Smart Facility Management System Based on Open BIM and Augmented Reality Technology
Abstract
:1. Introduction
1.1. Background and Purpose of the Study
1.2. Study Scope and Method
2. Literature Review
2.1. Building Facility Management Utilizing BIM
2.2. Utilizing AR Technology within the Construction Industry
3. Smart FM and Information Exchange Systems
3.1. Smart FM Work Process
3.2. Defining the COBie System
4. Design of an AR-Based Smart FMS
4.1. Smart Facility Management BPMN
4.2. System Function Display Configuration and UI
5. System Development and Validation
5.1. Development of AR-Based Smart FMS
5.2. Case Study Using a Prototype AR-Based Smart FMS
5.3. System Demonstration of an AR-Based Smart FMS and Validation
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
References
- Teicholz, E. Overview and Current State of FM Technology; Facility Design and Management Handbook; Teicholz, E., Ed.; McGraw-Hill Companies Inc.: New York, NY, USA, 2001; pp. 25.11–25.27. [Google Scholar]
- East, B.; Carrasquillo-Mangual, M. The COBie Guide. Available online: https://nibs.org (accessed on 15 October 2021).
- Sacks, R.; Eastman, C.; Lee, G.; Teicholz, P. BIM Handbook: A Guide to Building Information Modeling for Owners, Designers, Engineers, Contractors, and Facility Managers; John Wiley & Sons: Hoboken, NJ, USA, 2018. [Google Scholar]
- Kim, J.E.; Choi, H.S.; Gang, T.Y. Derivation of System Requirements and Implementation of System Framework for BIM-based Urban Facility Maintenance System. J. Korea Contents Assoc. 2014, 14, 397–406. [Google Scholar] [CrossRef] [Green Version]
- Hu, Z.Z.; Tian, P.L.; Li, S.W.; Zhang, J.P. BIM-based integrated delivery technologies for intelligent MEP management in the operation and maintenance phase. Adv. Eng. Softw. 2018, 115, 1–16. [Google Scholar] [CrossRef]
- Chen, W.; Chen, K.; Cheng, J.C.; Wang, Q.; Gan, V.J. BIM-based framework for automatic scheduling of facility maintenance work orders. Autom. Constr. 2018, 91, 15–30. [Google Scholar] [CrossRef]
- Hassanain, M.A.; Froese, T.M.; Vanier, D.J. Implementation of a distributed, model-based integrated asset management system. J. Inf. Technol. Constr. (ITcon) 2003, 8, 119–134. [Google Scholar]
- Motamedi, A.; Hammad, A.; Asen, Y. Knowledge-assisted BIM-based visual analytics for failure root cause detection in facilities management. Autom. Constr. 2014, 43, 73–83. [Google Scholar] [CrossRef]
- Yu, K.; Froese, T.; Grobler, F. A development framework for data models for computer-integrated facilities management. Autom. Constr. 2000, 9, 145–167. [Google Scholar] [CrossRef]
- Mendez, R.O. The Building Information Model in Facilities Management. Ph.D. Thesis, Worcester Polytechnic Institute, Worcester, MA, USA, 2006. [Google Scholar]
- East, W.E.; Brodt, W. BIM for construction handover. J. Build. Inf. Modeling 2007, 28–35. Available online: https://www.brikbase.org/content/bim-construction-handover (accessed on 15 October 2021).
- Becerik-Gerber, B.; Jazizadeh, F.; Li, N.; Calis, G. Application areas and data requirements for BIM-enabled facilities management. J. Constr. Eng. Manag. 2012, 138, 431–442. [Google Scholar] [CrossRef]
- Lee, S.G.; Yu, J.H. Prerequisites to utilize BIM (Building Information Modeling) for Facility Management. J. Korea Facil. Manag. Assoc. 2013, 8, 27–39. [Google Scholar]
- Choi, J.H.; Um, D.Y. A study on the feasibility of COBie to the wastewater treatment plant. J. Korean Soc. Civ. Eng. 2014, 34, 273–283. [Google Scholar] [CrossRef]
- Kang, T.W.; Hong, C.H. A study on software architecture for effective BIM/GIS-based facility management data integration. Autom. Constr. 2015, 54, 25–38. [Google Scholar] [CrossRef]
- Gao, X.; Pishdad-Bozorgi, P. BIM-enabled facilities operation and maintenance: A review. Adv. Eng. Inform. 2019, 39, 227–247. [Google Scholar] [CrossRef]
- Mohamed, A.G.; Abdallah, M.R.; Marzouk, M. BIM and semantic web-based maintenance information for existing buildings. Autom. Constr. 2020, 116, 103209. [Google Scholar] [CrossRef]
- Wang, Y.; Wang, X.; Wang, J.; Yung, P.; Jun, G. Engagement of facilities management in design stage through BIM: Framework and a case study. Adv. Civ. Eng. 2013, 2013, 8. [Google Scholar] [CrossRef] [Green Version]
- Hammad, A.; Garrett, J.H., Jr.; Karimi, H.A. Potential of mobile augmented reality for infrastructure field tasks. In Applications of Advanced Technologies in Transportation; ASCE: Boston, MA, USA, 5 August 2002; pp. 425–432. [Google Scholar]
