Title :
Time-optimal switching surface for photovoltaic MPPT
Author :
Paz, Francisco ; Pena-Alzola, Rafael ; Ordonez, Martin
Author_Institution :
Electr. & Comput. Eng. Dept., Univ. of British Columbia, Vancouver, BC, Canada
Abstract :
The dynamic response of photovoltaic (PV) power converters plays a critical role to perform fast Maximum Power Point Tracking (MPPT). Among different options, linear controllers are a very popular choice to control power converters due to their design simplicity and basic implementation. However, the simplicity of the controller comes with a sacrifice in the speed and performance given the extremely large operating range in PV applications (VOC to ISC). For example, in the boost topology, the Right-Half-Plane Zero induces overshoot and the severe inability to handle extreme operating points. In this paper, a non-linear controller based on phase-plane analysis is implemented for a boost converter for PV-battery charging applications. The novel proposed controller provides a number of advantages, including: 1) Faster transient response, close to the physical limit; 2) Overshoot elimination; 3) Minimization and tight handling of disturbances caused by changes in environmental conditions. The combination of these benefits translates into faster MPPT algorithms and a minimization of the losses during the MPPT scan process. A comparative analysis is presented to demonstrate the characteristic features of the controller, showing significant improvements over the traditional dual-loop linear controller tuned by an optimal method.
Keywords :
control system synthesis; dynamic response; maximum power point trackers; photovoltaic power systems; power generation control; time optimal control; time-varying systems; PV power converters; PV-battery charging applications; basic implementation; boost converter; boost topology; design simplicity; dual-loop linear controller; dynamic response; environmental conditions; losses minimization; maximum power point tracking; nonlinear controller; overshoot elimination; phase-plane analysis; photovoltaic MPPT; right-half-plane zero; scan process; time-optimal switching surface; transient response; Equations; Maximum power point trackers; Switches; Transient analysis; Transient response; Voltage control; Maximum power point trackers (MPPT); Nonlinear control systems; Solar power generation;
Conference_Titel :
Power Electronics for Distributed Generation Systems (PEDG), 2014 IEEE 5th International Symposium on
Conference_Location :
Galway
DOI :
10.1109/PEDG.2014.6878683