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Experimental Study of Macro and Microgeometric Defects in Drilled Carbon Fiber Reinforced Plastics by Laser Beam Machining

机译:激光束加工钻孔碳纤维增强塑料宏观和微观测定缺陷的实验研究

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Plastic matrix composite materials are an excellent choice for structural applications where high strength-weight and stiffness-weight ratios are required. These materials are being increasingly used in diverse industrial sectors, particularly in aerospace. Due to the strict tolerances required, they are usually machined with drilling cycles due to the type of mounting through rivets. In this sense, laser beam drilling is presented as an alternative to conventional drilling due to the absence of tool wear, cutting forces, or vibrations during the cutting process. However, the process carries with it other problems that compromise the integrity of the material. One of these is caused by the high temperatures generated during the interaction between the laser and the material. In this work, variance analysis is used to study the influence of scanning speed and frequency on macro geometric parameters, surface quality, and defects (taper and heat affected zone). Also, in order to identify problems in the wall of the drill, stereoscopic optical microscopy (SOM) and scanning electron microscopy (SEM) techniques are used. This experimental procedure reveals the conditions that minimize deviations, defects, and damage in machining holes.
机译:塑料基质复合材料是结构应用的绝佳选择,其中需要高强度重量和刚度 - 重量比。这些材料越来越多地用于各种工业部门,特别是在航空航天。由于所需的严格耐受性,由于通过铆钉的安装类型,它们通常使用钻孔循环加工。从这个意义上讲,由于在切割过程中没有刀具磨损,切割力或振动,激光束钻孔作为传统钻孔的替代方案。然而,该过程带来了损害材料完整性的其他问题。其中一个是由激光器和材料之间相互作用期间产生的高温引起的。在这项工作中,方差分析用于研究扫描速度和频率对宏观几何参数,表面质量和缺陷(锥度和热影响区域)的影响。而且,为了识别钻头壁中的问题,使用立体光学显微镜(SOM)和扫描电子显微镜(SEM)技术。该实验程序揭示了最小化加工孔中偏差,缺陷和损坏的条件。

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