Performance assessment and validation of inverter control current controllers in reduced sensor maximum power point tracking based photovoltaic-grid tied system

IF 1.6 Q4 ENERGY & FUELS
Moushumi Patowary, Hassan Haes Alhelou, Gayadhar Panda
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Abstract

A relative assessment on conventional and adaptive current controllers used in reduced sensor-maximum power point tracking (MPPT) based photovoltaic (PV)-grid tied inverter systems for the improvement of system power quality is suggested. The steady-state and transients errors produced in the conventional PI and proportional resonant controllers, which are used to generate the references, can be fixed by using an intelligent ADALINE-LMS adaptive controller; moreover, it helps in reducing the %THD (total harmonic distortion) level measured at different power zones. Also, to track the maximum PV power, which is further integrated to DC-bus, a reduced sensor-based technology is added into the circuit that sidesteps the problem of tracking local MPP instead of global MPP and the drawbacks of using current sensors. The use of a reduced sensor-based MPPT controller confirms extraction of maximum PV power and it guarantees a constant DC-link voltage under all the possible test conditions. The overall control architectures and system performances, which are tested under different system dynamics, are validated through MATLAB/Simulink as well as experimental findings obtained using the dSPACE RTI 1202 interfacing kit. These experimental results confirm that the adaptive control technique used in reduced sensor-MPPT based PV-grid tied inverter systems performs unbeatably with balanced load and grid voltages, less harmonics, quick response time etc. under the operation of linear, non-linear and transient loads, whereas, conventional controllers are best only for the linear loads.

Abstract Image

基于简化传感器最大功率点跟踪的光伏并网系统逆变器控制电流控制器的性能评估与验证
建议对传统电流控制器和自适应电流控制器在基于简化传感器-最大功率点跟踪(MPPT)的光伏并网逆变器系统中的应用进行相对评价,以改善系统电能质量。采用智能ADALINE-LMS自适应控制器,可以消除传统PI控制器和比例谐振控制器产生的稳态和瞬态误差;此外,它有助于降低在不同功率区测量的%THD(总谐波失真)水平。此外,为了跟踪最大PV功率,将其进一步集成到直流总线中,电路中加入了一种基于传感器的简化技术,避免了跟踪局部MPP而不是全局MPP的问题以及使用电流传感器的缺点。使用基于简化传感器的MPPT控制器确认提取最大PV功率,并保证在所有可能的测试条件下保持恒定的直流链路电压。通过MATLAB/Simulink和dSPACE RTI 1202接口套件验证了不同系统动态下的总体控制体系结构和系统性能。实验结果表明,在线性、非线性和瞬态负载下,基于减小传感器- mppt的自适应控制技术具有负载和电网电压均衡、谐波少、响应时间快等优点,而传统控制器仅适用于线性负载。
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来源期刊
IET Energy Systems Integration
IET Energy Systems Integration Engineering-Engineering (miscellaneous)
CiteScore
5.90
自引率
8.30%
发文量
29
审稿时长
11 weeks
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