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Thermal Hydraulic Performance of High Porosity High Pore Density Thin Copper Foams Subject to Array Jet Impingement

机译:阵列射流冲击下高孔隙率高孔隙率薄铜泡沫的热工水力性能

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Metal foams have shown promise in enhancing heat dissipation from heated surfaces and find applications in forced convection cooling environments like electronics cooling. The thermal and hydraulic performance of metal foams have a strong correlation to its pore density (pores per inch: PPI) and porosity. While high pore density is desired to enhance heat dissipation (due to higher effective heat transfer area), high porosity is suitable to maintain low pressure drop in forced convective cooling applications. Towards this end, an experimental study was carried out to evaluate the thermal-hydraulic performance of high pore density (90 PPI), high porosity (95%), thin Copper foams (3 mm thick) strategically placed over a heated surface of base area 20 mm x 20 mm. Heat transfer was facilitated with air as the working fluid impinging through a 3x3 array (x⁄dj = y⁄dj = 4) of circular nozzles of diameter, dj = 1.5 mm. Two metal foam-heated surface configurations were tested, a full foam configuration; where the metal foam covered the entire heated surface area, and a foam stripes configuration, where metal foam stripes were strategically placed over the heated surface, were studied for their heat transfer, pressure drop and thermal hydraulic performance at Reynolds numbers (Rej) between 3000 and 12000. A smooth surface, without metal foam, served as the baseline case. Additionally, the effect of varying jet-to-target plate distance (z) as z⁄dj = 2, 3, 5, 7 was studied. From experiments, it was observed that the stripes configuration had highest heat transfer enhancement of about 1.45 times that of the smooth surface target, at the expense of a marginal increase in pumping power, thereby making it the best configuration in terms of thermal hydraulic performance.
机译:金属泡沫在增强加热表面的散热方面已显示出希望,并已在电子对流冷却等强制对流冷却环境中找到了应用。金属泡沫的热性能和水力性能与其孔密度(每英寸孔数:PPI)和孔隙率密切相关。虽然需要较高的孔密度来增强散热(由于较高的有效传热面积),但在强制对流冷却应用中,较高的孔隙率适合于保持低压降。为此,进行了一项实验研究,以评估策略性地将高孔隙密度(90 PPI),高孔隙率(95%),薄泡沫铜(3毫米厚)放置在受热区域上的热工液压性能。 20毫米x 20毫米。空气作为工作流体通过3x3阵列(x⁄d j = y⁄d j = 4)直径d的圆形喷嘴 j = 1.5毫米。测试了两种金属泡沫加热的表面配置,即全泡沫配置;研究了其中金属泡沫覆盖整个加热表面区域的泡沫条结构,以及将泡沫金属条策略性地放置在加热表面上的泡沫条结构,研究了它们在雷诺数下的传热,压降和热水力性能(Re j )在3000和12000之间。没有金属泡沫的光滑表面作为基准线。此外,将射流到目标板的距离(z)更改为z⁄d的影响 j = 2、3、5、7。从实验中观察到,条状构型具有最高的传热增强能力,约为平滑表面靶材的1.45倍,其代价是抽运功率的边际增加,从而使其成为在热液压性能方面的最佳构型。

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