The heat transfer characteristics of semi-molten wide sieving dilute phase particles between vertical heating surfaces

IF 3.7 3区 工程技术 Q2 ENGINEERING, CHEMICAL Chemical Engineering Research & Design Pub Date : 2024-11-19 DOI:10.1016/j.cherd.2024.11.025
Zhiyong Bai, Yuan Ma, Shuzhong Wang, Chengcheng Yang, Fangshuo Shi, Ruibin Xue, Qingyuan Wang, Jun Zhao
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Abstract

The high-temperature slag produced during the steelmaking process presents a significant opportunity for waste heat recovery and material utilization. Centrifugal granulation is acknowledged as an effective treatment method for managing this slag. However, the compact design of centrifugal granulation equipment poses a challenge in achieving the necessary cooling rates for high-temperature slag relying solely on gas-solid heat transfer within a confined space. This paper presents a physical model for the gas-solid two-phase interaction of an ultra-dilute high-temperature particle cluster and analyzes its heat exchange with vertical heating surfaces. The research indicates that radiative heat transfer is the primary mode of heat exchange between the particles and the heated surface, constituting more than 50 %. Moreover, heat is transferred from the particles through the air to the heated surface. Significantly, lowering the air inlet temperature and the particle velocity greatly improves the heat transfer performance and overall efficiency. Additionally, increasing the air flow rate can offset the decrease in contact thermal conductivity and radiative heat transfer that may occur due to increased spacing between the vertical tube bundle heating surfaces, thus promoting particle heat transfer. This study is crucial for guiding the improvement of heat transfer techniques for high-temperature molten particles in confined spaces.
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半熔融宽筛稀相颗粒在垂直加热表面之间的传热特性
炼钢过程中产生的高温炉渣为余热回收和材料利用提供了重要机会。离心造粒被公认为是管理这种炉渣的有效处理方法。然而,离心造粒设备设计紧凑,在有限空间内仅依靠气固传热来达到高温炉渣所需的冷却速率是一项挑战。本文提出了超稀释高温颗粒团的气固两相相互作用物理模型,并分析了其与垂直加热表面的热交换。研究表明,辐射传热是粒子与加热表面之间热交换的主要方式,占 50% 以上。此外,热量还通过空气从颗粒传递到加热表面。降低进气温度和颗粒速度可大大提高热传导性能和整体效率。此外,增加空气流速还能抵消垂直管束加热表面间距增大可能导致的接触热导率和辐射传热的降低,从而促进颗粒传热。这项研究对于改进密闭空间内高温熔融颗粒的传热技术具有重要指导意义。
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来源期刊
Chemical Engineering Research & Design
Chemical Engineering Research & Design 工程技术-工程:化工
CiteScore
6.10
自引率
7.70%
发文量
623
审稿时长
42 days
期刊介绍: ChERD aims to be the principal international journal for publication of high quality, original papers in chemical engineering. Papers showing how research results can be used in chemical engineering design, and accounts of experimental or theoretical research work bringing new perspectives to established principles, highlighting unsolved problems or indicating directions for future research, are particularly welcome. Contributions that deal with new developments in plant or processes and that can be given quantitative expression are encouraged. The journal is especially interested in papers that extend the boundaries of traditional chemical engineering.
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