A Comprehensive Life-Cycle Cost Analysis Approach Developed for Steel Bridge Deck Pavement Schemes
Abstract
:1. Introduction
2. LCC Checklist of SBDPS
2.1. Manager Cost Phase
2.1.1. Construction Cost
2.1.2. Maintenance Cost
2.1.3. Residual Value
2.1.4. Indirect Loss
2.2. User Cost Phase
2.2.1. Vehicle Operating Cost
2.2.2. Traffic Delay Cost
3. LCC Analysis Model of SBDPS
3.1. SBDPS Data in China
3.2. Input Parameter of LCC Model
3.2.1. Fixed Parameters
3.2.2. Dynamic Parameters
3.3. Representative Traffic Conditions of SBDPS
3.4. Reliability Verification of LCC Analysis Model
4. LCC Analysis of SBDPS
4.1. LCC Composition Evaluation of SBDPS
4.2. Weight Analysis of LCC Component
4.3. LCC Comparison of Different SBDPS
5. Conclusions
- (1)
- The total uncertainty of the calculation results of the LCC of SBDPS under representative traffic conditions is all within 0.1, indicating the life-cycle economic analysis method of SBDPS is reliable.
- (2)
- Compared with the cumulative traffic volume, CESAL has a closer relationship with the LCC of SBDPS. With the increase of CESAL, the manager cost and user cost of the EA system and the GA system increase, and the increase rate of manager cost and user cost of the GA system is higher than that of the EA system.
- (3)
- Based on the expert-scoring approach, a weight of user cost was analyzed to ensure more reasonable user cost in the life-cycle economy analysis of SBDPS. The GA system has better LCC when the CESAL is lower, while the EA system has better LCC when the CESAL is large. The breaking point of CESAL for the life-cycle economy of the EA system and the GA system is 15 million times.
- (4)
- With the increase in CESAL, credibility, influenced by random factors such as construction quality, leads to a gradual increase in the LCC of the EA system and the GA system under the same CESAL, indicating that the life-cycle economic analysis of the SBDPS should consider the influence of random factors such as construction quality.
6. Limitations of the Study
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
SBDPS | Steel bridge deck pavement scheme |
LCC | Life-cycle cost |
CESAL | Cumulative equivalent single axle loads |
SDPQI | Performance index of SBDPS |
IRI | International roughness index of SBDPS |
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Sample Number | Location | Construction Time (Year) | Traffic Characteristics | Medium Maintenance Records | ||
---|---|---|---|---|---|---|
Current Daily Traffic (Vehicles) | Ratio of Big and Heavy Vehicles | Time | Repair Form | |||
EA-1 | Jiangsu Province | 2001 | Around 70,000 | Around 40% | 13th year 15th year | Centralized repair |
EA-2 | Hubei Province | 2009 | Around 50,000 | Around 50% | - | - |
EA-3 | Hubei Province | 2010 | Around 20,000 | Around 30% | 9th year | Centralized repair |
GA-1 | Chongqing Province | 2007 | Around 80,000 | <10% | 9th year | Seal cover |
GA-2 | Jiangsu Province | 2012 | Around 25,000 | Around 20% | 5th year | Partial seal cover |
