aluminum tube
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2022 ◽  
Vol 41 (1) ◽  
pp. 113-124
Author(s):  
rania abdelhameed ◽  
samy alabden ◽  
Mohieldeen Abdel-rahman ◽  
Ibrahim Hassab-Allah
Keyword(s):  

Author(s):  
Ning Lang ◽  
Decheng Wang ◽  
Peng Cheng ◽  
Shanchao Zuo ◽  
Pengfei Zhang

Author(s):  
Timon Suckow ◽  
Julius Schroeder ◽  
Peter Groche

AbstractThe presented paper provides a modelling strategy for roll forming of a high strength AA7075 aluminum tube. Roll forming allows the cost-effective production of large quantities of long profiles. Forming of high strength aluminum brings challenges like high springback and poor formability due to the low Young’s modulus, low ductility and high yield strength. Forming processes with high strength aluminum, such as the AA7075 alloy, therefore require a detailed process design. Three different forming strategies, one double radius strategy and two W-forming strategies are discussed in the paper. The paper addresses the question whether common roll forming strategies are appropriate for the challenge of roll forming of a high strength aluminum tube. For this purpose, different forming strategies are investigated numerically regarding buckling, longitudinal strain distribution and final geometry. While geometry is quite the same for all strategies, buckling and strain distribution differ with every strategy. The result of the numerical investigation is an open tube that can be welded into a closed tube in a subsequent step. Finally, roll forming experiments are conducted and compared with the numerical results.


IEEE Access ◽  
2021 ◽  
Vol 9 ◽  
pp. 26491-26501
Author(s):  
Wu Zhenkui ◽  
Yang Peihong ◽  
Jiang Hui ◽  
Wei Yili ◽  
Zhang Jihong ◽  
...  

2020 ◽  
Vol 143 (3) ◽  
Author(s):  
Weiyu Tang ◽  
Tariq Amin Khan ◽  
Boren Zheng ◽  
Lei Wang ◽  
Wei Li ◽  
...  

Abstract An experimental investigation was conducted to demonstrate the effects of materials on the heat transfer characteristics of R410A during evaporation and condensation inside two horizontal plain tubes with the same inner diameter of 6 mm, but with two different materials of aluminum and stainless steel. The variation of vapor quality for the test section was kept in the range of 0.2–0.9, while mass velocities were allowed to vary from 100 to 400 kg/m2/s1. First, a series of single-phase and repetitive experiments were conducted to verify the accuracy and reliability of the test rig. Results of the evaporation experiments show that the plain aluminum tube performs best for all tested mass velocities. Several different correlations were employed to predict the present data, and their predictive ability was compared and discussed. Results indicate that the Liu and Winterton correlation could accurately predict the present results except for low mass velocities. Roughness effects were accounted for employing a correction factor. The larger roughness of the stainless steel tube was supposed to make the stainless steel tube perform better if roughness effects were accounted for, so the better performance of the aluminum tube was mainly attributed to the material effects. The pool boiling heat transfer as predicted by the VDI model was compared with the experimental results, and more obvious material effects have been found for pool boiling conditions. The minor differences between the two tubes in this case may be explained by the nucleate boiling suppression and incomplete wetting. For the condensation experiments, little difference was found between the two tested tubes, which means that the material and roughness effects may have had little influence on the thermal performance during condensation.


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