Virtual Interactive Prototyping Based on Function-Behavior-Structure (FBS) Approach

Article Preview

Abstract:

The topic of this paper focuses on the virtual interactive prototyping and augmented reality prototyping. The prototyping of the manufacturing systems is of utmost importance. The prototyping phase is also important for maintenance for manufacturing systems. The paper propose a new approach taking into account several key ideas concerning the manufacturing machine components. The overall objectives of this paper are to propose new models and techniques for virtual prototyping and augmented reality.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

188-193

Citation:

Online since:

February 2017

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2017 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] S. Gowda, S. Jayaram and U. Jayaram, Architectures for Internet-based collaborative Virtual Prototyping, Proceedings of the ASME Design Technical Conference and Computers in Engineering Conference, DETC99/CIE-9040, (1999).

DOI: 10.1115/detc99/cie-9040

Google Scholar

[2] G.S. Antonino, G. Zachmann, Integrating Virtual Reality for Virtual Prototyping, Proceedings of the 1998 ASME Design Technical Conference and Computers in Engineering Conference, DETC98/CIE-5536, (1998).

DOI: 10.1115/detc98/cie-5536

Google Scholar

[3] F. Dai, P. Reindl, Enabling digital mock up with virtual reality techniques – vision, concept, demonstrator, Proceedings of 1996 ASME design engineering technical conference and computers in engineering, (1996).

DOI: 10.1115/96-detc/dfm-1406

Google Scholar

[4] G. Zachmann, Real-time and Exact Collision Detection for Interactive Virtual Prototyping, " Proceedings of the 1997 ASME Design Technical Conference and Computers in Engineering Conference, DETC97/CIE-4306 (1997).

DOI: 10.1115/detc97/cie-4306

Google Scholar

[5] E. J. Haug, J. Cremer, Y. Papelis, D. Solis, R. Ranganthan, Virtual Proving Ground Simulation for Vehicle Design, Proceedings of the 1998 ASME Design Technical Conference and Design Automation Conference, DETC98/DAC-5626, (1998).

DOI: 10.1115/detc98/dac-5626

Google Scholar

[6] P. Grant, J. S. Freeman, R. Vail, F. Huck, Preparation of Virtual Proving Ground for Construction Equipment Simulation, Proceedings of the 1998 ASME Design Technical Conference and Design Automation Conference, DETC98/DAC-5614, (1998).

DOI: 10.1115/detc98/dac-5614

Google Scholar

[7] D. Solis, C. Schwarz, C., Multirate Integration in Hybrid Electric Vehicle Virtual Proving Grounds, " Proceedings of the 1998 ASME Design Technical Conference and Design Automation Conference, DETC98/DAC-5634, (1998).

DOI: 10.1115/detc98/dac-5634

Google Scholar

[8] H. L. Guo, H. Li, M. Skitmore, Life Cycle Management of Construction Papers Based on Virtual Prototyping Technology. Journal of Management in Engineering, 26 (2010) 41-47.

DOI: 10.1061/(asce)0742-597x(2010)26:1(41)

Google Scholar

[9] J. Cecil, A. Kanchanapiboon, Virtual Engineering Approaches in Product and Process Design. International Journal of Advanced Manufacturing Technologies, 31 (2007) 846-856.

DOI: 10.1007/s00170-005-0267-7

Google Scholar

[10] L. Alem, F. Tecchia, W. Huang, A tele-assistance system for maintenance operators in mines. Proceedings of 11th Underground Coal Operators Conference (COAL2011), (2011).

Google Scholar

[11] R. T. Azuma, A Survey of Augmented Reality. Presence: Teleoperators and Virtual Environments, 6 (1997) 355-385.

DOI: 10.1162/pres.1997.6.4.355

Google Scholar

[12] T. Badard, Geospatial Service Oriented Architectures for Mobile Augmented Reality. Proceedings of the 1st International Workshop on Mobile Geospatial Augmented Reality (2006) 73-77.

Google Scholar

[13] T. Bangemann, X. Rebeuf, D. Reboul, A. Schulze, J. Szymanski, J-P. Thomesse, M Thron, N. Zerhouni, PROTEUS—Creating distributed maintenance systems through an integration platform. Computers in Industry Journal, Elsevier, 57 (2006) 539-551.

DOI: 10.1016/j.compind.2006.02.018

Google Scholar

[14] F. Steven, S. J. Henderson, Evaluating the Benefits of Augmented Reality for Task Localization in Maintenance of an Armored Personnel Carrier Turret – Report, IEEE International Symposium on Mixed and Augmented Reality, Science and Technology Proceedings (2009).

DOI: 10.1109/ismar.2009.5336486

Google Scholar

[15] J. Platonov, H. Heibel, P. Meyer, B. Grollmann, A mobile markless AR system or maintenance and repair. Mixed and Augmented Reality (ISMAR'06), (2006) 105–108.

DOI: 10.1109/ismar.2006.297800

Google Scholar

[16] M. Barroso, J. Wilson, Human error and disturbance occurrence in manufacturing systems: towards development of an analytical framework, Human Factors and Ergonomics in Manufacturing, 9 (1999) 87–104.

DOI: 10.1002/(sici)1520-6564(199924)9:1<87::aid-hfm5>3.0.co;2-2

Google Scholar

[17] M. B. Spencer, K. A. Robertson, S. Folkard, The development of a fatigue / risk index for shiftworkers, HSE, (2004).

Google Scholar

[18] A. Borden, Designing and maintaining decision-making processes, AGARD Conference Proceedings 545 (1993) 1–6.

Google Scholar

[19] M. T. Liberatore, A. C. Stylianou, Using knowledge-based systems for strategic market assessment", Information and Management, 27 (1994) 221–32.

DOI: 10.1016/0378-7206(94)90050-7

Google Scholar

[20] T. L. Saaty, Multicriteria decision making, The Analytic Hierarchy Process, RWS Publication, USA, (1990).

Google Scholar

[21] M. A. P. Davies, A multi-criteria decision model application for managing group decisions, Journal of the Operational Research Society, 45 (1994) 47–58.

Google Scholar