Institutional Framework for Modeling Water Availability and Allocation
Abstract
:1. Introduction
2. Water Resources Planning, Allocation, and Management in Texas
3. Water Rights Analysis Package (WRAP) and Water Availability Modeling (WAM) System
3.1. Evolution of the WRAP Modeling System
3.2. Texas Water Availability Modeling (WAM) System
4. Modeling and Analysis Methodologies
- WinWRAP is a user interface for managing programs and data files within Microsoft Windows.
- Development of Hydrology Input Data for the Simulation Model:
- Program HYD described by the Hydrology Manual [4] develops and updates SIM input files of monthly naturalized stream flows and reservoir net evaporation-precipitation rates.
- Program DAY documented by the Daily Manual [5] is used to calibrate routing parameters and otherwise compile daily hydrology input data for SIMD.
- The Hydrologic Engineering Center (HEC) Data Storage System Visual Utility Engine (DSS-Vue) [38] is used to compile, analyze, and manage times series datasets.
- Simulation of the River/Reservoir Water Management/Allocation/Use System:
- Tracking Salinity through the River/Reservoir System:
- Post-Simulation Analyses of Simulation Results:
- HEC-DSSVue [38] reads HYD, SIM, SIMD, TABLES, and SALT DSS input and output files containing time series of hydrology input or simulation results, prepares plots, and performs mathematical and statistical analyses and other data management functions.
4.1. SIM and SIMD Simulation Models
4.2. Water Availability and Supply Reliability Metrics
5. Brazos River Basin and Brazos Water Availability Model (WAM)
5.1. Brazos River Basin and Adjoining Brazos-San Jacinto Coastal Basin
5.2. Water Management in the Brazos River Basin and Adjoining Coastal Basin
5.3. Water Availability Model (WAM) for the Brazos River Basin and Adjoining Coastal Basin
5.4. Simulation Results
6. Hydrologic and Institutional Aspects of Water Management and Modeling Thereof
6.1. Hydrologic Variability and Stationarity
6.2. Water Management Community
6.3. Water Allocation
6.4. Reservoir System Operations
6.5. Major Limitations of the Modeling System
7. Conclusions
Funding
Acknowledgments
Conflicts of Interest
References
- Wurbs, R.A. Water Rights Analysis Package Modeling System Reference Manual, 12th ed.; Technical Report (TR) 255; Texas Water Resources Institute: College Station, TX, USA, 2019; 462p, Available online: https://twri.tamu.edu/publications/technical-reports/2019-technical-reports/tr-255/ (accessed on 1 October 2020).
- Wurbs, R.A. Water Rights Analysis Package Modeling System Users Manual, 12th ed.; TR-256; Texas Water Resources Institute: College Station, TX, USA, 2019; 272p, Available online: https://twri.tamu.edu/publications/technical-reports/2019-technical-reports/tr-256/ (accessed on 1 October 2020).
- Wurbs, R.A. Fundamentals of Water Availability Modeling with WRAP, 9th ed.; TR-283; Texas Water Resources Institute: College Station, TX, USA, 2019; 114p, Available online: https://twri.tamu.edu/publications/technical-reports/2019-technical-reports/tr-283/ (accessed on 1 October 2020).
- Wurbs, R.A. Water Rights Analysis Package River System Hydrology, 3rd ed.; TR-431; Texas Water Resources Institute: College Station, TX, USA, 2019; 215p, Available online: https://twri.tamu.edu/publications/technical-reports/2019-technical-reports/tr-431/ (accessed on 1 October 2020).
- Wurbs, R.A.; Hoffpauir, R.J. Water Rights Analysis Package Daily Modeling System; TR-430; Texas Water Resources Institute: College Station, TX, USA, 2019; 430p, Available online: https://twri.tamu.edu/publications/technical-reports/2019-technical-reports/tr-430/ (accessed on 1 October 2020).
