Department of Mechanical Engineering, Pohang University of Science and Technology, San 31, Hyojadong Namgu, Pohang, Kyungbuk 790-784, South Korea.
J Acoust Soc Am. 2010 Sep;128(3):1021-32. doi: 10.1121/1.3458837.
Although an air-backed thin plate is an effective sound receiver structure, it is easily damaged via pressure unbalance caused by external hydrostatic pressure. To overcome this difficulty, a simple pressure-balancing module is proposed. Despite its small size and relative simplicity, with proper design and operation, micro-channel structure provides a solution to the pressure-balancing problem. If the channel size is sufficiently small, the gas-liquid interface may move back and forth without breach by the hydrostatic pressure since the surface tension can retain the interface surface continuously. One input port of the device is opened to an intermediate liquid, while the other port is connected to the air-backing chamber. As the hydrostatic pressure increases, the liquid in the micro-channel compresses the air, and the pressure in the backing chamber is then equalized to match the external hydrostatic pressure. To validate the performance of the proposed mechanism, a micro-channel prototype is designed and integrated with the piezoelectric micro-machined flexural sensor developed in our previous work. The working principle of the mechanism is experimentally verified. In addition, the effect of hydrostatic pressure on receiving sensitivity is evaluated and compared with predicted behavior.
虽然空气背衬的薄板是一种有效的声音接收结构,但它很容易因外部静水压力引起的压力不平衡而损坏。为了克服这个困难,提出了一种简单的压力平衡模块。尽管其尺寸小且相对简单,但通过适当的设计和操作,微通道结构为压力平衡问题提供了一种解决方案。如果通道尺寸足够小,由于表面张力可以连续保持界面表面,因此气-液界面可能会在不被静水压力破坏的情况下来回移动。该装置的一个输入端口与中间液体相通,另一个端口与空气背衬腔相连。随着静水压力的增加,微通道中的液体压缩空气,然后使背衬腔中的压力与外部静水压力相平衡。为了验证所提出的机制的性能,设计了一个微通道原型,并将其与我们之前工作中开发的压电微机械弯曲传感器集成在一起。实验验证了该机制的工作原理。此外,还评估了静水压力对接收灵敏度的影响,并与预测行为进行了比较。