Stability calculations for existing gravity retaining walls

被引:0
|
作者
Fleischer, Helmut [1 ]
Schlegel, Roger [2 ]
Eckardt, Stefan [2 ]
机构
[1] Bundesanstalt Wasserbau BAW, Kussmaulstr 17, D-76187 Karlsruhe, Germany
[2] Dynardo GmbH, Steubenstr 25, D-99423 Weimar, Germany
关键词
gravity retaining wall; crack and pore water pressure; Lieckfeldt-approach; FE-analysis;
D O I
10.1002/dama.202110005
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Many parts of older waterway structures consist of gravity retaining walls. The construction is characterized by cross-sections, several meters thick, consisting of unreinforced concrete or masonry. Besides earth pressure and impacts caused by operation, frequently high water loads have to be borne. Static recalculations, applying the existing standards using the normal simplified approach, almost always lead to theoretical deficits regarding structural stability. These, in turn, result in expensive structural reinforcement measures or even replacement constructions. Deficits result especially from neglecting the multidimensional stress and strain states and the very conservative approach of the inner water pressure in form of crack and pore water pressure in accordance with the applicable standards. This article uses the example of numerical analyses performed in a two-dimensional FE-model of a retaining wall, taking into account the interaction between crack formation and distribution of the inner water pressure for each variation considered, to show that calculatory safety margins are clearly detectable. It is recommended to extend the scope of the analysis to a wider range of models, in order to confirm the gained findings as well as to upgrade on this basis the engineering model in common practice.
引用
收藏
页码:29 / 36
页数:8
相关论文
共 50 条
  • [31] Micromechanical Modeling of the Seismic Response of Gravity Retaining Walls
    El Shamy, Usama
    Patsevich, Aliaksei
    SOIL DYNAMICS AND SOIL-STRUCTURE INTERACTION FOR RESILIENT INFRASTRUCTURE, 2018, : 164 - 172
  • [32] Foundation design for gravity retaining walls under earthquake
    Pender, Michael J.
    PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-GEOTECHNICAL ENGINEERING, 2019, 172 (01) : 42 - 54
  • [33] Numerical Simulation of the Seismic Response of Gravity Retaining Walls
    El Shamy, Usama
    Patsevich, Aliaksei
    GEOTECHNICAL EARTHQUAKE ENGINEERING AND SOIL DYNAMICS V: NUMERICAL MODELING AND SOIL STRUCTURE INTERACTION, 2018, (292): : 221 - 227
  • [34] Mixed Reality procedures for the maintenance of existing bridges and retaining walls
    Savini, Francesca
    Castiglia, Massimina
    Gargaro, Danilo
    Trizio, Ilaria
    Fabbrocino, Giovanni
    EUROPEAN ASSOCIATION ON QUALITY CONTROL OF BRIDGES AND STRUCTURES, EUROSTRUCT 2023, VOL 6, ISS 5, 2023, : 1382 - 1390
  • [35] On the stability of gravity with Dirichlet walls
    Andrade, Tomas
    Kelly, William R.
    Marolf, Donald
    Santos, Jorge E.
    CLASSICAL AND QUANTUM GRAVITY, 2015, 32 (23)
  • [36] OVERALL STABILITY OF ANCHORED RETAINING WALLS - DISCUSSION
    SCHNABEL, H
    JOURNAL OF GEOTECHNICAL ENGINEERING-ASCE, 1984, 110 (12): : 1817 - 1818
  • [37] Stability of retaining walls against overturning - Closure
    Greco, VR
    JOURNAL OF GEOTECHNICAL AND GEOENVIRONMENTAL ENGINEERING, 1999, 125 (03) : 228 - 229
  • [38] The stability of gabion walls for earth retaining structures
    Ramli, Mahyuddin
    Karasu, T. J. R.
    Dawood, Eethar Thanon
    ALEXANDRIA ENGINEERING JOURNAL, 2013, 52 (04) : 705 - 710
  • [39] OVERALL STABILITY OF ANCHORED RETAINING WALLS - CLOSURE
    ANDERSON, WF
    HANNA, TH
    ABDELMALEK, MN
    JOURNAL OF GEOTECHNICAL ENGINEERING-ASCE, 1984, 110 (12): : 1818 - 1818
  • [40] INTERNAL STABILITY OF REINFORCED EARTH RETAINING WALLS
    CHAPUIS, RP
    CANADIAN GEOTECHNICAL JOURNAL, 1977, 14 (03) : 389 - 398