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Framework for optimal grounding system design concerning IEEE standard

机译:IEEE标准的最佳接地系统设计框架

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This paper investigates the optimal grounding grid design using artificial intelligence techniques based on the empirical formula for grounding resistance (Rg), touch and step voltages (Et and Es), which are addressed in IEEE Std. 80-2013/Cor. 1-2015. The objective function is formulated based on the grid conductors’ material cost and the installation cost. Particle swarm optimization (PSO) and genetic algorithm (GA) are individually utilized to search for and confirm the global best solution of minimizing the grounding system cost with considering all operation constraints including the safety criteria. A modified objective function is constructed based on self-adaptive penalization utilized to account for constraint violations during the optimization process. The selection strategy for modifying the local best positions of particles and the global best position of the swarm is proposed to enhance the ability of PSO for fast convergence. Results proved that either PSO or GA settles on the global best solution, successfully. To perform the space domain investigation, the optimal grounding grid design is implemented using a finite element method, where the COMSOL Multiphysics program is selected to verify the settled optimal global solution. Using COMSOL, the grounding resistance and safety criteria are evaluated over the grid diagonally. The COMSOL results ensure the operating constraints satisfaction of the optimal grounding grid design. The performance evaluation reveals that the grounding potential rise limit, the available grid area, and the number of vertical rods greatly affect the optimization of the grounding system design. The results also illustrate a great significant effect of the fault current and upper surface resistivity on the optimal grid design.
机译:本文通过基于用于接地电阻(RG),触摸和阶跃电压(ET和ES)的经验公式来研究最佳接地网格设计,其在IEEE STD中寻址。 80-2013 / cor。 1-2015。基于网格导体材料成本和安装成本配制了目标函数。粒子群优化(PSO)和遗传算法(GA)被单独地用于搜索并确认通过考虑包括安全标准的所有操作约束来最小化接地系统成本的全球最佳解决方案。根据用于在优化过程中解释约束违规的自适应惩罚,构建修改的目标函数。提出了修改颗粒局部最佳位置和群体的全球最佳位置的选择策略,以增强PSO快速收敛的能力。结果证明,PSO或GA在全球最佳解决方案上沉淀成功。为了执行空间域调查,使用有限元方法实现最佳接地网格设计,其中选择COMSOL多体学程序以验证定居的最佳全球解决方案。使用COMSOL,对角地在网格上进行接地电阻和安全标准。 COMSOL结果确保了最佳接地网格设计的操作约束满足。性能评估表明,接地电位上升极限,可用的网格区域,垂直杆的数量大大影响了接地系统设计的优化。结果还说明了最佳网格设计上的故障电流和上表面电阻率的显着显着效果。

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