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Nondestructive evaluation of composite materials by electrical resistance measurement.

机译:通过电阻测量对复合材料进行无损评估。

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摘要

This dissertation investigates electrical resistance measurement for nondestructive evaluation of carbon fiber (CF) reinforced polymer matrix composites. The method involves measuring the DC electrical resistance in either the longitudinal or through thickness direction.; The thermal history and thermal properties of thermoplastic/CF composites were studied by longitudinal and through-thickness resistance measurements. The resistance results were consistent with differential scanning calorimetry (DSC) and thermomechanical analysis (TMA) results. The resistance measurements gave more information on the melting of the polymer matrix than TMA. They were more sensitive to the glass transition of the polymer matrix than DSC. The through-thickness resistance decreased as autohesion progressed. The activation energy of autohesion was 21.2 kJ/mol for both nylon-6 and polyphenylene sulfide (PPS)/CF composites. Adhesive bonding and debonding were monitored in real-time by measurement of the through-thickness resistance between the adherends in an adhesive joint during heating and subsequent cooling. Debonding occurred during cooling when the pressure or temperature during prior bonding was not sufficiently high. A long heating time below the melting temperature (T m) was found to be detrimental to subsequent PPS adhesive joint development above Tm, due to curing reactions below Tm and consequent reduced mass flow response above Tm. A high heating rate (small heating time) enhanced the bonding more than a high pressure.; The longitudinal resistance measurement was used to investigate the effects of temperature and stress on the interface between a concrete substrate and its epoxy/CF composite retrofit. The resistance of the retrofit was increased by bond degradation, whether the degradation was due to heat or stress. The degradation was reversible. Irreversible disturbance in the fiber arrangement occurred slightly as thermal or load cycling occurred, as indicated by the resistance decreasing cycle by cycle.; This dissertation also addresses the use of the electrical resistance method to observe thermal and mechanical damage in real time. A temperature increase caused the interlaminar contact resistance to decrease reversibly within each thermal cycle, while thermal damage caused the resistance to decrease abruptly and irreversibly, due to matrix molecular movement and the consequent increase in the chance of fibers of one lamina touching those of an adjacent lamina. The through-thickness volume resistivity irreversibly and gradually decreased upon mechanical damage, which was probably fiber-matrix debonding. Moreover, it reversibly and abruptly increased upon matrix micro-structural change, which occurred reversibly near the peak stress of a stress cycle.
机译:本文研究了电阻测量对碳纤维增强聚合物基复合材料的无损评价。该方法包括沿纵向或沿厚度方向测量直流电阻。热塑性/ CF复合材料的热历史和热性能通过纵向和贯穿厚度的电阻测量进行了研究。电阻结果与差示扫描量热法(DSC)和热机械分析(TMA)结果一致。电阻测量比TMA提供了更多有关聚合物基质熔融的信息。它们比DSC对聚合物基质的玻璃化转变更敏感。随着自粘性的发展,耐穿透性降低。尼龙6和聚苯硫醚(PPS)/ CF复合材料的自粘活化能均为21.2 kJ / mol。通过在加热和随后的冷却过程中,通过测量粘合剂接头中被粘物之间的耐全厚度性,来实时监测粘合剂的粘合和脱胶。当先前粘合期间的压力或温度不够高时,在冷却期间发生剥离。由于低于T 的固化反应,在低于熔化温度(T m )的较长加热时间被发现不利于随后的PPS粘合剂接头在T m 之上的发展。 m ,从而降低了T m 以上的质量流量响应。较高的加热速率(较小的加热时间)比高压更能增强粘合效果。使用纵向电阻测量来研究温度和应力对混凝土基材与其环氧/ CF复合材料翻新之间的界面的影响。无论是由于热还是由于应力,键的降解都会增加改造的阻力。降解是可逆的。纤维排列中的不可逆扰动会随着热循环或负载循环的发生而发生,如电阻逐周期降低。本文还探讨了电阻法实时观察热和机械损伤的方法。温度升高导致层间接触电阻在每个热循环内可逆地降低,而由于基质分子的运动以及一个层板的纤维接触相邻层的纤维的机会增加,热损伤导致该电阻突然且不可逆地降低。薄片。厚度方向的体积电阻率不可逆地减小,并在受到机械损伤后逐渐减小,这很可能是纤维基质剥离的结果。此外,随着基体微观结构的改变,应力可逆地突然增加,这种改变在应力循环的峰值应力附近可逆地发生。

著录项

  • 作者

    Mei, Zhen.;

  • 作者单位

    State University of New York at Buffalo.;

  • 授予单位 State University of New York at Buffalo.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 234 p.
  • 总页数 234
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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