Title :
Optimal Residential Demand Response in Distribution Networks
Author :
Wenbo Shi ; Na Li ; Xiaorong Xie ; Chi-Cheng Chu ; Gadh, Rajit
Author_Institution :
Smart Grid Energy Res. Center, Univ. of California, Los Angeles, Los Angeles, CA, USA
Abstract :
Demand response (DR) enables customers to adjust their electricity usage to balance supply and demand. Most previous works on DR consider the supply-demand matching in an abstract way without taking into account the underlying power distribution network and the associated power flow and system operational constraints. As a result, the schemes proposed by those works may end up with electricity consumption/shedding decisions that violate those constraints and thus are not feasible. In this paper, we study residential DR with consideration of the power distribution network and the associated constraints. We formulate residential DR as an optimal power flow problem and propose a distributed scheme where the load service entity and the households interactively communicate to compute an optimal demand schedule. To complement our theoretical results, we also simulate an IEEE test distribution system. The simulation results demonstrate two interesting effects of DR. One is the location effect, meaning that the households far away from the feeder tend to reduce more demands in DR. The other is the rebound effect, meaning that DR may create a new peak after the DR event ends if the DR parameters are not chosen carefully. The two effects suggest certain rules we should follow when designing a DR program.
Keywords :
demand side management; load flow; load shedding; power consumption; power distribution economics; supply and demand; IEEE test distribution system; distribution networks; electricity consumption; electricity shedding; electricity usage; load service entity; optimal demand schedule; optimal power flow; optimal residential demand response; power distribution network; residential DR parameters; supply and demand; supply-demand matching; Aggregates; Electricity; Home appliances; Load modeling; Power systems; Schedules; Simulation; Demand response (DR); distributed algorithms; distribution networks; optimal power flow (OPF); smart grid;
Journal_Title :
Selected Areas in Communications, IEEE Journal on
DOI :
10.1109/JSAC.2014.2332131