Computational Techniques to Improve Efficiency and Accuracy for High Performance Machining of Polyhedral Models

dc.contributor.advisorRobert E. Young, Committee Memberen_US
dc.contributor.advisorChristopher G. Healey, Committee Memberen_US
dc.contributor.advisorYuan-Shin Lee, Committee Chairen_US
dc.contributor.advisorEzat T. Sanii, Committee Memberen_US
dc.contributor.authorRen, Yongfuen_US
dc.date.accessioned2010-04-02T19:00:18Z
dc.date.available2010-04-02T19:00:18Z
dc.date.issued2003-07-01en_US
dc.degree.disciplineIndustrial Engineeringen_US
dc.degree.leveldissertationen_US
dc.degree.namePhDen_US
dc.description.abstractThe objective of this research is to investigate the computational techniques to improve the machining efficiency and accuracy for machining polyhedral models in CAD/CAM systems. High performance machining can be achieved by considering part surface geometry and physical property of machining processes in roughing, finishing and clean-up machining systematically. To improve the machining accuracy, high accurate tool path interpolations are critical for CAD/CAM systems. By considering the maximal error conditions, explicit solutions are proposed to calculate the exact maximal interpolation error for interpolating 3D cubic polynomial curves and 2D planar offset curves. Using the explicit solutions of finding the maximal interpolation errors, an adaptive interpolation method is proposed for smooth curve interpolation for tool-path generation and numerical control machining. To improve the tool-path generation efficiency for machining polyhedral models, an inverse cutting profile method is proposed for constructing Generalized Cutter Location (GCL) surfaces. The GCL-surfaces consist of facet-CL-surface, edge-CL-surface and vertex-CL-surface. GCL-surface can be calculated efficiently from the developed inverse cutting profile and the derived instantaneous offset vector of the cutting tool. The finishing and clean-up machining can significantly improve the machining efficiency by using multiple-size tools. To shorten the total machining time, multiple tools are used to machine various regions with different geometric characteristics. A contraction tool method is proposed to identify the clean-up regions and to construct the strip-parallel clean-up tool paths. Using the proposed contraction tool method, clean-up tool paths can be successfully generated for improving machining efficiency. By applying High-Speed Machining (HSM), Machining efficiency can be greatly improved due to the high material removal rate in HSM. Chattering is one of the most critical problems encountered in high-speed machining. To overcome the chattering in high speed machining, a time-domain computational modeling technique is proposed for chatter prediction. The time-domain computational modeling of chatter prediction is based on the trochoidal link-list surface models and Poincarè plot chatter criterion techniques. Compared with the traditional analytic solutions, the proposed time-domain chatter prediction solution can successfully generate the instant cutting information and can efficiently deal with non-linearity cutting in high-speed machining. The presented techniques have been implemented and tested for feasibility. Computed implementation and practical examples are presented in this paper. The results show that the developed computational techniques can significantly improve the machining performance of complex polyhedral models. The presented techniques and detailed algorithms can be used in CAD/CAM/CNC systems for high performance machining.en_US
dc.identifier.otheretd-04022003-092812en_US
dc.identifier.urihttp://www.lib.ncsu.edu/resolver/1840.16/4744
dc.rightsI hereby certify that, if appropriate, I have obtained and attached hereto a written permission statement from the owner(s) of each third party copyrighted matter to be included in my thesis, dissertation, or project report, allowing distribution as specified below. I certify that the version I submitted is the same as that approved by my advisory committee. I hereby grant to NC State University or its agents the non-exclusive license to archive and make accessible, under the conditions specified below, my thesis, dissertation, or project report in whole or in part in all forms of media, now or hereafter known. I retain all other ownership rights to the copyright of the thesis, dissertation or project report. I also retain the right to use in future works (such as articles or books) all or part of this thesis, dissertation, or project report.en_US
dc.subjectCAD/CAMen_US
dc.subjectPolyhedral modelen_US
dc.subjectNC machiningen_US
dc.subjectTool path generationen_US
dc.titleComputational Techniques to Improve Efficiency and Accuracy for High Performance Machining of Polyhedral Modelsen_US

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