Environmental Impacts of Building Construction Using Cross-laminated Timber Panel Construction Method: A Case of the Research Building in Kyushu, Japan
Abstract
:1. Introduction
2. Materials and Methods
2.1. Surveyed CLT Building
2.2. System Boundary
2.3. Environmental Impact Assessment Method
2.4. Inventory Data Collection
2.4.1. Production Stage (A1–A3)
2.4.2. Construction Stage (A4–A5)
2.5. Background Data
3. Results
3.1. Environmental Impacts of the CLT Building
3.2. Environmental Impacts of the CLT-Related Structural Construction
4. Discussion
4.1. Environmentally Conscious Design of the CLT Building
4.2. Environmental Impact Reduction of CLT Manufacturing
4.3. Uncertainty Analysis
4.4. Biogenic Carbon Content
4.5. Comparison with Other Studies
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Category | Specification |
---|---|
Name | Joint experiment building of the Kyushu branch of the Forestry Research Institute. |
Structure and construction method | CLT panel method |
Building area | 1037.90 m2 |
Total floor area | 1418.23 m2 |
Floor | 2 floors above ground |
CLT usage | Wall: 219.8 m3 (302 panels) Floor and roof: 331.2 m3 (222 panels) |
CLT dimensions and layer composition | 90 mm (3-layer 3-ply) 150 mm (5-layer 5-ply) 210 mm (5-layer 7-ply) |
Fireproof | Quasi-Fireproof 45 minutes construction |
Intended application | Research and experiment building |
Location | Kumamoto city, Kumamoto Pref., Kyushu, Japan. |
Environmental Impact Category | Impact Assessment Method | Reference |
---|---|---|
Climate change | IPCC AR5 | Myhre, Shindell, Bréon, et al. (2013) [20] |
Ozone layer depletion | ODP 1 | WMO (1999) [21] |
Eutrophication | EPMC 2 | Itsubo (2012) [22] |
Acidification | DAP 3 | Itsubo (2012) [22] |
Photochemical oxidation | OCEF 4 | Itsubo (2012) [22] |
Item | Value |
---|---|
Crushed stone | 7.39 × 105 kg |
Soil stabilizer (cement) | 2.23 × 105 kg |
Fresh concrete | 8.41 × 102 m3 |
Concrete blocks | 6.78 × 103 kg |
Deformed bar | 1.08 × 105 kg |
Structural carbon steel | 1.00 × 104 kg |
Hot-dip galvanized steel sheet | 4.23 × 104 kg |
Other ordinary steel | 3.30 × 103 kg |
Expanded polystyrene (EPS) | 1.10 × 103 kg |
Sawn and planed wood | 5.20 × 10 m3 |
Common plywood (concrete form panel) | 1.20 × 102 m3 |
Special plywood (roof bed material) | 2.56 × 10 m3 |
CLT | 5.51 × 102 m3 |
Wooden window frame | 3.00 × 103 kg |
Lumber cement products | 4.25 × 102 kg |
Gypsum board | 4.07 × 103 m2 |
Polymer-modified asphalt | 4.00 × 103 kg |
Glass fiber (heat insulating) | 9.61 × 10 kg |
Rock wool (heat insulating) | 8.01 × 102 kg |
Calcium silicate (heat insulating) | 2.57 m3 |
Module | Item | Value |
---|---|---|
Transportation to site (A4) | 10 t trucks | 2.22 × 105 tkm |
4 t trucks | 2.02 × 104 tkm | |
2 t trucks | 2.13 × 103 tkm | |
Installation (A5) | Heavy oil (type A) | 4.12 × 104 L |
Diesel oil | 1.20 × 105 L | |
Electricity | 7.95 × 103 kWh | |
Residual soil treatment | 3.06 × 102 m3 |
Environmental Impact Category | Category Indicator |
---|---|
Climate change | 1.01 × 106 kg-CO2e |
Ozone layer depletion | 3.50 × 10−2 kg-CFC11e |
Eutrophication | 1.04 × 10 kg-PO43−e |
Acidification | 4.64 × 102 kg-SO2e |
Photochemical oxidation | 1.53 × 10 kg-C2H4e |
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Nakano, K.; Karube, M.; Hattori, N. Environmental Impacts of Building Construction Using Cross-laminated Timber Panel Construction Method: A Case of the Research Building in Kyushu, Japan. Sustainability 2020, 12, 2220. https://doi.org/10.3390/su12062220
Nakano K, Karube M, Hattori N. Environmental Impacts of Building Construction Using Cross-laminated Timber Panel Construction Method: A Case of the Research Building in Kyushu, Japan. Sustainability. 2020; 12(6):2220. https://doi.org/10.3390/su12062220
Chicago/Turabian StyleNakano, Katsuyuki, Masahiko Karube, and Nobuaki Hattori. 2020. "Environmental Impacts of Building Construction Using Cross-laminated Timber Panel Construction Method: A Case of the Research Building in Kyushu, Japan" Sustainability 12, no. 6: 2220. https://doi.org/10.3390/su12062220
APA StyleNakano, K., Karube, M., & Hattori, N. (2020). Environmental Impacts of Building Construction Using Cross-laminated Timber Panel Construction Method: A Case of the Research Building in Kyushu, Japan. Sustainability, 12(6), 2220. https://doi.org/10.3390/su12062220