Towards an integrative approach for ecodesign principles and sustainable material selection
A systematic literature review to explore scholarly contributions at the intersection of materials, sustainable design and household appliances
DOI:
https://doi.org/10.54337/plate2025-10395Keywords:
Ecodesign, Design for Sustainability, Sustainable Materials, Materials selection, Household AppliancesAbstract
Through a systematic literature review the scholarly contributions at the intersection of ecodesign, sustainable material selection, and the household appliance sector are explored. A comprehensive search was conducted on the Scopus database, yielding 181 initial results, which were narrowed down to 52 relevant documents for in-depth analysis. Notably, the review revealed a growing research interest in these areas, particularly since 2015, reflecting broader industry trends towards circular and sustainable production models. Key findings include the identification of eco-innovation drivers, approaches for sustainable product design and assessment, and the importance of validating research outcomes through real-world case studies. The analysis also pointed out an evolution in sustainable design strategies and material selection focus, shifting from sole materials recycling towards durability, repair and life-extension. Some overarching themes emerged across the reviewed documents, including the application of Life-Cycle-Thinking approaches together with LCA-based methods and a general push to foster the implementation of ecodesign strategies in early design phases to maximize their effectiveness. The review also allowed to identify and visualize a network of scholars focused on appliance-related research works. A significant finding is the relative scarcity of research that effectively aim at integrating ecodesign and material selection specifically for the appliance industry.
References
Anjumol, K. S., Sreenivasan, S. N., Tom, T., Mathew, S. S., Maria, H. J., Spatenka, P., & Thomas, S. (2022). Development of natural fiber-reinforced flame-retardant polymer composites. In Bio-Based Flame-Retardant Technology for Polymeric Materials(pp. 369-389). Elsevier https://doi.org/10.1016/B978-0-323-90771-2.00010-9
Ardente, F., Pastor, M. C., Mathieux, F., & Peiró, L. T. (2015). Analysis of end-of-life treatments of commercial refrigerating appliances: Bridging product and waste policies. Resources, Conservation and Recycling, 101, 42-52 https://doi.org/10.1016/j.resconrec.2015.05.005
Ashby, M. F. (2022). Materials and sustainable development. Butterworth-Heinemann
Ashby, M. F. (2012). Materials and the environment: eco-informed material choice. Elsevier
Ashby, M. F., & Johnson, K. (2013). Materials and design: the art and science of material selection in product design. Butterworth-Heinemann. pp. 133-139
Ashby, M. F. (2005). Materials Selection in Mechanical Design. Elsevier Science
Allwood, J. M., Ashby, M. F., Gutowski, T. G., & Worrell, E. (2011). Material efficiency: A white paper. Resources, conservation and recycling, 55(3), 362-381 https://doi.org/10.1016/j.resconrec.2010.11.002
Bakirlioğlu, Y., & Doğan, Ç. (2020). Exploring product/part longevity in open design of small kitchen appliances. The Design Journal, 23(6), 885-905 https://doi.org/10.1080/14606925.2020.1826635
Bakker, C. A., Den Hollander, M. C., Van Hinte, E., & Zijlstra, Y. (2014). Products that last: Product design for circular business models. TU Delft Library
Basso, M., Simonato, M., Furlanetto, R., & De Nardo, L. (2017). Study of chemical environments for washing and descaling of food processing appliances: An insight in commercial cleaning products. Journal of Industrial and Engineering Chemistry, 53, 23-36 https://doi.org/10.1016/j.jiec.2017.03.041
Bhamra, T., & Lofthouse, V. (2016). Design for sustainability: a practical approach. Routledge
Bocken, N. M. P., de Pauw, I., Bakker, C., & van der Grinten, B. (2016). Product design and business model strategies for a circular economy, Journal of Industrial and Production Engineering, 33(5), 308– 320. doi:10.1080/21681015.2016.1172124
Boix Rodríguez, N., & Favi, C. (2022). Disassembly analysis of gas cooktops: towards eco-design rules for product repairability. In International Design Engineering Technical Conferences and Computers and Information in Engineering Conference (Vol. 86250). American Society of Mechanical Engineers https://doi.org/10.1115/DETC2022-89860
