Comprehensive Regulation Benefits of Hydropower Generation System in Reducing Wind Power Fluctuation
Abstract
:1. Introduction
- The increasing penetration of the HGS compresses the coal-fired power scale, and this promotes the reduction of GHG emissions. This benefits environmental development.
- Based on the excellent regulation of peak modulation, frequency modulation and voltage modulation, the HGS increases the grid-connected success probability of multiple energy integration and greatly cuts the operation cost. This benefits the economic operation.
- Owing to the stability and controllability properties of the hydropower, the participation of the HGS complements the power fluctuation of the intermittent energy and reduces the energy curtailments, which improves the reliability of the power supply. This benefits the end use.
- Aiming to describe the property of the wind speed, a resultant wind speed model is presented to achieve the joint operation of the wind-hydro hybrid power system. Then, the final model is established by considering the practice of coal-fired generation in IEEE 14 Bus Power System.
- Based on the presented coal-fired/wind/hydropower-integrated system, the comprehensive benefit evaluation method is presented. This method focuses on quantifying the complementary effect of the hybrid power system from the perspective of the fatigue damage of hydraulic guide vanes.
- To reveal the suppressing effect of hydropower on grid power fluctuations due to wind power injection, this work investigates the complementary performance from second and hour time-scales. The obtained frequency and power responses also reflect the reliability of the proposed hybrid model.
2. Benefit Evaluation Method
- Wind-hydropower quota criterion
- Benefit objective function
- (i)
- Power consumption profit
- (ii)
- Peak-load profit
- (iii)
- Energy conservation profit
- (iv)
- Start-stop cost
- (v)
- Guide vane fatigue loss cost
- (vi)
- Maintenance cost
3. Integrated Model
3.1. Hydropower System
3.1.1. Hydraulic Speed Control System
3.1.2. Hydro-Turbine and Penstock
3.1.3. Hydraulic Generator
3.2. Wind Power System
3.2.1. Wind Turbine
3.2.2. DFIG Model
3.2.3. Mechanical Drive Shaft System
3.2.4. Control System
4. Complementary Characteristics Analysis
4.1. Case Description
- (i)
- Basic wind
- (ii)
- Gradient wind
- (iii)
- Random wind
- (iv)
- Gusty wind
4.2. Complementary Results
5. Comprehensive Regulation Benefits
5.1. Case Study
5.2. Effect of Renewable Energy Participation on Power Fluctuation
5.3. Comprehensive Regulation Benefits
- (i)
- Based on the electricity status in China, the wind, hydropower and coal-fired electricity prices (i.e., Sf, Ss and Sh) are RMB 0.6/KW·h, RMB 0.35/KW·h, and RMB 0.25/KW·h, respectively.
- (ii)
- The standard coal heat combustion is −393.5 kJ/mol, and the corresponding combustion loss coefficient is 3%; meanwhile, based on the provision of International Carbon Emission Trading Market, the coal price of unit mass (Sm) equals to RMB 107.5/T.
- (iii)
- Based on China grid-connection ancillary services management, the peak-load compensation of the coal-fired power system (St) is RMB 500/MW.
- (iv)
- Both the start-up cost and shut-down costs of hydroelectric generation unit (i.e., Spq and Spt) are obedient to China’s power market standard, about RMB 20/MW.
- (v)
- The construction costs for the hydropower station, wind farm and coal-fired power station are RMB 3700/kW, RMB 30 million and RMB 100 million, respectively. The annual maintenance cost accounts for 2% total construction cost.
6. Conclusions
- (1)
- The complementary characteristic of a second time scale is closely related to the wind speed patterns, while there exists three key times, i.e., the 6th hour, the 7th hour and the 19th hour in the time scale of hour. The frequency deviations for second and hour time scales not exceed the grid accepted range [−0.2 Hz, +0.2 Hz]. The hydropower system has a better complementary effect on suppressing wind power fluctuation.
