Archetypical CBMs in Construction and a Translation to Industrialized Manufacture
Abstract
:1. Introduction
2. Background
2.1. Industrialized Construction
2.2. Circular Business Models
3. Method
- What archetypical CBMs in construction are to be expected?
- How do the archetypical CBMs for construction translate to performance criteria for industrialized construction?
3.1. Step 1: Archetypical CBMs in Construction
3.1.1. Constructing the Body of Literature
- Set A comprises theoretical circular constructs with a general and strategic nature and caters to the development of CBM archetypes for construction;
- Set B comprises case study examples relating to circular economy construction and was used to validate the developed archetypes.
3.1.2. Creating and Coding Set A
3.1.3. Archetype Definition
3.1.4. Creating and Coding Set B and Archetype Validation
3.2. Step 2: Translation to Industrialized Construction
4. Results
4.1. CBM Archetypes for Buildings
4.2. Translation to Industrialized Construction
5. Discussion
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
Appendix A
Number | Source | Element |
---|---|---|
1 | [36,37,38,39,40] | Industrial symbiosis |
2 | [3,39,41,42] | Product service system |
3 | [3,19,39,42] | Product life extension |
4 | [2,3,36] | Access and performance model |
5 | [2,39,43] | Take-back model |
6 | [3,19,42] | Circular supply chain |
7 | [3,19,42] | Recovery and recycling |
8 | [3,7,36] | Encourage sufficiency |
9 | [2,6] | Reuse building products |
10 | [3,36] | Classic long-life model |
11 | [19,42] | Sharing platform |
12 | [22,39] | Dematerialization |
13 | [7,39] | Product stewardship |
14 | [2] | Material reduction |
15 | Building reuse | |
16 | Building refurbishment | |
17 | Leasing building | |
18 | Reprocessing resources | |
19 | [3] | Collaborative consumption |
20 | Asset management | |
21 | Reverse logistics of obsolete products | |
22 | Made to order | |
23 | Extending product value | |
24 | Tracing facility | |
25 | Material matchmaker | |
26 | Service matchmaker | |
27 | Progressive purchase | |
28 | Performance based contracting | |
29 | Collaborative production | |
30 | Cascades | |
31 | Pure cycles | |
32 | Produce on demand | |
33 | [41] | Façade leasing |
34 | [29] | Affordable flexible housing |
35 | [36] | Extending product value |
36 | [9] | Regenerate |
37 | Share | |
38 | Optimize | |
39 | Loop | |
40 | Virtualize | |
41 | Exchange | |
42 | [22] | Closing resource loops |
43 | Intensifying resource loops | |
44 | Slowing resource loops | |
45 | Narrowing resource loops | |
46 | [44] | Adaptive reuse |
47 | Design for deconstruction | |
48 | Design for reuse | |
49 | Design for manufacture and assembly | |
50 | [19] | Product as a service |
51 | [7] | Optimize material and energy efficiency |
52 | Create value from waste | |
53 | Substitute with renewables | |
54 | Deliver functionality | |
55 | [39] | Design for remanufacture and repair |
56 | Design for life cycle | |
57 | Design for repurpose | |
58 | Result- or use oriented solutions | |
59 | Cleaner production and zero waste | |
60 | Collaborative business | |
61 | Partnerships | |
62 | Availability of reuse channels | |
63 | Traceability and transparency | |
64 | Waste collection and handling | |
65 | Intelligent goods | |
66 | 3D printing mass customization | |
67 | Customer incentive, discount for return | |
68 | [43] | Operational lease |
69 | Pay-per-use model | |
70 | Buy-back model | |
71 | Brokerage | |
72 | [45] | E-BAMB |
73 | [6] | Design for attachment |
74 | Design for standardization and compatibility | |
75 | Design for maintenance and repair | |
76 | Design for upgrades and adjustments | |
77 | Design for disassembly | |
78 | Design for recycling | |
79 | Extending resource value |
Number | Source | Element | Archetype |
---|---|---|---|
1 | [6] | The Circular Kitchen (CIK) | Adaptable building |
