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High Frequency Power Converter with ZVT for Variable DC-link in Electric Vehicles

机译:ZVT高频功率转换器,用于电动汽车中的可变直流母线

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摘要

The most important metrics considered for electric vehicles are power density, efficiency, and reliability of the powertrain modules. The powertrain comprises of an Electric Machine (EM), power electronic converters, an Energy Management System (EMS), and an Energy Storage System (ESS). The power electronic converters are used to couple the motor with the battery stack. Including a DC/DC converter in the powertrain module is favored as it adds an additional degree of freedom to achieve flexibility in optimizing the battery module and inverter independently. However, it is essential that the converter is rated for high peak power and can maintain high efficiency while operating over a wide range of load conditions to not compromise on system efficiency. Additionally, the converter must strictly adhere to all automotive standards.;Currently, several hard-switching topologies have been employed such as conventional boost DC/DC, interleaved step-up DC/DC, and full-bridge DC/DC converter. These converters face respective limitations in achieving high step-up conversion ratio, size and weight issues, or high component count. In this work, a bi-directional synchronous boost DC/DC converter with easy interleaving capability is proposed with a novel ZVT mechanism. This converter steps up the EV battery voltage of 200V-300V to a wide range of variable output voltages ranging from 310V-800V. High power density and efficiency are achieved through high switching frequency of 250kHz for each phase with effective frequency doubling through interleaving. Also, use of wide bandgap high voltage SiC switches allows high efficiency operation even at high temperatures.;Comprehensive analysis, design details and extensive simulation results are presented. Incorporating ZVT branch with adaptive time delay results in converter efficiency close to 98%. Experimental results from a 2.5kW hardware prototype validate the performance of the proposed approach. A peak efficiency of 98.17% has been observed in hardware in the boost or motoring mode.
机译:电动汽车考虑的最重要指标是功率密度,效率和动力总成模块的可靠性。动力总成由电机(EM),功率电子转换器,能源管理系统(EMS)和储能系统(ESS)组成。功率电子转换器用于将电动机与电池组耦合。动力总成模块中包括DC / DC转换器是受青睐的,因为它增加了额外的自由度,可实现独立优化电池模块和逆变器的灵活性。但是,至关重要的是,该转换器必须具有较高的峰值功率,并且在各种负载条件下工作时仍能保持高效率,而不会影响系统效率。此外,该转换器必须严格遵守所有汽车标准。当前,已采用了几种硬开关拓扑,例如常规的升压DC / DC,交错式升压DC / DC和全桥DC / DC转换器。这些转换器在实现高升压转换比,尺寸和重量问题或高组件数方面面临各自的局限。在这项工作中,提出了一种具有简单交织能力的双向同步升压DC / DC转换器,该转换器具有新颖的ZVT机制。该转换器将EV电池的200V-300V电压升至310V-800V的各种可变输出电压范围。通过为每个相位提供250kHz的高开关频率,以及通过交错使有效频率加倍,可以实现高功率密度和效率。此外,宽带隙高压SiC开关的使用即使在高温下也能实现高效率的操作。;给出了全面的分析,设计细节和广泛的仿真结果。将ZVT分支与自适应时延相结合,可使转换器效率接近98%。 2.5kW硬件原型的实验结果验证了该方法的性能。在升压或电动模式下,在硬件中观察到98.17%的峰值效率。

著录项

  • 作者

    Chenchu, Hemanth Mullangi.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Engineering.;Electrical engineering.
  • 学位 M.S.
  • 年度 2018
  • 页码 88 p.
  • 总页数 88
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:40:04

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