Sénégond Nicolas, Boulmé Audren, Plag Camille, Teston Franck, Certon Dominique
IEEE Trans Ultrason Ferroelectr Freq Control. 2013 Jul;60(7):1505-18. doi: 10.1109/TUFFC.2013.2723.
We report a fast time-domain model of fluid-coupled cMUTs developed to predict the transient response-i.e., the impulse pressure response--of an element of a linear 1-D array. Mechanical equations of the cMUT diaphragm are solved with 2-D finite-difference schemes. The time-domain solving method is a fourth--order Runge-Kutta algorithm. The model takes into account the electrostatic nonlinearity and the contact with the bottom electrode when the membrane is collapsed. Mutual acoustic coupling between cells is introduced through the numerical implementation of analytical solutions of the impulse diffraction theory established in the case of acoustic sources with rectangular geometry. Processing times are very short: they vary from a few minutes for a single cell to a maximum of 30 min for one element of an array. After a description of the model, the impact of the nonlinearity and the pull-in/pull-out phenomena on the dynamic behavior of the cMUT diaphragm is discussed. Experimental results of mechanical displacements obtained by interferometric measurements and the acoustic pressure field are compared with simulations. Different excitation signals-high-frequency bandwidth pulses and toneburst excitations of varying central frequency-were chosen to compare theory with experimental results.
我们报告了一种用于预测线性一维阵列中单个元件瞬态响应(即脉冲压力响应)而开发的流体耦合电容式微机械超声换能器(cMUT)的快速时域模型。采用二维有限差分格式求解cMUT膜片的力学方程。时域求解方法是四阶龙格-库塔算法。该模型考虑了静电非线性以及膜片塌陷时与底部电极的接触。通过对矩形几何形状声源情况下建立的脉冲衍射理论解析解进行数值实现,引入了单元间的相互声耦合。处理时间非常短:单个单元只需几分钟,阵列中的一个元件最长30分钟。在对模型进行描述之后,讨论了非线性和吸合/释放现象对cMUT膜片动态行为的影响。将通过干涉测量获得的机械位移实验结果和声压场与模拟结果进行了比较。选择了不同的激励信号——高频带宽脉冲和不同中心频率的单音突发激励——来比较理论与实验结果。