Sustainable Technologies Supported by Project-Based Learning in the Education of Engineers: A Case Study from Poland
Abstract
:1. Introduction
2. Literature Review
2.1. Sustainable Development Goals
- Research question 1: What Sustainable Development Goals are considered in PBL?
- Research question 2: Which specialists are interested in each of the Sustainable Development Goals?
- Research question 3: What are the characteristic technological terms of individual projects in relation to the goal pursued?
2.2. Sustainable Business Models
- Research question 4: What archetypes of sustainable business models can be classified as PBL innovations?
- Research question 5: Which specialists initiate innovations related to particular archetypes of the sustainable business model?
3. Materials and Methods
3.1. Subject of the Research
3.2. Sample
3.3. Data Collection
3.4. Data Analysis
4. Results
4.1. Analysis of Projects in Terms of SDGs
4.1.1. Goals Implemented in Projects
4.1.2. Sustainable Development Goals and Research Areas
4.1.3. Sustainable Development Goals and the Characteristic Technological Terms of Projects
4.2. Analysis of Projects in Terms of Archetypes of Sustainable Business Models
4.2.1. Archetypes of Sustainable Business Models in Researched Projects
4.2.2. SBM Archetypes and Research Areas
5. Discussion
5.1. Implication for Research and Practice
5.2. Limitation
5.3. Information about Ethics
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
References
- Garetti, M.; Taisch, M. Sustainable Manufacturing: Trends and Research Challenges. Prod. Plan. Control 2012, 23, 83–104. [Google Scholar] [CrossRef]
- Fuenfschilling, L.; Binz, C. Global Socio-Technical Regimes. Res. Policy 2018, 47, 735–749. [Google Scholar] [CrossRef] [Green Version]
- Gliedt, T.; Hoicka, C.E.; Jackson, N. Innovation Intermediaries Accelerating Environmental Sustainability Transitions. J. Clean. Prod. 2018, 174, 1247–1261. [Google Scholar] [CrossRef]
- Mclellan, R.; Iyengar, L.; Jeffries, B.; Oerlemans, N. Living Planet Report 2014: Species and Spaces, People and Places. Available online: http://assets.worldwildlife.org/publications/723/files/original/WWF-LPR2014-low_res.pdf?1413912230&_ga=2.214706711.1045335649.1637157758-622592287.1637157758 (accessed on 23 November 2021).
- Sterling, S. Higher Education, Sustainability, and the Role of Systemic Learning. In Higher Education and the Challenge of Sustainability; Corcoran, P.B., Wals, A.E.J., Eds.; Kluwer Academic Publishers: Dordrecht, The Netherlands, 2004; pp. 49–70. ISBN 978-1-4020-2026-1. [Google Scholar]
- McKibben, B. Deep Economy: The Wealth of Communities and the Durable Future; Times Books: New York, NY, USA, 2008; ISBN 978-0-8050-8722-2. [Google Scholar]
- Azevedo, S.G.; Brandenburg, M.; Carvalho, H.; Cruz-Machado, V. (Eds.) Eco-Innovation and the Development of Business Models: Lessons from Experience and New Frontiers in Theory and Practice; Springer International Publishing: Cham, Switzerland, 2014; ISBN 978-3-319-05076-8. [Google Scholar]
- Huesemann, M.H. The Limits of Technological Solutions to Sustainable Development. Clean Technol. Environ. Policy 2003, 5, 21–34. [Google Scholar] [CrossRef]
- Hellström, T. Dimensions of Environmentally Sustainable Innovation: The Structure of Eco-Innovation Concepts. Sustain. Dev. 2007, 15, 148–159. [Google Scholar] [CrossRef]
- Adams, R.; Jeanrenaud, S.; Bessant, J.; Denyer, D.; Overy, P. Sustainability-Oriented Innovation: A Systematic Review: Sustainability-Oriented Innovation. Int. J. Manag. Rev. 2016, 18, 180–205. [Google Scholar] [CrossRef]
- Geissdoerfer, M.; Savaget, P.; Bocken, N.M.P.; Hultink, E.J. The Circular Economy–A New Sustainability Paradigm? J. Clean. Prod. 2017, 143, 757–768. [Google Scholar] [CrossRef] [Green Version]
- Benson, D.; Gain, A.K.; Giupponi, C. Moving beyond Water Centricity? Conceptualizing Integrated Water Resources Management for Implementing Sustainable Development Goals. Sustain. Sci. 2020, 15, 671–681. [Google Scholar] [CrossRef]
- Nshimbi, C.C. SDGs and Decentralizing Water Management for Transformation: Normative Policy Coherence for Water Security in SADC River Basin Organizations. Phys. Chem. Earth Parts ABC 2019, 111, 1–12. [Google Scholar] [CrossRef]
- Kuo, T.-C.; Smith, S. A Systematic Review of Technologies Involving Eco-Innovation for Enterprises Moving towards Sustainability. J. Clean. Prod. 2018, 192, 207–220. [Google Scholar] [CrossRef]
