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首页> 外文期刊>Chemical Engineering Science >Analysis of particle-laden fluid flows, tortuosity and particle-fluid behaviour in metal foam heat exchangers
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Analysis of particle-laden fluid flows, tortuosity and particle-fluid behaviour in metal foam heat exchangers

机译:金属泡沫换热器中粒子叠层流体流动,曲折和颗粒流体行为分析

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摘要

Highlights ? A coupled FVM-DEM method to examine mass transfer and fouling in porous media. ? Compared numerical and analytical pressure drop results. ? Quantitative analysis of tortuosity and solid-gas behaviour. ? Fluid resistance dependent on particle properties and Reynolds number. Abstract Tortuosity and porosity are critical parameters for characterizing fluid flow in porous media. These parameters are of paramount importance in the design of porous compact heat exchangers, packed bed reactors, and catalysis supports; however, in the context of heat exchangers, these parameters are generally formulated for single-phase fluid flow under steady-state conditions. However, most industrial flows in a porous medium such as metal foams comprise of transient particle-laden fluid flow. A coupled finite volume and discrete element method (FVM-DEM) is developed to examine transient particle-laden Stokesian flow, particulate fouling (deposition), and fluid flow patterns in an idealized porous metal foam. This work presents a comparative analysis of the analytical and numerical pressure drop profiles. The solid-gas suspension in a porous media is discussed. Secondly, a new time-dependent pore-level fluid tortuosity relation is established which is linked with a modified porosity-based Darcy-Forchheimer equation. Fluid disturbance attributable to the inception of particle deposition is quantified by the tortuosity and instantaneous shift in streamline angle ratio. It is shown that the streamline angle ratio and the meandering of fluid flow paths vary with changing porosity and tortuosity. Moreover, the Reynolds number and particle density play a critical role in the alteration of the resistance to fluid flow and permeability which is related to the tortuosity and variation in fluid flow behaviour. The results and numerical method serves as a steppingstone to better optimize various heat exchangers while taking into account complex multiphase flow behaviour and the tortuous flow paths of porous structures. ]]>
机译:<![cdata [ 亮点 耦合的fvm-dem方法,用于检查多孔介质中的传质和污垢。 比较数值和分析压降结果。 曲折和固体气体行为的定量分析。 依赖于粒子特性和reynolds numb的流体阻力呃。 抽象 < CE:简单段ID =“SP0010”视图=“全部”>曲折和孔隙度是用于在多孔介质中进行流体流动的临界参数。这些参数在多孔紧凑型热交换器,包装床反应器和催化支撑件的设计中至关重要;然而,在热交换器的背景下,通常配制这些参数在稳态条件下用于单相流体流动。然而,多孔介质中的大多数工业流动如金属泡沫包括瞬时颗粒载体流体流动。开发了一种耦合的有限体积和离散元件方法(FVM-DEM)以检查理想化多孔金属泡沫中的瞬时粒子 - 载装斯洛克斯流,颗粒污垢(沉积)和流体流动图案。该工作提出了对分析和数值压降型材的比较分析。讨论了多孔介质中的固体气体悬浮液。其次,建立了一种新的时间依赖性孔径流体曲折关系,其与基于改进的孔隙率的达西 - 前大学器方程相关联。可归因于粒子沉积初始的流体扰动通过曲折性角度比的曲折性和瞬间偏移量化。结果表明,流线角比和流体流动路径的曲折随着孔隙率和曲折性而变化。此外,雷诺数和颗粒密度在抗腐烂和流体流动行为的抗腐蚀性和变化相关的流体流动和渗透性的抗渗透性方面发挥着关键作用。结果和数值方法用作脱脂石,以更好地优化各种热交换器,同时考虑复杂的多相流动行为和多孔结构的曲折流动路径。 ]]>

著录项

  • 来源
    《Chemical Engineering Science》 |2017年第2017期|共11页
  • 作者单位

    Laboratory for Advanced Modelling and Simulation in Engineering and Science School of Chemistry Physics &

    Mechanical Engineering Queensland University of Technology;

    Laboratory for Advanced Modelling and Simulation in Engineering and Science School of Chemistry Physics &

    Mechanical Engineering Queensland University of Technology;

    Mechanical Engineering Department University of California;

    Laboratory for Advanced Modelling and Simulation in Engineering and Science School of Chemistry Physics &

    Mechanical Engineering Queensland University of Technology;

    Laboratory for Advanced Modelling and Simulation in Engineering and Science School of Chemistry Physics &

    Mechanical Engineering Queensland University of Technology;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    CFD-DEM; Particulate fouling; Metal foam; Multiphase flow; Heat exchanger; Tortuosity;

    机译:CFD-DEM;微粒污垢;金属泡沫;多相流动;换热器;曲折;

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