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首页> 外文期刊>Journal of Polymer Research >Tensile creep study and mechanical properties of carbon fiber nano-composites
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Tensile creep study and mechanical properties of carbon fiber nano-composites

机译:碳纤维纳米复合材料的拉伸蠕变研究和力学性能

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摘要

The surface modification of carbon nanotubes (CNTs) has been recently observed to influence the distribution of CNTs in epoxy resin and the mechanical properties and electrical conductivities of these CNTs. Accordingly, the treatment of multi-walled carbon nanotubes (MWCNTs) with organic acids to oxidize them to generate functional groups on the surface of MWCNTs is a prime task to carry out the surface modification of MWCNTs in this study. This investigation studies the consequent enhancement of their mechanical properties and electrical conductivities. Varying proportions of MWCNTs added to epoxy resin were compared in terms of their effects on mechanical properties such as strength and electrical conductivities of the resulting composites at different temperatures. The test results also indicate that mechanical strength and electrical conductivity increase with the amount of MWCNTs added to the composites. Different coefficients of expansion of the matrix, fiber and CNTs, are such that overexpansion of the matrix at high temperature results in cracking in it. An SEM image of the fracture surface reveals debonding and the pulling out of longitudinal fibers because of poor interfacial bonding between fiber and matrix, which reduce overall strength. Moreover, the creep behaviors of carbon fiber (CF)/epoxy resin thermosetting composites and MWCNTs/CF/epoxy resin composites were tested and analyzed at different stresses, orientations of fiber, temperatures and humidities. The creep could be classified into two stages: primary and steady-state. The effects of creep stress, creep time, and humidity on the creep of composites containing varing proportions of MWCNTs were investigated at various temperatures. Additionally, creep strain decreased as the number of cycles in cyclic creep tests increased at room temperature and at a high temperature of 55 °C. Possible room temperature creep mechanisms have been proposed and discussed. With increasing number of creep tests, the creep strain decreased due to strain hardening which occurred during creep. Creep strain is believed to increase with applied stress, creep time, humidity, temperature and degree of the angle θ between the orientation of the fiber and the direction of the applied stress. The decrease in creep strain of CF/epoxy resin composites was also investigated after aging pretreatment in a constant temperature and humidity chamber for varying durations before creep testing. Finally, the Findley power law was used to fit the curves for creep strain in the CF/epoxy resin composites and MWCNTs/CF/epoxy resin composites under various test conditions.
机译:最近已观察到碳纳米管(CNT)的表面改性会影响碳纳米管在环氧树脂中的分布以及这些碳纳米管的机械性能和电导率。因此,在本研究中,用有机酸处理多壁碳纳米管(MWCNT)使其氧化以在MWCNTs表面产生官能团是进行MWCNTs表面改性的首要任务。这项研究研究了其机械性能和电导率的提高。比较了不同比例的添加到环氧树脂中的MWCNT在不同温度下对所得复合材料的机械性能(如强度和电导率)的影响。测试结果还表明,机械强度和电导率随添加到复合材料中的MWCNT数量的增加而增加。基质,纤维和CNT的膨胀系数不同,因此高温下基质的过度膨胀会导致其破裂。断裂表面的SEM图像显示,由于纤维与基体之间的界面粘结不良,导致纵向纤维脱粘和拔出,从而降低了整体强度。此外,在不同的应力,纤维取向,温度和湿度下,对碳纤维(CF)/环氧树脂热固性复合材料和MWCNTs / CF /环氧树脂复合材料的蠕变行为进行了测试和分析。蠕变可分为两个阶段:初级和稳态。研究了在不同温度下蠕变应力,蠕变时间和湿度对含有变比例MWCNTs的复合材料蠕变的影响。此外,在室温和55°C的高温下,蠕变应变会随着循环蠕变测试中循环次数的增加而降低。已经提出并讨论了可能的室温蠕变机理。随着蠕变测试次数的增加,蠕变应变由于蠕变过程中发生的应变硬化而降低。据信蠕变应变随着施加的应力,蠕变时间,湿度,温度以及纤维的取向与施加的应力的方向之间的夹角θ的程度而增加。在蠕变试验之前,在恒温恒湿箱中进行了不同时间的老化预处理后,还研究了CF /环氧树脂复合材料蠕变应变的降低。最后,在各种测试条件下,使用Findley幂定律拟合CF /环氧树脂复合材料和MWCNTs / CF /环氧树脂复合材料的蠕变应变曲线。

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