Stochastic optimal scheduling of demand response-enabled microgrids with renewable generations: An analytical-heuristic approach
Yang Li, Kang Li, Zhen Yang, Yang Yu, Runnan Xu, Miaosen Yang

TL;DR
This paper presents a hybrid analysis-heuristic method combining Jaya algorithm and interior point method for optimal scheduling of demand response-enabled microgrids with renewable energy, balancing costs and renewable uncertainties.
Contribution
It introduces the Jaya-IPM hybrid approach for bi-level microgrid scheduling considering multi-stakeholders and real-time pricing, improving efficiency and coordination.
Findings
The method effectively balances microgrid and user interests.
It achieves peak load shaving through demand response.
Jaya-IPM outperforms traditional algorithms in efficiency and results.
Abstract
In the context of transition towards cleaner and sustainable energy production, microgrids have become an effective way for tackling environmental pollution and energy crisis issues. With the increasing penetration of renewables, how to coordinate demand response and renewable generations is a critical and challenging issue in the field of microgrid scheduling. To this end, a bi-level scheduling model is put forward for isolated microgrids with consideration of multi-stakeholders in this paper, where the lower- and upper-level models respectively aim to the minimization of user cost and microgrid operational cost under real-time electricity pricing environments. In order to solve this model, this research combines Jaya algorithm and interior point method (IPM) to develop a hybrid analysis-heuristic solution method called Jaya-IPM, where the lower- and upper- levels are respectively…
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