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Crack formation and its prevention in PVD films on epoxy coatings

机译:环氧涂料PVD膜中的裂纹形成及其预防

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Severe cracking was found to occur in PVD titanium films on epoxy powder coatings. After all baking treatments, the epoxy coating had smooth, crack-free surfaces and the cracking of both the titanium film and the epoxy only took place as a result of physical vapour deposition. Tensile cracks were observed in the titanium film and not the compressive cracks expected from the conventional two-layered theoretical model. An alternative model has been developed for the prediction of thermal stress in a three-layered film-epoxy-substrate system. The model is consistent with the experimental trials and showed that cracking originated from thermal stresses developed in the titanium-epoxy-aluminum system due to the PVD process. Tensile instability and cracking were initiated where pores intersected the film-coating interface. The results showed that crack formation could be prevented by increasing the baking temperature to 210 °C. This critical temperature activates full crosslinking in the epoxy structure and raises its strength sufficiently to avoid tensile instability due to residual stress. Crack-free and high-gloss sputtered titanium films could therefore be produced on organic coatings. This offers the potential of a combined in-line PVD-powder coating technology as an alternative to electroplating.
机译:发现在环氧粉末涂料的PVD钛膜中发生严重的开裂。在所有烘烤处理之后,环氧树脂涂层具有光滑,无裂纹的表面,并且钛膜和环氧树脂的开裂仅是物理气相沉积的结果。在钛膜中观察到拉伸裂纹,而不是常规的两层理论模型所预期的压缩裂纹。已经开发出了一种替代模型来预测三层膜-环氧树脂-基底系统中的热应力。该模型与实验结果一致,表明开裂是由PVD工艺在钛-环氧-铝体系中产生的热应力引起的。在孔与膜-涂层界面相交的地方引发了拉伸不稳定性和破裂。结果表明,通过将烘烤温度提高到210°C可以防止裂纹的形成。该临界温度激活了环氧结构中的完全交联并充分提高了其强度,从而避免了由于残余应力引起的拉伸不稳定性。因此,可以在有机涂层上生产无裂纹和高光泽的溅射钛膜。这提供了组合式在线PVD粉末涂层技术作为电镀替代品的潜力。

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