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The earth pressure behind full-height frame integral abutments supporting granular fill

The earth pressure behind full-height frame integral abutments supporting granular fill
The earth pressure behind full-height frame integral abutments supporting granular fill
Compared with conventional bridges, integral bridges have no bearings or joints between the deck and abutments, and thus can significantly reduce maintenance requirements and costs over the bridge life-time. However, there is uncertainty about the ultimate magnitude of the lateral earth pressure behind such abutments, as they are forced to move with the deck length change caused, for example, by daily and annual variations in the effective bridge temperature.

This research investigated the earth pressure that would be expected to occur behind full-height frame integral abutments backfilled by granular materials. Radial strain-controlled cyclic stress path testing has been conducted on coarse sand specimens, and a glass ballotini specimen. The results suggest that for integral abutments retaining uniform coarse sand, the lateral earth pressure will experience systematic increases for almost all cyclic strain levels, eventually reaching states of stress close to both active and passive. The mechanism of the build-up of lateral stress is explored, and it appears to be associated with non-spherical granular particle shape. The implications for frame integral abutment design are discussed
integral abutments, granular, particle shape, earth pressure, stiffness
0008-3674
284-298
Xu, Ming
51f8f898-0bc6-40eb-aad0-ad612bd4857e
Clayton, Chris R.I.
8397d691-b35b-4d3f-a6d8-40678f233869
Bloodworth, Alan G.
08ac0375-0691-41d4-937d-d7d643dc8ddb
Xu, Ming
51f8f898-0bc6-40eb-aad0-ad612bd4857e
Clayton, Chris R.I.
8397d691-b35b-4d3f-a6d8-40678f233869
Bloodworth, Alan G.
08ac0375-0691-41d4-937d-d7d643dc8ddb

Xu, Ming, Clayton, Chris R.I. and Bloodworth, Alan G. (2007) The earth pressure behind full-height frame integral abutments supporting granular fill. Canadian Geotechnical Journal, 44 (3), 284-298. (doi:10.1139/T06-122).

Record type: Article

Abstract

Compared with conventional bridges, integral bridges have no bearings or joints between the deck and abutments, and thus can significantly reduce maintenance requirements and costs over the bridge life-time. However, there is uncertainty about the ultimate magnitude of the lateral earth pressure behind such abutments, as they are forced to move with the deck length change caused, for example, by daily and annual variations in the effective bridge temperature.

This research investigated the earth pressure that would be expected to occur behind full-height frame integral abutments backfilled by granular materials. Radial strain-controlled cyclic stress path testing has been conducted on coarse sand specimens, and a glass ballotini specimen. The results suggest that for integral abutments retaining uniform coarse sand, the lateral earth pressure will experience systematic increases for almost all cyclic strain levels, eventually reaching states of stress close to both active and passive. The mechanism of the build-up of lateral stress is explored, and it appears to be associated with non-spherical granular particle shape. The implications for frame integral abutment design are discussed

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Published date: March 2007
Keywords: integral abutments, granular, particle shape, earth pressure, stiffness

Identifiers

Local EPrints ID: 46309
URI: http://eprints.soton.ac.uk/id/eprint/46309
ISSN: 0008-3674
PURE UUID: 930bb5b9-d2bd-4db6-9a97-91ab4f741436
ORCID for Chris R.I. Clayton: ORCID iD orcid.org/0000-0003-0071-8437

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Date deposited: 15 Jun 2007
Last modified: 16 Mar 2024 03:12

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Contributors

Author: Ming Xu
Author: Alan G. Bloodworth

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