Boix Rodríguez, N., & Favi, C. (2023). De-manufacturing Analysis for Product Repairability and Serviceability in Cooking Systems. In Proceedings of the Changeable, Agile, Reconfigurable and Virtual Production Conference and the World Mass Customization & Personalization Conference (pp. 452-460). Springer International Publishing https://doi.org/10.1007/978-3-031-34821-1_49
Bompan, E., Brambilla, I. (2016). Che cosa è l’economia circolare. Milano: Edizioni Ambiente
Boyano, A., Espinosa, N., & Villanueva, A. (2020). Rescaling the energy label for washing machines: an opportunity to bring technology development and consumer behaviour closer together. Energy Efficiency, 13, 51-67 https://doi.org/10.1007/s12053-019-09829-4
Bracquené, E., Peeters, J., Alfieri, F., Sanfelix, J., Duflou, J., Dewulf, W., & Cordella, M. (2021). Analysis of evaluation systems for product repairability: A case study for washing machines. Journal of Cleaner Production, 281, 125122 https://doi.org/10.1016/j.jclepro.2020.125122
Ceschin, F., & Gaziulusoy, İ. (2019). Design for sustainability: A multi-level framework from products to socio-technical systems. Routledge. pp. 12-22 https://doi.org/10.4324/9780429456510
Clark, G., Kosoris, J., Hong, L. N., & Crul, M. (2009). Design for sustainability: current trends in sustainable product design and development. Sustainability, 1(3), 409-424 https://doi.org/10.3390/su1030409
Collado-Ruiz, D., Bastante-Ceca, M. J., Viñoles-Cebolla, R., & Capuz-Rizo, S. F. (2007). Identification of Common Strategies for Different Electric and Electronic Equipment in Order to Optimize their End-of-Life. In DS 42: Proceedings of ICED 2007, the 16th International Conference on Engineering Design, Paris, France, 28.-31.07. 2007 (pp. 147-148)
Dostatni, E., Diakun, J., Grajewski, D., Wichniarek, R., & Karwasz, A. (2015a). Functionality assessment of ecodesign support system. Management and Production Engineering Review, 6(1), 10-15 DOI: 10.1515/mper-2015-0002
Dostatni, E., Diakun, J., Grajewski, D., Wichniarek, R., & Karwasz, A. (2015b). Multi-agent system to support decision-making process in ecodesign. In 10th international conference on soft computing models in industrial and environmental applications (pp. 463-474). Springer International Publishing https://doi.org/10.1007/s00500-016-2302-z
Dostatni, E., Diakun, J., Wichniarek, R., Karwasz, A., & Grajewski, D. (2018). Product variants recycling cost estimation with the use of multi-agent support system. In Advances in Manufacturing (pp. 311-320). Springer International Publishing DOI: 10.1007/978-3-319-68619-6_30
Dostatni, E., Mikołajewski, D., Dorożyński, J., & Rojek, I. (2022). Ecological design with the use of selected inventive methods including AI-based. Applied Sciences, 12(19), 9577 https://doi.org/10.3390/app12199577
Dostatni, E., Rojek, I., Szczap, P., & Tomczuk, M. (2019). Inventive Methods in Designing an Environmentally Friendly Household Appliance. In Innovation, Engineering and Entrepreneurship (pp. 347-353). Springer International Publishing https://doi.org/10.1007/978-3-319-91334-6_47
Dudkowiak, A., Grajewski, D., & Dostatni, E. (2021). Analysis of selected IT tools supporting eco-design in the 3D CAD environment. IEEE Access, 9, 134945-134956 DOI: 10.1109/ACCESS.2021.3116469
Ellen MacArthur Foundation. (2015). Towards a circular economy: Business rationale for an accelerated transition. https://www.ellenmacarthurfoundation.org/towards-a-circular-economy-business-rationale-for-an-accelerated-transition
European Commission. (2023). Ecodesign for Sustainable Products Regulation. European Commission. https://commission.europa.eu/energy-climate-change-environment/standards-tools-and-labels/products-labelling-rules-and-requirements/ecodesign-sustainable-products-regulation_en
European Parliament. (2024, April 23). Right to repair: Making repair easier and more appealing to consumers | News | European Parliament. www.europarl.europa.eu. https://www.europarl.europa.eu/news/en/press-room/20240419IPR20590/right-to-repair-making-repair-easier-and-more-appealing-to-consumers
