Table 9
Overall discussions and conclusion of existing solutions for frequency regulation in microgrid.
Reference | Discussion | Conclusion |
---|---|---|
Kamal et al. [47] | Reviews load flow and optimization strategies for smart grid integration | Advanced strategies enhance grid stability; future work on adaptive, scalable solutions needed |
Tyagi et al. [48] | Analyzes control strategies for power quality in hybrid microgrids. | Control strategy improves power quality; real-world testing suggested. |
Sharma et al. [49] | Reviews flexible power-point-tracking algorithms for photovoltaic systems. | Algorithms enhance photovoltaic efficiency; future research on adaptive solutions recommended |
Xu et al. [50] | Discusses optimization for frequency regulation and economic dispatch in microgrids. | Strategy improves regulation and efficiency; applicable to diverse microgrids. |
Ghafouri et al. [51] | Evaluates multi-function control for BESS in islanded microgrids | Control scheme enhances stability and regulation; further application in complex microgrids suggested. |
Bhujel et al. [52] | Combines droop and MPC for voltage and frequency control in microgrids. | Combined approach enhances stability; scalability needs exploration. |
Saxena et al. [53] | Analyzes load forecasting and renewable integration’s impact on grid reliability | Strategies improve reliability; further research on forecasting methods suggested. |
Xu et al. [54] | Optimizes frequency regulation and dispatch using distributed techniques. | Enhances regulation and efficiency in microgrids; real-world application needed. |
Al-Salloomee et al. [55] | Evaluates control for voltage unbalance and harmonics in microgrids. | Control improves power quality; real-time testing recommended. |
Javadi et al. [56] | Focuses on frequency stability in microgrid scheduling with islanding. | Method enhances stability during islanding; integration with other techniques advised. |
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