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首页> 外文期刊>Journal of Composite Materials >Fiber laser processing of GFRP composites and multi-objective optimization of the process using response surface methodology
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Fiber laser processing of GFRP composites and multi-objective optimization of the process using response surface methodology

机译:光纤激光加工GFRP复合材料和使用响应表面方法的过程的多目标优化

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In the present investigation, a continuous wave fiber laser with maximum power of 400 W was used to cut a glass fiber reinforced plastic sheet of 4.56 mm thickness using Nitrogen as assisting gas. The influence processing parameters such as laser irradiance, gas pressure, and cutting speed on the cut surface quality were investigated by using response surface methodology. The different responses of laser cut surface such as upper kerf width, taper percentage along the cut depth, and heat-affected zone on the top surface were measured to analyze the influence of input process parameters on the responses. A statistical analysis on the obtained results was conducted and found that the optimum values of different input process parameters were laser irradiance: 8.28 x 10(5) watt/cm(2), cutting speed: 600 mm/min and assisting gas pressure: 7.84 bar. The corresponding values of responses were upper kerf width: 177.4 mu m, taper 0.73%, and heat-affected zone on top surface: 109.23 mu m. The confirmation experiments were conducted with the obtained optimum parameter setting and observed that the predicted values and experimental values for upper kerf width, taper percentage and top surface heat-affected zone were within the error limits of 2.52%, 1.84%, and 0.45%, respectively. Furthermore, damages like loose fibers, interlayer fractures, evaporation of matrix material and fiber breakages were observed.
机译:在本研究中,使用具有400WW的最大功率的连续波光纤激光器使用氮气切割4.56毫米厚的玻璃纤维增​​强塑料片,作为辅助气体。通过使用响应表面方法研究了影响加工参数,例如激光辐照度,气体压力和切割表面质量上的切削速度。测量激光切割表面的不同响应,例如上划线宽度,沿着切割深度的锥度百分比,以及顶表面上的热影响区域,以分析输入过程​​参数对响应的影响。进行了对所得结果的统计分析,发现不同输入过程参数的最佳值是激光辐照度:8.28×10(5)瓦特/厘米(2),切割速度:600毫米/分钟,辅助气体压力:7.84酒吧。相应的响应值是上kerf宽度:177.4μm,锥度0.73%和顶表面的热影响区域:109.23μm。用所得最佳参数设定进行确认实验,并观察到上kerf宽度,锥度百分比和顶表面热影响区的预测值和实验值在2.52%,1.84%和0.45%的误差范围内。分别。此外,观察损坏,如松散的纤维,层间骨折,基质材料蒸发和纤维断裂。

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