torsion deformation
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2022 ◽  
Vol 904 ◽  
pp. 17-25
Author(s):  
Bo Hao Xu ◽  
Shuai Wang ◽  
Kai Fa Zhou ◽  
Wen Yi Ma ◽  
Nan Sun

There exist some problems in the crash box and anti-collision beam sandwich structure, such as monotone deformation pattern and uneconomical energy absorption performance. In order to raise the deformation capacity and energy absorption performance of sandwich structure, centrosymmetric reentrant honeycomb (CRH) and hexagonal centrosymmetric reentrant honeycomb (HCRH) are proposed based on auxetic reentrant honeycomb (ARH) in this work. Based on HCRH, four kinds of transverse combination structures and two kinds of longitudinal combination structures are obtained. The results of specific energy absorption show that the energy absorption capacity of the angular contact homodromous combination structure (ACOC) is about 3 times that of the other three transverse combination structures. Compared with longitudinal heterodromous combination structure (LHEC), the energy absorption capacity of longitudinal homodromous combination structure (LHOC) is improved by 72.7%.


Materials ◽  
2021 ◽  
Vol 15 (1) ◽  
pp. 92
Author(s):  
Shan Liu ◽  
Yao Lin ◽  
Tao Wu ◽  
Guangchun Wang

To explore the microstructural evolution of Ni50.8Ti wires during torsion deformation, single and polycrystalline models with various grain sizes (d = 9 nm, 5.6 nm, and 3.4 nm) were established on an atomic scale to explore their grain morphology evolution, stress-induced martensitic transformation, and dislocation movement. The results indicated that the grains were rotated and elongated to form long strips of grains during the torsion simulation. With the increase in torsion deformation, the elongated grains were further split, forming smaller grains. Stress-induced martensitic transformation took place and the martensite preferentially nucleated near the grain boundary, resulting in the formation of 30% austenites and 50% martensites. Additionally, a certain number of dislocations were generated during the torsion simulation. Under a low degree of torsion deformation, the main mechanism of plastic deformation was dislocation movement, while with a large degree of torsion deformation, the main mechanism of plastic deformation was grain rotation.


2021 ◽  
Vol 826 ◽  
pp. 141980
Author(s):  
Liang Yang ◽  
Zhuo Chen ◽  
Xinkai Ma ◽  
Dongling Zhong ◽  
Xiaojun Zhao ◽  
...  

2021 ◽  
Vol 295 ◽  
pp. 117153
Author(s):  
Zhe Zhang ◽  
Dong Liu ◽  
Zhenfei Li ◽  
Yangyang Zhang ◽  
Runqiang Zhang ◽  
...  

Author(s):  
Michael Bernhard Kerber ◽  
Florian Spieckermann ◽  
Roman Schuster ◽  
Cornelia von Baeckmann ◽  
Torben Fischer ◽  
...  

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