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2025 Vol.32, Issue 1 Preview Page

Case Study

28 February 2025. pp. 66-77
Abstract
References
1

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British Columbia. (2009). Wood First Act, British Columbia Laws, https://www.bclaws.gov.bc.ca

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Canadian Wood Council. (2020). Wood Design Manual 2020.

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Choi, J. H. (2024, October 25). Limitations of domestic timber construction. The Korea Economic Daily.

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Chong, O. W., & Zhang, J. (2021). Logic representation and reasoning for automated BIM analysis to support automation in offsite construction. Automation in Construction, 129, 103756. https://doi.org/10.1016/j.autcon.2021.103756

10.1016/j.autcon.2021.103756
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European Commission. (2004). Eurocode 5: Design of timber structures.

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Fernandez, A., Peronto, J., & Komp, J. (2020). Ascent - Chanllenges and advances of tall mass timber construction. International Journal of High-rise Buildings, 9(3), 235-244. https://doi.org/10.21022/IJHRB.2020.9.3.235

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Gasparri, E., & Aitchison, M. (2019). Unitised timber envelopes. A novel approach to the design of prefabricated mass timber envelopes for multi-storey buildings. Journal of Building Engineering, 26, 100898. https://doi.org/10.1016/j.jobe.2019.100898

10.1016/j.jobe.2019.100898
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Hafner, A., & Schäfer, S. (2017). Comparative LCA study of different timber and mineral buildings and calculation method for substitution factors on building level. Journal of Cleaner Production, 167, 630-642.

10.1016/j.jclepro.2017.08.203
10

International Code Council. (2021). International Building Code - Chapter 5 General Building Height and Areas.

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International Energy Agency. (2023). Buildings, https://www.iea.org/energy-system/buildings/

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International Union of Forest Research Organizations. (2023). European Wood Policy Platform.

13

Kim, Y. (2023). Classification and structural characteristics of the mid and high-rise hybrid timber buildings. Masters Dissertation, Myongji University, Seoul.

14

Liven, H., & Abrahamsen, R. (2023). MJØSTÅRNET: The world's tallest timber building. World Conference on Timber Engineering, Oslo, Finland.

10.52202/069179-0547
15

Mehdipoor, A., Iordanova, I., & Al-Hussein, M. (2023). Identification and evaluation of the key decision support factors for selecting off-site construction in canada: a building information modeling (BIM)-enabled Approach. Digital Manufacturing Technology, 3(2), 137-155. https://doi.org/10.37256/dmt.3220232944

10.37256/dmt.3220232944
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Nam, K., Lim, H., Kang, M., & Ahn, B. (2021). The Domestic wood industry's contribution to the national economy and its growth factors. Journal of Rural Development/Nongchon-Gyeongje, 44(3), 53-74.

17

Park, S. H., & Choi, H. J. (2024, June). Case analysis for implementation of technology for middle and high-rise wooden buildings. The Society of Air-Conditioning and Refrigerating Engineers of Korea 2024 summer annual conference, Pyeongchang, Korea.

18

Schmitz, R. (2022). Sara Cultural Center, Skelleftea, Sweden - steel box trusses and tension rods allow long spans and a timber core. Council on Tall Buildings and Urban Habitat 2022, Chicago, United States.

19

Thinkwood. (2025). Ascent - commercial, mass timber, multifamily, tall wood, https://www.thinkwood.com/construction-projects/ascent

Information
  • Publisher :The Korean Society of Living Environmental System
  • Publisher(Ko) :한국생활환경학회
  • Journal Title :Journal of The Korean Society of Living Environmental System
  • Journal Title(Ko) :한국생활환경학회
  • Volume : 32
  • No :1
  • Pages :66-77
  • Received Date : 2025-01-29
  • Revised Date : 2025-02-03
  • Accepted Date : 2025-02-03