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Electricity storage for grid-connected household dwellings with PV panels

机译:带光伏面板的并网家庭住宅的蓄电

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Classically electricity storage for PV panels is mostly designed for stand-alone applications. In contrast, we focus in this article on houses connected to the grid with a small-scale storage to store a part of the solar power for postponed consumption within the day or the next days. In this way the house owner becomes less dependent on the grid and does only pay for the net shortage of his energy production. Local storage solutions pave the way for many new applications like omitting over-voltage of the line and bridging periods of power-line black-out. Since 2009 using self-consumption of PV energy is publicly encouraged in Germany, which can be realised by electric storage.rnThis paper develops methods to determine the optimal storage size for grid-connected dwellings with PV panels. From measurements in houses we were able to establish calculation rules for sizing the storage. Two situations for electricity storage are covered: - the storage system is an optimum to cover most of the electricity needs; - it is an optimum for covering the peak power need of a dwelling.rnAfter these calculation rules a second step is needed to determine the size of the real battery. The-article treats the aspects that should be taken into consideration before buying a specific battery like lead-acid and lithium-ion batteries.
机译:传统上,用于光伏面板的蓄电大部分是为独立应用而设计的。相反,我们在本文中将重点放在与电网连接的房屋上,该房屋带有小型存储设备,用于存储一部分太阳能,以便在一天或第二天之内推迟使用。这样,房主变得对电网的依赖程度降低了,只为能源生产的净短缺付出了代价。本地存储解决方案为许多新应用铺平了道路,例如省去了线路的过压和电源线停电的桥接时间。自2009年以来,德国公开鼓励使用太阳能自耗,这可以通过蓄电来实现。rn本文提出了确定具有光伏面板的并网住宅最佳储能规模的方法。通过对房屋的测量,我们能够建立计算规则来确定存储空间的大小。涵盖了两种电力存储情况:-存储系统是满足大多数电力需求的最佳选择; -满足住宅的峰值功率的最佳选择。在这些计算规则之后,需要执行第二步以确定实际电池的大小。本文介绍了在购买特定的电池(如铅酸和锂离子电池)之前应考虑的方面。

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