Shear Properties of Carbon Fiber/Phenolic Resin Composites Heat Treated at High Temperatures

Carbon fiber/phenolic resin composites have long been used as ablative materials in rocketry. Ablation is a complex multiscale problem where radiative and convective heating leads to the pyrolysis of phenolic resin matrix, resulting in the formation of a porous insulation char as thermal protection....

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Main Authors: Homero Paula Silva, Luiz Cláudio Pardini, Edison Bittencourt
Format: Article
Language:English
Published: Departamento de Ciência e Tecnologia Aeroespacial 2016-07-01
Series:Journal of Aerospace Technology and Management
Subjects:
Online Access:http://www.jatm.com.br/ojs/index.php/jatm/article/view/643/543
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spelling doaj-bd93ffff9bc64eb490779bc1fc9c50332020-11-25T01:02:06ZengDepartamento de Ciência e Tecnologia AeroespacialJournal of Aerospace Technology and Management1984-96482175-91462016-07-018336337210.5028/jatm.v8i3.643Shear Properties of Carbon Fiber/Phenolic Resin Composites Heat Treated at High TemperaturesHomero Paula Silva0Luiz Cláudio Pardini1Edison Bittencourt2Instituto de Aeronáutica e EspaçoInstituto de Aeronáutica e EspaçoUniversidade Estadual de Campinas – Faculdade de Engenharia QuímicaCarbon fiber/phenolic resin composites have long been used as ablative materials in rocketry. Ablation is a complex multiscale problem where radiative and convective heating leads to the pyrolysis of phenolic resin matrix, resulting in the formation of a porous insulation char as thermal protection. This study investigates the shear properties evolution during the heat treatment of a carbon fiber/phenolic resin nozzle extension entrance (exit cone) which is part of an integrated nozzle of launching and sounding vehicles, developed at the Instituto de Aeronáutica e Espaço (SP), Brazil. Specimens of the material (carbon fiber/phenolic resin composite) were subjected to heat treatment at 500, 1,000, 1,500 and 2,000°C, and measurements of shear strength and shear modulus were performed using the Iosipescu mode. Experimental data were compared with the results obtained theoretically. Also, morphological analysis was accomplished by optical microscopy and the observation of fractured surfaces, by scanning electron microscopy. Significant morphological changes in the microstructure after heat treatments were observed. The lowest value for shear strength obtained experimentally was 4.05 MPa, which is greater than the ultimate value obtained analytically (2.35 MPa), fulfilling its structural function during the propulsion time.http://www.jatm.com.br/ojs/index.php/jatm/article/view/643/543AblationCarbon-phenolicShear strength
collection DOAJ
language English
format Article
sources DOAJ
author Homero Paula Silva
Luiz Cláudio Pardini
Edison Bittencourt
spellingShingle Homero Paula Silva
Luiz Cláudio Pardini
Edison Bittencourt
Shear Properties of Carbon Fiber/Phenolic Resin Composites Heat Treated at High Temperatures
Journal of Aerospace Technology and Management
Ablation
Carbon-phenolic
Shear strength
author_facet Homero Paula Silva
Luiz Cláudio Pardini
Edison Bittencourt
author_sort Homero Paula Silva
title Shear Properties of Carbon Fiber/Phenolic Resin Composites Heat Treated at High Temperatures
title_short Shear Properties of Carbon Fiber/Phenolic Resin Composites Heat Treated at High Temperatures
title_full Shear Properties of Carbon Fiber/Phenolic Resin Composites Heat Treated at High Temperatures
title_fullStr Shear Properties of Carbon Fiber/Phenolic Resin Composites Heat Treated at High Temperatures
title_full_unstemmed Shear Properties of Carbon Fiber/Phenolic Resin Composites Heat Treated at High Temperatures
title_sort shear properties of carbon fiber/phenolic resin composites heat treated at high temperatures
publisher Departamento de Ciência e Tecnologia Aeroespacial
series Journal of Aerospace Technology and Management
issn 1984-9648
2175-9146
publishDate 2016-07-01
description Carbon fiber/phenolic resin composites have long been used as ablative materials in rocketry. Ablation is a complex multiscale problem where radiative and convective heating leads to the pyrolysis of phenolic resin matrix, resulting in the formation of a porous insulation char as thermal protection. This study investigates the shear properties evolution during the heat treatment of a carbon fiber/phenolic resin nozzle extension entrance (exit cone) which is part of an integrated nozzle of launching and sounding vehicles, developed at the Instituto de Aeronáutica e Espaço (SP), Brazil. Specimens of the material (carbon fiber/phenolic resin composite) were subjected to heat treatment at 500, 1,000, 1,500 and 2,000°C, and measurements of shear strength and shear modulus were performed using the Iosipescu mode. Experimental data were compared with the results obtained theoretically. Also, morphological analysis was accomplished by optical microscopy and the observation of fractured surfaces, by scanning electron microscopy. Significant morphological changes in the microstructure after heat treatments were observed. The lowest value for shear strength obtained experimentally was 4.05 MPa, which is greater than the ultimate value obtained analytically (2.35 MPa), fulfilling its structural function during the propulsion time.
topic Ablation
Carbon-phenolic
Shear strength
url http://www.jatm.com.br/ojs/index.php/jatm/article/view/643/543
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