Features of the Higher Education for the Circular Economy: The Case of Italy
Abstract
:1. Introduction
- RQ1
- Which are the most recent programs, courses, and modules concerning the CE higher education offering in different academic disciplines?
- RQ2
- Which are the main skills and competences provided by the CE higher education programs, courses, and modules?
2. Literature Background
2.1. Integration of CE Principles in Traditional Academic Disciplines
2.2. Teaching and Learning Approaches for CE Education
3. Methods
4. Results
4.1. Remembering
- To know the grand environmental challenges in society.
- To know the pillars of CE: origin, principles, barriers, enablers
- To know the basics of bioeconomy.
- To know the bioplastics and bio-based products.
- To know the normative and legislative frameworks.
- To know the alternative CE business models.
- To know CE value chain activities.
- To know basics of sustainability business and corporate sustainability.
- To know the eco-friendly materials and their properties.
- To know how closing resource cycles.
- To know waste-to-energy technologies and industrial plants.
- To know recycling and waste valorization.
- To know the role of bioenergy.
- To know scientific and technical origins of biomasses.
- To know waste management principles, policies, and legislation.
- To know the plants and equipment for waste storage, collection, transfer, treatment, and disposal.
- To know eco-design principles.
- To know circular supply chain archetypes.
- To know the basics of risk management in a CE.
- To know the possible applications of the biotechnologies.
- To know the criteria of Green Public Procurement.
- To know the principles of Sustainable Entrepreneurship.
- To know how to manage environmental communication as a green marketing tool.
- To know the theoretical approaches of ecological economics.
- To know sustainable resource management.
4.2. Understanding
- To understand the consumer behavior in the CE.
- To understand and describe the main principles of socio-technical transitions.
- To understand the risks involved with the CE transition.
- To understand the design challenges of bio-based products.
- To understand the processing technologies for closing biological and technical cycles.
- To understand the role of materials, resources, and energy in the CE.
- To understand the environmental assessment tools.
- To understand the life cycle assessment framework and analysis.
- To understand the production of biofuels, bioenergy, and biochemical.
- To understand the environmental impact of industrial production in the agriculture sector.
- To understand the potential, the advantages, and the challenges of biorefinery technologies in different contexts.
- To understand the problems related to the waste-resource transformation in the building sector.
- To understand the ecosystemic value of the environmental resources.
- To understand how to manage environmental resources by maximizing the value of ecosystem services.
4.3. Applying
- To apply the concepts of a CE in decision making and business development.
- To apply sustainable issues in new product development.
- To apply digital technologies and sharing platforms for innovating products and processes.
- To manage product and service innovation in the CE.
- To apply environmental certifications.
- To apply environmental assessment tools.
- To apply life cycle assessment.
- To manage critical information for improving material efficiency.
- To apply CE indicators and tools.
- To apply industrial symbiosis mechanisms.
- To apply industry 4.0 technologies to support the adoption of circular business models.
4.4. Analyzing
- To identify CE innovation projects.
- To recognize opportunities and risks in a CE.
- To analyze the value chain of a product, process, and service.
- To compute energy balance, material flow analysis, and recycling indicators.
- To analyze the technological cycles in terms of “R” strategies.
4.5. Evaluating
- To select the most appropriate business models.
- To assess risks concerning greenhouse gas emissions.
- To assess the environmental impact and the economic sustainability of waste recycling and valorization plants.
- To assess the productivity and efficiency of biological and technical resources.
- To evaluate the feasibility of biological products.
- To evaluate the reliability of products.
- To measure and quantify the impacts of a CE model from a normative, economic, and technological point of view.
- To select the materials for engineering applications to reduce the environmental impact.
- To evaluate the technical, economic, and environmental efficiency of circular production and consumption models.
4.6. Creating
- To create a CE action plan in specific contexts.
- To design the indicators to monitor the implementation of the CE action plan.
- To design biological cascade cycles to regenerate biological materials.
- To design technical cascade cycles to regenerate products.
- To design new products and processes with low energy impact.
- To design de-assembling phase of a product.
- To design circular and sustainable supply chains.
- To design sustainable production and logistics processes.
- To develop new CE business models.
- To design new CE business models for the biorefinery sector.
- To design the phases of product refurbishing.
