The Cost of Alternative Water Supply and Efficiency Options under Uncertainty: An Application of Modern Portfolio Theory and Chebyshev’s Inequality
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Projecting Future Water Demand
2.3. Inferring Current Water Supply and Water Shortage
2.4. Estimating the Capital Costs of Water Supply Alternatives
2.5. Applying Chebyshev’s Inequality to Infer the Bounds for the Capital Costs of Water Supply Alternatives
2.6. Applying Modern Portfolio Theory to Select a Mix of Water Supply Alternatives
3. Results and Discussion
3.1. Water Demand Projections
3.2. Existing Water Supplies, Currently Implemented Projects, and Remaining Potential Water (Needs) Shortages
3.3. Water Supply Alternatives to Address Water Needs
3.4. Total Investments Needed to Meet Projected Water Use in Florida
3.5. Costs of Water Efficiency Measures
3.6. Portfolio Solutions for Developing Water Supply Projects
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
Appendix A.1. Data Used in the Costs Analysis
Appendix A.2. Methods Used in Water Demand Projections
Appendix A.2.1. Public Supply (PS) Water Use
Appendix A.2.2. Domestic Self-Supply (DSS) Water Use
Appendix A.2.3. Landscape/Recreational (L/R) Water Use
Appendix A.2.4. Commercial/Industrial/Institutional (CII) Water Use
Appendix A.2.5. Power Generation (PG) Water Use
Appendix A.2.6. Water Demand for Agriculture (AG)
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Water Management District | Water Supply Planning Region | Abbreviation | Water Supply Planning Document Referenced in [2] a |
---|---|---|---|
Northwest Florida Water Management District (NWFWMD) | I | NW–Oth | 2018 Water Supply Assessment Update [2] |
III a | |||
IV | |||
V b | |||
VI | |||
VII | |||
II | NW–II | 2019 Region II Regional Water Supply Plan [2] c | |
Suwannee River Water Management District (SRWMD) | Area outside NFRWSP | SR–West | Water Supply Assessment 2015–2035 [2] |
St. Johns River Water Management District (SJRWMD) | Central Springs and East Coast (Region 2, formerly Regions 2, 4, and 5) | SJR–CSEC | Under Development [2] d |
Southwest Florida Water Management District (SWFWMD) | Northern Planning Region (partially in Central Florida Water Initiative) e | SW–N e | 2020 Regional Water Supply Plan; partially in CFWI Regional Water Supply Plan 2020 [2,4] |
Tampa Bay Planning Region | SW–TB | 2020 Regional Water Supply Plan [4] | |
Heartland Planning Region (partially in Central Florida Water Initiative) e | SW–H e | 2020 Regional Water Supply Plan; partially in CFWI Regional Water Supply Plan 2020 [2] | |
Southern Planning Region | SW–S | 2020 Regional Water Supply Plan | |
South Florida Water Management District (SFWMD) | Lower Kissimmee Basin | SF–LKB | Regional Water Supply Plan Update (2019) [2] |
Upper East Coast | SF–UEC | Regional Water Supply Plan Update (2016) [2,5] | |
Lower East Coast | SF–LEC | Regional Water Supply Plan Update (2018) [2,6] | |
Lower West Coast | SF–LWC | Regional Water Supply Plan Update (2017) [2] | |
SRWMD and SJRWMD | North Florida Regional Water Supply Partnership | NFRWSP | NFRWSP Regional Water Supply Plan [2] |
SJRWMD, SWFWMD, and SFWMD | Central Florida Water Initiative | CFWI | CFWI Regional Water Supply Plan 2020 [2] |
Project Category | Project Description | Number of Projects * |
---|---|---|
Additional water supply to meet growing demand | Projects in the regions with positive 2040 inferred supply shortages, given that the projects are not associated with any MFL RPS. Specifically, the following project types are considered:
| 960 |
Water demand management and conservation |
| 570 |
Water for natural systems |
| 165 |
Other |
| 78 |
Planning Regions | Water Needed (aka Potential Inferred Supply Shortage by 2040, MCM) | Water by the Projects in Design, Construction, and on Hold, MCM | Remaining Potential Inferred Supply Shortage by 2040, MCM ** | Project Expenditures by the Projects in Design, Construction, and on Hold (million, USD 2021) |
---|---|---|---|---|
(1) | (2) | (3) | (4) = (2) − (3) | (5) |
NWF–II | 6.91 | 6.92 | - | USD 21.16 |
SR–West | 7.17 | 2.75 | 4.42 | USD 5.01 |
SJR–CSEC | 70.60 | 35.69 | 34.91 | USD 156.07 |
SW–N *** | 15.96 | 0.62 | 15.34 | USD 30.46 |
