In Process Control of Strain in a Stretch Forming Process

Author:

Hardt D. E.1,Norfleet W. A.1,Valentin V. M.1,Parris A.1

Affiliation:

1. Lab for Manufacturing and Productivity, Massachusetts Institute of Technology, Cambridge, MA 02139

Abstract

The process of stretch forming is used extensively in the aerospace industry to form large sheet panels of mild curvature. This has traditionally been a low precision process requiring considerable hand-working at assembly. However, recent demands for faster, less wasteful production have placed new demands on the accuracy and consistency (quality) of this process. In this paper the various modes of control for this process are examined, from both an analytical and experimental point of view. It is shown clearly that the process is least sensitive to material and machine property variations if controlled to a target level of strain in specific areas of the sheet. This method is compared with the conventional methods of controlling either the force applied to the sheet during stretching or the displacement of the stretch jaws. A series of both lab scale and full production experiments concur with the analytical findings, demonstrating reduced process variation if strain feedback is used. Lab experiments and analysis indicate that far greater reductions are possible if a more precise form of strain control is used. In production trials forming wing leading edges, a manually implemented strain control showed a shape variation reduction of 50 percent over normal factory practice using force control.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference13 articles.

1. Valjavec, M. 1999, “Closed-Loop Shape Control in Aerospace Panel Forming Systems,” Ph.D. thesis, MIT Department of Mechanical Engineering, Jan.

2. Valjavec, M., and Hardt, D. E., 1999, “Closed-loop Shape Control of the Stretch Forming Process over a Reconfigurable Tool: Precision Airframe Skin Fabrication,” Proc. ASME Symposium on Advances in Metal Forming, Nashville, Nov.

3. Swift, H. W. , 1948, “Plastic Bending Under Tension,” Engineering, 166, pp. 333–335 and 357–359.

4. Baba, Akijiro, and Tozawa, Yasuhisa, 1964, “Effect of Tensile Force in Stretch-Forming Process on the Springback,” Bull. JSME, 7, No. 28, pp. 835–843.

5. Parris, Andrew, 1996, “Precision Stretch forming for Precision Assembly,” Ph.D. thesis, Department of Mechanical Engineering, Massachusetts Institute of Technology.

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