润湿
晃动动力学
材料科学
导线
涂层
迷惑
纳米技术
水运
边界(拓扑)
复合材料
塔楼
机械工程
仿生学
超疏水涂料
计算机科学
可扩展性
海洋工程
图像拼接
粘附
驳船
边值问题
火花塞
机械
作者
Jie Ma,Zidong Zhan,Zihao Zhang,Zhuoxing Liu,Jia Peng,Cunlong Yu,Lei Jiang,Lei Wu,Zhichao Dong
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2025-11-14
卷期号:11 (46): eadz7099-eadz7099
标识
DOI:10.1126/sciadv.adz7099
摘要
Liquid sloshing leads to spillage, waste, and operational inefficiency across multiple industries. Although strategies such as baffle designs and foam inserts exist, they often fall short in real-world dynamic conditions. Inspired by liquid-stabilizing mechanisms of pitcher plants and impact-dampening notches of water lilies, we introduce a dual-biomimetic cup design that enhances liquid stabilization using three-dimensional printing to construct structures and superhydrophobic coating for wettability boundary modification. Our system integrates patterned hydrophilic-superhydrophobic boundaries with strategically placed superhydrophobic notches, synergistically stabilizing water surfaces and dissipating oscillatory energy. Comprehensive tests—including centrifugal, vibrational, and real-world transport scenarios—demonstrated a spill rate of approaching 0%, as well as robust resistance to water sloshing. Notably, a four-tier tower of dual-biomimetic cups mounted on a car retained nearly 100% of their liquid after traversing 50 alternating speed bumps, whereas conventional cups lost more than 40%. Our bioinspired method demonstrates a scalable and versatile approach that bridges natural wetting strategies with practical engineering applications in liquid transport and containment.
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