Journal of Sustainable Development and Green Technology

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Journal of Sustainable Development and Green Technology

Volume 2, Issue 2, PP: 34-43, 2023 | Cite this article as | XML | | Html PDF

A MCDM Methodology to Analysis Strategies and Factors of Lean Production in Sustainability Development

Samah I. Abdel Aal   1 * , Ahmed Abdel-Monem   2

  • 1 Lecturer, Faculty of Computers and Informatics, Zagazig University, Egypt - (eng_samah2013@yahoo.com)
  • 2 Faculty of Computers and Informatics, Zagazig University, Zagazig 44519, Sharqiyah, Egypt - (aabdelmounem@zu.edu.eg)
  • Doi: https://doi.org/10.54216/JSDGT.020204

    Abstract

    Increases in sustainability performance and the adoption of innovative strategies for continuous improvement were driven by the need for production companies to compete in an increasingly globalized economy. Better operational performances are achieved when sustainable Production is included in industrial processes because wastes, costs, and environmental effects are reduced, and ergonomic requirements are met. To improve their performance and maintain a leading position in the market, several companies have turned to sustainable production practices. The study's goal is to improve the implementation of traditional Lean Production (LP) by creating an integrated Single valued neutrosophic Potentially All Pairwise RanKings of all possible Alternatives (PAPRIKA) method. The PAPRIKA is extended under a neutrosophic set. PAPRIKA is used to compute the weights of criteria by comparing the criteria. Also, the PAPRIKA method is used to rank and select the best strategy. The application is performed on the steps of the PAPRIKA method.

    Keywords :

    Neutrosophic Sets , PAPRIKA MCDM, Lean Production , Sustainability , Industry

    References

    [1]        R. Sundar, A. N. Balaji, and R. M. S. Kumar, "A review on lean manufacturing implementation techniques," Procedia Eng., vol. 97, pp. 1875–1885, 2014.

    [2]        S. Gupta and S. K. Jain, "A literature review of lean manufacturing," Int. J. Manag. Sci. Eng. Manag., vol. 8, no. 4, pp. 241–249, 2013.

    [3]        J. Bhamu and K. Singh Sangwan, "Lean manufacturing: literature review and research issues," Int. J. Oper. Prod. Manag., vol. 34, no. 7, pp. 876–940, 2014.

    [4]        A. N. A. Wahab, M. Mukhtar, and R. Sulaiman, "A conceptual model of lean manufacturing dimensions," Procedia Technol., vol. 11, pp. 1292–1298, 2013.

    [5]        D. A. A. Malik, Y. Yusof, and K. M. Na'im Ku Khalif, "A view of MCDM application in education," in Journal of Physics: Conference Series, IOP Publishing, 2021, p. 12063.

    [6]        M. C. Carnero, "Waste segregation FMEA model integrating intuitionistic fuzzy set and the PAPRIKA method," Mathematics, vol. 8, no. 8, p. 1375, 2020.

    [7]        A. Aramja and O. Kamach, "Decision Support Tool for Manufacturing Execution Systems: Case Study from the Steel Industry," in International Conference on Advanced Intelligent Systems for Sustainable Development, Springer, 2020, pp. 411–426.

    [8]        C. Jana and M. Pal, "Multi-criteria decision making process based on some single-valued neutrosophic Dombi power aggregation operators," Soft Comput., vol. 25, pp. 5055–5072, 2021.

    [9]        M. Saqlain, N. Jafar, S. Moin, M. Saeed, and S. Broumi, "Single and multi-valued neutrosophic hypersoft set and tangent similarity measure of single valued neutrosophic hypersoft sets," Neutrosophic Sets Syst., vol. 32, no. 1, pp. 317–329, 2020.

    [10]      J. E. Ricardo, A. J. R. Fernández, and M. Y. L. Vázquez, "Compensatory Fuzzy Logic with Single Valued Neutrosophic Numbers in the Analysis of University Strategic Management.," Int. J. Neutrosophic Sci., vol. 18, no. 4, 2022.

    [11]      M. Soltani, H. Aouag, C. Anass, and M. D. Mouss, "Development of an advanced application process of lean manufacturing approach based on a new integrated mcdm method under pythagorean fuzzy environment," J. Clean. Prod., vol. 386, p. 135731, 2023.

    [12]      A. Rezaei, M. Rahiminezhad Galankashi, S. Mansoorzadeh, and F. Mokhatab Rafiei, "Supplier selection and order allocation with lean manufacturing criteria: an integrated MCDM and Bi-objective modelling approach," Eng. Manag. J., vol. 32, no. 4, pp. 253–271, 2020.

    [13]      N. Senthil Kannan, R. Parameshwaran, P. T. Saravanakumar, P. M. Kumar, and M. L. Rinawa, "Performance and quality improvement in a foundry industry using fuzzy MCDM and lean methods," Arab. J. Sci. Eng., vol. 47, no. 12, pp. 15379–15390, 2022.

    [14]      Y. Kazancoglu and Y. D. Ozkan-Ozen, "Lean in higher education: A proposed model for lean transformation in a business school with MCDM application," Qual. Assur. Educ., vol. 27, no. 1, pp. 82–102, 2019.

    [15]      H. Aouag and M. Soltani, "Improvement of lean manufacturing approach based on MCDM techniques for sustainable manufacturing," Int. J. Manuf. Res., vol. 18, no. 1, pp. 50–74, 2023.

