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Simulation Modeling of Intelligent Control Algorithms for Constructing Autonomous Power Supply Systems with Improved Energy Efficiency

机译:能源效率提高的自主供电系统智能控制算法的仿真建模

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The paper considers the issue of supplying autonomous robots by solar batteries. Low efficiency of modern solar batteries is a critical issue for the whole industry of renewable energy. The urgency of solving the problem of improved energy efficiency of solar batteries for supplying the robotic system is linked with the task of maximizing autonomous operation time. Several methods to improve the energy efficiency of solar batteries exist. The use of MPPT charge controller is one these methods. MPPT technology allows increasing the power generated by the solar battery by 15 – 30%. The most common MPPT algorithm is the perturbation and observation algorithm. This algorithm has several disadvantages, such as power fluctuation and the fixed time of the maximum power point tracking. These problems can be solved by using a sufficiently accurate predictive and adaptive algorithm. In order to improve the efficiency of solar batteries, autonomous power supply system was developed, which included an intelligent MPPT charge controller with the fuzzy logic-based perturbation and observation algorithm. To study the implementation of the fuzzy logic apparatus in the MPPT algorithm, in Matlab/Simulink environment, we developed a simulation model of the system, including solar battery, MPPT controller, accumulator and load. Results of the simulation modeling established that the use of MPPT technology had increased energy production by 23%; introduction of the fuzzy logic algorithm to MPPT controller had greatly increased the speed of the maximum power point tracking and neutralized the voltage fluctuations, which in turn reduced the power underproduction by 2%.
机译:本文考虑了用太阳能电池为自动机器人供电的问题。现代太阳能电池的低效率是整个可再生能源行业的关键问题。解决用于向机器人系统供电的太阳能电池的能量效率提高的问题的紧迫性与最大化自主操作时间的任务有关。存在几种提高太阳能电池的能量效率的方法。 MPPT电荷控制器的使用就是这些方法之一。 MPPT技术可使太阳能电池产生的功率增加15 – 30%。最常见的MPPT算法是摄动和观察算法。该算法有几个缺点,例如功率波动和最大功率点跟踪的固定时间。这些问题可以通过使用足够准确的预测和自适应算法来解决。为了提高太阳能电池的效率,开发了自主电源系统,其中包括具有基于模糊逻辑的摄动和观察算法的智能MPPT充电控制器。为了研究模糊逻辑装置在MPPT算法中的实现,在Matlab / Simulink环境中,我们开发了系统的仿真模型,包括太阳能电池,MPPT控制器,蓄电池和负载。仿真模型的结果表明,使用MPPT技术已使能源生产增加了23%。将模糊逻辑算法引入MPPT控制器极大地提高了最大功率点跟踪的速度,并抵消了电压波动,从而将功率不足产生量降低了2%。

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