Environmental and Economic Benefit Analysis of an Integrated Heating System with Geothermal Energy—A Case Study in Xi’an China
Abstract
:1. Introduction
2. Integrated Energy System Design
2.1. Integrated Energy System Containing Electricity, Heating, and Gas
2.2. Integrated Heating System with Geothermal Energy
3. Environmental and Economic Benefit Analysis
3.1. Heating Load during the Heating Period
3.2. Environmental Benefit Evaluation Model
3.3. Economic Benefit Evaluation Model
4. Example Analysis
4.1. Calculation of Heat Demand and Heating Load
4.2. Environmental Benefit Evaluation Model
4.3. Economic Benefit Analysis
5. Sensitivity Analysis
5.1. Sensitivity Analysis of Heat Sources to the Price Factors
5.2. Sensitivity Analysis of Heat Sources to the Load Ratios
6. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Scenarios | Basic Heating Load (MW) | Basic Heating Load Ratio during Heating Period (%) | Gas Peak-Shaving Heating Load Ratio during Heating Period (%) | Basic Heating Load Ratio on a Typical Day (%) | Gas Peak-Shaving Heating Load Ratio on a Typical Day (%) |
---|---|---|---|---|---|
Scenario 2 | 2,800 | 69.02 | 30.98 | 63.63 | 36.37 |
Scenario 3 | 3,000 | 73.58 | 26.42 | 67.73 | 32.27 |
Scenario 4 | 3,200 | 77.9 | 22.1 | 71.62 | 28.38 |
Scenario 5 | 3,400 | 81.89 | 18.11 | 75.27 | 24.73 |
Scenario 6 | 3,500 | 85.58 | 14.42 | 78.78 | 21.22 |
Scenarios | Peak-Shaving Ratio (%) | GSHP to the Basic Heating Load Ratio (%) | Coal Consumption (million tons) | Coal Saving (million tons) | Emission Reductions (million tons) | ||
---|---|---|---|---|---|---|---|
Sulfur Dioxide | Nitrogen Oxides | TSP | |||||
Scenario 1 | 0 | 0 | 1.7236 | 0.1393 | 33.4489 | 9.7533 | 947.7186 |
Scenario 2 | 30.98 | 10 | 1.1349 | 0.7280 | 174.3540 | 49.4478 | 4,950.6359 |
Scenario 3 | 26.42 | 10 | 1.2099 | 0.6530 | 156.4154 | 44.4222 | 4,440.8133 |
Scenario 4 | 22.1 | 10 | 1.2809 | 0.5820 | 139.4308 | 39.6638 | 3,958.1057 |
Scenario 5 | 18.11 | 10 | 1.3465 | 0.5164 | 123.7241 | 35.2635 | 3,511.7164 |
Scenario 6 | 14.42 | 10 | 1.4072 | 0.4557 | 109.2134 | 31.1982 | 3,099.3173 |
Scenario 7 | 0 | 10 | 1.6443 | 0.2186 | 52.4724 | 15.3018 | 1,486.7180 |
Scenarios | Peak-Shaving Ratio (%) | GSHP tor the Basic Heating Load Ratio (%) | Initial Investment | Peak-Shaving Ratio (%) | GSHP tor the Basic Heating Load Ratio (%) | Initial Investment |
---|---|---|---|---|---|---|
Scenario 1 | 0 | 0 | 4,698.33 | 150.19 | 559.82 | 63.94 |
Scenario 2 | 30.98 | 10 | 4,429.2 | 268.66 | 654.82 | 42.14 |
Scenario 3 | 26.42 | 10 | 4,536.32 | 252.32 | 647.82 | 44.91 |
Scenario 4 | 22.1 | 10 | 4,637.81 | 236.85 | 641.20 | 47.54 |
Scenario 5 | 18.11 | 10 | 4,731.54 | 222.54 | 635.06 | 49.97 |
Scenario 6 | 14.42 | 10 | 4,818.22 | 209.33 | 629.4 | 52.22 |
Scenario 7 | 0 | 10 | 5,156.97 | 157.64 | 607.25 | 61 |
Scenarios | Peak-Shaving Ratio (%) | Fuel Cost of Thermal Power Plant (USD million) | Fuel Cost of Gas-Fired Boiler (USD million) | Pollutant Charge of Thermal Power Plant (USD million) | Pollutant Charge of Gas-Fired Boiler (USD million) | Residential Heating Expenditure (USD million) |
---|---|---|---|---|---|---|
Scenario 1 | 0 | 150.19 | 0 | 63.94 | 0 | 285.67 |
Scenario 8 | 14.42 | 128.54 | 74.41 | 54.72 | 0.02 | 285.67 |
Scenario 9 | 18.11 | 122.99 | 93.45 | 52.36 | 0.02 | 285.67 |
Scenario 10 | 22.1 | 117.00 | 114.04 | 49.81 | 0.03 | 285.67 |
Scenario 11 | 26.42 | 110.51 | 136.33 | 47.05 | 0.03 | 285.67 |
Scenario 12 | 30.98 | 103.66 | 159.86 | 44.13 | 0.04 | 285.67 |
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Yan, Q.; Qin, C. Environmental and Economic Benefit Analysis of an Integrated Heating System with Geothermal Energy—A Case Study in Xi’an China. Energies 2017, 10, 2090. https://doi.org/10.3390/en10122090
Yan Q, Qin C. Environmental and Economic Benefit Analysis of an Integrated Heating System with Geothermal Energy—A Case Study in Xi’an China. Energies. 2017; 10(12):2090. https://doi.org/10.3390/en10122090
Chicago/Turabian StyleYan, Qingyou, and Chao Qin. 2017. "Environmental and Economic Benefit Analysis of an Integrated Heating System with Geothermal Energy—A Case Study in Xi’an China" Energies 10, no. 12: 2090. https://doi.org/10.3390/en10122090
APA StyleYan, Q., & Qin, C. (2017). Environmental and Economic Benefit Analysis of an Integrated Heating System with Geothermal Energy—A Case Study in Xi’an China. Energies, 10(12), 2090. https://doi.org/10.3390/en10122090