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A Composite Sliding Mode Controller for Wind Power Extraction in Remotely Located Solar PV–Wind Hybrid System

机译:远程太阳能光伏-风混合系统中用于风能提取的复合滑模控制器

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Ensuring electrification of remote locations continues to be a major challenge for power engineers. To deal with the effect of intermittent nature of wind, this paper presents the design and implementation of a composite sliding mode controller (CSMC) for a battery energy storage (BES) supported solar photovoltaic (PV)-wind hybrid system in a remote location. This control technique comprises of a soft-switching sliding-mode observer (SS-SMO) and a nonsingular terminal sliding mode controller (NTSMC). The SS-SMO is used to observe the disturbances, whereas the NTSMC is used as a speed controller. The chattering problem caused by the conventional sliding mode controller is alleviated by replacing the conventional signum switching function with the smooth hyperbolic tangent function in disturbance observer loop. The fast and finite time convergence NTSMC based speed controller along with the SS-SMO based disturbance rejection unit, serves the benefits of CSMC. This technique exhibits robustness against model uncertainties and external disturbances. Moreover, the complexity of the system is reduced by replacing the mechanical speed and position sensors with parameter estimation. A double-stage configuration using a dc/dc boost converter is adopted for a PV system. A comparative analysis is presented between the proposed and conventional techniques. A prototype of the hybrid system is developed in the laboratory with permanent magnet synchronous generator. The CSMC-based controller with disturbance rejection ability is implemented to harvest peak wind power. A perturb and observe maximum power point tracking technique is adopted to harvest peak solar power. A voltage control technique is adopted to maintain the voltage at the point of common coupling.
机译:确保偏远地区的电气化仍然是电力工程师面临的主要挑战。为了解决风的间歇性影响,本文介绍了一种用于远程位置的电池储能(BES)支持的太阳能光伏(PV)-风混合系统的复合滑模控制器(CSMC)的设计和实现。该控制技术包括软开关滑模观察器(SS-SMO)和非奇异终端滑模控制器(NTSMC)。 SS-SMO用于观察干扰,而NTSMC用作速度控制器。通过用扰动观测器回路中的平滑双曲线正切函数代替常规的信号切换函数,可以缓解由常规的滑模控制器引起的颤动问题。基于NTSMC的快速,有限时间收敛的速度控制器,以及基于SS-SMO的干扰抑制单元,可为CSMC带来好处。该技术对模型不确定性和外部干扰具有鲁棒性。此外,通过用参数估计代替机械速度和位置传感器,降低了系统的复杂性。光伏系统采用采用DC / DC升压转换器的双级配置。在提议的技术和常规技术之间进行了比较分析。在实验室中使用永磁同步发电机开发了混合系统的原型。具有干扰抑制能力的基于CSMC的控制器用于收获峰值风力。采用扰动观测最大功率点跟踪技术来收获峰值太阳能。采用电压控制技术将电压保持在公共耦合点。

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