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Gap bridging in laser transmission welding of thermoplastics.

机译:热塑性塑料的激光透射焊接中的间隙桥接。

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摘要

Contour laser transmission welding (LTW) is a technology that has potential for joining large and complicated thermoplastic parts. Thermal expansion is the primary driving force to bridge potential gaps at the weld. A comprehensive investigation into gap bridging was performed using experimental studies, finite element (FE) thermal-mechanical coupled modeling, and analytical analysis of the contour welding process for polycarbonate (PC), polyamide 6 (PA6), and glass fibres reinforced polyamide 6 (PA6GF). The effects of material properties (carbon black level, glass fibres and crystallinity), process parameters (laser scan power, scan speed) and weld gap thickness on weld shear strength were assessed.;The thermal behavior of polymers in contour LTW was analyzed by the 3-D quasi-static thermal FE models. Thermal expansion into the gap was simulated by the simplified 2-D transient, thermal-mechanical coupled FE models. An analytical model describing laser beam transmission and absorption in light-scattering polymers was developed and applied in the FE simulation for PA6 and PA6GF. FE simulated results agree well with the experiment in contour welding with gap of PC and PA6. The optimum material and process parameters have been searched in the model to maximize gap bridging for PC.;An analytical model has been developed to predict the temperature rise and the thermal expansion in high speed contour welding of amorphous polymers. The model indicates that the maximum temperature at weld increases linearly with the laser line energy and the laser absorption coefficient. Thermal expansion and hence gap bridging increases with laser line energy. Lower laser absorption coefficient allows higher laser scan energy to be delivered onto the weld interface so helps bridge larger gap. The predicted thermal expansions by the model agree well with the measured maximum gaps bridged for polycarbonate.;The experimental study indicated that low concentration of laser absorbing pigment accompanied with high power laser scan improves gap bridging. Damage on the top surface of the laser-transparent part limited the allowable laser power that could be delivered onto the weld interface. Maximum gaps of 0.2, 0.4 and 0.25 mm were bridged in the experiment for the three types of polymers respectively.
机译:轮廓激光透射焊接(LTW)是一种具有连接大型复杂热塑性零件的潜力的技术。热膨胀是弥合焊缝中潜在间隙的主要驱动力。使用实验研究,有限元(FE)热力耦合建模以及对聚碳酸酯(PC),聚酰胺6(PA6)和玻璃纤维增​​强聚酰胺6( PA6GF)。评估了材料性能(炭黑含量,玻璃纤维和结晶度),工艺参数(激光扫描功率,扫描速度)和焊缝厚度对焊缝剪切强度的影响。 3-D准静态热有限元模型。通过简化的2D瞬态热机械耦合有限元模型模拟了向间隙的热膨胀。建立了描述激光束在光散射聚合物中的传输和吸收的分析模型,并将其应用于PA6和PA6GF的有限元模拟。有限元模拟结果与PC和PA6间隙等高线焊接实验吻合良好。在模型中搜索了最佳的材料和工艺参数,以最大程度地实现PC的间隙桥接。;已开发了一种分析模型,用于预测非晶聚合物高速轮廓焊接中的温度升高和热膨胀。该模型表明,焊接处的最高温度随激光线能量和激光吸收系数线性增加。随着激光线能量的增加,热膨胀以及因此的间隙桥接增加。较低的激光吸收系数可将较高的激光扫描能量传递到焊接界面,从而有助于弥合更大的间隙。该模型预测的热膨胀与实测的聚碳酸酯最大桥接间隙吻合良好。实验研究表明,低浓度的激光吸收颜料与高功率激光扫描可改善间隙桥接。激光透明部分顶部表面的损坏限制了可以传递到焊接界面的允许激光功率。对于三种类型的聚合物,在实验中分别弥合了0.2、0.4和0.25 mm的最大间隙。

著录项

  • 作者

    Chen, Mingliang.;

  • 作者单位

    Queen's University (Canada).;

  • 授予单位 Queen's University (Canada).;
  • 学科 Chemistry Polymer.;Plastics Technology.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 290 p.
  • 总页数 290
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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