GA-3 | Anhui Province | 2013 | Around 40,000 | Around 30% | 5th year | Seal cover |
Item | Value | Unit | Notes | |
---|---|---|---|---|
Analysis period | 10 | Years | - | |
Discount rate | 4 | % | - | |
Toll | 10 | yuan/pcu | Converted into small vehicles | |
Fuel price | 6.68 | yuan/L | - | |
Loss for every accident | 4.5 | 104 yuan | - | |
Size of steel-deck | Length | 1000 | m | Road section |
Width | 33 | m | - | |
Lanes | 6 | - | In both direction | |
Average grade | 3 | % | - | |
Construction cost | GA SYSTEM | 1100 | yuan/m2 | - |
EA SYSTEM | 1500 | |||
Residual value | SDPQImin [25] | 40 | ||
Rate of daily maintenance | GA SYSTEM | 2 | % | - |
EA SYSTEM | 1.50 | |||
Threshold of repairing | GA SYSTEM | 70 | - | SDPQI |
EA SYSTEM | ||||
Cost of repairing | GA SYSTEM | 70 | yuan/m2 | Coating |
EA SYSTEM | 50 | Repairing | ||
Work zone | Lane closed | 2 | - | every time |
Closed period | 7 | Days | - | |
Price of wheels | For small vehicles | 403 | yuan | - |
For big vehicles | 1535 | |||
For heavy vehicles | 2168 | |||
Price of vehicles | For small vehicles | 14.46 | 104 yuan | - |
For big vehicles | 15.12 | |||
For heavy vehicles | 33 | |||
Age of vehicles | For small vehicles [27] | 27.5 | 104 km | - |
For big vehicles [27] | 35 | |||
For heavy vehicles [27] | 25 | |||
Age index of vehicles | For small vehicles [27] | 0.308 | - | - |
For big vehicles [27] | 0.483 | |||
For heavy vehicles [27] | 0.371 | |||
Value of passengers’ time | For small vehicles [30] | 32.78 | yuan/h | - |
For big vehicles [30] | 81.5 | |||
For heavy vehicles [30] | 101.8 |
Representative Traffic Condition | Initial Traffic Volume (104 pcu/Day) | Traffic Volume Growth (%/Year) | Class of Heavy Loads | CTV (104 pcu) 2* | CESAL (104 Times) | |
---|---|---|---|---|---|---|
Grade of Loads | Ratio of Big and Heavy Vehicles | |||||
1 | 2 | 8 | TTC5 1* | 15% | 10,575 3* | 273 3* |
2 | 3 | 4 | TTC2 | 25% | 13,146 | 622 |
3 | 4 | 10 | TTC3 | 35% | 23,268 | 1569 |
4 | 5 | 6 | TTC1 | 45% | 24,055 | 2935 |
5 | 6 | 2 | TTC4 | 5% | 23,980 | 163 |
Calculation Parameters | Uncertainty of the Original Data | Uncertainty of the Algorithm |
---|---|---|
Construction cost | 0 | 0.025 |
Daily maintenance rate | 0.05 | 0.025 |
Cost of repairing | 0.029 | 0.025 |
Work zone | 0.1 | 0.05 |
Toll | 0.01 | 0.025 |
Fuel price | 0.05 | 0 |
Price of wheels | 0.075 | 0 |
Price of vehicles | 0.075 | 0 |
Loss for every accident | 0.143 | 0.05 |
Value of passengers’ time | 0.143 | 0.05 |
Representative Traffic Condition | EA System | GA System | ||||
---|---|---|---|---|---|---|
15% Credibility | 50% Credibility | 85% Credibility | 15% Credibility | 50% Credibility | 85% Credibility | |
1 | 0.051 | 0.051 | 0.051 | 0.057 | 0.056 | 0.057 |
2 | 0.051 | 0.050 | 0.050 | 0.057 | 0.055 | 0.055 |
3 | 0.051 | 0.049 | 0.049 | 0.055 | 0.061 | 0.065 |
4 | 0.048 | 0.055 | 0.058 | 0.057 | 0.081 | 0.081 |
5 | 0.050 | 0.050 | 0.051 | 0.057 | 0.056 | 0.057 |
