国产热热热精品,亚洲视频久久】日韩,三级婷婷在线久久,99人妻精品视频,精品九热人人肉肉在线,AV东京热一区二区,91po在线视频观看,久久激情宗合,青青草黄色手机视频

Global EditionASIA 中文雙語Fran?ais
China
Home / China / Innovation

New study paves way to eco-friendly refrigeration

By LI MENGHAN | China Daily | Updated: 2026-02-11 09:18
Share
Share - WeChat

Chinese researchers have successfully tackled a long-standing challenge in refrigeration technology by discovering a novel method that promises low carbon emissions, high cooling capacity, and efficient heat transfer.

The study, published recently in the journal Nature, addresses the growing energy consumption and heat dissipation challenges that accompany the rapid development of computing power, a crucial component in the digital economy era.

Modern society relies heavily on refrigeration, from preserving food to cooling data centers. However, traditional vapor-compression cooling systems come with high electricity and environmental costs. In China, refrigeration technology accounts for about 2 percent of GDP while consuming nearly 20 percent of the nation's electricity and generating 7.8 percent of its carbon emissions.

Solid-state cooling has long been considered a cleaner alternative, as it avoids the use of fluorocarbon-based refrigerants that harm the environment. However, solid materials struggle with heat transfer efficiency, restricting their practical use in large-scale applications.

The research team, led by Li Bing, a professor at the Chinese Academy of Sciences' Institute of Metal Research, discovered a way to bypass this limitation by integrating solid cooling effects with liquid flow.

In their study of the salt ammonium thiocyanate — a widely-used non-toxic industrial material — the researchers observed that the salt's dissolution in water absorbs massive amounts of heat. By applying pressure, the process is reversed, causing the salt to precipitate and release a large amount of heat. This reversible cycle enables continuous cooling as pressure is alternately applied and released, making it an ideal mechanism for refrigeration systems.

"Unlike traditional solid-state cooling methods, where heat struggles to move across material boundaries, our approach integrates the refrigerant and heat-transfer medium into a single fluid, facilitating thermal conductivity and system integration," Li said. This approach solves what scientists described as the "impossible triangle" of caloric materials by delivering low emissions, high cooling power, and efficient heat transfer simultaneously.

Laboratory experiments demonstrated excellent results. At room temperature, the method achieved a temperature drop of nearly 30 C in just 20 seconds, while at higher temperatures the cooling span reached as high as 54 C, far exceeding that of existing solid-state caloric materials.

In a designated prototype cooling cycle, simulations suggest a cooling capacity of 67 joules per gram and an efficiency approaching 77 percent, demonstrating potential for engineering applications. Moreover, in-situ spectroscopic experiments proved the process' stability, reversibility, and instant response to pressure changes — key requirements for practical refrigeration systems.

"This technology transcends traditional refrigeration principles based on various phase transitions. By turning the 'coolant' into a fluid that can be pumped directly through heat exchangers, it paves the way for the commercialization of powerful, zero-emission refrigeration systems for industrial and home use," Li said.

"It could inspire the expansion of this principle to other chemistries, enabling the development of tailored caloric properties suitable for a variety of temperature ranges and cooling capacities," he said. "However, further efforts are needed for practical application, such as breakthroughs in engineering rapid and reversible pressure-tuned phase transitions."

He emphasized that the technology's excellent high-temperature performance makes it "an ideal candidate for the demanding thermal management requirements of next-generation artificial intelligence computing centers".

Top
BACK TO THE TOP
English
Copyright 1994 - . All rights reserved. The content (including but not limited to text, photo, multimedia information, etc) published in this site belongs to China Daily Information Co (CDIC). Without written authorization from CDIC, such content shall not be republished or used in any form. Note: Browsers with 1024*768 or higher resolution are suggested for this site.
License for publishing multimedia online 0108263

Registration Number: 130349
FOLLOW US
 
牡丹江市| 临桂县| 泰顺县| 丹棱县| 墨玉县| 阜平县| 容城县| 彩票| 文安县| 怀安县| 古交市| 交城县| 松桃| 盈江县| 剑河县| 崇左市| 五莲县| 杭州市| 浮山县| 吉木萨尔县| 湖北省| 海盐县| 武乡县| 吴旗县| 和平县| 太和县| 吕梁市| 萨嘎县| 大余县| 河北区| 郁南县| 台州市| 葵青区| 龙山县| 石楼县| 望谟县| 东宁县| 纳雍县| 肇东市| 马尔康县| 徐汇区|