Axiomatic Design of Mechanical Systems

Author:

Suh N. P.1

Affiliation:

1. Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139

Abstract

Design is done in many fields. Although the design practices in different fields appear to be distinct from each other, all fields use a common thought process and design principles. Consequently, the true differences between these fields are minor, often consisting of the definitions of words, the specific data, and knowledge. In comparison, larger differences can exist within a given field between simple systems and large systems due to the size and the time dependent nature of functional requirements. The axiomatic approach to design provides a general theoretical framework for all these design fields, including mechanical design. The key concepts of axiomatic design are: the existence of domains, the characteristic vectors within the domains that can be decomposed into hierarchies through zigzagging between the domains, and the design axioms (i.e., the Independence Axiom and the Information Axiom). Based on the two design axioms, corollaries and theorems can be stated or derived for simple systems, large systems, and organizations. These theorems and corollaries can be used as design rules or guidelines for designers. The basic concepts are illustrated using simple mechanical design examples. When design is viewed axiomatically, not only product design but all other designs, including design of process, systems, software, organizations, and materials, are amenable to systematic treatment.

Publisher

ASME International

Subject

Computer Graphics and Computer-Aided Design,Computer Science Applications,Mechanical Engineering,Mechanics of Materials

Reference14 articles.

1. Albano L. D. , ConnorJ., and SuhN. P., 1993, “A Framework for Performance-Based Design,” Research in Engineering Design, Vol. 5, pp. 105–119.

2. Albano, L. D., and Suh, N. P., 1993, “The Information Axiom and Its Implications,” 1993 ASME Winter Annual Meeting-First ASME Symposium on Intelligent Concurrent Design, New Orleans, Nov. 28-Dec. 3, 1993.

3. Bieniawski Z. T. , 1993, “Principles and Methodology of Design for Excavations in Geologic Media,” Research in Engineering Design, Vol. 5, pp. 49–58.

4. Black, J. T., 1991, The Design of the Factory with a Future, McGraw-Hill.

5. Cha, S. W., 1994, “A Microcellular Foaming/Forming Process Performed at Ambient Temperature and a Super Microcellular Foaming Process,” Ph.D. Thesis, MIT, Cambridge, MA.

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