首页> 外文期刊>International Journal of Heat and Mass Transfer >The extended Graetz problem for a gaseous slip flow in micropipe and parallel-plate microchannel with heating section of finite length: Effects of axial conduction, viscous dissipation and pressure work
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The extended Graetz problem for a gaseous slip flow in micropipe and parallel-plate microchannel with heating section of finite length: Effects of axial conduction, viscous dissipation and pressure work

机译:有限长度加热段的微管和平行板微通道中气体滑流的扩展Graetz问题:轴向传导,粘性耗散和压力功的影响

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The extended Graetz problem for a gaseous slip flow through a micropipe and a parallel-plate microchannel, with an isothermal heating section of finite length, is analytically investigated. The simultaneous effects of the axial heat conduction, viscous dissipation and pressure work are all taken into account and discussed. The solution obtained is based on a powerful method using self-adjoint formalism, resulting from a decomposition of energy equation into a system of the first-order partial differential equations. This solution, which is applicable for finite and semi-infinite heating section, represents an improvement and extension of those obtained in the earlier works, by considering the slip boundary conditions at the fluid-wall interface for the velocity and temperature. This extension has been done by using a new matrix operator of three dimensions and a suitable scalar product between two vectors in the Hilbert space. The analytical results are compared for simplified limiting cases with available analytical and numerical calculations and a good agreement is found. The results of the effects of different dimension-less parameters involved in the problem, namely Peclet, Knudsen, Brinkman numbers and the length of the heating section, on the heat transfer characteristics are illustrated and discussed. Furthermore, some useful correlations of these characteristics are provided for some values of Peclet number. It is shown particularly that for non-zero values of Brinkman number, when the heat flow is established, the sum of the enthalpy and the energy which results from the friction and pressure work is conserved through cross-sections of microchannels, and the heat transfer is mainly governed by the shear work at the wall. Among the most important applications of this analytical solution is its potential to simulate an isothermal hot film sensor of finite size, mounted on the wall of microchannel, which can be serve to measure a heat flux between the gas and wall and hence heat transfer coefficient in the slip flow regime.
机译:分析研究了通过微管和平行板微通道的气态滑流的扩展Graetz问题,该等温加热段的长度是有限的。轴向热传导,粘性耗散和压力功的同时作用都被考虑和讨论了。所获得的解决方案基于使用自伴随形式主义的强大方法,这是将能量方程分解为一阶偏微分方程组的结果。该解决方案适用于有限和半无限加热部分,通过考虑流体壁界面处的速度和温度的滑移边界条件,代表了对早期工作中获得的结果的改进和扩展。通过使用新的三维矩阵运算符以及希尔伯特空间中两个向量之间的适当标量积,可以完成此扩展。将分析结果与简化的极限情况进行了比较,并提供了可用的分析和数值计算,并找到了很好的一致性。说明并讨论了问题中涉及的不同无量纲参数(Peclet,Knudsen,Brinkman数和加热部分的长度)对传热特性的影响结果。此外,为Peclet数的某些值提供了这些特性的一些有用的相关性。特别表明,对于布林克曼数的非零值,当建立热流时,通过微通道的横截面以及传热可以保留焓和由摩擦和压力功产生的能量之和。主要由墙的剪力控制。该分析解决方案最重要的应用之一是它有潜力模拟安装在微通道壁上的有限尺寸的等温热膜传感器,该传感器可用于测量气体与壁之间的热通量,从而测量热传导系数。滑流状态。

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