| Literature DB >> 35371213 |
Abstract
The use of rail transits results in the generation of a large amount of carbon emissions. Throughout the life cycle of a rail transit system, huge amounts of carbon are emitted, which contributes to the threat posed by carbon emission on the city ecosystem. Despite the many methods previously proposed to quantify carbon emissions from rail transit systems, a method that can be applied to measure carbon emissions of monorail systems is yet to be developed. We have used the life cycle assessment (LCA) method to propose a method that can be used to quantify carbon emissions from monorail transits. The life cycle of a monorail transit system was divided into four stages (production, construction, use, and end-of-life). A monorail transit line segment in Chongqing, China, was selected for a case study. The results show that the "use" stage of the monorail transit line system significantly increases (93.2%) carbon emissions, while the "end-of-life" stage does not contribute significantly to the total carbon emitted. The processes of generation of steal, concrete, and cement are the three leading processes that contribute to the emission of carbon dioxide. The percentages of carbon emitted during these processes are 32%, 29.6%, and 13.3%, respectively. Prestressed concrete activity accounts for the largest proportion (91.1%) of the total carbon emissions. The results presented herein can potentially help in realizing sustainable development and developing green transportation.Entities:
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Year: 2022 PMID: 35371213 PMCID: PMC8970910 DOI: 10.1155/2022/3872069
Source DB: PubMed Journal: Comput Intell Neurosci
LCA and its application in the field of transport.
| Reference | Country, region | Type of rail | Lifespan (years) | Function unit | Data | Life cycle stages |
|---|---|---|---|---|---|---|
| [ | USA | Railway, RTS, subway, and HSR | Varying | PMT and VMT | Sectors and literature | Vehicle (manufacture, operation, maintenance, insurance); infrastructure (construction, operation, maintenance); fuel consumption |
| [ | USA | Railway, metro, CR, and LRT | — | PKT | Literature | Train manufacturing, train maintenance, station construction, track construction, station operation, station maintenance, electricity generation supply chains |
| [ | USA, California | HSR | — | PKT | SimaPro | Vehicle, station, energy production |
| [ | USA, California | HSR | 20 | PKT | Literature | Vehicle, infrastructure, energy production |
| [ | Turkey | HSR and railway | 40 | PKM | SimaPro 7.3.3 | Infrastructure (production of electrical energy, construction of lines, maintenance of lines, operation of lines, waste disposal); operation (production of electrical energy, production of train vehicles, maintenance of train vehicles, operation of train vehicles, waste disposal) |
| [ | Italy, Rome | Metro | 30 | VKT | Operators and GaBi | Material acquisition, manufacturing, use, and end-of-life |
| [ | China | HSR | 20 | SKM | Chinese Core Life Cycle Database (CLCD) and ecoinvent | Vehicle operation, vehicle manufacturing/maintenance/disposal, infrastructure construction |
| [ | USA, New Jersey | Commuter | — | 1 mile | Literature | Material manufacturing |
| [ | Brazil, Rio de Janeiro | Metro | 60 | IPCC 2006 | Infrastructure construction, train manufacture, maintenance, infrastructure operation, and train operation | |
| [ | Portugal | HSR | 35 | PKT | SimaPro and ecoinvent | Material, manufacturing, use, disposal |
| [ | Austria, Vienna | Subway | 100 | PKT | Biding documents and GEMIS 4.5 | Infrastructure construction, infrastructure operation |
| [ | Spain, Bueno | HSR | 60 | PKM/year, TKM/year | Literature | Infrastructure construction, infrastructure maintenance, operation, 60 years |
| [ | Canada, Toronto | Subway | 8 (construction time) | Year | Literature, construction data | Infrastructure construction, operation |
| [ | China, Shanghai | Metro | 50 | 1 km | Observed data | Materials production, materials transportation, on-site construction, operation, and maintenance, 50 years, 1 km, PKT, VKT |
| [ | India, Mumbai | Railway | 25 | PKT, VKT | Department data | Manufacturing, maintenance and operation, infrastructure construction, infrastructure maintenance |
| [ | State of Qatar, Doha | Metro | — | 1000 PKT | Company data and GaBi 6.0 | Train operations, train stations operation |
| [ | Turkey | Railway | — | TKM | SimaPro and ecoinvent | |
| [ | China, Shanghai | HSR | 100 | - | Literature | Conception stage, construction stage, operation and maintenance stage, and disposal stage |
| [ | China | HSR | 100 | T/km T/vehicle | IO-LCA hybrid | Material production, construction |
| [ | France | HSR | 120 | Travel of up to 17 metric tons per axle | Experts and ecoinvent 3.1 | Production, maintenance, end-of-life |
| [ | Belgium | Railway | 6 | TKM | Country-specific data and ecoinvent | Transport operation, rail equipment, and infrastructure |
| [ | China, Fuzhou | Subway | Construction time | Km | In-service lines, regional database (IKE) | Infrastructure construction |
| [ | Spain | HSR | 100 | Year | Google Earth | Construction, maintenance, one-year operation |
| [ | USA, Houston | HSR | 60 | PKT | Ecoinvent | Raw material extraction and processing, vehicle manufacturing, material distribution, construction, operation and maintenance, and end-of-life |
| VKT | ||||||
| [ | Turkey, Kayseri | LRT | 50 | PKM | Company, SimaPro, and ecoinvent | Extraction and production of raw materials, transportation of the raw materials to construction sites, vehicle manufacture, transportation of vehicles, construction of infrastructure, operation, maintenance, and waste disposal |
Figure 1Methodology followed for carbon emission analysis.
