Carnell M T, Emmony D C
Appl Opt. 1995 Oct 1;34(28):6465-70. doi: 10.1364/AO.34.006465.
The schlieren observation of cavitation phenomena produced in the tail of a lithotripter shock wave has indicated the presence of some interesting features. The images produced appear to indicate that cavitation transients in the field of a shock wave propagate nonsymmetrically; this is not the case. The apparent lack of symmetry exhibited by the primary cavitation transients is due to a complex optical lensing effect, which is brought about by the change in refractive index associated with the pressure profile of the shock wave. Objects seen through or immersed in the shock-wave field of an electromagnetic acoustic transducer, such as cavitation, appear highly distorted because of the strong positive and negative lensing effects of the compression and rarefaction cycles of the shock wave. A modification of the schlieren technique called the scale method has been used to model the distortion introduced by the shock wave and consequently explain the cavitation distortion. The technique has also been used to quantitatively analyze and partially reconstruct the lithotripter shock wave. The combination of schlieren and scale imaging gives more information about the refractive index field and therefore the shock-wave structure itself.
对碎石机冲击波尾部产生的空化现象进行纹影观察,发现了一些有趣的特征。所产生的图像似乎表明,冲击波场中的空化瞬态是非对称传播的;但实际并非如此。初级空化瞬态表现出的明显不对称是由复杂的光学透镜效应引起的,这种效应是由与冲击波压力分布相关的折射率变化导致的。通过电磁声换能器的冲击波场观察或浸没在其中的物体,如空化现象,由于冲击波压缩和稀疏周期的强烈正负透镜效应,看起来会严重变形。一种称为尺度法的纹影技术改进方法已被用于模拟冲击波引入的变形,从而解释空化变形。该技术还被用于定量分析和部分重建碎石机冲击波。纹影成像和尺度成像相结合,能提供更多关于折射率场的信息,进而了解冲击波结构本身。