SlideShare ist ein Scribd-Unternehmen logo
1 von 18
YANGON TECHNOLOGICAL UNIVERSITY
    DEPARTMENT OF CIVIL ENGINEERING


  STUDY ON VARIATION OF JOINT FORCES IN
   STIFFENING TRUSS OF CABLE-STAYED BRIDGE




  SUPERVISOR                          STUDENT
DR.NYAN MYINT KYAW                MA YEE MON KHAING
PROFESSOR AND HEAD                ROLL NO. C-28
DEPARTMENT OF CIVIL ENGINEERING   M.E. THESIS
Outlines of the First Seminar

 Objectives of the study

 Scopes of the study

 Flow chart of the study

 Component parts of the cable-stayed bridge

 Design procedure

 Implementation program

 Expected outcomes
Objectives of the study

  To get knowledge on design and analysis of a superstructure of cable-stayed highway
  bridge

  To know the components of cable-stayed bridge

  To have some knowledge of the design specifications for highway bridge published by
  American Association of State Highway and Transportation Officials (AASHTO)
  specifications

  To get better knowledge on practices and standards in bridge design

  To get detail information on the variation of joint forces in stiffening truss of cable-
  stayed bridge

  To be skillful for the way how to use STAAD-Pro software
Scope of the study

  Only superstructure of cable-stayed bridge will be designed

  AASHTO design specifications and HS 20-44 loading will be used

  The preliminary design and joint design will be done by STAAD-Pro software

  The effect of thermal change, wind force and earthquake effect will be considered

  The variation of joint forces in stiffening truss which mainly supports the floor of
  cable-stayed bridge are determined

  Anchorage, substructure and construction methods are not involved in this study
Literature Study


  Construction Methods and Procedures

           Design Configuration

           Modeling for Analysis

           Analysis and Design

         Final Design and Result

  Joint Detail Design of Stiffening Truss

Variation of Joints forces in Stiffening truss


   Fig. Flow chart of the study
Component Parts of Cable-Stayed Bridge

1. Cables

2. Cable System

3. Pylon

4. Stiffening girder or Truss

5. Cable anchorage and Connection
Cables
   Cables are the most important elements of a cable-stayed bridge.
 They carry the load of the girder and transfer it to the tower and the
    back-stay cable anchorage.
   Cables are tension members.
Types of cables




        Locked coil Strand       Helical Strand           Bar Bundle




    New Parallel Wire Strand                      Seven Wire Strand
Cable System
         Three basic arrangements have been developed for the longitudinal
layout of the stay cables. They are

 Radial System

 Harp System

 Fan System
Number of Cable Planes
     The three basic transverse cable of configurations are following;




                      (a) Single Plane




                       (b) Double Plane




                       (c) Triple Plane
Pylon or Tower
   The design of the pylon must adapt to the various stay cable layouts.
   The primary function of the pylon is to transmit the force arising from
    anchoring the stays and these forces will dominate the design of cables.




               Tower configurations for single-plane cable
Tower configurations for single-plane cable




Tower configurations in the case of the high installation position for girder
Stiffening Girder
   The role of the stiffening girder is to transfer the applied loads, self
    weight as well as traffic load, into the cable system.
   The traffic load is acting on the deck of the girder, and both the dead
    load and wind area in most cases are larger for the girder than for the
    cable system.
   Stiffening girders may be I girders, trusses and box girders.
   The stiffening truss will be made as a space truss comprising four
    chords connected by four diagonal bracings, two vertical and two
    horizontal.
Bracing System
    The bracing system used in stiffening trusses are generally the same
     as found in the other trusses with constant depth.
    Three types of bracing system for the vertical main trusses . They
     are
     1. Warren truss
     2. Pure warren truss
     3. Pratt truss


          (a)          Warren truss        (b)




          Pure warren truss             Pratt truss

        Figure; Relevant Bracing Systems for the Main Trusses
Design Procedure
 Bridge Type              - Cable-Stayed Bridge
 Total Length of Bridge   - 240 m
 Span Arrangement         - 3 spans arrangement
 Main Span                - 130 m
 Side Span                - 55 m (each)
 Clear width              - 22 m (six lanes)
 Side Walk Width          - 1.5 m (each)
 Pylon (or) Tower         - H Type
 Truss Type               - Warren Truss Type
 Cable type               - 7̋ΦParallel Wire Strands
 Cable System             - Fan type
 Traffic (live loading)   - HS-20-44 (AASHTO)
 Height of Truss          -3m
 Stringer Spacing         - 5.875 m c/c
Implementation Program
Literature study on proposed bridge

