基于热泵池的储热系统的智能运行以提高成本效益

Pavani Ponnaganti, J. Pillai, B. Bak‐Jensen, Pierre J. C. Vogler-Finck
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引用次数: 1

摘要

农村地区的用户比城市的用户的取暖费要高。热泵(HP)提供的灵活性和增加可再生能源(RES)份额可以在提供廉价热量而不影响客户舒适度偏好方面发挥关键作用。本文提出了一种基于遗传算法的个体家庭最优热消耗池,以使能源成本最小化。开发了基于热泵(HP)和相变材料(PCM)的智能储热系统模型。这些模型是针对20个拥有不同热消耗行为的太阳能装置的家庭进行模拟的,这些家庭位于选定的农村地区,即丹麦北日德兰半岛的Skive市。通过在低电价和当地可再生资源(包括太阳能光伏发电)的过剩生产期间利用电力,智能地协调热单元,从而估计最佳的热消耗概况。本研究在DIgSILENT powerfactory中进行了仿真,并利用Matlab中的优化程序,演示了柔性HP机组对局部发电平衡的控制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Intelligent operation of thermal storage systems based heat pump pool for cost efficiency
The customers in the rural areas experience high heating costs than in the cities. The flexibility offered by the heat pumps (HP) and increasing the renewable energy sources (RES) share can play a key role in providing cheap heat without affecting the customer comfort preferences. This paper proposed a genetic algorithm based optimal heat consumption of individual households as a pool for minimizing the energy cost. The smart models of heat pump (HP) and phase change material (PCM) based heat storage systems are developed. These models are simulated for a cluster of 20 households having solar installations with different heat consumption behaviors that are located in a selected rural area i.e., Skive municipality in North Jutland, Denmark. The thermal units are intelligently coordinated by utilizing the electricity during periods of low price and excess production from local renewable resources including solar-photovoltaic (PV), thereby estimating the optimal heat consumption profiles. This study is simulated in DIgSILENT powerfactory and optimization routine from Matlab is utilised, which demonstrates the control of flexible HP units for balancing the local generation.
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