5. Discussion
Implications
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
Appendix A
“R” Strategies | Waste Hierarchy | Systems Perspective | Aims | Enablers | |||||||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Recover | Recycle | Repurpose | Remanufacture | Refurbish | Repair | Reuse | Reduce | Rethink | Refuse | Sustainable Development | Economic | Environmental | Social | Indicators | Business Model | Sustainable Development | Economic | Risk | |||
Learning outcomes | |||||||||||||||||||||
Remembering | |||||||||||||||||||||
To know the grand environmental challenges in society | x | ||||||||||||||||||||
To know the pillars of circular economy: origin, principles, barriers, enablers | x | ||||||||||||||||||||
To know the basics of bioeconomy | x | ||||||||||||||||||||
To know the bioplastics and bio-based products | |||||||||||||||||||||
To know the normative and legislative frameworks | x | ||||||||||||||||||||
To know the alternative circular economy business models | x | ||||||||||||||||||||
To know circular economy value chain activities | x | ||||||||||||||||||||
To know basics of sustainability business and corporate sustainability | x | ||||||||||||||||||||
To know the eco-friendly materials and their properties | |||||||||||||||||||||
To know how closing resource cycles | x | x | x | x | x | x | |||||||||||||||
To know waste-to-energy technologies and industrial plants | x | x | |||||||||||||||||||
To know recycling and waste valorization | x | x | x | ||||||||||||||||||
To know the role of bioenergy | |||||||||||||||||||||
To know scientific and technical origin of biomasses | |||||||||||||||||||||
To know waste management principles, policies, and legislation | x | ||||||||||||||||||||
To know the plants and equipment for waste storage, collection, transfer, treatment, and disposal | x | ||||||||||||||||||||
To know eco-design principles | x | ||||||||||||||||||||
To know circular supply chain archetypes | x | ||||||||||||||||||||
To know the basics of risk management in circular economy | x | ||||||||||||||||||||
To know the possible applications of the biotechnologies | x | ||||||||||||||||||||
To know the criteria of Green Public Procurement | x | ||||||||||||||||||||
To know the principles of Sustainable Entrepreneurship | x | ||||||||||||||||||||
To know how to manage environmental communication as a green marketing tool | x | ||||||||||||||||||||
To know the theoretical approaches of ecological economics | x | ||||||||||||||||||||
To know sustainable resource management | x | ||||||||||||||||||||
Understanding | |||||||||||||||||||||
To understand the consumer behavior in the circular economy | x | ||||||||||||||||||||
To understand and describe the main principles of socio-technical transitions | x | ||||||||||||||||||||
To understand the risks involved with circular economy transition | x | ||||||||||||||||||||
To understand the design challenges of bio-based products | x | ||||||||||||||||||||
To understand the processing technologies for closing biological and technical cycles | X | ||||||||||||||||||||
To understand the role of materials, resources, and energy in CE | x | ||||||||||||||||||||
To understand the environmental assessment tools | x | ||||||||||||||||||||
To understand the life cycle assessment framework and analysis | x | ||||||||||||||||||||
To understand the production of biofuels, bioenergy, and biochemical | |||||||||||||||||||||
To understand the environmental impact of industrial production in the agriculture sector | x | ||||||||||||||||||||
To understand the potential, the advantages, and the challenges of biorefinery technologies in different contexts | x | ||||||||||||||||||||
To understand the problems related to the waste-resource transformation in the building sector | x | ||||||||||||||||||||
To understand the ecosystemic value of the environmental resources | x | ||||||||||||||||||||
To understand how to manage environmental resources by maximizing the value of ecosystem services | x | ||||||||||||||||||||
Applying | |||||||||||||||||||||
To apply the concepts of circular economy in decision making and business development | x | ||||||||||||||||||||
To apply the lean strategies in logistics operations | X | ||||||||||||||||||||
To apply sustainable issues in new product development | x | x | |||||||||||||||||||
To apply digital technologies and sharing platforms for innovating products and processes | x | x | |||||||||||||||||||
To manage product and service innovation in circular economy | |||||||||||||||||||||
To apply environmental certifications | x | ||||||||||||||||||||
To apply environmental assessment tools | x | ||||||||||||||||||||
To apply life cycle assessment | x | ||||||||||||||||||||
To manage the product as a service (PPS) | x | x | |||||||||||||||||||
To manage critical information for improving material efficiency | X | ||||||||||||||||||||
To apply circular economy indicators and tools | x | ||||||||||||||||||||
To apply industrial symbiosis mechanisms | x | ||||||||||||||||||||
To apply industry 4.0 technologies to support the adoption of circular business models | x | ||||||||||||||||||||
Analyzing | |||||||||||||||||||||
To identify circular economy innovation projects | x | ||||||||||||||||||||
To recognize opportunities and risks in circular economy | x | ||||||||||||||||||||