Configuration of proposed bridge

Preparation for analysis of bridge

Modeling analysis of bridge using STAAD-Pro software

Design of main structural components

Detail for joints of stiffening truss of bridge
Expected outcomes

 Achieve knowledge and skill in design of a cable-stayed bridge

 Provide complete joint design data for construction of a cable-stayed
  bridge
STUDY ON VARIATION OF JOINT FORCES IN STIFFENING TRUSS OF CABLE-STAYED BRIDGE

Weitere ähnliche Inhalte

Was ist angesagt?

Bridge engineering
Bridge engineeringBridge engineering
Bridge engineering
Halcrow
 

Was ist angesagt? (20)

Cable stay bridge 05.01.16-IPWE seminar NewDelhi
Cable stay bridge  05.01.16-IPWE seminar NewDelhiCable stay bridge  05.01.16-IPWE seminar NewDelhi
Cable stay bridge 05.01.16-IPWE seminar NewDelhi
 
Cable and suspension bridge
Cable and suspension bridge Cable and suspension bridge
Cable and suspension bridge
 
Cable stay bridge construction
Cable stay bridge constructionCable stay bridge construction
Cable stay bridge construction
 
Reliability Assessment of Cable-Stayed Bridges
Reliability Assessment of Cable-Stayed BridgesReliability Assessment of Cable-Stayed Bridges
Reliability Assessment of Cable-Stayed Bridges
 
Seminar on cable stayed bridge
Seminar on cable stayed bridgeSeminar on cable stayed bridge
Seminar on cable stayed bridge
 
Sustainable Bridges
Sustainable BridgesSustainable Bridges
Sustainable Bridges
 
Uses of Larsa 4 d and Lusas 4 D models for Implementation of Cable Stayed ...
Uses of Larsa   4 d and Lusas  4 D models for Implementation of Cable Stayed ...Uses of Larsa   4 d and Lusas  4 D models for Implementation of Cable Stayed ...
Uses of Larsa 4 d and Lusas 4 D models for Implementation of Cable Stayed ...
 
Cable stay bridges, summary of a lecture delivered at Uni of Surrey, UK
Cable stay bridges, summary of a lecture delivered at Uni of Surrey, UKCable stay bridges, summary of a lecture delivered at Uni of Surrey, UK
Cable stay bridges, summary of a lecture delivered at Uni of Surrey, UK
 
Cables & suspension bridges
Cables & suspension bridgesCables & suspension bridges
Cables & suspension bridges
 
Suspension bridge
Suspension bridge Suspension bridge
Suspension bridge
 
Bridges
Bridges Bridges
Bridges
 
The Akashi-Kaikyo Suspension Bridge
The Akashi-Kaikyo Suspension BridgeThe Akashi-Kaikyo Suspension Bridge
The Akashi-Kaikyo Suspension Bridge
 
Analyze and design of suspension bridge using sap2000
Analyze and design of suspension bridge using sap2000Analyze and design of suspension bridge using sap2000
Analyze and design of suspension bridge using sap2000
 
Cable suspension bridge pdf
Cable suspension bridge pdfCable suspension bridge pdf
Cable suspension bridge pdf
 
Long span cable
Long span cableLong span cable
Long span cable
 
Suspension bridge
Suspension bridgeSuspension bridge
Suspension bridge
 
Suspension bridge
Suspension bridgeSuspension bridge
Suspension bridge
 
Golden gate bridge
Golden gate bridgeGolden gate bridge
Golden gate bridge
 
Composite deck bridge systems
Composite deck bridge systemsComposite deck bridge systems
Composite deck bridge systems
 
Bridge engineering
Bridge engineeringBridge engineering
Bridge engineering
 

Andere mochten auch

Direct inverse variation
Direct inverse variationDirect inverse variation
Direct inverse variation
Yvette Lee
 
Unit 4 hw 7 - direct variation & linear equation give 2 points
Unit 4   hw 7 - direct variation & linear equation give 2 pointsUnit 4   hw 7 - direct variation & linear equation give 2 points
Unit 4 hw 7 - direct variation & linear equation give 2 points
Lori Rapp
 
