Research on Failure Modes and Causes of 100-m-High Core Wall Rockfill Dams
Abstract
:1. Introduction
2. An Overview of Earth–Rock Dam Failure Models
3. Statistical Analysis of Failure Modes in Core Wall Rockfill Dams above 100 Meters
3.1. Statistical Data Scope
3.2. Failure Modes between 1940 and 1980
3.3. Failure Modes after 1981
4. Typical Project Case Study
4.1. Project Overview
4.2. Situation of Failure Development
4.3. Methods of Analysis
4.4. Failure Analysis
4.4.1. Dam Crest Cracking Study
Uneven Deformation
Material Influence
Impact of Water Storage
4.4.2. Dam Seepage Study
4.4.3. Gallery Cracking Study
5. Discussion and Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Dam (Height) | Foundation Characteristics | Failure Stage | Cases | Failure Mode |
---|---|---|---|---|
Bikou (105.3 m) | F, 20~34 m; J | Operating period | The earthquake in 2008 caused damage to the dam’s surface and resulted in increased seepage in the grout galleries on both banks. | Dam cracking, Seepage around both banks |
Djatiluhur (112 m) | F | Construction period | The dam’s uneven subsidence causes longitudinal cracking. | Dam cracking |
Mud Mountain (131.7 m) | F, 2 m; J | Construction period | Cracks parallel to the dam axis appear between the core wall and the transition layer. | Dam cracking, Core wall splitting |
Operating period | The seepage water head in the core wall rises and falls in time with the reservoir water level, causing water seepages at the downstream dam toe. | |||
Hell Hole (125 m) | - | Construction period | After a heavy rain in 1964, the top of the construction section’s rockfill slid along with the downstream rockfill, forming a 128-m-wide breach. | Dam foundation seepage |
Teton (126.5 m) | J | Initial storage period | A whirlpool formed in the reservoir near pile number 0 + 14, and a sunken hole appeared near the dam crest on the downstream dam surface. The dam collapse took about 5 h from the discovery of muddy water. | Dam cracking, Core wall splitting, Dam foundation seepage |
Tarbela (143 m) | F, 210~230 m | Construction period | Three sinkholes were discovered on the dam slope of the No. 1 auxiliary dam when the reservoir water level dropped. | Dam cracking |
Infiernillo (148 m) | F, 8 m | Initial storage period | Cracks appeared on both abutments of the dam shortly after the water was impounded. | Dam cracking |
Gepatsch (153 m) | F, 122 m | Initial storage period | The dam shell has significant collapse deformation, a strong core wall arching effect, and severe longitudinal cracks on the dam crest. | Dam crest cracking, Dam-slope landslide |
Operating period | Several bank slopes upstream of the dam deformed by more than ten meters. | |||
La Grande2 (160 m) | F, 20 m | Initial storage period | Longitudinal cracks at the junction of the core wall and the dam shell. | Dam cracking |
Kremasta (165 m) | J | Operating period | Seepage developed in the dam abutment foundation and worsened over time. | Dam foundation seepage |
Portage Mountain (183 m) | J | Operating period | There were collapse pits on the dam crest, concentrated seepage channels in the core wall, and large collapse pits on the tops of the channels. | Core wall splitting |
Dam (Height) | Foundation Characteristics | Failure Stage | Cases | Failure Mode |
---|---|---|---|---|
Lubuge (103.8 m) | F, 5 m; J | Construction Period, Operating period | There have been seepage issues since it went into service. Cracks appeared in the traffic drainage gallery in 2006. | Gallery cracking, Dam seepage |
Shitouhe (114 m) | F, 4~10 m; J | Construction Period | Several concentrated seepages are produced by the right dam abutment rock mass. As the reservoir water level rises, the amount of seepage increases significantly. | Dam abutment cracking, Seepage around both banks |
Qiaoqi (125.5 m) | F, 57~65 m; J | Initial storage period | The dam foundation gallery’s structural joints seeped in 2007. | Dam foundation seepage |
Shiziping (136 m) | F, 90~102 m; J | Initial storage period | The 2008 earthquake caused penetrating cracks in the grouting gallery floor. Longitudinal cracks appeared on the dam cresy in 2013. | Gallery cracking, Dam crest cracking |
