Parametric Study of Vortex Generator Effects in an Additive Manufactured Minichannel Heat Exchanger

Hamidreza Rastan, T. Ameel, B. Palm
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引用次数: 1

Abstract

Heat exchangers with mini- and micro-channel components are capable of high energy exchange due to their incumbent large surface area to volume ratio. Concurrently, recent advances in additive manufacturing simplify the creation of metallic minichannels that incorporate turbulators for heat transfer enhancement. As part of the development of a minichannel heat exchanger with turbulators, this study analyzes the three-dimensional conjugate heat transfer and laminar flow in a minichannel heat exchanger equipped with rectangular winglet vortex generators (VGs) through numerical simulation. The minichannels have a hydraulic diameter of 2.86 mm and are assumed to be made from aluminum alloy AlSi10Mg. This material is one of the popular alloys in the additive manufacturing industry (three-dimensional (3D) printing) because of its light weight and beneficial mechanical and thermal properties. The working fluid is distilled water with temperature-dependent thermal properties. The minichannel is heated by a constant heat flux of 5 W cm−2 and the Reynolds number is varied from 230 to 950. The simulations are performed using the COMSOL® platform, which solves the governing mass, momentum, and energy equations based on the finite element method. The effect of the VG design parameters, which include VG angle of attack, height, length, thickness, longitudinal pitch, and distance from the sidewalls, is investigated. It is found that the generation of three-dimensional vortices caused by the presence of the vortex generators can notably boost the convective heat transfer, at the cost of increased pressure drop, potentially reducing the heat exchanger size for a given heat duty. A sensitivity analysis indicates that the angle of attack, VG height, VG length, and longitudinal pitch have the most significant effects on the heat transfer and flow friction characteristics. In contrast, the VG thickness and distance from the sidewalls only had minor influences on the heat exchanger performance over the studied range of design parameters.
增材制造小通道换热器涡发生器效应的参数化研究
具有微型和微通道组件的热交换器由于其现有的大表面积与体积比而能够进行高能量交换。与此同时,增材制造的最新进展简化了金属微型通道的创建,其中包含增强传热的湍流器。作为带紊流器的微型通道换热器研制的一部分,本文通过数值模拟分析了装有矩形小波涡发生器的微型通道换热器内的三维共轭传热和层流。小通道的液压直径为2.86 mm,假设由AlSi10Mg铝合金制成。这种材料是增材制造行业(三维(3D)打印)中流行的合金之一,因为它的重量轻,有益的机械和热性能。工作流体为蒸馏水,具有与温度相关的热特性。小通道加热的热流为5w cm−2,雷诺数在230 ~ 950之间变化。模拟使用COMSOL®平台进行,该平台基于有限元法求解控制质量,动量和能量方程。研究了不同设计参数(包括迎角、高度、长度、厚度、纵向节距和距侧壁距离)的影响。研究发现,由于涡发生器的存在而产生的三维涡可以显著地促进对流换热,但代价是增加了压降,从而潜在地减小了给定热负荷的热交换器尺寸。灵敏度分析表明,迎角、涡扇高度、涡扇长度和纵向节距对换热和流动摩擦特性的影响最为显著。相比之下,在研究的设计参数范围内,VG厚度和到侧壁的距离对换热器性能的影响较小。
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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