STUDY ON SEIMIC BEARING CAPACITY OF GROUPED PILES WITH BATTERED PILES

Size: px
Start display at page:

Download "STUDY ON SEIMIC BEARING CAPACITY OF GROUPED PILES WITH BATTERED PILES"

Transcription

1 3 th World Conference on Earthquake Engineering Vancouver, B.C., Canada August -6, 4 Paper No. 394 STUDY ON SEIMIC BEARING CAPACITY OF GROUPED PILES WITH BATTERED PILES Akira KOMATSU, Yoshito MAEDA, Takahiro SAKATA 3 SUMMARY This report presents an evaluation of the design method of the seismic bearing capacity of group piles. By model tests using the aluminum bar-laminar, it was found that the concept of effective width depending on load eccentricity can be used to evaluate the bearing capacity of grouped piles in the same manner as the calculation method for shallow foundations. The lateral bearing capacity equation of battered piles was derived by using the admissible velocity field method, and the proposed equation gave satisfactory agreement with the results of laboratory tests. INTRODUCTION In the seismic design of bridge foundations regarding a large earthquake, the pile foundation is designed to prevent fall-down. The vertical resistance-deflection (P V -z) relationship and the lateral soil resistancedeflection (P H y) relationship are used as a elasto-plastic formulation (Japan Road Association997) in which the ultimate vertical and lateral resistance is defined. In order to realize more optimum seismic design of the group pile foundation, it was concluded that the following studies were required: () Application of the design method using the effective width depending on the load eccentricity for group piles as the deep foundation: () Establishment of the equation for the ultimate lateral bearing capacity of the battered pile which is a more rigid structure to lateral loads than the vertical pile. In order to study the items described above, () model tests using aluminum bar-laminar were performed, () the failure mechanism of the battered pile was evaluated, and (3) the equation of the ultimate bearing resistance used by the admissible velocity field method was derived, then the results of the analyses using the equation were compared with the test results. MODEL TESTS Experimental setup A two-dimensional testing vessel having internal dimensions of 5mm in length, 9mm in height, and 5mm in width as shown in Figs.and was used. Aluminum bar-laminar was used as the soil model. Engineer, Nippon Steel Corporation, Tokyo, Japan. komatsu.akira@eng.nsc.co.jp Professor, KyusyuKyoritu University, Kitakyusyu, Japan. maeda@kyukyo-u.ac.jp 3 Senior Engineer, CTI Engineering Corporation, Tokyo, Japan. sakata@ctie.co.jp

2 Aluminum bars having a radius of 3mm and of.6mm were mixed at the rate of 3 to, respectively. This aluminum bar-laminar has unit weights of 6.7 kn/m 3, and an internal friction angle of obtained from the shear test. Vertical and lateral loads were applied to the pile head through a rigid loading rod by an air jack. The applied load and deflection of the pile head were measured with a load cell and the potentiometer. Loads were applied to the pile head in increments of n 5N/min for vertical loads and n 7.5N/min for lateral loads where n is the number of piles. A flexible model pile was made from an aluminum plate 65mm long, 5mm thick, and 6mm in embedded depth on the tip of which a small aluminum plate of 3mm was connected in order to sustain vertical loading capacity. Pile spacing center to center is 5mm. Then a rigid model pile was made from an aluminum rectangular bar of 5mm 5mm in width, 65mm in length, and 35mm in embedded depth. Results of model tests using flexible test piles are shown in Fig.3. The group effect and battered effect on the lateral resistance of the piles was found to be dependent on the number of piles, pile spacing, and the head fixity condition. In this paper, the pile battered in the direction of the horizontal load is described as the in-batter pile, and the opposite pile is described as the out-batter pile. Fig- Photograph of the experimental set-up Fig- Photograph of model piles Group effect Deformation at ultimate vertical load (5mm) for a single pile and group piles is shown in Fig.3. Vertical load displacement curves for a single pile and group piles are shown in Fig.4. In case of cohesionless soil, vertical bearing capacity of group piles has been found to be greater than that of the single pile multiplied. In this model test using aluminum bar-laminar, the same results were obtained. Vertical load Pv (kn) 鉛直荷重 Pv(kN) : Single Pile : 5 x 単杭 Single pile 単杭の 5 倍の計算値 : group piles (5pcs) 群杭 (n=5) Group 群杭効果 effect Fig.3 Deformation at ultimate vertical load 鉛直変位 δv(mm) Vertical Displacement (mm) Fig.4 Vertical load displacement curves of vertical single pile and group piles

3 Behavior to Eccentric load of group piles Vertical eccentric loads (e=,5,,5,,5,3mm) were applied to the group piles (5 piles). The results of the experiment on the effect of the vertical eccentric loads are shown in Fig.5. Vertical bearing capacity of group piles decreases with increasing eccentricity. The relation between vertical bearing capacity of group piles and eccentricity of vertical loads is shown in Fig.6. In the same manner as for the design method for shallow foundations, the vertical bearing load multiplied by piles in the effective width B =B-e centering on a loading position is shown in Fig.6. Two line graphs of vertical bearing capacity in Fig.6 shows different values, but have good correlation. These different values in the lines depend on the group effect described in the section above. Consequently, a design method that the ultimate vertical bearing capacity of group piles is evaluated by using the concept of effective width depending on the load eccentricity allows in the same manner as for shallow foundations. Vertical load Pv (kn) 鉛直支持力 P V (kn) e= e=75 e=5 e=5 e=3m m Vertical Displacement 鉛直変位 δ(mm) V (mm) Fig.5 Vertical load displacement curves under eccentric loads Vertical bearing capacity PV (kn) Vertical bearing capacity Pv (kn) 鉛直支持力 PV(kN) : 荷重 変位曲線から得られた支持力値 :Test results of group piles : Sum of capacity in effective width 有効載荷幅 :Sum of capacity B 内の単杭の支持力の合計 in effective width C P V L e B Eccentricity 偏心量 e e (mm) Eccentricity e (mm) Fig.6 Comparison of bearing capacity on eccentric loads Bearing Capacity of battered pile Deformation of the flexible model pile and aluminum bar-laminar after lateral loading (5mm) is shown in Figs.7 and 8. Comparison of lateral bearing capacity with respect to the degree of the battered pile is shown in Fig.9. The zone of the passive earth resistance for the in-batter pile is larger than that for the outbatter pile, and the deformation of the in-batter pile is smaller than that of the out-batter pile. Therefore, the lateral bearing capacity of the battered pile was found to increase in accordance with the degree. Deformation after vertical and lateral load tests of group piles (5 piles. / ± ) is shown in Figs. and, respectively. Deformation of aluminum bar-laminar between battered piles is larger than that of Aluminum bar-laminar beside the vertical pile. Load-deflection curves of the vertical and lateral loading test of group piles are shown in Figs. and 3, respectively. Vertical bearing capacity of group piles was found to decrease slightly in accordance with the increase of the degree of the battered piles. On the other hand, the lateral bearing capacity of group piles was found to increase at the rate of.6 to. in accordance with the increase of the inclination degree of the battered piles as shown in Fig.4.

