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Robust design of assembly and machining tolerance allocations

  • Published:
IIE Transactions

Abstract

Tolerancing is one of the most important tasks in product and manufacturing process design. The allocation of design tolerances between the components of a mechanical assembly and manufacturing tolerances in the intermediate machining steps of component fabrication can significantly affect a product's quality and its robustness. This paper presents a methodology to maximize a product's robustness by appropriately allocating assembly and machining tolerances. The robust tolerance design problem is formulated as a mixed nonlinear optimization model. A simulated annealing algorithm is employed to solve the model and an example is presented to illustrate the methodology.

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References

  1. Chase, K.W., Greenwood, W.H., Loosli, B.G. and Hauglund, L.F.(1990) Least cost tolerance allocation for mechanical assem-blies with automated process selection. Manufacturing Review, 3 (1), 49–59.

    Google Scholar 

  2. Dong, Z. and Soom, A. (1990) Automatic optimal tolerance design for related dimension chains. Manufacturing Review, 3 (4), 262–271.

    Google Scholar 

  3. Irani, S.A., Mittal, R.O. and Lehtihet, E.A.(1989) Tolerance chart optimization. International Journal of Production Research, 27 (9), 1531–1552.

    Google Scholar 

  4. Lee, W. and Woo, T.C. (1990) Tolerances: their analysis and synthesis. Transactions of ASME, Journal of Engineering for In-dustry, 112, 113–121.

    Google Scholar 

  5. Ostwald, P.F. and Huang, J. (1977) A method for optimal toler-ance selection. Transactions of ASME, Journal of Engineering for Industry, 99, 558–565.

    Google Scholar 

  6. Parkinson, D.B. (1985) Assessment and optimization of dimen-sional tolerances. Computer-Aided Design, 17, 191–199.

    Google Scholar 

  7. Peters, J. (1988) Tolerancing the components of an assembly for minimum cost. Transactions of ASME, Journal of Engineering for Industry, 110, 232–235.

    Google Scholar 

  8. Speckhart, F.H. (1972) Calculation of tolerance based on a min-imum cost approach. Transactions of ASME, Journal of Engi-neering for Industry, 94, 447–453.

    Google Scholar 

  9. Spotts, M.F. (1973) Allocation of tolerances to minimize cost of assembly. Transactions of ASME, Journal of Engineering for In-dustry, 95, 762–764.

    Google Scholar 

  10. Harry, M.J. and Lawson, J.R. (1988) Six sigma producibility analysis and process characterization. Motorola Inc., Pub. No. 6σ-3-03-88.

  11. Francis, P.H. (1988) Statistics of high-yield manufacturing pro-cesses. Manufacturing Review, 1 (1), 6–13.

    Google Scholar 

  12. Kirkpatrick, S., Gelatt, C.D., Jr. and Vecchi, M.P. (1983) Opti-mization by simulated annealing. Science, 220, 671–680.

    Google Scholar 

  13. Collins, N.E., Eglese, R.W. and Golden, B.L. (1988) Simulated annealing-an annotated bibliography. American Journal of Mathematical and Management Sciences, 8 (3&4), 209–307.

    Google Scholar 

  14. ven Laarhoven, P.J.M. and Aarts, E.H.L. (1987) Simulated An-nealing: Theory and Applications, Reidel, Dordrecht.

    Google Scholar 

  15. Zhang, C. and Wang, H.P. (1993) The discrete tolerance optimi-zation problems. Manufacturing Review, 6 (1), 60–71.

    Google Scholar 

  16. Zhang, C. and Wang, H.P. (1993) Mixed nonlinear optimization with simulated annealing. Engineering Optimization, 21, 277–291.

    Google Scholar 

  17. Paredis, J. (1993) Genetic constraints-space search for con-strained optimization, in Proceedings of the Thirteenth International Joint Conference on Artificial Intelligence, Chambery, France, 28 August to 3 September 1993.

    Google Scholar 

  18. Lee, S. and Wang, H.P. (1992) Modified simulated annealing for multiple-objective engineering design optimization. Journal of Intelligent Manufacturing, 3 (2), 101–108.

    Google Scholar 

  19. Lange, J.C. (1984) Design Dimensioning with Computer Graphics Applications, Marcel Dekker, New York.

    Google Scholar 

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Zhang, C.(., Wang, HP.(. Robust design of assembly and machining tolerance allocations. IIE Transactions 30, 17–29 (1997). https://doi.org/10.1023/A:1007437427523

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  • DOI: https://doi.org/10.1023/A:1007437427523

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