Department of Electrical and Computer Engineering, COMSATS University Islamabad, Abbottabad Campus, Abbottabad, KPK, Pakistan.
Department of Electrical and Computer Engineering, COMSATS University Islamabad, Islamabad, Pakistan.
PLoS One. 2024 Feb 8;19(2):e0297612. doi: 10.1371/journal.pone.0297612. eCollection 2024.
This paper presents a single-phase Photovoltaic (PV) inverter with its superior and robust control in a standalone mode. Initially, modeling and layout of the Buck-Boost DC-DC converter by adopting a non-linear Robust Integral Back-stepping controller (RIBSC) is provided. The controller makes use of a reference voltage generated through the regression plane so that the operating point corresponding to the maximum power point (MPP) could be achieved through the converter under changing climatic conditions. The other main purpose of the Buck-Boost converter is to act like a transformer and produce an increased voltage at the inverter input whenever desired. By not using a transformer makes the circuit size more compact and cost-effective. The proposed RIBSC is applied to an H-bridge inverter with an LC filter to produce the sinusoidal wave in the presence of variations in the output to minimize the difference between the output voltage and the reference voltage. Lyapunov stability criterion has been used to verify the stability and finite-time convergence of the overall system. The overall system is simulated in MATLAB/Simulink to test the system performance with different loads, varying climatic conditions and inverter reference voltages. The proposed methodology is compared with a back-stepping controller and Proportional Integral Derivative (PID) controller under rapidly varying climatic conditions. Results demonstrated that the proposed technique yielded a tracking time of 0.01s, a total harmonic distortion of 9.71% and a root means square error of 0.3998 in the case of resistive load thus showing superior control performance compared to the state-of-the-art control techniques.
本文提出了一种单相光伏(PV)逆变器,在独立模式下具有优越和强大的控制性能。首先,通过采用非线性鲁棒积分反步控制器(RIBSC),给出了 Buck-Boost DC-DC 转换器的建模和布局。该控制器利用回归平面生成的参考电压,使转换器在变化的气候条件下能够达到最大功率点(MPP)的工作点。Buck-Boost 转换器的另一个主要目的是充当变压器,在需要时在逆变器输入侧产生增加的电压。通过不使用变压器,使电路尺寸更加紧凑,具有成本效益。所提出的 RIBSC 应用于具有 LC 滤波器的 H 桥逆变器,以在输出变化时产生正弦波,最大程度地减小输出电压与参考电压之间的差异。已使用 Lyapunov 稳定性准则来验证整体系统的稳定性和有限时间收敛性。在 MATLAB/Simulink 中对整个系统进行了仿真,以测试不同负载、变化的气候条件和逆变器参考电压下的系统性能。将所提出的方法与反步控制器和比例积分微分(PID)控制器在快速变化的气候条件下进行了比较。结果表明,与最先进的控制技术相比,所提出的技术在电阻性负载的情况下产生了 0.01s 的跟踪时间、9.71%的总谐波失真和 0.3998 的均方根误差,从而显示出优越的控制性能。