4 Fig.7 Deformation of the flexible pile ( - ) at the ultimate lateral load Fig.8 Deformation of flexible pile ( + )at the ultimate lateral load.5 Bearing capacity ratio η 支持力比 η..5. : deflection = 5 mm δ=5mm : yield point δ = 降伏点 杭の傾斜角 α ( ) Dgree of the battered pile Fig.9 Relationship between inclination of flexible battered pile and lateral bearing capacity ratio Fig. Deformation at ultimate vertical load P 3. Fig. Deformation of group piles with battered piles under lateral loading 鉛直荷重 P Vertical load V Pv (kn) (kn) V α = α =5 α = α =5 α = Vertical 鉛直変位 Displacement δ ( mm ) v (mm) (n=5,e=) Fig. Vertical load displacement curves of group piles

5 (k N) 水平荷重 Ltaral load Pv (kn) (k 水平 H 荷重 P 水平変位 δ Horizontal deflection ( mm ) H (mm) (n=5,e=) Bearing capacity ratio : Lateral capacity (deflection=5mm) : Lateral capacity (yield point) : Vertical capacity (deflection=5mm) : Vertical capacity (yield point) Fig.3 Horizontal load deflection curves of grouped pile with battered piles Inclination of battered pile Fig.4 Relationship between inclination of flexible battered pile and lateral bearing capacity ratio EQUATION OF LATERAL RESISTANCE OF PILE Mechanism of lateral resistance of battered pile Battered piles remain the most efficient structural component for resisting lateral loads due to earthquake. The group pile system with battered piles results in a more rigid frame than one with vertical piles only. In seismic design analysis, the bi-linear P H -y curve is applied to obtain the lateral resistance of piles. The maximum value of soil resistance (lateral bearing capacity) is assumed to be the passive earth pressure strength of the soil behind the pile. In Japan, for the coefficient of the lateral subgrade reaction of the battered pile inclined in the vertical, a correction is formulated in the design standard [Technical Standards for Port and Harbor Facilities and Explanation (989)]. In this paper, lateral loading tests using the rigid model pile in aluminum bar-laminar ground were carried out so as to evaluate the mechanism of ground failure on the battered pile. Based on the failure mechanism obtained, an equation of the passive earth pressure strength of the battered pile is proposed by using the admissible velocity field method. It is obvious that the passive earth resistance zone for in-batter pile is greater than that for the out-batter pile. Failure mechanism of the ground behind batter pile In order to evaluate the failure mechanism of the ground behind the battered pile, the lateral loading tests using the rigid model pile (a aluminum rectangular bar of 5m 5m width, 65mm in length) were conducted and analyzed by using the tracking vision system. Tests using three different degree (-,,+ ) of the pile were conducted. The photographs and deformation graphs of the soil by using the tracking vision system after loading are shown in Figs.5 and 6. These experiments show the sliding wedge beneath the pile is not the straight slope on that is assumed in the Coulomb theory, and has the zone of radial shear. This is due to the friction between the pile and the ground. Then, the boundary of the passive Rankine zone is at an angle 34.5 (=π/4-φ/) with the horizontal surface of the ground.

6 P H (- ) P H (+ ) Fig-5 Deformation of rigid pile (- ) Fig-6 Deformation of rigid pile (+ ) Equation of the lateral earth pressure for battered pile Based on the failure mechanism in Figs.5 and 6, the passive earth resistance zone shall be composed of the radial shear zone and the passive Rankine zone due to the friction between the pile and the ground. Accordingly, the equation of the passive ground pressure for the battered pile was derived by using the admissible velocity method as shown in Fig.7. The lateral ultimate resistance of the battered pile is described as follows: R ( z) = a p B K z () pcδ H K = RH p cδ z () c = N c + N z N c = N c ' cosδ (3) N = N ' cos δ (4) ( δ + α ) z=zcosα Z R H a φ + α H O R ω π/ ω +α ω δ ω D V V (A) e dl V φ b Fig.7 The admissible velocity field of battered pile ( ω ) cos ( ω φ ) f (B) ω φ cos cos φ π Nc ' = exp( ω tan φ ) (5), ω = + φ + α cosα tan φ sin tan φ 4 (6) cos ( δ + α ) N ' = η ( I + I ) (7) cos α ω I = exp ( 3ω tan φ ) sin ( + ω ) dω = [ exp 9 tan φ + ( 3ω tanφ ){ 3 tanφ sin ( ω ) cos ( ω )} + ( 3 tanφ sin α + cosα )] ( ω ) cosφ sin( ω ) exp( 3ω tanφ) sin( ω φ ) (8) I cos = (9) where, R H : ultimate resistance normal to the axis of the battered pile, B: the pile diameter, K ped : the coefficient of lateral earth pressure (ratio of horizontal to vertical normal effective stress) with friction angle between the soil and pile wall, : effective unit weight of soil, z: depth below soil surface, α p:correction factor regarding three-dimensional expansion effect (α p = for clay, α p =3 for sand), α: degree of battered pile to the vertical, φ: angle of internal friction of sand, η: correction factor for the accurate potential energy analyzed by Maeda(). c

7 Lateral bearing capacity ratio 支持力比 : test :computed 試験 解析 Inclination 斜杭角度 of battered ( ) pile Fig.8 Relationship between inclination of flexible pile and lateral bearing i i Lateral bearing capacity ratio : test.4 : computed 試験. 解析 斜杭角度 ( ) Inclination of battered pile Fig. 9 Relationship between inclination of flexible pile and lateral bearing CONCLUSION In the present study, the evaluation for the design method of seismic bearing capacity of group piles was investigated to realize an optimum and economical seismic design. The main conclusions are given, as follows: () A design method allows the ultimate vertical bearing capacity of group piles to be evaluated by using the concept of effective width depending on the load eccentricity in the same manner as for shallow foundations. () The lateral bearing capacity of the battered pile (degree>) is larger than that of the vertical pile, and in contrast, the lateral bearing capacity of the battered pile (degree<) is smaller. Then the lateral bearing capacity of the group piles with the battered pile increased more significantly than the group piles with the vertical piles. It is found that the structure of group piles with the battered pile has both the effect of rigid resistance due to the inclination of the pile and the effect of pile head fixity. (3) The proposed equation for the lateral resistance of the battered pile using the admissible velocity field method agrees satisfactorily with the results of the model tests. REFERENCES. Japan Road Association (997): Specifications for road bridges, Vol. Ⅳ.. The Japan Port and Harbor Association (989): Technical Standards for Port and Harbor Facilities and Explanation (in Japanese) 3. Maeda, Y., Ochiai, H., Yokota, Y. (): Bearing capacity formula of shallow foundations considering effects of inclinations and subsoil stratum, Proceedings of the Japan Society of Civil Engineer, Vol.75, p7-5 (in Japanese) 4. Komatsu, A., Maeda, R. (3) : Laboratory loading test of bearing capacity characteristic of grouped piles (Bearing capacity under eccentric and inclined load, and for battered pile), Proceedings of Symposium on Japan Geotechnical Engineering, No.48, p9-34 (in Japanese)

