A Systematic Review of the Role of BIM in Building Sustainability Assessment Methods
Abstract
:1. Introduction
2. Building Sustainability Assessment Methods
2.1. BREEAM
2.2. LEED
2.3. SBTool
3. Methodology
- What is the actual practical implementation of BIM to assess BSA criteria?
- Which percentage of BSA criteria can be assessed with BIM?
- What is the BIM software commonly used to assess BSA criteria?
- Which are the most preferred journals by researchers on the topic?
- Facing the current integration of BIM in LEED and BREEAM, will a BIM-automated assessment for SBTool be attractive enough?
- year of publication;
- title;
- journal;
- addressed BSA method;
- assessed criteria;
- adopted software.
4. Results
4.1. Related Review Studies—Idea Validation
4.2. Publications for Consideration
4.3. BIM Application in BREEAM
4.4. BIM Application in LEED
4.5. BIM Application in SBTool
5. Discussion
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Year | Journal | Title | Scope and Aim | Research Sample | Main Conclusions |
---|---|---|---|---|---|
2015 | Automation in Construction | Enhancing environmental sustainability over building lifecycles through green BIM: A review [11] | Green-BIM related publications and their research focus in building lifecycle—planning and design, construction, operation, repair and maintenance, demolition and others | 84 academic publications | BIM has emerged as a popular energy performance analysis tool during a building’s conceptual design stage. It has also been applied to on-site emissions estimation and to visualisation. Green BIM development has only started to scratch the surface, and its full potential is yet to be explored by practitioners. |
2017 | Journal of Cleaner Production | A mixed review of the adoption of Building Information Modelling (BIM) for sustainability [20] | Current state-of-the-art BIM development for sustainability by construction phase—planning, design, construction, operation and maintenance, refurbishment and demolition, use of products and materials and energy consumption | 36 standards and guidelines and 91 academic publications | Standards and guidelines are mainly focused on planning, design, construction, energy consumption, operation and maintenance; Academic publications are focus on design and energy consumption. |
Energy and Buildings | Critical review of BIM-based LCA method to buildings [36] | Review of academic publications centred on BIM-based LCA | 11 academic publications | The integration of BIM–LCA has mainly been developed in new buildings or projects; its utility from early stages of design has been mostly recognised. Furthermore, this paper concluded that almost half of the case studies developed an environmental impact assessment based on LCA but focused on the energy lifecycle. | |
Automation in Construction | Building Information Modeling (BIM) for green buildings: A critical review and future directions [8] | Applications of BIM in supporting the design, construction, operation, and retrofitting processes of green buildings; the various functions of BIM for green building analyses such as energy, emissions, and ventilation analysis and; the applications of BIM in supporting green building assessments (GBA) | Over 400 academic publications | BIM is an essential tool for the design stage of green buildings and has potential value for the construction, facility and operation management phases. Primary BIM functions to assess the sustainability level of a building include the following analysis: energy performance, carbon emissions, natural ventilation, solar radiation, natural and artificial lighting, water usage, acoustics performance and evaluation of thermal comfort. Green BIM applications could bring several benefits for GBA, such as estimating scores, managing application documents, and improving the process efficiency | |
2017 | Renewable and Sustainable Energy Reviews | Lifecycle energy efficiency in building structures: A review of current developments and future outlooks based on BIM capabilities [35] | Sustainability and energy-efficient methodologies in BIM, including LCA, energy analysis and sustainable rating systems. Focus on BIM-based LCA—lifecycle stage and applied software | 34 academic publications | Evaluation frameworks that quantify the performance criteria of sustainable and energy-efficient structural systems could emerge, while intuitive decision workflows in the future engineering practices could also be consolidated. The benefits of such approaches are higher during the earlier design stages of buildings where decisions have fewer cost, are more effective and are easier to be implemented. |
