Fault-tolerant reconfigurable second-life battery system using cascaded DC- DC converter

N. Archana, R. Babu
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Abstract

Objectives: To control the power flow resulting in improved utilization of the available cells, increased lifetime, and higher reliability. Reduce the gross energy demand and global warming potential and to promote Zero Waste.Methods: A reconfigurable battery system using second-life batteries based on cascaded DC-DC converters is presented. When compared to conventional boost converters, it can be demonstrated that each submodule’s power can be controlled separately, improving the battery system’s available capacity. Faulty battery modules can be bypassed, increasing the system’s reliability and fault tolerance capability. The chosen approach is shown with cascaded system using proportional integral derivative (PID) controller and the Single-phase inverter with SPWM technique for the Stationary load applicationFindings: The proposed cascaded system act as a fault tolerant system since the source is the second-life battery even though there is fault has occurred in the system meets the load demand. These simulations are done in MATLAB and the results are discussed. The DC link voltage of the cascaded system has more ripple based on the tuning of the PID controller with the values of Kp,Ki, Kd the ripple can be decreased.Novelty: Cascaded system with a fault-tolerant system using the second life battery will promote the zero-carbon waste of the batter and it is the new approach
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采用级联DC- DC变换器的容错可重构二次寿命电池系统
目的:控制功率流,从而提高可用电池的利用率,延长使用寿命,提高可靠性。减少总能源需求和全球变暖潜力,促进零废物。方法:提出了一种基于级联DC-DC变换器的二次电池可重构系统。与传统升压变换器相比,可以证明每个子模块的功率可以单独控制,从而提高电池系统的可用容量。故障电池模块可旁路,提高系统可靠性和容错能力。所选择的方法显示了级联系统使用比例积分导数(PID)控制器和单相逆变器与SPWM技术用于固定负载应用。研究结果:所提出的级联系统作为一个容错系统,因为源是二次寿命电池,即使系统中发生故障也能满足负载需求。在MATLAB中进行了仿真,并对仿真结果进行了讨论。通过调整PID控制器的Kp、Ki、Kd值,可以减小级联系统直流链路电压的纹波。新颖之处:采用二次寿命电池的级联容错系统将促进电池零碳浪费,是一种新方法
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