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泡沫金属应用于海上管壳式换热器时,需要保证海上工况下冷凝液体从泡沫金属中及时疏泄,为此需要明确泡沫金属内液体的疏泄性能。本文搭建了滴注疏泄测试实验台,在稳定和横摇工况下分别测量了孔密度分别为5、10、20和40 PPI的泡沫金属内液体疏泄后的单位体积存液量。结果表明:随着孔密度从5 PPI增加到40 PPI,液体存在泡沫金属内的形态逐渐从部分悬挂液滴变成完整液层,单位体积存液量约增加了300%;随着横摇角度和横摇频率的增大,泡沫金属的疏泄性能变好,存液量减小;孔密度10为PPI的泡沫金属在横摇工况下疏泄性能最优,而孔密度为40 PPI的疏泄性能最差,存液量在实验工况范围内最多变化了45%和8%。
Abstract:The premise of metal foam tubes applied in floating shell-and-tube heat exchanger is that the condensate can be well drained out of metal foam, thus the liquid drainage performance for the metal foam under sloshing condition should be investigated. In the present study, the droplets-injection test apparatus is designed to measure the liquid retention of metal foam with pore density of 5, 10, 20, and 40 PPI under steady condition and rolling condition. The research results show that, as pore density increases from 5 PPI to 40 PPI, the shape of liquid in metal foam changes from partial droplets to complete liquid layer, and the mass of liquid retention is increased by 300%. With the increase of rolling angle and frequency, the drainage performance promotes and the liquid retention in metal foam decreases. Under the rolling condition, 10 PPI and 40 PPI metal foam has the best and worst drainage performance respectively, and the respective decrement of liquid retention are 45% and 8% maximally.
[1]杨文刚,陈杰,浦晖.海水换热器在大型LNG工厂的应用[J].制冷技术, 2013, 33(2):45-47.
[2]史学增,王伟勇,张定才.船用冷凝器冷凝强化管换热性能研究[J].制冷技术, 2008, 28(1):11-15.
[3] LIU Z, ZHENG F, LI Y. Enhancing boiling and condensation co-existing heat transfer in a small and closed space by copper foam inserts[J]. International Journal of Heat and Mass Transfer, 2017, 108:961-971.
[4] BANHART J. Manufacture, characterisation and application of cellular metals and metal foams[J].Progress in Materials Science, 2001, 46(6):559-632.
[5]齐隽楠,吴嘉峰,陈亚平.疏水表面蒸汽滴状冷凝传热实验分析[J].制冷技术, 2015, 35(3):11-14.
[6]翁晓敏,胡海涛,赖展程,等.孔密度对泡沫金属内湿空气的换热与压降特性影响分析[J].化工学报, 2016,67(6):2218-2223.
[7]李秋英,巨永林.适合海上油田伴生气的液化流程设计与分析[J].制冷技术, 2008, 28(4):26-28.
[8] HAN X, KASHIF N, BOCK J, et al. Open-cell metal foams for use in dehumidifying heat exchangers[C]//Refrigeration and Air conditioning Conference. West Lafayette:Purdue University, 2012:1312.
[9] HU H, LAI Z, DING G, et al. Experimental investigation on water drainage characteristics of open-cell metal foams with different wettabilities[J]. International Journal of Refrigeration, 2017, 79:101-113.
[10]纪献兵,徐进良.流体在超轻多孔金属泡沫中的流动和换热特性[J].化工学报, 2009, 60(1):21-27.
[11] HU H, WENG X, ZHUANG D, et al. Heat Transfer and pressure drop characteristics of wet air flow in metal foam under dehumidifying conditions[J]. Applied Thermal Engineering, 2016, 93:1124-1134.
[12]朴勇日,吴晓敏,马强,等.填充泡沫铜圆管内R32单相流动换热[J].化工学报, 2017, 68(6):2275-2279.
[13]郭剑飞,李增耀,屈治国,等.水平金属泡沫管外R134a凝结传热实验研究[J].工程热物理学报, 2011,32(5):839-842.
[14]王会,郭烈锦.非平衡条件下金属泡沫管内的流动与传热分析[J].工程热物理学报, 2015, 36(12):2699-2702.
[15]冀文涛,屈治国,郭剑飞,等.水平管外开孔铜泡沫R134a池沸腾换热实验研究[J].工程热物理学报,2010, 31(7):1185-1188.
[16] XU Z, QU Z, ZHAO C, et al. Pool boiling heat transferon open-celled metallic foam sintered surface under saturation condition[J]. International Journal of Heat and Mass Transfer, 2011, 54(17):3856-3867.
[17]姚寿广,董招生.多孔泡沫金属强化相变传热研究进展[J].江苏科技大学学报(自然科学版), 2017, 31(4):448-456.
[18] ZHANG J, YAN C, GAO P. Characteristics of pressure drop and correlation of friction factors for single-phase flow in rolling horizontal pipe[J]. Journal of Hydrodynamics, 2009, 21(5):614-621.
[19]李剑锐,陈杰,浦晖,等.横摇对水平管外制冷剂两相降膜流动换热特性的影响分析[J].制冷技术, 2016,36(5):20-23.
[20] MOFFAT R J. Describing the uncertainties in experimental results[J]. Experimental Thermal and Fluid Science, 1988, 1(1):3-17.
基本信息:
DOI:
中图分类号:TK124;TB383.4;TG14
引用信息:
[1]周发贤,赖展程,胡海涛等.横摇对泡沫金属内液体疏泄特性影响的实验研究[J],2019,39(06):26-30+69.
基金信息:
国家自然科学基金(No.51674165,No.51976115);; 上海市优秀学术带头人计划(No.16XD1401500)