首页> 外文期刊>International Journal of Heat and Mass Transfer >Experimental investigation of the heat transfer performance of capillary-assisted horizontal evaporator tubes with sintered porous hydrophilic copper-carbon nanotube-titanium dioxide (Cu-CNT-TiO_2) composite coatings for adsorption chiller
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Experimental investigation of the heat transfer performance of capillary-assisted horizontal evaporator tubes with sintered porous hydrophilic copper-carbon nanotube-titanium dioxide (Cu-CNT-TiO_2) composite coatings for adsorption chiller

机译:吸附冷却器用多孔多孔亲水铜-碳纳米管-二氧化钛(Cu-CNT-TiO_2)复合涂层烧结的毛细管辅助卧式蒸发器传热性能的实验研究

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摘要

A partially flooded evaporator is often used in adsorption chiller. This study explores the use of a ternary copper-carbon nanotube-titanium dioxide (Cu-CNT-TiO_2) composite coating on copper tubes with structured external surfaces for the enhancement of capillary-assisted water evaporation in semi-flooded evaporator. The composite coating, made from ball-milled composite powder, was deposited on the tube by electrostatic spraying and consolidated by sintering in an electric furnace. The coating samples were characterized by pore size, surface porosity, pore density and optical microscopy, scanning electron microscopy, and energy-dispersive X-ray spectroscopy. The wettability of the coated-surfaces with a droplet of refrigerant, i.e., water, was observed at atmospheric conditions by measuring the contact angle between water droplets and the surface. These characterizations showed that the Cu-CNT-TiO_2 coating had a porous surface structure and was more wettable than the pure copper coating. To investigate the influence of the applied coating and water level fraction on heat transfer, experiments for evaporation heat transfer were performed at a saturated water vapor pressure of 7.5 torr (~1 kPa) and a warm water inlet temperature of 12 ℃ with an evaporator with four serially connected tubes. Enhanced evaporation heat transfer was achieved when the heating tubes were partially immersed in water with level ratios of approximately 0.1 to 0.3 (i.e., 10 to 30% of the tube diameter). Furthermore, use of the Cu-CNT-TiO_2 coating improved the evaporation heat transfer, especially when applied to the finned tubes; a maximum enhancement ratio of 3.15 was obtained, comparing the Cu-CNT-TiO_2-coated finned tubes with the bare finned tubes.
机译:吸附式冷却器通常使用部分注满的蒸发器。本研究探索了在具有结构化外表面的铜管上使用三元铜-碳纳米管-二氧化钛(Cu-CNT-TiO_2)复合涂层来增强半淹没式蒸发器中毛细管辅助水的蒸发的功能。由球磨复合粉末制成的复合涂层通过静电喷涂沉积在管上,并通过在电炉中烧结而固结。涂层样品的特征在于孔径,表面孔隙率,孔密度和光学显微镜,扫描电子显微镜以及能量色散X射线光谱。通过测量水滴与表面之间的接触角,在大气条件下观察了被制冷剂即水覆盖的表面的润湿性。这些特征表明,Cu-CNT-TiO_2涂层具有多孔表面结构并且比纯铜涂层更易润湿。为了研究所施加的涂料和水位分数对传热的影响,采用蒸发器在7.5 torr(〜1 kPa)的饱和水蒸气压和12℃的热水入口温度下进行了蒸发传热的实验。四个串联的管。当加热管部分浸入水中时,蒸发率的传热得到提高,水平比约为0.1至0.3(即管直径的10%至30%)。此外,使用Cu-CNT-TiO_2涂层改善了蒸发传热,特别是应用于翅片管时。比较了涂有Cu-CNT-TiO_2的翅片管和裸露的翅片管,最大增强比为3.15。

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