Maoergai (147 m) | F, 30~50 m; J | Initial storage period | A longitudinal crack appeared on the dam crest in 2012, and water seepage occurred in the observation room on the downstream dam surface. | Dam crest cracking, Suspected core wall splitting |
Xiaolangdi (154 m) | F, 30~40 m; J | Initial storage period | As the water level rises, so does the amount of water seeping into the dam body and dam foundation. | Dam foundation seepage |
Operating period | On the inside of the downstream curb, there is a 100-m-long longitudinal crack. | Dam crest cracking | ||
Emboreasco (158 m) | - | Operating period | Cracks appeared at heights of exceeding 120 m. | Dam cracking |
Ataturk (169 m) | J | Initial storage period | The dam crest experienced significant settlement, resulting in longitudinal cracks. | Dam crest cracking |
Soleyman (177 m) | - | Initial storage period | Separation of the core wall and the backfilter layer, as well as the backfilter layer and the dam shell rubble. | Dam crest cracking |
Pubugou (186 m) | F, 40~60 m; J | Initial storage period | Longitudinal cracks appeared on the dam crest and the gallery cracked in 2010. | Dam crest cracking, Gallery cracking |
Changheba (240 m) | F, 60~70 m; J | Construction Period | 16 cracks appeared on the upper part of the right dam abutment slope in 2010. | Dam abutment cracking (may cause seepage) |
Earth and Rock Material | Density /(103 kg/m3) | Shear Strength | Duncan-Chang E-Bmodel | |||||||
---|---|---|---|---|---|---|---|---|---|---|
φ/(°) | Δφ/(°) | c/(Kpa) | Kur | Rf | K | n | Kb | m | ||
Upstream rockfill | 2.14 | 44.29 | 11.04 | 0 | 2000 | 0.79 | 1000 | 0.28 | 668.49 | 0.1 |
Transition material | 2.1 | 54.1 | 13.92 | 0 | 1980 | 0.82 | 990 | 0.112 | 462.18 | 0.1 |
Antifiltration material | 2.16 | 42 | 10.2 | 0 | 1700 | 0.74 | 850 | 0.28 | 414.06 | 0.2 |
Core wall material | 2.28 | 28.9 | 0 | 66 | 988 | 0.82 | 494 | 0.4 | 207.7 | 0.4 |
Downstream rockfill II | 2.17 | 46.2 | 6.6 | 0 | 1640 | 0.83 | 820 | 0.28 | 421.35 | 0.22 |
Downstream rockfill I | 2.15 | 52.1 | 9 | 0 | 2200 | 0.79 | 1100 | 0.35 | 668.49 | 0.22 |
Covering layer ⑤ | 1.41 | 41.8 | 0 | 20 | 1600 | 0.81 | 965 | 0.64 | 889.24 | 0.27 |
Covering layer ④-2 | 1.38 | 35 | 0 | 10 | 1400 | 0.76 | 600 | 0.42 | 889.24 | 0.27 |
Covering layer ④-1 | 1.06 | 28 | 0 | 30 | 800 | 0.76 | 400 | 0.52 | 889.24 | 0.27 |
Covering layer ③-2 | 1.38 | 32 | 0 | 0 | 900 | 0.76 | 450 | 0.62 | 889.24 | 0.27 |
Covering layer ③-1 | 1.38 | 35 | 0 | 0 | 1400 | 0.76 | 950 | 0.42 | 889.24 | 0.27 |
Covering layer ② | 1.06 | 26 | 0 | 40 | 500 | 0.75 | 300 | 0.46 | 889.24 | 0.27 |
Covering layer ① | 1.41 | 38 | 0 | 0 | 1600 | 0.75 | 1100 | 0.42 | 889.24 | 0.27 |
Earth and Rock Material | α (10−2) | b (10−4) | c (10−4) | d (10−3) | m1 | m2 | m3 |
---|---|---|---|---|---|---|---|
Upstream rockfill | 0.893 | 1.055 | 1.055 | 1.470 | 0.514 | 0.416 | 0.427 |
Antifiltration material | 0.912 | 1.172 | 1.172 | 1.659 | 0.721 | 0.420 | 0.549 |
Transition material | 0.893 | 1.172 | 1.172 | 1.659 | 0.679 | 0.409 | 0.551 |
Core wall material | 0.638 | 2.134 | 2.134 | 3.705 | 0.996 | 0.679 | 0.518 |
Downstream rockfill II | 0.638 | 0.2 | 0.2 | 0.909 | 0.848 | 0.455 | 0.542 |
Downstream rockfill I | 1.1 | 0.466 | 0.466 | 1.009 | 0.408 | 0.365 | 0.482 |
Covering layer | 0.986 | 0.518 | 0.518 | 1.121 | 0.848 | 0.455 | 0.542 |
Upstream Rockfill | Core Wall—Upstream Rockfill | Core Wall | Downstream Rockfill—Core Wall | Downstream Rockfill | |
---|---|---|---|---|---|
Phase I water storage | 0–0.25 | 0.16 | 0–0.17 | 0.02 | 0 |
Phase II water storage | 0–0.01 | 0.46 | 0–0.02 | 0.25 | 0–0.04 |
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Li, Y.; Zhang, H.; Yuan, Y.; Lan, L.; Su, Y. Research on Failure Modes and Causes of 100-m-High Core Wall Rockfill Dams. Water 2024, 16, 1809. https://doi.org/10.3390/w16131809
Li Y, Zhang H, Yuan Y, Lan L, Su Y. Research on Failure Modes and Causes of 100-m-High Core Wall Rockfill Dams. Water. 2024; 16(13):1809. https://doi.org/10.3390/w16131809
Chicago/Turabian StyleLi, Yanan, Han Zhang, Yanling Yuan, Ling Lan, and Yongqi Su. 2024. "Research on Failure Modes and Causes of 100-m-High Core Wall Rockfill Dams" Water 16, no. 13: 1809. https://doi.org/10.3390/w16131809
APA StyleLi, Y., Zhang, H., Yuan, Y., Lan, L., & Su, Y. (2024). Research on Failure Modes and Causes of 100-m-High Core Wall Rockfill Dams. Water, 16(13), 1809. https://doi.org/10.3390/w16131809