首页> 外文会议>ASME International Design Engineering Technical Conferences and Computers and Information in Engineering Conference 2007 >SIZE AND SHAPE OPTIMIZATION OF A 1.0 mm MULTIFUNCTIONAL FORCEPS- SCISSORS INSTRUMENT FOR MINIMALLY INVASIVE SURGERY
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SIZE AND SHAPE OPTIMIZATION OF A 1.0 mm MULTIFUNCTIONAL FORCEPS- SCISSORS INSTRUMENT FOR MINIMALLY INVASIVE SURGERY

机译:用于微创外科手术的1.0 mm多功能断肠剪刀器械的尺寸和形状优化

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A size and shape optimization routine is developed and implemented on a 1 mm multifunctional instrument for minimally invasive surgery. The instrument is a compliant mechanism, without hinges, capable of both grasping and cutting. Multifunctional instruments have proven to be beneficial in the operating room because of their ability to perform multiple tasks, thereby decreasing the total number of instrument exchanges in a single procedure. In addition, with fewer exchanges the risk of inadvertent tissue trauma as well as overall surgical time and costs are reduced. The focus of the paper is to investigate the performance effects of allowing the cross-sectional area along the length of the device to vary. This is accomplished by defining various cross-sectional segments along the device in terms of parametric variables (W_1) and optimizing the dimensions to provide a sufficient forceps jaw opening while maintaining adequate cutting and grasping forces. Two optimization problems are considered. First, all parametric segments are set equal to one another permitting all cross-sections to vary uniformly and achieving size optimization. Second, each segment is defined as a separate design variable to allow segments to vary independently and thereby achieving shape optimization. Due to the device's symmetry, one-half of the mechanism is modeled as a cantilever beam undergoing large deformation. ANSYS' optimization module is employed using the first order method because it is capable of performing optimization considering non-linear deformation and multiple loading conditions. Finally, prototypes are fabricated using wire EDM and prototype evaluations are conducted to compare size versus shape optimization, and to validate ANSYS as the solution method.
机译:开发了尺寸和形状优化例程,并在1毫米多功能器械上进行了微创手术。该仪器是一种不带铰链的柔顺机构,能够抓握和切割。事实证明,多功能器械在手术室中是有益的,因为它们具有执行多种任务的能力,从而减少了单个手术过程中器械更换的总数。此外,由于更换次数少,因此意外组织创伤的风险以及总体手术时间和成本也降低了。本文的重点是研究允许沿器件长度变化的截面积的性能影响。这是通过根据参数变量(W_1)定义沿设备的各种横截面段并优化尺寸以提供足够的钳子钳口并同时保持足够的切割力和抓紧力来实现的。考虑了两个优化问题。首先,将所有参数段设置为彼此相等,以允许所有横截面均匀变化并实现尺寸优化。其次,将每个段定义为单独的设计变量,以允许段独立变化,从而实现形状优化。由于设备的对称性,该机构的一半被建模为承受大变形的悬臂梁。 ANSYS的优化模块采用一阶方法来使用,因为它能够在考虑非线性变形和多种载荷条件的情况下执行优化。最后,使用线切割机床制造原型,并进行原型评估以比较尺寸与形状优化,并验证ANSYS作为解决方法。

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