Numerical Investigation of Cyclone Separators: Physical Mechanisms and Theoretical Algorithms

IF 6.2 3区 工程技术 Q1 ENGINEERING, CHEMICAL
Dr. Mahmoud A. El-Emam, Prof. Ling Zhou, Eman Yasser
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引用次数: 0

Abstract

Gas-particle aero-type cyclones have revolutionized biochemical processes, engineering industries, and environmental pollution protection by effectively separating particles from gas. These devices rely on gravitational energy and centrifugal force to dissipate particle phase energy, but achieving optimal energy efficiency while minimizing pressure drop remains challenging. This has led to the development of various cyclone designs in commercial industries, each with unique energy efficiency characteristics. The intricate gas-particle flow inside cyclones is a critical issue impacted by cyclone geometry, operating conditions, and media parameters. Advanced numerical simulations have been employed to understand this complex flow pattern better, offering researchers valuable insights into the mechanisms of different cyclone separators. This comprehensive review explores the available numerical methods in the literature on cyclones and their corresponding validations. Computational numerical modeling is a promising technique for predicting cyclone energy efficiency, gas-particle behavior, and overall performance. This investigation delves into the progress and numerical forms of gas-particle flow cyclones, examining how different parameters impact cyclone performance and flow patterns within the two-phase flow. The future developments and challenges that may further promote the development of aero-type cyclone separators, providing theory and engineering support for future cyclone designs, are also covered. As a result, it can confidently be reported that aero-type cyclone separators remain a critical component in various industrial sectors, offering energy-efficient solutions for mitigating environmental pollutants and gas-particle separation systems. With continued development and research, these devices will undoubtedly shape the future of energy processes and engineering industries, ushering in a new era of sustainability and efficiency.

Abstract Image

Abstract Image

旋风分离器的数值研究:物理机制和理论算法
气体颗粒气旋式旋流器通过有效分离气体中的颗粒,为生化过程、工程行业和环境污染保护带来了革命性的变化。这些设备依靠重力和离心力来消散颗粒相的能量,但要在最大程度减少压降的同时实现最佳能效仍然具有挑战性。因此,商业行业开发出了各种旋风分离器设计,每种设计都具有独特的能效特性。旋风分离器内部错综复杂的气体-颗粒流动是一个关键问题,受到旋风分离器几何形状、运行条件和介质参数的影响。为了更好地理解这种复杂的流动模式,研究人员采用了先进的数值模拟方法,从而为研究不同旋风分离器的机理提供了宝贵的见解。本综述探讨了旋风分离器文献中可用的数值方法及其相应的验证。计算数值建模是预测旋风分离器能效、气体颗粒行为和整体性能的一项很有前途的技术。本研究深入探讨了气体颗粒流旋流器的进展和数值形式,研究了不同参数如何影响旋流器的性能以及两相流中的流动模式。此外,还探讨了可能进一步促进气旋式分离器发展的未来发展和挑战,为未来的气旋式分离器设计提供理论和工程支持。因此,可以肯定地说,气旋式分离器仍然是各工业部门的重要组成部分,为减轻环境污染物和气体颗粒分离系统提供了节能解决方案。随着不断的开发和研究,这些设备无疑将塑造能源流程和工程行业的未来,开创一个可持续发展和高效率的新时代。
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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来源期刊
ChemBioEng Reviews
ChemBioEng Reviews Biochemistry, Genetics and Molecular Biology-Biochemistry
CiteScore
7.90
自引率
2.10%
发文量
45
期刊介绍: Launched in 2014, ChemBioEng Reviews is aimed to become a top-ranking journal publishing review articles offering information on significant developments and provide fundamental knowledge of important topics in the fields of chemical engineering and biotechnology. The journal supports academics and researchers in need for concise, easy to access information on specific topics. The articles cover all fields of (bio-) chemical engineering and technology, e.g.,
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