首页> 外文会议>Conference on health monitoring of structural and biological systems >Electromagnetic Coil/Inductance-Based Nondestructive Methods for Locating Distal Screw-Holes of an Intramedullary Interlocking-Nail
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Electromagnetic Coil/Inductance-Based Nondestructive Methods for Locating Distal Screw-Holes of an Intramedullary Interlocking-Nail

机译:基于电磁线圈/电感的非破坏性方法,用于定位髓内互锁钉的远端螺钉孔

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We report an electromagnetic inductance/coil-based non-destructive method to target distal screw-holes in an intramedullary interlocking-nail surgical operation for fixing a long-bone fracture. The method is a radiation-free approach addressing the over-exposure issue of radioactivity caused by the typical X-ray-imaging approach. According to the method, we fabricate a targeting-system consisting of an internal inductance, external coil, guiding-mechanism, and driving/measurement electronics. When a voltage is applied to the internal inductance embedded in one of the distal screw-holes of a nail inserted in a bone, a directional magnetic flux is generated by the internal inductance due to the electromagnetic induction. Subsequently, the directional magnetic flux penetrates the nail and bone. When the external coil outside the bone scans along the axial and angular directions of the nail/bone, different amount of the generated magnetic flux is detected by the coil and consequently corresponding voltage response is induced in the coil due to the electromagnetic induction. In contrast to the magnetic flux generated and detected by the inductance and coil, respectively, we also investigate the reverse physics-behavior of the flux transmission (i.e., flux generated and detected by the coil and inductance) in order to improve the approach. Finally, by correlating the induced-voltage responses with the scanned axial-locations along the nail/bone, correlation curves are plotted. Through analyzing the curves, a criterion for predicting the location of the screw-holes of the nail is established. When compared the predicted location with the actual location of the screw-hole, the maximum targeting error is 2 mm for locating a screw-hole with a diameter of 5 mm. The result shows the targeting-method is accurate, fast, and easy for the surgeons and significantly simplifies the existed interlocking-nail surgical procedures.
机译:我们报告了一种基于电磁电感/线圈的非破坏性方法,以瞄准远端螺纹孔,用于固定长骨骨折。该方法是一种无辐射方法,解决了由典型的X射线成像方法引起的放射性过度曝光问题。根据该方法,我们制造由内部电感,外部线圈,引导机构和驱动/测量电子组成的靶向系统。当将电压施加到嵌入骨中的钉子的一个远端螺纹孔中的内部电感时,通过电磁感应引起的内部电感产生定向磁通量。随后,定向磁通量穿透钉子和骨骼。当沿着钉子/骨的轴向和角度方向的骨扫描的外部线圈时,线圈检测不同量的产生的磁通量,因此由于电磁感应引起的电压响应在线圈中感应。与电感和线圈产生和检测的磁通量相比,我们还研究了逆转物理行为(即,由线圈和电感产生和检测)的逆转物理行为,以便提高方法。最后,通过将沿着钉/骨的扫描轴向位置与扫描的轴向位置相关联,绘制相关曲线。通过分析曲线,建立了预测指甲的螺钉孔位置的标准。在将预测位置与螺纹孔的实际位置进行比较时,最大靶向误差为2 mm,用于定位直径为5mm的螺纹孔。结果表明,靶向方法准确,快速,易于外科医生,并显着简化存在的互锁手术手术程序。

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