To analyze the value chain of a product, process, and service | x | ||||||||||||||||||||
To compute energy balance, material flow analysis, and recycling indicators | x | ||||||||||||||||||||
To analyze the technological cycles in terms of “R” strategies | x | ||||||||||||||||||||
Evaluating | |||||||||||||||||||||
To select the most appropriate business models | x | ||||||||||||||||||||
To assess risks concerning greenhouse gas emissions | x | ||||||||||||||||||||
To assess the environmental impact and the economic sustainability of waste recycling and valorization plants | x | x | x | x | |||||||||||||||||
To assess the productivity and efficiency of biological and technical resources | X | x | |||||||||||||||||||
To evaluate the feasibility of biological products | x | ||||||||||||||||||||
To evaluate the reliability of products | x | ||||||||||||||||||||
To measure the impacts of a CE model from a normative, economic, and technological point of view | x | ||||||||||||||||||||
To select the materials for engineering applications to reduce the environmental impact | x | ||||||||||||||||||||
To evaluate technical, economic, and environmental efficiency of circular production and consumption models | x | ||||||||||||||||||||
Creating | |||||||||||||||||||||
To create a circular economy action plan in specific contexts | x | ||||||||||||||||||||
To design the indicators to monitor the implementation of the CE action plan | x | ||||||||||||||||||||
To design biological cascade cycles to regenerate biological materials | x | ||||||||||||||||||||
To design technical cascade cycles to regenerate products | x | ||||||||||||||||||||
To design new products and processes with low energy impact | x | ||||||||||||||||||||
To design de-assembling phase of a product | x | ||||||||||||||||||||
To design circular and sustainable supply chains | x | ||||||||||||||||||||
To design sustainable production and logistics processes | x | ||||||||||||||||||||
To develop new circular economy business models | x | ||||||||||||||||||||
To design new circular economy business models for the biorefinery sector | x | ||||||||||||||||||||
To design the phases of product refurbishing | x |
Appendix B
SSD CODE | Description |
---|---|
AGR/01 | Agricultural economics and rural appraisal |
AGR/02 | Agronomy and field crops |
AGR/06 | Wood technology and forestry operations |
AGR/08 | Agricultural hydraulics and watershed protection |
AGR/13 | Agricultural chemistry |
AGR/15 | Food science and technology |
BIO/04 | Plant physiology |
CHIM/02 | Physical chemistry |
CHIM/03 | General and inorganic chemistry |
CHIM/04 | Industrial chemistry |
CHIM/06 | Organic chemistry |
CHIM/07 | Principles of chemistry for applied technologies |
CHIM/11 | Chemistry and biotechnology of fermentation |
CHIM/12 | Chemistry for the environment and for cultural heritage |
GEO/06 | Mineralogy |
ICAR/03 | Sanitary and environmental engineering |
ICAR/08 | Structural mechanics |
ICAR/12 | Architectural technology |
ICAR/13 | Design |
ING-IND/09 | Energy systems and power generation |
ING-IND/10 | Thermal engineering and industrial energy systems |
ING-IND/11 | Building physics and building energy systems |
ING-IND/15 | Design methods for industrial engineering |
ING-IND/17 | Industrial mechanical systems engineering |
ING-IND/21 | Metallurgy |
ING-IND/22 | Materials science and technology |
ING-IND/24 | Fundamentals of chemical engineering |
ING-IND/25 | Chemical plants |
ING-IND/27 | Chemical technologies |
ING-IND/28 | Excavation engineering and safety |
ING-IND/35 | Business and management engineering |
M-PSI/01 | General psychology |
SECS-P/01 | Economics |
SECS-P/02 | Economic policy |
SECS-P/03 | Public economics |
SECS-P/05 | Econometrics |
SECS-P/06 | Applied economics |
SECS-P/07 | Business administration and accounting studies |
SECS-P/08 | Management |
SECS-S/01 | Statistics |
SECS-S/03 | Economic statistics |
SECS-S/05 | Social statistics |
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Course | Number |
Bachelor program | 0 |
Master program | 3 |
Postgraduate course | 4 |
Highly specialized course | 1 |
Seasonal School | 1 |
Total | 9 |
Module | Number |
Bachelor program | 8 |
Master program | 48 |
Total | 56 |
Higher Education Institution | Number of Programs/Courses | Number of Modules |
---|---|---|
Marche Polytechnic University | 1 | 2 |
Polytechnic University of Bari | 1 | |
Polytechnic University of Milano | 1 | |
Polytechnic University of Torino | 4 | |
Sant’Anna School of Advanced Studies | 3 | 1 |
Sapienza University of Rome | 1 | |
Tuscia University | 1 | 6 |
University of Bologna | 1 | |
University of Florence | 1 | |
University of Foggia | 1 | |
University of Messina | 1 | |
University of Milan | 1 | |
University of Milan Bicocca | 1 | |
University of Modena e Reggio Emilia | 2 | |
University of Naples Federico II | 1 | 1 |
Parthenope University of Naples | 2 | |
University of Padua | 1 | 15 |
University of Palermo | 1 | |
University of Pavia | 1 | |
University of Pisa | 1 | |
University of Rome III | 1 | |
University of Salerno | 1 | |
University of Siena | 1 | |
University of Turin | 1 | 3 |
University of Trento | 2 | |
University of Trieste | 3 | |
University of Udine | 1 | |
Ca’ Foscari University of Venice | 1 | |
University of Verona | 1 | |
