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Wall conduction effects in laminar counterflow parallel-plate heat exchangers

机译:层流逆流平行板热交换器中的壁传导效应

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Wall conduction effects in multilayered, counterflow, parallel-plate heat exchangers are analyzed theoretically and numerically. The analysis, carried out for constant property fluids, considers a hydrody-namically developed laminar flow and neglects axial conduction both in the fluids and in the plates. The temperature field is expanded as an infinite series in terms of a complete set of eigenfunctions associated with sets of both positive and negative eigenvalues. In addition to the exact solution, an approximate solution that retains only the first two terms in the eigenfunction expansion is considered. The approximate two-term solution, which still incorporates the effect of higher order modes through apparent temperature offsets introduced at the inlet/outlet sections, provides an accurate representation for the temperature field away from the thermal entrance regions, thereby enabling simplified expressions for the wall and bulk temperatures, local Nusselt numbers, and overall heat-transfer coefficient. As main outcome of the analysis, it is seen that increasing the wall thermal resistance lowers the absolute value of both positive and negative eigenvalues-thus reducing heat-exchanger effectiveness-and increases the Nusselt number of the fluid with lower heat-capacity flow rate bringing it closer to its theoretical value 140/17 = 8.2353 corresponding to a constant heat flux boundary condition. Moreover, the proposed two-term solution is seen to reproduce with great accuracy the dependence of the outlet bulk temperatures with the wall thermal resistance. The asymptotic solution for nearly-balanced heat exchangers is also obtained, providing closed-form analytical expressions for this limiting case of practical interest.
机译:从理论和数值上分析了多层,逆流,平行板热交换器中的壁传导效应。对恒特性流体进行的分析考虑了流体动力学地发展的层流,而忽略了流体和板中的轴向传导。根据与正和负特征值集相关的完整特征函数集,温度场被扩展为无穷级数。除了精确解外,还考虑了仅保留特征函数扩展中前两项的近似解。近似的二项解决方案仍通过入口/出口部分引入的明显温度偏移而结合了高阶模态的影响,为远离热入口区域的温度场提供了准确的表示,从而简化了壁的表达式以及体温,局部Nusselt数和总传热系数。作为分析的主要结果,可以看出,增加壁的热阻会同时降低正负特征值的绝对值,从而降低换热器的有效性,并以较低的热容流量增加流体的Nusselt数,它接近于与恒定热通量边界条件相对应的理论值140/17 = 8.2353。而且,可以看出,所提出的两项解决方案可以非常精确地再现出口体积温度与壁热阻的关系。还获得了近乎平衡的换热器的渐近解,为这种具有实际意义的极限情况提供了封闭形式的分析表达式。

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