5.3 Direct Variation C
5.3 Direct Variation C5.3 Direct Variation C
5.3 Direct Variation C
vmonacelli
 
8.2 inverse and joint variation
8.2 inverse and joint variation8.2 inverse and joint variation
8.2 inverse and joint variation
andreagoings
 
Direct variation power point
Direct variation power pointDirect variation power point
Direct variation power point
toni dimella
 
4. STUDY ONVARIATION OF JOINT FORCES IN STEEL TRUSS BRIDGE
4.	STUDY ONVARIATION OF JOINT FORCES IN STEEL TRUSS BRIDGE4.	STUDY ONVARIATION OF JOINT FORCES IN STEEL TRUSS BRIDGE
4. STUDY ONVARIATION OF JOINT FORCES IN STEEL TRUSS BRIDGE
AELC
 
9.1 inverse and joint variation
9.1 inverse and joint variation9.1 inverse and joint variation
9.1 inverse and joint variation
hisema01
 
Direct and inverse variation
Direct and inverse variationDirect and inverse variation
Direct and inverse variation
dmidgette
 
Shifted multiplicative model - navdeep singh jamwal
Shifted multiplicative model - navdeep singh jamwalShifted multiplicative model - navdeep singh jamwal
Shifted multiplicative model - navdeep singh jamwal
navdeep singh jamwal
 

Andere mochten auch (20)

Mathematics 9 Lesson 4-C: Joint and Combined Variation
Mathematics 9 Lesson 4-C: Joint and Combined VariationMathematics 9 Lesson 4-C: Joint and Combined Variation
Mathematics 9 Lesson 4-C: Joint and Combined Variation
 
Direct Variation
Direct VariationDirect Variation
Direct Variation
 
AA Section 2-9
AA Section 2-9AA Section 2-9
AA Section 2-9
 
Direct inverse variation
Direct inverse variationDirect inverse variation
Direct inverse variation
 
Joint variation
Joint variationJoint variation
Joint variation
 
Unit 4 hw 7 - direct variation & linear equation give 2 points
Unit 4   hw 7 - direct variation & linear equation give 2 pointsUnit 4   hw 7 - direct variation & linear equation give 2 points
Unit 4 hw 7 - direct variation & linear equation give 2 points
 
5.3 Direct Variation C
5.3 Direct Variation C5.3 Direct Variation C
5.3 Direct Variation C
 
Joint variation final
Joint variation finalJoint variation final
Joint variation final
 
Integrated Math 2 Section 6-9
Integrated Math 2 Section 6-9Integrated Math 2 Section 6-9
Integrated Math 2 Section 6-9
 
Chapter 5 Direct Variation
Chapter 5 Direct VariationChapter 5 Direct Variation
Chapter 5 Direct Variation
 
direct variation grade9 module 3 by mr. joel garcia
direct variation grade9 module 3 by mr. joel garciadirect variation grade9 module 3 by mr. joel garcia
direct variation grade9 module 3 by mr. joel garcia
 
8.2 inverse and joint variation
8.2 inverse and joint variation8.2 inverse and joint variation
8.2 inverse and joint variation
 
Direct variation power point
Direct variation power pointDirect variation power point
Direct variation power point
 
4. STUDY ONVARIATION OF JOINT FORCES IN STEEL TRUSS BRIDGE
4.	STUDY ONVARIATION OF JOINT FORCES IN STEEL TRUSS BRIDGE4.	STUDY ONVARIATION OF JOINT FORCES IN STEEL TRUSS BRIDGE
4. STUDY ONVARIATION OF JOINT FORCES IN STEEL TRUSS BRIDGE
 
Mathematics 9 Lesson 4-A: Direct Variation
Mathematics 9 Lesson 4-A: Direct VariationMathematics 9 Lesson 4-A: Direct Variation
Mathematics 9 Lesson 4-A: Direct Variation
 
9.1 inverse and joint variation
9.1 inverse and joint variation9.1 inverse and joint variation
9.1 inverse and joint variation
 
Pc 1.10 notes
Pc 1.10 notesPc 1.10 notes
Pc 1.10 notes
 
Direct and inverse variation
Direct and inverse variationDirect and inverse variation
Direct and inverse variation
 
