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Deposition kinetics and mechanism of pyrocarbon for electromagnetic-coupling chemical vapor infiltration process 被引量:1

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摘要 Although the electromagnetic-coupling chemical vapor infiltration(E-CVI)has been proven of a highefficiency technique for producing carbon fiber reinforced pyrocarbon(Py C)matrix(C/C)composites,a deep understanding of the deposition kinetics and mechanism of Py C matrix is still lack.In this work,a deposition model with uniform electric field but gradient magnetic field was set up by using unidirectional carbon fiber bundles as the substrates to investigate the deposition kinetics and mechanism.Meanwhile,the polarizability,and the chemical adsorption and dehydrogenation barriers of hydrocarbon were simulated based on the density functional theory(DFT)and the Climb-image nudged elastic band method,respectively.The E-CVI process exhibited extremely high Py C deposition rates of 8.7,11.5,16.5 and 22.7 nm/s at 700,750,800 and 850℃,respectively,together with a significantly low apparent activation energy of 57.9 k J/mol within the first 5 min.The Py C deposited at different temperatures with different time shows a smooth laminar structure with low coherent length and graphitization degree.The theoretical calculation and simulation results indicated that the electrons existing on the carbon fibers and the accelerated motion of radicals with preferred orientation forced by the derived magnetic field have reduced the energy barrier for the deposition process,thereby resulting in low apparent activation energy and high Py C deposition rate.The results of this work may shed a light on how to better direct the preparation of C/C composites by E-CVI process with high quality and efficiency.
出处 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2022年第6期118-127,共10页 材料科学技术(英文版)
基金 supported by the National Key R&D Program of China(Grant No.2018YFF01013600) the National Natural Science Foundations of China(Grant No.U1537204,U20A20242,52022101,51802313&51902315) the National Science and Technology Major Project(2017-VI-0020-0093) Liaoning Revitalization Talents Program and the Research Fund of Youth Innovation Promotion Association of CAS,China(Grant No.Y201830&2021190)。
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