Implementation of Brackish Groundwater Desalination Using Wind-Generated Electricity: A Case Study of the Energy-Water Nexus in Texas
Abstract
:1. Introduction
2. Background
2.1. Wind Power
2.2. Desalination
2.3. Integrated Wind and Desalination Technology
3. Methodology
3.1. Energetic Performance Analysis
Factor | Description | Units | Value |
---|---|---|---|
ρ | Density of water | kg/m3 | 1000 |
g | Acceleration due to gravity | m/s2 | 9.81 |
ηP | Pump efficiency | - | 0.65 |
d | Pipe diameter | m | 0.30 |
f | Friction factor | - | 0.0162 |
Factor | Project Parameters | Units | Favorable | Average | Unfavorable |
---|---|---|---|---|---|
RD | BWRO recovery | - | 0.9 | 0.8 | 0.7 |
z | Depth to aquifer | m | 50 | 275 | 500 |
l | Distribution pipe length | m | 500 | 5250 | 10,000 |
EID | Energy intensity of desalination | kWh/m3 | 1.03 | 1.8 | 2.56 |
CFWT | Wind turbine capacity factor | - | 0.45 | 0.35 | 0.25 |
3.2. Economic Feasibility Analysis
Expense | Units | Reported Costs | Source | ||
---|---|---|---|---|---|
Low | Average | High | |||
Wind Turbine Project Capital | $/kW | 1500 | 2250 | 3000 | [3] |
Wind Turbine Project Operational | $/MWh | 7 | 11 | 15 | [3] |
Reverse Osmosis Facility Capital | $/m3/day | 300 | 400 | 500 | [8,26,27] |
Well Field and Delivery Capital | $/m3/day | 250 | 350 | 450 | [8,26,27] |
Delivery to Municipal Line Capital | $/m3/day | 50 | 75 | 100 | [8,26,27] |
Reverse Osmosis Project Operational | $/m3 | 0.08 | 0.14 | 0.19 | [26,27] |
Concentrate Discharge Capital | $/m3/day | 250 | 500 | 750 | [11,28] |
Concentrate Discharge Operational | $/m3 | 0.01 | 0.04 | 0.06 | [11,28] |
3.3. Geographic Feasibility Analysis
- Wind power classification: The dataset from the National Renewable Energy Laboratory (NREL) provides wind energy potential as a GIS raster file [5]. The dataset demonstrates the availability of wind resources with classifications of 3 or greater, as shown in Figure 2, which is generally considered the minimum threshold for profitably generating electricity with large wind turbines.
4. Results
4.1. Energetic Analysis Results
Increase in Power Requirement of Desalination Facility (kW) | |
---|---|
Per 1000 m length of pipe | 0.68 |
Per 10 m depth to aquifer | 6.97 |
Per 0.5 kWh/m3 energy intensity | 8.30 |
4.2. Economic Analysis Results
4.3. Geographic Analysis Results
Brackish Groundwater and Wind Conditions | Turbine Capacity (kW) | Water Price ($/m3) | Profitability ($/year) | |
---|---|---|---|---|
Well 1 | Depth: 50 m | 505 | $0.20 | −$930,000 |
TDS: 1000 | $1.60 | $570,000 | ||
Wind Classification: 5 | $2.80 | $1,900,000 | ||
Well 2 | Depth: 500 m | 1900 | $0.20 | −$1,200,000 |
TDS: 10,000 | $1.60 | $270,000 | ||
Wind Classification: 5 | $2.80 | $1,600,000 | ||
Well 3 | Depth: 500 m | 2660 | $0.20 | −$1,300,000 |
TDS: 10,000 | $1.60 | $130,000 | ||
Wind Classification: 3 | $2.80 | $1,400,000 | ||
Well 4 | Depth: 50 m | 710 | $0.20 | −$970,000 |
TDS: 1000 | $1.60 | $530,000 | ||
Wind Classification: 3 | $2.80 | $1,800,000 |
5. Conclusions
Acknowledgments
Conflicts of Interest
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Clayton, M.E.; Stillwell, A.S.; Webber, M.E. Implementation of Brackish Groundwater Desalination Using Wind-Generated Electricity: A Case Study of the Energy-Water Nexus in Texas. Sustainability 2014, 6, 758-778. https://doi.org/10.3390/su6020758
Clayton ME, Stillwell AS, Webber ME. Implementation of Brackish Groundwater Desalination Using Wind-Generated Electricity: A Case Study of the Energy-Water Nexus in Texas. Sustainability. 2014; 6(2):758-778. https://doi.org/10.3390/su6020758
Chicago/Turabian StyleClayton, Mary E., Ashlynn S. Stillwell, and Michael E. Webber. 2014. "Implementation of Brackish Groundwater Desalination Using Wind-Generated Electricity: A Case Study of the Energy-Water Nexus in Texas" Sustainability 6, no. 2: 758-778. https://doi.org/10.3390/su6020758
APA StyleClayton, M. E., Stillwell, A. S., & Webber, M. E. (2014). Implementation of Brackish Groundwater Desalination Using Wind-Generated Electricity: A Case Study of the Energy-Water Nexus in Texas. Sustainability, 6(2), 758-778. https://doi.org/10.3390/su6020758