Calculating and Analyzing Carbon Emission Factors of Prefabricated Components
Abstract
:1. Introduction
2. Literature Review
2.1. Existing Research on Carbon Emission Calculation and Analysis
2.2. Existing Research on Carbon Emission Factor Database
2.3. Existing Research on Carbon Emissions of Prefabricated Components
2.4. Summary of Existing Research
3. Methodology
3.1. Range of Prefabricated Components at the Production Stage and Sources of Carbon Emissions
3.2. Process for Calculating Carbon Emissions at the Production Stage of Prefabricated Components
3.2.1. Carbon Emissions Caused by Raw Material Consumption
3.2.2. Carbon Emissions Caused by Raw Material Transportation
3.2.3. Carbon Emissions Caused by Energy Consumption by Machinery and Equipment
3.2.4. Carbon Emissions Caused by Labor Consumption
3.3. Selection of Low-Grade Carbon Emission Factors
4. Demonstrative Cases
4.1. Basic Information on the Case
4.2. Measurement of CEF of Typical Prefabricated Components
- (1)
- Carbon emissions caused by raw material consumption
- (2)
- Carbon emissions caused by raw material transportation
- (3)
- Carbon Emissions caused by energy consumption by machinery and equipment
- (4)
- Carbon emissions caused by labor consumption
4.3. Analysis of Carbon Emission
5. Discussion
5.1. Carbon Emission Reduction Strategies for Raw Material Consumption
5.2. Carbon Emission Reduction Strategies for Raw Material Transportation
5.3. Sensitivity Analysis of Carbon Reduction Strategies
6. Conclusions
- (1)
- The carbon emissions of prefabricated components mainly include carbon emission from the consumption of raw materials, carbon emission from the transportation of raw materials, carbon emission from the operation of machinery and equipment, and carbon emission from labor; therefore, calculation of the carbon emission factor of prefabricated components should be carried out based on these four aspects, and the statistical analyses should be carried out according to the regional characteristics.
- (2)
- The carbon emission decomposition of prefabricated components shows a larger contribution of carbon emission from raw material consumption and transportation and a smaller contribution from others. The contribution percentages of the carbon emission sources of prefabricated components studied in this project are as follows: raw material consumption (87.18% to 92.18%), raw material transportation (5.54% to 9.06%), energy consumption caused by the use of machinery and equipment (2.20% to 3.63%), and labor consumption (0.07% to 0.12%).
- (3)
- Carbon reduction strategies for prefabricated components should focus on the decarbonization of raw material consumption and raw material transportation. The ranking of the sensitivity of the carbon emission factors of precast components to specific strategies, from largest to smallest, is as follows: using green raw materials (8.80–15.38%), using recycled raw materials (7.07–13.48%), using new transportation means (5.08–8.58%), using high-performance raw materials (3.41–6.30%), and raw material transportation path optimization (1.74–2.89%).
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Data Type | Interpretation |
---|---|
Measured/mass-energy-balanced emission factors | Emission factors obtained via direct measurement or usinf mass-energy balancing methods |
Equipment empirical emission factors | Equipment-specific emission factors, but not directly measured |
Emission factors provided by the manufacturer | Emission factors based on those obtained at the manufacturer’s level |
Regional emission factors | Emission factors based on regional characteristics |
National emission factors | Emission factors based on national characteristics |
International emission factors | Internationally common emission factors |
Raw Material Type | Carbon Emission Factor | Factor Unit | Data Source |
---|---|---|---|
Cement | 0.735000 | kgCO2/kg | a |
Sand | 0.002510 | kgCO2/kg | a |
Gravel | 0.002180 | kgCO2/kg | a |
Tap water | 0.000168 | kgCO2/kg | a |
Reinforcement | 3.030000 | kgCO2/kg | a |
Type of Prefabricated Component | Raw Material Consumption (kg) | Carbon Emission (kgCO2) | ||||
---|---|---|---|---|---|---|
Cement | Sand | Gravel | Tap Water | Reinforcement | ||
PEWP | 360.00 | 804.00 | 1066.00 | 165.00 | 80.00 | 511.37 |
PIWP | 80.00 | 511.37 | ||||
PS | 120.00 | 632.57 | ||||
PLP | 160.00 | 753.77 | ||||
PB | 54.00 | 432.59 | ||||
PACP | 148.00 | 717.94 |
Type of Prefabricated Component | Raw Material Transportation Volume (km) | Carbon Emission (kgCO2) | ||||
---|---|---|---|---|---|---|
Cement | Sand | Gravel | Tap Water | Reinforcement | ||
PEWP | 35.00 | 500.00 | 150.00 | 0 | 40.00 | 45.06 |
PIWP | 45.06 | |||||
PS | 45.19 | |||||
PLP | 45.31 | |||||
PB | 44.98 | |||||
PACP | 45.27 |
Energy Type | Carbon Emission Factor | Factor Unit | Data Source |
---|---|---|---|
Tap water | 0.000168 | kgCO2/kg | a |
Electricity | 0.570300 | kgCO2/kwh | b |
Fuel oil | 0.848009 | kgCO2/kg | c |
Type of Prefabricated Component | Energy Consumption Type | Carbon Emission (kgCO2) | ||
---|---|---|---|---|
Water | Electricity | Fuel Oil | ||
PEWP | 1620 kg | 30.1 kwh | 0.006375 kg | 18.03 |
PIWP | 18.03 | |||
PS | 18.03 | |||
PLP | 18.03 | |||
PB | 18.03 | |||
PACP | 18.03 |
Type of Prefabricated Component | Labor Consumption (Workday) | Carbon Emission (kgCO2) |
---|---|---|
PEWP | 0.55 | 0.61 |
PIWP | 0.61 | |
PS | 0.61 | |
PLP | 0.61 | |
PB | 0.61 | |
PACP | 0.61 |
Carbon Reduction Strategy | PEWP | PIWP | PS | PLP | PB | PACP |
---|---|---|---|---|---|---|
Adopt green raw materials | 13.00% | 13.00% | 10.50% | 8.80% | 15.38% | 9.24% |
Adopt high-performance raw materials | 4.40% | 4.40% | 5.51% | 6.30% | 3.41% | 6.08% |
Adopt recycled raw materials | 9.22% | 9.22% | 11.68% | 13.48% | 7.07% | 12.98% |
Adopt new transportation tools | 7.33% | 7.33% | 6.00% | 5.08% | 8.58% | 5.31% |
Optimize raw material transportation routes | 2.49% | 2.49% | 2.05% | 1.74% | 2.89% | 1.82% |
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Yu, L.; Wang, Y.; Li, D. Calculating and Analyzing Carbon Emission Factors of Prefabricated Components. Sustainability 2023, 15, 8706. https://doi.org/10.3390/su15118706
Yu L, Wang Y, Li D. Calculating and Analyzing Carbon Emission Factors of Prefabricated Components. Sustainability. 2023; 15(11):8706. https://doi.org/10.3390/su15118706
Chicago/Turabian StyleYu, Lei, Yang Wang, and Dezhi Li. 2023. "Calculating and Analyzing Carbon Emission Factors of Prefabricated Components" Sustainability 15, no. 11: 8706. https://doi.org/10.3390/su15118706
APA StyleYu, L., Wang, Y., & Li, D. (2023). Calculating and Analyzing Carbon Emission Factors of Prefabricated Components. Sustainability, 15(11), 8706. https://doi.org/10.3390/su15118706