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Related Concept Videos

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In analyzing a structural member composed of two different materials with identical cross-sectional areas, it is crucial to understand how their distinct elastic properties affect the member's response under load. The analysis involves assessing stress and strain distributions using the transformed section concept, which accounts for variations in material properties.
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Fatigue occurs when materials rupture under repeated or fluctuating loads, even at stress levels far below their static breaking strength. It typically results in brittle failure, even for ductile materials. It is a critical consideration in designing machines and structural components subjected to repetitive or varying loads. The nature of these loadings can range from fluctuating loads like unbalanced pump impellers causing vibrations to repeatedly bending a thin steel rod wire back and forth...
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Iterative experimental design and identifiability analysis of composite material failure models.

Ádám Ipkovich1, Alex Kummer1, László Kovács2

  • 1ELKH-PE Complex Systems Monitoring Research Group, University of Pannonia, Egyetem u. 10, H-8200 Veszprém, Hungary.

Heliyon
|May 2, 2024
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Summary

This study introduces an iterative design of experiments (DoE) method to efficiently identify composite material failure model parameters. The approach reduces necessary experiments, enhancing accuracy and material testing efficiency.

Keywords:
Composite failure modelsDesign of experimentsFisher information matrixIterative parameter optimizationModel identification

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Area of Science:

  • Materials Science
  • Mechanical Engineering
  • Computational Mechanics

Background:

  • Parameter identification for composite ply failure models (e.g., Tsai-Wu, Puck) is complex due to brittle fracture effects.
  • Existing methods may require extensive experimental data, increasing costs and time.
  • Accurate failure models are crucial for predicting composite material performance and safety.

Purpose of the Study:

  • To develop an efficient, iterative design of experiments (DoE) approach for identifying composite failure model parameters.
  • To minimize the number of experiments required for accurate parameter identification.
  • To validate and rank different composite failure criteria based on experimental data.

Main Methods:

  • An iterative, nonlinear design of experiments (DoE) was employed.
  • Parameter identification for multiple failure models (Tsai-Wu, Tsai-Hill, Hoffman, Hashin, max stress, Puck) was performed.
  • Validation involved assessing the Euclidean distance between measured points and model surfaces, followed by sensitivity analysis and iterative experiment selection.

Main Results:

  • The proposed DoE method successfully identified optimal experiments for parameter identification from generated data.
  • The method demonstrated robustness and accuracy when sufficient information was present in the dataset.
  • Sensitivity analysis guided the selection of experiments, enabling parameter identification with minimal data.

Conclusions:

  • The iterative DoE approach significantly reduces the number of experiments needed for composite material failure model parameter identification.
  • The method provides a robust framework for selecting the most informative tests, even suggesting novel tests when data is insufficient.
  • This work enhances the efficiency and accuracy of characterizing composite material behavior under various loading conditions.