scholarly journals Composite Materials for Cryogenic Use. Mechanical and Thermal Properties.

1994 ◽  
Vol 41 (10) ◽  
pp. 1209-1214
Author(s):  
Shigehiro Nishijima
2019 ◽  
Vol 3 (1) ◽  
pp. 19
Author(s):  
Md. Mashrur Islam ◽  
Sadman Saffaf Ahmed ◽  
Moshiur Rashid ◽  
Md. Masum Akanda

2018 ◽  
Vol 242 ◽  
pp. 01004 ◽  
Author(s):  
Dilyus Chukov ◽  
Sarvarkhodzha Nematulloev ◽  
Andrey Stepashkin ◽  
Aleksey Maksimkin ◽  
Dmitriy Zherebtsov ◽  
...  

The aim of this study is to create composites based on the high-temperature polymer reinforced with the carbon fibers and to study interfacial interaction between carbon fibers and polymer matrix. We propose a new method to obtain polysulfone based composite materials reinforced with high-modulus carbon fibers. The influences of thermal oxidation of carbon fibers on mechanical and thermal properties of the composites were studied. It was found that the obtained composite materials have sufficiently high mechanical properties, tensile strength up to 1047 MPa and Young’s modulus up to 70.9 GPa were found. Considerable interest to the polymer composites is associated with their high performance and good mechanical and thermal properties, which enable a broad range of aerospace, automotive and medical applications. Additionally, the manufacturing process of such composites can easily be optimized and automatized, furthermore, it is not time-consuming process in relation with thermosetting polymer based composites.


2020 ◽  
Vol 62 (5) ◽  
pp. 534-542
Author(s):  
K. B. Galitseiskii ◽  
Y. A. Timantsev ◽  
R. V. Dokuchaev ◽  
T. A. Matseevich ◽  
M. I. Buzin ◽  
...  

2021 ◽  
Vol 5 (6 (113)) ◽  
pp. 24-29
Author(s):  
Oleh Kabat ◽  
Dmytro Makarenko ◽  
Oleksii Derkach ◽  
Yevhen Muranov

This paper reports a laboratory study of the physical, mechanical, and thermal properties of designed composite materials based on Phenylone C1 filled with silica gel. Structural plastics, due to their high chemical and wear resistance, sufficient level of physical, mechanical, and thermal properties, can significantly improve the technical characteristics of machines and mechanisms. However, some structural plastics, including Phenylone C1, have a significant drawback – a narrow temperature range of their processing, which leads to a complication of technological equipment and increases the cost of production. It was established that the technical processing of the initial composite material into finished products could be improved by introducing fillers. The regularities of influence of silica gel content on the level of thermal and physical-mechanical properties of polymer composite materials based on Phenylone C1 have been established. It was found that the introduction of silica gel into Phenylone C1 leads to an increase in stress at the yield strength and modulus of elasticity at compression by 6.3 % and 13.3 %, respectively, compared to the original material. It was established that the heat resistance of the filled composite increases by 11.6 % with a decrease in thermal linear expansion by 10‒20 %, depending on the content of the filler. It was found that with an increase in silica gel concentration in the polymer matrix, the temperature of the onset of active destruction shifts towards higher temperatures. When filled in the amount of 30 % by weight, this temperature reaches 375 °C, which increases the temperature range of processing the designed material by 25 °C. The study results make it possible to optimize the system of tolerances and landings of parts made of polymer-composite materials, simplify the technology of their manufacture, and, as a result, reduce their cost


2011 ◽  
Vol 31 (2-3) ◽  
Author(s):  
Stephan J. Picken ◽  
Alexander V. Korobko ◽  
Eduardo Mendes ◽  
Ben Norder ◽  
Veronika V. Makarova ◽  
...  

Abstract We have analyzed the thermal conductivity and the tensile modulus of composite materials within the framework of the Halpin-Tsai and Lewis-Nielsen models. The parameter linking thermal conductivity and tensile modulus together is the shape factor of the (nano)filler. Model analysis based on experimental data shows that particle aggregation into a weak mechanical network may be required to achieve good correlation between thermal conductivity and the Young’s modulus when analyzing the data within the framework of a single model and requiring the same value of the shape factor. We believe this approach will make quantitative analysis of nanocomposite thermal properties possible.


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