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Active Cell Balancing of Lithium-ion Battery Pack Using Dual DC-DC Converter and Auxiliary Lead-acid Battery

机译:使用双DC-DC转换器和辅助纤维酸电池的锂离子电池组的主动电池平衡

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The effective capacity of lithium-ion battery (LIB) pack is reduced by the inconsistency of individual LIB cell in terms of capacity, voltage and internal resistances. Effective cell balancing scheme not only improves the charging and discharging capacity but at the same time it ensures the safe, reliable and longer operational life of the LIB pack. In this study, a dual DC-DC converter based active cell balancing topology is proposed with reduced number of active components and power switches. Fly-back DC-DC converter-based topology is used for pack to cell (P2C) balancing during LIB pack charging period whereas an auxiliary lead-acid battery to LIB cell balancing is realized by employing a Buck-converter topology during discharging period. Series of simulation studies are conducted in MATLAB-Simscape environment to assess the effectiveness of the proposed cell balancing topology. Cell voltage-based and cell SOC-based control logics are developed using MATLAB-Stateflow diagram for controlling the proposed active balancing topology. All results supported that the proposed circuit can implement an effective balancing operation during both charging and discharging period. A comparison between cell voltage-based and cell SOC-based control logics demonstrated that the SOC based control logic is more effective in terms of balancing speed. The use of auxiliary lead-acid battery for providing balancing energy during discharge period reduced the number of active components, power switches, control complexity, speed and life of LIB pack as P2C balancing is eliminated. The energy generated from regenerative braking can be used for charging the auxiliary lead-acid battery which will further improve the balancing efficiency when the cell balancing topology will be used in electric vehicle applications.
机译:锂离子电池(Lib)包的有效容量通过个体lib细胞在容量,电压和内部电阻方面的不一致减少。有效的细胞平衡方案不仅可以提高充电和放电容量,而且同时它确保了Lib包的安全,可靠和更长的操作寿命。在该研究中,提出了一种基于双DC-DC转换器的有源电池平衡拓扑,其具有减少数量的有源部件和电源开关。基于反倒的DC-DC转换器的拓扑用于Lib包充电时段期间的电池(P2c)平衡,而通过在放电时段期间采用降压转换器拓扑实现辅助铅酸蓄电池。仿真研究系列在Matlab-Simscape环境中进行了评估所提出的细胞平衡拓扑的有效性。使用MATLAB-StateFlow图开发了基于单元基的基于单元的基于单元的控制逻辑,用于控制所提出的主动平衡拓扑。所有结果都支持所提出的电路在充电和放电时段期间可以实现有效的平衡操作。基于电池电压和基于小区SoC的控制逻辑的比较表明,基于SoC的控制逻辑在平衡速度方面更有效。使用辅助铅酸蓄电池用于在放电时段内提供平衡能量,减少了Lib Pack的有源部件,电源开关,控制复杂性,速度和寿命的数量,因为消除了P2C平衡。从再生制动产生的能量可用于对辅助铅酸电池充电,当电池平衡拓扑将用于电动车辆应用时,将进一步提高平衡效率。

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