 the habitat suitability curves. Habitat modeling was undertaken for Chinook
30 spawning, fry, and juveniles, coho fry and juveniles, and steelhead fry and
31 steelhead 1+. Different habitat models were developed for spawning, fry, and
32 juveniles. The study generated a salmonid fry habitat model that incorporated a
33 distance to escape cover that also required sufficient depth within the escape
34 cover in order for it to be utilized at a given flow rate. This model also
35 incorporated quantitative differences in the type of escape cover.
36
37 The habitat modeling results for each species and life stage were validated
38 against the spatial distribution of each species and life stage surveyed at study
39 sites at different flow rates. These results generally demonstrated that the
40 integrated habitat modeling was validated for the study in terms of spawning and
41 fry life stages. Our assessment of the pre-smolt or juvenile life stage results is
42 that they are consistent for the existing habitat model assumptions. However, we
43 discuss what we perceive to be inherent biases in these results (juveniles) based
44 on the existing habitat model structure and make specific recommendations of
45 what additional work would likely improve the results for this particular life stage.
46
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1 Temperature simulations based on the unimpaired flow regime below Iron Gate
2 Dam were conducted with HEC5Q as part of the SIAM applications. These
3 results supported the findings in Phase I that flows lower than ~ 1000 cfs during
4 the late summer would likely increase the environmental risk to anadromous
5 species due to almost continual exposure to chronic temperature thresholds. We
6 believe that these simulation results show that there is very little flexibility for
7 reservoir operations at Iron Gate Dam to mitigate deleterious flow dependent
8 temperature effects. This finding has previously been reported by the USGS
9 (Bartholow 1995) and Deas (1999).
10
11 The integration of the habitat modeling with the unimpaired hydrology was used
12 to develop habitat reference values for target species and life stages at each
13 study reach on a monthly basis for flow exceedence ranges between 10 and 90
14 percent. The reference habitat value was computed as the percent of maximum
15 habitat associated with the unimpaired flow values for each species and life
16 stage on a monthly basis. This reference habitat value was used as one 'target'
17 condition to guide the selection of monthly flow recommendations at a given
18 exceedence flow level.
19
20 The flow recommendation process also employed a prioritization of species and
21 life stages to be considered within the year and/or within a specific month. The
22 prioritization of life stages was taken from the life history sequence of
23 anadromous species (i.e., spawning, fry, and then juveniles). The initial priority
24 order for species was defined as Chinook, then coho, and finally steelhead. It is
25 stressed that this initial prioritization was used to conceptually simplify the flow
26 recommendation process only, and that all species and life stages were
27 examined as part of the overall analysis. The process then relied on an iterative
28 procedure to select target flows for each month at a given exceedence level.
29 This procedure attempted to pick a target flow that would simultaneously
30 preserve the underlying characteristics of the seasonal unimpaired hydrograph at
31 that exceedence flow, the underlying relationship of the unimpaired hydrograph
32 between all exceedence flow levels, while striving to maximize habitat for the
33 priority species and life stages relative to the unimpaired habitat reference
34 conditions. The corresponding monthly flow rates at each exceedence level
35 were then used to compute the percent of maximum habitat for all other species
36 and life stages in a given month. These values were then compared to their
37 respective unimpaired habitat values to ensure that adequate protection of
38 habitat for non-priority species and life stages remained reasonable.
39
40 The flow recommendations developed in the Iron Gate to Shasta River Reach
41 were 'propagated' downstream to each successive reach by addition of the reach
42 gains as presently defined by the USGS in their MODSIM module of SIAM. It is
43 recognized that these reach gains reflect existing depletions in tributary systems
44 (e.g., Shasta and Scott Rivers) but are the only estimates presently available for
45 use in the simulation models for the system. The flow recommendations for each
46 river reach were then used to compute the percent of maximum habitat on a
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1 monthly basis for each species and life stage. The recommended flow based
2 calculation of percent of maximum habitat for each species and life stage was
3 then compared against the associated unimpaired flow based habitat values.
4
5 Although flow recommendations were developed for the 10 to 90 percent
6 exceedence range (i.e., nine water year types), five water year types were
7 identified representing Critically Dry, Dry, Average, Wet, and Extremely Wet
8 inflow conditions for Upper Klamath Lake. These water year classifications
9 parallel those developed for the Trinity River and were used as operational
10 definitions in the Phase I report. Furthermore, the USBR KPSIM model was
11 modified to use this five-water year type format for simulating operations under
12 different instream flow requirements below Iron Gate Dam. The 90, 70, 50, 30,
13 and 10 percent exceedence flow levels were assigned to each of these water
14 year types, respectively (i.e., critically dry to extremely wet). This assignment
15 was used to demonstrate several key points regarding the use of
16 recommendations at this level of resolution (i.e., five water year types) and how
17 the existing operational models for the Klamath Project simulate flow scenarios.
18
19 These five water year type dependent recommendations were utilized in the U.S.
20 Bureau of Reclamation's Klamath Project Simulation Module (KPSIM) to simulate
21 project operations over the 1961 to 1997 period of record. This analysis
22 confirmed that the project could be operated to achieve these recommendations
23 in all but 19 of the 468 simulated months in this period of record. These results
24 also highlighted that an alternative water year 'classification' strategy for
25 specifying instream flows should be considered in lieu of a five water year type
26 scheme. We provide a specific recommendation of how this could be
27 approached based on the instream flow recommendations developed in Phase II.
28
29 30
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"Prepared for: U.S. Department of the Interior."; "November 2001."; "Cover title."; Includes bibliographical references (p. 265-279)
"Prepared for: U.S. Department of the Interior."; "November 2001."; "Cover title."; Includes bibliographical references (p. 265-279)