真空 ›› 2025, Vol. 62 ›› Issue (6): 31-38.doi: 10.13385/j.cnki.vacuum.2025.06.05
杨龙1,2, 孟献才1,2, 梁立振2,3, 闫振2, 李旭2, 张德皓3, 左桂忠3
YANG Long1,2, MENG Xiancai1,2, LIANG Lizhen2,3, YAN Zhen2, LI Xu2, ZHANG Dehao3, ZUO Guizhong3
摘要: 液态锂在基底材料表面的润湿性是决定液态锂第一壁性能的关键因素之一。设计了一套液态金属与固体材料润湿特性研究平台,结合系统运行关键问题,采用ANSYS软件对平台检测室和注射系统等部件进行了热力学仿真和理论计算。结果表明:外径250 mm、壁厚3 mm的304不锈钢真空检测室在一个大气压下的最大变形量约为0.045 mm,最大应力强度为29.876 MPa,低于许用应力(137 MPa);检测室最大等效应力约26.708 MPa,低于不锈钢的屈服极限(205 MPa);注射系统中加热丝温度为400 ℃时针头与加热丝的极限距离是50 mm;当注射器与检测室内部压差分别为600 Pa和-465 Pa时,液态锂可以通过1 mm口径的针头吸入和滴出;在系统运行过程中向检测室中充入0.26 Pa以上的氩气有利于保护检测室壁面和观察窗,减轻检测材料沉积的影响。基于以上结果,成功搭建了液态金属润湿实验平台,并实现了直径3 mm液态锂滴的滴出。
中图分类号: TB79
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