波音游戏源码-波音博彩公司评级_百家乐园天将_新全讯网3344111.c(中国)·官方网站

CityU new structured thermal armour achieves liquid cooling above 1,000°C; solves challenge presented by Leidenfrost effect since 1756

 

A research team led by scientists from City University of Hong Kong (CityU) has recently designed a structured thermal armour (STA) that achieves efficient liquid cooling even over 1,000°C, fundamentally solving a 266-year-old challenge presented by the Leidenfrost effect. This breakthrough can be applied in aero and space engines, as well as improve the safety and reliability of next-generation nuclear reactors.

The research has been led by Professor Wang Zuankai from CityU's Department of Mechanical Engineering (MNE), Professor David Quéré from the PSL Research University, France, and Professor Yu Jihong, Director of the International Center of Future Science, Jilin University and Senior Fellow of the Hong Kong Institute for Advanced Study at CityU.

The findings were published in the latest issue of the highly prestigious scientific journal Nature under the title “Inhibiting the Leidenfrost effect above 1,000?°C for sustained thermal cooling”. It was also highlighted in Nature News & Views.

The Leidenfrost effect is a physical phenomenon discovered in 1756, which refers to the levitation of drops on a surface that is significantly hotter than the liquid's boiling point. It produces an insulating vapour layer and dramatically reduces heat transfer performances at high temperature, which makes liquid cooling on the hot surface ineffective. This effect is most often detrimental and it has remained a historic challenge to suppress this effect.

The CityU-led team constructed a multitextured material with key elements that have contrasting thermal and geometrical properties. The rational design for the STA superimposes robust, conductive, protruding pillars that serve as thermal bridges for promoting heat transfer; an embedded thermally insulating membrane designed to suck and evaporate the liquid; and underground U-shaped channels that evacuate the vapour. It successfully inhibits the occurrence of the Leidenfrost effect up to 1,150 °C and achieves efficient and controllable cooling across the temperature range from 100°C to over 1,150°C. (Please refer to Figure 1 & 2.)

This multidisciplinary research project is truly a breakthrough in science and engineering, since it mixes surface science, hydro- and aero-dynamics, thermal cooling, material science, physics, energy and engineering. Searching for novel strategies to address the liquid cooling of high-temperature surfaces has been one of the holy grails in thermal engineering since 1756. We are fortunate to fundamentally suppress the occurrence of the Leidenfrost effect and thereby provide a paradigm shift in liquid thermal cooling at extremely high temperatures, a mission that has remained uncharted to date,” said Professor Wang.

Professor Wang pointed out that current thermal cooling strategies under extremely high temperatures adopt air cooling measures rather than effective liquid cooling owing to the occurrence of the Leidenfrost effect, especially for applications in aero and space engines and next-generation nuclear reactors.

“The designed STA can be fabricated to be flexible, eliminating the need for additional manufacturing, especially for those surfaces that are hard to be textured directly. This is why the STA possesses huge potential for practical applications,” added Professor Wang. (Please refer to Figure 3.)

Professor Wang, Professor Quéré and Professor Yu are the corresponding authors of the paper. The first authors are Dr Jiang Mengnan and Dr Wang Yang from MNE.

The collaborators are Professor Pan Chin, Head, Dr Steven Wang, Assistant Professor, Zhang Huanhuan, Research Assistant, Liu Fayu and Li Yuchao, PhD students, from CityU’s MNE; and Professor To Suet and Du Hanheng, PhD student, from the Department of Industrial and Systems Engineering, Hong Kong Polytechnic University.

 

Notes to editors: 

Media enquiries: Michelle Liu, Communications and Public Relations Office (Tel: 3442 6807 or 6333 9158)

 


YOU MAY BE INTERESTED

Back to top
百家乐可以出千吗| 百家乐官网专业赌| 百家乐官网软件稳赚| 破解百家乐官网视频游戏密码| 百家乐视频游戏金币| 宾利百家乐游戏| 澳门博彩8345cc| 2024年九运| 澄城县| 赌片百家乐的玩法技巧和规则| 百家乐官网公式书| 德州扑克术语| 全迅网百家乐的玩法技巧和规则| 试玩百家乐官网网| 老k百家乐的玩法技巧和规则| 百家乐官网娱乐城主页| 百家乐赌场技巧论坛| 澳门百家乐官网网上赌博| 尊龙国际| 百家乐官网画面方法| 皇冠国际现金网| 大发888体育在线| 真人百家乐娱乐场| 易胜博百家乐官网娱乐城| 百家乐官网投注法则| 大东方百家乐游戏| 百家乐官网投注平台信誉排行| 大发888线上娱乐城二十一点| 百家乐赌场国际| 百家乐官网h游戏怎么玩| 大发888客户端软件| 华泰百家乐的玩法技巧和规则| 百家乐官网追号软件| 澳门百家乐官网实战视频| 咸丰县| 大发888备用网址| 大发888游戏技巧| 法拉利百家乐的玩法技巧和规则| 博九网百家乐现金网| 乐享百家乐官网的玩法技巧和规则| 百家乐官网最稳妥的打法|