Sustainable Product Design for Disassembly: Integrating Digital Thread and Lifecycle Assessment (LCA) Tools
DOI:
https://doi.org/10.64882/ijrt.v14.iS1.1106Keywords:
Design for Disassembly (DfD), Digital Thread, Lifecycle Assessment (LCA), Circular Economy, Digital Transformation, Sustainable ManufacturingAbstract
The transition to a Circular Economy (CE) necessitates a fundamental shift in product design from traditional end-of-life disposal to strategies that facilitate reuse, remanufacturing, and recycling. Design for Disassembly (DfD) is a critical enabler of this transition [1, 2]. However, its effective implementation is often hindered by fragmented information flows across the product lifecycle and a lack of integrated sustainability assessment during early design stages [3,4]. This paper proposes a novel, integrated framework that merges the Digital Thread-a seamless, data-driven continuum of information from design to end-of-life [5] with Lifecycle Assessment (LCA) tools to empower Sustainable Product Design for Disassembly. The Digital Thread ensures real-time access to critical data such as material specifications, joinery methods, assembly sequences, and bill of materials, feeding directly into LCA software for dynamic environmental impact evaluation [6]. This integration allows designers to conduct instantaneous “what-if” analyses, quantifying the environmental and economic trade-offs of different disassembly strategies. A conceptual case study of an electric motor is presented to illustrate the framework’s application. The study demonstrates how the system can optimize design choices such as selecting snap-fits over chemical adhesives or standardizing fasteners by visualizing their impact on disassembly time, component purity for recycling, and overall carbon footprint [7, 8]. The proposed framework addresses significant sub-themes of the conference, including Technology, AI & Sustainability through data integration, Sustainable Management Practices via improved decision-making, and Future Challenges & Innovations in circular economy implementation. This research concludes that the synergy of Digital Thread and LCA is pivotal for transitioning DfD from a qualitative guideline to a quantifiable, optimized, and digitally-enabled standard practice in 21st-century sustainable manufacturing [9, 10].
References
Bocken, N. M. P., et al. (2016). Product design and business model strategies for a circular economy. Journal of Industrial and Production Engineering, 33(5), 308-320.
Boothroyd, G., Dewhurst, P., & Knight, W. A. (2011). Product Design for Manufacture and Assembly. CRC Press.
Bovea, M. D., & Pérez-Belis, V. (2012). A taxonomy of ecodesign tools for integrating environmental requirements into the product design process. Journal of Cleaner Production, 20(1), 61-71.
Chahal, D., & Rani, A. (2024). Productive and decent work employment opportunities: Reflections of Sustainable Development Goal 8. Journal Space and Culture, India, 11, 90-101.
Chaudhary, D., Singh, J., Singh, J., Chahal, J., & Molla, K. Z. (2024, March). Data analytics to find impact of religion on tourism in India. In AIP Conference Proceedings (Vol. 2816, No. 1, p. 110002). AIP Publishing LLC.
Desai, A., & Mital, A. (2003). Evaluation of disassemblability to enable design for disassembly in mass production. International Journal of Industrial Ergonomics, 32(4), 265-281.
Dwivedi, R., & Hasan, N. (2025). Enhancing brand awareness and loyalty through gamification in the metaverse. In Addressing Practical Problems Through the Metaverse and Game-Inspired Mechanics (pp. 259-288). IGI Global Scientific Publishing.
Ellen MacArthur Foundation. (2015). Towards a Circular Economy: Business rationale for an accelerated transition.
European Commission. (2020). Circular Economy Action Plan.
European Commission. (2022). Proposal for a Regulation on Ecodesign for Sustainable Products.
Finnveden, G., et al. (2009). Recent developments in Life Cycle Assessment. Journal of Environmental Management, 91(1), 1-21.
Ghazilla, R. A. R., et al. (2015). Design for Assembly and Disassembly: A review and framework for future research. Journal of Cleaner Production, 108, 1-17.
Hasan N, Agarwal C, Joshi A, Rahal D, Traisa R, Sharma S (2025;), "The two-way influence of green banking practices and green electronic word of mouth in driving green trust and green loyalty: a trust transfer perspective". International Journal of Ethics and Systems, Vol. ahead-of-print No. ahead-of-print. https://doi.org/10.1108/IJOES-10-2024-0326
Hasan, N., Nanda, S., Agarwal, M.K. et al. Evaluating the mediating effect of financial literacy between fintech adoption in microfinance services. Int J Syst Assur Eng Manag (2024). https://doi.org/10.1007/s13198-024-02256-4
Hasan, N., Singh, A. K., & Dwivedi, R. (2024). Determinants of FinTech adoption by microfinance institutions in India to increase efficiency and productivity. International Journal of Business Innovation and Research, 35(3), 393–411. https://doi.org/10.1504/IJBIR.2024.142306
Hasan, N., Singh, A. K., & Tariq, H. (2020). Sustainability and outreach of microfinance institutions in India. Shodh Sarita, 9(7). http://shabdbooks.com/Vol-9-Issue-7-2020/
Hauschild, M. Z., Rosenbaum, R. K., & Olsen, S. I. (2018). Life Cycle Assessment: Theory and Practice. Springer.
ISO 14040:2006. Environmental management — Life cycle assessment — Principles and framework.
Kärkkäinen, M., et al. (2021). Digital Thread for Sustainable Manufacturing: A review and future directions. Journal of Manufacturing Systems, 60, 1-15.
Li, J., et al. (2020). Artificial intelligence in disassembly sequence planning: A review. Robotics and Computer-Integrated
Madni, A. M., Madni, C. C., & Lucero, S. D. (2019). Leveraging Digital Twin Technology in Model-Based Systems Engineering. Systems, 7(1), 7.
Singh, K., Nagpal, N., Midha, S., & Chahal, D. (2025). A Shorter Version of the Happiness-Increasing Strategies Scale in the Indian Context. SAGE Open, 15(2), 21582440251336511.
Stark, J. (2022). Digital Thread and Digital Twin: Defined. In Digital Transformation.
Tao, F., et al. (2018). Digital Twin in industry: State-of-the-art. IEEE Transactions on Industrial Informatics, 15(4), 2405-2415.
Umeda, Y., et al. (2008). Development of disassembly support system for electric motor using 3D CAD and database. CIRP Annals, 57(1), 9-12.
Vongbunyong, S., & Kara, S. (2015). Disassembly Automation. Springer.
Wadhawan,D.N., C. S. A. K.(2023). The evolving landscape of digital marketing: Trends, impacts, and opportunities in India. Journal of Data Acquisition and Processing, 38(2), 2157–2168.
Wadhawan,N., R. K. A. (2020). Understanding e-commerce: A study with reference to competitive economy. Journal of Critical Reviews, 7(8), 805–809.
Downloads
How to Cite
Issue
Section
License

This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.




