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Digital Stroboscopic Holographic Interferometry for Power Flow Measurements in Acoustically Driven Membranes

机译:数字频闪全息干涉测量,用于声波驱动膜中的功率流量测量

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Despite the importance of the eardrum and the ossicles in the hearing chain, it remains an open question how acoustical energy is transmitted between them. Identifying the transmission path at different frequencies could lead to valuable information for the domain of middle ear surgery. In this work a setup for stroboscopic holography is combined with an algorithm for power flow calculations. With our method we were able to accurately locate the power sources and sinks in a membrane. The setup enabled us to make amplitude maps of the out-of-plane displacement of a vibrating rubber membrane at subsequent instances of time within the vibration period. From these, the amplitude maps of the moments of force and velocities are calculated. The magnitude and phase maps are extracted from this amplitude data, and form the input for the power flow calculations. We present the algorithm used for the measurements and for the power flow calculations. Finite element models of a circular plate with a local energy source and sink allowed us to test and optimize this algorithm in a controlled way and without the present of noise, but will not be discussed below. At the setup an earphone was connected with a thin tube which was placed very close to the membrane so that sound impinges locally on the membrane, hereby acting as a local energy source. The energy sink was a little piece of foam carefully placed against the membrane. The laser pulses are fired at selected instants within the vibration period using a 30 mW HeNe continuous wave laser (red light, 632.8 nm) in combination with an acousto-optic modulator. A function generator controls the phase of these illumination pulses and the holograms are recorded using a CCD camera. We present the magnitude and phase maps as well as the power flow measurements on the rubber membrane. Calculation of the divergence of this power flow map provides a simple and fast way of identifying and locating an energy source or sink. In conclusion possible future improvements to the setup and the power flow algorithm are discussed.
机译:尽管听力链中的耳膜和骨筒的重要性,但它仍然是一个开放的问题,如何在它们之间传播声能。识别不同频率的传输路径可能导致中耳手术领域的有价值的信息。在这项工作中,将频闪全息术的设置与电流计算算法相结合。通过我们的方法,我们能够准确地定位电源并沉入膜中。该设置使我们能够在振动周期内的随后的时间的时间内制造振动橡胶膜外平面位移的幅度图。由此,计算力和速度时刻的幅度图。从该幅度数据提取幅度和相位映射,并形成电流计算的输入。我们介绍了用于测量和电流计算的算法。圆形板的有限元模型具有局部能源和沉没的圆形板允许我们以受控的方式测试和优化该算法,而不会有噪声的目的,但下面将不会讨论。在设置的情况下,耳机与薄管连接,薄管非常靠近膜,使得声音在膜上局部撞击,从而作用作局部能源。能量水槽是一小块泡沫,小心地放在膜上。在振动时段内的选定时刻在振动时段内的选定时刻烧制激光脉冲,其使用30mW HENE连续波激光(红灯,632.8nm)与声光调制器组合。功能发生器控制这些照明脉冲的相位,并使用CCD相机记录全息图。我们介绍了幅度和相位图以及橡胶膜上的电流测量。计算该功率图的分歧提供了一种简单而快速的方式来识别和定位能量源或水槽。总之,讨论了对设置和电力流算法的未来改进。

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