The Strategies for Increasing Grid-Integrated Share of Renewable Energy with Energy Storage and Existing Coal Fired Power Generation in China
Abstract
:1. Introduction
2. Methodology
2.1. Objective Function and Related Constraints
2.1.1. Objective Function
2.1.2. The Related Constrains
2.2. Solving Method about the Model
3. Case Study
3.1. Description of the Studied Power System
3.2. Assumptions and Input Data
3.3. Simulation Results and Analysis
3.3.1. Integration of Renewable Energies and Total Cost of the Power System
3.3.2. Flexibility Services for Renewable Energy Integration
3.3.3. The Net Operating Benefits of the Power System
3.3.4. Discussions and Further Analyses
4. Conclusions and Policy Recommendations
4.1. Conclusions
4.2. Policy and Strategy Recommendations
4.2.1. To Strengthen the Role of Existing Coal-Fired Units in Providing Flexibility Services
4.2.2. To Improve the Compensation Mechanism for the Exiting Thermal Power Units and EES Systems Delivering Flexibility Services
4.2.3. To Coordinate the Dispatch of Flexibility Services Based on the Overall Benefits of the Power System
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
Symbol | Description |
Costsys | Total cost of the power system |
Costinv,conven | Total capacity cost of existing conventional thermal power units incluing their flexibility-retrofitted costs |
Costinv,res | Total investment cost of renewable energies |
Costinv,sto | Total investment cost of an EES system |
Costoper,sys | Operation cost of the power system |
cinv,coal | Unit investment cost of existing coal fired unit i |
cinv,gas | Unit investment cost of existing gas fired unit j |
cretro,coal | Unit flexibility-retrofitted cost of existing coal fired unit i |
cinv,wind | Unit investment cost of wind power unit k |
cinv,pv | Unit investment cost of solar PV unit l |
cinv,stoc | Power capacity cost of EES system m |
cinv,stoe | Energy capacity cost of EES system m |
i | Number index of existing coal-fired units |
nc | Total number of existing coal-fired units |
j | Number index of existing gas-fired units |
nj | Total number of existing gas-fired units |
k | Number index of wind power units |
nw | Total number of wind power units |
l | Number index of solar PV units |
np | Total number of solar PV units |
m | Number index of EES systems |
nm | Total number of EES systems |
Ni,coal | Capacity of coal-fired unit i |
Nj,gas | Capacity of gas-fired unit j |
Nk,wind | Capacity of wind power unit k |
Nl,pv | the capacity of PV unit l |
Nm,sto | Power capacity of EES system m |
Em,sto | Energy capacity of EES system m |
T | Sheduling period |
ci,op | Operating cost of existing coal fired unit i |
cj,gas | Operating cost of existing gas fired unit j |
cm,sto | Operating cost of EES system m |
Gi,t | Power output of existing coal fired unit i at time t |
Gj,t | Power output of existing gas fired unit j at time t |
Gm,stin | Power input of EES system m at time t |
Gm,stout | Power output of EES system m at time t |
ui,t | Status of existing coal fired unit i at time t |
uj,t | Status of existing gas fired unit j at time t |
usi,t | Startup status of existing coal fired unit i at time t |
usj,t | Startup status of existing gas fired unit j at time t |
Si | Startup cost of existing coal fired unit i |
Sj | Startup cost of existing gas fired unit j |
Gk,t | Power output of wind power unit k at time t |
Gl,t | Power output of PV unit l at time t |
Dt | System power load demand at time t |
crk,wind | Wind capacity factor of unit k at time t |
crl,pv | PV capacity factor of unit l at time t |
CUk,t | Curtailed power output of wind power unit k at time t |
CUl,t | Curtailed power output of PV unit l at time t |
Gm,stout,rsrv | Reserve discharging capacity of EES system m at time t |
Gm,stint,rsrv | Reserve charging capacity of EES system m at time t |
Rst | System reserve capacity at time t |
Stolevm,t | Energy level of EES system m at time t |
ηm,stin | Charging efficiency of EES system m |
ηm,stout | Discharging efficiency of EES system m |
γi,coal | Minimum load rate of existing coal fired unit i |
γj,gas | Minimum load rate of existing gas fired unit j |
riup | Ramping-up constraints of existing coal fired unit i |
rido | Ramping-down constraints of existing coal fired unit i |
rjup | Ramping-up constraints of existing gas fired unit j |
rjdo | Ramping-down constraints of existing gas fired unit j |
ui,dur | Status of continuous operation time of existing coal fired unit i |
uj,dur | Status of continuous operation time of existing gas fired unit j |
Abbreviations | |
GDP | Gross domestic product |
EES | Electrical energy storage |
IPCC | Intergovernmental panel on climate change |
NDCs | Nationally Determined Contributions |
GW | Gigawatts |
TWh | Terawatt-hours |
MINLP | Mixed integer nonlinear programming |
MIP | Mixed integer programming |
GAMS | General algebraic modeling system |
VRE | Variable renewable energy |
PV | Photovoltaic |
CHP | Combined heat and power |
CCGT | Combined-cycle gas turbines |
NDRC | National Development and Reform Commission |
NEA | National Energy Administration |
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Type | Total Capacity/MW | CHP Capacity/MW |
---|---|---|
Coal-fired units | 50,425 | 21,411 |
CCGT units | 10,395 | 10,395 |
Type | Investment Cost (CNY/kW) | Operating Cost (CNY/kW) | Rtrofitted Cost (CNY/kW) |
---|---|---|---|
Coal-fired units units | 3200 | 0.18 | 500 |
CCGT units | 2500 | 0.4 | 500 |
Wind power units | 7600 | 0.00 | -- |
PV units | 4600 | 0.00 | -- |
The EES systems of Lithium-ion batteries | 1200 (1 h) | 0.00389 | -- |
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Zhao, J.; Wang, X.; Chu, J. The Strategies for Increasing Grid-Integrated Share of Renewable Energy with Energy Storage and Existing Coal Fired Power Generation in China. Energies 2022, 15, 4699. https://doi.org/10.3390/en15134699
Zhao J, Wang X, Chu J. The Strategies for Increasing Grid-Integrated Share of Renewable Energy with Energy Storage and Existing Coal Fired Power Generation in China. Energies. 2022; 15(13):4699. https://doi.org/10.3390/en15134699
Chicago/Turabian StyleZhao, Jun, Xiaonan Wang, and Jinsheng Chu. 2022. "The Strategies for Increasing Grid-Integrated Share of Renewable Energy with Energy Storage and Existing Coal Fired Power Generation in China" Energies 15, no. 13: 4699. https://doi.org/10.3390/en15134699
APA StyleZhao, J., Wang, X., & Chu, J. (2022). The Strategies for Increasing Grid-Integrated Share of Renewable Energy with Energy Storage and Existing Coal Fired Power Generation in China. Energies, 15(13), 4699. https://doi.org/10.3390/en15134699