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Accelerated Spatially Resolved Electrical Simulation of Photovoltaic Devices Using Photovoltaic-Oriented Nodal Analysis

机译:使用面向光伏的节点分析加速光伏设备的空间分辨电仿真

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摘要

This paper presents photovoltaic-oriented nodal analysis (PVONA), a general and flexible tool for efficient spatially resolved simulations for photovoltaic (PV) cells and modules. This approach overcomes the major problem of the conventional Simulation Program with Integrated Circuit Emphasis-based approaches for solving circuit network models, which is the limited number of nodes that can be simulated due to memory and computing time requirements. PVONA integrates a specifically designed sparse data structure and a graphics processing unit-based parallel conjugate gradient algorithm into a PV-oriented iterative Newton-Raphson solver. This first avoids the complicated and time-consuming netlist parsing, second saves memory space, and third accelerates the simulation procedure. In the tests, PVONA generated the local current and voltage maps of a model with 316 x 316 nodes with a thin-film PV cell in 15 s, i.e., using only 4.6% of the time required by the latest LTSpice package. The 2-D characterization is used as a case study and the potential application of PVONA toward quantitative analysis of electroluminescence are discussed.
机译:本文介绍了面向光伏的节点分析(PVONA),这是用于光伏(PV)电池和模块的有效空间分辨仿真的通用且灵活的工具。该方法克服了传统的基于集成电路重点的仿真程序用于解决电路网络模型的主要问题,该方法由于内存和计算时间的要求而可以模拟的节点数量有限。 PVONA将专门设计的稀疏数据结构和基于图形处理单元的并行共轭梯度算法集成到了面向PV的迭代牛顿-拉夫森求解器中。这首先避免了复杂而费时的网表解析,其次节省了存储空间,并且第三步加速了仿真过程。在测试中,PVONA在15秒内(即仅使用最新LTSpice封装所需的时间的4.6%生成了具有316 x 316个节点的带有薄膜PV电池的模型的局部电流和电压图)。以二维表征为例,讨论了PVONA在电致发光定量分析中的潜在应用。

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