Krückler J F, Eisenberg A, Krix M, Lötsch R, Pessel M, Trier H G
Professur für experimentelle Ultraschalldiagnostik, Medizinische Einrichtungen der Universität Bonn, Germany.
J Acoust Soc Am. 2000 Apr;107(4):1994-2003. doi: 10.1121/1.428483.
The transfer function of a fiber-optic hydrophone (FOH) is computed for various fiber core radii. The hydrophone is modeled as a rigid disk, with plane waves impinging at normal or oblique incidence. The total sound field is written as the sum of the incident field and the field diffracted from the hydrophone. The diffracted field is approximated by the field generated by a vibrating planar piston in an infinite rigid baffle. For normal incidence and a pointlike fiber core, an analytical solution is presented. For finite fiber core radii, and for oblique incidence, the transfer functions are computed numerically. The calculated transfer functions exhibit an oscillatory frequency dependency that is most pronounced for small fiber cores. The solution for a core radius of 2.5 microm can be very well approximated by the analytical solution for a pointlike core at frequencies of up to 30 MHz. The results for normal incidence can be directly employed to deconvolute ultrasonic pressure signals measured with an FOH. From the transfer functions for oblique incidence, the angular response of the hydrophone is calculated. The angular response obtained here differs significantly from the model commonly used for piezoelectric hydrophones. The effective hydrophone radius derived from the angular response shows a strong frequency dependency. For low frequencies, it is found to be larger than the outer fiber radius, whereas it generally lies between the outer radius and the fiber core radius for frequencies above 10 MHz.
针对各种光纤芯半径计算了光纤水听器(FOH)的传递函数。该水听器被建模为一个刚性圆盘,平面波以垂直或斜入射的方式撞击。总声场被写为入射场与从水听器衍射的场之和。衍射场由无限刚性障板中振动平面活塞产生的场近似。对于垂直入射和点状光纤芯,给出了解析解。对于有限的光纤芯半径以及斜入射,传递函数通过数值计算得到。计算出的传递函数呈现出振荡频率依赖性,这在小光纤芯时最为明显。在高达30MHz的频率下,2.5微米芯半径的解可以很好地由点状芯的解析解近似。垂直入射的结果可直接用于对用FOH测量的超声压力信号进行反卷积。从斜入射的传递函数计算出水听器的角度响应。这里获得的角度响应与通常用于压电水听器的模型有显著差异。从角度响应得出的有效水听器半径呈现出强烈的频率依赖性。对于低频,发现它大于外部光纤半径,而对于高于10MHz的频率,它通常位于外部半径和光纤芯半径之间。