A Framework for Cyclic Simulation of Thin-Walled  Cold-Formed Steel Members in Structural Systems

The objective of this research is to create a computationally efficient seismic analysis framework for cold-formed steel (CFS) framed-buildings supported by hysteretic nonlinear models for CFS members and screw-fastened connections. Design of CFS structures subjected to lateral seismic forces tradit...

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Main Author: Padilla-Llano, David Alberto
Other Authors: Civil and Environmental Engineering
Format: Others
Published: Virginia Tech 2015
Subjects:
Online Access:http://hdl.handle.net/10919/52904
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-529042020-11-03T05:52:46Z A Framework for Cyclic Simulation of Thin-Walled  Cold-Formed Steel Members in Structural Systems Padilla-Llano, David Alberto Civil and Environmental Engineering Moen, Cristopher D. Eatherton, Matthew Roy Roberts-Wollmann, Carin L. Leon, Roberto T. Schafer, Benjamin William Cold-formed steel Seismic energy dissipation Hysteretic behavior Buckling Thin-walled Cold-formed steel studs Cold-formed steel joists. The objective of this research is to create a computationally efficient seismic analysis framework for cold-formed steel (CFS) framed-buildings supported by hysteretic nonlinear models for CFS members and screw-fastened connections. Design of CFS structures subjected to lateral seismic forces traditionally relies on the strength of subassemblies subjected to lateral loading of systems, such as strapped/sheathed shear walls and diaphragms, to provide adequate protection against collapse. Enabling performance-based seismic design of CFS buildings requires computationally efficient and accurate modeling tools that predict the nonlinear cyclic behavior of CFS buildings, the individual CFS components and connections. Such models should capture the energy dissipation and damage due to buckling and cross-sectional deformations in thin-walled CFS components subjected to cyclic loads such as those induced by earthquakes. Likewise, models for screw-fastened CFS connections should capture the energy dissipation and damage due to tilting, bearing, or screw shear when subjected to cyclic loading. In this dissertation, an analysis framework for CFS structures that captures the nonlinear cyclic behavior of critical components including axial members, flexural members, and screw fastened connections is presented. A modeling approach to simulate thin-walled behavior in CFS members is introduced where parameters were developed using results from an experimental program that investigated the cyclic behavior and energy dissipation in CFS axial members and flexural members. Energy dissipation and cyclic behavior of CFS members were characterized for members experiencing global, distortional and local buckling. Cyclic behavior and energy dissipation in thin steel plates and members was further investigated through finite element analysis in ABAQUS to provide a strategy for modeling steel columns cyclic behavior including local buckling. Model parameters were developed as generalized functions of the hysteretic energy dissipated and slenderness. The capabilities of the analysis framework are demonstrated through simulations of CFS wood sheathed shear wall cyclic responses validated with experimental results from full scale shear wall tests. Ph. D. 2015-06-04T08:00:21Z 2015-06-04T08:00:21Z 2015-06-03 Dissertation vt_gsexam:5740 http://hdl.handle.net/10919/52904 In Copyright http://rightsstatements.org/vocab/InC/1.0/ ETD application/pdf Virginia Tech
collection NDLTD
format Others
sources NDLTD
topic Cold-formed steel
Seismic energy dissipation
Hysteretic behavior
Buckling
Thin-walled
Cold-formed steel studs
Cold-formed steel joists.
spellingShingle Cold-formed steel
Seismic energy dissipation
Hysteretic behavior
Buckling
Thin-walled
Cold-formed steel studs
Cold-formed steel joists.
Padilla-Llano, David Alberto
A Framework for Cyclic Simulation of Thin-Walled  Cold-Formed Steel Members in Structural Systems
description The objective of this research is to create a computationally efficient seismic analysis framework for cold-formed steel (CFS) framed-buildings supported by hysteretic nonlinear models for CFS members and screw-fastened connections. Design of CFS structures subjected to lateral seismic forces traditionally relies on the strength of subassemblies subjected to lateral loading of systems, such as strapped/sheathed shear walls and diaphragms, to provide adequate protection against collapse. Enabling performance-based seismic design of CFS buildings requires computationally efficient and accurate modeling tools that predict the nonlinear cyclic behavior of CFS buildings, the individual CFS components and connections. Such models should capture the energy dissipation and damage due to buckling and cross-sectional deformations in thin-walled CFS components subjected to cyclic loads such as those induced by earthquakes. Likewise, models for screw-fastened CFS connections should capture the energy dissipation and damage due to tilting, bearing, or screw shear when subjected to cyclic loading. In this dissertation, an analysis framework for CFS structures that captures the nonlinear cyclic behavior of critical components including axial members, flexural members, and screw fastened connections is presented. A modeling approach to simulate thin-walled behavior in CFS members is introduced where parameters were developed using results from an experimental program that investigated the cyclic behavior and energy dissipation in CFS axial members and flexural members. Energy dissipation and cyclic behavior of CFS members were characterized for members experiencing global, distortional and local buckling. Cyclic behavior and energy dissipation in thin steel plates and members was further investigated through finite element analysis in ABAQUS to provide a strategy for modeling steel columns cyclic behavior including local buckling. Model parameters were developed as generalized functions of the hysteretic energy dissipated and slenderness. The capabilities of the analysis framework are demonstrated through simulations of CFS wood sheathed shear wall cyclic responses validated with experimental results from full scale shear wall tests. === Ph. D.
author2 Civil and Environmental Engineering
author_facet Civil and Environmental Engineering
Padilla-Llano, David Alberto
author Padilla-Llano, David Alberto
author_sort Padilla-Llano, David Alberto
title A Framework for Cyclic Simulation of Thin-Walled  Cold-Formed Steel Members in Structural Systems
title_short A Framework for Cyclic Simulation of Thin-Walled  Cold-Formed Steel Members in Structural Systems
title_full A Framework for Cyclic Simulation of Thin-Walled  Cold-Formed Steel Members in Structural Systems
title_fullStr A Framework for Cyclic Simulation of Thin-Walled  Cold-Formed Steel Members in Structural Systems
title_full_unstemmed A Framework for Cyclic Simulation of Thin-Walled  Cold-Formed Steel Members in Structural Systems
title_sort framework for cyclic simulation of thin-walled  cold-formed steel members in structural systems
publisher Virginia Tech
publishDate 2015
url http://hdl.handle.net/10919/52904
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