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Artificial-Neural-Network-Based Autonomous Demand Response Controller for Thermostatically Controlled Loads

delete2023-09-01
delete5
PRE
AI
B
Bilal Khan *
S
Saifullah Shafiq
A
Ali T. Al‐Awami
DOI:10.1109/JSYST.2023.3280927delete
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摘要

摘要

En 中文
Thermostatically controlled loads (TCLs) possess an inherent potential for demand-side management (DSM). Space heating (SH) demands offer added flexibility due to their heat-storing capability and fast response times that may be unnoticed, but it has significant value for DSM. In this article, a communication-free demand response (DR) controller has been presented that harnesses the heat-storing capacity of residential buildings by utilizing TCLs. The proposed controller addresses customer voltage violations, comfort constraints, and energy savings. The DR controller attempts to control the TCLs by relying on voltage and voltage-to-load sensitivity. By deploying an artificial-neural-network-based model, the proposed control scheme ensures that the SH loads connected at spatially distributed nodes in the power system participate fairly to mitigate the residential grid voltage violations. Simulation results verify the proposed controller's performance to revamp the system voltage profiles while maintaining the desired comfort of end users. The controller is successfully tested with distributed generation integration, system reconfiguration, severe ambient temperature, and noise in the measured signals.
Keyword:
Temperature measurement
Voltage control
Data models
Temperature sensors
Sensitivity
Prediction algorithms
Load modeling
Autonomous
demand response (DR)
distribution system
thermostatically controlled loads (TCL)
voltage control

期刊

I
IEEE Open Journal of Circuits and Systems
IF:
2.4
论文数:
4.5K
被引数:
387

机构

C
concordia university - canada
学者数:
8.0K
论文数: 8.9K
被引数: 4
U
University of Queensland
学者数:
5.0W
论文数: 5.1W
被引数: 9.2W
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