Design of forging process variables under uncertainties |
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Authors: | Jalaja Repalle Ramana V. Grandhi |
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Affiliation: | (1) 209 RC, Department of Mechanical and Materials Engineering, Wright State University, 3640 Colonel Glenn Highway, 45435 Dayton, OH |
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Abstract: | Forging is a complex nonlinear process that is vulnerable to various manufacturing anomalies, such as variations in billet geometry, billet/die temperatures, material properties, and workpiece and forging equipment positional errors. A combination of these uncertainties could induce heavy manufacturing losses through premature die failure, final part geometric distortion, and reduced productivity. Identifying, quantifying, and controlling the uncertainties will reduce variability risk in a manufacturing environment, which will minimize the overall production cost. In this article, various uncertainties that affect the forging process are identified, and their cumulative effect on the forging tool life is evaluated. Because the forging process simulation is time-consuming, a response surface model is used to reduce computation time by establishing a relationship between the process performance and the critical process variables. A robust design methodology is developed by incorporating reliability-based optimization techniques to obtain sound forging components. A case study of an automotive-component forging-process design is presented to demonstrate the applicability of the method. |
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Keywords: | forging process design random process variables reliability assessment reliability-based optimization uncertainty quantification |
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