Figure 2System boundary.
Figure 3Case scenario.
Carbon emissions generated during the production of materials primarily used for production.
| Material | Unit | Quantity | Factor (kg/unit) | Carbon emissions (t) |
|---|---|---|---|---|
| Cement | t | 622.30 | 719.62 | 447.82 |
| C20 concrete | m3 | 868.71 | 201.38 | 174.94 |
| C25 concrete | m3 | 105.07 | 250.54 | 26.32 |
| C30 concrete | m3 | 2,556.20 | 306.78 | 784.19 |
| C40 concrete | m3 | 6.04 | 391.03 | 2.36 |
| C50 concrete | m3 | 13.59 | 510.94 | 6.94 |
| Sand | t | 2,195.88 | 9.57 | 21.01 |
| Gravel | t | 1,728.33 | 12.69 | 21.93 |
| Stone | m3 | 35.94 | 6.05 | 0.22 |
| Brick 200 × 95 × 53 | 1000 | 474.83 | 504.00 | 239.31 |
| Building blocks | m3 | 789.65 | 146.00 | 115.29 |
| Waterproofing | m2 | 3,088.14 | 2.37 | 7.32 |
| Coating | t | 41.46 | 25.00 | 1.03 |
| Steel Q235B | t | 163.85 | 1,789.06 | 293.14 |
| Other steel | t | 29.97 | 1,789.06 | 53.61 |
| Steel plate | t | 0.29 | 1,789.06 | 0.52 |
| Steel reinforcement | t | 408.39 | 1,789.06 | 730.63 |
| Wood | m3 | 35.87 | 10.45 | 0.37 |
| Aluminum | t | 0.78 | 18.57 | 0.01 |
| Mixed mortar (M5) | m3 | 236.82 | 228.03 | 54.00 |
| Mixed mortar (M2.5) | m3 | 50.10 | 199.23 | 9.98 |
| Cement mortar (1 : 1) | m3 | 34.29 | 730.2 | 25.04 |
| Cement mortar (1 : 2) | m3 | 43.74 | 531.52 | 23.25 |
| Cement mortar (1 : 2.5) | m3 | 252.34 | 469.41 | 118.45 |
| Cement mortar (1 : 3) | m3 | 527.62 | 393.65 | 207.70 |
| Total | 3,365.43 |
Carbon emissions produced during transportation of the materials during the construction stage.
| Item | Means and energy | Distance (km) | Quantity | Carbon emissions (t) |
|---|---|---|---|---|
| Steel | Truck, diesel | 50 | 1,376.36 t | 4.88 |
| Concrete | Mixer, diesel | 50 | 3549.61 m3 | 68.87 |
| Aluminum | Truck, diesel | 50 | 0.78 t | 0.01 |
| Sand and gravel | Truck, diesel | 50 | 3,924.21 t | 13.91 |
| Stone | Truck, diesel | 50 | 35.94 m3 | 0.55 |
| Brick | Truck, diesel | 50 | 478.15 m3 | 7.32 |
| Building blocks | Truck, diesel | 50 | 789.65 m3 | 12.08 |
| Wood | Truck, diesel | 50 | 35.87 m3 | 0.55 |
| Coating | Truck, diesel | 50 | 41.46 t | 0.16 |
| Cement | Truck, diesel | 50 | 622.3 t | 2.41 |
| Mortar | Truck, diesel | 50 | 1,144.91 m3 | 2.75 |
| Total | 113.49 |
The total amount of carbon emissions produced during the transportation of materials was 113.49 t.
