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首页> 外文期刊>Mechatronics, IEEE/ASME Transactions on >Piezoelectric Beam for Intrabody Propulsion Controlled by Embedded Sensing
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Piezoelectric Beam for Intrabody Propulsion Controlled by Embedded Sensing

机译:嵌入式传感控制的压电式体内推进器

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摘要

The body is a very challenging environment for locomotion. The mechanical properties of intrabody fluids and tissues vary by location and time. In order to move an embedded biomedical device such as a deep brain stimulation electrode, one has to identify the properties of the environment and set the propulsive actuator's input accordingly. We developed a piezoelectric actuator for propelling a microrobot in cerebro spinal fluid or burrowing in the brain tissue parenchyma. The propulsion is created by the vibration of the beam at the resonance frequencies. The driving of the actuators is controlled by multi-input multi-output system identification (SI) using part of the beam as sensor and part as actuator. In this study, we model the sensing of the device, present the SI method, the calculation of the input signals to achieve maximal propulsion, and we test the driving method experimentally. The microactuator is examined in 500-cP silicon oil and a 20-mm-long actuator can achieve 3-μN propulsive force.
机译:身体是一个非常具有挑战性的运动环境。体内液体和组织的机械性能随位置和时间而变化。为了移动诸如深部脑刺激电极之类的嵌入式生物医学设备,必须识别环境的特性并相应地设置推进致动器的输入。我们开发了一种压电执行器,用于推动微型机器人进入脑脊髓液或钻入脑组织实质。推进是由光束在共振频率下的振动产生的。通过多输入多输出系统标识(SI),以光束的一部分作为传感器,一部分作为执行器来控制执行器的驱动。在这项研究中,我们对设备的感应进行建模,提出SI方法,计算输入信号以实现最大推进力,并通过实验测试驱动方法。在500 cP硅油中检查了微执行器,一个20毫米长的执行器可以达到3μN的推进力。

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