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An ultrasonic orthopaedic surgical device based on a cymbal transducer

机译:基于a换能器的超声骨科手术设备

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An ultrasonic orthopaedic surgical device is presented, where the ultrasonic actuation relies on a modification of the classical cymbal transducer. All current devices consist of a Langevin ultrasonic transducer with a tuned cutting blade attached, where resonance is required to provide sufficient vibrational amplitude to cut bone. However, this requirement restricts the geometry and offers little opportunity to propose miniaturised devices or complex blades. The class V flextensional cymbal transducer is proposed here as the basis for a new design, where the cymbal delivers the required vibrational amplitude, and the design of the attached cutting insert can be tailored for the required cut. Consequently, the device can be optimised to deliver an accurate and precise cutting capability. A prototype device is presented, based on the cymbal configuration and designed to operate at 25.5 kHz with a displacement amplitude of 30 mu m at 300 V. Measurements of vibrational and impedance responses elucidate the mechanical and electrical characteristics of the device. Subsequent cutting tests on rat femur demonstrate device performance consistent with a commercial Langevin-based ultrasonic device and show that cutting is achieved using less electrical power and a lower piezoceramic volume. Histological analysis exhibits a higher proportion of live cells in the region around the cut site for the cymbal device than for a powered sagittal or a manual saw, demonstrating the potential for the ultrasonic device to result in faster healing. (C) 2016 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY license.
机译:提出了一种超声整形外科设备,其中超声致动依赖于经典c换能器的修改。当前所有的设备都包括一个装有调谐刀片的Langevin超声换能器,需要共振才能提供足够的振动幅度来切骨。但是,此要求限制了几何形状,几乎没有机会提出小型化设备或复杂的叶片。在此提出了V类弯曲拉伸c换能器,作为新设计的基础,其中delivers提供了所需的振动幅度,并且可以为所需的切割量身定制连接的切削刀片的设计。因此,可以优化该设备以提供准确和精确的切割能力。提出了一种基于device构形的原型设备,该设备设计为以25.5 kHz的频率工作,在300 V时的位移幅度为30μm。振动和阻抗响应的测量阐明了该设备的机械和电气特性。随后在大鼠股骨上进行的切割测试证明了该设备的性能与基于Langevin的商用超声波设备相一致,并表明使用较少的电功率和较低的压电陶瓷体积即可实现切割。组织学分析显示,device装置切割部位周围区域的活细胞比例高于动力矢状或手动锯,这表明超声波装置具有更快愈合的潜力。 (C)2016作者。由Elsevier B.V.发布。这是CC BY许可下的开放获取文章。

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