Representative Traffic Condition | LCC Composition | EA System | GA System | |||||
---|---|---|---|---|---|---|---|---|
15% Credibility | 50% Credibility | 85% Credibility | 15% Credibility | 50% Credibility | 85% Credibility | |||
1 | LCCm | Cc − Cr | 2943.57 | 3000.55 | 3042.59 | 2171.09 | 2299.28 | 2321.72 |
Cm | 602.23 | 602.23 | 602.23 | 588.85 | 588.85 | 588.85 | ||
Clost | 0 | 0 | 0 | 0 | 0 | 0 | ||
LCCu | Co | 11.55 | 26.42 | 35.65 | 63.69 | 91.44 | 109.99 | |
Cd | 0 | 0 | 0 | 0 | 0 | 0 | ||
2 | LCCm | Cc − Cr | 2943.57 | 3092.30 | 3211.85 | 2201.67 | 2420.55 | 2532.64 |
Cm | 602.23 | 602.23 | 602.23 | 588.85 | 588.85 | 588.85 | ||
Clost | 0 | 0 | 0 | 0 | 0 | 0 | ||
LCCu | Co | 19.84 | 78.08 | 114.36 | 224.22 | 333.53 | 407.31 | |
Cd | 0 | 0 | 0 | 0 | 0 | 0 | ||
3 | LCCm | Cc − Cr | 2951.43 | 3405.88 | 3660.46 | 2462.98 | 2712.56 | 2816.72 |
Cm | 602.23 | 602.23 | 602.23 | 588.85 | 744.91 | 913.70 | ||
Clost | 0 | 0 | 0 | 0 | 179.70 | 271.77 | ||
LCCu | Co | 111.41 | 474.58 | 701.42 | 1387.03 | 1893.66 | 1846.35 | |
Cd | 0 | 0 | 0 | 0 | 276.17 | 413.86 | ||
4 | LCCm | Cc − Cr | 3370.53 | 3677.75 | 3923.38 | 2852.73 | 2769.26 | 2715.94 |
Cm | 602.23 | 713.7 | 834.27 | 744.91 | 1434.10 | 1461.66 | ||
Clost | 0 | 170.24 | 272.54 | 170.24 | 523.27 | 440.10 | ||
LCCu | Co | 123.36 | 503.3 | 603.76 | 1573.02 | 1049.62 | 1232.47 | |
Cd | 0 | 276.17 | 413.86 | 0 | 1031.22 | 924.98 | ||
5 | LCCm | Cc − Cr | 1980.00 | 2028.43 | 2034.84 | 1452.00 | 1600.64 | 1609.95 |
Cm | 602.23 | 602.23 | 602.23 | 588.85 | 588.85 | 588.85 | ||
Clost | 0 | 0 | 0 | 0 | 0 | 0 | ||
LCCu | Co | 7.29 | 16.42 | 22.03 | 39.35 | 56.22 | 67.88 | |
Cd | 0 | 0 | 0 | 0 | 0 | 0 |
Sample Number | Manager Cost | Vehicle Operating Cost | Traffic Delay Cost |
---|---|---|---|
Scholar 1 | 1 | 0.27 | 0.12 |
Scholar 2 | 1 | 0.30 | 0.11 |
Scholar 3 | 1 | 0.19 | 0.69 |
Scholar 4 | 1 | 0.50 | 1.00 |
Scholar 5 | 1 | 0.50 | 0.15 |
Manager 1 | 1 | 0.12 | 0.36 |
Manager 2 | 1 | 0.11 | 0.37 |
Manager 3 | 1 | 0.14 | 0.57 |
Manager 4 | 1 | 0.15 | 0.22 |
Manager 5 | 1 | 0.12 | 0.19 |
Average 1* | 1 | 0.24 | 0.38 |
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Liu, C.; Qian, Z.; Liao, Y.; Ren, H. A Comprehensive Life-Cycle Cost Analysis Approach Developed for Steel Bridge Deck Pavement Schemes. Coatings 2021, 11, 565. https://doi.org/10.3390/coatings11050565
Liu C, Qian Z, Liao Y, Ren H. A Comprehensive Life-Cycle Cost Analysis Approach Developed for Steel Bridge Deck Pavement Schemes. Coatings. 2021; 11(5):565. https://doi.org/10.3390/coatings11050565
Chicago/Turabian StyleLiu, Changbo, Zhendong Qian, Yang Liao, and Haisheng Ren. 2021. "A Comprehensive Life-Cycle Cost Analysis Approach Developed for Steel Bridge Deck Pavement Schemes" Coatings 11, no. 5: 565. https://doi.org/10.3390/coatings11050565
APA StyleLiu, C., Qian, Z., Liao, Y., & Ren, H. (2021). A Comprehensive Life-Cycle Cost Analysis Approach Developed for Steel Bridge Deck Pavement Schemes. Coatings, 11(5), 565. https://doi.org/10.3390/coatings11050565