Favi, C., & Germani, M. (2012). A method to optimize assemblability of industrial product in early design phase: from product architecture to assembly sequence. International Journal on Interactive Design and Manufacturing (IJIDeM), 6, 155-169 DOI: 10.1007/s12008-012-0147-y
Favi, C., Formentini, G., & Rodríguez, N. B. (2020). Eco-design of cooking appliances based on food habits and diets. Procedia CIRP, 90, 372-376 DOI: 10.1016/j.procir.2020.02.054
Favi, C., Germani, M., Mandolini, M., & Marconi, M. (2016). Includes knowledge of dismantling centers in the early design phase: a knowledge-based design for disassembly approach. Procedia Cirp, 48, 401-406 https://doi.org/10.1016/j.procir.2016.03.242
Favi, C., Germani, M., Mandolini, M., & Marconi, M. (2018). Implementation of a software platform to support an eco-design methodology within a manufacturing firm. International Journal of Sustainable Engineering, 11(2), 79-96 DOI: 10.1080/19397038.2018.1439121
Favi, C., Landi, D., Garziera, R., & Rossi, M. (2024). Fostering Design for Sustainability through the Adoption of Computer-Aided Engineering Tools in the Development of Energy-Related Products. Sustainability, 16(9), 3516 DOI: 10.3390/su16093516
Fiore, E., Tamborrini, P., & Norese, M. F. (2016, September). Designing major appliances: A decision support model. In 2016 Electronics Goes Green 2016 (EGG) (pp. 1-8). IEEE DOI: 10.1109/EGG.2016.7829816
Germani, M., Dufrene, M., Mandolini, M., Marconi, M., & Zwolinski, P. (2013). Integrated software platform for green engineering design and product sustainability. In Re-engineering Manufacturing for Sustainability: Proceedings of the 20th CIRP International Conference on Life Cycle Engineering, Singapore 17-19 April, 2013 (pp. 87-92). Springer Singapore DOI: 10.1007/978-981-4451-48-2_14
Germani, M., Mandolini, M., Marconi, M., & Rossi, M. (2015). Usability demonstration of the G. EN. ESI eco-design platform: the cooker hood case study. In International Design Engineering Technical Conferences and Computers and Information in Engineering Conference (Vol. 57113). American Society of Mechanical Engineers DOI: 10.1115/DETC2015-46361
Guo, A. H. (2014). Research and Exploration on Green Design of Household Electrical Appliances. Advanced Materials Research, 945, 531-534 DOI: 10.4028/www.scientific.net/AMR.945-949.531
Genovesi, E., Pellizzari A. (a cura di) (2021). Neomateriali nell’economia circolare 2.0. Milano: EdizioniAmbiente
Holt, R., & Barnes, C. (2010). Towards an integrated approach to “Design for X”: an agenda for decision-based DFX research. Research in engineering design, 21, 123-136 DOI: 10.1007/s00163-009-0081-6
Italia, M. (2024). Guiding sustainable transition in organisation through design : a framework to promote solutions that foster transition and transform corporate culture towards sustainability [Doctoral dissertation, Politecnico di Milano]. https://hdl.handle.net/10589/221492
Italia, M., Papile, F., Santi, R., & Del Curto, B. (2023). Sustainable Material Selection Framework: Taxonomy and Systematisation of Design Approaches to Sustainable Material Selection. Sustainability, 15(24), 16689 DOI: 10.3390/su152416689
Johansson, J., & Luttropp, C. (2006). Material Hygiene, An EcoDesign Mindset for Optimized Material Use. Proceedings of 13th CIRP Life Cycle Engineering 2006 volume 2, 389-392
Kara, S., Kaebernick, H., & Ibbotson, S. (2006). Using design for environment for redesigning a household appliance. In Innovation in Life Cycle Engineering and Sustainable Development (pp. 293-302). Springer Netherlands DOI: 10.1007/1-4020-4617-0_20
Karagiannopoulos, P. S., Manousakis, N. M., & Psomopoulos, C. S. (2023). “3R” practices focused on home appliances sector in terms of green consumerism: principles, technical dimensions and future challenges. IEEE Transactions on Consumer Electronics https://doi.org/10.1109/TCE.2023.3318874
Kaushik, D., Singh, H., & Tassou, S. A. (2024). Vacuum insulation panels for high-temperature applications–Design principles, challenges and pathways. Thermal Science and Engineering Progress, 102415 DOI: 10.1016/j.tsep.2024.102415
Kuo, T. C., & Hsin-Hung, W. (2005). Fuzzy eco-design product development by using quality function deployment. In 2005 4th International Symposium on Environmentally Conscious Design and Inverse Manufacturing(pp. 422-429). IEEE DOI: 10.1109/ECODIM.2005.1619260