- Machado, C.G.; Winroth, M.P.; Ribeiro da Silva, E.H.D. Sustainable Manufacturing in Industry 4.0: An Emerging Research Agenda. Int. J. Prod. Res. 2020, 58, 1462–1484. [Google Scholar] [CrossRef]
- Vargas, V.R.; Lawthom, R.; Prowse, A.; Randles, S.; Tzoulas, K. Implications of Vertical Policy Integration for Sustainable Development Implementation in Higher Education Institutions. J. Clean. Prod. 2019, 235, 733–740. [Google Scholar] [CrossRef]
- Radinger-Peer, V.; Pflitsch, G. The Role of Higher Education Institutions in Regional Transition Paths towards Sustainability: The Case of Linz (Austria). Rev. Reg. Res. 2017, 37, 161–187. [Google Scholar] [CrossRef]
- Aleixo, A.M.; Leal, S.; Azeiteiro, U.M. Higher Education Students’ Perceptions of Sustainable Development in Portugal. J. Clean. Prod. 2021, 327, 129429. [Google Scholar] [CrossRef]
- Manolis, E.N.; Manoli, E.N. Raising Awareness of the Sustainable Development Goals through Ecological Projects in Higher Education. J. Clean. Prod. 2021, 279, 123614. [Google Scholar] [CrossRef]
- Tierney, A.; Tweddell, H.; Willmore, C. Measuring Education for Sustainable Development: Experiences from the University of Bristol. Int. J. Sustain. High. Educ. 2015, 16, 507–522. [Google Scholar] [CrossRef]
- Cebrián, G.; Grace, M.; Humphris, D. Academic Staff Engagement in Education for Sustainable Development. J. Clean. Prod. 2015, 106, 79–86. [Google Scholar] [CrossRef]
- Lozano, R.; Ceulemans, K.; Alonso-Almeida, M.; Huisingh, D.; Lozano, F.J.; Waas, T.; Lambrechts, W.; Lukman, R.; Hugé, J. A Review of Commitment and Implementation of Sustainable Development in Higher Education: Results from a Worldwide Survey. J. Clean. Prod. 2015, 108, 1–18. [Google Scholar] [CrossRef]
- Ramísio, P.J.; Pinto, L.M.C.; Gouveia, N.; Costa, H.; Arezes, D. Sustainability Strategy in Higher Education Institutions: Lessons Learned from a Nine-Year Case Study. J. Clean. Prod. 2019, 222, 300–309. [Google Scholar] [CrossRef]
- He, J.; Ortiz, J. Sustainable Business Modeling: The Need for Innovative Design Thinking. J. Clean. Prod. 2021, 298, 126751. [Google Scholar] [CrossRef]
- Robert, K.W.; Parris, T.M.; Leiserowitz, A.A. What Is Sustainable Development? Goals, Indicators, Values, and Practice. Environ. Sci. Policy Sustain. Dev. 2005, 47, 8–21. [Google Scholar] [CrossRef]
- Lee, K.N. Compass and Gyroscope: Integrating Science and Politics for the Environment; Island Press: Washington, DC, USA, 1993; ISBN 978-1-55963-198-3. [Google Scholar]
- Sartori, S.; Latrônico, F.; Campos, L.M.S. Sustainability and Sustainable Development: A Taxonomy in the Field of Literature. Ambiente Soc. 2014, 17, 1–22. [Google Scholar] [CrossRef]
- Khan, I.S.; Ahmad, M.O.; Majava, J. Industry 4.0 and Sustainable Development: A Systematic Mapping of Triple Bottom Line, Circular Economy and Sustainable Business Models Perspectives. J. Clean. Prod. 2021, 297, 126655. [Google Scholar] [CrossRef]
- UNITED NATIONS Transforming Our World: The 2030 Agenda for Sustainable Development. Available online: https://sustainabledevelopment.un.org/content/documents/21252030%20Agenda%20for%20Sustainable%20Development%20web.pdf (accessed on 23 November 2021).
- Schulz, S.A.; Flanigan, R.L. Developing Competitive Advantage Using the Triple Bottom Line: A Conceptual Framework. J. Bus. Ind. Mark. 2016, 31, 449–458. [Google Scholar] [CrossRef]
- Hubbard, G. Measuring Organizational Performance: Beyond the Triple Bottom Line. Bus. Strategy Environ. 2009, 18, 177–191. [Google Scholar] [CrossRef]
- Norman, W.; MacDonald, C. Getting to the Bottom of “Triple Bottom Line”. Bus. Ethics Q. 2004, 14, 243–262. [Google Scholar] [CrossRef] [Green Version]
- Ferrer-Estévez, M.; Chalmeta, R. Integrating Sustainable Development Goals in Educational Institutions. Int. J. Manag. Educ. 2021, 19, 100494. [Google Scholar] [CrossRef]
- Venkatesh, G. Sustainable Development Goals–Quo Vadis, Cities of the World? Probl. Ekorozw. 2021, 16, 171–179. [Google Scholar] [CrossRef]
- Estoque, R.C.; Ooba, M.; Togawa, T.; Hijioka, Y.; Murayama, Y. Monitoring Global Land-Use Efficiency in the Context of the UN 2030 Agenda for Sustainable Development. Habitat Int. 2021, 115, 102403. [Google Scholar] [CrossRef]
- Sachs, J.; Schmidt-Traub, G.; Kroll, C.; Lafortune, G.; Fuller, G. Sustainable Development Report 2019: Transformations to Achieve the Sustainable Development Goals-Includes the SDG Index and Dashboards. Available online: https://s3.amazonaws.com/sustainabledevelopment.report/2019/2019_sustainable_development_report.pdf (accessed on 23 November 2021).