D’Annunzio University of Chieti-Pescara | 2 |
Course | Higher Education Institution | |
---|---|---|
Master program | Sustainability and Circular Economy Management | Marche Polytechnic University |
Circular Economy | Tuscia University | |
Sustainable Chemistry and Technology for CE | University of Padua | |
Postgraduate course | Circular Economy | Polytechnic University of Bari |
Environmental sustainability & circular economy | Polytechnic University of Milan | |
Environmental management and control: circular economy and efficient resource management | Sant’Anna School of Advanced Studies | |
Bioeconomy in the CE | University of Bologna; University of Naples Federico II; University of Turin; University of Milan Bicocca | |
Highly Specialized Course | CE for business | Sant’Anna School of Advanced Studies |
Seasonal School | Circular Economy and Sustainability Management | Sant’Anna School of Advanced Studies |
Module | Higher Education Institution |
---|---|
Circular Processes and Chemical-Environmental Plants | Marche Polytechnic University |
Elements of circular economy | |
Challenge@PoliTo by Students—CE: The right loop | Polytechnic University of Turin |
Circular economy and environmental sustainability | |
Circular economy for energy storage | |
Circular economy design and development | |
Circular economy: implications and opportunities for business and policy maker | Sant’Anna School of Advanced Studies |
Laboratory of circular economy management | Sapienza University of Rome |
Consumer behavior in the circular economy | Tuscia University |
Micro and macroeconomics foundations for the circular economy | |
Technological innovation for the circular economy | |
Econometric models for the circular economy | |
Circular design | |
Sustainability and circular economy | |
Circular economy and sustainable human development | University of Florence |
Circular economy for marketing | University of Foggia |
Sustainable firm and circular economy | University of Messina |
Biomass and waste recycling promoting the CE | University of Milan |
Elements of circular economy for agrifood technology | University of Modena and Reggio Emilia |
Sustainability and circularity in manufacturing and logistics | |
Energy from wastes and circular economy | University of Naples Federico II |
Environmental economics and circular economy | Parthenope University of Naples |
Sustainable finance and circular economy | |
Biorefineries and sustainable energy production and storage for circular economy | University of Padua |
Circular and sustainable waste management (two disciplines in two different courses) | |
Circular Economics and local development | |
Circular economy | |
Circularity in biomass productions | |
Economics for the circular economy | |
Health and environment in circular economy | |
Material design and selection for circular economy | |
Psychology, policy making, and education to a circular economy | |
Sustainability strategies and Innovation management for circular economy | |
Sustainable materials and recycling for circular economy | |
Thermodynamics and catalysis for circular economy | |
Understanding statistics of circular economy | |
Water resources management in the circular economy | |
Fundamentals of circular economy | University of Palermo |
Innovability and circular entrepreneurship | University of Pavia |
Sustainability and circular economy | University di Pisa |
Circular economy and sustainability management | University of Rome III |
Circular economy and environmental policy | University of Salerno |
Laboratory of circular economy and waste management | University of Siena |
Circular economy management | University of Turin |
Circular economy and environmental sustainability | |
Innovation for the circular economy | |
Circular economy for materials processing | University of Trento |
Engineering for circular economy | |
Circular economy and recycling | University of Trieste |
Sustainable development and circular economy | |
Renewable materials and biotransformations for the circular economy | University of Trieste, University of Udine |
Dangerous substances in circular processes: risk assessment and management | Ca Foscari University of Venice |
Biotechnologies for the circular bioeconomy | University of Verona |
Circular models of production and consumption | D’Annunzio University of Chieti-Pescara |
Waste recycling and valorization and circular economy |
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Giannoccaro, I.; Ceccarelli, G.; Fraccascia, L. Features of the Higher Education for the Circular Economy: The Case of Italy. Sustainability 2021, 13, 11338. https://doi.org/10.3390/su132011338
Giannoccaro I, Ceccarelli G, Fraccascia L. Features of the Higher Education for the Circular Economy: The Case of Italy. Sustainability. 2021; 13(20):11338. https://doi.org/10.3390/su132011338
Chicago/Turabian StyleGiannoccaro, Ilaria, Gaia Ceccarelli, and Luca Fraccascia. 2021. "Features of the Higher Education for the Circular Economy: The Case of Italy" Sustainability 13, no. 20: 11338. https://doi.org/10.3390/su132011338
APA StyleGiannoccaro, I., Ceccarelli, G., & Fraccascia, L. (2021). Features of the Higher Education for the Circular Economy: The Case of Italy. Sustainability, 13(20), 11338. https://doi.org/10.3390/su132011338