BEARING CAPACITY FORMURA FOR SHALLOW FOUNDATIONS DURING EARTHQUAKE

BEARING CAPACITY FORMURA FOR SHALLOW FOUNDATIONS DURING EARTHQUAKE 3 th World Conference on Earthquake Engineering Vancouver, B.C., Canada August -6, 004 Paper No. 393 BEARING CAPACITY FORMURA FOR SHALLOW FOUNDATIONS DURING EARTHQUAKE Yoshito MAEDA, Tatsuo IRIE and Yasuyuki

More information

A study on the bearing capacity of steel pipe piles with tapered tips

A study on the bearing capacity of steel pipe piles with tapered tips Japanese Geotechnical Society Special Publication The 6th Japan-China Geotechnical Symposium A study on the bearing capacity of steel pipe piles with tapered tips Hironobu Matsumiya i), Yoshiro Ishihama

More information

THE STRUCTURAL DESIGN OF PILE FOUNDATIONS BASED ON LRFD FOR JAPANESE HIGHWAYS

THE STRUCTURAL DESIGN OF PILE FOUNDATIONS BASED ON LRFD FOR JAPANESE HIGHWAYS THE STRUCTURAL DESIGN OF PILE FOUNDATIONS BASED ON LRFD FOR JAPANESE HIGHWAYS Hideaki Nishida 1,Toshiaki Nanazawa 2, Masahiro Shirato 3, Tetsuya Kohno 4, and Mitsuaki Kitaura 5 Abstract One of the motivations

More information

Chapter (4) Ultimate Bearing Capacity of Shallow Foundations (Special Cases)

Chapter (4) Ultimate Bearing Capacity of Shallow Foundations (Special Cases) Chapter (4) Ultimate earing Capacity of Shallow Foundations (Special Cases) Ultimate.C. of Shallow Foundations (Special Cases) Introduction The ultimate bearing capacity theories discussed in Chapter 3

More information

EVALUATION OF BENDING LOAD IN BATTER PILES SET IN SOFT CLAY

EVALUATION OF BENDING LOAD IN BATTER PILES SET IN SOFT CLAY EVALUATION OF BENDING LOAD IN BATTER PILES SET IN SOFT CLAY Tetsuya KOHNO 1, Hiroyuki TANAKA 2, Masahiro SHIRATO 3 and Shoichi NAKATANI 4 Abstract In this study, we conducted centrifuge tests to evaluate

More information

Chapter (11) Pile Foundations

Chapter (11) Pile Foundations Chapter (11) Introduction Piles are structural members that are made of steel, concrete, or timber. They are used to build pile foundations (classified as deep foundations) which cost more than shallow

More information

Objectives. In this section you will learn the following. Rankine s theory. Coulomb s theory. Method of horizontal slices given by Wang (2000)

Objectives. In this section you will learn the following. Rankine s theory. Coulomb s theory. Method of horizontal slices given by Wang (2000) Objectives In this section you will learn the following Rankine s theory Coulomb s theory Method of horizontal slices given by Wang (2000) Distribution of the earth pressure Height of application of the

More information

UNIT V. The active earth pressure occurs when the wall moves away from the earth and reduces pressure.

UNIT V. The active earth pressure occurs when the wall moves away from the earth and reduces pressure. UNIT V 1. Define Active Earth pressure. The active earth pressure occurs when the wall moves away from the earth and reduces pressure. 2. Define Passive Earth pressure. The passive earth pressure occurs

More information

Reinforced Soil Structures Reinforced Soil Walls. Prof K. Rajagopal Department of Civil Engineering IIT Madras, Chennai

Reinforced Soil Structures Reinforced Soil Walls. Prof K. Rajagopal Department of Civil Engineering IIT Madras, Chennai Geosynthetics and Reinforced Soil Structures Reinforced Soil Walls continued Prof K. Rajagopal Department of Civil Engineering IIT Madras, Chennai e-mail: gopalkr@iitm.ac.inac in Outline of the Lecture

More information

file:///d /suhasini/suha/office/html2pdf/ _editable/slides/module%202/lecture%206/6.1/1.html[3/9/2012 4:09:25 PM]

file:///d /suhasini/suha/office/html2pdf/ _editable/slides/module%202/lecture%206/6.1/1.html[3/9/2012 4:09:25 PM] Objectives_template Objectives In this section you will learn the following Introduction Different Theories of Earth Pressure Lateral Earth Pressure For At Rest Condition Movement of the Wall Different

More information

ANALYSIS OF LATERALLY LOADED FIXED HEADED SINGLE FLOATING PILE IN MULTILAYERED SOIL USING BEF APPROACH

ANALYSIS OF LATERALLY LOADED FIXED HEADED SINGLE FLOATING PILE IN MULTILAYERED SOIL USING BEF APPROACH INDIAN GEOTECHNICAL SOCIETY, KOLKATA CHAPTER GEOTECHNICS FOR INFRASTRUCTURE DEVELOPMENT KOLKATA 11 th 12 th March 2016, Kolkata, West Bengal, India ANALYSIS OF LATERALLY LOADED FIXED HEADED SINGLE FLOATING

More information

Study of Pile Interval of Landslide Restraint Piles by Centrifuge Test and FEM Analysis

Study of Pile Interval of Landslide Restraint Piles by Centrifuge Test and FEM Analysis Disaster Mitigation of Debris Flows, Slope Failures and Landslides 113 Study of Pile Interval of Landslide Restraint Piles by Centrifuge Test and FEM Analysis Yasuo Ishii, 1) Hisashi Tanaka, 1) Kazunori

More information

Finite Element analysis of Laterally Loaded Piles on Sloping Ground

Finite Element analysis of Laterally Loaded Piles on Sloping Ground Indian Geotechnical Journal, 41(3), 2011, 155-161 Technical Note Finite Element analysis of Laterally Loaded Piles on Sloping Ground K. Muthukkumaran 1 and N. Almas Begum 2 Key words Lateral load, finite

More information

Seismic Analysis of Retaining Structures. Nanjundaswamy P. Department of Civil Engineering S J College of Engineering, Mysore

Seismic Analysis of Retaining Structures. Nanjundaswamy P. Department of Civil Engineering S J College of Engineering, Mysore Seismic Analysis of Retaining Structures Nanjundaswamy P. Department of Civil Engineering S J College of Engineering, Mysore pnswamy@yahoo.com Retaining Walls Retaining Walls. Where? Retaining Walls. Road

More information

Analysis of Inclined Strip Anchors in Sand Based on the Block Set Mechanism

Analysis of Inclined Strip Anchors in Sand Based on the Block Set Mechanism Analysis of Inclined Strip Anchors in Sand Based on the Block Set Mechanism S. B. Yu 1,a, J. P. Hambleton 1,b, and S. W. Sloan 1,c 1 ARC Centre of Excellence for Geotechnical Science and Engineering, The

More information

AXIAL COLLAPSE OF REINFORCED CONCRETE COLUMNS

AXIAL COLLAPSE OF REINFORCED CONCRETE COLUMNS 3 th World Conference on Earthquake Engineering Vancouver, B.C., Canada August -6, 4 Paper No. 699 AXIAL COLLAPSE OF REINFORCED CONCRETE COLUMNS Manabu YOSHIMURA, Yoshikazu TAKAINE and Takaya NAKAMURA

More information

Dynamic Response of EPS Blocks /soil Sandwiched Wall/embankment

Dynamic Response of EPS Blocks /soil Sandwiched Wall/embankment Proc. of Second China-Japan Joint Symposium on Recent Development of Theory and Practice in Geotechnology, Hong Kong, China Dynamic Response of EPS Blocks /soil Sandwiched Wall/embankment J. C. Chai 1

More information

Soil Mechanics Prof. B.V.S. Viswanathan Department of Civil Engineering Indian Institute of Technology, Bombay Lecture 51 Earth Pressure Theories II

Soil Mechanics Prof. B.V.S. Viswanathan Department of Civil Engineering Indian Institute of Technology, Bombay Lecture 51 Earth Pressure Theories II Soil Mechanics Prof. B.V.S. Viswanathan Department of Civil Engineering Indian Institute of Technology, Bombay Lecture 51 Earth Pressure Theories II Welcome to lecture number two on earth pressure theories.

