论文标题
磁场中液滴的变形和颈部
Deformation and necking of liquid droplets in a magnetic field
论文作者
论文摘要
在静态条件下和动态捏合期间,在存在均匀和非均匀磁场的情况下,研究了水和顺磁性溶液的吊坠和顺磁性溶液。根据表观表面张力γAPP或有效密度\ r {HO} EFF分析液滴形状的静态测量。在450吨均匀场中去离子水的表面张力的变化无关紧要,0.19-0.21 MNM -1。对Cu2+,Mn2+和Dy3+的补偿零敏感性溶液的液滴的测量值,其中任何磁体力都不会影响形状,显示出500吨的表面张力的变化约为-1%。多达100 T2M-1的磁场梯度变形,导致\ r {HO} EFF的变化,而\ r {HO} EFF的变化为dimamagnetic溶液(浮力效应),而顺磁性溶液则呈阳性。分析强磁性0.1 dy m Dycl3溶液的液滴曲线,将非均匀垂直场梯度视为重力的空间变化。讨论了麦克斯韦压力对液滴形状的影响。在动态测量中,高速摄影记录捏合时的液滴形状,并根据磁场存在的动态表面张力的相对变化进行分析。控制捏合动力学的缩放定律的表面张力依赖性的术前因子显示纯水没有差异或田间的0.11 M DYCL3溶液。非均匀场在捏合区域没有影响,因为丝直径远小于毛细管长度。
Pendant droplets of water and paramagnetic solutions are studied in the presence of uniform and nonuniform magnetic fields produced by small permanent magnet arrays, both in static conditions and during dynamic pinch-off. Static measurements of the droplet shape are analysed in terms of an apparent surface tension γapp or an effective density \r{ho}eff. The change of surface tension of deionized water in a uniform field of 450 mT is insignificant, 0.19 - 0.21 mNm-1. Measurements on droplets of compensated zero-susceptibility solutions of Cu2+, Mn2+ and Dy3+ where the shape is unaffected by any magnetic body force show changes of surface tension of about -1% in 500 mT. Magnetic field gradients of up to 100 T2m-1 deform the droplets and lead to changes of \r{ho}eff that are negative for diamagnetic solutions (buoyancy effect) and positive for paramagnetic solutions. The droplet profile of strongly-paramagnetic 0.1 Dy M DyCl3 solution is analysed, treating the nonuniform vertical field gradient as a spatial variation of gravity. The influence of Maxwell stress on droplet shape is discussed. In dynamic measurements, the droplet shape at pinch-off is recorded by high-speed photography and analysed in terms of a relative change of dynamic surface tension in the presence of a magnetic field. The surface-tension-dependent pre-factor of the scaling law that governs the pinch-off dynamics shows no difference for pure water or 0.11 M DyCl3 solutions in the field. The nonuniform field has no influence in the pinch-off region because the filament diameter is much less than the capillary length.