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May 6, 2026Energies0 citationsOpen Access

A Hybrid Heuristic–Benders Method for Wind–Hydrogen Investment Planning with Non-Analytical Cost Functions

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HXHaozhe XiongBFBingyang FengFYFangbin Yan

Key Points

  • To develop a method for optimizing investment decisions in a wind-hydrogen energy system under uncertainty.
  • Formulated as a two-stage stochastic program
  • First-stage investment decisions made before uncertainty realization
  • Optimized operational recourse model for hourly scenarios
  • Achieved convergence in 35.86 seconds in a black-box case study with 500 scenarios
  • Secured an investment plan with specifications for wind-farm construction and hydrogen storage
  • Addressed challenges of non-analytical investment cost evaluations

Abstract

This paper studies capacity planning for a wind–hydrogen integrated energy system under scenario-based uncertainty in wind generation, hydrogen demand, and electricity prices. The model is formulated as a two-stage stochastic program in which first-stage investment decisions are selected before uncertainty is realized and second-stage hourly operation is optimized for each representative scenario. The main methodological difficulty is that part of the first-stage hydrogen-storage investment cost may be available only through a non-analytical evaluator, such as supplier quotation logic, simulation software, or a data-driven estimator, while the operational recourse model remains linear. To address this setting, a hybrid heuristic–Benders framework, denoted as GSOA-Benders, is developed by coupling the General-Soldiers Optimization Algorithm for derivative-free first-stage search with Benders cuts generated from linear programming subproblems. The framework is not presented as a replacement for commercial solvers on explicit convex or mixed-integer models; rather, it is intended for cases where exact algebraic reformulation of the first-stage cost is unreliable or unavailable. In the black-box case study with 500 scenarios, the method converges in 35.86 s and obtains an investment plan expressed as x=1,0.53,23.23,0, corresponding to wind-farm construction, a 0.53 MW electrolyzer, a 23.23 MWh hydrogen tank, and no fuel-cell investment. Additional discussion is provided on stability-gap interpretation, benchmark limitations, component lifetime assumptions, hydrogen losses, and environmental extensions.

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Cite This Study

Xiong et al. (2026) studied this question.

synapsesocial.com/papers/69fa98bd04f884e66b532844https://doi.org/10.3390/en19092172
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