More information

Active Earth Pressure on Retaining Wall Rotating About Top

Active Earth Pressure on Retaining Wall Rotating About Top INTERNATIONAL JOURNAL OF GEOLOGY Volume 9, 05 Active Earth Pressure on Retaining Wall Rotating About Top Ahad Ouria and Sajjad Sepehr Abstract Traditional methods for calculation of lateral earth pressure

More information

COEFFICIENT OF DYNAMIC HORIZONTAL SUBGRADE REACTION OF PILE FOUNDATIONS ON PROBLEMATIC GROUND IN HOKKAIDO Hirofumi Fukushima 1

COEFFICIENT OF DYNAMIC HORIZONTAL SUBGRADE REACTION OF PILE FOUNDATIONS ON PROBLEMATIC GROUND IN HOKKAIDO Hirofumi Fukushima 1 COEFFICIENT OF DYNAMIC HORIZONTAL SUBGRADE REACTION OF PILE FOUNDATIONS ON PROBLEMATIC GROUND IN HOKKAIDO Hirofumi Fukushima 1 Abstract In this study, static loading tests and dynamic shaking tests of

More information

Nonlinear pushover analysis for pile foundations

Nonlinear pushover analysis for pile foundations Proc. 18 th NZGS Geotechnical Symposium on Soil-Structure Interaction. Ed. CY Chin, Auckland Michael Pender Department of Civil and Environmental Engineering, University of Auckland Keywords: piles, lateral

More information

INTRODUCTION TO STATIC ANALYSIS PDPI 2013

INTRODUCTION TO STATIC ANALYSIS PDPI 2013 INTRODUCTION TO STATIC ANALYSIS PDPI 2013 What is Pile Capacity? When we load a pile until IT Fails what is IT Strength Considerations Two Failure Modes 1. Pile structural failure controlled by allowable

More information

HORIZONTAL LOAD DISTRIBUTION WITHIN PILE GROUP IN LIQUEFIED GROUND

HORIZONTAL LOAD DISTRIBUTION WITHIN PILE GROUP IN LIQUEFIED GROUND 4 th International Conference on Earthquake Geotechnical Engineering June 2-28, 7 Paper No. 127 HORIZONTAL LOAD DISTRIBUTION WITHIN PILE GROUP IN LIQUEFIED GROUND Hiroko SUZUKI 1 and Kohji TOKIMATSU 2

More information

FINITE ELEMNT ANALYSIS FOR EVALUATION OF SLOPE STABILITY INDUCED BY CUTTING

FINITE ELEMNT ANALYSIS FOR EVALUATION OF SLOPE STABILITY INDUCED BY CUTTING FINITE ELEMNT ANALYSIS FOR EVALUATION OF SLOPE STABILITY INDUCED BY CUTTING Toshinori SAKAI Department of Environmental Science and Technology, Mie University, Tsu, Japan Tadatsugu TANAKA Graduate School

More information

Theory of Shear Strength

Theory of Shear Strength SKAA 1713 SOIL MECHANICS Theory of Shear Strength Prepared by, Dr. Hetty 1 SOIL STRENGTH DEFINITION Shear strength of a soil is the maximum internal resistance to applied shearing forces The maximum or

More information

Deep Foundations 2. Load Capacity of a Single Pile

Deep Foundations 2. Load Capacity of a Single Pile Deep Foundations 2 Load Capacity of a Single Pile All calculations of pile capacity are approximate because it is almost impossible to account for the variability of soil types and the differences in the

More information

INTI COLLEGE MALAYSIA

INTI COLLEGE MALAYSIA EGC373 (F) / Page 1 of 5 INTI COLLEGE MALAYSIA UK DEGREE TRANSFER PROGRAMME INTI ADELAIDE TRANSFER PROGRAMME EGC 373: FOUNDATION ENGINEERING FINAL EXAMINATION : AUGUST 00 SESSION This paper consists of

More information

Development of Spherical Sliding Bearing

Development of Spherical Sliding Bearing Technical Report NIPPON STEEL & SUMITOMO METAL TECHNICAL REPORT No. 115 JULY 2017 Development of Spherical Sliding Bearing UDC 624. 042. 7 : 62-531 Koji NISHIMOTO* Naoya WAKITA Hideji NAKAMURA Abstract

More information

Numerical Investigation of the Effect of Recent Load History on the Behaviour of Steel Piles under Horizontal Loading

Numerical Investigation of the Effect of Recent Load History on the Behaviour of Steel Piles under Horizontal Loading Numerical Investigation of the Effect of Recent Load History on the Behaviour of Steel Piles under Horizontal Loading K. Abdel-Rahman Dr.-Ing., Institute of Soil Mechanics, Foundation Engineering and Waterpower

More information

LATERAL EARTH PRESSURE AND RETAINING STRUCTURES

LATERAL EARTH PRESSURE AND RETAINING STRUCTURES Topic Outline LATERAL EARTH PRESSURE AND RETAINING STRUCTURES Types of retaining structures Lateral earth pressure Earth pressure at rest Rankine s Theory Coulomb s Theory Cullman s graphic solution Braced

More information

Dynamic Response of Timber-Plywood Joints under Forced Harmonic Vibrations

Dynamic Response of Timber-Plywood Joints under Forced Harmonic Vibrations Dynamic Response of Timber-Plywood Joints under Forced Harmonic Vibrations Takeyoshi Uematsu Northern Regional Building Research Institute, Hokkaido Research Organization, Asahikawa, Japan. Takuro Hirai,

More information

Foundation Analysis LATERAL EARTH PRESSURE

Foundation Analysis LATERAL EARTH PRESSURE Foundation Analysis LATERAL EARTH PRESSURE INTRODUCTION Vertical or near-vertical slopes of soil are supported by retaining walls, cantilever sheet-pile walls, sheet-pile bulkheads, braced cuts, and other

More information

Sample Chapter HELICAL ANCHORS IN SAND 6.1 INTRODUCTION

Sample Chapter HELICAL ANCHORS IN SAND 6.1 INTRODUCTION 6 ELICAL ANCORS IN SAN At the present time, limited studies on helical anchors are available, the results of which can be used to estimate their ultimate uplift capacity. In many instances, the ultimate

