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High-Performance Pure Sine Wave Inverter with Robust Intelligent Sliding Mode Maximum Power Point Tracking for Photovoltaic Applications

机译:具有稳健智能滑模最大功率点跟踪功能的高性能纯正弦波逆变器用于光伏应用

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摘要

Photovoltaic (PV) power generation has been extensively used as a result of the limited petrochemical resources and the rise of environmental awareness. Nevertheless, PV arrays have a widespread range of voltage changes in a variety of solar radiation, load, and temperature circumstances, so a maximum power point tracking (MPPT) method must be applied to get maximum power from PV systems. Sliding mode control (SMC) is effectively used in PV power generation due to its robustness, design simplicity, and superior interference suppression. When the PV array is subject to large parameter changes/highly uncertain conditions, the SMC leads to degraded steady-state performance, poor transient tracking speed, and unwanted flutter. Therefore, this paper proposes a robust intelligent sliding mode MPPT-based high-performance pure sine wave inverter for PV applications. The robust SMC is designed through fast sliding regime, which provides fixed time convergence and a non-singularity that allows better response in steady-state and transience. To avoid the flutter caused by system unmodeled dynamics, an enhanced cuckoo optimization algorithm (ECOA) with automatically adjustable step factor and detection probability is used to search control parameters of the robust sliding mode, thus finding global optimal solutions. The coalescence of both robust SMC and ECOA can control the converter to obtain MPPT with faster convergence rate and without untimely trapping at local optimal solutions. Then the pure sine wave inverter with robust intelligent sliding mode MPPT of the PV system delivers a high-quality and stable sinusoidal wave voltage to the load. The efficacy of the proposed method is validated on a MPPT pure sine wave inverter system by using numerical simulations and experiments. The results show that the output of the proposed PV system can improve steady-state performance and transient tracking speed.
机译:由于有限的石化资源和对环境的关注,光伏发电已被广泛使用。尽管如此,PV阵列在各种太阳辐射,负载和温度情况下具有广泛的电压变化范围,因此必须采用最大功率点跟踪(MPPT)方法来从PV系统获得最大功率。滑模控制(SMC)由于其坚固性,设计简单性和出色的干扰抑制能力而被有效地用于光伏发电。当PV阵列经受较大的参数更改/高度不确定的条件时,SMC会导致稳态性能下降,瞬态跟踪速度变差以及不希望的抖动。因此,本文提出了一种基于鲁棒智能滑模基于MPPT的高性能纯正弦波逆变器,用于光伏应用。鲁棒性SMC是通过快速滑动机制设计的,该机制提供固定的时间收敛性和非奇异性,从而可以在稳态和瞬态情况下提供更好的响应。为避免系统未建模动力学引起的抖动,使用具有自动可调步长因子和检测概率的增强型布谷鸟优化算法(ECOA)来搜索鲁棒滑模的控制参数,从而找到全局最优解。强大的SMC和ECOA的结合可以控制转换器,以更快的收敛速度获得MPPT,而不会在局部最优解决方案上过分陷入困境。然后,具有鲁棒性的光伏系统智能滑模MPPT的纯正弦波逆变器向负载提供了高质量且稳定的正弦波电压。通过数值模拟和实验,在MPPT纯正弦波逆变器系统上验证了该方法的有效性。结果表明,所提出的光伏系统的输出可以提高稳态性能和瞬态跟踪速度。

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