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Quantifying the Impact of Layout on Productivity: An Analysis from Robotic-Cell Manufacturing

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  • Tharanga Rajapakshe

    (School of Management, University of Texas at Dallas, Richardson, Texas 75083)

  • Milind Dawande

    (School of Management, University of Texas at Dallas, Richardson, Texas 75083)

  • Chelliah Sriskandarajah

    (School of Management, University of Texas at Dallas, Richardson, Texas 75083)

Abstract

Although the impact of layout on the productivity of manufacturing systems is well recognized, a quantification of this impact is an issue that is often ignored or crudely approximated in practice. When evaluating competing layouts for a manufacturing system, the trade-off between their relative benefits and their relative costs underlines the need for a reasonably accurate comparison of the productivity offered by these potential layouts. In this paper, we argue for this approach by comparing the productivity of two well-known layouts in robotic-cell manufacturing: circular and linear.We consider the problem of optimizing throughput in single-gripper, bufferless robotic cells that produce identical parts under the free-pickup criterion and the additive-travel-time metric. For cells with a circular layout, we show that the problem of finding an optimal 1-unit cycle is NP-hard. Our main algorithmic result is a polynomial-time 5/3-approximation algorithm for this problem. We then demonstrate that our algorithm provides near-optimal solutions by compiling its performance on an extensive test bed of practically-relevant instances. Finally, we use the algorithm to assess the increase in throughput for cells with a circular layout over those with a linear layout. We show that a circular layout offers a significant improvement in productivity and demonstrate the robustness of this improvement by examining the sensitivity with respect to changes in the design parameters of the robotic cell. Thus, our work provides operations managers with a tool to trade off the resulting increase in revenue with the additional cost of acquiring and maintaining a robot that can exploit a circular layout.

Suggested Citation

  • Tharanga Rajapakshe & Milind Dawande & Chelliah Sriskandarajah, 2011. "Quantifying the Impact of Layout on Productivity: An Analysis from Robotic-Cell Manufacturing," Operations Research, INFORMS, vol. 59(2), pages 440-454, April.
  • Handle: RePEc:inm:oropre:v:59:y:2011:i:2:p:440-454
    DOI: 10.1287/opre.1100.0874
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    References listed on IDEAS

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    1. Chelliah Sriskandarajah & Inna Drobouchevitch & Suresh P. Sethi & Ramaswamy Chandrasekaran, 2004. "Scheduling Multiple Parts in a Robotic Cell Served by a Dual-Gripper Robot," Operations Research, INFORMS, vol. 52(1), pages 65-82, February.
    2. Garg, Suresh & Vrat, Prem & Kanda, Arun, 2001. "Equipment flexibility vs. inventory: A simulation study of manufacturing systems," International Journal of Production Economics, Elsevier, vol. 70(2), pages 125-143, March.
    3. Sunderesh S. Heragu & Andrew Kusiak, 1988. "Machine Layout Problem in Flexible Manufacturing Systems," Operations Research, INFORMS, vol. 36(2), pages 258-268, April.
    4. Yavuz A. Bozer & Russell D. Meller & Steven J. Erlebacher, 1994. "An Improvement-Type Layout Algorithm for Single and Multiple-Floor Facilities," Management Science, INFORMS, vol. 40(7), pages 918-932, July.
    5. Milind Dawande & Michael Pinedo & Chelliah Sriskandarajah, 2009. "Multiple Part-Type Production in Robotic Cells: Equivalence of Two Real-World Models," Manufacturing & Service Operations Management, INFORMS, vol. 11(2), pages 210-228, February.
    6. Y. Crama & V. Kats & J. van de Klundert & E. Levner, 2000. "Cyclic scheduling in robotic flowshops," Annals of Operations Research, Springer, vol. 96(1), pages 97-124, November.
    7. Janny M. Y. Leung & Guoqing Zhang & Xiaoguang Yang & Raymond Mak & Kokin Lam, 2004. "Optimal Cyclic Multi-Hoist Scheduling: A Mixed Integer Programming Approach," Operations Research, INFORMS, vol. 52(6), pages 965-976, December.
    8. Yang, Taho & Peters, Brett A. & Tu, Mingan, 2005. "Layout design for flexible manufacturing systems considering single-loop directional flow patterns," European Journal of Operational Research, Elsevier, vol. 164(2), pages 440-455, July.
    9. Bock, Stefan & Hoberg, Kai, 2007. "Detailed layout planning for irregularly-shaped machines with transportation path design," European Journal of Operational Research, Elsevier, vol. 177(2), pages 693-718, March.
    10. F. Robert Jacobs, 1987. "A Layout Planning System with Multiple Criteria and a Variable Domain Representation," Management Science, INFORMS, vol. 33(8), pages 1020-1034, August.
    11. Levner, Eugene & Kats, Vladimir & Levit, Vadim E., 1997. "An improved algorithm for cyclic flowshop scheduling in a robotic cell," European Journal of Operational Research, Elsevier, vol. 97(3), pages 500-508, March.
    12. John S. Morris & Richard J. Tersine, 1990. "A Simulation Analysis of Factors Influencing the Attractiveness of Group Technology Cellular Layouts," Management Science, INFORMS, vol. 36(12), pages 1567-1578, December.
    13. Milind Dawande & H. Geismar & Michael Pinedo & Chelliah Sriskandarajah, 2010. "Throughput optimization in dual-gripper interval robotic cells," IISE Transactions, Taylor & Francis Journals, vol. 42(1), pages 1-15.
    14. Yves Crama & Joris van de Klundert, 1997. "Cyclic Scheduling of Identical Parts in a Robotic Cell," Operations Research, INFORMS, vol. 45(6), pages 952-965, December.
    15. Milind Dawande & Chelliah Sriskandarajah & Suresh Sethi, 2002. "On Throughput Maximization in Constant Travel-Time Robotic Cells," Manufacturing & Service Operations Management, INFORMS, vol. 4(4), pages 296-312, August.
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    Cited by:

    1. Kyle Epping & Hao Zhang, 2018. "A Sustainable Decision-Making Framework for Transitioning to Robotic Welding for Small and Medium Manufacturers," Sustainability, MDPI, vol. 10(10), pages 1-18, October.

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