More information

GEOTECHNICAL ENGINEERING ECG 503 LECTURE NOTE ANALYSIS AND DESIGN OF RETAINING STRUCTURES

GEOTECHNICAL ENGINEERING ECG 503 LECTURE NOTE ANALYSIS AND DESIGN OF RETAINING STRUCTURES GEOTECHNICAL ENGINEERING ECG 503 LECTURE NOTE 07 3.0 ANALYSIS AND DESIGN OF RETAINING STRUCTURES LEARNING OUTCOMES Learning outcomes: At the end of this lecture/week the students would be able to: Understand

More information

Chapter 12: Lateral Earth Pressure

Chapter 12: Lateral Earth Pressure Part 4: Lateral Earth Pressure and Earth-Retaining Structures Chapter 12: Lateral Earth Pressure Introduction Vertical or near-vertical slopes of soil are supported by retaining walls, cantilever sheetpile

More information

Chapter 5 CENTRIC TENSION OR COMPRESSION ( AXIAL LOADING )

Chapter 5 CENTRIC TENSION OR COMPRESSION ( AXIAL LOADING ) Chapter 5 CENTRIC TENSION OR COMPRESSION ( AXIAL LOADING ) 5.1 DEFINITION A construction member is subjected to centric (axial) tension or compression if in any cross section the single distinct stress

More information

R.SUNDARAVADIVELU Professor IIT Madras,Chennai - 36.

R.SUNDARAVADIVELU Professor IIT Madras,Chennai - 36. Behaviour of Berthing Structure under Changing Slope in Seismic Condition - A Case Study K.MUTHUKKUMARAN Research Scholar Department of Ocean Engineering, R.SUNDARAVADIVELU Professor IIT Madras,Chennai

More information

Chapter 5 Shear Strength of Soil

Chapter 5 Shear Strength of Soil Page 5 Chapter 5 Shear Strength of Soil. The internal resistance per unit area that the soil mass can offer to resist failure and sliding along any plane inside it is called (a) strength (b) shear strength

More information

Foundation Engineering Prof. Dr. N. K. Samadhiya Department of Civil Engineering Indian Institute of Technology Roorkee

Foundation Engineering Prof. Dr. N. K. Samadhiya Department of Civil Engineering Indian Institute of Technology Roorkee Foundation Engineering Prof. Dr. N. K. Samadhiya Department of Civil Engineering Indian Institute of Technology Roorkee Module - 01 Lecture - 01 Shallow Foundation (Refer Slide Time: 00:19) Good morning.

More information

KINEMATIC RESPONSE OF GROUPS WITH INCLINED PILES

KINEMATIC RESPONSE OF GROUPS WITH INCLINED PILES th International Conference on Earthquake Geotechnical Engineering June 5-8, 7 Paper No. 5 KINEMATIC RESPONSE OF GROUPS WITH INCLINED PILES Amalia GIANNAKOU, Nikos GEROLYMOS, and George GAZETAS 3 ABSTRACT

More information

CHAPTER 8 CALCULATION THEORY

CHAPTER 8 CALCULATION THEORY CHAPTER 8 CALCULATION THEORY. Volume 2 CHAPTER 8 CALCULATION THEORY Detailed in this chapter: the theories behind the program the equations and methods that are use to perform the analyses. CONTENTS CHAPTER

More information

D DAVID PUBLISHING. Port and Marine Structures Made of Sheet Piling with Staggered Toe. 1. Introduction. 2. Design Approach and Main Dependencies

D DAVID PUBLISHING. Port and Marine Structures Made of Sheet Piling with Staggered Toe. 1. Introduction. 2. Design Approach and Main Dependencies Journal of Shipping and Ocean Engineering 4 (2017) 168-173 doi 10.17265/2159-5879/2017.04.004 D DAVID PUBLISHING Port and Marine Structures Made of Sheet Piling with Staggered Toe Doubrovsky Michael 1,

More information

Experimental Study of Seismic Soil-Structure Interaction by using Large Geotechnical Centrifuge System

Experimental Study of Seismic Soil-Structure Interaction by using Large Geotechnical Centrifuge System October 12-17, 28, Beijing, China Experimental Study of Seismic Soil-Structure Interaction by using Large Geotechnical Centrifuge System T. Kawasato 1, T. Okutani 1, T. Ishikawa 1, T. Fujimori 2, and M.

More information

Evaluation of short piles bearing capacity subjected to lateral loading in sandy soil

Evaluation of short piles bearing capacity subjected to lateral loading in sandy soil Evaluation of short piles bearing capacity subjected to lateral loading in sandy soil [Jafar Bolouri Bazaz, Javad Keshavarz] Abstract Almost all types of piles are subjected to lateral loads. In many cases,

More information

Chapter (3) Ultimate Bearing Capacity of Shallow Foundations

Chapter (3) Ultimate Bearing Capacity of Shallow Foundations Chapter (3) Ultimate Bearing Capacity of Shallow Foundations Introduction To perform satisfactorily, shallow foundations must have two main characteristics: 1. They have to be safe against overall shear

More information

Foundation Engineering Prof. Dr N.K. Samadhiya Department of Civil Engineering Indian Institute of Technology Roorkee

Foundation Engineering Prof. Dr N.K. Samadhiya Department of Civil Engineering Indian Institute of Technology Roorkee Foundation Engineering Prof. Dr N.K. Samadhiya Department of Civil Engineering Indian Institute of Technology Roorkee Module 01 Lecture - 03 Shallow Foundation So, in the last lecture, we discussed the

More information

A STUDY ON PERMANENT DISPLACEMENT OF EXPRESSWAY EMBANKMENT DURING LARGE-SCALE EARTHQUAKES THROUGH DYNAMIC CENTRIFUGE MODEL TESTS

A STUDY ON PERMANENT DISPLACEMENT OF EXPRESSWAY EMBANKMENT DURING LARGE-SCALE EARTHQUAKES THROUGH DYNAMIC CENTRIFUGE MODEL TESTS 13 th World Conference on Earthquake Engineering Vancouver, B.C., Canada August 1-6, 24 Paper No. 1433 A STUDY ON PERMANENT DISPLACEMENT OF EXPRESSWAY EMBANKMENT DURING LARGE-SCALE EARTHQUAKES THROUGH

More information

Dynamic Earth Pressure Problems and Retaining Walls. Behavior of Retaining Walls During Earthquakes. Soil Dynamics week # 12

Dynamic Earth Pressure Problems and Retaining Walls. Behavior of Retaining Walls During Earthquakes. Soil Dynamics week # 12 Dynamic Earth Pressure Problems and Retaining Walls 1/15 Behavior of Retaining Walls During Earthquakes - Permanent displacement = cc ' 2 2 due to one cycle of ground motion 2/15 Hence, questions are :

More information

Displacement of gravity retaining walls under seismic loading

Displacement of gravity retaining walls under seismic loading Displacement of gravity retaining walls under seismic loading M. Okamura, Y. Saito, K. Tamura Public Works Research Institute, Tsukuba-shi, 35-8516, Japan. O. Matsuo National Institute for Land and Infrastructure

More information

SHEET PILE WALLS. Mehdi Mokhberi Islamic Azad University

SHEET PILE WALLS. Mehdi Mokhberi Islamic Azad University SHEET PILE WALLS Mehdi Mokhberi Islamic Azad University Lateral Support In geotechnical engineering, it is often necessary to prevent lateral soil movements. Tie rod Anchor Sheet pile Cantilever retaining

