Flexible Modern Power System: Real-Time Power Balancing through Load and Wind Power
Abstract
:1. Introduction
2. System Modeling
2.1. Modeling of the Flexible Loads
2.2. Modeling of Generating Units
2.2.1. Combined Heat and Power Plant Model
2.2.2. Decentralized Combined Heat and Power Plant
2.2.3. Wind Power Plant
2.3. Regulating Power Plan
2.4. Automatic Generation Control
3. Performance Analysis through Case Studies
3.1. Case Study 1: Power Balance Control through WPPs and CHPs
- = WPP generation cost
- = CHP generation cost
- = Secondary dispatch from WPP
- = Secondary dispatch from CHP
- = Minimum generational level of WPP
- = Maximum generational level of WPP
- = Minimum generation of CHP
- = Maximum generation of CHP
- = Upper dispatch limit of CHP
- = Lower dispatch limit of CHP
3.2. Case Study 2: Power Balance Control through WPPs and Flexible Loads
- = Cost of power generation from WPP
- = Cost of power generation from CHP
- = Energy activated through secondary response
- = Energy extracted through flexible units
- = Secondary dispatch from WPP
- = Secondary dispatch from CHP
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
Abbreviations
AGC | Automatic Generation Control |
WPPs | Wind Power Plants |
CPL | Cold Storage Power Plants |
EV | Electric Vehicles |
HP | Heat Pumps |
CHP | Centralized Combined Heat and Power plant |
DCHP | De-centralized Combined Heat and Power plant |
HA | Hour-Ahead |
TSO | Transmission System Operator |
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Power System Model | Generating Units | System Interconnections | ||||
---|---|---|---|---|---|---|
CHP (MW) | DCHP (MW) | WPP (MW) | Sweden (MW) | Great Belt Link (MW) | Germany (MW) | |
Capacities | 1754 | 220 | 2800 | 1700 | 600 | 600 |
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Basit, A.; Ahmad, T.; Yar Ali, A.; Ullah, K.; Mufti, G.; Hansen, A.D. Flexible Modern Power System: Real-Time Power Balancing through Load and Wind Power. Energies 2019, 12, 1710. https://doi.org/10.3390/en12091710
Basit A, Ahmad T, Yar Ali A, Ullah K, Mufti G, Hansen AD. Flexible Modern Power System: Real-Time Power Balancing through Load and Wind Power. Energies. 2019; 12(9):1710. https://doi.org/10.3390/en12091710
Chicago/Turabian StyleBasit, Abdul, Tanvir Ahmad, Asfand Yar Ali, Kaleem Ullah, Gussan Mufti, and Anca Daniela Hansen. 2019. "Flexible Modern Power System: Real-Time Power Balancing through Load and Wind Power" Energies 12, no. 9: 1710. https://doi.org/10.3390/en12091710
APA StyleBasit, A., Ahmad, T., Yar Ali, A., Ullah, K., Mufti, G., & Hansen, A. D. (2019). Flexible Modern Power System: Real-Time Power Balancing through Load and Wind Power. Energies, 12(9), 1710. https://doi.org/10.3390/en12091710