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首页> 外文期刊>Journal of Materials Science >Tailoring structures and properties of mesophase pitch-based carbon fibers based on isotropic/mesophase incompatible blends
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Tailoring structures and properties of mesophase pitch-based carbon fibers based on isotropic/mesophase incompatible blends

机译:基于各向同性/中间相不相容共混物的中间相沥青基碳纤维的剪裁结构和性能

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摘要

Blends composed of isotropic and mesophase pitches in various proportions were used as precursors for carbon fibers. The effects of composition on the morphology of blends, precursor spinnability, transversal texture, and mechanical properties of the final carbon fiber were studied. The blends are binary incompatible phase-separation systems. When the content of isotropic pitch is ≤30 %, it is distributed uniformly in the mesophase matrix as spheres; whereas, complete phase inversion occurs when the content is ≥35 %. Blends containing isotropic pitch in dispersion phase show good spinnability and small-diameter fibers can be continuously drawn. The transversal texture of carbon fibers is transformed from a radial type with a crack along the fiber axis to an intermediate morphology between radial and random type by blending 20–30 % isotropic pitch. The tensile strength of carbon fibers with 20–30 % IPc is 2.5 times as high as the AR-based CF without the reduction of Young’s modulus.
机译:由各向同性和中间相沥青组成的共混物用作碳纤维的前体。研究了组成对共混物形态,前体可纺性,横向织构以及最终碳纤维力学性能的影响。共混物是二元不相容的相分离系统。各向同性沥青的含量≤30%时,在球状中间相中均匀分布;而当含量≥35%时会发生完全的相转化。在分散相中含有各向同性沥青的共混物显示出良好的可纺性,并且可以连续拉伸小直径的纤维。通过混合20%至30%的各向同性沥青,碳纤维的横向织构从沿纤维轴具有裂纹的径向类型转变为径向和随机类型之间的中间形态。在不降低杨氏模量的情况下,IPc为20%至30%的碳纤维的抗张强度是基于AR的CF的2.5倍。

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  • 来源
    《Journal of Materials Science》 |2012年第14期|p.5509-5516|共8页
  • 作者单位

    College of Chemistry and Chemical Engineering, Xiamen University, Xiamen, 361005, China;

    College of Chemistry and Chemical Engineering, Xiamen University, Xiamen, 361005, China;

    College of Chemistry and Chemical Engineering, Xiamen University, Xiamen, 361005, China;

    Advanced Materials Laboratory, Key Laboratory of High Performance Ceramic Fibers of Ministry of Education, College of Materials, Xiamen University, Xiamen, 361005, China;

    Advanced Materials Laboratory, Key Laboratory of High Performance Ceramic Fibers of Ministry of Education, College of Materials, Xiamen University, Xiamen, 361005, China;

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