Effect of Temperature on Mechanical Property Degradation of Polymeric Materials

Author(s):  
Tong Cui ◽  
Yuh J. Chao ◽  
John W. Van Zee ◽  
Chih-Hui Chien
Metals ◽  
2021 ◽  
Vol 11 (3) ◽  
pp. 423
Author(s):  
Thorsten Michler ◽  
Frank Schweizer ◽  
Ken Wackermann

It is well-documented experimentally that the influence of hydrogen on the mechanical properties of structural alloys like austenitic stainless steels, nickel superalloys, and carbon steels strongly depends on temperature. A typical curve plotting any hydrogen-affected mechanical property as a function of temperature gives a temperature THE,max, where the degradation of this mechanical property reaches a maximum. Above and below this temperature, the degradation is less. Unfortunately, the underlying physico-mechanical mechanisms are not currently understood to the level of detail required to explain such temperature effects. Though this temperature effect is important to understand in the context of engineering applications, studies to explain or even predict the effect of temperature upon the mechanical properties of structural alloys could not be identified. The available experimental data are scattered significantly, and clear trends as a function of chemistry or microstructure are difficult to see. Reported values for THE,max are in the range of about 200–340 K, which covers the typical temperature range for the design of structural components of about 230–310 K (from −40 to +40 °C). That is, the value of THE,max itself, as well as the slope of the gradient, might affect the materials selection for a dedicated application. Given the current lack of scientific understanding, a statistical approach appears to be a suitable way to account for the temperature effect in engineering applications. This study reviews the effect of temperature upon hydrogen effects in structural alloys and proposes recommendations for test temperatures for gaseous hydrogen applications.


1972 ◽  
Vol 7 (3) ◽  
pp. 194-204
Author(s):  
A S Mitchell ◽  
D Mills ◽  
R Kitching

Experiments have been conducted to observe the relaxation behaviour of fishplate-bolted rail joints in which four different polymeric materials were used for electrical insulation. Static tests were conducted to study the effect of temperature and of different locking sequences for the bolts on a rig which simulated service conditions at a joint. The effect of cyclic loading was considered.


1999 ◽  
Vol 65 (632) ◽  
pp. 901-908 ◽  
Author(s):  
Haruo NOSE ◽  
Masao SAKANE ◽  
Yutaka TSUKADA ◽  
Hideo NISHIMURA

Polymer ◽  
2020 ◽  
Vol 196 ◽  
pp. 122465
Author(s):  
Ryohei Ikura ◽  
Yuka Ikemoto ◽  
Motofumi Osaki ◽  
Hiroyasu Yamaguchi ◽  
Akira Harada ◽  
...  

1982 ◽  
Vol 23 (1) ◽  
pp. 134-141 ◽  
Author(s):  
V. K. Golubev ◽  
S. A. Novikov ◽  
Yu. S. Sobolev

2014 ◽  
Vol 670-671 ◽  
pp. 506-511
Author(s):  
Xiao Gang Jian ◽  
Yun Hua Zhang

Model of the film-substrate interface of diamond coatings is built with the method of molecular dynamic, and the molecular dynamic simulation is applied to study the mechanical property of the model based on the Morse potential function and Tersoff potential function with temperature ranging from 0K to 800K. The results show that the adhesive strength of the interface between the diamond coatings and the cemented carbide substrate behaves a downward trend when the temperature rises from 0K to 800K and the downward trend is sharp when the temperature increases from 0K to 300K and the downward trend is smooth when the temperature rises from 300K to 800K. Meanwhile, the varying trend of the energy with the temperature is similar to the adhesive strength.


RSC Advances ◽  
2019 ◽  
Vol 9 (13) ◽  
pp. 7094-7106
Author(s):  
Hideto Tsuji ◽  
Ken-ichi Tamura ◽  
Yuki Arakawa

Networked materials composed of well-defined alternating domains of two types of biodegradable polymers, hard poly(l-lactide) and soft poly(ε-caprolactone), were successfully synthesized.


2016 ◽  
Vol 43 (10) ◽  
pp. 1002003
Author(s):  
孟宪凯 Meng Xiankai ◽  
周建忠 Zhou Jianzhong ◽  
苏纯 Su Chun ◽  
黄舒 Huang Shu ◽  
盛杰 Sheng Jie ◽  
...  

Sign in / Sign up

Export Citation Format

Share Document