relaxation behaviour
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Author(s):  
Jun Zhao ◽  
Xia-Ting Feng ◽  
Chengxiang Yang ◽  
Benguo He ◽  
Mengfei Jiang

2021 ◽  
Author(s):  
Richard Ellingham ◽  
Tim Giffney

Abstract The high stretchability, scalability and bio-compatibility of carbon black nanoparticle (CB)-polydimethylsiloxane (PDMS) elastomer composites are attractive characteristics for diverse applications ranging from the biomedical to aerospace fields. These materials are particularly useful as high strain sensors, but show stress relaxation and resistance relaxation behaviour that must be better understood in order to improve sensing performance and optimize the material design. In this work, we have characterized and modelled the resistance relaxation behaviour of these composites to understand the response of resistance to transient step strain input. CB-PDMS specimens have been fabricated with 7.5 and 10 weight percentage (w.t.%) of CB and subjected to repeated stretching while continually monitoring resistance and stress. A model for the resistive relaxation in time has been developed using 30 relaxations to give maximum coefficients of variance of the constants of 18.54% and 52.72% for 7.5 and 10 w.t.% of CB. The ability to model resistance relaxation is useful for the development of, accurate, highly flexible dynamic strain sensors.


Measurement ◽  
2021 ◽  
pp. 109777
Author(s):  
Jin Yu ◽  
Yaoliang Zhu ◽  
Wei Yao ◽  
Xueying Liu ◽  
Chonghong Ren ◽  
...  

Author(s):  
Peng Fei Li ◽  
Min Qiang Zou ◽  
Cheng Yin Song ◽  
Liang Qi ◽  
Ren Guo Guan

2021 ◽  
Author(s):  
Qian-Qian Su ◽  
Qiong Yuan ◽  
Xiao-Fan Wu ◽  
Si-Huai Chen ◽  
Jing Xiang ◽  
...  

A pair of structurally-similar and stable 8-coordinate high-spin Fe(ii) and Fe(iii) compounds have been obtained. Both compounds exhibit field-induced slow magnetic relaxation behaviour.


2021 ◽  
Author(s):  
Fei Wang ◽  
Hui-Wen Gong ◽  
Yan Zhang ◽  
Anqi Xue ◽  
Wenhua Zhu ◽  
...  

A family of cyano-bridged 3d−4f 1D chain compounds, {RE[TM(CN)6(2-PNO)5]}·(H2O)4 {RE = YIII, TM = [FeIII]LS (1); RE = DyIII, TM = CoIII (3); RE = ErIII, TM = [FeIII]LS (4),...


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