- Xu, Z.; Chau, S.N.; Chen, X.; Zhang, J.; Li, Y.; Dietz, T.; Wang, J.; Winkler, J.A.; Fan, F.; Huang, B.; et al. Assessing Progress towards Sustainable Development over Space and Time. Nature 2020, 577, 74–78. [Google Scholar] [CrossRef]
- Estoque, R. A Review of the Sustainability Concept and the State of SDG Monitoring Using Remote Sensing. Remote Sens. 2020, 12, 1770. [Google Scholar] [CrossRef]
- Guterres, A. The Sustainable Development Goals Report. Available online: https://unstats.un.org/sdgs/report/2019/The-Sustainable-Development-Goals-Report-2019.pdf (accessed on 23 November 2021).
- Koff, H. Why Serve Soup with a Fork?: How Policy Coherence for Development Can Link Environmental Impact Assessment with the 2030 Agenda for Sustainable Development. Environ. Impact Assess. Rev. 2021, 86, 106477. [Google Scholar] [CrossRef]
- United Nations. The Sustainable Development Goals Report. Available online: https://unstats.un.org/sdgs/files/report/2018/TheSustainableDevelopmentGoalsReport2018-EN.pdf (accessed on 23 November 2021).
- Asadikia, A.; Rajabifard, A.; Kalantari, M. Systematic Prioritisation of SDGs: Machine Learning Approach. World Dev. 2021, 140, 105269. [Google Scholar] [CrossRef]
- Breuer, A.; Janetschek, J.; Malerba, D. Translating Sustainable Development Goal (SDG) Interdependencies into Policy Advice. Sustainability 2019, 11, 2092. [Google Scholar] [CrossRef] [Green Version]
- Nilsson, M.; Griggs, D.; Visbeck, M. Policy: Map the Interactions between Sustainable Development Goals. Nature 2016, 534, 320–322. [Google Scholar] [CrossRef]
- Lozano, R.; Merrill, M.; Sammalisto, K.; Ceulemans, K.; Lozano, F. Connecting Competences and Pedagogical Approaches for Sustainable Development in Higher Education: A Literature Review and Framework Proposal. Sustainability 2017, 9, 1889. [Google Scholar] [CrossRef] [Green Version]
- Franco, I.; Saito, O.; Vaughter, P.; Whereat, J.; Kanie, N.; Takemoto, K. Higher Education for Sustainable Development: Actioning the Global Goals in Policy, Curriculum and Practice. Sustain. Sci. 2019, 14, 1621–1642. [Google Scholar] [CrossRef] [Green Version]
- Wals, A.E.J. Sustainability in Higher Education in the Context of the UN DESD: A Review of Learning and Institutionalization Processes. J. Clean. Prod. 2014, 62, 8–15. [Google Scholar] [CrossRef]
- Lozano, R. Incorporation and Institutionalization of SD into Universities: Breaking through Barriers to Change. J. Clean. Prod. 2006, 14, 787–796. [Google Scholar] [CrossRef]
- Lozano, R.; Lukman, R.; Lozano, F.J.; Huisingh, D.; Lambrechts, W. Declarations for Sustainability in Higher Education: Becoming Better Leaders, through Addressing the University System. J. Clean. Prod. 2013, 48, 10–19. [Google Scholar] [CrossRef]
- Escobar-Tello, M.C.; Bhamra, T. Happiness as a Harmonising Path for Bringing Higher Education towards Sustainability. Environ. Dev. Sustain. 2013, 15, 177–197. [Google Scholar] [CrossRef] [Green Version]
- Alves, J.; Carvalho, L.; Carvalho, R.; Correia, F.; Cunha, J.; Farinha, L.; Fernandes, J.; Ferreira, M.; Lucas, E.; Mourato, J.; et al. The Impact of Polytechnic Institutes on the Local Economy. Tert. Educ. Manag. 2015, 21, 81–98. [Google Scholar] [CrossRef] [Green Version]
- Chen, D.M.; Tucker, B.; Badami, M.G.; Ramankutty, N.; Rhemtulla, J.M. A Multi-Dimensional Metric for Facilitating Sustainable Food Choices in Campus Cafeterias. J. Clean. Prod. 2016, 135, 1351–1362. [Google Scholar] [CrossRef]
- Sammalisto, K.; Sundström, A.; von Haartman, R.; Holm, T.; Yao, Z. Learning about Sustainability—What Influences Students’ Self-Perceived Sustainability Actions after Undergraduate Education? Sustainability 2016, 8, 510. [Google Scholar] [CrossRef] [Green Version]
