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Temperature variation during continuous laser-assisted adjacent hoop winding of type-IV pressure vessels: An experimental analysis

机译:IV型压力容器的连续激光辅助箍绕组的温度变化:实验分析

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摘要

Laser-assisted tape winding is an automated process to produce tubular or tube-like continuous fiber-reinforced polymer composites by winding a tape around a mandrel or liner. Placing additional layers on a previously heated substrate and variation in material and process parameters causes a variation in the bonding temperature of fiber-reinforced thermoplastic tapes which need to be understood and described well in order to have a reliable manufacturing process. In order to quantify the variation in this critical bonding temperature, a comprehensive temperature analysis of an adjacent hoop winding process of type-IV pressure vessels is performed. A total of five tanks are manufactured in which three glass/HDPE tapes are placed on an HDPE liner. The tape and substrate temperatures, roller force and tape feeding velocity are measured. The coefficient of variation for each round is characterized for the first time. According to the statistical analysis, the coefficient of variation in substrate temperature is found to be approximately 4.8-8.8% which is larger than the coefficient of variation of the tape temperature which is 2.1-7.8%. The coefficient of variations of the substrate temperatures in the third round decrease as compared with the coefficient of variations in the second round mainly due to the change in gap/overlap behavior of the deposited tapes. Fourier and thermographic analysis evince that the geometrical disturbances such as unroundness and eccentricity have a direct effect on the temperature variation. In addition to the temperature feedback control, a real-time object detection technique with deep learning algorithms can be used to mitigate the unwanted temperature variation and to have a more reliable thermal history.
机译:激光辅助胶带绕组是通过在心轴或衬里缠绕胶带来制造管状或管状连续纤维增强聚合物复合材料的自动化过程。将附加层放置在预先加热的基板上,材料和工艺参数的变化导致纤维增强热塑性带的键合温度的变化,以便具有可靠的制造工艺。为了量化该关键键合温度的变化,进行IV型压力容器的相邻环绕组过程的综合温度分析。共制成五个罐,其中三个玻璃/ HDPE带放在HDPE衬里上。测量带和基板温度,滚子力和带送速度。每个圆的变化系数首次表征。根据统计分析,发现衬底温度的变化系数约为4.8-8.8%,大于胶带温度的变异系数,为2.1-7.8%。与第二轮的变化系数相比,基板温度的变化系数与第二轮的变化系数相比,主要是由于沉积的磁带的间隙/重叠行为的变化。傅里叶和热成像分析Evince,诸如Unrormend和偏心的几何扰动对温度变化具有直接影响。除了温度反馈控制之外,具有深度学习算法的实时对象检测技术可用于减轻不需要的温度变化并具有更可靠的热历史。

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