Im Kyoung-Su, Cheong Seong-Kyun, Liu X, Wang Jin, Lai Ming-Chia, Tate Mark W, Ercan Alper, Renzi Matthew J, Schuette Daniel R, Gruner Sol M
Advanced Photon Source, Argonne National Laboratory, Argonne, Illinois 60439, USA.
Phys Rev Lett. 2009 Feb 20;102(7):074501. doi: 10.1103/PhysRevLett.102.074501. Epub 2009 Feb 18.
We used ultrafast x radiography and developed a novel multiphase numerical simulation to reveal the origin and the unique dynamics of the liquid-jet-generated shock waves and their interactions with the jets. Liquid-jet-generated shock waves are transiently correlated to the structural evolution of the disintegrating jets. The multiphase simulation revealed that the aerodynamic interaction between the liquid jet and the shock waves results in an intriguing ambient gas distribution in the vicinity of the shock front, as validated by the ultrafast x-radiography measurements. The excellent agreement between the data and the simulation suggests the combined experimental and computational approach should find broader applications in predicting and understanding dynamics of highly transient multiphase flows.
我们使用超快X射线成像技术,并开展了一项全新的多相数值模拟,以揭示液体射流产生的冲击波的起源、独特动力学特性及其与射流的相互作用。液体射流产生的冲击波与破碎射流的结构演变瞬时相关。多相模拟表明,液体射流与冲击波之间的气动相互作用在激波前沿附近导致了有趣的环境气体分布,这已通过超快X射线成像测量得到验证。数据与模拟结果之间的出色一致性表明,这种实验与计算相结合的方法在预测和理解高度瞬态多相流的动力学方面应能得到更广泛的应用。