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Design And Implementation Of Closed-Loop Controls For Smart Charging Lithium Ion Battery UNS Using Switching Technique Boost Converter

机译:使用切换技术升压转换器的智能充电锂离子电池闭环控制的设计与实现

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Electrical energy produced by photovoltaic technology varies depending on the intensity of sunlight, so we need a treatment to regulate it. There are 2 methods used to operate solar panels at their maximum power point, namely the dynamic method and the static method. One static method is the MPPT method with constant voltage. Boost converter and microcontroller are used to set the algorithm. The use of a boost converter to increase the working voltage of the PV to suit the needs of the load is used. Lead-acid batteries have a certain temperature sensitivity. Voltage output settings are set using the duty cycle, to obtain a stable charging voltage. By testing of charging a 24 V 36 Ah battery for 12 hours. With an average charging current of 0.3 A, it is able to charge from 22.16 V to 23.23 V or increases of 1.07 V using open controls. Inclosed temperature control over voltage, the charging current averages 0.3 A, the battery SoC increases from 22.23 V to 23.27 V or increase of 1.05 Volts. In each test, the battery SoC increases by 1 V or 4% of the battery capacity. The effect of battery charging temperature on this study was small, both in closed control and open control. The increase in temperature between open control and closed control is about 1-2,5°C and the increase does not touch the maximum limit value of 35°C..
机译:光伏技术产生的电能根据阳光的强度而变化,因此我们需要一种治疗来调节它。有2种方法用于在其最大功率点处操作太阳能电池板,即动态方法和静态方法。一种静态方法是具有恒定电压的MPPT方法。升压转换器和微控制器用于设置算法。使用升压转换器以增加PV的工作电压以适应载荷的需要。铅酸电池具有一定的温度敏感性。使用占空比设定电压输出设置,以获得稳定的充电电压。通过测试24 V 36 AH电池的充电12小时。平均充电电流为0.3a,它能够从22.16 v到23.23 V或使用开放控制增加1.07 V。置换温度控制过电压,充电电流平均为0.3a,电池SOC从22.23 v增加到23.27 V或增加1.05伏。在每个测试中,电池SOC增加1 V或4%的电池容量。电池充电温度对本研究的影响小,既缺少控制和开放控制。开放控制和闭合控制之间的温度的增加约为1-2,5°C,增加不会触及35°C的最大限制值..

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