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首页> 外文期刊>International Journal of Heat and Mass Transfer >Convective mass and heat transfer enhancement of nanofluid streams in bifurcating microchannels
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Convective mass and heat transfer enhancement of nanofluid streams in bifurcating microchannels

机译:分叉微通道中纳米流体流的对流质量和传热增强

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摘要

Significantly improved mixing and heat transfer between two nanofluid streams in a Y-shaped sinusoidal microchannel have been achieved via geometric modifications and changes in pulsatile flow conditions. As a result a new mass-and-heat transfer correlation has been obtained as well. The geometry modification was done in two distinct parts. First, the phase shift (ϕ) between the wavy walls of the Y-channel was varied for three different shift values0°,90°,180°. Once the shift that yielded the highest degree of mixing was determined, the included angle (α) between the input streams was varied30°,45°,60°. The numerical results show thatα=60°andϕ=90°yield best results. The inlet streams are pulsatile with a velocity of the formV+δVsinωt+ΦwhereV,δV,ω,Φare the average velocity, pulse amplitude, pulse frequency and phase shift respectively. Flow variations have been implemented via different phase shifts45°,90°,135°,180°, different phase amplitudes and different phase frequencies. For the sake of comparison and ease of plotting, non-dimensional parameters have been used. The frequency has been captured by the non-dimensional Strouhal number (St) and the amplitude by the amplitude ratio (δV/V). The average degree of mixing(ζ), which is observed to undergo spatial variations along the exit channel as well as temporal fluctuations over one pulsation cycle is shown to be most sensitive to the amplitude and frequency of pulsations. For a fixed amplitude, the average degree of mixing increases with elevated Strouhal numbers. It reaches a peak at a particularStvalue and then decreases with further increase inSt. TheStwhere the degree of mixing peaks depends on the amplitude of pulsations. ForδV/V⩾5, the degree of mixing peaks atSt≈0.5. ForδV/V⩽5, the degree of mixing peaks atSt≈2. Unlike mixing, the heat transfer rate, characterized by the non-dimensional Nusselt number(Nu)peaks at higher frequency values for allδV/Vratios. To generate higher amplitudes in the pulsating flow, a larger pumping power would be required. Hence, to minimize energy cost, low amplitude and high frequency pulsations are most suitable for optimal mixing and heat transfer.Finally, a microchannel with optimized geometry and inlet flow conditions is proposed, which takes advantage of the flow instabilities created by the modified geometry and pulsating flow to yield the highest degree of mixing and heat transfer within the listed constraints. Functional dependencies have been established, based on computer experiments, between non-dimensional parameters such asSt,δV/V,ζ,Nu. As a result, a correlation between mixing and heat transfer was developed which allows studying one quantity, say, the Nusset number Nu, to readily obtain the average degree of mixingζ.
机译:通过几何修改和脉动流动条件的变化,已实现了Y形正弦微通道中两个纳米流体流之间显着改善的混合和传热。结果,也获得了新的质量和热传递相关性。在两个不同的部分进行了几何修改。首先,对于三个不同的偏移值0°,90°,180°,Y通道的波状壁之间的相移(ϕ)会发生变化。一旦确定了产生最高混合度的偏移,就将输入流之间的夹角(α)改变了30°,45°,60°。数值结果表明,α= 60°和ϕ = 90°可获得最佳结果。入口流是脉动的,其速度形式为V +δVsinωt+Φ,其中V,δV,ω,Φ分别为平均速度,脉冲幅度,脉冲频率和相移。通过不同的相移45°,90°,135°,180°,不同的相位幅度和不同的相位频率实现了流量变化。为了比较和易于绘制,已使用了无量纲参数。频率已通过无量纲斯特劳哈尔数(St)捕获,振幅已通过振幅比(δV/ V)捕获。平均混合度(ζ)沿出口通道发生空间变化,并且在一个脉动周期内发生时间波动,这表明它对脉动的幅度和频率最敏感。对于固定振幅,平均混合度会随Strouhal数的增加而增加。它在特定的Stvalue处达到峰值,然后随着St的进一步增加而减小。混合峰的程度取决于脉动的幅度。对于δV/V⩾5,混合度在St≈0.5处达到峰值。对于δV/V⩽5,混合度在St≈2处达到峰值。与混合不同,传热速率的特征在于所有δV/ Vratios的较高频率值处的无量纲努塞尔数(Nu)峰值。为了在脉动流中产生更高的振幅,将需要更大的泵浦功率。因此,为了最大程度地降低能量成本,低振幅和高频脉动最适合于最佳混合和传热。最后,提出了一种具有优化几何形状和入口流动条件的微通道,该微通道利用了修改后的几何形状和在列出的限制范围内,脉动流产生最高程度的混合和热传递。基于计算机实验,已经建立了无量纲参数(例如,St,δV/ V,ζ,Nu)之间的功能依赖性。结果,发展了混合和传热之间的相关性,该相关性使得可以研究一个量,例如Nusset数Nu,以容易地获得平均混合度ζ。

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