- Wurbs, R.A. Salinity Simulation with WRAP; TR-317; Texas Water Resources Institute: College Station, TX, USA, 2009; 87p. [Google Scholar]
- Wurbs, R.A. Texas water availability modeling system. J. Water Resour. Plan. Manag. 2009, 131, 270–279. [Google Scholar] [CrossRef]
- Wurbs, R.A. Sustainable statewide water resources management in Texas. J. Water Resour. Plan. Manag. 2015, 141, A4014002. [Google Scholar] [CrossRef]
- Wurbs, R.A. Water Management Models; Pearson/Prentice-Hall Publishing: Upper Saddle River, NJ, USA, 1995; 245p. [Google Scholar]
- Wurbs, R.A. Dissemination of generalized water resources models in the United States. Water Int. 1998, 23, 190–198. [Google Scholar] [CrossRef]
- Wurbs, R.A. Modeling and Analysis of Reservoir System Operations; Pearson/Prentice-Hall: Upper Saddle River, NJ, USA, 1996; 372p. [Google Scholar]
- Labadie, J.W. Optimal operation of multireservoir systems: State-of-art review. J. Water Resour. Plan. Manag. 2004, 130, 93–111. [Google Scholar] [CrossRef]
- Rani, R.; Moreira, M.M. Simulation-optimization modeling: A survey and potential applications in reservoir system operation. Water Resour. Manag. 2010, 24, 1107–1138. [Google Scholar] [CrossRef] [Green Version]
- Lund, J.R.; Hui, R.; Escriva-Bou, A.; Porse, E.; Adams, L.; Connaughton, J.; Kasuri, L.; Lord, B.; Siegfried, L.; Thayer, R.; et al. Chapter 130 Reservoir operation design. In Handbook of Applied Hydrology; Singh, V.P., Ed.; McGraw Hill: New York, NY, USA, 2017. [Google Scholar]
- Wurbs, R.A. Comparative Evaluation of Generalized River/Reservoir System Models; TR-282; Texas Water Resources Institute (TWRI): College Station, TX, USA, 2005; 203p. [Google Scholar]
- Wurbs, R.A. Chapter 1 Generalized models of river system development and management. In Current Issues in Water Management; Uhlig, U., Ed.; InTech: Rijeka, Croatia, 2011; pp. 1–22. Available online: https://www.intechopen.com/books/current-issues-of-water-management/generalized-models-of-river-system-development-and-management (accessed on 1 October 2020).
- U.S. Army Corps of Engineers Hydrologic Engineering Center. HEC-ResSim. Available online: https://www.hec.usace.army.mil/software/hec-ressim/ (accessed on 1 October 2020).
- Center for Advances Decision Support for Water and Environmental Systems. RiverWare. Available online: https://www.riverware.org/ (accessed on 1 October 2020).
- Colorado State University. MODSIM Decision Support System. Available online: http://modsim.engr.colostate.edu/ (accessed on 1 October 2020).
- Texas Water Development Board. Water for Texas 2017; Texas Water Development Board: Austin, TX, USA, 2017. [Google Scholar]
- Sahs, M.K. (Ed.) Essentials of Texas Water Resources, 6th ed.; State Bar of Texas, Environmental and Natural Resources Law Section: Austin, TX, USA, 2020. [Google Scholar]
- Wurbs, R.A. Water rights in Texas. J. Water Resour. Plan. Manag. 1995, 121, 447–454. [Google Scholar] [CrossRef]
- Texas Water Development Board Planning. Available online: https://www.twdb.texas.gov/waterplanning/index.asp (accessed on 1 October 2020).
- National Research Council. The Science of Instream Flows: A Review of the Texas Instream Flow Program; National Academies Press: Washington, DC, USA, 2005. [Google Scholar]
- Wurbs, R.A. Incorporation of environmental flows in water allocation in Texas. Water Int. Int. Water Resour. Assoc. 2017, 42, 18–33. [Google Scholar] [CrossRef]
- Wurbs, R.A.; Zhang, Y. River System Hydrology in Texas; TR-461; TWRI: College Station, TX, USA, 2014; 442p, Available online: https://twri.tamu.edu/publications/technical-reports/2014-technical-reports/tr-461/ (accessed on 1 October 2020).
- Gippel, C.J.; Cosier, M.; Markar, S.; Liu, C. Balancing environmental flows needs and water supply reliability. Int. J. Water Resour. Dev. 2009, 25, 331–353. [Google Scholar] [CrossRef]
- O’Keefe, J. Chapter 4 Environmental Flow Allocation as a Practical Aspect of Integrated Water Resources management. In River Conservation and Management; Boon, P.J., Raven, P.J., Eds.; John Wiley & Sons: Hoboken, NJ, USA, 2012. [Google Scholar]
- Jain, S.K.; Acreman, M.C. Chapter 134 Environmental flows. In Handbook of Applied Hydrology; Singh, V.P., Ed.; McGraw-Hill: New York, NY, USA, 2016. [Google Scholar]
- Wohl, E. Forgotten legacies: Understanding and mitigating historical human alterations of river corridors. Water Resour. Res. 2019, 55, 181–201. [Google Scholar] [CrossRef] [Green Version]
- Water Rights Analysis Package. Available online: https://ceprofs.civil.tamu.edu/rwurbs/wrap.htm (accessed on 1 October 2020).
- Texas Water Resources Institute Publications. Available online: http://twri.tamu.edu/publications/ (accessed on 1 October 2020).
- Wurbs, R.A.; Walls, W.B. Water rights modeling and analysis. J. Water Resour. Plan. Manag. 1989, 115, 416–430. [Google Scholar] [CrossRef]
- Wurbs, R.A. Daily Water Availability Model for the Brazos River Basin and San Jacinto-Brazos Coastal Basin; TR-513; Texas Water Resources Institute: College Station, TX, USA, 2019; 238p, Available online: https://twri.tamu.edu/publications/technical-reports/2019-technical-reports/tr-513/ (accessed on 1 October 2020).
