Implementation of Circular Economy Strategies within the Electronics Sector: Insights from Finnish Companies
Abstract
:1. Introduction
2. Materials and Methods
- -
- “Addressed”—the category of strategies currently implemented by the company;
- -
- “To be addressed”—the category of strategies planned for implementation in the future;
- -
- “Not relevant”—the category of strategies that are currently not seen to apply to the area of the business operations.
3. Results and Discussion
3.1. Narrow
3.2. Slow
3.3. Close
3.4. Regenerate
3.5. Inform
4. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Appendix A. List of Circular Economy Strategies
N. | Name | Category | Perspective |
---|---|---|---|
1 | Enable and incentivize users to consume less | Narrow | Business model |
2 | Design light-weight products | Narrow | Product |
3 | Localize supply where appropriate | Narrow | Business model |
4 | Design for multiple functions | Narrow | Product |
5 | Organize light-weight urban transport | Narrow | Business model |
6 | Design with low-impact inputs | Narrow | Product |
7 | Maximize capacity use of products | Narrow | Ecosystem |
8 | Design for physical durability | Slow | Product |
9 | Design for upgradability | Slow | Product |
10 | Design for standardization and compatibility | Slow | Product |
11 | Design for emotional durability | Slow | Product |
12 | Design for ease of maintenance and repair | Slow | Product |
13 | Design for easy dis - and reassembly | Slow | Product |
14 | Organize maintenance and repair services | Slow | Business model |
15 | Provide the product as a service | Slow | Business model |
16 | Enable users to maintain and repair their products | Slow | Business model |
17 | Provide services that upgrade and adapt existing products | Slow | Business model |
18 | Repurpose existing products and components | Slow | Business model |
19 | Turn disposables into a reusable service ecosystem | Slow | Ecosystem |
20 | Encourage sufficiency | Slow | Business model |
21 | Remanufacture existing products and components | Slow | Business model |
22 | Provide an unconditional lifetime warranty | Slow | Business model |
23 | Recycle products in proper facilities | Close | Business model |
24 | Design components, where appropriate, with one material | Close | Product |
25 | Design with materials suitable for primary recycling | Close | Product |
26 | Build local waste-to product loops | Close | Ecosystem |
27 | Design with recycled inputs | Close | Product |
28 | Enable and incentivize product returns | Close | Business model |
29 | Engage in industrial symbiosis | Close | Ecosystem |
30 | Reuse and sell components and materials from discarded products | Close | Business model |
31 | Design self-charging products | Regenerate | Product |
32 | Design with non-toxic materials | Regenerate | Product |
33 | Design with renewable materials | Regenerate | Product |
34 | Produce and process with renewable energy | Regenerate | Business model |
35 | Regenerate polluted ecosystems | Regenerate | Ecosystem |
36 | Power the use of the product with renewable energy | Regenerate | Business model |
37 | Embed renewable energy production in the existing infrastructure | Regenerate | Ecosystem |
38 | Power transportation with renewable energy | Regenerate | Business model |
39 | Manage and sustain critical ecosystem services | Regenerate | Ecosystem |
40 | Recover nutrients from urban areas | Regenerate | Ecosystem |
41 | Design connected products | Inform | Product |
42 | Track the condition, location, and/or availability of the product | Inform | Business model |
43 | Track the resource intensity of the product-in-use | Inform | Business model |
44 | Use product-in-use data to design more circular products and services | Inform | Business model |
45 | Co-create products, components, materials and information via online platforms | Inform | Ecosystem |
46 | Use artificial intelligence to develop new materials with circular properties | Inform | Product |
47 | Virtualize | Inform | Product |
48 | Build material database ecosystems | Inform | Ecosystem |
49 | Market circular products, components and materials through online platforms | Inform | Ecosystem |
50 | Use artificial intelligence to optimize circular infrastructure | Inform | Ecosystem |
51 | Operate service ecosystems via online platforms | Inform | Ecosystem |
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Company | Product | Product Description | Product Lifetime | Position Held | Own Production |
---|---|---|---|---|---|
GE Healthcare | Medical sensor | Professional medical sensor | Disposable, single-use | Principal Engineer, Senior UX Designer | No |
Confidex Oy | RFID product portfolio | RFID labels and tags | Products from single-use to multiple year use in rough environmental conditions | Lead of R&D, Global Channel Director, Sales Director Pulp & Paper, Sustainability Champion | Yes |
Iscent Oy | Sustainable optical film | The optical film is targeted to packaging material market; decorative and anti-counterfeiting effects | Single-use, typically some months | CEO, two partners | Yes |
New Cable Corporation | Shielded flat flexible cable | Electrical cables for vehicle and industrial applications | Depends on application | CDO, CEO, Sustainability responsible | Technology owner |
Vaisala Oyj | Measurement instrument | Measurement instrument | Non-disposable, 15+ years | R&D Project Manager, R&D Manager, Environmental Manager | Yes |
Stora Enso Oyj | ECO-RFID | Logistics and tracking, retail and industry | Single-use | Development engineer, product owner | Yes |
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Deviatkin, I.; Rousu, S.; Ghoreishi, M.; Naji Nassajfar, M.; Horttanainen, M.; Leminen, V. Implementation of Circular Economy Strategies within the Electronics Sector: Insights from Finnish Companies. Sustainability 2022, 14, 3268. https://doi.org/10.3390/su14063268
Deviatkin I, Rousu S, Ghoreishi M, Naji Nassajfar M, Horttanainen M, Leminen V. Implementation of Circular Economy Strategies within the Electronics Sector: Insights from Finnish Companies. Sustainability. 2022; 14(6):3268. https://doi.org/10.3390/su14063268
Chicago/Turabian StyleDeviatkin, Ivan, Sanna Rousu, Malahat Ghoreishi, Mohammad Naji Nassajfar, Mika Horttanainen, and Ville Leminen. 2022. "Implementation of Circular Economy Strategies within the Electronics Sector: Insights from Finnish Companies" Sustainability 14, no. 6: 3268. https://doi.org/10.3390/su14063268
APA StyleDeviatkin, I., Rousu, S., Ghoreishi, M., Naji Nassajfar, M., Horttanainen, M., & Leminen, V. (2022). Implementation of Circular Economy Strategies within the Electronics Sector: Insights from Finnish Companies. Sustainability, 14(6), 3268. https://doi.org/10.3390/su14063268