Hybrid lead-acid/lithium-ion energy storage system with power-mix control for light electric vehicles

Steven Chung, O. Trescases
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引用次数: 7

Abstract

The performance versus cost tradeoffs of a fully electric, hybrid energy storage system (HESS), using lithium-ion (LI) and lead-acid (PbA) batteries, are explored in this work for a light electric vehicle (LEV). While LI batteries typically have higher energy density, lower internal resistance and longer lifetime than PbA batteries, the module cost of LI batteries are typically three to five times the cost of PbA batteries. The objective is to design a HESS that 1) is cost-competitive with a PbA single energy storage system (SESS) and 2) maintains most of the performance benefits of a lithium SESS. A modular HESS architecture with a bi-directional dc-dc converter and controller is proposed, and a power-mix algorithm with active inter-chemistry battery state-of-charge (SOC) balancing is presented, simulated, and verified experimentally. The batteries, converter and control algorithm are modeled in MATLAB, and the effects of total ESS energy, vehicle loading, depth-of-discharge (DOD), and speed are explored. The cost and performance of the HESS are assessed side-by-side with PbA and LI single energy storage system (SESS) configurations of comparable total energy, using expected vehicle range as the performance metric. The experimental HESS has a total projected cost midway between the SESS PbA cost and the SESS Li cost, while providing 17% range and 22.5% efficiency increase over the SESS PbA vehicle.
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轻型电动汽车用混合动力控制铅酸/锂离子混合储能系统
本研究探讨了使用锂离子(LI)和铅酸(PbA)电池的全电动混合储能系统(HESS)的性能与成本权衡。虽然锂电池通常比PbA电池具有更高的能量密度,更低的内阻和更长的寿命,但锂电池的模块成本通常是PbA电池成本的三到五倍。目标是设计一种HESS, 1)与PbA单一储能系统(SESS)相比具有成本竞争力,2)保持锂SESS的大部分性能优势。提出了一种具有双向dc-dc变换器和控制器的模块化HESS架构,提出了一种具有主动化学间电池荷电状态平衡的功率混合算法,并进行了仿真和实验验证。在MATLAB中对电池、变换器和控制算法进行了建模,探讨了ESS总能量、车辆负载、放电深度(DOD)和速度对系统的影响。HESS的成本和性能与具有可比总能量的PbA和LI单能量存储系统(SESS)配置并列评估,使用预期车辆续航里程作为性能指标。实验HESS的总预计成本介于SESS PbA成本和SESS Li成本之间,同时比SESS PbA车辆提供17%的续航里程和22.5%的效率提高。
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