BIM and DfMA: A Paradigm of New Opportunities
Abstract
:1. Introduction
1.1. Digital Tools for the AEC Industry
“…digital representation of physical and functional characteristics of a facility creating a shared knowledge resource for information about it forming a reliable basis for decisions during its lifecycle, from earliest conception to demolition.”[17]
1.2. Off-Site Manufacturing within AEC
1.3. Design for Manufacture and Assembly
1.4. Design for Deconstruction/Disassembly
2. Materials and Methods
2.1. Design for Manufacture and Assembly: Framework Development
- Preparation phase
- Design and pre-construction phases
- Construction/assembly to close-out phase
- Use and reuse/demolition phases.
2.1.1. Preparation Phase
2.1.2. Design and Preconstruction Phases
2.1.3. Construction/Assembly and Close-Out Phases
2.1.4. Use and Demolition/Reuse Phases
2.2. DfMA Feasibility Case Study
2.2.1. Core Components Identification
2.2.2. BIM Object Library Development
- EF_20_10-300-AEST-EXT
- EF_20_10-300-AEST-INT
- EF_20_10-300-MEP&A-EXT
- EF_20_10-300-MEP-EXT
- EF_20_10-300-STND-EXT
- EF_20_10-300-STND-INT
- EF_20_10-300-MEP-INT
- EF_25_10-300-MEP&A-INT
- EF_25_10-300-STND-INT
- EF_25_10-300-MEP-INT
- EF_25_10-300-AEST-INT
- EF_30_10-300-STND
- EF_30_20-300-MEP
- EF_30_20-300-MEP-FDATION
- EF_30_20-300-STND
- EF_30_20-300-STND-FDATION
2.2.3. Technical Specifications for Standard Type Components
- EF_20_10-300-STND-EXT: External standard structural walls components were designed to be 7.5 m long, within three structural columns, and a selection of layers (including insulation and waterproof membrane). For visualisation purposes, some layers were set up with a grade of transparency.
- EF_25_10-300-STND-EXT: Internal standard non-structural walls components were designed to be a maximum of 4 m long with layers that guaranteed the correct level of insulation. For visualisation purposes some layers were set up with a grade of transparency.
- EF_30_10-300-STND: Standard roof was designed considering logistics and the most efficient way to transport and assemble this component. Components not exceeding 9–10 m were considered suitable for this purpose. For visualisation purposes some layers were set up with a grade of transparency.
- EF_30_20-300-STND: Standard floors were designed following the same criteria for roofs regarding logistics. For visualisation purposes some layers were set up with a grade of transparency.
2.2.4. Prototype Design Based on DfMA
- 4 × EF_20_10-300-AEST-EXT
- 1 × EF_20_10-300-AEST-INT
- 1 × EF_20_10-300-MEP&A-EXT_A
- 1 × EF_20_10-300-MEP&A-EXT_B
- 1 × EF_20_10-300-MEP&A-EXT_C
- 1 × EF_20_10-300-MEP&A-EXT_D
- 2 × EF_20_10-300-MEP-EXT
- 1 × EF_20_10-300-STAND-INT
- 2 × EF_20_10-300-STND-EXT
- 1 × EF_25_10-300-MEP&A-INT_A
- 1 × EF_25_10-300-MEP&A-INT_B
- 1 × EF_25_10-300-MEP-INT_A
- 1 × EF_25_10-300-MEP-INT_B
- 2 × EF_25_10-300-STND-INT
- 1 × EF_30_10-300-STND_A
- 1 × EF_30_10-300-STND_B
- 1 × EF_30_20-300-MEP
- 1 × EF_30_20-300-MEP-FNDTN
- 1 × EF_30_20-300-STND-FNDTN_A
- 1 × EF_30_20-300-STND-FNDTN_B
- 1 × EF_30_20-300-STND_A
- 1 × EF_30_20-300-STND_B
3. Results & Discussion
3.1. General Case Study Findings
3.2. BIM and DfMA Strategy Findings
3.3. Discussion
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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1 | EF_20_10-300-AEST-EXT | Element/Function | Structural element | |
LoD | Detailed design | |||
Source | Generic object | |||