SF–UEC | 5.18 | 282.08 | - | USD 11.64 |
SF–LEC | 68.46 | 143.92 | - | USD 32.62 |
SF–LWC | 12.81 | 78.02 | - | USD 22.13 |
NFRWSP | 195.23 | 14.18 | 181.05 | USD 28.48 |
CFWI | 131.26 | 111.43 | 19.83 | USD 339.61 |
Statewide (sum of regions) | 513.58 | 675.61 | 255.55 | 647.18 |
Planning Regions | Median, Lower and Upper Bounds * | Using Median | Using Chebyshev’s Inequality | ||||
---|---|---|---|---|---|---|---|
Brackish Groundwater | Groundwater Recharge | Reclaimed Water | Less Expensive | More Expensive | Less Expensive | More Expensive | |
(1) | (2) | (3) | (4) | (5) | (6) | (7) | (8) |
SR–West | 8.88-8.88-8.88 ** | 8.88 | 8.88 | 8.88 | 8.88 | ||
SJR–CSEC | 4.05-4.05-4.05 ** | 6.72-10.50-26.78 | 4.05 | 6.72 | 4.05 | 26.78 | |
SW–N *** | 10.63-15.05-33.29 | 10.63 | 10.63 | 15.05 | 33.29 | ||
NFRWSP | 0.56-2.55-7.60 | 3.97-9.77-26.42 | 0.56 | 3.97 | 2.55 | 26.42 | |
CFWI | 0.89-6.30-18.82 | 3.50-8.03-21.06 | 0.89 | 3.50 | 6.30 | 21.06 |
Planning Regions | “Project Total” to Meet Remaining Inferred Shortage (Million, USD 2021) | Project Expenditures by the Projects in Design, Construction, and On Hold (Million, USD 2021) | Total Forecasted Expenditure to Meet 2040 Inferred Supply Shortage (Million USD 2021) | |||
---|---|---|---|---|---|---|
Less Expensive | More Expensive | Less Expensive | More Expensive | Average | ||
(1) | (2) | (3) | (4) | (5) = (2) + (4) | (6) = (3) + (4) | ((6) + (7))/2 |
NWF–II | - | - | 21.16 | 21.16 | 21.16 | 21.16 |
SR–West | 39.26 | 39.26 | 5.01 | 44.27 | 44.27 | 44.27 |
SJR–CSEC | 141.51 | 234.51 | 156.07 | 297.58 | 390.58 | 344.08 |
SW–N * | 163.06 | 163.06 | 30.46 | 193.52 | 193.52 | 193.52 |
SF–UEC | - | - | 11.64 | 11.64 | 11.64 | 11.64 |
SF–LEC | - | - | 32.62 | 32.62 | 32.62 | 32.62 |
SF–LWC | - | - | 22.13 | 22.13 | 22.13 | 22.13 |
NFRWSP | 100.90 | 718.10 | 28.48 | 129.38 | 746.58 | 437.98 |
CFWI | 17.65 | 69.45 | 339.61 | 357.26 | 409.06 | 383.16 |
Total | 462.39 | 1224.38 | 647.18 | 1109.57 | 1871.56 | 1490.57 |
Planning Regions | “Project Total” to Meet Remaining Inferred Shortage (Million, USD 2021) | Project Expenditures by the Projects in Design, Construction, and On Hold (Million, USD 2021) | Total Forecasted Expenditure to Meet 2040 Inferred Supply Shortage (Million USD 2021) | |||
---|---|---|---|---|---|---|
Less Expensive | More Expensive | Less Expensive | More Expensive | Average | ||
(1) | (2) | (3) | (4) | (5) = (2) + (4) | (6) = (3) + (4) | ((6) + (7))/2 |
NWF–II | - | - | 21.16 | 21.16 | 21.16 | 21.16 |
SR–West | 39.26 | 39.26 | 5.01 | 44.27 | 44.27 | 44.27 |
SJR–CSEC | 141.49 | 366.62 | 156.07 | 297.56 | 522.69 | 410.125 |
SW–N * | 230.93 | 230.93 | 30.46 | 261.39 | 261.39 | 261.39 |
SF–UEC | - | - | 11.64 | 11.64 | 11.64 | 11.64 |
SF–LEC | - | - | 32.62 | 32.62 | 32.62 | 32.62 |
SF–LWC | - | - | 22.13 | 22.13 | 22.13 | 22.13 |
NFRWSP | 462.56 | 1768.99 | 28.48 | 491.04 | 1797.47 | 1144.255 |
CFWI | 124.86 | 159.31 | 339.61 | 464.47 | 498.92 | 481.695 |
Total | 999.10 | 2565.10 | 647.18 | 1646.28 | 3212.29 | 2429.29 |
Region | Equal Weight | Minimum Variance |
---|---|---|
SWF | 6.12 | 1.57 |
SF | 1.77 | 1.53 |
Statewide | 5.12 | 3.13 |
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Tran, D.; Borisova, T.; Beggs, K. The Cost of Alternative Water Supply and Efficiency Options under Uncertainty: An Application of Modern Portfolio Theory and Chebyshev’s Inequality. Earth 2023, 4, 40-65. https://doi.org/10.3390/earth4010003
Tran D, Borisova T, Beggs K. The Cost of Alternative Water Supply and Efficiency Options under Uncertainty: An Application of Modern Portfolio Theory and Chebyshev’s Inequality. Earth. 2023; 4(1):40-65. https://doi.org/10.3390/earth4010003
Chicago/Turabian StyleTran, Dat, Tatiana Borisova, and Kate Beggs. 2023. "The Cost of Alternative Water Supply and Efficiency Options under Uncertainty: An Application of Modern Portfolio Theory and Chebyshev’s Inequality" Earth 4, no. 1: 40-65. https://doi.org/10.3390/earth4010003
APA StyleTran, D., Borisova, T., & Beggs, K. (2023). The Cost of Alternative Water Supply and Efficiency Options under Uncertainty: An Application of Modern Portfolio Theory and Chebyshev’s Inequality. Earth, 4(1), 40-65. https://doi.org/10.3390/earth4010003