Laser cutting of carbon fiber reinforced plastic components for remanufacturing

被引:5
作者
Arshed F. [1 ]
Ahmad A. [1 ]
Xirouchakis P. [1 ]
Metsios I. [2 ]
机构
[1] Design, Manufacture & Engineering Management, University of Strathclyde, Glasgow
[2] Lumpi Ltd, Kemp House, London
基金
欧盟地平线“2020”;
关键词
Carbon fiber reinforced plastic; Fiber damage; Fiber laser; Laser cutting; Optimization; Remanufacturing;
D O I
10.1007/s13243-022-00117-6
中图分类号
学科分类号
摘要
Carbon fiber reinforced plastic (CFRP) is extensively used in automotive and aerospace industries with the aim to achieve reduction on emissions by reducing weight. Due to governmental regulations to reduce the environmental impact and to reduce waste, the need for remanufacturing CFRP is becoming an interesting area of application with economic benefits to industry. This is important as manufacturing carbon fiber is a costly process and remanufacturing CFRP is more cost effective and reduces the dependency on virgin materials. Processing CFRP to meet demands, for fast and high-quality cuts, can impose problems for conventional methods. The use of multi-pass scanning technique in laser cutting CFRP is investigated using a 1.5 kW fiber laser with assist gas pressure of 16 bar and gas flow rate of 126 lt/min. Using multi-pass technique, a through cut can be obtained by repeating the beam travel more than once. The advantage of laser cutting when compared with traditional CNC, is the low cost of maintenance over time due to the non-contact nature of the process i.e. no wear of tool at contact area. And due to the small beam spot size of the laser small and complex shapes can be cut. The aim of the paper is to determine how the process performs in terms of cutting speed and fiber damage. Average power was used to carried out experimental tests. A fiber damage below 100 µm with laser cutting speed of 2.5 m/min and above was obtained. Thermal effects were analyzed using scanning electron microscope (SEM) and optical microscope (OM). The fiber damage was further optimized using specialist methods such as double aperture nozzle and trenching. The use of trenching and double aperture further reduces the fiber damage to 10 µm and 50 µm, respectively with laser cutting speed of 7.5 m/min and 3.33 m/min. © 2022, The Author(s).
引用
收藏
页码:411 / 433
页数:22
相关论文
共 38 条
  • [1] Abrate S., Walton D.A., Machining of composite materials. Part I: traditional methods, Compos Manuf, 3, pp. 75-83, (1992)
  • [2] Bhaskar V., Kumar D., Singh K., Laser processing of glass fibre reinforced composite material: a review, Aust J Mech Eng, 17, pp. 1-14, (2017)
  • [3] Bluemel S., Jaeschke P., Wippo V., Bastick S., Stute U., Kracht D., Laser machining of CFRP using a high-power fibre laser - Investigations on the heat affected zone, ECCM 2012 - Composites at Venice, Proceedings of the 15Th European Conference on Composite Materials, pp. 24-28, (2012)
  • [4] Freitag C., Onuseit V., Weber R., Graf T., High-speed observation of the heat flow in CFRP during laser processing, Phys Procedia, 39, pp. 171-178, (2012)
  • [5] Fujita M., Somekawa T., Miyanaga N., Micromachining of CFRP with ultra-short laser pulses, Phys Procedia, 41, pp. 636-639, (2013)
  • [6] Fujita M., Ohkawa H., Somekawa T., Otsuka M., Maeda Y., Matsutani T., Et al., Wavelength and pulse width dependences of laser processing of CFRP, Phys Procedia, 83, pp. 1031-1036, (2016)
  • [7] Goeke A., Emmelmann C., Influence of laser cutting parameters on CFRP part quality, Phys Procedia, 5, pp. 253-258, (2010)
  • [8] Habib S., Okada A., Ichii S., Effect of cutting direction on machining of carbon fibre reinforced plastic by electrical discharge machining process, Int J Mach Mach Mater, 13, pp. 414-427, (2013)
  • [9] Herzog D., Jaeschke P., Meier O., Haferkamp H., Investigations on the thermal effect caused by laser cutting with respect to static strength of CFRP, Int J Mach Tools Manuf, 48, pp. 1464-1473, (2008)
  • [10] Herzog D., Schmidt-Lehr M., Oberlander M., Canisius M., Radek M., Emmelmann C., Laser cutting of carbon fibre reinforced plastics of high thickness, Mater Des, 92, pp. 742-749, (2016)