Cargando…

A Comparison of Ethylene-Tar-Derived Isotropic Pitches Prepared by Air Blowing and Nitrogen Distillation Methods and Their Carbon Fibers

Two isotropic pitches were prepared by air blowing and nitrogen distillation methods using ethylene tar (ET) as a raw material. The corresponding carbon fibers were obtained through conventional melt spinning, stabilization, and carbonization. The structures and properties of the resultant pitches a...

Descripción completa

Detalles Bibliográficos
Autores principales: Shi, Kui, Yang, Jianxiao, Ye, Chong, Liu, Hongbo, Li, Xuanke
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6356327/
https://www.ncbi.nlm.nih.gov/pubmed/30669384
http://dx.doi.org/10.3390/ma12020305
_version_ 1783391509013331968
author Shi, Kui
Yang, Jianxiao
Ye, Chong
Liu, Hongbo
Li, Xuanke
author_facet Shi, Kui
Yang, Jianxiao
Ye, Chong
Liu, Hongbo
Li, Xuanke
author_sort Shi, Kui
collection PubMed
description Two isotropic pitches were prepared by air blowing and nitrogen distillation methods using ethylene tar (ET) as a raw material. The corresponding carbon fibers were obtained through conventional melt spinning, stabilization, and carbonization. The structures and properties of the resultant pitches and fibers were characterized, and their differences were examined. The results showed that the introduction of oxygen by the air blowing method could quickly increase the yield and the softening point of the pitch. Moreover, the air-blown pitch (ABP) was composed of aromatic molecules with linear methylene chains, while the nitrogen-distilled pitch (NDP) mainly contained polycondensed aromatic rings. This is because the oxygen-containing functional groups in the ABP could impede ordered stack of pitch molecules and led to a methylene bridge structure instead of an aromatic condensed structure as in the NDP. Meanwhile, the spinnability of the ABP did not decrease even though it contained 2.31 wt % oxygen. In contrast, the ABP had narrower molecular weight distribution, which contributed to better stabilization properties and higher tensile strength of the carbon fiber. The tensile strength of carbon fibers from the ABP reached 860 MPa with fiber diameter of about 10 μm, which was higher than the tensile strength of 640 MPa for the NDP-derived carbon fibers.
format Online
Article
Text
id pubmed-6356327
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-63563272019-02-04 A Comparison of Ethylene-Tar-Derived Isotropic Pitches Prepared by Air Blowing and Nitrogen Distillation Methods and Their Carbon Fibers Shi, Kui Yang, Jianxiao Ye, Chong Liu, Hongbo Li, Xuanke Materials (Basel) Article Two isotropic pitches were prepared by air blowing and nitrogen distillation methods using ethylene tar (ET) as a raw material. The corresponding carbon fibers were obtained through conventional melt spinning, stabilization, and carbonization. The structures and properties of the resultant pitches and fibers were characterized, and their differences were examined. The results showed that the introduction of oxygen by the air blowing method could quickly increase the yield and the softening point of the pitch. Moreover, the air-blown pitch (ABP) was composed of aromatic molecules with linear methylene chains, while the nitrogen-distilled pitch (NDP) mainly contained polycondensed aromatic rings. This is because the oxygen-containing functional groups in the ABP could impede ordered stack of pitch molecules and led to a methylene bridge structure instead of an aromatic condensed structure as in the NDP. Meanwhile, the spinnability of the ABP did not decrease even though it contained 2.31 wt % oxygen. In contrast, the ABP had narrower molecular weight distribution, which contributed to better stabilization properties and higher tensile strength of the carbon fiber. The tensile strength of carbon fibers from the ABP reached 860 MPa with fiber diameter of about 10 μm, which was higher than the tensile strength of 640 MPa for the NDP-derived carbon fibers. MDPI 2019-01-18 /pmc/articles/PMC6356327/ /pubmed/30669384 http://dx.doi.org/10.3390/ma12020305 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Shi, Kui
Yang, Jianxiao
Ye, Chong
Liu, Hongbo
Li, Xuanke
A Comparison of Ethylene-Tar-Derived Isotropic Pitches Prepared by Air Blowing and Nitrogen Distillation Methods and Their Carbon Fibers
title A Comparison of Ethylene-Tar-Derived Isotropic Pitches Prepared by Air Blowing and Nitrogen Distillation Methods and Their Carbon Fibers
title_full A Comparison of Ethylene-Tar-Derived Isotropic Pitches Prepared by Air Blowing and Nitrogen Distillation Methods and Their Carbon Fibers
title_fullStr A Comparison of Ethylene-Tar-Derived Isotropic Pitches Prepared by Air Blowing and Nitrogen Distillation Methods and Their Carbon Fibers
title_full_unstemmed A Comparison of Ethylene-Tar-Derived Isotropic Pitches Prepared by Air Blowing and Nitrogen Distillation Methods and Their Carbon Fibers
title_short A Comparison of Ethylene-Tar-Derived Isotropic Pitches Prepared by Air Blowing and Nitrogen Distillation Methods and Their Carbon Fibers
title_sort comparison of ethylene-tar-derived isotropic pitches prepared by air blowing and nitrogen distillation methods and their carbon fibers
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6356327/
https://www.ncbi.nlm.nih.gov/pubmed/30669384
http://dx.doi.org/10.3390/ma12020305
work_keys_str_mv AT shikui acomparisonofethylenetarderivedisotropicpitchespreparedbyairblowingandnitrogendistillationmethodsandtheircarbonfibers
AT yangjianxiao acomparisonofethylenetarderivedisotropicpitchespreparedbyairblowingandnitrogendistillationmethodsandtheircarbonfibers
AT yechong acomparisonofethylenetarderivedisotropicpitchespreparedbyairblowingandnitrogendistillationmethodsandtheircarbonfibers
AT liuhongbo acomparisonofethylenetarderivedisotropicpitchespreparedbyairblowingandnitrogendistillationmethodsandtheircarbonfibers
AT lixuanke acomparisonofethylenetarderivedisotropicpitchespreparedbyairblowingandnitrogendistillationmethodsandtheircarbonfibers
AT shikui comparisonofethylenetarderivedisotropicpitchespreparedbyairblowingandnitrogendistillationmethodsandtheircarbonfibers
AT yangjianxiao comparisonofethylenetarderivedisotropicpitchespreparedbyairblowingandnitrogendistillationmethodsandtheircarbonfibers
AT yechong comparisonofethylenetarderivedisotropicpitchespreparedbyairblowingandnitrogendistillationmethodsandtheircarbonfibers
AT liuhongbo comparisonofethylenetarderivedisotropicpitchespreparedbyairblowingandnitrogendistillationmethodsandtheircarbonfibers
AT lixuanke comparisonofethylenetarderivedisotropicpitchespreparedbyairblowingandnitrogendistillationmethodsandtheircarbonfibers