More information

9.13 Fixed Earth-Support Method for Penetration into Sandy Soil

9.13 Fixed Earth-Support Method for Penetration into Sandy Soil 476 Chapter 9: Sheet Pile Walls 9.13 Fixed Earth-Support Method for Penetration into y Soil When using the fixed earth support method, we assume that the toe of the pile is restrained from rotating, as

More information

EARTH PRESSURES ON RETAINING STRUCTURES

EARTH PRESSURES ON RETAINING STRUCTURES 12-1 12. EARTH PRESSURES ON RETAINING STRUCTURES 12.1 Active Pressure and Passive Pressure When a sudden change in level of the ground surface is to be provided for some purpose a retaining structure is

More information

New Approach for Evaluating the Bearing Capacity of Sandy Soil to Strip Shallow Foundation

New Approach for Evaluating the Bearing Capacity of Sandy Soil to Strip Shallow Foundation International Journal of Advanced Materials Research Vol. 2,. 2, 2016, pp. 13-21 http://www.aiscience.org/journal/ijamr ISSN: 2381-6805 (Print); ISSN: 2381-6813 (Online) New Approach for Evaluating the

More information

Experimental setup and Instrumentation

Experimental setup and Instrumentation Civil Engineering Dimension, Vol. 16, No. 1, March 2014, 8-17 ISSN 1410-9530 print / ISSN 1979-570X online CED 2013, 16(1), DOI: 10.9744/CED.16.1.8-17 Effect of Rigidity of Plinth Beam on Soil Interaction

More information

Friction Coefficient Measurement Test on 13MN Class Tendon of PC Strands for Prestressed Concrete Containment Vessel (PCCV)

Friction Coefficient Measurement Test on 13MN Class Tendon of PC Strands for Prestressed Concrete Containment Vessel (PCCV) 20th International Conference on Structural Mechanics in Reactor Technology (SMiRT 20) Espoo, Finland, August 9-14, 2009 SMiRT 20-Division 6, Paper 1825 Friction Coefficient Measurement Test on 13MN Class

More information

Passive Force on Retaining Wall Supporting Φ Backfill Considering Curvilinear Rupture Surface

Passive Force on Retaining Wall Supporting Φ Backfill Considering Curvilinear Rupture Surface International Journal of Engineering Inventions ISSN: 2278-7461, ISBN: 2319-6491, www.ijeijournal.com Volume 1, Issue 10 (November2012) PP: 35-42 Passive Force on Retaining Wall Supporting Φ Backfill Considering

More information

Flexural Behavior of Laterally Loaded Tapered Piles in Cohesive Soils

Flexural Behavior of Laterally Loaded Tapered Piles in Cohesive Soils Open Journal of Civil Engineering, 5, 5, 9-38 Published Online March 5 in SciRes. http://www.scirp.org/journal/ojce http://dx.doi.org/.436/ojce.5.54 Flexural Behavior of Laterally Loaded Tapered Piles

More information

Clayey sand (SC)

Clayey sand (SC) Pile Bearing Capacity Analysis / Verification Input data Project Task : PROJECT: "NEW STEAM BOILER U-5190 Part : A-1 Descript. : The objective of this Analysis is the Pile allowable bearing Capacity Analysis

More information

Transmission Line Design Structures & Foundations TADP 549

Transmission Line Design Structures & Foundations TADP 549 Transmission Line Design Structures & Foundations TADP 549 Steel Poles - Direct Embedment Foundations - Point of Fixity Presentation 6.3 Dr. Prasad Yenumula Transmission & Distribution Program Reference

More information

Chapter Two: Mechanical Properties of materials

Chapter Two: Mechanical Properties of materials Chapter Two: Mechanical Properties of materials Time : 16 Hours An important consideration in the choice of a material is the way it behave when subjected to force. The mechanical properties of a material

More information

S Wang Beca Consultants, Wellington, NZ (formerly University of Auckland, NZ)

S Wang Beca Consultants, Wellington, NZ (formerly University of Auckland, NZ) Wang, S. & Orense, R.P. (2013) Proc. 19 th NZGS Geotechnical Symposium. Ed. CY Chin, Queenstown S Wang Beca Consultants, Wellington, NZ (formerly University of Auckland, NZ) Jackson.wang@beca.com R P Orense

More information

Dynamic Analysis to Study Soil-Pile Interaction Effects

Dynamic Analysis to Study Soil-Pile Interaction Effects by Pallavi Ravishankar, Neelima Satyam in Indexed in Scopus Compendex and Geobase Elsevier, Chemical Abstract Services-USA, Geo-Ref Information Services- USA, List B of Scientific Journals, Poland, Directory

More information

THE SIMPLIFIED ELASTO-PLASTIC ANALYSIS MODEL OF REINFORCED CONCRETE FRAMED SHEAR WALLS

THE SIMPLIFIED ELASTO-PLASTIC ANALYSIS MODEL OF REINFORCED CONCRETE FRAMED SHEAR WALLS 13 th World Conference on Earthquake Engineering Vancouver, B.C., Canada August 1-6, 24 Paper No. 64 THE SIMPLIFIED ELASTO-PLASTIC ANALYSIS MODEL OF REINFORCED CONCRETE FRAMED SHEAR WALLS Norikazu ONOZATO

More information

Christian Linde Olsen Griffith University, Faculty of Engineering and Information Technology, Gold Coast Campus.

Christian Linde Olsen Griffith University, Faculty of Engineering and Information Technology, Gold Coast Campus. 1 Introduction Test on Cyclic Lateral Loaded Piles in Sand Christian Linde Olsen Griffith University, Faculty of Engineering and Information Technology, Gold Coast Campus. Abstract The following paper

More information

DETAILED INVESTIGATION OF PILES DAMAGED BY HYOGOKEN NAMBU EARTHQUAKE

DETAILED INVESTIGATION OF PILES DAMAGED BY HYOGOKEN NAMBU EARTHQUAKE DETAILED INVESTIGATION OF PILES DAMAGED BY HYOGOKEN NAMBU EARTHQUAKE Kenichi HORIKOSHI 1, Akira TATEISHI 2 And Hiroyasu OHTSU 3 SUMMARY Since the 199 Hyogoken Nambu earthquake, a number of detailed investigations

More information

Theory of Shear Strength

Theory of Shear Strength MAJ 1013 ADVANCED SOIL MECHANICS Theory of Shear Strength Prepared by, Dr. Hetty 1 Strength of different materials Steel Concrete Soil Tensile strength Compressive strength Shear strength Complex behavior

More information

NUMERICAL STUDY ON LATERAL SPREADING OF LIQUEFIED GROUND BEHIND A SHEET PILE MODEL IN A LARGE SCALE SHAKE TABLE TEST

NUMERICAL STUDY ON LATERAL SPREADING OF LIQUEFIED GROUND BEHIND A SHEET PILE MODEL IN A LARGE SCALE SHAKE TABLE TEST 13 th World Conference on Earthquake Engineering Vancouver, B.C., Canada August 1-6, 24 Paper No. 2515 NUMERICAL STUDY ON LATERAL SPREADING OF LIQUEFIED GROUND BEHIND A SHEET PILE MODEL IN A LARGE SCALE

