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An ultrasonically assisted sagittal saw for large bone surgeries

机译:大型骨外科用超声辅助矢状锯

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Large bone cutting surgeries are predominantly undertaken using sagittal saws, whereas ultrasonic devices are currently limited to small shallow cuts in bone, for example in maxillofacial surgeries. Given the known benefits of ultrasonic cutting, this study considers an approach of superimposing ultrasonic vibration on a sagittal saw blade motion by designing the saw as a planar transducer. Finite element modeling was used to establish piezoceramic and blade geometries, culminating in two designs, one for a longitudinal-mode transducer and one for a lateral-mode transducer. The two resulting planar transducers were manufactured, with the piezoceramic plates bonded to the blades using a high strength epoxy. Impendence plots confirmed the tuned ultrasonic frequency for each transducer. The ultrasonic vibration amplitude of the blade was also measured, although was limited by the device tracking and drive system. Initial cutting tests carried out on a sagittal saw test rig demonstrated small reductions in cut temperature and cut time compared with control blades. These are very early, but promising results for developing this new surgical technology.
机译:大型的骨切割手术主要是使用矢状锯进行的,而超声设备目前仅限于骨骼的小浅切,例如在颌面外科中。考虑到超声切割的已知好处,这项研究考虑了通过将锯片设计为平面传感器,将超声波振动叠加在弧形锯片运动上的方法。有限元建模用于建立压电陶瓷和叶片的几何形状,最终达到两种设计,一种设计用于纵向模式换能器,一种设计用于横向模式换能器。制造了两个最终的平面换能器,并使用高强度环氧树脂将压电陶瓷板粘结到叶片上。阻抗图证实了每个换能器的调谐超声频率。尽管受到设备跟踪和驱动系统的限制,但还测量了叶片的超声振动幅度。在弧形锯试验台上进行的初次切割测试表明,与控制刀片相比,切割温度和切割时间的降低幅度很小。这些是开发这种新外科技术的早期,但有希望的结果。

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