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Effect of through-thickness compression on the microstructure of carbon fiber polymer-matrix composites, as studied by electrical resistance measurement

机译:通过电阻测量研究了厚度压缩对碳纤维聚合物基复合材料微观结构的影响

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摘要

Compression in the through-thickness direction (as in fastening) resulted in reversible and irreversible changes in the microstructure of continuous carbon fiber epoxy-matrix composites, as shown by electrical resistance measurement during dynamic compression. The extent of fiber-fiber contact across the interlaminar interface was increased, with partial irreversibility even at a low stress amplitude of 1 MPa. Within a lamina, fiber squeezing in the through-thickness direction and fiber spreading in the transverse direction occurred upon fastening compression, with partial irreversibility at a stress amplitude of 100 MPa or above. For a single laminae beyond 400 MPa, the lessening of fiber squeezing in the through-thickness direction during unloading dominated over the fiber spreading in the transverse direction during loading.
机译:沿厚度方向的压缩(如在紧固过程中)导致连续碳纤维环氧基质复合材料的微观结构发生可逆和不可逆的变化,如动态压缩过程中的电阻测量所示。跨层间界面的纤维接触程度增加,即使在1 MPa的低应力振幅下也具有部分不可逆性。在层板中,在紧固压缩时发生厚度方向上的纤维挤压和横向方向上的纤维扩展,在100MPa以上的应力振幅下具有部分不可逆性。对于超过400 MPa的单个薄片,卸载过程中纤维在厚度方向上的压缩减少主要是在装载过程中沿横向扩展的纤维占主导地位。

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  • 来源
    《Journal of Materials Science》 |2006年第10期|2877-2884|共8页
  • 作者单位

    Composite Materials Research Laboratory University at Buffalo State University of New York;

    Composite Materials Research Laboratory University at Buffalo State University of New York;

    Composite Materials Research Laboratory University at Buffalo State University of New York;

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