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Numerical simulation of cooling electronic components mounted in a vertical wall by natural convection

机译:自然对流冷却垂直壁冷却电子元件的数值模拟

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This paper is a numerical work to investigate thermal interactions between heat fluxes generated by electronic devices mounted on a vertical printed circuit board (PCB). In fact, the effect of some parameters such as Grashof number (Gr), the distance (S) between the heat sources and the upper exit distance (L_e) was studied. The results show that a regular and uniform heat sources distribution in the inlet is very important in order to take advantage from the leading edge of the boundary layer and to obtain the necessary heat dissipation. The impact of parameters on the heat dissipation, characterized by the Nusselt number, has a different importance. For a Prandtl number Pr = 0.71, the (Gr) increases the heat exchange that is reflected by the increase of Nusselt number, and also participates to the formation of recirculation zones. The total Nusselt number Nu is increased when (Gr) is multiplied by 10~2. With regards to the distance (S) between the heat sources, the results show that Nu increases about 7% if the distance (S) doubles, and becomes approximately 17.8% when (S) quadruples. At the end, the heat transfer increases when increasing the distance (L_e) of the upper exit length, especially on the second component. The total Nusselt number increases by 1.6% when (L_e) increases by about 67%.
机译:本文是一项数值研究,旨在研究安装在垂直印刷电路板(PCB)上的电子设备产生的热通量之间的热相互作用。实际上,研究了诸如格拉斯霍夫数(Gr),热源之间的距离(S)和上出口距离(L_e)之类的一些参数的影响。结果表明,为了充分利用边界层的前缘并获得必要的散热,在入口中均匀且均匀地分布热源非常重要。以努塞尔数为特征的参数对散热的影响具有不同的重要性。对于普朗特数Pr = 0.71,(Gr)增加了换热,这反映了努塞尔特数的增加,并且还参与了回流区的形成。当(Gr)乘以10〜2时,总努塞尔数Nu增大。关于热源之间的距离(S),结果表明,如果距离(S)增加一倍,Nu增加约7%,而当(S)增加三倍时,Nu则增加约17.8%。最后,当增加上部出口长度的距离(L_e)时,尤其是在第二部件上,传热增加。当(L_e)增加约67%时,总Nusselt数增加1.6%。

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