Electric Power System Studies for a Multi-MW PV Farm and Large Rural Community with Net Zero Energy and Microgrid Capabilities

Evan S. Jones, Oluwaseun M. Akeyo, K. Waters, D. Ionel
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Abstract

Solar photovoltaic (PV) systems are currently being deployed at an accelerated rate because of their cost-competitiveness and environmental benefits, which make them a prime candidate for local renewable energy generation in communities. Microgrids can help accommodate for the problems that accompany PV systems, such as intermittency due to weather, by coordinating different distributed energy resources (DERs), while islanded or by drawing power from the utility while in grid-connected mode. An islanding option is also important for resilience and grid fault mitigation, even if other DERs are not present within the system. This paper studies the potential benefits that a multi-MW utility-scale PV farm may yield for a large rural community when installed within a grid-connected microgrid structure. The PV system was optimally sized based on net present cost (NPC) with a net zero energy (NZE) goal. With local solar PV generation and a connection to the grid to transmit overgeneration through, the community can be NZE by having a PV farm power rating that is much greater than the peak load demand. This may lead to cases of increased transient severity during mode transitions and may require substantial curtailment of PV. A control scheme is proposed to smooth system transients that result from the switching between the two modes of operation in order to avoid system damage or unreliable load service.
具有净零能耗和微电网能力的多兆瓦光伏农场和大型农村社区电力系统研究
由于具有成本竞争力和环境效益,太阳能光伏系统目前正以更快的速度部署,这使其成为社区当地可再生能源发电的主要候选人。微电网可以通过在孤岛状态下协调不同的分布式能源(DERs)或在并网模式下从公用事业公司获取电力,帮助解决光伏系统所伴随的问题,例如由于天气原因导致的间歇性问题。孤岛选择对于恢复力和电网故障缓解也很重要,即使系统中不存在其他der。本文研究了当安装在并网微电网结构中时,多兆瓦公用事业规模的光伏电站可能为大型农村社区带来的潜在效益。光伏系统的最佳规模是基于净当前成本(NPC)和净零能耗(NZE)目标。通过当地的太阳能光伏发电和与电网的连接来传输过剩的电力,社区可以通过拥有一个比峰值负荷需求大得多的光伏电站来实现NZE。这可能导致模式转换期间瞬态严重程度增加的情况,并可能需要大量削减PV。提出了一种控制方案,以平滑两种运行模式切换引起的系统暂态,避免系统损坏或负荷服务不可靠。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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