Optimization of Heat Transfer through Heat Carriers in Bio-H2 Production Using CFD Simulation

IF 0.2 Q4 ENERGY & FUELS Journal of The Japan Institute of Energy Pub Date : 2021-10-20 DOI:10.3775/jie.100.194
H. Nakayama, Mitsuo Kameyama, Hisashi Kamiuchi, K. Dowaki
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引用次数: 1

Abstract

Hydrogen (H 2 ) is one of the most promising secondary energy resources expected to contribute to the prevention of global warming. Bio-H 2 , which is derived from biomass feedstock, is more environmentally friendly than hydrogen synthesized from fossil fuels. In our indirect thermochemical processes with solid-gas reactions, the effective heat transfer, which is accomplished by circulation of alumina balls acting as heat carriers (HCs), is a critical issue, and it is necessary to achieve circulation of the heat transfer medium that maximizes production efficiency. In this study, the heat transfer performance of a small-scale indirect biomass gasification process to be promoted in the near future was investigated, focusing on heating of HCs using high-temperature gas to achieve optimum heat utilization in the preheating reactor. To continuously pyrolyze cedar feedstock in the subsequent pyrolysis reactor, HCs must be heated to the desired temperature in the preheater within a residence time. Even if high-temperature gas with sufficient calorific value flows into the preheater, if the heat transfer is not completed within the residence time, the HCs will not be heated to the target temperature and the sensible heat is discharged as tail gas. Therefore, we evaluated the operating conditions that promote the heat transfer during the residence time, focusing on the hot flue gas conditions.
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基于CFD模拟的生物制氢过程中热载体传热优化
氢(h2)是最有前途的二次能源之一,有望为防止全球变暖做出贡献。从生物质原料中提取的bio - h2比从化石燃料中合成的氢更环保。在固气反应的间接热化学过程中,通过作为热载体(hc)的氧化铝球的循环来完成有效的传热是一个关键问题,并且实现传热介质的循环是实现生产效率最大化的必要条件。在本研究中,研究了即将推广的小型生物质间接气化工艺的传热性能,重点研究了在预热反应器中使用高温气体加热hc以实现最佳热利用。为了在随后的热解反应器中连续热解雪松原料,hc必须在停留时间内在预热器中加热到所需的温度。即使具有足够热值的高温气体流入预热器,如果在停留时间内没有完成传热,hc也不会被加热到目标温度,显热作为尾气排出。因此,我们评估了在停留时间内促进换热的操作条件,重点关注热烟气条件。
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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