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Performance Efficiency Improvement of Electric Vehicle Power Train

机译:电动车动力列车的性能与效率改进

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Introduction: The advent of electric mobility is changing the conventional mobility techniques and their application in automobiles across all segments. This development comes with challenges ranging across varied sub -systems in a vehicle including Power Train, HVAC, Accessories, etc. Objective: This paper would concentrate on the Power train related sub systems & improvement of the same both in terms of Efficiency & Performance. Methodology: The electric power train consists of three major sub parts: 1. Motor Unit 2. Controller with Power electronics 3. Battery Pack with BMS We would concentrate on improving the overall efficiency and performance of all these subsystems while they perform in vehicle environment and work in tandem by deploying following techniques: a. Improved Regenerative Braking for converting vehicles Kinetic energy into electrical energy using specific algorithms and control techniques b. Optimization of Design Specs and duty cycle based on real world driving cycles. c. Innovative Heat dissipation techniques to minimize energy loss to heat. d. Efficient Electrical to Chemical Energy conversion and vice versa through use of optimization techniques based on battery characterization Data. Results: Based on our Initial Proof of concept level experimentation we expect a improvement in efficiency of the tune 15-20% through these optimization techniques. Innovation/New Idea: These techniques have not been adopted using a system level approach as per our knowledge. The innovation is in the integration of various techniques to create a better Power Train as a whole. Conclusion: These techniques when optimized and applied together can significantly improve the efficiency of electric vehicles and make them a more viable option.
机译:简介:电动机动性的出现正在改变传统的移动技术及其在所有部分的汽车中的应用。这一发展具有挑战,包括电力列车,HVAC,配件等的车辆中各种子系统之间的挑战。目的:本文将集中在电力传动系统相关子系统和同样的同样的提高。方法:电动火车由三个主要子部分组成:1。电机单元2.带电力电子的控制器3.具有BMS的电池组,我们将专注于提高所有这些子系统的整体效率和性能,同时在车辆环境中执行所有这些子系统的整体效率和性能通过部署以下技术进行串联工作:a。通过特定算法和控制技术B改善用于将车辆动能转换为电能的再生制动。基于现实世界驾驶循环的设计规范与占空比优化。 C。创新的散热技术,以最大限度地降低能量损失热量。天。通过基于电池特征数据的优化技术,高效电气到化学能量转换,反之亦然。结果:根据我们初步概念级别实验证明,我们预计通过这些优化技术提高曲调15-20%的效率。创新/新想法:这些技术尚未根据我们的知识使用系统级方法采用。创新正在整合各种技术,以创造一个整体的更好的动力传动系统。结论:这些技术在优化和应用时可以显着提高电动车辆的效率,使其成为更加可行的选择。

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