- (2)
- With the wind-hydropower quota increasing, the wind power fiercely fluctuates and the wind power generation ability increases. The wind power output increases nearly three times when the wind-hydropower quota increases from 16% to 25%. Additionally, the larger wind-hydropower participation, the stronger hydraulic regulation ability to grid power fluctuations.
- (3)
- The power consumption profit and energy conservation profit increase with the wind-hydropower quota, increasing from 16% to 25%, while the guide vane fatigue loss coast shows a fluctuating trend. The total revenue shows an increasing tendency as a whole, which increases about RMB 928.62 million with the quota from 16% to 25%.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Unit Type | Number of Units | Rated Output/MW | Minimum Output/MW |
---|---|---|---|
18 MW | 1 | 18 | 6 |
18 MW | 1 | 18 | 8 |
12 MW | 1 | 12 | 4 |
12 MW | 1 | 12 | 5 |
10 MW | 1 | 10 | 3 |
10 MW | 1 | 10 | 4 |
8 MW | 1 | 8 | 2 |
8 MW | 1 | 8 | 3 |
5 MW | 2 | 5 | 1 |
5 MW | 2 | 5 | 1 |
Sum | 12 | 116 | 39 |
Quota | Power Consumption Profit | Peak-Load Profit | Energy Conservation Profit | Start-Stop Cost | Guide Vane Fatigue Loss Cost | Maintenance Cost (No Guide Vane Wear) | Total Revenue |
---|---|---|---|---|---|---|---|
16% | 13,227.16 | 675.43 | 1.23 | 21.90 | 1.82 | 482.00 | 13,398.11 |
17% | 13,259.65 | 695.33 | 1.31 | 21.90 | 1.77 | 482.00 | 13,450.61 |
18% | 13,460.62 | 702.63 | 1.39 | 21.90 | 1.53 | 482.00 | 13,659.20 |
19% | 13,433.83 | 701.53 | 1.41 | 21.90 | 1.66 | 482.00 | 13,631.21 |
20% | 13,574.50 | 646.60 | 1.47 | 21.90 | 1.67 | 482.00 | 13,716.99 |
21% | 13,777.14 | 575.42 | 1.55 | 21.90 | 1.77 | 482.00 | 13,848.44 |
22% | 13,784.41 | 526.33 | 1.55 | 21.90 | 1.76 | 482.00 | 13,806.62 |
23% | 14,152.15 | 474.87 | 1.66 | 21.90 | 1.78 | 482.00 | 14,122.99 |
24% | 14,321.87 | 469.57 | 1.70 | 21.90 | 1.87 | 482.00 | 14,287.38 |
25% | 14,489.59 | 341.46 | 1.77 | 21.90 | 2.19 | 482.00 | 14,326.73 |
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Xu, B.; Zhang, J.; Yuan, S.; Li, H.; Chen, D.; Zhang, J. Comprehensive Regulation Benefits of Hydropower Generation System in Reducing Wind Power Fluctuation. Water 2021, 13, 2987. https://doi.org/10.3390/w13212987
Xu B, Zhang J, Yuan S, Li H, Chen D, Zhang J. Comprehensive Regulation Benefits of Hydropower Generation System in Reducing Wind Power Fluctuation. Water. 2021; 13(21):2987. https://doi.org/10.3390/w13212987
Chicago/Turabian StyleXu, Beibei, Jingjing Zhang, Shuai Yuan, Huanhuan Li, Diyi Chen, and Junzhi Zhang. 2021. "Comprehensive Regulation Benefits of Hydropower Generation System in Reducing Wind Power Fluctuation" Water 13, no. 21: 2987. https://doi.org/10.3390/w13212987
APA StyleXu, B., Zhang, J., Yuan, S., Li, H., Chen, D., & Zhang, J. (2021). Comprehensive Regulation Benefits of Hydropower Generation System in Reducing Wind Power Fluctuation. Water, 13(21), 2987. https://doi.org/10.3390/w13212987