Skip to content
Open access

Technical evaluation of retrofitting solid-state transformers and battery energy storage systems for peak shaving within the footprint of ageing line-frequency distribution transformers in Aotearoa New Zealand

Sep 2026 · Archives of Sustainable Energy Systems · 0 citations · 72 references

Abstract

Aotearoa New Zealand’s distribution network faces significant strain from a 250% increase in distributed solar photovoltaic installations between 2013 and 2022. These trends increase vulnerability to failure of line-frequency transformers (LFT). The objective of this paper is to investigate the technical feasibility of retrofitting existing LFT footprints with integrated solid-state transformers (SST) with battery energy storage systems (BESS).  Using MATLAB/Simulink to simulate an 11 kV radial feeder, the study evaluated performance under strenuous dual-peak winter demand periods with transformers loaded to 110% of their rated capacity. The research demonstrates the potential recovery of up to 80% of the physical volume compared to LFTs allowing the footprint to be repurposed for decentralised BESS. The findings indicate that the medium density storage technologies (0.15-0.35 kWh/L) are the best option. The technology enables  a load curtailment of 20% reducing the transformer loading from 110% down to the safe 90% threshold. However, the dual-peak demand profile for Aotearoa New Zealand’s often depletes storage during morning cycles, while restricted charging windows limites utilisation of higher-density storage. Furthermore, while successful at the 0.4 kV busbar level, the aggregate impact of the main 11 kV feeder remaines minimal below 7.6%. It is recommended that future research focus on predictive control methods to optimise storage state of charge across successive peaks and the integration of downstream renewables to expand charging windows.

Read PDF

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.