Bridging the Gaps for a ‘Circular’ Bioeconomy: Selection Criteria, Bio-Based Value Chain and Stakeholder Mapping
Abstract
:1. Introduction
1.1. Background
1.2. Bioeconomy Strategies Initiatives
2. Methodology
2.1. Value Chain Selection Criteria
- From virgin food-based feedstock to bio-waste cascading;
- 100% bio-based to partially bio-based, value chains;
- Those with a fully-functional waste management infrastructure to those that lack one;
- Diverse product functionality.
- CEN/TS 16137:2011: Plastics—Determination of bio-based carbon content
- CEN/TS 16295:2012: Plastics—Declaration of the bio-based carbon content
- CEN/TS 16398:2012: Plastics—Template for reporting and communication of bio-based carbon content and recovery options of biopolymers and bioplastics—Data sheet
Application of These Value Chain Selection Factors with Multi-Criteria Decision Analysis
2.2. Value Chain Mapping
- Material/energy inputs and outputs, including potential products, co-products, waste and emissions;
- Sector-level contributions;
- Technology/conversion routes;
- Chain-actors or stakeholders linkages
- End-of life (variable) characteristics emphasising the fate of the outputs from each of the life cycle stages.
3. Results and Discussions
3.1. Value Chain Selection
3.2. Value Chain Mapping—Case Studies
3.2.1. Bio-Based Chemicals
3.2.2. Bioplastics
3.2.3. Other Bio-Based Products
3.3. Gaps and Challenges That Can Be Addressed
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Sector | Value Chain |
---|---|
Chemicals | Cellulose to bio solvents |
Disposable food packaging | Starch to bioplastic food packaging |
Agriculture | Starch to bio-based mulch films |
Fabrication | Starch to bioplastics for fabrication |
Automotive | Vegetable fats to bio lubricants |
Agriculture/waste management | Solid biomass to fine chemicals |
Textiles | Cellulose to fabric |
Food packaging | Cellulose to plastic paper cups |
Construction | Waste biomass to insulation material |
Construction | Waste biomass to wood-plastic composites |
Agriculture | Polysaccharides to crop health inducers |
Animal husbandry | Plant-based chemicals to fine chemicals |
Selection Criteria | Weighting |
---|---|
Feedstock variability | 0.2 |
Gaps in certification/sustainability schemes | 0.2 |
Multi-sector application | 0.15 |
Variety in End-of-life options | 0.2 |
Multi-regional supply chain | 0.15 |
Preference within EU member states | 0.1 |
Value Chains Targeted by the Strategies | Strategy Type | EU Chain Preference Scores |
---|---|---|
Bio energy and fuel production | Renewable energy | 0.74 |
Food and beverage production | Primary food production | 0.6 |
Crop based primary production | Using waste and residue | 0.37 |
Animal based primary products | Using waste and residue | 0.32 |
Forest based primary production | Using waste and residue | 0.26 |
Bio-based material and plastics | Products/Technology and research | 0.26 |
Marine based primary production | Primary food production | 0.2 |
Bio-based chemicals | Products/Technology and research | 0.21 |
Bio-based construction and furniture | Common conversion | 0.2 |
Biorefinery | Products/Technology and research | 0.2 |
Cosmetics and health | Biomass conversion | 0.17 |
Sector | Value Chain | Score | Rank | Status |
---|---|---|---|---|
Chemical | Cellulose to bio-based solvents | 7.44 | 1 | Selected |
Food Packaging | Starch to bio-plastics | 7.25 | 2 | Selected |
Agriculture | Starch to bio-based mulch films | 6.62 | 3 | Selected |
Fabrication | Starch to bioplastic framing material | 6.09 | 4 | Selected |
Multiple sectors | Vegetable fats/plant lipids to bio-based lubricants | 5.50 | 5 | Selected |
Textile | Cellulose to fabric | 5.50 | 6 | Selected |
Chemical | Solid biomass to fine chemicals | 5.20 | 7 | Selected |
Construction | Waste agri. biomass to insulation material | 4.78 | 8 | Selected |
Food packaging | Wood/cellulose to plastic paper cups | 4.37 | 9 | - |
Food packaging | Straw to food packaging | 4.31 | 10 | - |
Construction | Solid biomass to wood-plastic composite | 4.00 | 11 | - |
Agriculture | Algal polysaccharides to phytoprotectives | 3.91 | 12 | - |
Sector | Value Chain | EU Chain Preference Scores | Final Score | Rank | Status |
---|---|---|---|---|---|
Food Packaging | Starch to bio-plastics | 0.63 | 4.57 | 1 | Selected |
Agriculture | Starch to bio mulch films | 0.63 | 4.17 | 2 | Selected |
Fabrication | Starch to frame material | 0.63 | 3.84 | 3 | Selected |
Chemicals | Cellulose to bio-based solvents | 0.47 | 3.50 | 4 | Selected |
Multiple sectors | Vegetable fats/plant lipids to bio-based lubricants | 0.58 | 3.19 | 5 | Selected |
Chemical | Solid biomass to fine chemicals | 0.58 | 3.02 | 6 | - |
Construction | Waste agri. biomass to insulation material | 0.57 | 2.72 | 7 | - |
Textile | Cellulose to fabric | 0.31 | 1.71 | 8 | - |
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Lokesh, K.; Ladu, L.; Summerton, L. Bridging the Gaps for a ‘Circular’ Bioeconomy: Selection Criteria, Bio-Based Value Chain and Stakeholder Mapping. Sustainability 2018, 10, 1695. https://doi.org/10.3390/su10061695
Lokesh K, Ladu L, Summerton L. Bridging the Gaps for a ‘Circular’ Bioeconomy: Selection Criteria, Bio-Based Value Chain and Stakeholder Mapping. Sustainability. 2018; 10(6):1695. https://doi.org/10.3390/su10061695
Chicago/Turabian StyleLokesh, Kadambari, Luana Ladu, and Louise Summerton. 2018. "Bridging the Gaps for a ‘Circular’ Bioeconomy: Selection Criteria, Bio-Based Value Chain and Stakeholder Mapping" Sustainability 10, no. 6: 1695. https://doi.org/10.3390/su10061695
APA StyleLokesh, K., Ladu, L., & Summerton, L. (2018). Bridging the Gaps for a ‘Circular’ Bioeconomy: Selection Criteria, Bio-Based Value Chain and Stakeholder Mapping. Sustainability, 10(6), 1695. https://doi.org/10.3390/su10061695