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Multiple Fault Location in a Photovoltaic Array Using Bidirectional Hetero-Associative Memory Network in Micro-Distribution Systems

机译:使用双向异位关联内存网络在微分配系统中的光伏阵列中的多个故障位置

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摘要

In manual maintenance inspections of large-scaled photovoltaic (PV) or rooftop PV systems, several days are required to survey the entire PV field. To improve reliability and shorten the amount of time involved, this study proposes an electrical examination-based method for locating multiple faults in the PV array. The maximum power point tracking (MPPT) algorithm is used to estimate the maximum power of each PV panel; this is then compared with metering the output power of PV array. Power degradation indexes as input variables are parameterized to quantify the degradation between estimated maximum PV output power and metered PV output power, which can be categorized into normal condition, grounded faults, open-circuit faults, bridged faults, and mismatch faults. Bidirectional hetero-associative memory (BHAM) networks are then used to associate the inputs and locate multiple faults as output variables within the PV array. For a rooftop PV system with two strings, experimental results demonstrate that the proposed model has computational efficiency in learning and detection accuracies for real-time applications, and that its algorithm is easily implemented in a mobile intelligent vehicle.
机译:在大规模光伏(PV)或屋顶PV系统的手动维护检查中,调查整个光伏场需要几天时间。为了提高可靠性并缩短所涉及的时间量,本研究提出了一种基于电气检查的方法,用于在PV阵列中定位多个故障。最大功率点跟踪(MPPT)算法用于估计每个PV面板的最大功率;然后将其与计量PV阵列的输出功率进行比较。作为输入变量的功率劣化索引是参数化的,以量化估计的最大PV输出功率和计量光伏输出功率之间的劣化,可分为正常状态,接地故障,开路故障,桥接故障和不匹配故障。然后使用双向异性关联存储器(BHAM)网络将输入相关联,并将多个故障定位为PV阵列内的输出变量。对于具有两个字符串的屋顶PV系统,实验结果表明,所提出的模型具有用于实时应用的学习和检测精度的计算效率,并且其算法在移动智能车辆中容易实现。

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