- Koo, B.; Choi, H.; Shon, T. Wiva: Wsn monitoring framework based on 3D visualization and augmented reality in mobile devices. In International Conference on Smart Homes and Health Telematics; Springer: Berlin/Heidelberg, Germany, 2009; pp. 158–165. [Google Scholar]
- Piekarski, W.; Thomas, B.H. Tinmith-mobile outdoor augmented reality modelling demonstration. In Proceedings of the 2nd IEEE/ACM International Symposium on Mixed and Augmented Reality, IEEE Computer Society, Tokyo, Japan, 10 October 2003; p. 317. [Google Scholar]
- Wang, X.; Dunston, P.S. Compatibility issues in Augmented Reality systems for AEC: An experimental prototype study. Autom. Constr. 2006, 15, 314–326. [Google Scholar] [CrossRef]
- Moon, S.Y.; Yun, S.Y.; Kim, H.S.; Kang, L.S. Improved Method for Increasing Maintenance Efficiency of Construction Structure Using Augmented Reality by Marker-Less Method. J. Korean Soc. Civ. Eng. 2015, 35, 961–968. [Google Scholar] [CrossRef] [Green Version]
- Bae, H.; Golparvar-Fard, M.; White, J. Rapid image-based localization using clustered 3d point cloud models with geo-location data for aec/fm mobile augmented reality applications. In Computing in Civil and Building Engineering; ASCE: Orlando, FL, USA, 2014; pp. 841–849. [Google Scholar]
- Koch, C.; Neges, M.; König, M.; Abramovici, M. Natural markers for augmented reality-based indoor navigation and facility maintenance. Autom. Constr. 2014, 48, 18–30. [Google Scholar] [CrossRef]
- Chung, S.W.; Kwon, S.W.; Moon, D.Y.; Ko, T.K. Smart Facility Management Systems Utilizing Open BIM and Augmented/Virtual Reality. In Proceedings of the 35th International Symposium on Automation and Robotics in Construction, Berlin, Germany, 20–25 July 2018. [Google Scholar]
- Abramovici, M.; Wolf, M.; Adwernat, S.; Neges, M. Context-aware maintenance support for augmented reality assistance and synchronous multi-user collaboration. Procedia CIRP 2017, 59, 18–22. [Google Scholar] [CrossRef]
- Chu, M.; Matthews, J.; Love, P.E. Integrating mobile building information modelling and augmented reality systems: An experimental study. Autom. Constr. 2018, 85, 305–316. [Google Scholar] [CrossRef]
- Liu, F.; Seipel, S. Precision study on augmented reality-based visual guidance for facility management tasks. Autom. Constr. 2018, 90, 79–90. [Google Scholar] [CrossRef]
- Chen, Y.J.; Lai, Y.S.; Lin, Y.H. BIM-based augmented reality inspection and maintenance of fire safety equipment. Autom. Constr. 2020, 110, 103041. [Google Scholar] [CrossRef]
- Götze, J.; Schumann, C.A.; Müller, E. Context awareness and augmented reality in facility management. In Proceedings of the 2014 International Conference on Engineering, Technology and Innovation (ICE), Bergamo, Italy, 23–25 June 2014; pp. 1–5. [Google Scholar]
- Meža, S.; Turk, Ž.; Dolenc, M. Component based engineering of a mobile BIM-based augmented reality system. Autom. Constr. 2014, 42, 1–12. [Google Scholar] [CrossRef]
- Wang, X.; Ong, S.K.; Nee, A.Y. A comprehensive survey of augmented reality assembly research. Adv. Manuf. 2016, 4, 1–22. [Google Scholar] [CrossRef]
- Milgram, P.; Kishino, F. A Taxonomy of Mixed Reality Visual Displays. IEICE Trans. Inf. Syst. 1994, 77, 1321–1329. [Google Scholar]
- Palmas, F.; Klinker, G. Defining Extended Reality Training: A Long-Term Definition for All Industries. In Proceedings of the 2020 IEEE 20th International Conference on Advanced Learning Technologies (ICALT), Tartu, Estonia, 6–9 July 2020; pp. 322–324. [Google Scholar]
Phase | Sheet | Contents |
---|---|---|
All | Contact | People and companies |
Document | All applicable document references | |
Attribute | Properties of referenced item | |
Coordinate | Spatial locations in box, line or point format | |
Issue | Other issues remaining at handover | |
Early Design | Facility | Information on facilities and standards |
Floor | Vertical levels and exterior areas | |
Space | Spaces | |
Zone | Sets of spaces sharing a specific attribute | |
Type | Types of equipment, products and materials | |
Detailed Design | Component | Individually named or schedule items |
System | Sets of components providing a service | |
Assembly | Constituents for types, components and others | |
Connection | Logical connections between components | |
