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MHz-Order Surface Acoustic Wave Thruster for Underwater Silent Propulsion

机译:用于水下静音推进的MHz级表面声波推进器

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摘要

High frequency (MHz-order) surface acoustic waves (SAW) are able to generate intense fluid flow from the attenuation of acoustic radiation in viscous fluids as acoustic streaming. Though such flows are known to produce a force upon the fluid and an equivalent and opposing force upon the object producing the acoustic radiation, there is no convenient method for measuring this force. We describe a new method to accomplish this aim, noting the potential of these devices in providing essentially silent underwater propulsion by virtue of their use of the sound itself to generate fluid momentum flux. Our example employs a 40 MHz SAW device as a pendulum bob while immersed in a fluid, measuring a 1.5 mN propulsion force from an input power of 5 W power to the SAW device. Supporting details regarding the acoustic streaming profile via particle image velocimetry and an associated theoretical model are provided to aid in the determination of the propulsion force knowing the applied power and fluid characteristics. Finally, a simple model is provided to aid the selection of the acoustic device size to maximize the propulsion force per unit device area, a key figure of merit in underwater propulsion devices. Using this model, a maximum force of approximately 10 mN/cm was obtained from 1 W input power using 40 MHz SAW in water and producing a power efficiency of approximately 50%. Given the advantages of this technology in silent propulsion with such large efficiency and propulsion force per unit volume, it seems likely this method will be beneficial in propelling small autonomous submersibles.
机译:高频(MHz级)表面声波(SAW)能够通过粘性流体中的声辐射的衰减(作为声流)产生强烈的流体流。尽管已知这种流动会在流体上产生力,而在物体上产生等效且相反的力,从而产生声辐射,但是没有方便的方法来测量该力。我们描述了一种实现此目标的新方法,并指出了这些设备由于利用声音本身来产生流体动量通量而在提供基本无声的水下推进方面的潜力。我们的示例采用40 MHz SAW装置作为摆锤,同时将其浸入液体中,从5 W功率输入功率到SAW装置测量1.5 mN推进力。提供了有关通过粒子图像测速法进行的声流分布的支持细节以及相关的理论模型,以帮助在知道所施加的功率和流体特性的情况下确定推进力。最后,提供了一个简单的模型来帮助选择声学设备的尺寸,以最大化单位设备面积的推进力,这是水下推进设备的关键性能指标。使用该模型,在水中使用40 MHz声表面波从1 W输入功率获得的最大力约为10 mN / cm,并产生约50%的功率效率。鉴于该技术在无声推进中具有如此高的效率和每单位体积的推进力的优势,这种方法似乎对推进小型自主潜水器很有用。

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