...
首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Capacitive micromachined ultrasonic transducer design for high power transmission
【24h】

Capacitive micromachined ultrasonic transducer design for high power transmission

机译:用于大功率传输的电容式微加工超声换能器设计

获取原文
获取原文并翻译 | 示例
           

摘要

Capacitive micromachined ultrasonic transducers (cMUTs) were developed to meet the demands of the ultrasonic industry. To achieve maximum efficiency, the conventional operation of the cMUT requires a bias voltage close to the collapse voltage. Total acoustic output pressure is limited by the efficiency of the cMUT and the maximum-allowed pulse voltage on the membrane. In this paper, we propose the collapse-snapback operation of the cMUT: the membrane is collapsed onto the substrate in the collapsing cycle, and released in the snapback cycle. The collapse-snapback operation overcomes the above-mentioned limitations of the conventional operation. The collapse-snapback operation utilizes a larger range of membrane deflection profiles (both collapsed and released profiles) and generates higher acoustic output pressures. The static finite element calculations were performed to design cMUTs with specific collapse and snapback voltages by changing the electrode parameters (radius (r/sub e/), position (d/sub e/), and thickness (t/sub e/)). These designs were refined for optimum average displacement per cycle. An electrode radius greater than 60% of the membrane radius significantly improved the displacement per volt. Moderately thick membranes (t/sub e//spl sim/0.2 /spl mu/m) were preferred, as thicker membranes reduced the displacement per volt. Under proper bias conditions, the collapse-snapback operation, designed for high-power transmission, allowed the application of pulse voltages larger than the difference of collapse and snapback voltages. Dynamic finite element calculations of an infinite cMUT array on the substrate loaded with acoustic fluid medium were performed to determine the dynamic response of the cMUT. Commercially available FEM packages ANSYS and LSDYNA were used for static and dynamic calculations, respectively. The cMUTs were fabricated for optimal performance in the collapse-snapback operation. The transmit experiments were performed on a 2-D cMUT array using a calibrated hydrophone. Taking into account the attenuation and diffraction losses, the pressure on the cMUT surface was extracted. The cMUT generated 0.47 MPa (6 kPa/V) and 1.04 MPa (11 kPa/V) in the conventional and collapse-snapback operations, respectively. Therefore, collapse-snapback -operation of the cMUTs was superior for high-power transmission.
机译:电容式微加工超声换能器(cMUT)的开发是为了满足超声行业的需求。为了获得最大效率,cMUT的常规操作需要接近崩溃电压的偏置电压。总的声音输出压力受cMUT的效率和膜上允许的最大脉冲电压的限制。在本文中,我们提出了cMUT的折叠回弹操作:膜在折叠循环中折叠到基质上,并在回弹循环中释放。倒塌快照操作克服了常规操作的上述限制。塌陷-回弹操作利用较大范围的膜偏转曲线(塌陷和释放曲线),并产生更高的声音输出压力。通过更改电极参数(半径(r / sub e /),位置(d / sub e /)和厚度(t / sub e /)),执行静态有限元计算以设计具有特定塌陷和骤回电压的cMUT。 。对这些设计进行了优化,以实现每个周期的最佳平均位移。大于膜半径的60%的电极半径可显着提高每伏特的位移。最好使用中等厚度的膜(t / sub e // spl sim / 0.2 / spl mu / m),因为较厚的膜会降低每伏特的位移。在适当的偏置条件下,为高功率传输而设计的崩溃-骤回操作允许施加大于崩溃和骤回电压之差的脉冲电压。对装有声流体介质的基板上的无限cMUT阵列进行动态有限元计算,以确定cMUT的动态响应。市售的FEM软件包ANSYS和LSDYNA分别用于静态和动态计算。制作了cMUT,以实现崩溃-回弹操作中的最佳性能。使用校准的水听器在二维cMUT阵列上进行发射实验。考虑到衰减和衍射损耗,提取了cMUT表面的压力。在常规操作和崩溃捕捉操作中,cMUT分别产生0.47 MPa(6 kPa / V)和1.04 MPa(11 kPa / V)。因此,对于大功率传输,cMUT的崩溃-回弹操作是优越的。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号