An Operation Benefit Analysis and Decision Model of Thermal Power Enterprises in China against the Background of Large-Scale New Energy Consumption
Abstract
:1. Introduction
2. Scenario Setting
3. Model Description
3.1. Income Analysis of Diversified Operation
3.1.1. Income of Power Sales
3.1.2. Income of Peak Load Regulation
3.1.3. Income of Generation Rights Trading
3.2. Cost Analysis of Diversified Operation
3.2.1. Cost of Power Production
3.2.2. Loss Cost of Less Power Generation When Units Participate in Deep Peak Load Regulation
3.2.3. Apportioned Cost When the Units Do Not Participate in Peak Load Regulation
3.2.4. Loss Cost of Less Power Generation When the Generation Rights Are Traded
3.3. Objective Functions and Constraints
4. Empirical Study
4.1. Background Introduction
4.2. Model Parameters
4.3. Simulation Results
4.3.1. Scenario A
4.3.2. Scenario B
4.3.3. Scenario C
4.3.4. Scenario D
4.3.5. Scenario E
4.3.6. Scenario F
5. Discussion and Scenario Analysis
6. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Appendix A
Parameter | Value | Details |
---|---|---|
0.000169 | Citing references [43] | |
0.27601 | ||
11.46196 | ||
1.2 | ||
1.2 | ||
Unit price of standard coal | 514.15 yuan/ton | Market price in 2018 |
On-grid electricity tariff of Thermal power | 259.5 yuan/MWh | Market price in 2018 |
Price of oil | 6130 yuan/ton | Market price in 2018 |
The average price difference of Power generation rights trading | 50 yuan/MWh | Unit operation data |
25,374 MWh | Unit operation data | |
312,000 MWh | Unit operation data | |
0–0.38 yuan/kWh | Notice on operation rules (Trial) of Ningxia electric power auxiliary service market | |
0.38–0.95 yuan/kWh | Notice on operation rules (Trial) of Ningxia electric power auxiliary service market | |
40% | Notice on operation rules (Trial) of Ningxia electric power auxiliary service market | |
50% | Notice on operation rules (Trial) of Ningxia electric power auxiliary service market | |
The corrected quantity of electricity | 5,829,820 MWh | Northwest China Energy Regulatory Bureau of National Energy Administrator of the People’s Republic of China. http://xbj.nea.gov.cn/website/Aastatic/news-list-100300-100301.html |
The total apportioned cost | 113.79 million yuan |
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Scenario | Business Model |
---|---|
A | power sales |
B | power sales + generation rights trading |
C | power sales + peak load regulation (without oil) |
D | power sales + generation rights trading + peak load regulation (without oil) |
E | power sales + peak load regulation (without oil) + peak load regulation (with oil) |
F | power sales + generation rights trading + peak load regulation (without oil) + peak load regulation (with oil) |
Scenario | Sensitivity Coefficient of Profit to Coal Price | Sensitivity Coefficient of Profit to On-Grid Electricity Price |
---|---|---|
A | 27.80 | 45.55 |
B | 14.00 | 22.94 |
C | 18.94 | 31.06 |
D | 11.04 | 18.11 |
E | 18.82 | 30.85 |
F | 11.00 | 18.03 |
Average | 16.93 | 27.76 |
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Yang, X.; Niu, D.; Chen, M.; Wang, K.; Wang, Q.; Xu, X. An Operation Benefit Analysis and Decision Model of Thermal Power Enterprises in China against the Background of Large-Scale New Energy Consumption. Sustainability 2020, 12, 4642. https://doi.org/10.3390/su12114642
Yang X, Niu D, Chen M, Wang K, Wang Q, Xu X. An Operation Benefit Analysis and Decision Model of Thermal Power Enterprises in China against the Background of Large-Scale New Energy Consumption. Sustainability. 2020; 12(11):4642. https://doi.org/10.3390/su12114642
Chicago/Turabian StyleYang, Xiaolong, Dongxiao Niu, Meng Chen, Keke Wang, Qian Wang, and Xiaomin Xu. 2020. "An Operation Benefit Analysis and Decision Model of Thermal Power Enterprises in China against the Background of Large-Scale New Energy Consumption" Sustainability 12, no. 11: 4642. https://doi.org/10.3390/su12114642
APA StyleYang, X., Niu, D., Chen, M., Wang, K., Wang, Q., & Xu, X. (2020). An Operation Benefit Analysis and Decision Model of Thermal Power Enterprises in China against the Background of Large-Scale New Energy Consumption. Sustainability, 12(11), 4642. https://doi.org/10.3390/su12114642