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Product Overview

In this project, the cyclic behavior of a corrugated steel plate shear wall is investigated using Abaqus.

The numerical model is developed based on an experimental study reported in the reference paper. The model consists of a beam, column, corrugated steel plate, and stiffeners.

The shear wall is subjected to cyclic loading, and its nonlinear hysteretic response is obtained from the Abaqus analysis.

Model Description

The model represents a corrugated steel plate shear wall based on the configuration used in the reference experimental study.

The main structural components include the beam, column, corrugated steel plate, and stiffeners. The geometry and required properties are defined in Abaqus according to the information provided in the reference paper.

The numerical model is developed to investigate the structural response of the corrugated steel plate shear wall under cyclic loading.

Corrugated steel plate shear wall model in Abaqus
Corrugated steel plate shear wall modeled in Abaqus.

Buckling Analysis and Initial Imperfection

The project consists of a buckling analysis followed by a nonlinear hysteresis analysis.

First, a buckling analysis is performed to obtain the buckling modes of the shear wall.

The obtained buckling mode is then used to introduce an initial geometric imperfection into the numerical model.

This procedure allows the numerical model to better represent the initial imperfections of the structural specimen.

Cyclic Loading

The corrugated steel plate shear wall is subjected to cyclic loading applied at the top of the shear wall.

The loading history is defined using the Amplitude option in Abaqus according to the loading protocol used in the reference experimental study.

The structure is analyzed under repeated loading and unloading cycles to investigate its nonlinear hysteretic behavior.

Cyclic loading applied to corrugated steel plate shear wall
Cyclic loading protocol used in the numerical analysis.

Hysteresis Analysis

Following the cyclic loading analysis, the force and displacement results are extracted from Abaqus to obtain the Drift–Force hysteresis diagram.

The hysteresis response is used to evaluate the nonlinear behavior of the corrugated steel plate shear wall under cyclic loading.

Drift Force hysteresis diagram of corrugated steel plate shear wall
Drift–Force hysteresis diagram obtained from the Abaqus analysis.

Deformation Under Cyclic Loading

The deformation of the corrugated steel plate shear wall during the cyclic loading analysis can be observed from the Abaqus results.

The numerical deformation pattern provides an additional indication of the structural response and behavior of the shear wall during cyclic loading.

Deformation of corrugated steel plate shear wall under cyclic loading
Deformation of the shear wall under cyclic loading.

Experimental Validation

The numerical results obtained from Abaqus are compared with the experimental results reported in the reference paper.

The comparison focuses on the Drift–Force hysteresis response and the overall structural behavior under cyclic loading.

The Abaqus results show good agreement with the experimental results, demonstrating the ability of the numerical model to reproduce the behavior of the experimental specimen.

Key Features

  • Cyclic analysis of a corrugated steel plate shear wall.
  • Modeling of beam, column, corrugated plate, and stiffeners.
  • Buckling analysis and extraction of buckling modes.
  • Initial geometric imperfection based on buckling mode.
  • Cyclic loading using the Amplitude option.
  • Nonlinear hysteresis analysis.
  • Drift–Force hysteresis response.
  • Comparison with experimental results.
  • Excel file for amplitude loading.
  • Excel file containing numerical results.
  • Complete Abaqus model files.
  • Step-by-step video tutorial.

What You Will Learn

  • How to model a corrugated steel plate shear wall in Abaqus.
  • How to model the beam, column, corrugated steel plate, and stiffeners.
  • How to define the geometry and material properties of the model.
  • How to define the required interactions and constraints.
  • How to define the boundary conditions.
  • How to perform a buckling analysis.
  • How to extract buckling modes from Abaqus.
  • How to define an initial geometric imperfection using buckling modes.
  • How to define cyclic loading using the Amplitude option in Abaqus.
  • How to perform nonlinear analysis under cyclic loading.
  • How to obtain a force–displacement hysteresis response.
  • How to extract and process Abaqus results using Excel.
  • How to compare numerical and experimental results.

Reference

This project is based on the experimental study provided in the reference research paper.

The paper is included with the project files and can be used to review the experimental configuration, cyclic loading protocol, and reported results.

Reference research paper
Reference research paper.
Files Included
What you will receive after purchase
File Type
Content
Description
🧩 Abaqus
CAE File
Complete Abaqus model
📄 Abaqus
INP File
Abaqus input file
📊 Excel
Amplitude Loading
Data used to define the cyclic loading
📊 Excel
Numerical Results
Results extracted from the Abaqus analysis
📑 Document
Research Paper
Reference paper used for the project
🎥 Video
Video Tutorial
Step-by-step explanation of the project

Project Information

Important information about this project

🎥
Video Duration 59 Minutes
📦
Total File Size 577 MB
🔧
Abaqus Version Abaqus 2017
🌐
Language English
📥
File Delivery Instant Download

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saeedofmoeini@gmail.com

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