Investigation on the Effect of Type of Cooling on the Properties of Aluminum Alloy during Warm/Hot Hydromechanical Deep Drawing
Abstract
:1. Introduction
2. Warm/Hot Sheet HDD Experiment
2.1. Experimental Material
2.2. Test Equipment
2.3. Experimental Results
3. Performance Evaluation of Aluminum Alloy Cylindrical Cups Hydro-Formed by Warm Sheet HDD
3.1. Evaluation Testing Scheme
3.2. Effect of Type of Cooling on Mechanical Properties of Testing Samples
3.3. Effect of Type of Cooling on the Microstructure of Testing Samples
4. Conclusions
- It shows that, under the condition of warm hydroforming, the mechanical properties of the 7075-O aluminum alloy cylindrical cups were influenced very little by different types of cooling. Compared with air cooling, there were more precipitates of the cups with water cooling, but the ultimate strength was nearly unchanged. While the yield strength increased slightly and the specific elongation tended to decrease a little under the condition of water cooling.
- Under the condition of air cooling, the grain of the flange and the cylindrical cup wall of the formed cups were coarsened inordinately and the grain of the cylindrical cup wall was the most serious in which the maximum grain size was 45 μm. Alternately, under the condition of water cooling, the grain size of the flange and the cylindrical cup wall of the cups were inhibited effectively and the grain size was smaller and more uniform than that of air cooling.
- It proves that the grain coarsening of the 7075-O aluminum alloy hydro-formed cups can be inhibited to a certain extent during warm/hot sheet hydroforming with subsequent rapid water cooling, which indicates that there is a positive significance in maintaining the stability of macro mechanical properties and inhibiting the degradation of the materials’ microstructure.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Composition | Zn | Mg | Cu | Mn | Cr | Fe | Si | Ti | others | Al |
---|---|---|---|---|---|---|---|---|---|---|
Percent (%) | 5.1 | 2.1 | 1.2 | 0.3 | 0.18 | 0.5 | 0.4 | 0.2 | 0.2 | rest |
Serial Number | Temperature (°C) | Maximum Pressure (MPa) | Sizes of Cylindrical Cups (mm) | Type of Cooling | Samples of Uniaxial Tension (mm) | Rolling Direction (°) |
---|---|---|---|---|---|---|
1 | 210 | Pmax = 14.5 | t0 = 1.0; φ = 80; h = 85 | Water cooling | L0 = 71 | 0 |
2 | 210 | Pmax = 14.4 | t0 = 1.0; φ = 80; h = 85 | Water cooling | L0 = 71 | 0 |
3 | 210 | Pmax = 14.3 | t0 = 1.0; φ = 80; h = 85 | Water cooling | L0 = 71 | 0 |
4 | 210 | Pmax = 14.5 | t0 = 1.0; φ = 80; h = 85 | Air cooling | L0 = 71 | 0 |
5 | 210 | Pmax = 14.4 | t0 = 1.0; φ = 80; h = 85 | Air cooling | L0 = 71 | 0 |
6 | 210 | Pmax = 14.3 | t0 = 1.0; φ = 80; h = 85 | Air cooling | L0 = 71 | 0 |
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Cai, G.; Wu, C.; Zhang, D. Investigation on the Effect of Type of Cooling on the Properties of Aluminum Alloy during Warm/Hot Hydromechanical Deep Drawing. Symmetry 2018, 10, 362. https://doi.org/10.3390/sym10090362
Cai G, Wu C, Zhang D. Investigation on the Effect of Type of Cooling on the Properties of Aluminum Alloy during Warm/Hot Hydromechanical Deep Drawing. Symmetry. 2018; 10(9):362. https://doi.org/10.3390/sym10090362
Chicago/Turabian StyleCai, Gaoshen, Chuanyu Wu, and Dongxing Zhang. 2018. "Investigation on the Effect of Type of Cooling on the Properties of Aluminum Alloy during Warm/Hot Hydromechanical Deep Drawing" Symmetry 10, no. 9: 362. https://doi.org/10.3390/sym10090362