Type | Aesthetic | |||
Subtype | Exterior | |||
2 | EF_20_10-300-AEST-INT | Element/Function | Structural element | |
LoD | Detailed design | |||
Source | Generic object | |||
Type | Aesthetic | |||
Subtype | Interior | |||
3 | EF_20_10-300-MEP&A-EXT | Element/Function | Structural element | |
LoD | Detailed design | |||
Source | Generic object | |||
Type | With mech., elect., and plumbing and aesthetic features | |||
Subtype | Exterior | |||
4 | EF_20_10-300-MEP-EXT | Element/Function | Structural element | |
LoD | Detailed design | |||
Source | Generic object | |||
Type | With mech., elect, and plumbing | |||
Subtype | Exterior | |||
5 | EF_20_10-300-MEP-INT | Element/Function | Structural element | |
LoD | Detailed design | |||
Source | Generic object | |||
Type | With mech., elect, and plumbing | |||
Subtype | Interior | |||
6 | EF_20_10-300-STND-EXT | Element/Function | Structural element | |
LoD | Detailed design | |||
Source | Generic object | |||
Type | Standard | |||
Subtype | Exterior | |||
7 | EF_20_10-300-STND-INT | Element/Function | Structural element | |
LoD | Detailed design | |||
Source | Generic object | |||
Type | Standard | |||
Subtype | Interior | |||
8 | EF_25_10-300-MEP&A-INT | Element/Function | Wall (non-structural) | |
LoD | Detailed design | |||
Source | Generic object | |||
Type | With mech., elect., and plumbing and aesthetic features | |||
Subtype | Interior | |||
9 | EF_25_10-300-STND-INT | Element/Function | Wall (non-structural) | |
LoD | Detailed design | |||
Source | Generic object | |||
Type | Standard | |||
Subtype | Interior | |||
10 | EF_25_10-300-MEP-INT | Element/Function | Wall (non-structural) | |
LoD | Detailed design | |||
Source | Generic pbject | |||
Type | With mech., elect., and plumbing | |||
Subtype | Interior | |||
11 | EF_25_10-300-AEST-INT | Element/Function | Wall (non-structural) | |
LoD | Detailed design | |||
Source | Generic object | |||
Type | Aesthetic | |||
Subtype | Interior | |||
12 | EF_30_10-300-STND | Element/Function | Roof | |
LoD | Detailed design | |||
Source | Generic object | |||
Type | Standard | |||
13 | EF_30_20-300-MEP | Element/Function | Floor | |
LoD | Detailed design | |||
Source | Generic object | |||
Type | With mech., elect., and plumbing | |||
14 | EF_30_20-300-MEP-FNDTN | Element/Function | Floor | |
LoD | Detailed design | |||
Source | Generic object | |||
Type | With mech., elect., and plumbing | |||
Subtype | Assembled to foundations | |||
15 | EF_30_20-300-STND | Element/Function | Floor | |
LoD | Detailed design | |||
Source | Generic object | |||
Type | Standard | |||
16 | EF_30_20-300-STND-FNDTN | Element/Function | Floor | |
LoD | Detailed design | |||
Source | Generic object | |||
Type | Standard | |||
Subtype | Assembled to foundations |
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Abrishami, S.; Martín-Durán, R. BIM and DfMA: A Paradigm of New Opportunities. Sustainability 2021, 13, 9591. https://doi.org/10.3390/su13179591
Abrishami S, Martín-Durán R. BIM and DfMA: A Paradigm of New Opportunities. Sustainability. 2021; 13(17):9591. https://doi.org/10.3390/su13179591
Chicago/Turabian StyleAbrishami, Sepehr, and Rocío Martín-Durán. 2021. "BIM and DfMA: A Paradigm of New Opportunities" Sustainability 13, no. 17: 9591. https://doi.org/10.3390/su13179591
APA StyleAbrishami, S., & Martín-Durán, R. (2021). BIM and DfMA: A Paradigm of New Opportunities. Sustainability, 13(17), 9591. https://doi.org/10.3390/su13179591