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Formulation of Strain Fatigue Criterion Based on Complex Numbers
Tadeusz Łagoda1, Karolina Głowacka1, Marta Kurek1
1Faculty of Mechanical Engineering, Opole University of Technology, 45-271 Opole, Poland.
This study introduces a novel method using complex numbers to combine normal and shear strains in fatigue analysis. This approach accurately represents different strain types, overcoming limitations of traditional weighting factors.
Area of Science:
- Materials Science
- Mechanical Engineering
- Solid Mechanics
Background:
- Multiaxial fatigue criteria often face mathematical challenges when combining normal and shear strain vectors.
- Existing methods use weighting factors to define equivalent strain, which can oversimplify the distinct physical nature of normal (longitudinal) and shear (rotational) strains.
Purpose of the Study:
- To develop a new method for combining different strain types in fatigue analysis.
- To address the physical inaccuracies of using simple vector addition or weighting factors for normal and shear strains.
Main Methods:
- A complex number system was employed to represent strain components.
- Normal strain was assigned as the real part, and shear strain as the imaginary part of a complex number.
- This complex number representation was applied to analyze simple load states.
Main Results:
- The proposed complex number approach successfully integrates normal and shear strains.
- For simple load cases like pure bending and pure torsion, the derived equivalent strain expression matches previously established criteria (e.g., Macha's).
Conclusions:
- The complex number method offers a more physically grounded approach to combining normal and shear strains in multiaxial fatigue.
- This method provides a unified framework for fatigue analysis, potentially improving accuracy in predicting material failure under complex loading conditions.
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