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dc.contributor.authorPuig Damians, Ivan
dc.contributor.authorBathurst, Richard
dc.contributor.authorLloret Morancho, Antonio
dc.contributor.authorJosa Garcia-Tornel, Alejandro
dc.contributor.otherUniversitat Politècnica de Catalunya. Departament d'Enginyeria Civil i Ambiental
dc.date.accessioned2016-08-31T11:18:14Z
dc.date.available2016-08-31T11:18:14Z
dc.date.issued2016-08
dc.identifier.citationDamians, I.P., Bathurst, R.J., Lloret, A., Josa, A. Vertical facing panel-joint gap analysis for steel-seinforced soil walls. "International journal of geomechanics", Agost 2016, vol. 16, núm. 4, p. 04015103-1-04015103-14.
dc.identifier.issn1532-3641
dc.identifier.urihttp://hdl.handle.net/2117/89428
dc.description.abstractThis paper reports the results of a numerical parametric study focused on the prediction of vertical load distribution and vertical gap compression between precast concrete facing panel units in steel-reinforced soil walls ranging in height from 6 to 24 m. The vertical compression was accommodated by polymeric bearing pads placed at the horizontal joints between panels during construction. This paper demonstrates how gap compression and magnitude of vertical load transmitted between horizontal joints are influenced by joint location along the height of the wall, joint compressibility, and backfill and foundation soil stiffness. The summary plots in this study can be used to estimate the number and type (stiffness) of the bearing pads to ensure a target minimum gap thickness at the end of construction, to demonstrate the relative influence of wall height and different material component properties on vertical load levels and gap compression, or as a benchmark to test numerical models used for project-specific design. The paper also demonstrates that although the load factor (ratio of vertical load at a horizontal joint to weight of panels above the joint) and joint compression are relatively insensitive to foundation stiffness, the total settlement at the top of the wall facing is very sensitive to foundation stiffness. This paper examines the quantitative consequences of using a simple linear compressive stress–strain model for the bearing pads versus amultilinear model that is better able to capture the response of bearing pads taken to greater compression. The study demonstrates that qualitative trends in vertical load factor are preserved when a more advanced stress-dependent stiffness soil hardening model is used for the backfill soil as compared with the simpler linear elastic Mohr–Coulomb model. Although there were differences in vertical loads and gap compressionwith the use of both soilmodels for the backfill, the differenceswere small and not of practical concern.
dc.language.isoeng
dc.subjectÀrees temàtiques de la UPC::Enginyeria civil::Materials i estructures
dc.subject.lcshRetaining walls
dc.subject.otherSoil retaining walls
dc.subject.otherSteel reinforcement
dc.subject.otherVertical loads
dc.subject.otherFacing panels
dc.subject.otherBearing pads
dc.subject.otherFinite-element modeling.
dc.titleVertical facing panel-joint gap analysis for steel-seinforced soil walls
dc.typeArticle
dc.subject.lemacMurs de contenció
dc.contributor.groupUniversitat Politècnica de Catalunya. MSR - Mecànica del Sòls i de les Roques
dc.contributor.groupUniversitat Politècnica de Catalunya. MECMAT - Mecànica de Materials
dc.identifier.doi10.1061/(ASCE)GM.1943-5622.0000632
dc.description.peerreviewedPeer Reviewed
dc.relation.publisherversionhttp://ascelibrary.org/doi/abs/10.1061/%28ASCE%29GM.1943-5622.0000632
dc.rights.accessOpen Access
local.identifier.drac17390327
dc.description.versionPostprint (author's final draft)
local.citation.authorDamians, I.P.; Bathurst, R.J.; Lloret, A.; Josa, A.
local.citation.publicationNameInternational journal of geomechanics
local.citation.volume16
local.citation.number4
local.citation.startingPage04015103-1
local.citation.endingPage04015103-14


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