Shifted multiplicative model - navdeep singh jamwal
Shifted multiplicative model - navdeep singh jamwalShifted multiplicative model - navdeep singh jamwal
Shifted multiplicative model - navdeep singh jamwal
 
Joint variation
Joint variationJoint variation
Joint variation
 

Ähnlich wie STUDY ON VARIATION OF JOINT FORCES IN STIFFENING TRUSS OF CABLE-STAYED BRIDGE

Analysis and Design of Power Transmission Lines Steel Towers.docx
Analysis and Design of Power Transmission Lines Steel Towers.docxAnalysis and Design of Power Transmission Lines Steel Towers.docx
Analysis and Design of Power Transmission Lines Steel Towers.docx
Adnan Lazem
 
Calculation Note Final
Calculation Note FinalCalculation Note Final
Calculation Note Final
Mohamed Elfike
 
analysis-and-design-of-four-leg-steel-tr-9e5db9cf.pdf
analysis-and-design-of-four-leg-steel-tr-9e5db9cf.pdfanalysis-and-design-of-four-leg-steel-tr-9e5db9cf.pdf
analysis-and-design-of-four-leg-steel-tr-9e5db9cf.pdf
Abdulwahedalsafany
 
Dynamic analysis of steel tube structure with bracing systems
Dynamic analysis of steel tube structure with bracing systemsDynamic analysis of steel tube structure with bracing systems
Dynamic analysis of steel tube structure with bracing systems
eSAT Journals
 
Introductiontobridges07 08-090507223401-phpapp02-converted
Introductiontobridges07 08-090507223401-phpapp02-convertedIntroductiontobridges07 08-090507223401-phpapp02-converted
Introductiontobridges07 08-090507223401-phpapp02-converted
naveen kumar
 

Ähnlich wie STUDY ON VARIATION OF JOINT FORCES IN STIFFENING TRUSS OF CABLE-STAYED BRIDGE (20)

Analysis of cable stayed bridges
Analysis of cable stayed bridgesAnalysis of cable stayed bridges
Analysis of cable stayed bridges
 
Analysis and Design of Power Transmission Lines Steel Towers.docx
Analysis and Design of Power Transmission Lines Steel Towers.docxAnalysis and Design of Power Transmission Lines Steel Towers.docx
Analysis and Design of Power Transmission Lines Steel Towers.docx
 
Calculation Note Final
Calculation Note FinalCalculation Note Final
Calculation Note Final
 
Design of cell transmission tower with different bracing patterns
Design of cell transmission tower with different bracing patternsDesign of cell transmission tower with different bracing patterns
Design of cell transmission tower with different bracing patterns
 
analysis-and-design-of-four-leg-steel-tr-9e5db9cf.pdf
analysis-and-design-of-four-leg-steel-tr-9e5db9cf.pdfanalysis-and-design-of-four-leg-steel-tr-9e5db9cf.pdf
analysis-and-design-of-four-leg-steel-tr-9e5db9cf.pdf
 
Three Dimensional Non-Linear Seismic Analysis of a Cable Stayed Bridge using ...
Three Dimensional Non-Linear Seismic Analysis of a Cable Stayed Bridge using ...Three Dimensional Non-Linear Seismic Analysis of a Cable Stayed Bridge using ...
Three Dimensional Non-Linear Seismic Analysis of a Cable Stayed Bridge using ...
 
Optimization and Analysis of Cable Stayed Bridges
Optimization and Analysis of Cable Stayed BridgesOptimization and Analysis of Cable Stayed Bridges
Optimization and Analysis of Cable Stayed Bridges
 
IRJET- Comparative Analysis of RCC Structure and Tube-in-Tube Structure
IRJET-  	  Comparative Analysis of RCC Structure and Tube-in-Tube StructureIRJET-  	  Comparative Analysis of RCC Structure and Tube-in-Tube Structure
IRJET- Comparative Analysis of RCC Structure and Tube-in-Tube Structure
 
Analysis and Design of Transmission Tower
Analysis and Design of Transmission Tower Analysis and Design of Transmission Tower
Analysis and Design of Transmission Tower
 
Dynamic analysis of steel tube structure with bracing systems
Dynamic analysis of steel tube structure with bracing systemsDynamic analysis of steel tube structure with bracing systems
Dynamic analysis of steel tube structure with bracing systems
 