- Kiron, D. Sustainability Nears a Tipping Point. Strateg. Dir. 2012, 28. [Google Scholar] [CrossRef]
- Ceulemans, K.; Lozano, R.; Alonso-Almeida, M. Sustainability Reporting in Higher Education: Interconnecting the Reporting Process and Organisational Change Management for Sustainability. Sustainability 2015, 7, 8881–8903. [Google Scholar] [CrossRef] [Green Version]
- Rieckmann, M. Future-Oriented Higher Education: Which Key Competencies Should Be Fostered through University Teaching and Learning? Futures 2012, 44, 127–135. [Google Scholar] [CrossRef]
- Cortese, A.D. The Critical Role of Higher Education in Creating a Sustainable Future. Plan. High. Educ. 2003, 31, 15–22. [Google Scholar]
- Brundiers, K.; Wiek, A.; Redman, C.L. Real-world Learning Opportunities in Sustainability: From Classroom into the Real World. Int. J. Sustain. High. Educ. 2010, 11, 308–324. [Google Scholar] [CrossRef] [Green Version]
- Bocken, N.M.P.; Short, S.W.; Rana, P.; Evans, S. A Literature and Practice Review to Develop Sustainable Business Model Archetypes. J. Clean. Prod. 2014, 65, 42–56. [Google Scholar] [CrossRef] [Green Version]
- Schaltegger, S.; Hansen, E.G.; Lüdeke-Freund, F. Business Models for Sustainability: Origins, Present Research, and Future Avenues. Organ. Environ. 2016, 29, 3–10. [Google Scholar] [CrossRef]
- Chertow, M.R. The IPAT Equation and Its Variants. J. Ind. Ecol. 2000, 4, 13–29. [Google Scholar] [CrossRef]
- Wells, P.; Seitz, M. Business Models and Closed-loop Supply Chains: A Typology. Supply Chain Manag. Int. J. 2005, 10, 249–251. [Google Scholar] [CrossRef]
- Hawken, P.; Lovins, A.B.; Lovins, L.H. Natural Capitalism; Routledge: London, UK, 2013; ISBN 978-1-134-03306-5. [Google Scholar]
- Zdonek, I.; Mularczyk, A.; Polok, G. The Idea of Corporate Social Responsibility in the Opinion of Future Managers—Comparative Research between Poland and Georgia. Sustainability 2021, 13, 7045. [Google Scholar] [CrossRef]
- Doherty, B.; Kittipanya-Ngam, P. The Role of Social Enterprise Hybrid Business Models in Inclusive Value Chain Development. Sustainability 2021, 13, 499. [Google Scholar] [CrossRef]
- Mont, O.; Tukker, A. Product-Service Systems: Reviewing Achievements and Refining the Research Agenda. J. Clean. Prod. 2006, 14, 1451–1454. [Google Scholar] [CrossRef]
- Pauli, G. The Blue Economy 3.0: The Marriage of Science, Innovation and Entrepreneurship Creates a New Business Model That Transforms Society; Xlibris Corporation: Bloomington, IN, USA, 2017; ISBN 978-1-5245-2106-6. [Google Scholar]
- Ürge-Vorsatz, D.; Khosla, R.; Bernhardt, R.; Chan, Y.C.; Vérez, D.; Hu, S.; Cabeza, L.F. Advances Toward a Net-Zero Global Building Sector. Annu. Rev. Environ. Resour. 2020, 45, 227–269. [Google Scholar] [CrossRef]
- Abu-Hamdeh, N.H.; Melaibari, A.A.; Alquthami, T.S.; Khoshaim, A.; Oztop, H.F.; Karimipour, A. Efficacy of Incorporating PCM into the Building Envelope on the Energy Saving and AHU Power Usage in Winter. Sustain. Energy Technol. Assess. 2021, 43, 100969. [Google Scholar] [CrossRef]
- Heath, G.A.; Silverman, T.J.; Kempe, M.; Deceglie, M.; Ravikumar, D.; Remo, T.; Cui, H.; Sinha, P.; Libby, C.; Shaw, S.; et al. Research and Development Priorities for Silicon Photovoltaic Module Recycling to Support a Circular Economy. Nat. Energy 2020, 5, 502–510. [Google Scholar] [CrossRef]
- Donner, M.; Gohier, R.; de Vries, H. A New Circular Business Model Typology for Creating Value from Agro-Waste. Sci. Total Environ. 2020, 716, 137065. [Google Scholar] [CrossRef]
