Effect of coupled heat transfer on temperature distribution of a packed bed with rotary intake and exhaust

IF 6.1 2区 工程技术 Q2 ENERGY & FUELS
Shun Sun, Mingming Mao, Fangdong Zhu, Fang He, Junrui Shi, Yongqi Liu, Dan Zhou, Xiaozhong Ma, Mengmeng Song
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引用次数: 0

Abstract

As an effective technique dealing with low calorific volatile organic compounds emissions, the rotary flow reversal reactor (RFRR) has the high heat recovery ability and combustion efficiency. The temperature distribution uniformity of the preheated packed bed, the main component of the RFRR, is of great importance to the combustion stability during operation. The effect of coupled heat transfer on the temperature distribution of the packed bed of a RFRR during preheating process is investigated experimentally. There are four heating forms including pure radiation and coupled forms of radiation and convective heat transfer. The temperature rising rate is obviously higher and the high temperature zone (over 800 °C)is clearly wider for the coupled heat transfer with top intake. However, the top intake leads to a temperature drop over the height of 0.6 m and the high temperature over 200 °C at the bottom end. Fortunately, the bottom intake decreases the temperature level by about 100 °C of the bottom part obviously so as to reduce the exhaust heat loss. In addition, the most uniform temperature distribution along the entire the height occurs when the top and the bottom intakes are imported together. Finally, two reasonable segmented heating forms with variable intake forms or flow rates are proposed under comprehensive consideration.
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来源期刊
Applied Thermal Engineering
Applied Thermal Engineering 工程技术-工程:机械
CiteScore
11.30
自引率
15.60%
发文量
1474
审稿时长
57 days
期刊介绍: Applied Thermal Engineering disseminates novel research related to the design, development and demonstration of components, devices, equipment, technologies and systems involving thermal processes for the production, storage, utilization and conservation of energy, with a focus on engineering application. The journal publishes high-quality and high-impact Original Research Articles, Review Articles, Short Communications and Letters to the Editor on cutting-edge innovations in research, and recent advances or issues of interest to the thermal engineering community.
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