Enhancing the solar water pumping efficiency through Beta MPPT method-controlled drive

G. S. Rao, Tellapati Anuradha, K. Sarada, M. Bharathi, B Srikanth Goud, Kalahasthi Neelima, K. S. Bhargavi
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引用次数: 0

Abstract

This paper presents an innovative approach to achieve efficient solar water pumping through the integration of a Photovoltaic (PV) array and a Brushless Direct Current (BLDC) motor water pumping system. The system incorporates a Voltage Source Converter (VSC) with six switches, utilized to facilitate commutation. The inherent solar radiation is harnessed by the PV array, capitalizing on its renewable nature to generate electricity. By dynamically adjusting the switching states of the six VSC switches, the speed of the BLDC motor is modulated in response to the varying levels of available solar radiation. The BLDC motor's hall sensor signals play a crucial for determining the rotor's position and they are employed to generate precise commutation signals. The control strategy integrates the Incremental Conductance (INC) Maximum Power Point Tracking (MPPT) algorithm, which initially governs the commutation signals. To enhance adaptability to rapidly changing solar irradiation conditions, the control strategy dynamically updates the commutation signals using the innovative Beta MPPT algorithm. To assess the efficiency of the proposed control strategy, a comprehensive comparison between the INC and Beta MPPT algorithms is conducted using MATLAB Simulink. The performance of the BLDC motor under these algorithms was evaluated in terms of its ability to optimize energy extraction. The graphical analysis of these algorithms, considering the temporal aspect, substantiates the identification of the superior MPPT algorithm for BLDC motor control in solar water pumping applications. This study contributes to the advancement of solar water pumping systems by introducing a novel control approach that combines PV array utilization, VSC-based commutation, and a dual-step MPPT algorithm. The results demonstrate the effectiveness of the Beta MPPT algorithm by enabling the system to respond promptly to fluctuating solar irradiation conditions, thereby enhancing the overall efficiency of the solar water pumping process.
通过 Beta MPPT 方法控制驱动装置提高太阳能水泵效率
本文提出了一种创新方法,通过整合光伏(PV)阵列和无刷直流(BLDC)电机抽水系统,实现高效太阳能抽水。该系统包含一个电压源转换器(VSC),有六个开关,用于促进换向。光伏阵列利用固有的太阳辐射,利用其可再生性来发电。通过动态调整六个 VSC 开关的开关状态,无刷直流电机的速度可根据不同的可用太阳辐射水平进行调节。无刷直流电机的霍尔传感器信号在确定转子位置方面起着至关重要的作用,这些信号可用于生成精确的换向信号。控制策略集成了增量电导 (INC) 最大功率点跟踪 (MPPT) 算法,该算法最初用于控制换向信号。为了增强对快速变化的太阳辐照条件的适应性,控制策略使用创新的 Beta MPPT 算法动态更新换向信号。为了评估所提出的控制策略的效率,我们使用 MATLAB Simulink 对 INC 和 Beta MPPT 算法进行了综合比较。根据优化能量提取的能力,评估了无刷直流电机在这些算法下的性能。考虑到时间因素,对这些算法进行了图形分析,从而确定了用于太阳能水泵应用中 BLDC 电机控制的 MPPT 算法的优越性。本研究引入了一种新型控制方法,将光伏阵列利用、基于 VSC 的换向和双步 MPPT 算法结合在一起,为太阳能水泵系统的发展做出了贡献。研究结果证明了 Beta MPPT 算法的有效性,该算法使系统能够对波动的太阳辐照条件做出及时响应,从而提高了太阳能水泵过程的整体效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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1.20
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