- Najm, S.; Matsumoto, K. Does Renewable Energy Substitute LNG International Trade in the Energy Transition? Energy Econ. 2020, 92, 104964. [Google Scholar] [CrossRef]
- Rajendran, M.; Nagarajan, C.K. Experimental Investigation on Bio-Composite Using Jute and Banana Fiber as a Potential Substitute of Solid Wood Based Materials. J. Nat. Fibers 2021, 1–10. [Google Scholar] [CrossRef]
- Barth, H.; Ulvenblad, P.; Ulvenblad, P.-O.; Hoveskog, M. Unpacking Sustainable Business Models in the Swedish Agricultural Sector–the Challenges of Technological, Social and Organisational Innovation. J. Clean. Prod. 2021, 304, 127004. [Google Scholar] [CrossRef]
- Kohtamäki, M.; Parida, V.; Patel, P.C.; Gebauer, H. The Relationship between Digitalization and Servitization: The Role of Servitization in Capturing the Financial Potential of Digitalization. Technol. Forecast. Soc. Change 2020, 151, 119804. [Google Scholar] [CrossRef]
- Tronvoll, B.; Sklyar, A.; Sörhammar, D.; Kowalkowski, C. Transformational Shifts through Digital Servitization. Ind. Mark. Manag. 2020, 89, 293–305. [Google Scholar] [CrossRef]
- Sorribes, J.; Celma, D.; Martínez-Garcia, E. Sustainable Human Resources Management in Crisis Contexts: Interaction of Socially Responsible Labour Practices for the Wellbeing of Employees. Corp. Soc. Responsib. Environ. Manag. 2021, 28, 936–952. [Google Scholar] [CrossRef]
- Yrjölä, M.; Hokkanen, H.; Saarijärvi, H. A Typology of Second-Hand Business Models. J. Mark. Manag. 2021, 37, 761–791. [Google Scholar] [CrossRef]
- Lüdeke-Freund, F.; Carroux, S.; Joyce, A.; Massa, L.; Breuer, H. The Sustainable Business Model Pattern Taxonomy—45 Patterns to Support Sustainability-Oriented Business Model Innovation. Sustain. Prod. Consum. 2018, 15, 145–162. [Google Scholar] [CrossRef]
- Thomas, J.W. A Review of Research on Project-Based-Learning. Available online: http://www.bobpearlman.org/BestPractices/PBL_Research.pdf (accessed on 23 November 2021).
- Van den Bergh, V.; Mortelmans, D.; Spooren, P.; van Petegem, P.; Gijbels, D.; Vanthournout, G. New Assessment Modes Within Project-Based Education-The Stakeholders. Stud. Educ. Eval. 2006, 32, 345–368. [Google Scholar] [CrossRef]
- Dekoninck, E. Enhancing the Innovation Skills in Engineering Students. In Design education for future wellbeing, Proceedings of the 14th International Conference on Engineering and Product Design Education, Antwerp, Belgium, 6–7 September 2012; Institute of Engineering Designers: Westbury, NY, USA, 2012; ISBN 978-1-904670-36-0. [Google Scholar]
- Podgórska, M.; Zdonek, I. How to Initiate Interdisciplinarity in Project-Oriented Teaching? In Proceedings of the 11th Annual International Conference of Education, Research and Innovation, Seville, Spain, 12–14 November 2018; pp. 2985–2989. [Google Scholar]
- Miles, M.B.; Huberman, A.M.; Saldaña, J. Qualitative Data Analysis: A Methods Sourcebook, 3rd ed.; SAGE Publications, Inc.: Thousand Oaks, CA, USA, 2014; ISBN 978-1-4522-5787-7. [Google Scholar]
- Edmondson, A.C.; Mcmanus, S.E. Methodological Fit in Management Field Research. Acad. Manage. Rev. 2007, 32, 1246–1264. [Google Scholar] [CrossRef] [Green Version]
- Holsti, O.R. Content Anaylis for the Social Sciences and Humanities; Addison-Wesley: Reading, MA, USA, 1969; ISBN 978-0-201-02940-6. [Google Scholar]
- Knaflic, C.N. Storytelling with Data: A Data Visualization Guide for Business Professionals; Wiley: Hoboken, NJ, USA, 2015; ISBN 978-1-119-00226-0. [Google Scholar]
- Data Visualisation Catalogue Stacked Bar Graph. Available online: https://datavizcatalogue.com/methods/stacked_bar_graph.html (accessed on 23 November 2021).