Impact | Economic, environmental and social impacts at various stages in the life cycle | |
O&M | Spare | On-site and replacement parts |
Resource | Required materials, tools and training | |
Job | PM, safety and other job plans |
Member Subject to Inspection | Operation and Maintenance Tasks |
---|---|
Door | (1) Check open or closed status |
(2) Check model name and warranty condition | |
(3) Check the doorknob condition | |
(4) Check for any serious damage externally | |
(5) Verify history track record | |
(6) Record inspection result | |
Window | (1) Check open or closed status |
(2) Check model name and warranty condition | |
(3) Check the window knob condition | |
(4) Check for any serious damage externally | |
(5) Verify history track record | |
(6) Record inspection result | |
Inspection Space | (1) Measure and record temperature |
(2) Measure and record humidity |
Summary of Participants’ Experiences | |||||
---|---|---|---|---|---|
Experience with BIM and AR | Control Group | Non-Control Group | Experience of Data Retrieval | Control Group | Non-Control Group |
Level of BIM Understanding (Proficiency) | Preferred Data Retrieval Method (Multiple Responses Allowed) | ||||
Very proficient | 2 | 1 | Electronic 2D or 3D CAD and PDFs | 8 | 6 |
Proficient | 3 | 3 | Native models (.rvt, .dwg, etc.) | 5 | 6 |
Somewhat proficient | 4 | 3 | Printed drawings or documents | 2 | 4 |
Not very proficient | 1 | 2 | |||
No proficiency at all | - | 1 | |||
Level of AR Understanding (Proficiency) | Preferred Technologies for Data Retrieval (Multiple Responses Allowed) | ||||
Very proficient | - | - | Printed drawings | 5 | 8 |
Proficient | 3 | 5 | Tablet | 2 | 1 |
Somewhat proficient | 5 | 4 | Smartphone | 6 | 5 |
Not very proficient | 1 | 1 | Laptop PC | 1 | 3 |
No proficiency at all | 1 | - | Desktop PC | 2 | 4 |
Participants’ Opinion of Using the Tools (Paper-Based vs. AR-Based Smart FMS) | |||||
How difficult was it to find and retrieve information? | Control Group | Non-Control Group | Did you feel that the tool was sufficient to complete the required tasks? | Control Group | Non-Control Group |
Easy | 1 | 6 | Yes | 2 | 9 |
Medium | 2 | 3 | No | 8 | 1 |
Hard | 6 | 1 | |||
Could not locate it | 1 | - | |||
Participants’ Opinion of the Quality of Interaction | |||||
Control Group | Non-Control Group | ||||
Please comment on which part of the tool (paper-based or AR-based smart FMS) operation was difficult? | Viewing of attribute data Location confirmation Viewing of sensor information | Small display Inconvenient controls | |||
Please comment on which part of the tool (paper-based or AR-based smart FMS) was helpful to you? | Intuitive information viewing | Location confirmation Rapid information access Portability |
Group Statistics | |||||||||||
Participant | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | |
Control Group | 13.04′ | 15.11′ | 13.96′ | 15.03′ | 18.74′ | 16.39′ | 17.72′ | 15.66′ | 19.63′ | 18.42′ | |
Non-Control Group | 9.85′ | 11.63′ | 12.39′ | 8.06′ | 10.59′ | 7.79′ | 11.88′ | 10.21′ | 11.49′ | 9.51′ | |
Group | N | Mean | Std. Deviation | Std. Error Mean | |||||||
Control Group | 10 | 16.37 | 2.18719 | 0.69165 | |||||||
Non-Control Group | 10 | 10.34 | 1.57303 | 0.49744 | |||||||
Levene’s test for equality of variances | T-test for equality of means | ||||||||||
F | Sig. | t | df | Sig. (2-tailed) | Mean Difference | ||||||
1.64538 | 0.21586 | 7.07785 | 18 | 0.00001 | 6.03 |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Chung, S.; Cho, C.-S.; Song, J.; Lee, K.; Lee, S.; Kwon, S. Smart Facility Management System Based on Open BIM and Augmented Reality Technology. Appl. Sci. 2021, 11, 10283. https://doi.org/10.3390/app112110283
Chung S, Cho C-S, Song J, Lee K, Lee S, Kwon S. Smart Facility Management System Based on Open BIM and Augmented Reality Technology. Applied Sciences. 2021; 11(21):10283. https://doi.org/10.3390/app112110283
Chicago/Turabian StyleChung, Suwan, Chung-Suk Cho, Jinwoo Song, Kyuhyup Lee, Seojoon Lee, and Soonwook Kwon. 2021. "Smart Facility Management System Based on Open BIM and Augmented Reality Technology" Applied Sciences 11, no. 21: 10283. https://doi.org/10.3390/app112110283
APA StyleChung, S., Cho, C. -S., Song, J., Lee, K., Lee, S., & Kwon, S. (2021). Smart Facility Management System Based on Open BIM and Augmented Reality Technology. Applied Sciences, 11(21), 10283. https://doi.org/10.3390/app112110283