太阳能负电阻对直流微电网稳定性的影响:虚拟阻尼电压和电流太阳能下垂仿真控制器

M. Yadav, Navdeep Singh
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引用次数: 0

摘要

负太阳能电阻,高度依赖于太阳能工作点。在低辐照度时,系统将变得缓慢和不稳定。据报道,通过并联阻抗模拟条件(pic)可以消除太阳负电阻的影响。在低辐照度时,系统稳定性已经移动到一个不稳定的位置,这是不能完全解决的。本文提出了一种虚拟惯性阻尼电压电流太阳能下垂仿真控制器,以改善直流微电网系统的电压振荡特征、惯性问题和阻尼问题。在直流微电网中,来自直流电容器的固有惯性很低,因此在辐照度降低期间影响母线电压振荡。在较低辐照度下,负太阳电阻的等效阻抗增加了系统的振荡。内部电流控制器解决了光伏系统的振荡问题和电压不稳定问题。此外,采用基于压电陶瓷的虚拟惯性-阻尼电压恢复垂降控制器使PV电压稳态误差最小化。利用虚拟惯性阻尼电压和电流太阳能下垂仿真控制器,通过极零图对各种负太阳电阻条件下的性能分析和动态特性进行了讨论。本文着重于稳定性分析,以加强直流微电网。讨论了太阳能控制器与双向变换器(BDC)控制器的性能,验证了系统之间的功率管理,以管理不平衡负载的功率。
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Impact of Negative Solar Resistance on DC Microgrid Stability: Virtual Damping Voltage and Current Solar Droop Emulated Controller
The negative solar resistance, is highly dependent on the solar operating point. The system will become sluggish and unstable during low irradiance. It is reported that the impact of negative solar resistance is nullified by parallel impedance emulated condition (PIEC). During low irradiance, the system stability has been moved to an unstable position which is not fully resolved by PIEC. In this paper, a virtual inertia-damping voltage and current solar droop emulated controller is proposed to improve the voltage oscillation profile, inertia problem and damping of the DC microgrid system. In DC microgrids, the inherent inertia from DC capacitors is low, thus affecting the bus voltage oscillation during a reduction of irradiance. The oscillation of the system has been increased due to the equivalent impedance by negative solar resistance at lower irradiance. Oscillation’s issue and voltage instability of the PV system have been enhanced by the inner current controller. In addition, the steady-state error of the PV voltage is minimized by the virtual inertia-damping voltage restoration droop controller with PIEC. Performance analysis and dynamic characteristics are discussed through a pole-zero plot for the various conditions of negative solar resistance using virtual inertia-damping voltage and current Solar Droop Emulated Controller. This paper focuses on stability analysis to strengthen the DC microgrid. The performance of the solar controller with bidirectional converter (BDC) controller has been discussed to verify the power management between the system to manage the power for the unbalanced load.
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