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The effects of wall curvature and adverse pressure gradient on air ducts in HVAC systems using turbulent entropy generation analysis

机译:湍流熵生成分析壁曲率和不利压力梯度对HVAC系统中的风管的影响

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In the present study, entropy generation analysis of turbulent boundary layer was carried out to examine the effects of the wall curvature and adverse pressure gradient (APG) on air distribution ducts in HVAC systems considering both individual and simultaneous effects of these parameters and using the empirical data. Six walls, including straight wall (A), convex curved wall (B1), concave curved wall (B2), straight wall with APG (D), convex curved wall with APG (C1), and concave curved wall with APG (C2) were investigated. The air distribution ducts can be divided into various geometries, including straight duct (A*), curved duct (B*), straight diffuser (D*), and curved diffuser (C*). Furthermore, for walls with APG (D, Cl, and C2), the divergence angle was chosen in such a way that no flow separation occurred in the range under consideration. The findings showed that the entropy generation resulted from turbulence dissipation was highly important in the regions near the boundary layer edge, so that the ratio of the entropy generation rate due to the turbulence dissipation to the total entropy generation rate in the regions near the boundary layer edge approximates 0.9. In fact, in these regions, a large portion of the total entropy generation rate was related to turbulence dissipation. Consequently, the turbulence dissipation in these regions was too large to be ignored. Thus, in order to achieve a more precise criterion of the dissipation of air distribution ducts in HVAC systems, the turbulence dissipation should be taken into account. (C) 2020 Elsevier Ltd and IIR. All rights reserved.
机译:在本研究中,进行了湍流边界层的熵生成分析,以检查壁曲率和不利压力梯度(APG)对HVAC系统中的空气分配管道的影响,考虑到这些参数的个体和同时效果并使用经验数据。六壁,包括直壁(A),凸弯壁(B1),凹弯壁(B2),具有APG(D)的直壁,具有APG(C1)的凸弯壁,以及具有APG(C2)的凹入弯曲壁(C2)被调查了。空气分配管道可分为各种几何形状,包括直管(A *),弯曲管道(B *),直散射器(D *)和弯曲扩散器(C *)。此外,对于具有APG(D,CL和C2)的壁,选择发散角以使得在所考虑的范围内没有发生流动分离。结果表明,由于湍流耗散导致的熵产生在边界层边缘附近的区域中非常重要,使得熵产生率的比率由于湍流耗散到边界层附近的区域中的总熵生成速率边缘近似0.9。事实上,在这些区域中,大部分总熵产生率与湍流耗散有关。因此,这些区域中的湍流耗散太大而无法忽略。因此,为了实现HVAC系统中的空气分配管道耗散的更精确标准,应考虑湍流耗散。 (c)2020 Elsevier Ltd和IIR。版权所有。

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