2019 | Sustainable Cities and Society | Analysis of the scientific evolution of sustainable building assessment Methods [14] | Study about the evolution of the research field employing a systematic literature review of bibliographic records for sustainable building assessment methods, and a review based on the bibliometric analysis | 565 academic publications | Sustainable building assessment methods and sustainable building are significant themes, especially over the last five years, with a gradual increase in the number of studies. Instruments have evolved from tools that only looked at environmental aspects towards more complete instruments that include economic and social aspects in the evaluation of sustainable building. |
A review and outlook for integrated BIM application in green building assessment [22] | Review on the breadth of green building evaluation matrixes achievable with BIM | 19 academic publications | LEED criteria were identified as the most frequently addressed. Assessments concerning the categories of energy and atmosphere, materials and resources have been extensively demonstrated through Revit scheduling and API. The development density, community connectivity and alternative transportation, although seldom addressed, have been well demonstrated in the literature. | ||
Automation in Construction | Informetric analysis and review of literature on the role of BIM in sustainable construction [15] | Current state of the literature on sustainable construction and BIM, including environmental, economic, and social dimensions and their search combinations | 317 academic publications | The number of published scientific works on BIM and sustainable construction registered exponential growth in previous years. There is a higher synergy between environmental and economic dimensions, and between environmental and social dimensions. There is a lack of research that considers all dimensions of sustainability. Top 10 researchers and journals on the subject were identified. |
Year | Journal | Title | BREEAM Version | Assessed Criteria | Software |
---|---|---|---|---|---|
2013 | Energy and Buildings | Variations in results of building energy simulation tools, and their impact on BREEAM and LEED ratings: A case study [38] | New Construction Non-Domestic Buildings 2011 | Ene 01 | TAS, EnergyPlus, IES-VE |
2015 | International Journal of Architectural Computing | An “Environmental BIM” Approach for the Architectural Schematic Design Stage [39] | International 2013 | Ene 01, Ene 04 Man 05 Le 06 Wat 01 Hea 01, Hea 02 | Revit, ArchiWIZARD, Excel, PEREN |
2016 | Automation in Construction | Green building assessment tool (GBAT) for integrated BIM-based design decisions [13] | Europe Commercial 2009 | Mat 01, Mat 02, Mat 03, Mat 04, Mat 05, Mat 06 and Mat 07 | ArchiCAD, Visual Studio |
Structural sustainability appraisal in BIM [40] | Offices 2008 | Ene 01 Mat 01, Mat 03, Mat 04 Le 03, Le 04, Le 05 | Revit, Visual Basic | ||
2019 | Journal of Building Engineering | Sustainability-led design: Feasibility of incorporating whole-lifecycle energy assessment into BIM for refurbishment projects [25] | UK Refurbishment and Fit-out 2014 | Ene 03 Hea 01, Hea 02, Hea 04, Wst 05 Mat 03, Mat 05 Pol 04 | Ecotec, EcoStar, AECOsim Energy Simulator, DesignBuilder, GBS, SBEM, Simplified Building, IES-VE |
Year | Journal | Title | LEED Version | Assessed Criteria | Software |
---|---|---|---|---|---|
2011 | Automation in Construction | Building information modelling for sustainable design and LEED rating analysis [9] | NC v2.2 | WEc2, WEc3.1, WEc3.2, EAp2, EAc1, EQc7.1, EQc8.1 | Revit, IES-VE |
2012 | Journal of Architectural Computing | Data Sharing for Sustainable Building Assessment [41] | NC v2.1 | SSp1, SSc2 | Revit, LEED Sustainable Sites |
2013 | Building Simulation | Integrating building information modelling with sustainability to design building projects at the conceptual stage [23] | NC v3 | SSc5.2, SSc6.1, SSc6.2, SSc7.1, SSc7.2 SSc8; EAc1, EAc3, EAc5, EAc6; MRc2, MRc3, MRc4, MRc5, MRc6;EQp1, EQc2, EQc4.1, EQc4.2, EQc4.3, EQc4.4, EQc5, EQc6, EQc7, EQc8.1, EQc8.2; IDc1, IDc2; RPc1, RPc2 | Revit, Athena Impact Estimator (AEI), Excel |
Energy and Buildings | Variations in results of building energy simulation tools, and their impact on BREEAM and LEED ratings: A case study [38] | NC v3 | EAc1 | TAS, EnergyPlus, IES-VE | |
2014 | Proceedings of the 2014 Winter Simulation Conference | Lifecycle evaluation of building sustainability using BIM and RTLS [42] | Schools v3 | SSp1, SSp2, SSc1, SSc2, SSc3, SSc4.1, SSc4.2, SSc4.3, SSc4.4, SSc5.1, SSc5.2, SSc6.1, SSc6.2, SSc7.1, SSc7.2, SSc8, SSc9, SSc10 | Revit, Real-Time Location System, LEED Sustainable Sites |