Category | No. | SDGs of Agenda 2030 | Description | Main Actions |
---|---|---|---|---|
Social | 2 | Zero hunger | End hunger, achieve food security and improved nutrition and promote sustainable agriculture | Investments in agriculture as a key element for increasing production capacity Introduce sustainable food production systems to reduce the risk of hunger |
3 | Good health and well-being | Ensure healthy lives and promote well-being for all at all ages | Continue to work hard to tackle the prevalence of many diseases and emerging health threats Ensure more effective financing of health systems, improve sanitation and hygiene, access to doctors and reduce environmental pollution | |
4 | Quality education | Ensure inclusive and equitable quality education and promote lifelong learning opportunities for all | Ensuring quality education involves creating educational scholarship programs, workshops for teachers, building schools, and improving access to water and electricity in schools | |
5 | Gender equality | Achieve gender equality and empower all women and girls | Ensure that women and girls have equal access to education, health care, and decent work, and participate in political and economic decision-making Implement the new legal framework on equality in the workplace and combat harmful practices against women | |
10 | Reduce inequalities | Reduce inequality within and among countries | Mainstream the needs of disadvantaged and marginalized groups as a general principle in policies seeking to reduce inequalities. Extend duty-free treatment and support exports from developing countries and increase the voting system for developing countries in the International Monetary Fund Technological innovation | |
Economic | 9 | Industry, innovation, and infrastructure | Build resilient infrastructure, promote inclusive and sustainable industrialization, and foster innovation | Greater investment in highly advanced technologies to increase the efficiency of manufacturing. Development of mobile phone services that increase people-to-people contacts |
Environmental | 13 | Climate and action | Take urgent action to combat climate change and its impacts | Strengthening global action to contain climate change |
14 | Life below water | Conserve and sustainably use the oceans, seas, and marine resources for sustainable development | Adequate management and financing of marine protected areas. Introduce regulations to reduce overfishing, pollution of the marine environment, and ocean acidification | |
15 | Life below land | Protect, restore, and promote sustainable use of terrestrial ecosystems, sustainably manage forests, combat desertification, and halt and reverse land degradation and halt biodiversity loss | Better forest management and combating desertification | |
Socio-economic | 1 | No poverty | End poverty in all its forms everywhere | Implement social protection systems to mitigate the effects of natural disasters and help vulnerable countries Help the economy of countries prone to natural disasters and end extreme poverty in the poorest regions |
8 | Decent work and economic growth | Promote sustained, inclusive, and sustainable economic growth, full productive employment, and decent work for all | Increasing access to financial services so as to manage income properly, accumulate wealth, and make effective investments Increase funds for the development of trade, banking, and agricultural infrastructure | |
Economic-environmental | 7 | Affordable and clean energy | Ensure access to affordable, reliable, sustainable, and modern energy for all | Increase access to clean fuels and technologies, as well as the use of renewable energy sources in buildings, transport, and industry Increase public and private energy investment More emphasis on the regulatory framework and innovative business models in transforming the world’s energy systems |
Socio-environmental | 6 | Clean water and sanitation | Ensure availability and sustainable management of water and sanitation for all | Increase investment in management of freshwater ecosystems and sanitation at the local level |
Encompassing all three dimensions | 11 | Sustainable cities and communities | Make cities and human settlements inclusive, safe, resilient, and sustainable | Improve resource efficiency Strive to reduce pollution and prevent poverty Urban development and counteracting rapid urbanization |
12 | Responsible production and consumption | Ensure sustainable consumption and production patterns | Conduct educational and other activities for consumers to raise their awareness of sustainable consumption and related lifestyle through (e.g., conducting information campaigns on product standards and labeling, engaging consumers in public procurement issues) | |
Governance/Political will | 16 | Peace, justice, and strong institutions | Promote peaceful and inclusive societies for sustainable development, provide access to justice for all, and build effective, accountable, and inclusive institutions at all levels | Implement effective and more transparent legislation and draw up comprehensive and realistic state budgets Birth registration and creation of more independent national human rights institutions |
17 | Partnership for the goals | Strengthen the means of implementation and revitalize the Global Partnership for Sustainable Development | Long-term investments, including foreign direct investment Development of the public sector Reconstruction of the system of monitoring, review, and regulation as well as construction of incentives stimulating investments Strengthen the national supervisory mechanisms and the supervisory function of the legislature |
Grouping | Archetypes of SBM | Description |
---|---|---|
Technological (technology-oriented innovation) | Maximize material and energy efficacy | Do more with less resources, less waste, emissions, and pollution |
Create value from “waste” | Convert waste streams into useful and valuable input for other production | |
Substitute with renewables and natural processes | Reduce your environmental impact by eliminating the “growth constraints” associated with non-renewable resources and current production systems | |
Social (society-oriented innovation) | Deliver functionality, rather than ownership | Provide services that meet the needs of users without the need for physical products |
