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Microwave-driven smart material actuator

机译:微波驱动智能物料执行器

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Abstract: NASA's Next Generation Space Telescope (NGST) has a large deployable, fragmented optical surface ($GREQ 8 m in diameter) that requires autonomous correction of deployment misalignments and thermal effects. Its high and stringent resolution requirement imposes a great deal of challenge for optical correction. The threshold value for optical correction is dictated by $lambda@/20 (30 nm for NGST optics). Control of an adaptive optics array consisting of a large number of optical elements and smart material actuators is so complex that power distribution for activation and control of actuators must be done by other than hard-wired circuitry. The concept of microwave-driven smart actuators is envisioned as the best option to alleviate the complexity associated with hard-wiring. A microwave-driven actuator was studied to realize such a concept for future applications. Piezoelectric material was used as an actuator that shows dimensional change with high electric field. The actuators were coupled with microwave rectenna and tested to correlate the coupling effect of electromagnetic wave. In experiments, a 3 $MUL 3 rectenna patch array generated more than 50 volts which is a threshold voltage for 30-nm displacement of a single piezoelectric material. Overall, the test results indicate that the microwave-driven actuator concept can be adopted for NGST applications.!21
机译:摘要:美国国家航空航天局(NASA)的下一代太空望远镜(NGST)具有可部署的大型碎片光学表面(直径为GREQ 8m),需要对部署失准和热效应进行自动校正。它对分辨率的严格要求给光学校正带来了很大的挑战。光学校正的阈值由$ lambda @ / 20(对于NGST光学器件为30 nm)决定。由大量光学元件和智能材料致动器组成的自适应光学阵列的控制是如此复杂,以致于致动和控制致动器的功率分配必须通过硬连线电路来完成。可以预见,微波驱动的智能执行器的概念是减轻与硬接线相关的复杂性的最佳选择。为了实现这种概念,对微波驱动执行器进行了研究,以供将来使用。压电材料被用作致动器,其在高电场下显示出尺寸变化。将执行器与微波整流天线耦合,并进行测试以关联电磁波的耦合效果。在实验中,一个3 $ MUL 3整流天线贴片阵列产生的电压超过50伏,这是单个压电材料位移30 nm的阈值电压。总体而言,测试结果表明,微波驱动执行器概念可用于NGST应用!21

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