Landi, D., & Cicconi, P. (2022). An approach for the responsible design of the packaging employed in household appliances. In International Conference on Design, Simulation, Manufacturing: The Innovation Exchange (pp. 381-389). Cham: Springer International Publishing DOI: 10.1007/978-3-030-91234-5_39
Landi, D., Cicconi, P., & Germani, M. (2020a). Analyzing the environmental sustainability of packaging for household appliances: A test case. Procedia CIRP, 90, 355-360 https://doi.org/10.1016/j.procir.2020.01.106
Landi, D., Cicconi, P., Germani, M., & Russo, A. C. (2016). A methodological approach to support the design of induction hobs. In ASME International Mechanical Engineering Congress and Exposition (Vol. 50657). American Society of Mechanical Engineers DOI: 10.1115/IMECE2016-65661
Landi, D., Rossi, M., Favi, C., Brunzini, A., & Germani, M. (2020b). A virtual design approach to simulate the hob energy performance. Computer-Aided Design and Applications, 17(5) DOI: 10.14733/cadconfP.2019.127-131
Luttropp, C., Johansson, J., Vilaplana, F., Strömberg, E., & Karlsson, S. (2010). Design for material hygiene-An ecodesign strategy for improved recycling of polymers. In 8th International Symposium on Tools and Methods of Competitive Engineering, TMCE 2010; Ancona; 12 April 2010 through 16 April 2010 (pp. 1223-1231)
Ministero dell'Università e della Ricerca. (2023). Investimento 3.3 - Introduzione di dott. innovativi che rispondono ai fabbisogni di innovazione delle imprese e promuovono l'assunzione dei ric. da parte delle imprese. Retrieved November 2, 2024, from https://www.mur.gov.it/it/pnrr/misure-e-componenti/m4c2/investimento-33-introduzione-di-dott-innovativi-che
Moreno, M., De los Rios, C., Rowe, Z., & Charnley, F. (2016). A conceptual framework for circular design. Sustainability, 8(9), 937 DOI: 10.3390/su8090937
Ng, C. Y., & Chuah, K. B. (2012). Effect of material selection on the life cycle assessment of environmental impact. Advanced Materials Research, 383, 3387-3394 DOI: 10.4028/www.scientific.net/AMR.383-390.3387
Nieto, D. M., Pintos, P. B., Sánchez, D. M., & Rubio, S. I. M. (2022). Large Format Additive Manufacturing in Furniture Design with Novel Cork Based Polymeric Materials. In International conference on The Digital Transformation in the Graphic Engineering (pp. 477-489). Cham: Springer International Publishing https://doi.org/10.1007/978-3-031-20325-1_38
Page, M. J., McKenzie, J. E., Bossuyt, P. M., Boutron, I., Hoffmann, T. C., Mulrow, C. D., ... & Moher, D. (2021). The PRISMA 2020 statement: an updated guideline for reporting systematic reviews. bmj, 372
Papetti, A., Germani, M., Marconi, M., & Favi, C. (2017). Lifecycle tools as a support for the eco-design innovation of domestic appliances. In International Design Engineering Technical Conferences and Computers and Information in Engineering Conference (Vol. 58165). American Society of Mechanical Engineers https://doi.org/10.1115/DETC2017-68141
Papile, F. (2022). O.S.M.O.S.I.S. Methods and tools to reframe material selection. A cooperative approach for industrial companies towards sustainable transition [Doctoral dissertation, Politecnico di Milano]. https://hdl.handle.net/10589/188693
Papile, F., Del Curto, B., Coccia, A. (2020). System thinking & synthesis mapping to manage product material selection process. Proceedings of Relating Systems Thinking and Design RSD9 Symposium, NID Ahmedabad. In: Systemic Design for Well-Being: From human to humane. Peter Jones
Pérez-Belis, V., Bakker, C., Juan, P., & Bovea, M. D. (2017). Environmental performance of alternative end-of-life scenarios for electrical and electronic equipment: a case study for vacuum cleaners. Journal of Cleaner Production, 159, 158-170 https://doi.org/10.1016/j.jclepro.2017.05.032
Peruzzini, M., Raffaeli, R., Malatesta, M., & Germani, M. (2017). Toward a function-based IT platform for variants redesign of household appliances. AI EDAM, 31(4), 512-534 DOI: 10.1017/S089006041700042
Peters, H. A., Toxopeus, M. E., Jauregui-Becker, J. M., & Dirksen, M. O. (2012). Prioritizing ‘Design for Recyclability’guidelines, bridging the gap between recyclers and product developers. In Leveraging Technology for a Sustainable World: Proceedings of the 19th CIRP Conference on Life Cycle Engineering, University of California at Berkeley, Berkeley, USA, May 23-25, 2012 (pp. 203-208). Springer Berlin Heidelberg DOI: 10.1007/978-3-642-29069-5_35
