Discrete Element Numerical Simulation of the Effect of River Ice Porosity on Impact Force at Bridge Abutments
In spring, the river ice melts to a certain extent and cracks to form drift ice and impact force on the bridge abutments; the river ice, due to the impact of ablation, has an internal formation of different porosities, and the level of porosity affects the mechanical properties of the river ice, so...
| Published in: | Applied Sciences |
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| Main Authors: | , , , , |
| Format: | Article |
| Language: | English |
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MDPI AG
2025-02-01
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| Online Access: | https://www.mdpi.com/2076-3417/15/4/1738 |
| _version_ | 1849753711520251904 |
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| author | Zibo Xu Yurui Wan Dabo Xin Ying Zhao Daocheng Zhou |
| author_facet | Zibo Xu Yurui Wan Dabo Xin Ying Zhao Daocheng Zhou |
| author_sort | Zibo Xu |
| collection | DOAJ |
| container_title | Applied Sciences |
| description | In spring, the river ice melts to a certain extent and cracks to form drift ice and impact force on the bridge abutments; the river ice, due to the impact of ablation, has an internal formation of different porosities, and the level of porosity affects the mechanical properties of the river ice, so that the impact force generated by the river ice is also different. In this paper, the Heihe–Blagoveshchensk Amur River Bridge abutment is the object of river ice impact, and the discrete element method (DEM) is employed to analyze the impact process and impact force on the abutment by numerical simulation of the melting river ice. The damage characteristics of the ice rows with different ice speeds, ice thicknesses, and porosity, and the time curve of the impact force are obtained. It is found that the maximum impact force of river ice on the abutment decreases nonlinearly with the increase in river ice porosity; the peak contact force occurs with a lag time, and the damage is gradually concentrated in the vicinity of the area in direct contact with the abutment. In this paper, according to the simulation results, the relationship between river ice porosity and the maximum impact force on the bridge abutment, as well as the time parameters, is obtained by fitting, and the power loading model of the bridge abutment impacted by the river ice is established, which provides a basis for the reasonable calculation of the impact force of the ablated river ice at bridge abutments. |
| format | Article |
| id | doaj-art-e2c75eddf1ed4dcf9d68906cd0d41a0e |
| institution | Directory of Open Access Journals |
| issn | 2076-3417 |
| language | English |
| publishDate | 2025-02-01 |
| publisher | MDPI AG |
| record_format | Article |
| spelling | doaj-art-e2c75eddf1ed4dcf9d68906cd0d41a0e2025-08-20T01:37:27ZengMDPI AGApplied Sciences2076-34172025-02-01154173810.3390/app15041738Discrete Element Numerical Simulation of the Effect of River Ice Porosity on Impact Force at Bridge AbutmentsZibo Xu0Yurui Wan1Dabo Xin2Ying Zhao3Daocheng Zhou4College of Civil Engineering and Transportation, Northeast Forestry University, Harbin 150006, ChinaCollege of Civil Engineering and Transportation, Northeast Forestry University, Harbin 150006, ChinaCollege of Civil and Architectural Engineering, Hainan University, Haikou 570228, ChinaCollege of Civil Engineering and Transportation, Northeast Forestry University, Harbin 150006, ChinaCollege of Civil Engineering and Transportation, Northeast Forestry University, Harbin 150006, ChinaIn spring, the river ice melts to a certain extent and cracks to form drift ice and impact force on the bridge abutments; the river ice, due to the impact of ablation, has an internal formation of different porosities, and the level of porosity affects the mechanical properties of the river ice, so that the impact force generated by the river ice is also different. In this paper, the Heihe–Blagoveshchensk Amur River Bridge abutment is the object of river ice impact, and the discrete element method (DEM) is employed to analyze the impact process and impact force on the abutment by numerical simulation of the melting river ice. The damage characteristics of the ice rows with different ice speeds, ice thicknesses, and porosity, and the time curve of the impact force are obtained. It is found that the maximum impact force of river ice on the abutment decreases nonlinearly with the increase in river ice porosity; the peak contact force occurs with a lag time, and the damage is gradually concentrated in the vicinity of the area in direct contact with the abutment. In this paper, according to the simulation results, the relationship between river ice porosity and the maximum impact force on the bridge abutment, as well as the time parameters, is obtained by fitting, and the power loading model of the bridge abutment impacted by the river ice is established, which provides a basis for the reasonable calculation of the impact force of the ablated river ice at bridge abutments.https://www.mdpi.com/2076-3417/15/4/1738melting river icediscrete elementsimpact forceporositynumerical simulation |
| spellingShingle | Zibo Xu Yurui Wan Dabo Xin Ying Zhao Daocheng Zhou Discrete Element Numerical Simulation of the Effect of River Ice Porosity on Impact Force at Bridge Abutments melting river ice discrete elements impact force porosity numerical simulation |
| title | Discrete Element Numerical Simulation of the Effect of River Ice Porosity on Impact Force at Bridge Abutments |
| title_full | Discrete Element Numerical Simulation of the Effect of River Ice Porosity on Impact Force at Bridge Abutments |
| title_fullStr | Discrete Element Numerical Simulation of the Effect of River Ice Porosity on Impact Force at Bridge Abutments |
| title_full_unstemmed | Discrete Element Numerical Simulation of the Effect of River Ice Porosity on Impact Force at Bridge Abutments |
| title_short | Discrete Element Numerical Simulation of the Effect of River Ice Porosity on Impact Force at Bridge Abutments |
| title_sort | discrete element numerical simulation of the effect of river ice porosity on impact force at bridge abutments |
| topic | melting river ice discrete elements impact force porosity numerical simulation |
| url | https://www.mdpi.com/2076-3417/15/4/1738 |
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