2 | [41] | PV-leasing | Stewardship |
3 | [46] | Houseful | Stewardship |
4 | [3] | Desso | Stewardship |
5 | Interface | Circular input | |
6 | Philips | Stewardship | |
7 | [34] | Insulation material from CDW | Circular input |
8 | [7] | Park 20|20 | Stewardship Adaptable building Sharing |
9 | Alliander Office | Adaptable building Stewardship | |
10 | Heerema Office | Circular output | |
11 | [47] | Off-site retrofit | Adaptable building |
12 | [48] | WPC out of by-products | Circular input |
13 | Concrete out of CDW | Circular input | |
14 | Bricks out of CDW | Circular input | |
15 | [43] | Mitshubishi | Stewardship Sharing |
16 | [49] | Gypsum out of CDW | Circular input |
17 | [40] | Greenhouse out of CDW | Circular input |
Appendix B
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Description | Parameter |
---|---|
Academic databases used | Scopus (268 publications) Science Direct (61 publications) Web of Science (247 publications) |
Search terms | (Wild card * indicates the term includes variations on the word such as plural/ singular and noun/adjective) |
First term in search string Second term in search string Third term in search string | “business model *”; product *; circular *; loop *; cycl * construction *; building *; “built environment *” |
Search fields | Title, abstract, keywords |
Exemplary search string | “business model *” AND circular * AND construction * |
Timespan | Published from 2000 and prior to August 2019 |
Element | Value Proposition | Revenue Stream |
---|---|---|
Recovery and recycling [19] | Regenerate natural system | Single payment |
Narrowing resource loops [22] | Regenerate natural system | Single payment |
First Term: Value Propositions | Second Term: Revenue Stream | Third Term: Value Occurrence |
---|---|---|
Design out waste and pollution (D) | Reoccurring (R) | Beginning of Life (B) |
Keep products and materials in the loop (K) | One-time (O) | Middle of Life (M) |
Regenerate the natural system (R) | End of Life (E) |
Code | Category | Archetype |
---|---|---|
RXB | 1 | Smart input |
DXE | 2 | Smart output |
KRM | 3 | Stewardship |
KOM | 4 | Adaptable building |
ROM | 5 | Never-ending building |
Archetype | Scope of Work Industrialized Manufacture | Practical Implications for Industrialized Manufacture for Construction |
---|---|---|
Smart Input | A reactive use of secondary and renewable raw materials and inter-organizational synergy in the form of industrial symbioses, efficient and reduced material use and mass customization. |
|
Smart Output | Facilitating cascaded re-use of components and materials. |
|
Stewardship | Manufacturing building products and taking producer responsibility of using and retrieving secondary and renewable raw materials. |
|
Adaptable building | Facilitating the basis and compatible products for a flexibly used building. |
|
Never ending building | Increasing a time-less quality and durability of materials and products in order to obtain a building that continues to appeal to users without making physical changes to the building. |
|
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Heesbeen, C.; Prieto, A. Archetypical CBMs in Construction and a Translation to Industrialized Manufacture. Sustainability 2020, 12, 1572. https://doi.org/10.3390/su12041572
Heesbeen C, Prieto A. Archetypical CBMs in Construction and a Translation to Industrialized Manufacture. Sustainability. 2020; 12(4):1572. https://doi.org/10.3390/su12041572
Chicago/Turabian StyleHeesbeen, Charlotte, and Alejandro Prieto. 2020. "Archetypical CBMs in Construction and a Translation to Industrialized Manufacture" Sustainability 12, no. 4: 1572. https://doi.org/10.3390/su12041572
APA StyleHeesbeen, C., & Prieto, A. (2020). Archetypical CBMs in Construction and a Translation to Industrialized Manufacture. Sustainability, 12(4), 1572. https://doi.org/10.3390/su12041572