Adopt a stewardship role | Actively work with all stakeholders to ensure their long-term health and well-being | |
Encourage sufficiency | Provide solutions that actively seek to reduce consumption and production | |
Organizational (organization-oriented innovation) | Re-purpose the business for society/environment | Deliver social and environmental benefits instead of maximizing economic profit |
Develop scale-up solutions | Deliver sustainable solutions on a large scale to maximize social and environmental benefits |
Faculties | Number of Researchers | Number of Students |
---|---|---|
Faculty of Architecture | 9 | 17 |
Faculty of Automatic Control, Electronics, and Computer Science | 32 | 69 |
Faculty of Civil Engineering | 18 | 34 |
Faculty of Chemistry | 11 | 24 |
Faculty of Electrical Engineering | 9 | 19 |
Faculty of Mining, Safety Engineering, and Industrial Automation | 5 | 10 |
Faculty of Biomedical Engineering | 8 | 16 |
Institute of Education and Communication Research | 2 | 2 |
Faculty of Energy and Environmental Engineering | 30 | 52 |
Faculty of Materials Engineering | 3 | 6 |
Faculty of Mechanical Engineering | 17 | 28 |
Faculty of Organization and Management | 2 | 5 |
Total | 146 | 282 |
Research Area | Number of Experts |
---|---|
Automation and Robotics | 36 |
Biomedical Engineering | 23 |
Material Engineering | 20 |
Construction | 21 |
Environmental Engineering | 26 |
Total | 126 |
SDG | Coding: The Justification for Choosing a Sustainable Development Goal | Number of Repetitions |
---|---|---|
11—Sustainable Citiesand Communities | Creating an application enabling the strengthening of efforts to protect and safeguard the world’s cultural and natural heritage | 1 |
Broadening knowledge on the use of waste in construction | 3 | |
Broadening knowledge on the design of environmentally friendly buildings | 1 | |
Developing technology related to transport | 1 | |
Use of innovative LGS technology in construction | 1 | |
12—Responsible Consumption and Production | Broadening scientific knowledge in the field of improving materials of natural origin for use in construction | 2 |
Broadening knowledge on the impact of insecticides on the environment | 1 | |
Broadening knowledge on the production of biodegradable materials and their application in environmental engineering | 1 | |
Development of environmentally friendly materials | 1 | |
Broadening knowledge in the use of technologies for obtaining metals from electronic waste | 1 | |
Broadening knowledge on the use of sewage waste in construction | 1 | |
3—Good Health and Well-Being | Raising the technological level of equipment conducive to lowering premature mortality due to non-communicable diseases | 6 |
Increasing the technological level of equipment conducive to care of the elderly | 3 | |
Broadening knowledge and developing a prototype of an implant supporting the fracture healing process | 1 | |
Broadening knowledge and developing a simulation tool for the design of miniaturized diagnostic equipment | 1 | |
6—Clean Water and Sanitation | Broadening scientific knowledge in the field of water protection and wastewater treatment | 2 |
Broadening knowledge in the field of access to information on the quality of lakes | 1 | |
7—Affordable and Clean Energy | Broadening knowledge in the field of biogas production | 1 |
Broadening knowledge in the field of compressed air energy storage | 1 | |
9—Industry, Innovation, and Infrastructure | Raising knowledge and building prototypes in the field of unmanned traffic management systems (drones) | 1 |
Broadening knowledge and building prototypes using 3D printing for use in construction | 1 | |
Increasing the quality of infrastructure, increasing the technological level of the industrial sector | 1 | |
Broadening knowledge of the needs and expectations of employees related to the development of advanced information solutions | 1 | |
Development of composite panels made in the technology of manual lamination and infusion in construction | 1 | |
Improving knowledge and developing a system in the field of off-road vehicle behavior on the road | 1 | |
Increasing knowledge and building prototypes in the field of diagnostic systems for buildings | 2 | |
Broadening knowledge about equipment using haptic technology | 1 | |
Construction of a test stand enabling the performance of tests of real structures in the non-linear stage of work | 1 | |
Development of technology related to autonomous platforms (AGV vehicles) | 3 | |
Broadening knowledge on the use of 3D printing in construction | 1 | |
Broadening knowledge about the advantages and difficulties of implementing BIM in the design of building structures | 2 | |
Broadening knowledge in the field of using technology simulation in plastics processing | 1 | |
Broadening knowledge of the use of databases to analyze changes in the environment | 1 | |
Broadening knowledge in the field of the possibility of using vacuum soldering | 1 |
The SBM Archetype | Coding: Justification for Choosing the SBM Archetype | Number of Repetitions |
---|---|---|
Maximizing material and energy efficiency | Production optimization | 3 |
Eliminating time and energy waste through automation and robotization | 10 | |
Creating environmentally friendly materials | 1 | |
Reducing energy consumption of buildings | 1 | |
Eliminating resource waste for subsequent additional treatment | 1 | |
Increasing performance of the device | 1 | |
More efficient building design | 2 | |
Eliminating energy waste | 1 | |
Eliminating material waste | 1 | |
Substitute with renewables and natural processes | Use of wood as a renewable material | 1 |
Replacing power sources with ecological ones | 1 | |
Refinement of wood-based materials | 1 | |
Adopt a stewardship role | Protection of biodiversity and regeneration of environmental resources | 1 |
Caring for the needs of employees | 1 | |
Improving the well-being of society | 1 | |
Education and care for the health of society | 8 | |
Create value from “waste” | Use of waste for production | 6 |
Not applicable | Not applicable | 8 |
SDG | Research Area | Characteristic Technological Terms of Projects |
---|---|---|
9—Industry, Innovation, and Infrastructure | Automation and Robotics | Scene description algorithms around the AGV vehicle |
Unmanned aerial platform for building diagnostics | ||
Unmanned cargo aircraft (Cargo UAV), CFD simulations and analysis, | ||
