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Pressure Loading of Piezo Composite Unimorphs

机译:压电复合单压电晶片的压力加载

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Over the past decade synthetic jets have emerged as a promising means of active flow control. They have the ability to introduce small amounts of energy locally to achieve non-local changes in the flow field. These devices have the potential of saving millions of dollars by increasing the efficiency and simplifying fluid related systems. A synthetic jet actuator consists of a cavity with an oscillating diaphragm. As the diaphragm oscillates, jets are formed through an orifice in the cavity. This paper focuses on piezoelectric synthetic jets formed using two types of active diaphragms, Thunder~® and Lipca. Thunder~® is composed of three layers; two metal layers, with a PZT-5A layer in between, bonded with a polyimide adhesive. Lipca is a Light We/ght Piezo Composite Actuator, formed of a number of carbon fiber prepreg layers and an active PZT-5A layer. As these diaphragms oscillate, pressure differences within the cavity as well as average maximum jet velocities are measured. These parameters are measured under load and no-load conditions by controlling pressure at the back of the actuator or the passive cavity. Results show that the average maximum jet velocities measured at the exit of the active cavity, follow a similar trend to the active pressures for both devices. Active pressure and jet velocity increase with passive pressure to a maximum, and then decrease. Active pressure and the jet velocity peaked at the same passive cavity pressure of 18kPa for both diaphragms indicating that the same level of pre-stresses is present in both actuators even though Lipca produces approximately 10% higher velocities than Thunder~®.
机译:在过去的十年中,合成射流已经成为主动流量控制的有前途的手段。它们具有在本地引入少量能量的能力,以实现流场中的非局部变化。这些设备具有通过提高效率和简化与流体相关的系统来节省数百万美元的潜力。合成射流执行器由带有振动膜片的腔组成。当隔膜振动时,通过空腔中的孔形成喷射流。本文重点介绍使用两种类型的有源隔膜Thunder〜®和Lipca形成的压电合成射流。 Thunder〜®由三层组成;两个金属层之间夹有PZT-5A,并用聚酰亚胺粘合剂粘结。 Lipca是一种Light We / ght压电复合执行机构,由许多碳纤维预浸料层和一个有源PZT-5A层组成。当这些膜片振荡时,将测量腔体内的压力差以及平均最大射流速度。通过控制执行器或无源腔体背面的压力,可以在负载和空载条件下测量这些参数。结果表明,在活动腔出口处测得的平均最大喷射速度遵循与两个设备的活动压力相似的趋势。主动压力和喷射速度随被动压力增加到最大,然后降低。对于两个膜片,主动压力和射流速度在相同的被动腔压力18kPa处达到峰值,这表明即使Lipca产生的速度比Thunder®®高出约10%,在两个执行器中也存在相同水平的预应力。

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