Dynamic characteristics of Mn-Cu high damping alloy subjected to impact load
Mn-Cu high damping alloy is a twin-type damping alloy. Owing to its martensite twin structure at room temperature, it can convert vibration energy into heat energy, thereby reducing vibration. Although essentially a nonlinear elastic material, Mn-Cu damping alloys are treated as linear elastic mater...
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doaj-68531adb0ea14dd2b9c0790da57271cd2021-05-09T23:05:27ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402021-04-011310.1177/16878140211013616Dynamic characteristics of Mn-Cu high damping alloy subjected to impact loadRui Zhu0Baoquan Mao1Qijin Zhao2Zhiqian Wang3Xiaoping Han4Yuying Yang5Hua Li6Department of Weapons and Control Engineering, Army Academy of Armored Forces, Beijing, ChinaDepartment of Weapons and Control Engineering, Army Academy of Armored Forces, Beijing, ChinaDepartment of Weapons and Control Engineering, Army Academy of Armored Forces, Beijing, ChinaBeijing Special Vehicles Research Institute, Beijing, ChinaDepartment of Weapons and Control Engineering, Army Academy of Armored Forces, Beijing, ChinaDepartment of Weapons and Control Engineering, Army Academy of Armored Forces, Beijing, ChinaDepartment of Weapons and Control Engineering, Army Academy of Armored Forces, Beijing, ChinaMn-Cu high damping alloy is a twin-type damping alloy. Owing to its martensite twin structure at room temperature, it can convert vibration energy into heat energy, thereby reducing vibration. Although essentially a nonlinear elastic material, Mn-Cu damping alloys are treated as linear elastic materials in current engineering practice. However, introducing a constant damping coefficient alone will produce significant errors when modeling vibration reduction characteristics of the material, especially under impact loading. In this study, vibration test was performed on Mn-Cu damping alloy cantilever beam subjected to an impact load and deviation between the test result and the one of existing modeling method was analyzed. A generalized fractional-order Maxwell model was established to describe the nonlinear constitutive relation of the Mn-Cu damping alloy. Then, the model was extended to the three-dimensional state and a secondary development was performed. Finally, various applications for the damping alloy were explored and the effects of the damping alloy on the vibration characteristics of composite cantilever beam structures subjected to impact loads were investigated with the aim of better understanding the dynamic characteristics and improving the effectiveness of vibration reduction applications using Mn-Cu damping alloy in the future.https://doi.org/10.1177/16878140211013616 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Rui Zhu Baoquan Mao Qijin Zhao Zhiqian Wang Xiaoping Han Yuying Yang Hua Li |
spellingShingle |
Rui Zhu Baoquan Mao Qijin Zhao Zhiqian Wang Xiaoping Han Yuying Yang Hua Li Dynamic characteristics of Mn-Cu high damping alloy subjected to impact load Advances in Mechanical Engineering |
author_facet |
Rui Zhu Baoquan Mao Qijin Zhao Zhiqian Wang Xiaoping Han Yuying Yang Hua Li |
author_sort |
Rui Zhu |
title |
Dynamic characteristics of Mn-Cu high damping alloy subjected to impact load |
title_short |
Dynamic characteristics of Mn-Cu high damping alloy subjected to impact load |
title_full |
Dynamic characteristics of Mn-Cu high damping alloy subjected to impact load |
title_fullStr |
Dynamic characteristics of Mn-Cu high damping alloy subjected to impact load |
title_full_unstemmed |
Dynamic characteristics of Mn-Cu high damping alloy subjected to impact load |
title_sort |
dynamic characteristics of mn-cu high damping alloy subjected to impact load |
publisher |
SAGE Publishing |
series |
Advances in Mechanical Engineering |
issn |
1687-8140 |
publishDate |
2021-04-01 |
description |
Mn-Cu high damping alloy is a twin-type damping alloy. Owing to its martensite twin structure at room temperature, it can convert vibration energy into heat energy, thereby reducing vibration. Although essentially a nonlinear elastic material, Mn-Cu damping alloys are treated as linear elastic materials in current engineering practice. However, introducing a constant damping coefficient alone will produce significant errors when modeling vibration reduction characteristics of the material, especially under impact loading. In this study, vibration test was performed on Mn-Cu damping alloy cantilever beam subjected to an impact load and deviation between the test result and the one of existing modeling method was analyzed. A generalized fractional-order Maxwell model was established to describe the nonlinear constitutive relation of the Mn-Cu damping alloy. Then, the model was extended to the three-dimensional state and a secondary development was performed. Finally, various applications for the damping alloy were explored and the effects of the damping alloy on the vibration characteristics of composite cantilever beam structures subjected to impact loads were investigated with the aim of better understanding the dynamic characteristics and improving the effectiveness of vibration reduction applications using Mn-Cu damping alloy in the future. |
url |
https://doi.org/10.1177/16878140211013616 |
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