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Improved Thermal Signature of Composite Beams with GNP Smart Skin for Defect Investigation

机译:改进了具有GNP智能皮肤的复合梁的热特征,用于缺陷调查

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In this paper, it is aimed to identify flaws in glass fiber reinforced polymer composites by smart skin graphene nano platelet (GNP) spray coating in infrared thermography technique. The initial resistance of GNP was made to 1 k ohm. Characterization of sensor and beam was done with scanning electron microscopy and computed tomography (CT) respectively. The thermo-elastic behaviour was evaluated in uniaxial test. The surface temperature was studied with IR camera and it was observed that the surface coated GNP sensor upon a damage and without the damage specimen retains heat than without coating the sensor. Hereafter testing with 0.1 mm/min, 0.5 mm/min and 1 mm/min, it was found that without damage specimen, the temperature increased to 112.5, 13.3 and 40 respectively. And temperature increased to 93.2, 36.7 and 76.4 in the specimen with the damage. Specimen were also tested for spectrum fatigue cyclic load at 0.1 Hz and 1 Hz. Failure peak of laminates has been analyzed with optical microscopy and CT which was correlated with temperature rise. For 0.1 Hz spectrum loading, the specimen with the damage, with and without GNP coated, temperature rose to 2040 after first laminate failure. Similarly, for 0.1 Hz specimen temperature rose to 15,637.5 in case of without damage specimen, with GNP coated than without GNP coated. And in case of 1 Hz spectrum loading with damage specimen, the temperature rose to 105.73 after GNP coated. Similarly, at 1 Hz loading, the temperature rose to 143.07 in case of without damage specimen after GNP coated. GNP skin coated nano-sensor helps in early detection of temperature signals.
机译:本文旨在通过红外热成像技术中的智能皮肤石墨烯纳米片(GNP)喷涂涂层来识别玻璃纤维增强聚合物复合材料中的缺陷。GNP的初始电阻为1 k欧姆。分别使用扫描电子显微镜和计算机断层扫描(CT)对传感器和光束进行表征。在单轴试验中评估了热弹性行为。用红外热像仪研究了表面温度,观察到表面涂层的GNP传感器在损坏时和没有损坏的样品比没有涂层的传感器保持热量。随后以0.1 mm/min、0.5 mm/min和1 mm/min进行测试,发现在不损坏试样的情况下,温度分别升高到112.5%、13.3%和40%。损伤试样温度分别升高至93.2%、36.7%和76.4%。还测试了试样在0.1 Hz和1 Hz下的光谱疲劳循环载荷,用光学显微镜和CT分析了与温升相关的层合板的失效峰。对于0.1 Hz的频谱负载,在第一次层压板失效后,损坏的试样,无论是否涂覆GNP,温度上升到2040%。同样,对于0.1 Hz的试样,在没有损坏的试样的情况下,温度上升到15,637.5%,有GNP涂层比没有GNP涂层。在1 Hz频谱载荷和损伤试样的情况下,GNP涂层后温度上升到105.73%。同样,在1 Hz负载下,在GNP涂层后没有损坏的试样中,温度上升到143.07%。GNP皮肤涂层纳米传感器有助于早期检测温度信号。

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