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Physical Effects of Distributed PV Generation on California's Distribution System

2015/06/18 by Michael A. Cohen, Cohen, Michael A., Duncan S. Callaway +1
Engineering · #FOS: Physical sciences #Microgrid Control and Optimization #Optimal Power Flow Distribution #Physics and Society (physics.soc-ph) #Smart Grid Energy Management

paper · pdf · doi:10.48550/arxiv.1506.06643

openalex publication_date 2015/06/18 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/28

Abstract

Deployment of high-penetration photovoltaic (PV) power is expected to have a range of effects -- both positive and negative -- on the distribution grid. The magnitude of these effects may vary greatly depending upon feeder topology, climate, PV penetration level, and other factors. In this paper we present a simulation study of eight representative distribution feeders in three California climates at PV penetration levels up to 100%, supported by a unique database of distributed PV generation data that enables us to capture the impact of PV variability on feeder voltage and voltage regulating equipment. When comparing the influence of feeder location (i.e. climate) versus feeder type on outcomes, we find that location more strongly influences the incidence of reverse power flow, reductions in peak loading and the presence of voltage excursions. On the other hand, we find that feeder characteristics more strongly influence the magnitude of loss reduction and changes in voltage regulator operations. We find that secondary distribution transformer aging is negligibly affected in almost all scenarios.

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