Favorable of grouted micropiles for the load transfer in weak sandy soils

Micropiles are defined as small diameter piles, implemented as a cast-in-place replacement or injected grout. Generally assumed with a diameter less than 300 mm. The axial capacity of micropiles develops primarily through the bond between gravity grouted (Type A) or post grouted (Type B, C or D) and...

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Main Authors: Al-Obaidi Ahmed, Al-Karawi Ansam
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201816201018
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spelling doaj-a68847dbf0dd438dacb7e6ef3ad947722021-02-02T06:07:57ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-011620101810.1051/matecconf/201816201018matecconf_bcee32018_01018Favorable of grouted micropiles for the load transfer in weak sandy soilsAl-Obaidi AhmedAl-Karawi AnsamMicropiles are defined as small diameter piles, implemented as a cast-in-place replacement or injected grout. Generally assumed with a diameter less than 300 mm. The axial capacity of micropiles develops primarily through the bond between gravity grouted (Type A) or post grouted (Type B, C or D) and soil in bonded zone of the micropile. Because of this, micropiles are useful in a variety of applications. Micropiles (Type D) indicate a two-step process of grouting, neat cement grout is placed under gravity head, then, additional grout is injected via a sleeved grout pipe at a specified pressure. In this research, a numerical model was developed to simulate the properties of the micropile (Type D), in addition to micropile (Type A). A general finite element program ABAQUS was selected for the numerical analysis method and for generating the solution. The parameters that affect the load transfer and ultimate capacity of the micropile foundation, which includes micropile length, diameter, grouted length and weak soil type, were investigated. The main results show that the pressure grouting micropile provides better load transfer mechanism as it makes surrounding soil strength to be fully mobilized upon axial loading. Micropiles (Type D)show more favorable in a capacity where the increment range is up to 50% as compared with groundgrouted micropiles (Type A). In addition, the results indicate that the ultimate capacity of micropile increases as the grouted length increases.https://doi.org/10.1051/matecconf/201816201018
collection DOAJ
language English
format Article
sources DOAJ
author Al-Obaidi Ahmed
Al-Karawi Ansam
spellingShingle Al-Obaidi Ahmed
Al-Karawi Ansam
Favorable of grouted micropiles for the load transfer in weak sandy soils
MATEC Web of Conferences
author_facet Al-Obaidi Ahmed
Al-Karawi Ansam
author_sort Al-Obaidi Ahmed
title Favorable of grouted micropiles for the load transfer in weak sandy soils
title_short Favorable of grouted micropiles for the load transfer in weak sandy soils
title_full Favorable of grouted micropiles for the load transfer in weak sandy soils
title_fullStr Favorable of grouted micropiles for the load transfer in weak sandy soils
title_full_unstemmed Favorable of grouted micropiles for the load transfer in weak sandy soils
title_sort favorable of grouted micropiles for the load transfer in weak sandy soils
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2018-01-01
description Micropiles are defined as small diameter piles, implemented as a cast-in-place replacement or injected grout. Generally assumed with a diameter less than 300 mm. The axial capacity of micropiles develops primarily through the bond between gravity grouted (Type A) or post grouted (Type B, C or D) and soil in bonded zone of the micropile. Because of this, micropiles are useful in a variety of applications. Micropiles (Type D) indicate a two-step process of grouting, neat cement grout is placed under gravity head, then, additional grout is injected via a sleeved grout pipe at a specified pressure. In this research, a numerical model was developed to simulate the properties of the micropile (Type D), in addition to micropile (Type A). A general finite element program ABAQUS was selected for the numerical analysis method and for generating the solution. The parameters that affect the load transfer and ultimate capacity of the micropile foundation, which includes micropile length, diameter, grouted length and weak soil type, were investigated. The main results show that the pressure grouting micropile provides better load transfer mechanism as it makes surrounding soil strength to be fully mobilized upon axial loading. Micropiles (Type D)show more favorable in a capacity where the increment range is up to 50% as compared with groundgrouted micropiles (Type A). In addition, the results indicate that the ultimate capacity of micropile increases as the grouted length increases.
url https://doi.org/10.1051/matecconf/201816201018
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