A Dexterous Part-Holding Model for Handling Compliant Sheet Metal Parts

Author:

Li H. F.1,Ceglarek D.2,Shi Jianjun3

Affiliation:

1. General Motors Corp, Warren, MI 48089

2. Department of Industrial Engineering, The University of Wisconsin-Madison, Madison, WI 53706

3. Department of Industrial and Operations Engineering, The University of Michigan-Ann Arbor, Ann Arbor, MI 48109

Abstract

Material handling of compliant sheet metal parts significantly impacts both part dimensional quality and production rate in the stamping industry. This paper advances previously developed material handling end effector layout optimization methodology for rigid point end effectors [1] by developing a dexterous part-holding end effector model. This model overcomes the shortcomings of the rigid point part-holding end effector model by predicting part deformation more accurately for various modes of deformation and for a set of part-holding end effector locations. This is especially important for handling systems which utilize vacuum cup end effectors widely used for handling of large sheet metal parts. The dexterous end effector model design method and an algorithm for estimation of model parameters are developed. The algorithm combines data from design of computer simulations and from the set of experiments by integrating finite element analysis and a statistical data processing technique. Experimental studies are conducted to verify the developed model and the model parameter estimation algorithm. The developed methodology provides an analytical tool for product and process designers to accurately predict part deformation during handling, which further leads to minimization of part deformation, improvement of part dimensional quality and increase of production rate.

Publisher

ASME International

Subject

Industrial and Manufacturing Engineering,Computer Science Applications,Mechanical Engineering,Control and Systems Engineering

Reference27 articles.

1. Ceglarek, D., Li, H. F., and Tang, Y., 2001, “Modeling and Optimization of Fixture for Handling Compliant Sheet Metal Parts,” ASME J. Manuf. Sci. Eng., 123/3, pp. 473–480.

2. Li, D., Ceglarek, D., and Shi, J. 1993, “Sliding Door Process Variation Study,” Technical Report for Chrysler Corp., The University of Michigan, Ann Arbor.

3. Wu, X., Shi, J., and Hu, S., 1996, “On-Site Measurement and Process Monitoring for Stamping Variation Reduction,” Technical Report, the 2mm Program, NIST-Advanced Technology Program, pp. 61–80.

4. Hockenberger, M., and DeMeter, E., 1995, “The Effect of Machining Fixture Design Parameters on Workpiece Displacement,” Manufacturing Review,8/1, pp. 22–33.

5. Asada, H., and By, A., 1985, “Kinematic Analysis of Workpart Fixturing for Flexible Assembly with Automatically Reconfigurable Fixtures,” IEEE Journal of Robotics and Automation, RA-1/2, pp. 86–94.

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