IIBE ppt at Lucknow dt 25.05.18
IIBE ppt at Lucknow dt 25.05.18IIBE ppt at Lucknow dt 25.05.18
IIBE ppt at Lucknow dt 25.05.18
 
IIBE ppt at Lucknow dt 25.05.18
IIBE ppt at Lucknow dt 25.05.18IIBE ppt at Lucknow dt 25.05.18
IIBE ppt at Lucknow dt 25.05.18
 
Parametric Study on Curved Bridges Subjected to Seismic Loading
Parametric Study on Curved Bridges Subjected to Seismic LoadingParametric Study on Curved Bridges Subjected to Seismic Loading
Parametric Study on Curved Bridges Subjected to Seismic Loading
 
PARAMETRIC STUDY ON SLAB DECK BRIDGES USING RESPONSE SURFACE METHOD
PARAMETRIC STUDY ON SLAB DECK BRIDGES USING RESPONSE SURFACE METHODPARAMETRIC STUDY ON SLAB DECK BRIDGES USING RESPONSE SURFACE METHOD
PARAMETRIC STUDY ON SLAB DECK BRIDGES USING RESPONSE SURFACE METHOD
 
Acm Space Frames
Acm Space FramesAcm Space Frames
Acm Space Frames
 
2581
25812581
2581
 
Cmmt 2 final
Cmmt 2 finalCmmt 2 final
Cmmt 2 final
 
IRJET- Seismic Analysis of Curve Cable-Stayed Bridge
IRJET- Seismic Analysis of Curve Cable-Stayed BridgeIRJET- Seismic Analysis of Curve Cable-Stayed Bridge
IRJET- Seismic Analysis of Curve Cable-Stayed Bridge
 
Rail bridge and composite girder bridge analysis
Rail bridge and composite girder bridge analysisRail bridge and composite girder bridge analysis
Rail bridge and composite girder bridge analysis
 
Introductiontobridges07 08-090507223401-phpapp02-converted
Introductiontobridges07 08-090507223401-phpapp02-convertedIntroductiontobridges07 08-090507223401-phpapp02-converted
Introductiontobridges07 08-090507223401-phpapp02-converted
 

Kürzlich hochgeladen

Finding Java's Hidden Performance Traps @ DevoxxUK 2024
Finding Java's Hidden Performance Traps @ DevoxxUK 2024Finding Java's Hidden Performance Traps @ DevoxxUK 2024
Finding Java's Hidden Performance Traps @ DevoxxUK 2024
Victor Rentea
 
Why Teams call analytics are critical to your entire business
Why Teams call analytics are critical to your entire businessWhy Teams call analytics are critical to your entire business
Why Teams call analytics are critical to your entire business
panagenda
 
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers:  A Deep Dive into Serverless Spatial Data and FMECloud Frontiers:  A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FME
Safe Software
 

Kürzlich hochgeladen (20)

presentation ICT roal in 21st century education
presentation ICT roal in 21st century educationpresentation ICT roal in 21st century education
presentation ICT roal in 21st century education
 
Exploring Multimodal Embeddings with Milvus
Exploring Multimodal Embeddings with MilvusExploring Multimodal Embeddings with Milvus
Exploring Multimodal Embeddings with Milvus
 
Finding Java's Hidden Performance Traps @ DevoxxUK 2024
Finding Java's Hidden Performance Traps @ DevoxxUK 2024Finding Java's Hidden Performance Traps @ DevoxxUK 2024
Finding Java's Hidden Performance Traps @ DevoxxUK 2024
 
Apidays New York 2024 - The value of a flexible API Management solution for O...
Apidays New York 2024 - The value of a flexible API Management solution for O...Apidays New York 2024 - The value of a flexible API Management solution for O...
Apidays New York 2024 - The value of a flexible API Management solution for O...
 
"I see eyes in my soup": How Delivery Hero implemented the safety system for ...
"I see eyes in my soup": How Delivery Hero implemented the safety system for ..."I see eyes in my soup": How Delivery Hero implemented the safety system for ...
"I see eyes in my soup": How Delivery Hero implemented the safety system for ...
 