A complete system that lets you obtain measurement data describing the behavior of the vehicle on the road, its surroundings and road conditions | ||
Development of a database enabling spatial analysis with the use of tools available from the QGIS program | ||
Development of vehicle models equipped with automation systems that enable the maintaining of a set speed to maintain a controlled distance between vehicles | ||
AGV vehicle, hydrogen cell-based power system, | ||
Prototype of the device control system with Haptic Feedback | ||
Industry 4.0, the quality of the work environment, the needs, and expectations of employees in technologically advanced enterprises, employee satisfaction | ||
An inspection and diagnostic robot to assess the condition of a building, diagnose building structures, improve on the safety of building structures | ||
Construction | 3D printing from materials used in construction | |
concept of a pump for feeding cement-based mixtures for 3D printing | ||
3D BIM model of the building | ||
Test stand for deformation control | ||
BIM implementation | ||
Material Engineering | 3D printing with metal powders, SLM manufacturing technology | |
Electroactive organic layers on inorganic surfaces, electropolymerization, electrochemical reduction of diazonium salts, use in optoelectronic devices | ||
Composite panel, fan cooling tower housing, structure optimization | ||
Simulation techniques applied in plastics processing |
SDG | Research Area | Characteristic Technological Terms of Projects |
---|---|---|
3—Good Health and Well-Being | Automation and Robotics | Automated design and virtual prototyping of new structures and microfluidic systems |
Biomedical Engineering | A prototype model of a new generation short-term metal implant with controlled stiffness; determining the conditions for the manufacture of the implant | |
A virtual reality application to assist architectural design for the elderly | ||
An application supporting the elderly in coping with Alzheimer’s | ||
Combining 3D imaging with CFD models for blood flow through the coronary arteries, validation of the CFD model, virtual platform for surgical procedures | ||
Microcircuit for human cell culture, synthetic and biological experiment | ||
Conceptual design of a robot in the form of a table containing such elements as: telephone, thermometer, blood pressure monitor, stethoscope, camera, motion meter | ||
Prototype of an autonomous platform built on omni-directional wheels, patient support | ||
A prototype of a toy using biofeedback for therapeutic purposes | ||
technologies supporting the functioning of an elderly person | ||
Material Engineering | Development of an effective method of applying photoactive organic coatings with antibacterial properties |
SDG | Research Area | Characteristic Technological Terms of Projects |
---|---|---|
12—Responsible Consumption and Production | Construction | Improvement of wood properties: compressed wood with increased strength |
Environmental Engineering | Cellulose, usefulness of sewage sludge as an additive in the production of building materials | |
Membrane production methods, sol-gel method, and wet phase inversion method; modern, ecological, and biodegradable material—hybrid membranes | ||
The use of plant protection products, the use of neonicotinoids in agriculture and their impact on the mass extinction of bees | ||
Material Engineering | Structural features of a biodegradable composite based on coniferous wood | |
Optimizing the recovery of metals from electronic waste | ||
Polymer and halloysite nanostructured composite membranes |
SDG | Research Area | Characteristic Technological Terms of Projects |
---|---|---|
11—Sustainable Cities and Communities | Automation and Robotics | Automatic parking and vehicle recalling algorithms |
Mobile application using augmented reality (AR), methods of object detection and location, creation, and transformation of digital models | ||
Construction | CO2 emissions for a residential building | |
LGS technology, BIM tools, SMART systems, adjusting to people with disabilities, creating a catalog of typical footbridges in LGS technology for use in public spaces | ||
Environmental Engineering | Immobilization of municipal waste in cement mortars | |
Checking the possibility of using aggregate with the addition of metallurgical waste, closed-loop management, improvement of the environment | ||
Management of municipal (hazardous) waste as a component of concrete mixtures |
SDG | Research Area | Characteristic Technological Terms of Projects |
---|---|---|
6—Clean Water and Sanitation | Automation and Robotics | Analysis of algae blooms in water reservoirs, information about the condition of water on the Internet |
Environmental Engineering | Floating automated measurement system for environmental research, software for automatic measurement data analysis | |
Biological reactor control and monitoring system, elimination of fats from wastewater through the biocenosis of microorganisms, FISH molecular technique |
SDG | Research Area | Characteristic Technological Terms of Projects |
---|---|---|
7—Affordable and Clean Energy | Environmental Engineering | Energy storage in compressed air (the underground storage is a mining pit), the problem of energy surpluses in the periods of energy valleys in Silesia |
Production of energy from biogas, use of the obtained microbiological vaccine for the process of decomposition of cellulose, which is a substrate for biogas production |
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Podgórska, M.; Zdonek, I. Sustainable Technologies Supported by Project-Based Learning in the Education of Engineers: A Case Study from Poland. Energies 2022, 15, 278. https://doi.org/10.3390/en15010278
Podgórska M, Zdonek I. Sustainable Technologies Supported by Project-Based Learning in the Education of Engineers: A Case Study from Poland. Energies. 2022; 15(1):278. https://doi.org/10.3390/en15010278
Chicago/Turabian StylePodgórska, Marzena, and Iwona Zdonek. 2022. "Sustainable Technologies Supported by Project-Based Learning in the Education of Engineers: A Case Study from Poland" Energies 15, no. 1: 278. https://doi.org/10.3390/en15010278
APA StylePodgórska, M., & Zdonek, I. (2022). Sustainable Technologies Supported by Project-Based Learning in the Education of Engineers: A Case Study from Poland. Energies, 15(1), 278. https://doi.org/10.3390/en15010278