The bearing behavior of a horizontal layered mass and calculation of it capacity

碩士 === 國立中央大學 === 應用地質研究所 === 89 === The geologic structures such as faults, joints, bedding planes, inter-bedding, and foliation, are very common in Taiwan. The rock formation associated with these features, of course, yields a mechanical behavior totally different from that of a homoge...

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Main Authors: Ling-Chung Huang, 黃鈴珺
Other Authors: Te-chih Ke
Format: Others
Language:zh-TW
Published: 2001
Online Access:http://ndltd.ncl.edu.tw/handle/20977416861102880556
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spelling ndltd-TW-089NCU005030072016-01-29T04:28:36Z http://ndltd.ncl.edu.tw/handle/20977416861102880556 The bearing behavior of a horizontal layered mass and calculation of it capacity 水平互層地盤之承載行為研究及承載力之預估 Ling-Chung Huang 黃鈴珺 碩士 國立中央大學 應用地質研究所 89 The geologic structures such as faults, joints, bedding planes, inter-bedding, and foliation, are very common in Taiwan. The rock formation associated with these features, of course, yields a mechanical behavior totally different from that of a homogeneous, intact mass. The main objective of this thesis is to numerically study the bearing mechanism of a rigid strip foundation of width (B) sitting on a mass of two layered formations, and to establish a predictive model of bearing capacity for such a case, which has never arrived at a unified form in the literature. The bearing behavior of such a mass was simulated by the FLAC code, in which finite-difference scheme is employed for both the spatial and time domains. The foundation loading mode used is strain-controlled, and the ultimate bearing capacity (qu) is determined from the loading versus settlement curve and the disturbed zone beneath the foundation is localized according to the displacement vector plots. For understanding the distinct bearing behavior of a two-layered formation system, two cases were selected: Case A with a hard sandstone layer (HS) of thickness (H1) overlying a soft shale (SS), and Case B with SS overlying HS, each material assigned with typical mechanical properties. Besides, the neural networks analysis with backward propagation algorithm (NNAB) was adopted to develop a general bearing capacity formulas for a two-layered formation system, and about nine hundreds of cases were run by FLAC with formation properties (for common soils): the friction angle (f) varying from 0 to 30° and cohesion (c) from 0 to 1MPa. Three situations were considered: both layers cohesionless, one cohesionless and another cohesive soils, and both cohesive. The simulation results of HS-SS system show that qu increases with H until H approaches 4B for Case A, qu decreases with H until H approaches 2.5B for Case B, and both (f,c) values of two formations affect qu to some certain extent (but not merely qu of each formation). The NNAB established a fair predictive model of qu for a two-layered soil system, with a prediction error less than 10%. In its linear model analysis, the most influential factor for each situation was also identified, and for instance, such a factor is the friction angle of the top layer (f1) for a two-layered cohesionless system with a weaker top layer. Te-chih Ke Kuo-Liang Wen 葛德治 溫國樑 2001 學位論文 ; thesis 0 zh-TW
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description 碩士 === 國立中央大學 === 應用地質研究所 === 89 === The geologic structures such as faults, joints, bedding planes, inter-bedding, and foliation, are very common in Taiwan. The rock formation associated with these features, of course, yields a mechanical behavior totally different from that of a homogeneous, intact mass. The main objective of this thesis is to numerically study the bearing mechanism of a rigid strip foundation of width (B) sitting on a mass of two layered formations, and to establish a predictive model of bearing capacity for such a case, which has never arrived at a unified form in the literature. The bearing behavior of such a mass was simulated by the FLAC code, in which finite-difference scheme is employed for both the spatial and time domains. The foundation loading mode used is strain-controlled, and the ultimate bearing capacity (qu) is determined from the loading versus settlement curve and the disturbed zone beneath the foundation is localized according to the displacement vector plots. For understanding the distinct bearing behavior of a two-layered formation system, two cases were selected: Case A with a hard sandstone layer (HS) of thickness (H1) overlying a soft shale (SS), and Case B with SS overlying HS, each material assigned with typical mechanical properties. Besides, the neural networks analysis with backward propagation algorithm (NNAB) was adopted to develop a general bearing capacity formulas for a two-layered formation system, and about nine hundreds of cases were run by FLAC with formation properties (for common soils): the friction angle (f) varying from 0 to 30° and cohesion (c) from 0 to 1MPa. Three situations were considered: both layers cohesionless, one cohesionless and another cohesive soils, and both cohesive. The simulation results of HS-SS system show that qu increases with H until H approaches 4B for Case A, qu decreases with H until H approaches 2.5B for Case B, and both (f,c) values of two formations affect qu to some certain extent (but not merely qu of each formation). The NNAB established a fair predictive model of qu for a two-layered soil system, with a prediction error less than 10%. In its linear model analysis, the most influential factor for each situation was also identified, and for instance, such a factor is the friction angle of the top layer (f1) for a two-layered cohesionless system with a weaker top layer.
author2 Te-chih Ke
author_facet Te-chih Ke
Ling-Chung Huang
黃鈴珺
author Ling-Chung Huang
黃鈴珺
spellingShingle Ling-Chung Huang
黃鈴珺
The bearing behavior of a horizontal layered mass and calculation of it capacity
author_sort Ling-Chung Huang
title The bearing behavior of a horizontal layered mass and calculation of it capacity
title_short The bearing behavior of a horizontal layered mass and calculation of it capacity
title_full The bearing behavior of a horizontal layered mass and calculation of it capacity
title_fullStr The bearing behavior of a horizontal layered mass and calculation of it capacity
title_full_unstemmed The bearing behavior of a horizontal layered mass and calculation of it capacity
title_sort bearing behavior of a horizontal layered mass and calculation of it capacity
publishDate 2001
url http://ndltd.ncl.edu.tw/handle/20977416861102880556
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