Introduction to Multilingual Retrieval Augmented Generation (RAG)
Introduction to Multilingual Retrieval Augmented Generation (RAG)Introduction to Multilingual Retrieval Augmented Generation (RAG)
Introduction to Multilingual Retrieval Augmented Generation (RAG)
 
Rising Above_ Dubai Floods and the Fortitude of Dubai International Airport.pdf
Rising Above_ Dubai Floods and the Fortitude of Dubai International Airport.pdfRising Above_ Dubai Floods and the Fortitude of Dubai International Airport.pdf
Rising Above_ Dubai Floods and the Fortitude of Dubai International Airport.pdf
 
Biography Of Angeliki Cooney | Senior Vice President Life Sciences | Albany, ...
Biography Of Angeliki Cooney | Senior Vice President Life Sciences | Albany, ...Biography Of Angeliki Cooney | Senior Vice President Life Sciences | Albany, ...
Biography Of Angeliki Cooney | Senior Vice President Life Sciences | Albany, ...
 
Web Form Automation for Bonterra Impact Management (fka Social Solutions Apri...
Web Form Automation for Bonterra Impact Management (fka Social Solutions Apri...Web Form Automation for Bonterra Impact Management (fka Social Solutions Apri...
Web Form Automation for Bonterra Impact Management (fka Social Solutions Apri...
 
FWD Group - Insurer Innovation Award 2024
FWD Group - Insurer Innovation Award 2024FWD Group - Insurer Innovation Award 2024
FWD Group - Insurer Innovation Award 2024
 
Apidays New York 2024 - Scaling API-first by Ian Reasor and Radu Cotescu, Adobe
Apidays New York 2024 - Scaling API-first by Ian Reasor and Radu Cotescu, AdobeApidays New York 2024 - Scaling API-first by Ian Reasor and Radu Cotescu, Adobe
Apidays New York 2024 - Scaling API-first by Ian Reasor and Radu Cotescu, Adobe
 
Artificial Intelligence Chap.5 : Uncertainty
Artificial Intelligence Chap.5 : UncertaintyArtificial Intelligence Chap.5 : Uncertainty
Artificial Intelligence Chap.5 : Uncertainty
 
Why Teams call analytics are critical to your entire business
Why Teams call analytics are critical to your entire businessWhy Teams call analytics are critical to your entire business
Why Teams call analytics are critical to your entire business
 
Apidays New York 2024 - APIs in 2030: The Risk of Technological Sleepwalk by ...
Apidays New York 2024 - APIs in 2030: The Risk of Technological Sleepwalk by ...Apidays New York 2024 - APIs in 2030: The Risk of Technological Sleepwalk by ...
Apidays New York 2024 - APIs in 2030: The Risk of Technological Sleepwalk by ...
 
DBX First Quarter 2024 Investor Presentation
DBX First Quarter 2024 Investor PresentationDBX First Quarter 2024 Investor Presentation
DBX First Quarter 2024 Investor Presentation
 
AWS Community Day CPH - Three problems of Terraform
AWS Community Day CPH - Three problems of TerraformAWS Community Day CPH - Three problems of Terraform
AWS Community Day CPH - Three problems of Terraform
 
DEV meet-up UiPath Document Understanding May 7 2024 Amsterdam
DEV meet-up UiPath Document Understanding May 7 2024 AmsterdamDEV meet-up UiPath Document Understanding May 7 2024 Amsterdam
DEV meet-up UiPath Document Understanding May 7 2024 Amsterdam
 
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers:  A Deep Dive into Serverless Spatial Data and FMECloud Frontiers:  A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FME
 
Six Myths about Ontologies: The Basics of Formal Ontology
Six Myths about Ontologies: The Basics of Formal OntologySix Myths about Ontologies: The Basics of Formal Ontology
Six Myths about Ontologies: The Basics of Formal Ontology
 
Elevate Developer Efficiency & build GenAI Application with Amazon Q​
Elevate Developer Efficiency & build GenAI Application with Amazon Q​Elevate Developer Efficiency & build GenAI Application with Amazon Q​
Elevate Developer Efficiency & build GenAI Application with Amazon Q​
 

