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Cost optimization of battery energy storage system size and cycling with residential solar photovoltaic

机译:电池储能系统尺寸的成本优化和住宅太阳能光伏发电的循环

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In Southeast Queensland, investment in electricity infrastructure to meet peak demand, and a reduction in average demand because of high residential solar generation, has caused network under-utilization and rising electricity costs. Coupling a battery energy storage system (BESS) with solar photovoltaic (PV) allows consumers to reduce their electricity bills by storing excess solar generation to consume in peak time-of-use (TOU) tariff periods. The BESS size and cycle schedule were optimized using mixed-integer linear programming to minimize annual energy cost to residential households. The optimal size was the smallest system because of the high, size-proportional BESS costs. The optimal cycling reduced solar PV export and peak demand. The annual electricity costs with and without an optimized BESS were considered under various feed-in tariffs, TOU tariffs and PV inverter sizes. In every scenario, the BESS cost exceeded its electricity savings and was not financially beneficial to install.
机译:在昆士兰州东南部,由于高住户太阳能发电,电力基础设施投资以满足高峰需求,以及平均需求的降低,导致网络不足和电力成本上涨。耦合电池储能系统(BESS)与太阳能光伏(PV)允许消费者通过将过多的太阳能发电存储在使用峰值时间(TOU)关税期间来减少他们的电费。使用混合整数线性规划优化了BESS尺寸和周期时间表,以最大限度地降低住宅户口的年能成本。由于高尺寸比例的贝塞成本,最佳尺寸是最小的系统。最佳循环降低太阳能光伏导出和峰值需求。在各种饲料关税下,考虑了每年的电力成本和没有优化的贝塞,Tou关税和光伏逆变器尺寸。在每种情况下,贝塞成本超过了它的电力储蓄,并且在经济上无法安装。

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