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首页> 外文期刊>Journal of Global Optimization >Lagrangian relaxation based heuristics for a chance-constrained optimization model of a hybrid solar-battery storage system
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Lagrangian relaxation based heuristics for a chance-constrained optimization model of a hybrid solar-battery storage system

机译:拉格朗日放松基于混合太阳能电池存储系统的机会约束优化模型的启发式

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摘要

We develop a stochastic optimization model for scheduling a hybrid solar-battery storage system. Solar power in excess of the promise can be used to charge the battery, while power short of the promise is met by discharging the battery. We ensure reliable operations by using a joint chance constraint. Models with a few hundred scenarios are relatively tractable; for larger models, we demonstrate how a Lagrangian relaxation scheme provides improved results. To further accelerate the Lagrangian scheme, we embed the progressive hedging algorithm within the subgradient iterations of the Lagrangian relaxation. We investigate several enhancements of the progressive hedging algorithm, and find bundling of scenarios results in the best bounds. Finally, we provide a generalization for how our analysis extends to a microgrid with multiple batteries and photovoltaic generators.
机译:我们开发了一个随机优化模型,用于调度混合太阳能电池存储系统。 过度承诺的太阳能功率可用于对电池充电,而通过放电电池满足承诺的电源短路。 我们通过使用联合机会约束确保可靠的操作。 具有几百个情景的模型相对易行; 对于较大的模型,我们展示了拉格朗日的放松方案如何提供改善的结果。 为了进一步加速拉格朗日方案,我们在拉格朗日放松的次微生迭代中嵌入了渐进的对冲算法。 我们调查了逐行对冲算法的几个增强功能,并找到了捆绑方案导致最佳界限。 最后,我们提供了我们的分析如何与多电池和光伏发电机延伸到微电网的概括。

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