Minimum normal force principle based quantitive optimization of clamping forces for thin walled part

Fa Ping Zhang*, Hou Fang Sun, I. Butt Shahid

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

1 Citation (Scopus)

Abstract

Based on the stability criteria of workpiece-fixture system, quantitative optimization of clamping forces during precise machining process for thin walled part is studied considering the contact condition between wokpiece and locator, the contact mechanical model is achieved, which is further been used to calculate the entire passive forces acting on the statically undetermined workpiece by means of the force screw theory as well as minimum norm force principle. Furthermore, a new methodology to optimize clamping forces is put forward, on the criteria of keeping the stability of workpiece during cutting process. By this way, the intensity of clamping forces is decreased dramatically, which will be most beneficial for improving the machining quality of thin-walled parts. Finally, a case study is used to support and validate the proposed model.

Original languageEnglish
Pages (from-to)148-152
Number of pages5
JournalJournal of Beijing Institute of Technology (English Edition)
Volume17
Issue number2
Publication statusPublished - Jun 2008

Keywords

  • Clamping forces optimization
  • Minimum norm force principle
  • Stability
  • Workpiece-fixture system

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