Journal of Information Technology in Construction | Integrating Building Information Modeling (BIM) and Energy Analysis Tools with Green Building Certification System to Conceptually Design Sustainable Buildings [43] | NC Canada v1 | EAp2, EAc2, MRc3, MRc4, MRc5, MRc7, EQc4.1, EQc4.3, EQc8.1 | EcoScorecard, Revit, Ecotect, IES-VE, Excel, AEI | |
2015 | Journal of Architectural Computing | An “Environmental BIM” Approach for the Architectural Schematic Design Stage [39] | Core and Shell v3 | SSc5.2 SSc6.1 EAp2, EAc1, EAc2 MRc1.1 EQc7.1 EQc8.1 | Revit, ArchiWIZARD, Excel, PEREN |
Sustainable Cities and Society | Integrating building information modelling (BIM) and LEED system at the conceptual design stage of sustainable buildings [24] | NC v3 | EAp1, EAp2, EAp3, EAc1, EAc2, EAc3, EAc4, EAc5, EAc6 MRp1, MRc1, MRc2, MRc3, MRc4, MRc5, MRc6, MRc7 | Revit | |
2016 | 11th European Conference on Product and Process Modelling | Building Information Modeling (BIM) for LEED IEQ category prerequisites and credits calculations [44] | NC v3 | EQp1, EQc2 | Revit and Dynamo |
22nd International Conference on Virtual System and Multimedia | Utilisation of building information modelling (BIM) in planning an adaptive reuse project of a Traditional Malay House (TMH) [45] | NC v3 | EQc8.1 | Revit, GBS | |
Sustainability | A Study on the LEED Energy Simulation Process Using BIM [46] | NC v3 | EAc1 | Revit, Trace 700 | |
Journal of Environmental Informatics | Framework for Sustainable Low-Income Housing Projects using Building Information Modeling [47] | NC v3 | MRc3, MRc4, MRc5, MRc6, MRc7 | Revit, Excel, VENSIM, Stella | |
5th Creative Construction Conference | Integrating BIM and Web Map Service (WMS) for Green Building Certification [48] | NC v3 | SSc2, SSc4 | Revit, Google Maps | |
Journal of Green Building | Green Building and Biodiversity: Facilitating Bird Friendly Design With Building Information Models [49] | Core and Shell v3 | Pilot-Credits SSpc55 | Revit, Dynamo | |
2017 | Journal of Civil Engineering and Management | Desired points at minimum cost in the “optimise energy performance” credit of leed certification [50] | NC v4 | EAc2 | Revit, Sefaira, Excel |
Automation in Construction | Integrating web map service and building information modelling for location and transportation analysis in green building certification process [51] | NC v4 | SSc2, SSc4.1 | Revit, Google Maps, LEED Sustainable Sites | |
2018 | Journal of Cleaner Production | BIM-based approach for optimising lifecycle costs of sustainable buildings [52] | NC v3 | MRc3, MRc4, MRc5, MRc6, MRc7 | Revit, Monte Carlo simulation tool, Genetic Algorithms |
Civil Engineering and Environmental Systems | Building information modelling for an automated building sustainability assessment [4] | O+M: Schools | SSc2 | Revit, Dyno and Dynamo | |
Journal of Technology for Architecture and Environment | MSOT: materials selection optimisation in the LEED v4 protocol—a case study with BIM [53] | NC v4 | MRc2, MRC3, MRc4 | Revit, Excel | |
2019 | Journal of Cleaner Production | Framework for construction system selection based on lifecycle cost and sustainability assessment [54] | Schools v4 | MRc1, MRc5 | STAAD PRO and eQUEST |
Automation in Construction | A BIM-WMS integrated decision support tool for supply chain management in construction [55] | NC v3 | MRc5 | Revit, Google Maps | |
Building & Environment | Integration of Building Information Modeling and Web Service Application Programming Interface for assessing building surroundings in early design stages [56] | NC v4 | LTc4, LTc5 | Dynamo, web service API |
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Carvalho, J.P.; Bragança, L.; Mateus, R. A Systematic Review of the Role of BIM in Building Sustainability Assessment Methods. Appl. Sci. 2020, 10, 4444. https://doi.org/10.3390/app10134444
Carvalho JP, Bragança L, Mateus R. A Systematic Review of the Role of BIM in Building Sustainability Assessment Methods. Applied Sciences. 2020; 10(13):4444. https://doi.org/10.3390/app10134444
Chicago/Turabian StyleCarvalho, José Pedro, Luís Bragança, and Ricardo Mateus. 2020. "A Systematic Review of the Role of BIM in Building Sustainability Assessment Methods" Applied Sciences 10, no. 13: 4444. https://doi.org/10.3390/app10134444
APA StyleCarvalho, J. P., Bragança, L., & Mateus, R. (2020). A Systematic Review of the Role of BIM in Building Sustainability Assessment Methods. Applied Sciences, 10(13), 4444. https://doi.org/10.3390/app10134444