移动床换热器中非球形颗粒的实验与数值研究

IF 7.1 Q1 ENGINEERING, CHEMICAL
Aidana Boribayeva , Arsen Musahanov , Assiya Baigarina , Islam Lukmanov , Sultan Sultaniyar , Assanali Patkhollayev , Nicolin Govender , Boris Golman
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引用次数: 0

摘要

移动床式热交换器(MBHE)对于集中太阳能发电和废热回收等应用中的高温热管理至关重要。虽然球形颗粒通常用于MBHE研究,但工业颗粒材料通常具有复杂的非球形形状,会显著影响流动、填料和传热。研究了非球形颗粒与球形颗粒在交错管MBHE中的流动特性和传热特性。第一个目标涉及使用颗粒跟踪技术对管道周围非球形和球形铝土矿颗粒的流动进行实验表征,并随后验证离散元方法模型。第二个目标是利用验证模型来分析不同出口速度下的流动、传热和填料结构。非球形颗粒形成更宽的滞止区、不对称的侧壁流动和更窄的空隙区,增强了管内接触。球形颗粒产生更窄的停滞和更宽的空隙区,接触更少。由于接触面积较大,圆柱形颗粒加热管的速度更快,温度稳定得更早,而球形颗粒加热管的速度较慢,接触面积较小。此外,还对筒形颗粒的表面填料结构进行了深入分析,并对接触类型进行了分类。较高的出口速度增强了圆柱颗粒排列,从而增加了热有利接触类型的数量,如接触面面积更大。相比之下,球形颗粒保持更均匀但明显小的接触面积。非球形颗粒通过增强流动特性、颗粒管接触和传热效率,显著提高了MBHE性能,为工业应用提供了更有效的热管理解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental and numerical study of non-spherical particles in moving bed heat exchangers
Moving Bed Heat Exchangers (MBHE) are vital for high-temperature thermal management in applications like concentrated solar power and waste heat recovery. Although spherical particles are often used in MBHE research, industrial granular materials typically have complex, non-spherical shapes that significantly influence flow, packing, and heat transfer. This study investigates the flow behavior and heat transfer of non-spherical particles in a staggered tube MBHE, comparing with spherical particles. The first objective involves experimentally characterizing the flow of non-spherical and spherical bauxite particles around a tube using a particle tracking technique and subsequently validating a Discrete Element Method model. The second objective utilizes the validated model to analyze flow, heat transfer, and packing structure under varying outlet velocities. Non-spherical particles form broader stagnation zones, asymmetric sidewall flow, and narrower void zones, enhancing tube contact. Spherical particles create narrower stagnation and wider void zones with less contact. Cylindrical particles heat the tube faster and stabilize temperature earlier due to larger contact areas, while spherical particles heat slower with smaller contact areas. Furthermore, the packing structure at the tube surface was thoroughly analyzed for cylindrical particles for contact types classification. Higher outlet velocities enhance cylindrical particle alignment, thereby increasing the number of thermally favorable contact types as face–plane with larger contact areas. In contrast, spherical particles maintain more uniform but significantly small contact areas. Nonspherical particles significantly improve MBHE performance by enhancing flow behavior, particle–tube contact, and heat transfer efficiency, enabling more effective thermal management solutions in industrial applications.
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来源期刊
Chemical Engineering Journal Advances
Chemical Engineering Journal Advances Engineering-Industrial and Manufacturing Engineering
CiteScore
8.30
自引率
0.00%
发文量
213
审稿时长
26 days
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