Circularity in Facility Management: Conceptualisation and Potential Areas for Circularity-Oriented Actions
Abstract
:1. Introduction
2. Circular Economy—Understanding in the Context of Facility Service
2.1. Facility Services in Building Operations
2.2. Four Perspectives Highlight the Characteristics of Facility Service Delivery and the Circularity Element
3. Methodological Framework
4. Scoping for Circularity in Facility Management and Analytical Foundation
5. Potential Areas for Circularity-Oriented Actions—Integration with the Core Facility Functions
5.1. Procurement and Closed-Looped Supply Chain
5.1.1. Certifications, Eco-Labels, and Other Information-Based Instruments
5.1.2. Revisiting the Way Physical Products Are Purchased
5.1.3. Participating in Product Stewardship Schemes as a Large-Scale Consumer
5.1.4. Interactions with the Fledging Green Industry, Provisions, and Support
5.2. Building Use and Maintenance
5.2.1. Digitalisation and Artificial Intelligence Applications in Facility Management
5.2.2. Reactive and Predictive Maintenance Works
5.2.3. Renovation, Retrofitting, and Refurbishments in Existing Assets
5.3. Products’ End-of-Life Management and Reverse Logistics
6. Metrics and Performance-Improvement Criteria Relevant to the Facility Service Providers
7. Carbon Dividend as an Added Benefit
8. Conclusions, Limitations, and Further Studies
8.1. Conclusions
8.2. Limitations and Further Studies
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Scopes | Description |
---|---|
Procurement | relates to the supply chain and purchase of various physical products and materials necessary to operate buildings. |
Use | relates to the use of various physical products and materials during building operations. This stage expends various physical products and materials and converts them from low-entropy resources to high-entropy waste. |
End of life | relates to the end of life of various physical products and materials. The high-entropy waste is the target physical mass for driving circularity in delivering facility services. |
Metrics and Indicators | Performance Improvement Criteria | |
---|---|---|
1 | Procurement | Promoting a closed-loop supply chain and reduced forward material flow from the value chain’s front-end |
1.1 | Number of product categories purchased with eco-labels and similar certifications | Increasing the range of products with eco-labels and similar certifications |
1.2 | Number of product categories transitioned into using a service-based approach | Increasing the share of services purchased in the total purchase of goods and services, i.e., using more product-as-a-service (PAAS) models |
1.3 | Number of product categories in use with well-functioning product stewardship schemes | Increasing the use of any currently operational product stewardship schemes for various product categories |
1.4 | Number of recycling companies involved and product categories | Increasing the purchase of recycling services and across an increased range of products |
2 | Building operations and maintenance | Extending products/materials lifecycle |
2.1 | Number of artificial intelligence and digital assets applications and product/component categories covered | Increasing the range of assets, products, components, and material categories that leverage digitalisation |
2.2 | The ratio of predictive to reactive maintenance works | Increasing the ratio of predictive to reactive maintenance works, especially for MEPs and their components |
2.3 | Number of renovation and refurbishment projects 2.3 (a) quantity of waste generated for each material category 2.3 (b) recycling/recovery/landfill ratio of waste for each material category | Increasing the number of renovation and refurbishment projects, reducing the quantity of waste via component reuse, repurpose etc. and decreasing the share of waste across various waste streams/material categories ending up in landfills |
3 | End-of-life | Promoting the reverse material flow of products/materials from the value chain’s back-end |
3.1 | Number of waste assets and infrastructure added for different waste streams/material categories | Increasing the number of waste assets and infrastructures necessary to enable reverse material flow for various product/material categories |
3.2 | Number of individual product/material categories diverted from landfills and the associated waste | Increasing the number of waste streams and product/component/material categories that are diverted from landfills and increasing the diversion quantities of associated waste |
3.3 | Provision of reverse logistics mechanism and product/material categories covered | Increasing the range of waste streams and/or product/component/material categories that have a functional reverse logistic mechanism |
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Baniya, B. Circularity in Facility Management: Conceptualisation and Potential Areas for Circularity-Oriented Actions. Sustainability 2023, 15, 8460. https://doi.org/10.3390/su15118460
Baniya B. Circularity in Facility Management: Conceptualisation and Potential Areas for Circularity-Oriented Actions. Sustainability. 2023; 15(11):8460. https://doi.org/10.3390/su15118460
Chicago/Turabian StyleBaniya, Bishal. 2023. "Circularity in Facility Management: Conceptualisation and Potential Areas for Circularity-Oriented Actions" Sustainability 15, no. 11: 8460. https://doi.org/10.3390/su15118460
APA StyleBaniya, B. (2023). Circularity in Facility Management: Conceptualisation and Potential Areas for Circularity-Oriented Actions. Sustainability, 15(11), 8460. https://doi.org/10.3390/su15118460