More information

Lateral Earth Pressure

Lateral Earth Pressure 1 of 11 6/2/2012 4:28 AM Lateral Earth Pressure The magnitude of lateral earth pressure depends on: 1. Shear strength characteristics of soil 2. Lateral strain condition 3. Pore water pressure 4. State

More information

FOUNDATION ENGINEERING UNIT V

FOUNDATION ENGINEERING UNIT V FOUNDATION ENGINEERING UNIT V RETAINING WALLS Plastic equilibrium in soils active and passive states Rankine s theory cohesion less and cohesive soil - Coloumb s wedge theory condition for critical failure

More information

Special edition paper

Special edition paper Development of New Aseismatic Structure Using Escalators Kazunori Sasaki* Atsushi Hayashi* Hajime Yoshida** Toru Masuda* Aseismatic reinforcement work is often carried out in parallel with improvement

More information

AMPLIFICATION OF GROUND STRAIN IN IRREGULAR SURFACE LAYERS DURING STRONG GROUND MOTION

AMPLIFICATION OF GROUND STRAIN IN IRREGULAR SURFACE LAYERS DURING STRONG GROUND MOTION AMPLIFICATION OF ROUND STRAIN IN IRREULAR SURFACE LAYERS DURIN STRON ROUND MOTION Mio KOBAYASHI 1, Hirokazu ANDO And Takahito WATANABE SUMMARY The characteristics of ground response in irregular surface

More information

MECHANISM OF EARTH PRESSURE AND SIDEWALL FRICTION ACTING ON AN EMBEDDED FOOTING IN DRY SAND BASED ON CENTRIFUGE TESTING

MECHANISM OF EARTH PRESSURE AND SIDEWALL FRICTION ACTING ON AN EMBEDDED FOOTING IN DRY SAND BASED ON CENTRIFUGE TESTING October 12-17, 28, eijing, hina MEHNISM OF ERTH RESSURE N SIEWLL FRITION TING ON N EMEE FOOTING IN RY SN SE ON ENTRIFUGE TESTING Shuji Tamura 1, Tadashi Sakamoto 2, Takenori Hida 3 and Nobuhiro Maeda 4

More information

8.1. What is meant by the shear strength of soils? Solution 8.1 Shear strength of a soil is its internal resistance to shearing stresses.

8.1. What is meant by the shear strength of soils? Solution 8.1 Shear strength of a soil is its internal resistance to shearing stresses. 8.1. What is meant by the shear strength of soils? Solution 8.1 Shear strength of a soil is its internal resistance to shearing stresses. 8.2. Some soils show a peak shear strength. Why and what type(s)

More information

Behavior of Offshore Piles under Monotonic Inclined Pullout Loading

Behavior of Offshore Piles under Monotonic Inclined Pullout Loading Behavior of Offshore Piles under Monotonic Inclined Pullout Loading Mohamed I. Ramadan Lecturer, Civil Engineering Department, Faculty of Engineering, Assiut University, Assiut, Egypt, mihr81@gmail.com

More information

Chapter (5) Allowable Bearing Capacity and Settlement

Chapter (5) Allowable Bearing Capacity and Settlement Chapter (5) Allowable Bearing Capacity and Settlement Introduction As we discussed previously in Chapter 3, foundations should be designed for both shear failure and allowable settlement. So the allowable

More information

STUDY OF THE BEHAVIOR OF PILE GROUPS IN LIQUEFIED SOILS

STUDY OF THE BEHAVIOR OF PILE GROUPS IN LIQUEFIED SOILS STUDY OF THE BEHAVIOR OF PILE GROUPS IN LIQUEFIED SOILS Shin-Tower Wang 1, Luis Vasquez 2, and Lymon C. Reese 3, Honorary Member,, ASCE ABSTRACT : 1&2 President & Project Manager, Ensoft, Inc. Email: ensoft@ensoftinc.com

More information

3-BEARING CAPACITY OF SOILS

3-BEARING CAPACITY OF SOILS 3-BEARING CAPACITY OF SOILS INTRODUCTION The soil must be capable of carrying the loads from any engineered structure placed upon it without a shear failure and with the resulting settlements being tolerable

More information

Centrifuge Shaking Table Tests and FEM Analyses of RC Pile Foundation and Underground Structure

Centrifuge Shaking Table Tests and FEM Analyses of RC Pile Foundation and Underground Structure Centrifuge Shaking Table s and FEM Analyses of RC Pile Foundation and Underground Structure Kenji Yonezawa Obayashi Corporation, Tokyo, Japan. Takuya Anabuki Obayashi Corporation, Tokyo, Japan. Shunichi

More information

Effect of embedment depth and stress anisotropy on expansion and contraction of cylindrical cavities

Effect of embedment depth and stress anisotropy on expansion and contraction of cylindrical cavities Effect of embedment depth and stress anisotropy on expansion and contraction of cylindrical cavities Hany El Naggar, Ph.D., P. Eng. and M. Hesham El Naggar, Ph.D., P. Eng. Department of Civil Engineering

More information

Introduction to Soil Mechanics

Introduction to Soil Mechanics Introduction to Soil Mechanics Sela Sode and Colin Jones WILEY Blackwell Contents Preface Dedication and Acknowledgments List of Symbols Soil Structure 1.1 Volume relationships 1.1.1 Voids ratio (e) 1.1.2

More information

Objectives. In this section you will learn the following. Development of Bearing Capacity Theory. Terzaghi's Bearing Capacity Theory

Objectives. In this section you will learn the following. Development of Bearing Capacity Theory. Terzaghi's Bearing Capacity Theory Objectives In this section you will learn the following Development of Bearing Capacity Theory Terzaghi's Bearing Capacity Theory Assumptions in Terzaghi s Bearing Capacity Theory. Meyerhof's Bearing Capacity

More information

Module 7 (Lecture 25) RETAINING WALLS

Module 7 (Lecture 25) RETAINING WALLS Module 7 (Lecture 25) RETAINING WALLS Topics Check for Bearing Capacity Failure Example Factor of Safety Against Overturning Factor of Safety Against Sliding Factor of Safety Against Bearing Capacity Failure

More information

Numerical Modeling of Interface Between Soil and Pile to Account for Loss of Contact during Seismic Excitation

Numerical Modeling of Interface Between Soil and Pile to Account for Loss of Contact during Seismic Excitation Numerical Modeling of Interface Between Soil and Pile to Account for Loss of Contact during Seismic Excitation P. Sushma Ph D Scholar, Earthquake Engineering Research Center, IIIT Hyderabad, Gachbowli,

More information

Seismic design of bridges

Seismic design of bridges NATIONAL TECHNICAL UNIVERSITY OF ATHENS LABORATORY FOR EARTHQUAKE ENGINEERING Seismic design of bridges Lecture 3 Ioannis N. Psycharis Capacity design Purpose To design structures of ductile behaviour

More information

Investigation of Pile- Soil Interaction Subjected to Lateral Loads in Layered Soils

Investigation of Pile- Soil Interaction Subjected to Lateral Loads in Layered Soils American J. of Engineering and Applied Sciences (): 76-8, 008 ISSN 9-700 008 Science Publications Investigation of Pile- Soil Interaction Subjected to Lateral Loads in Layered Soils A. Avaei, Abdoul R.

