Feasibility Evaluation of Integrating UsabilityEngineering Issues in a Design for Multi-XCollaborative Framework
Stefano Filippi
.
DOI: 10.4236/iim.2011.31004   PDF    HTML     4,897 Downloads   8,445 Views  

Abstract

Design for manufacturing, design for assembly, and, in general, design for X, are methods helping an effective generation of industrial products. In parallel with the development of these methods, the research about usability engineering has generated many important results, both from the design, and the evaluation and testing points of view. The research described in this paper aims at evaluating the feasibility of the integration of two new usability methods, the design for innovative usability - DFIU -, and the integrated method for usability evaluation and testing - IMUET -, in an existing design for X named design guidelines collaborative framework - DGLs-CF -. Indeed, the DGLs-CF is a design for multi-X method, given that it covers both the manufacturing and the verification phases of the industrial product lifecycle. All these methods are currently under development by the author’s research group. To evaluate this feasibility, the first task of the research aims at describing and classifying the components of the three methods. Next, these components are semantically related to each other. Finally, the last activity verifies the compatibility between the components of the two usability methods and the data structures of the DGLs-CF to check the feasibility from the implementation point of view. The result of this research will consist of precise indications both for the development of a design for multi-X collaborative framework covering homogeneously the design, manufacturing, verification, and use phases of the industrial product lifecycle, and to be used as a reference for researchers interested in considering the integration of usability issues in their design tools, methods, and processes.

Share and Cite:

S. Filippi, "Feasibility Evaluation of Integrating UsabilityEngineering Issues in a Design for Multi-XCollaborative Framework," Intelligent Information Management, Vol. 3 No. 1, 2011, pp. 32-41. doi: 10.4236/iim.2011.31004.

Conflicts of Interest

The authors declare no conflicts of interest.

References

[1] J. Nielsen, “Usability Engineering,” Academic Press, Cambridge, MA. 1993.
[2] G. Pahl and W. Beitz, “Engineering Design: A Systematic Approach,” Springer, 1995.
[3] K. T. Ulrich and S. D. Eppinger, “Product Design & Development,” Mac Graw Hill, 2000.
[4] K. Otto and K. Wood, “Product Design,” Prentice Hall 2000.
[5] D. G. Ullman, “The Mechanical Design Process,” McGraw-Hill, 2003.
[6] R. D. Coyne et al., “Knowledge-Based Design Systems,” Addison Wesley, 1989.
[7] D. M. Andersen, “Design for Manufacturability & Concurrent Engineering,” CIM Press, Lafayette, CA, 2003.
[8] K. Lee, “Evolutionary Design and Re-Design Using Design Parameters and Goals,” Journal of Engineering Design, Vol. 15, No. 2, 2004. doi:10.1080/0954482031000150170
[9] F. Noel, D. Brissaud and S. Tichkiewitch, “Integrative Design Environment to Improve Collaboration between Various Experts,” Annals of the CIRP, Vol. 52, No. 1, 2003.
[10] G. Boothroyd, P. Dewhurst and W. Knight, “Product Design for Manufacture and Assembly, 2nd Edition Revised and Expanded,” Marcel Dekker, New York, 2002.
[11] G. S. Altshuller, D. W. Clarke, L. Shulyak and L. Lerner, “40 Principles: TRIZ Keys to Innovation [Extended Edition],” Technical Innovation Center, Inc., 2005.
[12] Y. S. Kim and D. S. Cochrani, “Reviewing TRIZ from the Perspective of Axiomatic Design,” Journal of Eng Design, Vol. 11, No. 1, 2000, pp. 79-94. doi:10.1080/095448200261199
[13] B. El-Haik, “Axiomatic Quality: Integrating Axiomatic Design with Six-Sigma, Reliability and Quality Engineering,” Wiley-Interscience, 2005.
[14] S. Filippi and I. Cristofolini, “The Design Guidelines Collaborative Framework, a Design for Multi-X Method for Product Development,” Springer, 2010. doi:10.1007/978-1-84882-772-1
[15] ISO/TR 14638:1995, “Geometrical Product Specification (GPS),” Masterplan, 1995.
[16] A. Dix, J. Finlay, G. D. Abowdand and R. Beale, “Human-Computer Interaction (2nd Edition),” Prentice Hall, 1998.
[17] P. F. Jacobs, “Stereolithography & Other Rp&m Technologies: From Rapid Prototyping to Rapid Tooling,” Society of Manufacturing Engineers, 1995.
[18] S. Ahmed and T. B. Christensen, “Use of analogies by novice and experienced design engineers,” Proceedings of the ASME 2008 International Design Engineering Technical Conferences & Computers and Information in Engineering Conference, IDETC/CIE 2008, Brooklyn, New York, 3-6 August 2008.
[19] J. S. Linsey, K. L. Wood and A. B. Markman, “Increasing Innovation: Presentation and Evaluation of the Wordtree Design-by-Analogy Method,” Proceedings of the ASME 2008 International Design Engineering Technical Conferences & Computers and Information in Engineering Conference, IDETC/CIE 2008, 3-6 August 2008, Brooklyn, New York, 2008.
[20] E. M. W. Kolb, J. Hey, H. J. Sebastian and A. M. Agogino, “Meta4acle: Generating Compelling Metaphors for Design,” Proceedings of the ASME 2008 International Design Engineering Technical Conferences & Computers and Information in Engineering Conference, IDETC/CIE 2008, Brooklyn, New York, 3-6 August 2008.
[21] A. Agarawala and R. Balakrshnan, “Keepin’ It Real: Pushing the Desktop Metaphor with Physics, Piles and the Pen,” CHI 2006 Conference Proceedings, New York, 2006.
[22] J. Hurtienne and L. Blessing, “Metaphors as Tools for Intuitive Interaction with Technology,” http://www. metaphorik.de, 2007.
[23] http://www.invention-machine.com/http://function.creax.com/
[24] D. Wixon, “Evaluating usability methods: why the Current Literature Fails the Practitioner,” Interaction, ACM, NewYork, Vol. 10, No. 4, 2003.
[25] S. H. Han, M. H.Yun, J. Kwahk and S. W. Hong, “Usability of Consumer Electronic Products,” International Journal of Industrial Ergonomics, Elsevier, Vol. 28, No. 3, September 2001.
[26] E. Z. Opiyo and I. Horváth, “Using Hybrid Heuristic Evaluation Method to Uncover the Conceptual Design Tasks Supported by a Holographic Display Based Truly 3D Virtual Design Environment,” Proceedings of the ASME 2008 International Design Engineering Technical Conferences & Computers and Information in Engineering Conference IDETC/CIE 2008, 3-6 August 2008, New York, 2008.

Copyright © 2024 by authors and Scientific Research Publishing Inc.

Creative Commons License

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.