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Nucleate pool boiling heat transfer on etched and laser structured silicon surfaces

机译:刻蚀和激光结构化的硅表面上的核池沸腾传热

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Pool boiling experiments were performed using saturated double-distilled and degassed water on 10x10 mm silicon samples, which were (ⅰ) untreated; (ⅱ) laser structured; or (ⅲ) modified with etched artificial nucleation cavities. The etched silicon surfaces were fabricated with differently sized micro nucleation cavities (5-30 μm) and pitches (0.125-2 mm) to allow a comparative analysis of the fabricated surfaces. The heat transfer coefficient (HTC) comparative analysis conducted at the heat flux of 200 kW/m~2 exhibits the highest enhancement of 244% during nucleate boiling on the silicon sample with etched nucleation cavities with a 30 μm diameter and a 0.125 mm pitch. The experimental results consistently show that HTC increases with decreasing the pitch and increasing the size of the nucleation cavities in the range of the experimental conditions. The superheat required for the onset of nucleate boiling and the critical heat flux were not substantially affected with the structured surfaces. However, the boiling phenomena propagates more promptly to the entire available silicon surface, when the sample is laser treated or etched compared to the reference bare silicon sample.
机译:池沸腾实验是在10x10 mm硅样品上使用饱和的双蒸馏水和脱气水进行的,样品未经处理; (ⅱ)激光结构化;或(ⅲ)用蚀刻的人工成核腔修饰。使用不同尺寸的微核腔(5-30μm)和节距(0.125-2 mm)制作蚀刻的硅表面,以便对制作的表面进行比较分析。在200 kW / m〜2的热通量下进行的传热系数(HTC)比较分析在直径为30μm,间距为0.125 mm的刻蚀成核腔的硅样品上进行成核沸腾时表现出244%的最高增强。实验结果一致表明,在实验条件范围内,HTC随着螺距的减小和成核腔尺寸的增加而增加。发生核沸腾所需的过热和临界热通量基本上不受结构化表面的影响。但是,与参考裸硅样品相比,当对样品进行激光处理或蚀刻时,沸腾现象会更迅速地传播到整个可用硅表面。

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