Dobrev Ivo, Furlong Cosme, Cheng Jeffrey T, Rosowski John J
Worcester Polytechnic Institute, Center for Holographic Studies and Laser Micro-MechaTronics, Department of Mechanical Engineering, Worcester, Massachusetts 01609, United States.
Worcester Polytechnic Institute, Center for Holographic Studies and Laser Micro-MechaTronics, Department of Mechanical Engineering, Worcester, Massachusetts 01609, United StatesbMassachusetts Eye and Ear Infirmary, Eaton-Peabody Laboratory, Boston, Massac.
J Biomed Opt. 2014 Sep;19(9):96001. doi: 10.1117/1.JBO.19.9.096001.
Understanding the human hearing process would be helped by quantification of the transient mechanical response of the human ear, including the human tympanic membrane (TM or eardrum). We propose a new hybrid high-speed holographic system (HHS) for acquisition and quantification of the full-field nanometer transient (i.e., >10 kHz) displacement of the human TM. We have optimized and implemented a 2 þ 1 frame local correlation (LC) based phase sampling method in combination with a high-speed (i.e., >40 K fps) camera acquisition system. To our knowledge, there is currently no existing system that provides such capabilities for the study of the human TM. The LC sampling method has a displacement difference of <11 nm relative to measurements obtained by a four-phase step algorithm. Comparisons between our high-speed acquisition system and a laser Doppler vibrometer indicate differences of <10 μs. The high temporal (i.e., >40 kHz) and spatial (i.e., >100 k data points) resolution of our HHS enables parallel measurements of all points on the surface of the TM, which allows quantification of spatially dependent motion parameters, such as modal frequencies and acoustic delays. Such capabilities could allow inferring local material properties across the surface of the TM.
对人耳瞬态机械响应进行量化,包括对人鼓膜(TM或耳膜)的量化,将有助于理解人类听觉过程。我们提出了一种新的混合高速全息系统(HHS),用于获取和量化人TM的全场纳米级瞬态(即>10 kHz)位移。我们优化并实现了一种基于2 + 1帧局部相关(LC)的相位采样方法,并结合了高速(即>40 K fps)相机采集系统。据我们所知,目前尚无现有系统具备此类用于研究人TM的能力。LC采样方法相对于通过四相步长算法获得的测量结果,位移差异小于11 nm。我们的高速采集系统与激光多普勒振动计之间的比较表明差异小于10 μs。我们的HHS具有高时间分辨率(即>40 kHz)和空间分辨率(即>100 k数据点),能够对TM表面的所有点进行并行测量,从而可以量化空间相关的运动参数,如模态频率和声延迟。这些能力可以推断出TM表面的局部材料特性。