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Power Systems Computation Conference 2026

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Context-Aware Stochastic Modeling of Consumer Energy Resource Aggregators In Electricity Markets

Aggregators of consumer energy resources (CERs) like rooftop solar and battery energy storage (BES) face challenges due to their inherent uncertainties. A sensible approach is to use stochastic optimization to handle such uncertainties, which can lead to infeasible problems or loss in revenues if not chosen appropriately. This paper presents three stochastic optimization methods: risk-neutral, robust, and chance-constrained, to address the impact of CER uncertainties for aggregators who participate in energy and regulation services markets in the Australian National Electricity Market. Furthermore, these methods utilize the flexibility of BES, considering precise stateof- charge dynamics and complementarity constraints, aiming for scalable performance while managing uncertainty. The problems are formed as two-stage stochastic mixed-integer linear programs, with relaxations adopted for large scenario sets. The solution approach employs scenario-based methodologies and affine recourse policies to obtain tractable reformulations. These methods are evaluated in terms of profit and constraint violation risk across use cases reflecting diverse operational and market settings, uncertainty characteristics, and decisionmaking preferences, offering aggregators insight into the selection of appropriate methods. Numerical results indicate that, while stochastic methods outperform traditional deterministic methods in terms of profit and risk, the risk-neutral method performs best when uncertainty is correctly captured, whereas robust and chance-constrained methods are more effective when uncertainty is misspecified.

Chatum Sankalpa
University of Melbourne
Australia

Ghulam Mohy-ud-in
Commonwealth Scientific and Industrial Research Organization
Australia

Erik Weyer
University of Melbourne
Australia

Maria Vrakopoulou
University of Cyprus
Cyprus

 


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