散热片
材料科学
微流控
微通道
气泡
热流密度
杰纳斯
计算机冷却
热的
纳米技术
传热
杰纳斯粒子
机械工程
水冷
热导率
机械
热管
微尺度化学
Péclet编号
电子设备和系统的热管理
电子设备冷却
光电子学
可扩展性
热撒布器
热阻
计算流体力学
高温
蒸发冷却器
作者
Zhaolong Wang,Shuo Yang,Mingzhu Xie,Xiaolong Wang,Qihui Xie,Yong Shuai
标识
DOI:10.1002/adfm.202524703
摘要
Abstract Efficient thermal management is increasingly critical for high‐performance computing and emerging artificial intelligence hardware, where heat fluxes exceed the capabilities of conventional heat sinks. Here, a 3D‐printed bioinspired Janus microchannel heat sink is reported that enables ultrafast bubble transport and stable two‐phase cooling for electronic devices. Inspired by the Namib desert beetle, the heat sink integrates asymmetric wettability‐a superhydrophobic top surface and hydrophilic bottom surface‐creating a Laplace pressure‐driven pathway for millisecond‐scale bubble removal. This architecture suppresses vapor‐film formation, maintains continuous liquid replenishment, and achieves a critical heat flux (CHF) of 105 W cm −2 , representing an up to 125% improvement over conventional microchannel heat sinks. Integrated into a commercial CPU, the Janus microfluidic heat sink maintains maximum clock frequency under full load without thermal throttling, demonstrating a scalable material‐driven solution for next‐generation thermal management. This bioinspired approach establishes a platform for programmable surface functionality in high‐power electronics, with potential applications in data centers, electric vehicles, and aerospace systems.
科研通智能强力驱动
Strongly Powered by AbleSci AI