首页> 外文学位 >Advances in fuel cell vehicle design.
【24h】

Advances in fuel cell vehicle design.

机译:燃料电池汽车设计的进步。

获取原文
获取原文并翻译 | 示例

摘要

Factors such as global warming, dwindling fossil fuel reserves, and energy security concerns combine to indicate that a replacement for the internal combustion engine (ICE) vehicle is needed. Fuel cell vehicles have the potential to address the problems surrounding the ICE vehicle without imposing any significant restrictions on vehicle performance, driving range, or refuelling time. Though there are currently some obstacles to overcome before attaining the widespread commercialization of fuel cell vehicles, such as improvements in fuel cell and battery durability, development of a hydrogen infrastructure, and reduction of high costs, the fundamental concept of the fuel cell vehicle is strong: it is efficient, emits zero harmful emissions, and the hydrogen fuel can be produced from various renewable sources. Therefore, research on fuel cell vehicle design is imperative in order to improve vehicle performance and durability, increase efficiency, and reduce costs. This thesis makes a number of key contributions to the advancement of fuel cell vehicle design within two main research areas: powertrain design and DC/DC converters.;With regards to powertrain design, this research first analyzes various powertrain topologies and energy storage system types. Then, a novel fuel cell-battery-ultracapacitor topology is presented which shows reduced mass and cost, and increased efficiency, over other promising topologies found in the literature. A detailed vehicle simulator is created in MATLAB/Simulink in order to simulate and compare the novel topology with other fuel cell vehicle powertrain options. A parametric study is performed to optimize each powertrain and general conclusions for optimal topologies, as well as component types and sizes, for fuel cell vehicles are presented. Next, an analytical method to optimize the novel battery-ultracapacitor energy storage system based on maximizing efficiency, and minimizing cost and mass, is developed. This method can be applied to any system utilizing the novel battery-ultracapacitor energy storage system and is not limited in application to only fuel cell vehicles.;With regards to DC/DC converters, it is important to design efficient and light-weight converters for use in fuel cell and other electric vehicles to improve overall vehicle fuel economy. Thus, this research presents a novel soft-switching method, the capacitor-switched regenerative snubber, for the high-power DC/DC boost converters commonly used in fuel cell vehicles. This circuit is shown to increase the efficiency and reduce the overall mass of the DC/DC boost converter.
机译:全球变暖,化石燃料储备减少和能源安全问题等因素共同表明,需要更换内燃机(ICE)车辆。燃料电池车有可能解决ICE车周围的问题,而不会对车辆性能,行驶距离或加油时间施加任何重大限制。尽管目前在实现燃料电池汽车的广泛商业化之前有一些障碍需要克服,例如燃料电池和电池耐用性的改善,氢基础设施的发展以及高成本的降低,但是燃料电池汽车的基本概念是强大的:它高效,零有害排放,并且氢燃料可以从各种可再生资源中生产。因此,必须进行燃料电池车辆设计的研究,以改善车辆性能和耐用性,提高效率并降低成本。本文在动力总成设计和DC / DC转换器这两个主要研究领域为推动燃料电池汽车设计的发展做出了许多关键贡献。关于动力总成设计,本研究首先分析了各种动力总成拓扑和能量存储系统类型。然后,提出了一种新颖的燃料电池-电池-超级电容器拓扑,与文献中发现的其他有希望的拓扑相比,该拓扑显示出降低的质量和成本以及更高的效率。在MATLAB / Simulink中创建了详细的车辆模拟器,以模拟新颖的拓扑并将其与其他燃料电池车辆动力总成选件进行比较。进行了参数研究以优化每个动力总成,并提出了燃料电池汽车的最佳拓扑以及组件类型和尺寸的一般结论。接下来,开发了一种基于最大化效率,最小化成本和质量来优化新型电池-超级电容器储能系统的分析方法。该方法可以应用于使用新型电池-超级电容器储能系统的任何系统,并且不仅限于燃料电池汽车。对于DC / DC转换器,设计高效轻便的转换器非常重要。在燃料电池和其他电动汽车中使用,以提高整体汽车的燃油经济性。因此,本研究提出了一种新颖的软开关方法,即电容器开关的再生缓冲器,用于燃料电池汽车中常用的大功率DC / DC升压转换器。该电路可提高效率并降低DC / DC升压转换器的整体质量。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号