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Microstructure and Texture Evolution in Cold-Rolled and Annealed Oxygen-Free Copper Sheets.
Jing Qin1,2,3,4, Xun Li4,5, Dongsheng Wang1,2,3,4
1School of Mechanical Engineering, Tongling University, Tongling 244000, China.
Materials (Basel, Switzerland)
|May 25, 2024
Summary
Cold-rolling and annealing of oxygen-free copper sheets influence microstructure and texture. Higher reductions promote Brass and S textures, while annealing temperature affects recrystallization, leading to Cube texture formation at 87% reduction.
Area of Science:
- Materials Science
- Metallurgy
- Physical Metallurgy
Background:
- Understanding texture evolution in metals is crucial for predicting mechanical properties.
- Oxygen-free copper is widely used in electrical and electronic applications, requiring controlled microstructural properties.
Purpose of the Study:
- To investigate the effects of varying cold-rolling reduction and annealing temperatures on the microstructure and texture of oxygen-free copper sheets.
- To correlate deformation and recrystallization textures with processing parameters.
Main Methods:
- Commercial oxygen-free copper sheets were subjected to cold-rolling (20-87% reduction) and annealing (400-600 °C).
- Microstructure and texture evolution were analyzed using optical microscopy (OM), scanning electron microscopy (SEM), and electron back-scattered diffraction (EBSD).
Main Results:
- Deformation textures ({123}<634> S, {112}<111> Copper, {110}<112> Brass) intensified with increasing cold-rolling reduction.
- Recrystallization texture was highly dependent on prior cold-rolling reduction; a strong Cube texture formed at 87% reduction after annealing.
- Annealing temperature influenced texture component intensity and annealing twin boundary density, which decreased with rising temperature.
Conclusions:
- Strong Brass and S deformation textures facilitate the formation of a strong Cube annealing texture in oxygen-free copper.
- Increased cold-rolling reduction leads to a higher density of annealing twin boundaries.
- Processing parameters significantly control the final microstructure and texture, impacting material properties.
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