- Wurbs, R.A. Daily Water Availability Model for the Trinity River Basin; Texas Commission on Environmental Quality: Austin, TX, USA, 2019; 193p. [Google Scholar]
- Wurbs, R.A. Daily Water Availability Model for the Neches River Basin; Texas Commission on Environmental Quality: Austin, TX, USA, 2020; 198p. [Google Scholar]
- Texas Commission on Environmental Quality, Water Availability Modeling System. Available online: https://www.tceq.texas.gov/permitting/water_rights/wr_technical-resources/wam.html (accessed on 1 October 2020).
- Hydrologic Engineering Center. HEC-DSSVue HEC Data Storage System Visual Utility Engine, User’s Manual; Version 2, CPD-79; U.S. Army Corps of Engineers: Davis, CA, USA, 2009. Available online: https://www.hec.usace.army.mil/ (accessed on 1 October 2020).
- Wurbs, R.A.; Lee, C.H. Salinity in water availability modeling. J. Hydrol. 2011, 409, 451–459. [Google Scholar] [CrossRef]
- Wurbs, R.A.; Schnier, S.T.; Olmos, H.E. Short-term reservoir storage frequency relationships. J. Water Resour. Plan. Manag. 2012, 138, 597–605. [Google Scholar] [CrossRef]
- United States Geological Survey (USGS) National Water Information System (NWIS). Available online: https://waterdata.usgs.gov/nwis (accessed on 1 October 2020).
- Wurbs, R.A. Chapter 137 Institutional framework for water management. In Handbook of Applied Hydrology; Singh, V.P., Ed.; McGraw-Hill: New York, NY, USA, 2016. [Google Scholar]
- Texas Commission on Environmental Quality. Chapter 298 Environmental Flow Standards for Surface Water. Subchapter G: Brazos River and Its Associated Bay and Estuary System; Texas Water Code: Austin, TX, USA, 2014. Available online: https://www.tceq.texas.gov/assets/public/legal/rules/rules/pdflib/298g.pdf (accessed on 1 October 2020).
- Brazos River Basin and Bay Expert Science Team. Environmental Flow Regime Recommendations Report; Final Submission to the Brazos River Basin and Bay Area Stakeholder Committee, Environmental Flows Advisory Group, and Texas Commission on Environmental Quality: Austin, TX, USA, March 2012. Available online: https://www.tceq.texas.gov/assets/public/permitting/watersupply/water_rights/eflows/brazos_bbest_complete_document.pdf (accessed on 1 October 2020).
- Brazos River and Associated Bay and Estuary System Basin and Bay Stakeholders Committee. Environmental Flow Standards and Strategies Recommendations Report; Brazos River and Associated Bay and Estuary System Basin and Bay Stakeholders Committee: Austin, TX, USA, 2012. Available online: https://www.tceq.texas.gov/assets/public/permitting/watersupply/water_rights/eflows/brazos_bbasc_report_8_22_2012_bbasc.pdf (accessed on 1 October 2020).
- Wurbs, R.A.; Ayala, R.A. Reservoir evaporation in Texas, USA. J. Hydrol. 2014, 510, 1–9. [Google Scholar] [CrossRef]
- Muttiah, R.S.; Wurbs, R.A. Modeling the impacts of climate change on water supply reliabilities. Water Int. 2002, 27, 407–419. [Google Scholar] [CrossRef]
- Wurbs, R.A.; Muttiah, R.S.; Felden, F. Incorporation of climate change in water availability modeling. J. Hydrol. Eng. 2005, 10, 375–385. [Google Scholar] [CrossRef]
- Neilsen-Gammon, J.W.; Banner, J.L.; Cook, B.I.; Tremaine, D.M.; Wong, C.I.; Mace, R.E.; Gao, H.; Yang, Z.L.; Gonzales, M.F.; Hoffpauir, R.; et al. Unprecedented drought challenges for Texas water resources in a changing climate: What do researchers and stakeholders need to know? J. Earth’s Future 2020, 8. [Google Scholar] [CrossRef]
- Tarlock, A.D.; Corbridge, J.N.; Getches, D.A. Water Resource Management: A Casebook in Law and Public Policy, 6th ed.; Foundation Press: New York, NY, USA, 2009. [Google Scholar]
