Multiparametric Analysis of a Gravity Retaining Wall
Abstract
:1. Introduction
2. Mathematical Model of a Gravity Retaining Wall
3. Parametric Analysis of a Gravity Retaining Wall
| 2, 2.5, 3, 3.5, 4, 4.5 and 5 m; |
| 30, 35 and 40°; |
| 1/2, 2/3 and 1; |
| 0, 10 and 20°; |
| 0, 2 and 4 kPa. |
4. Sensitivity Analysis
5. Conclusions
- The optimal width of the front wall section bf reached the highest values among all dimensions of the wall, while the optimal width of the rear wall section bb was found to be 0 m at all different combinations of parameters.
- The most important parameter for the optimal cost of the gravity retaining wall is the height of the retained ground, followed by the shear angle of the soil, the soil–wall interaction coefficient, the slope angle and the variable surcharge load.
- The shear angle of the soil is most relevant to the bearing capacity and eccentricity condition, while the interaction coefficient is most relevant to the sliding condition.
- Given the unfavorable site characteristics and project data (φk = 30°, k = 0.5, β = 20°, qQk = 0 kPa), doubling the height of the retaining wall (from 2.5 to 5 m) increases the cost from 653.7 to 2510.7 EUR/m, almost four times the cost of a smaller wall.
- Gravity retaining walls are usually sloped toward the earth mass behind them to counteract the force of gravity acting against them, which is called “setback”. Based on the parametric analysis, the optimum angle of this slope ranges from 7 to 47°, with an average value of about 18° (slope ratio HD/VD = 1:3).
- The depth of the foundation for a gravity retaining wall depends on the height of the wall. Based on the parametric analysis, the optimum depth of the retaining wall is between 10 and 40% of the height of the wall, with an average value of 20% (one-fifth of its height below ground level).
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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The cost objective function of a gravity retaining wall: | |||||||
(1) | |||||||
Geotechnical constraints and the corresponding equations: | |||||||
(2) | (2a) | ||||||
(2b) | (2c) | ||||||
(2d) | (2e) | ||||||
(2f) | (2g) | ||||||
(2h) | (2i) | ||||||
(2j) | (2k) | ||||||
(2l) | (2m) | ||||||
(2n) | (2o) | ||||||
(2p) | (2q) | ||||||
(2r) | (2s) | ||||||
(2t) | (2u) | ||||||
(2v) | (2w) | ||||||
(2aa) | (2ab) | ||||||
(2ac) | (2ad) | ||||||
(2ae) | |||||||
(3) | (3a) | ||||||
(3b) | (3c) | ||||||
(3d) | (3e) | ||||||
(3f) | (3g) | ||||||
(3h) | (3i) | ||||||
(3j) | (3k) | ||||||
(3l) | (3m) | ||||||
(4) | (4a) | ||||||
(4b) | (4c) | ||||||
(4d) | (4e) | ||||||
(4f) | (4g) | ||||||
(4h) | (4i) | ||||||
(4j) | (4k) | ||||||
(4l) | (5) | ||||||
Design constraints: | |||||||
(6) | ; | (6a) | |||||
(6b) | |||||||
Discrete alternatives of the retaining wall dimensions: | |||||||
Variable | Minimum | Increment (step) | Maximum | Number of alternatives | |||
bf (m) | 0.0 | 0.1 | 5.0 | 51 | |||
b (m) | 0.5 | 0.1 | 5.0 | 46 | |||
bb (m) | 0.0 | 0.1 | 5.0 | 51 | |||
d (m) | 0.6 | 0.1 | 5.0 | 45 |
cfound,k | Cohesion of the Foundation Soil | 0 kPa |
cret,k | cohesion of the retained earth | 0 kPa |
γfound,k | unit weight of the foundation soil | 18 kN/m3 |
γwall | unit weight of the wall | 23.5 kN/m3 |
dmin | minimum depth of the embedded gravity wall | 0.6 m |
Cstone | unit price of crushed stone from carbonate rocks bound with concrete | 85 EUR/m3 |
Cexc | unit price of ground excavation | 10 EUR/m3 |
Cfill | unit price of fill soil | 18 EUR/m3 |
Cdrain | unit price of drainage pipes | 10 EUR/m |
SFG | partial safety factor for permanent actions | 1.0 |
SFG,fav | partial safety factor for favourable permanent actions | 1.0 |
SFQ | partial safety factor for variable actions | 1.3 |
SFφ | partial safety factor for the shear angle | 1.25 |
SFc | partial safety factor for the cohesion | 1.25 |
SFRv | partial safety factor for the bearing resistance | 1.0 |
SFRh | partial safety factor for the sliding resistance | 1.0 |
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Varga, R.; Žlender, B.; Jelušič, P. Multiparametric Analysis of a Gravity Retaining Wall. Appl. Sci. 2021, 11, 6233. https://doi.org/10.3390/app11136233
Varga R, Žlender B, Jelušič P. Multiparametric Analysis of a Gravity Retaining Wall. Applied Sciences. 2021; 11(13):6233. https://doi.org/10.3390/app11136233
Chicago/Turabian StyleVarga, Rok, Bojan Žlender, and Primož Jelušič. 2021. "Multiparametric Analysis of a Gravity Retaining Wall" Applied Sciences 11, no. 13: 6233. https://doi.org/10.3390/app11136233
APA StyleVarga, R., Žlender, B., & Jelušič, P. (2021). Multiparametric Analysis of a Gravity Retaining Wall. Applied Sciences, 11(13), 6233. https://doi.org/10.3390/app11136233