Carbon emissions produced during on-site construction.
| Working activities | Item | Construction machine | Energy | Energy consumption | Carbon emissions (t) |
|---|---|---|---|---|---|
| Foundation | Earth excavation | Crawler type mechanical single bucket excavator within 1.0 m³ | Diesel | 1,209.33 kg | 4.44 |
| Stone excavation | Crawler type mechanical single bucket excavator within 1.0 m³ | Diesel | 766.86 kg | 2.81 | |
| Motorized air compressor within 9 m3/min | Electricity | 1,433.42 kWh | 1.66 | ||
| Impact drilling pile | Crawler type mechanical single bucket excavator within 1.0 m³ | Diesel | 114.23 kg | 0.42 | |
| Trucks within 10 t | Diesel | 310.87 kg | 1.14 | ||
| Truck crane within 16 t | Diesel | 278.41 kg | 1.02 | ||
| JK8 percussion drill | Electricity | 10,157.69 kWh | 13.10 | ||
| Mud separator | Electricity | 74.55 kWh | 0.10 | ||
| Mud mixer | Electricity | 434.89 kWh | 0.56 | ||
| Mud pump within Φ 100 mm | Electricity | 1,275.30 kWh | 1.65 | ||
| AC arc welder within 42 kV A | Electricity | 331.52 kWh | 0.43 | ||
| Manual digging pile | Single barrel slow winch within 50 kN | Electricity | 15,087.19 kWh | 19.46 | |
|
| |||||
| Bridge substructure | Concrete | Concrete delivery pump within 60 m3/h | Electricity | 18,372.52 kWh | 23.70 |
| Truck crane within 25 t | Diesel | 2,868.75 kg | 10.53 | ||
| Steel | Truck crane within 25 t | Diesel | 2,562.28 kg | 9.40 | |
| Automatic steel seam welder | Electricity | 4,148.22 kWh | 5.35 | ||
| AC arc welder within 32 kV A | Electricity | 9,809.58 kWh | 12.65 | ||
| Bearing | Truck crane within 20 t | Diesel | 206.96 kg | 0.21 | |
| AC arc welder within 32 kV A | Electricity | 178.36 kWh | 0.23 | ||
|
| |||||
| Bridge superstructure | Concrete | Concrete delivery pump within 60 m3/h | Electricity | 43,544.45 kWh | 56.17 |
| Truck crane within 25 t | Diesel | 40,285.13 kg | 147.85 | ||
| Cast-in-place T-beam reinforcement | AC arc welder within 32 kV A | Electricity | 44,693.70 kWh | 57.66 | |
| AC butt welder within 150 kV A | Electricity | 20,485.11 kWh | 26.43 | ||
| Centralized and standardized processing of rebar | CNC vertical rebar bending center | Electricity | 711.17 kWh | 0.92 | |
| AC arc welder within 32 kV A | Electricity | 44,693.70 kWh | 57.66 | ||
| AC butt welder within 150 kV A | Electricity | 20,485.11 kWh | 26.43 | ||
| Prestressed concrete | Concrete delivery pump within 60 m3/h | Electricity | 98,556.12 kWh | 127.14 | |
| Single-cylinder slow-motion winch within 30 kN | Electricity | 2,681,021.27 kWh | 3,458.52 | ||
| Single-cylinder slow-motion winch within 50 kN | Electricity | 934,667.96 kWh | 1,205.72 | ||
| Φ100 mm electric multistage water pump (≤120 m) | Electricity | 204,479.87 kWh | 263.78 | ||
| AC arc welder within 32 kV A | Electricity | 51,668.13 kWh | 66.65 | ||
| Steel strand | Prestressed steel tensile machine | Electricity | 2,284.49 kWh | 2.95 | |
| Bellows rolling machine | Electricity | 571.23 kWh | 0.74 | ||
| Prestressed reinforcement | Prestressed stretching machine within 900 kN | Electricity | 6980.95 kWh | 9.01 | |
| Bellows rolling machine | Electricity | 621.10 kWh | 0.80 | ||
| Single-cylinder slow-motion winch within 50 kN | Electricity | 6,607.41 kWh | 6.61 | ||
|
| |||||
| Other installation | Optical cable laying | Trucks within 10 t | Diesel | 134.38 kg | 0.49 |
| Engine-driven air compressor within 17 m3/min | Electricity | 46.36 kWh | 0.06 | ||
| Electric cable laying | Trucks within 10 t | Diesel | 33.58 kg | 0.12 | |
| Truck crane within 5 t | Diesel | 9.95 kg | 0.04 | ||
Amount of carbon emissions produced during maintenance works.
