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A Novel 3D-Printed Mechanical Actuator Using Centrifugal Force for Magnetic Resonance Elastography

机译:一种新型3D印刷机械致动器,用于磁共振弹性术的离心力

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Magnetic resonance elastography (MRE) is a technique for the quantification of tissue stiffness during MR examinations. It requires consistent methods for mechanical shear wave induction to the region of interest in the human body to reliably quantify elastic properties of soft tissues. This work proposes a novel 3D-printed mechanical actuator using the principle of centrifugal force for wave induction. The driver consists of a 3D-printed turbine vibrator powered by compressed air (located inside the scanner room) and an active driver controlling the pressure of inflowing air (placed outside the scanner room). The generated force of the proposed actuator increases for higher actuation frequencies as opposed to conventionally used air cushions. There, the displacement amplitude decreases with increasing actuation frequency resulting in a smaller signal-to-noise ratio. An initial phantom study is presented which demonstrates the feasibility of the actuator for MRE. The wave-actuation frequency was regulated in a range between 15 Hz and 60 Hz for force measurements and proved sufficiently stable (±0.3 Hz) for any given nominal frequency. The generated forces depend on the weight of the eccentric unbalance within the turbine and ranged between 0.67 N to 2.70 N (for 15 Hz) and 3.09 N to 7.77 N (for 60 Hz). Therefore, the generated force of the presented actuator increases with rotational speed of the turbine and offers an elegant solution for sufficiently large wave actuation at higher frequencies. In future work, we will investigate an optimal ratio of the weight of unbalance to the size of turbine for appropriately large but tolerable wave actuation for a given nominal frequency.
机译:磁共振弹性成像(MRE)是在先生检查期间定量组织僵硬的技术。它需要一致的方法用于机械剪切波感应到人体中的感兴趣区域,以可靠地量化软组织的弹性性质。这项工作提出了一种新的3D印刷机械执行器,使用用于波诱导的离心力原理。该驱动器包括由压缩空气(位于扫描仪室内)的3D印刷涡轮机振动器和控制流入空气压力的有源驱动器(放置在扫描仪室外)。所提出的致动器的产生力增加,对于常规使用的气垫,致动频率的增加力增加。在那里,位移幅度随着致动频率的增加而降低,导致信噪比较小。提出了初始幻像研究,其展示了MRE的执行器的可行性。波浪驱动频率在15Hz和60Hz之间的范围内调节,用于力测量,并且对于任何给定的标称频率证明了足够稳定的(±0.3Hz)。所产生的力取决于涡轮机内的偏心不平衡的重量,范围在0.67n至2.70n(15Hz)之间,3.09 n至7.77n(60 Hz)。因此,所提出的致动器的产生力随涡轮机的旋转速度而增加,并且在较高频率下提供了优雅的波动致动的优雅解决方案。在未来的工作中,我们将研究对给定标称频率的适当大但可容忍的波浪驱动的涡轮机尺寸的不平衡重量的最佳比率。

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