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3D Numerical Modeling of Laser Assisted Tape Winding Process of Composite Pressure Vessels and Pipes—Effect of Winding Angle Mandrel Curvature and Tape Width

机译:复合压力容器和管道的激光辅助带绕制过程的3D数值建模-绕角心轴曲率和带宽度的影响

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摘要

Advanced thermoplastic composites manufacturing using laser assisted tape placement or winding (LATP/LATW) is a challenging task as monitoring and predicting nip point (bonding) temperature are difficult especially on curved surfaces. A comprehensive numerical analysis of the heat flux and temperature distribution near the nip point is carried out in this paper for helical winding of fiber reinforced thermoplastic tapes on a cylindrically shaped mandrel. An optical ray-tracing technique is coupled with a numerical heat transfer model in the process simulation tool. The developed optical-thermal model predictions were compared with experimental data available in literature to validate its effectiveness. The influences of winding/placement angle, mandrel curvature and tape width on the incident angles, the laser absorbed intensity, and the process temperature distribution are studied extensively using the validated model. Winding/placement angle has a considerable effect on the temperature distribution. Increase in winding angle results in a higher temperature for tape due to more reflections coming from the substrate. On the other hand, substrate temperature decreases as the winding angle increases due to a decrease in the laser incident angles based on the local surface curvature. An increase in mandrel curvature results in higher nip point temperatures for substrate and lower one for tape. Different mandrel sizes for 90 placement path do not have a strong effect on the substrate process temperature as for other winding angles because of less curvature change of the corresponding irradiated area. Tape width causes local temperature variations at the edges of the tape/substrate. In order to obtain the desired process temeprature during LATW or LATP processes, the laser intensity distribution on the tape and substrate surfaces should be regulated.
机译:使用激光辅助胶带放置或缠绕(LATP / LATW)进行先进的热塑性复合材料制造是一项艰巨的任务,因为要监视和预测咬合点(粘合)温度非常困难,尤其是在弯曲表面上。本文对夹持点附近的热通量和温度分布进行了全面的数值分析,以将纤维增强的热塑性胶带螺旋缠绕在圆柱形心轴上。在过程仿真工具中,将光线跟踪技术与数值传热模型相结合。将已开发的光热模型预测与文献中提供的实验数据进行比较,以验证其有效性。使用验证的模型广泛研究了绕线/放置角,心轴曲率和带宽度对入射角,激光吸收强度和过程温度分布的影响。缠绕/放置角度对温度分布有很大影响。缠绕角度的增加会导致胶带的温度更高,因为基材会产生更多的反射。另一方面,由于基于局部表面曲率的激光入射角的减小,基板温度随着卷绕角的增大而减小。芯轴曲率的增加导致基材的咬合点温度升高,而胶带的咬合点温度降低。对于90个放置路径,不同的心轴尺寸不会像其他卷绕角度那样对基板处理温度产生强烈影响,因为相应照射区域的曲率变化较小。胶带的宽度会导致胶带/基材边缘的局部温度变化。为了在LATW或LATP工艺过程中获得所需的工艺温度,应调节胶带和基材表面上的激光强度分布。

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