- Getches, D.H. Water Law in a Nutshell, 4th ed.; Thomson/Reuters: St. Paul, MN, USA, 2009. [Google Scholar]
Reservoir | Stream | Initial | Storage Capacity (Mm3) | ||
---|---|---|---|---|---|
Impoundment | Conservation | Flood Control | Total | ||
U.S. Army Corps of Engineers and Brazos River Authority | |||||
Whitney | Brazos River | 1951 | 785 | 1682 | 2467 |
Aquilla | Aquilla Creek | 1983 | 65 | 115 | 180 |
Waco | Bosque River | 1965 | 255 | 641 | 896 |
Proctor | Leon River | 1963 | 73 | 388 | 462 |
Belton | Leon River | 1954 | 565 | 790 | 1354 |
Stillhouse Hollow | Lampasas River | 1968 | 291 | 487 | 778 |
Georgetown | San Gabriel | 1980 | 46 | 116 | 161 |
Granger | San Gabriel | 1980 | 81 | 220 | 301 |
Somerville | Yequa Creek | 1967 | 198 | 428 | 626 |
Brazos River Authority | |||||
Possum Kingdom | Brazos River | 1941 | 894 | − | 894 |
Granbury | Brazos River | 1969 | 191 | − | 191 |
Limestone | Navasota River | 1978 | 278 | − | 278 |
Allen′s Creek | Allen′s Creek | proposed | 180 | − | 180 |
City of Lubbock | |||||
Alan Henry | Double Mountain | 1993 | 143 | − | 143 |
West Central Texas Municipal Water District | |||||
Hubbard Creek | Hubbard Creek | 1962 | 392 | − | 392 |
Texas Utilities Services (cooling water for Comanche Peak Nuclear Power Plant) | |||||
Squaw Creek | Squaw Creek | 1977 | 187 | − | 187 |
1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | 11 |
---|---|---|---|---|---|---|---|---|---|---|
Observed | Naturalized | Daily SIMD Simulation | Monthly SIM | |||||||
Regulated | Unappropriated | Regulated | Unappro- | |||||||
Daily | Monthly | Daily | Monthly | Daily | Monthly | Daily | Monthly | Monthly | priated | |
(m3/s) | (m3/s) | (m3/s) | (m3/s) | (m3/s) | (m3/s) | (m3/s) | (m3/s) | (m3/s) | (m3/s) | |
Mean | 216 | 216 | 228 | 228 | 181 | 181 | 103 | 103 | 180 | 113 |
Standard Deviation | 346 | 273 | 407 | 292 | 369 | 250 | 289 | 192 | 266 | 238 |
Minimum | 1.6 | 5.7 | 0 | 0 | 0 | 0 | 0 | 0 | 0.1 | 0 |
99% | 8.7 | 12.2 | 4 | 7 | 0 | 0.1 | 0 | 0 | 4.4 | 0 |
98% | 11 | 14 | 6.7 | 9.6 | 0 | 2.6 | 0 | 0 | 6.8 | 0 |
95% | 14.8 | 18 | 11 | 15.9 | 0 | 8 | 0 | 0 | 10.3 | 0 |
90% | 19.8 | 24.5 | 16.5 | 24.1 | 1.5 | 12.9 | 0 | 0 | 15.2 | 0 |
80% | 29.2 | 35.8 | 27.5 | 38.3 | 10.4 | 20.4 | 0 | 0 | 22.4 | 0 |
70% | 39.9 | 52.3 | 39.9 | 59.1 | 19.2 | 31.7 | 0 | 0.5 | 31.9 | 0 |
60% | 54.7 | 74.8 | 57.2 | 81.9 | 25.9 | 49 | 0 | 3.6 | 42.8 | 0 |
50% | 80.7 | 105 | 83.8 | 120 | 41.4 | 78 | 0 | 14.7 | 68.9 | 0 |
40% | 123 | 156 | 127 | 168 | 75.2 | 119 | 0 | 35.8 | 108 | 19.2 |
30% | 189 | 222 | 195 | 237 | 140 | 180 | 21.6 | 79.2 | 171 | 65.9 |
20% | 309 | 358 | 309 | 364 | 248 | 300 | 110 | 170 | 283 | 184 |
10% | 555 | 563 | 582 | 579 | 499 | 509 | 312 | 329 | 506 | 370 |
Maximum | 3400 | 2190 | 9200 | 2880 | 9170 | 1810 | 7300 | 1480 | 2560 | 2530 |
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Wurbs, R.A. Institutional Framework for Modeling Water Availability and Allocation. Water 2020, 12, 2767. https://doi.org/10.3390/w12102767
Wurbs RA. Institutional Framework for Modeling Water Availability and Allocation. Water. 2020; 12(10):2767. https://doi.org/10.3390/w12102767
Chicago/Turabian StyleWurbs, Ralph A. 2020. "Institutional Framework for Modeling Water Availability and Allocation" Water 12, no. 10: 2767. https://doi.org/10.3390/w12102767
APA StyleWurbs, R. A. (2020). Institutional Framework for Modeling Water Availability and Allocation. Water, 12(10), 2767. https://doi.org/10.3390/w12102767