| Working activities | Items | Unit | Quantity | Carbon emission factors | Carbon emissions (t) |
|---|---|---|---|---|---|
| Concrete treatment | Polymer mortar | m3 | 2.80 | 354.75 kg carbon emissions/m3 | 0.99 |
| Concrete protective coating | kg | 33.60 | 25 kg carbon emissions/t | 0.00 | |
| Electric concrete grinding machine within 3 kw | Machine-team | 9 | 5 kWh/machine-team | 0.06 | |
| Handheld electric percussion drilling within 3 kw | Machine-team | 18 | 98.28 kWh/machine-team | 2.29 | |
| Electric single-stage centrifugal clean water pump within 50 mm | Machine-team | 56 | 23 kWh/machine-team | 1.67 | |
| Engine-driven air compressor within 0.3 m3/min | Machine-team | 15.20 | 16.1 kWh/machine-team | 0.32 | |
| Total carbon emissions | t | 5.33 | |||
|
| |||||
| Expansion joint repair and replacement (per 10 m) | Plain round bar | t | 0.01 | 1789.06 kg/t | 0.02 |
| Steel plate | t | 0.05 | 1789.06 kg/t | 0.09 | |
| Petroleum asphalt | t | 0.01 | 174.244 kg/t | 0.00 | |
| AC arc welder within 32 kV A | Machine-team | 1.90 | 96.53 kWh/machine-team | 0.24 | |
| Total carbon emissions | t | 0.35 | |||
|
| |||||
| Bearing replacement (per 10 dm3) | HRB400 steel rebar | t | 0.10 | 1789.06 kg/t | 0.18 |
| Steel plate | t | 0.01 | 1789.06 kg/t | 0.02 | |
| AC arc welder within 32 kV A | Machine-team | 0.02 | 96.53 kWh/machine-team | 0.00 | |
| Total carbon emissions | t | 0.20 | |||
|
| |||||
| Crack treatment (per 100 m) | Engine-driven air compressor within 0.3 m3/min | Machine-team | 3.6 | 16.1 kWh/machine-team | 0.08 |
| Total carbon emissions | t | 0.08 | |||
|
| |||||
| Section enlargement (per 10 m3) | C30 pump concrete | m3 | 15 | 306.78 kg/m3 | 4.60 |
| 32.5 cement | t | 7.65 | 719.62 kg/t | 5.51 | |
| Medium (coarse) sand | m3 | 8.85 | 9.57 kg/m3 | 0.08 | |
| Gravel | m3 | 8.40 | 12.69 kg/m3 | 0.11 | |
| Concrete mixer within 250 L | Machine-team | 1.24 | 20.91 kWh/machine-team | 0.03 | |
| 4–6 m3/h concrete jet | Machine-team | 3.17 | 15.4 kWh/machine-team | 0.06 | |
| Engine-driven air compressor within 9 m3/min | Machine-team | 2.78 | 51.50 kg diesel/machine-team | 0.52 | |
| Total carbon emissions | t | 10.91 | |||
Figure 4(a) Amounts of carbon emissions generated during different stages of operation throughout the life of the material. (b) Proportion of carbon emissions generated during different life cycle stages.
Figure 5(a) Amounts of carbon emissions generated during the use of different materials. (b) Proportions of carbon emissions generated during the use of different materials.
Figure 6Proportions of carbon emissions generated during different construction activities.
Figure 7Uncertainty analysis conducted for carbon emissions produced during the life cycle of the material.
Sensitivity analysis conducted for carbon emissions produced during the production stage.
| Order | Parameters | Variance contribution (%) | Rank correlation |
|---|---|---|---|
| 1 | Life cycle length | 47.0 | 0.69 |
| 2 | Annual operation electricity consumption | 46.9 | 0.68 |
| 2 | Single-cylinder slow-motion winch within 30 KN | 0.1 | 0.02 |
| 3 | Single-cylinder slow-motion winch within 50 KN | 0.1 | 0.01 |
| 4 | C40 concrete quantity | 0.1 | 0.01 |
| 5 | Cement mortar (1 : 3) quantity | 0.1 | 0.01 |
| 6 | Brick 200 × 95 × 53 quantity | 0.1 | 0.01 |
| 7 | Others | 0.1 | - |