A hybrid MILP-NLP-complementarity decomposition solved via spatial/temporal ADMM yields up to 13x speedup on unbalanced AC power flow-constrained DES design for networks with 55 loads, with maximum 0.61% optimality gap.
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Energy system modeling shows methanol backstop increases costs 2.4% over hydrogen in high-electrification carbon-neutral scenarios while simplifying logistics.
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Distributed Energy System Design including Unbalanced AC Power Flow for Large LV Networks with ADMM
A hybrid MILP-NLP-complementarity decomposition solved via spatial/temporal ADMM yields up to 13x speedup on unbalanced AC power flow-constrained DES design for networks with 55 loads, with maximum 0.61% optimality gap.
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A Minimal Methanol Backstop for High Electrification Scenarios
Energy system modeling shows methanol backstop increases costs 2.4% over hydrogen in high-electrification carbon-neutral scenarios while simplifying logistics.