Design of Regenerative Braking System and Energy Storage with Supercapacitors as Energy Buffers

Siluvai M. Michael, Bokani Mtengi, S.R.S. Prabaharan, Adamu Murtala Zungeru, James Garba Ambafi
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Abstract

Vehicles are part of urban area transport and are subjected to variable loads as they traverse the city with varying slopes and stop-and-go traffic. Electric Vehicles (EVs) can be a good option because of their high efficiency under stop-and-go conditions and ability to gain energy from braking. However, limited battery energy makes EVs less efficient and degrades their lifetime. In contrast to a Li-Ion battery, supercapacitors work well under high power charge and discharge cycles. However, their high cost and low energy density prevent them from being viable replacements for batteries. Due to the slow charging and discharging process of batteries, they have a low power density, but a high energy density compared to the supercapacitor. In this paper, we discussed our system design consisting of both a battery and a supercapacitor. The main aim is to design and develop a scheduling algorithm to optimize energy flow between the battery, supercapacitor, and motor. We further described an analogue-based control methodology and algorithm for the supercapacitor, augmented battery-powered motoring process. This is in addition to a charge controller designed to optimize the supercapacitor bank's current-based charge-discharge profile. The system design and tests are developed on PSPICE and a hardware platform.
利用超级电容器作为能量缓冲器设计再生制动系统和储能装置
车辆是城市交通的一部分,在城市中穿行时要承受不同的负载,如不同的坡度和走走停停的交通。电动汽车(EV)在走走停停的情况下效率很高,并能从制动中获得能量,因此是一种不错的选择。然而,有限的电池能量会降低电动汽车的效率,并缩短其使用寿命。与锂离子电池相比,超级电容器在高功率充放电循环下工作性能良好。然而,超级电容器的高成本和低能量密度使其无法取代电池。由于电池的充电和放电过程缓慢,其功率密度较低,但与超级电容器相比,能量密度较高。在本文中,我们讨论了由电池和超级电容器组成的系统设计。主要目的是设计和开发一种调度算法,以优化电池、超级电容器和电机之间的能量流。我们进一步介绍了一种基于模拟的控制方法和算法,用于超级电容器、增强型电池供电的电机驱动过程。此外,我们还设计了一个充电控制器,用于优化超级电容器组基于电流的充放电曲线。系统设计和测试是在 PSPICE 和硬件平台上开发的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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