    [16]      S. Hartini, U. Ciptomulyono, and M. Anityasari, "Manufacturing sustainability assessment using a lean manufacturing tool: A case study in the Indonesian wooden furniture industry," Int. J. Lean Six Sigma, vol. 11, no. 5, pp. 943–971, 2020.

    [17]      A. J. Naeemah and K. Y. Wong, "Positive impacts of lean manufacturing tools on sustainability aspects: a systematic review," J. Ind. Prod. Eng., vol. 39, no. 7, pp. 552–571, 2022.

    [18]      N. Kumar and K. Mathiyazhagan, "Sustainability in lean manufacturing: a systematic literature review," Int. J. Bus. Excell., vol. 20, no. 3, pp. 295–321, 2020.

    [19]      M. P. Sajan, P. R. Shalij, and A. Ramesh, "Lean manufacturing practices in Indian manufacturing SMEs and their effect on sustainability performance," J. Manuf. Technol. Manag., vol. 28, no. 6, pp. 772–793, 2017.

    [20]      S. G. Deshmukh, N. Upadhye, and S. Garg, "Lean manufacturing for sustainable development," Glob. Bus. Manag. Res. Int. J, vol. 2, no. 1, p. 125, 2010.

    [21]      R. Henao, W. Sarache, and I. Gómez, "Lean manufacturing and sustainable performance: Trends and future challenges," J. Clean. Prod., vol. 208, pp. 99–116, 2019.

    [22]      P. Burawat, "The relationships among transformational leadership, sustainable leadership, lean manufacturing and sustainability performance in Thai SMEs manufacturing industry," Int. J. Qual. Reliab. Manag., vol. 36, no. 6, pp. 1014–1036, 2019.

    [23]      W. Faulkner and F. Badurdeen, "Sustainable Value Stream Mapping (Sus-VSM): methodology to visualize and assess manufacturing sustainability performance," J. Clean. Prod., vol. 85, pp. 8–18, 2014.

    [24]      Taif Khalid Shakir,Ahmed N. Al Masri, Single Valued Neutrosophic Set for Selection of Water Supply in Intelligent Farming, International Journal of Advances in Applied Computational Intelligence, Vol. 2 , No. 2 , (2022) : 37-44 (Doi   :  https://doi.org/10.54216/IJAACI.020204)

    [25]      A. R. Mishra, P. Rani, and R. S. Prajapati, "Multi-criteria weighted aggregated sum product assessment method for sustainable biomass crop selection problem using single-valued neutrosophic sets," Appl. Soft Comput., vol. 113, p. 108038, 2021.

    [26]      M. Mohamed and A. Gamal, “Toward Sustainable Emerging Economics based on Industry 5.0: Leveraging Neutrosophic Theory in Appraisal Decision Framework,” Neutrosophic Systems with Applications, vol. 1, pp. 14–21, 2023.

    [27]      J. R. Aguilar-Cisneros, J. J. Rosas-Sumano, and L. A. Morales-Ignacio, "Selection of best software engineering practices: a multi-criteria decision making approach," Adv. Soc. Informatics its Appl., p. 47, 2017.

    [28]      S. Mirzaee, D. Fannon, and M. Ruth, "A comparison of preference elicitation methods for multi-criteria design decisions about resilient and sustainable buildings," Environ. Syst. Decis., vol. 39, pp. 439–453, 2019.

    [29]      S. Alismaili, M. Li, and J. Shen, "Cloud computing adoption decision modelling for SMEs: from the PAPRIKA perspective," in Frontier Computing: Theory, Technologies and Applications, Springer, 2016, pp. 597–615.

    Cite This Article As :
    Samah I. Abdel Aal, Ahmed Abdel-Monem. "A MCDM Methodology to Analysis Strategies and Factors of Lean Production in Sustainability Development." Full Length Article, Vol. 2, No. 2, 2023 ,PP. 34-43 (Doi   :  https://doi.org/10.54216/JSDGT.020204)
    Samah I. Abdel Aal, Ahmed Abdel-Monem. (2023). A MCDM Methodology to Analysis Strategies and Factors of Lean Production in Sustainability Development. Journal of , 2 ( 2 ), 34-43 (Doi   :  https://doi.org/10.54216/JSDGT.020204)
    Samah I. Abdel Aal, Ahmed Abdel-Monem. "A MCDM Methodology to Analysis Strategies and Factors of Lean Production in Sustainability Development." Journal of , 2 no. 2 (2023): 34-43 (Doi   :  https://doi.org/10.54216/JSDGT.020204)
    Samah I. Abdel Aal, Ahmed Abdel-Monem. (2023). A MCDM Methodology to Analysis Strategies and Factors of Lean Production in Sustainability Development. Journal of , 2 ( 2 ), 34-43 (Doi   :  https://doi.org/10.54216/JSDGT.020204)
    Samah I. Abdel Aal, Ahmed Abdel-Monem. A MCDM Methodology to Analysis Strategies and Factors of Lean Production in Sustainability Development. Journal of , (2023); 2 ( 2 ): 34-43 (Doi   :  https://doi.org/10.54216/JSDGT.020204)
    Samah I. Abdel Aal, Ahmed Abdel-Monem, A MCDM Methodology to Analysis Strategies and Factors of Lean Production in Sustainability Development, Journal of , Vol. 2 , No. 2 , (2023) : 34-43 (Doi   :  https://doi.org/10.54216/JSDGT.020204)