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Process planning for the rapid machining of custom bone implants.

机译:用于快速加工定制骨植入物的工艺计划。

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摘要

This thesis proposes a new process planning methodology for rapid machining of bone implants with customized surface characteristics. Bone implants are used in patients to replace voids in the fractured bones created during accident or trauma. Use of bone implants allow better fracture healing in the patients and restore the original bone strength. The manufacturing process used for creating bone implants in this thesis is highly automated CNC-RP invented at Rapid Manufacturing and Prototyping Lab (RMPL) at Iowa State University. CNC-RP is a 4th axis rapid machining process where the part is machined using cylindrical stock fixed between two opposing chucks. In addition to conventional 3 axes, the chucks provide 4th rotary axis that allows automated fixturing setups for machining the part. The process planning steps for CNC-RP therefore includes calculating minimum number of setup orientations required to create the part about the rotary axis. The algorithms developed in this thesis work towards calculating a minimum number of orientations required to create bone implant with their respective surface characteristics.;Usually bone implants may have up to 3 types of surfaces (articular/periosteal/fractured ) with (high/medium/low) finish. Currently CNC-RP is capable of creating accurate bone implants from different clinically relevant materials with same surface finish on all of the implant surfaces. However in order to enhance the functionality of the bone implants in the biological environment, it is usually advisable to create implant surfaces with their respective characteristics. This can be achieved by using setup orientations that would generally isolate implant surfaces and machine them with individual finishes. This thesis therefore focuses on developing process planning algorithms for calculating minimum number of orientations required to create customized implant surfaces and control related issues. The bone implants created using new customization algorithms would have enhanced functionality. This would reduce the fracture healing time for the patient and restore the original bone strength. The software package created using new algorithms will be termed as CNC-RPbio throughout in this thesis.;The three main tasks in this thesis are a) calculating setup orientations in a specific sequence for implant surfaces b) Algorithms for calculating a minimum number of setup orientations to create implant surfaces c) Machining operation sequence. These three research tasks are explained in details in chapter 4 of this thesis.;The layout of this thesis is as follows. Chapter 1 provides introduction, background and motivation to the research in this thesis. Chapter 2 provides a literature review explaining different researches conducted to study the effects of different surface finish on the bone implants on their functionality. It also presents different non-traditional and RP techniques used to create bone implant geometries with customized surfaces, their advantages and limitations. Chapter 3 gives the overview of process planning algorithms used for CNC-RP and those needed for CNC-RP bio. Chapter 4 is the main chapter of the thesis including process planning algorithms for rapid machining of bone implants with customized surfaces using CNC-RP in details, while Chapter 5 provides Conclusions and Future work.
机译:本文提出了一种新的工艺计划方法,用于快速加工具有定制表面特征的骨植入物。骨植入物用于患者中,以替代事故或外伤期间在骨折骨头中产生的空隙。使用骨植入物可使患者更好地骨折愈合并恢复原始骨强度。本文中用于制造骨植入物的制造过程是由爱荷华州立大学的快速制造和原型实验室(RMPL)发明的高度自动化的CNC-RP。 CNC-RP是第4轴快速加工工艺,使用固定在两个相对卡盘之间的圆柱坯料加工零件。除传统的3轴外,卡盘还提供第4旋转轴,可实现自动夹具设置以加工零件。因此,CNC-RP的工艺计划步骤包括计算围绕旋转轴创建零件所需的最小安装方向数。本论文开发的算法旨在计算具有各自表面特征的骨植入物所需的最少方向。;通常,骨植入物最多可具有3种类型的表面(关节/骨膜/骨折),其中(高/中/低)完成。目前,CNC-RP能够使用不同临床相关材料在所有植入物表面上制造出具有相同表面光洁度的精确骨植入物。但是,为了增强生物环境中骨植入物的功能,通常建议创建具有各自特征的植入物表面。这可以通过使用安装方向来实现,该方向通常会隔离植入物表面并用单独的表面进行加工。因此,本文着重于开发工艺计划算法,以计算创建定制的植入物表面和控制相关问题所需的最少取向。使用新的定制算法创建的骨植入物将具有增强的功能。这将减少患者的骨折愈合时间并恢复原始的骨强度。本文将使用新算法创建的软件包称为CNC-RPbio 。;本文的三个主要任务是:a)以特定顺序计算植入物表面的安装方向b)计算最小安装数量的算法创建植入物表面的方向c)加工操作顺序。本文的第四章详细介绍了这三个研究任务。第1章介绍了本文的研究背景,研究动机。第2章提供了文献综述,解释了为研究不同表面光洁度对骨植入物对其功能的影响而进行的不同研究。它还介绍了用于创建具有定制表面,其优点和局限性的骨植入物几何形状的不同非传统和RP技术。第3章概述了用于CNC-RP的过程计划算法以及CNC-RP bio所需的算法。第四章是论文的主要章节,详细介绍了使用CNC-RP快速加工具有定制表面的骨植入物的过程计划算法,而第五章则提供了结论和未来的工作。

著录项

  • 作者

    Joshi, Ashish Mukund.;

  • 作者单位

    Iowa State University.;

  • 授予单位 Iowa State University.;
  • 学科 Engineering Industrial.
  • 学位 M.S.
  • 年度 2011
  • 页码 92 p.
  • 总页数 92
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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