STUDY ON VARIATION OF JOINT FORCES IN STIFFENING TRUSS OF CABLE-STAYED BRIDGE

  • 1.
  • 2. YANGON TECHNOLOGICAL UNIVERSITY DEPARTMENT OF CIVIL ENGINEERING STUDY ON VARIATION OF JOINT FORCES IN STIFFENING TRUSS OF CABLE-STAYED BRIDGE SUPERVISOR STUDENT DR.NYAN MYINT KYAW MA YEE MON KHAING PROFESSOR AND HEAD ROLL NO. C-28 DEPARTMENT OF CIVIL ENGINEERING M.E. THESIS
  • 3. Outlines of the First Seminar Objectives of the study Scopes of the study Flow chart of the study Component parts of the cable-stayed bridge Design procedure Implementation program Expected outcomes
  • 4. Objectives of the study To get knowledge on design and analysis of a superstructure of cable-stayed highway bridge To know the components of cable-stayed bridge To have some knowledge of the design specifications for highway bridge published by American Association of State Highway and Transportation Officials (AASHTO) specifications To get better knowledge on practices and standards in bridge design To get detail information on the variation of joint forces in stiffening truss of cable- stayed bridge To be skillful for the way how to use STAAD-Pro software
  • 5. Scope of the study Only superstructure of cable-stayed bridge will be designed AASHTO design specifications and HS 20-44 loading will be used The preliminary design and joint design will be done by STAAD-Pro software The effect of thermal change, wind force and earthquake effect will be considered The variation of joint forces in stiffening truss which mainly supports the floor of cable-stayed bridge are determined Anchorage, substructure and construction methods are not involved in this study
  • 6. Literature Study Construction Methods and Procedures Design Configuration Modeling for Analysis Analysis and Design Final Design and Result Joint Detail Design of Stiffening Truss Variation of Joints forces in Stiffening truss Fig. Flow chart of the study
  • 7. Component Parts of Cable-Stayed Bridge 1. Cables 2. Cable System 3. Pylon 4. Stiffening girder or Truss 5. Cable anchorage and Connection
  • 8. Cables  Cables are the most important elements of a cable-stayed bridge.  They carry the load of the girder and transfer it to the tower and the back-stay cable anchorage.  Cables are tension members. Types of cables Locked coil Strand Helical Strand Bar Bundle New Parallel Wire Strand Seven Wire Strand
  • 9. Cable System Three basic arrangements have been developed for the longitudinal layout of the stay cables. They are  Radial System  Harp System  Fan System
  • 10. Number of Cable Planes The three basic transverse cable of configurations are following; (a) Single Plane (b) Double Plane (c) Triple Plane
  • 11. Pylon or Tower  The design of the pylon must adapt to the various stay cable layouts.  The primary function of the pylon is to transmit the force arising from anchoring the stays and these forces will dominate the design of cables. Tower configurations for single-plane cable
  • 12. Tower configurations for single-plane cable Tower configurations in the case of the high installation position for girder
  • 13. Stiffening Girder  The role of the stiffening girder is to transfer the applied loads, self weight as well as traffic load, into the cable system.  The traffic load is acting on the deck of the girder, and both the dead load and wind area in most cases are larger for the girder than for the cable system.  Stiffening girders may be I girders, trusses and box girders.  The stiffening truss will be made as a space truss comprising four chords connected by four diagonal bracings, two vertical and two horizontal.
  • 14. Bracing System  The bracing system used in stiffening trusses are generally the same as found in the other trusses with constant depth.  Three types of bracing system for the vertical main trusses . They are 1. Warren truss 2. Pure warren truss 3. Pratt truss (a) Warren truss (b) Pure warren truss Pratt truss Figure; Relevant Bracing Systems for the Main Trusses
  • 15. Design Procedure Bridge Type - Cable-Stayed Bridge Total Length of Bridge - 240 m Span Arrangement - 3 spans arrangement Main Span - 130 m Side Span - 55 m (each) Clear width - 22 m (six lanes) Side Walk Width - 1.5 m (each) Pylon (or) Tower - H Type Truss Type - Warren Truss Type Cable type - 7̋ΦParallel Wire Strands Cable System - Fan type Traffic (live loading) - HS-20-44 (AASHTO) Height of Truss -3m Stringer Spacing - 5.875 m c/c
  • 16. Implementation Program Literature study on proposed bridge Configuration of proposed bridge Preparation for analysis of bridge Modeling analysis of bridge using STAAD-Pro software Design of main structural components Detail for joints of stiffening truss of bridge
  • 17. Expected outcomes  Achieve knowledge and skill in design of a cable-stayed bridge  Provide complete joint design data for construction of a cable-stayed bridge