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Electrostatically driven synthetic microjet arrays as a propulsion method for micro flight - Part II: microfabrication and initial characterization

机译:静电驱动合成微射流阵列作为微飞行的推进方法-第二部分:微加工和初始表征

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摘要

A propulsion system based on acoustic streaming generated by Helmholtz resonators is presented. High frequency (>60 kHz) electrostatically driven micromachined Helmholtz resonators constitute the basic unit of the system. Microjets produced at the exit of these resonators can be combined to form a distributed propulsion system. A high yield (>85%) fabrication process is introduced for fabrication of individual as well as arrays of resonators. The fabrication results for ten different designs are presented. About 1000 resonators of similar design cover the surface of a 4-in. wafer, effectively converting it to a distributed propulsion system. A number of characterization methods such as monitoring the harmonics of the drive current, laser interferometry, hot-wire anemometry, acoustic spectrum measurement and video particle imaging are used to determine the structural and fluidic behavior of different resonator designs. Collapse and recovery times of the diaphragm in the electrostatic actuator of the resonator are characterized and reduced to less than 10 us by optimizing the perforation design. The occurrence of acoustic streaming in the micron-scale is verified via video particle imaging. The jet streams produced with pulse drive at low frequencies (~1 kHz) are spatially profiled and jet velocities exceeding 1 m/s are measured at the exit of the resonators. It has been verified that the resonance frequencies of the device at 50 and 175 kHz can be closely predicted by modeling.
机译:提出了一种基于亥姆霍兹共振器产生的声流的推进系统。高频(> 60 kHz)静电驱动的微机械亥姆霍兹共振器构成了系统的基本单元。在这些谐振器的出口处产生的微射流可以组合起来形成分布式推进系统。引入了高成品率(> 85%)的制造工艺,以制造单个以及阵列的谐振器。介绍了十种不同设计的制造结果。大约1000个类似设计的谐振器覆盖了4英寸的表面。晶片,有效地将其转换为分布式推进系统。许多表征方法,例如监视驱动电流的谐波,激光干涉测量,热线风速测量,声谱测量和视频粒子成像,可用于确定不同谐振器设计的结构和流体性能。通过优化穿孔设计,可以确定谐振器静电致动器中隔膜的塌陷和恢复时间,并将其减少到小于10 us。通过视频粒子成像验证了微米级声流的发生。对低频(〜1 kHz)的脉冲驱动产生的射流进行空间剖析,并在谐振器的出口处测量出超过1 m / s的射流速度。已经证实,可以通过建模来精确预测设备在50 kHz和175 kHz的谐振频率。

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