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Power hardware in the loop simulation with feedback current filtering for electric systems

机译:回路仿真中的电源硬件,具有用于电气系统的反馈电流滤波

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Power Hardware-in-the-Loop (PHIL) simulations are suited for electric component tests and electric tests of hardware interacting with complex systems that are simulated. PHIL simulations combine the advantages of a pure software simulation and a hardware system test. At the present time, PHIL simulations unfortunately are not “plug and play”, some important considerations have to be made before a PHIL experiment can be is carried out in a laboratory. This contribution focuses on an improvement on how the hardware part of a PHIL simulation is coupled with the real time computing system by introducing an additional current filter in the feedback path. The filter drastically improves the stability margin of the simulation setup. This method is applied to a use case involving a photovoltaic inverter connected to a low voltage grid with a linear and a nonlinear load. The low voltage grid and the loads are simulated and the photovoltaic inverter connected as real hardware to the simulation environment. The PHIL simulation would not run stably without the introduced feedback filter. With feedback current filtering the PHIL experiment can be stabilized and an insight in the interaction of the nonlinear load and the photovoltaic inverter can be gained. The feedback filter has to be parameterized appropriately; it is a compromise between stability margin and accuracy of the PHIL setup.
机译:电源硬件在环(PHIL)仿真适用于电气组件测试以及与与复杂系统进行交互的硬件的电气测试。 PHIL仿真结合了纯软件仿真和硬件系统测试的优势。目前,不幸的是,PHIL仿真还不是“即插即用”的,在实验室中进行PHIL实验之前必须进行一些重要的考虑。该贡献着重于通过在反馈路径中引入额外的电流滤波器来改善PHIL仿真的硬件部分如何与实时计算系统结合的改进。该滤波器极大地提高了仿真设置的稳定性。该方法适用于涉及光伏逆变器的用例,该光伏逆变器连接到具有线性和非线性负载的低压电网。对低压电网和负载进行仿真,并将光伏逆变器作为真实硬件连接到仿真环境。如果没有引入反馈滤波器,PHIL仿真将无法稳定运行。通过反馈电流滤波,PHIL实验可以稳定下来,并且可以洞悉非线性负载与光伏逆变器之间的相互作用。反馈滤波器必须适当地设置参数。这是PHIL设置的稳定性和精度之间的折衷。

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