Pigosso, D .C. A., Rozenfeld, H., & McAloone, T. C. (2013). Ecodesign maturity model: A management framework to support ecodesign implementation into manufacturing companies. Journal of Cleaner Production, 59, 160– 173 https://doi.org/10.1016/j.jclepro.2013.06.040
Piselli, A. (2018). Material selection in the professional appliances industry. Methods and tools for evaluating sensory criteria and aesthetic obsolescence of materials [Doctoral dissertation, Politecnico di Milano]. https://hdl.handle.net/10589/137861
Piselli, A., Baxter, W., Simonato, M., Del Curto, B., & Aurisicchio, M. (2018). Development and evaluation of a methodology to integrate technical and sensorial properties in materials selection. Materials & Design, 153, 259-272 https://doi.org/10.1016/j.matdes.2018.04.081
Piselli, A., Simonato, M., & Del Curto, B. (2016). Holistic approach to materials selection in professional appliances industry. In DS 84: Proceedings of the DESIGN 2016 14th International design conference (pp. 865-874)
Postacchini, L., Cicconi, P., Ciarapica, F. E., Germani, M., & Bevilacqua, M. (2021). A design method for improving assembly and environmental sustainability in packaging solutions: A case study in household appliances. International Journal of Sustainable Engineering, 14(4), 574-589 https://doi.org/10.1080/19397038.2021.1920644
Poblete, S. S. D., Romani, A., & Rognoli, V. (2024). Emerging materials for transition: A taxonomy proposal from a design perspective. Sustainable Futures, 7, 100155 DOI: 10.1016/j.sftr.2024.100155
Rodríguez, N. B., & Favi, C. (2022). Eco-design guidelines takeaways from the analysis of product repairability and ease of disassembly: a case study for electric ovens. Procedia CIRP, 105, 595-600 DOI: 10.1016/j.procir.2022.02.099
Rodríguez, N. B., & Favi, C. (2023). Life Cycle Impact Assessment of Mechatronic Products: Towards Engineering Eco-Design for Hobs Technologies. In International Conference of the Italian Association of Design Methods and Tools for Industrial Engineering (pp. 100-107). Cham: Springer Nature Switzerland DOI: 10.1007/978-3-031-58094-9_12
Rodríguez, N. B., Gabriel, C., Gaha, R., & Favi, C. (2023). Analysis of disassembly parameters in repairability scores: limitations for engineering design and suggestions for improvement. Procedia CIRP, 116, 738-743 DOI: 10.1016/j.procir.2023.02.124
Rotondo, B., & Arquilla, V. (2024). Exploring the role of design in the new product development process towards circular business innovation: Systematic literature review and future directions https://doi.org/10.21606/drs.2024.492
Skorup, D., Rozing, G., Heffer, G., & Vidaković, I. (2022). Product life cycle analysis on the example of a home appliance. In 30th International Conference on Organization and Technology of Maintenance (OTO 2021) Proceedings of 30th International Conference on Organization and Technology of Maintenance (OTO 2021) (pp. 217-227). Springer International Publishing DOI: 10.1007/978-3-030-92851-3_16
Uhrenholt, J. N., Kristensen, J. H., Rincón, M. C., Adamsen, S., Jensen, S. F., & Waehrens, B. V. (2022). Maturity model as a driver for circular economy transformation. Sustainability, 14(12), 7483 https://doi.org/10.3390/su14127483
Vezzoli, C.; Manzini, E. Design for Environmental Sustainability; Springer: London, UK, 2008
Wichniarek, R., Grajewski, D., Diakun, J., Dostatni, E., & Karwasz, A. (2018). Automatization of the ecodesign process of small household appliances based on CAD 3D system. Tehnički vjesnik, 25(1), 18-25 DOI: 10.17559/TV-20160602135201
Withanage, C., Hölttä-Otto, K., Otto, K., & Wood, K. (2016). Design for sustainable use of appliances: A framework based on user behavior observations. Journal of Mechanical Design, 138(10), 101102 https://doi.org/10.1115/1.4034084
Zhao, C., Peng, Q., Gu, P., & Zhang, Z. Y. (2013). Module development method for Open architecture product using extended QFD. CIE43 proceedings, 16-18
Zong, J., Tian, J., Gao, D., & Zhang, X. (2019). Guidelines for green design of cooking appliances. In E3S Web of Conferences (Vol. 118, p. 02003). EDP Science https://doi.org/10.1051/e3sconf/201911802003