Study of Efficiency Improvements in a Fuel-Cell-Powered Vehicle Using Water Electrolysis by Recovering Regeneration Energy and Avoiding Partial Load Operation

Author:

Obara S.12,Kudo K.3

Affiliation:

1. Mem. ASME

2. Tomakomai National College of Technology, 443 Nishikioka, Tomakomai 059-1275, Japan

3. Hokkaido University, Graduate School of Engineering, Kita-13, Nishi-8, Kita-ku, Sapporo 060-8628, Japan

Abstract

Improvements in efficiency of a fuel-cell-powered vehicle have been studied using water electrolysis as the energy storage mechanism. Three methods are proposed for this purpose: 1. The reformer and fuel cell are divided into two or more units, and the maximum output of each unit is set to be small, which reduces the partial load operation, 2. all the fuel cell units are operated above the low efficiency partial load condition and excess electricity is supplied to another fuel cell unit to generate hydrogen and oxygen by water electrolysis, and these gases are compressed and stored, and arbitrary fuel cell units are supplied and they generate electricity, 3. deceleration periods perform water electrolysis of the fuel cell units using the electric power generated by the drive motor, and both gases are compressed and they store in each cylinder. The LA4 cycle (EPA urban dynamometer schedule) was introduced for the vehicle operation. The energy saving effects of the abovementioned methods were studied and were shown to increase the energy efficiency by 1.23 to 1.72 times compared to that for the conventional method.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electronic, Optical and Magnetic Materials

Reference3 articles.

1. Narisawa, K., Hayashida, M., Kurashima, D., Murooka, K., and Kamiya, Y., 2002, “R&D Trend Survey and Power System Structual Analysis,” Annual Report No. 2, National Traffic Safety and Environment Laboratory, pp. 1–3 (in Japanese).

2. HONDA, Fact book, http:∕∕www.honda.co.jp∕factbook∕auto∕fcx∕200212∕05.html, (access date 2004.2.10).

3. Badami, M., and Caldera, C., 2002, “Dynamic Model of a Load-Following Fuel Cell Vehicle: Impact of the Air System,” SAE Tech. Paper 2002-01-0100, pp. 1–10.

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