1 |
A behavior-centered framework for real-time control and load-shedding using aggregated residential energy resources in distribution microgrids Mammoli A, Robinson M, Ayon V, Martinez-Ramon M, Chen CF, Abreu JM Energy and Buildings, 198, 275, 2019 |
2 |
Demand Side Management Strategy for Droop-Based Autonomous Microgrids Through Voltage Reduction Aderibole A, Zeineldin HH, Al Hosani M, El-Saadany EF IEEE Transactions on Energy Conversion, 34(2), 878, 2019 |
3 |
A new demand response algorithm for solar PV intermittency management Sivaneasan B, Kandasamy NK, Lim ML, Goh KP Applied Energy, 218, 36, 2018 |
4 |
Enabling strategies of electric vehicles for under frequency load shedding Liu H, Wang B, Wang N, Wu QW, Yang YD, Wei H, Li CB Applied Energy, 228, 843, 2018 |
5 |
Load-shedding strategy using a zero-sequence power supply scheme for distribution networks in a modern home or building Liao RN, Yang NC Energy and Buildings, 159, 179, 2018 |
6 |
Demand Response Potential: Available when Needed? Muller T, Most D Energy Policy, 115, 181, 2018 |
7 |
Power rationing in a long-term power shortage Heggie A, Eager D, McKinnon K, Van Der Weijde AH Energy Policy, 121, 202, 2018 |
8 |
Multi-layer fuzzy-based under-frequency load shedding in back-pressure smart industrial microgrids Khezri R, Golshannavaz S, Vakili R, Memar-Esfahani B Energy, 132, 96, 2017 |
9 |
Coordinated control of smart microgrid during and after islanding operation to prevent under frequency load shedding using energy storage system Koohi-Kamali S, Abd Rahim N Energy Conversion and Management, 127, 623, 2016 |
10 |
Extreme water-hammer pressure during one-after-another load shedding in pumped-storage stations Zeng W, Yang JD, Tang RB, Yang WJ Renewable Energy, 99, 35, 2016 |