More information

PILE SOIL INTERACTION MOMENT AREA METHOD

PILE SOIL INTERACTION MOMENT AREA METHOD Pile IGC Soil 2009, Interaction Moment Guntur, INDIA Area Method PILE SOIL INTERACTION MOMENT AREA METHOD D.M. Dewaikar Professor, Department of Civil Engineering, IIT Bombay, Mumbai 400 076, India. E-mail:

More information

D1. A normally consolidated clay has the following void ratio e versus effective stress σ relationship obtained in an oedometer test.

D1. A normally consolidated clay has the following void ratio e versus effective stress σ relationship obtained in an oedometer test. (d) COMPRESSIBILITY AND CONSOLIDATION D1. A normally consolidated clay has the following void ratio e versus effective stress σ relationship obtained in an oedometer test. (a) Plot the e - σ curve. (b)

More information

vulcanhammer.net This document downloaded from

vulcanhammer.net This document downloaded from This document downloaded from vulcanhammer.net since 1997, your source for engineering information for the deep foundation and marine construction industries, and the historical site for Vulcan Iron Works

More information

Analysis of the horizontal bearing capacity of a single pile

Analysis of the horizontal bearing capacity of a single pile Engineering manual No. 16 Updated: 07/2018 Analysis of the horizontal bearing capacity of a single pile Program: Soubor: Pile Demo_manual_16.gpi The objective of this engineering manual is to explain how

More information

2017 Soil Mechanics II and Exercises Final Exam. 2017/7/26 (Wed) 10:00-12:00 Kyotsu 4 Lecture room

2017 Soil Mechanics II and Exercises Final Exam. 2017/7/26 (Wed) 10:00-12:00 Kyotsu 4 Lecture room 2017 Soil Mechanics II and Exercises Final Exam 2017/7/26 (Wed) 10:00-12:00 Kyotsu 4 Lecture room Attention: The exam consists of five questions for which you are provided with five answer sheets. Write

More information

EN Eurocode 7. Section 3 Geotechnical Data Section 6 Spread Foundations. Trevor L.L. Orr Trinity College Dublin Ireland.

EN Eurocode 7. Section 3 Geotechnical Data Section 6 Spread Foundations. Trevor L.L. Orr Trinity College Dublin Ireland. EN 1997 1: Sections 3 and 6 Your logo Brussels, 18-20 February 2008 Dissemination of information workshop 1 EN 1997-1 Eurocode 7 Section 3 Geotechnical Data Section 6 Spread Foundations Trevor L.L. Orr

More information

Double punch test for tensile strength of concrete, Sept (70-18) PB224770/AS (NTIS)

Double punch test for tensile strength of concrete, Sept (70-18) PB224770/AS (NTIS) Lehigh University Lehigh Preserve Fritz Laboratory Reports Civil and Environmental Engineering 1969 Double punch test for tensile strength of concrete, Sept. 1969 (70-18) PB224770/AS (NTIS) W. F. Chen

More information

TIME-DEPENDENT BEHAVIOR OF PILE UNDER LATERAL LOAD USING THE BOUNDING SURFACE MODEL

TIME-DEPENDENT BEHAVIOR OF PILE UNDER LATERAL LOAD USING THE BOUNDING SURFACE MODEL TIME-DEPENDENT BEHAVIOR OF PILE UNDER LATERAL LOAD USING THE BOUNDING SURFACE MODEL Qassun S. Mohammed Shafiqu and Maarib M. Ahmed Al-Sammaraey Department of Civil Engineering, Nahrain University, Iraq

More information

GEOTECHNICAL CRITERION FOR SERVICEABILITY LIMIT STATE OF HORIZONTALLY-LOADED DEEP FOUNDATIONS

GEOTECHNICAL CRITERION FOR SERVICEABILITY LIMIT STATE OF HORIZONTALLY-LOADED DEEP FOUNDATIONS Abstract GEOTECHNICAL CITEION FO SEVICEABILITY LIMIT STATE OF HOIZONTALLY-LOADED DEEP FOUNDATIONS Masahiro Shirato 1, Shoichi Nakatani 2, Kenji Matsui 3, and Takashi Nakaura 4 This paper presents a first

More information

Chapter 6 Bearing Capacity

Chapter 6 Bearing Capacity Chapter 6 Bearing Capacity 6-1. Scope This chapter provides guidance for the determination of the ultimate and allowable bearing stress values for foundations on rock. The chapter is subdivided into four

More information

Case Study On The Soft-First-Story Buildings Strengthened By Confined Concrete Columns

Case Study On The Soft-First-Story Buildings Strengthened By Confined Concrete Columns 13 th World Conference on Earthquake Engineering Vancouver, B.C., Canada August 1-6, 24 Paper No. 654 Case Study On The Soft-First-Story Buildings Strengthened By Confined Concrete Columns Hiroshi KOMOTO

More information

Verification Manual. of GEO5 Gravity Wall program. Written by: Ing. Veronika Vaněčková, Ph.D. Verze: 1.0-en Fine Ltd.

Verification Manual. of GEO5 Gravity Wall program. Written by: Ing. Veronika Vaněčková, Ph.D. Verze: 1.0-en Fine Ltd. of program Written by: Ing. Veronika Vaněčková, Ph.D. Edited by: Ing. Jiří Laurin Verze: 1.0-en 1989-2009 Fine Ltd. www.finesotware.eu INTRODUCTION This Gravity Wall program Verification Manual contains

More information

NON-LINEAR ANALYSIS OF SOIL-PILE-STRUCTURE INTERACTION UNDER SEISMIC LOADS

NON-LINEAR ANALYSIS OF SOIL-PILE-STRUCTURE INTERACTION UNDER SEISMIC LOADS NON-LINEAR ANALYSIS OF SOIL-PILE-STRUCTURE INTERACTION UNDER SEISMIC LOADS Yingcai Han 1 and Shin-Tower Wang 2 1 Fluor Canada Ltd., Calgary AB, Canada Email: yingcai.han@fluor.com 2 Ensoft, Inc. Austin,

More information

EFFECT OF SOIL TYPE LOCATION ON THE LATERALLY LOADED SINGLE PILE

EFFECT OF SOIL TYPE LOCATION ON THE LATERALLY LOADED SINGLE PILE International Journal of Civil Engineering and Technology (IJCIET) Volume 9, Issue 12, December 2018, pp. 1196 1205, Article ID: IJCIET_09_12 122 Available online at http://www.ia aeme.com/ijciet/issues.asp?jtype=ijciet&vtype=

More information

Experimental Device for Measuring Sandy Soil Sinkage Parameters

Experimental Device for Measuring Sandy Soil Sinkage Parameters Bull. Fac. Agr., Saga Univ. No Experimental Device for Measuring Sandy Soil Sinkage Parameters Nang Nguyen Van, Takaaki MATSUO, Tatsuya KOUMOTO * and Shigeki INABA ** (Laboratory of Agricultural Machinery,

More information