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High quality welding of stainless steel with 10 kW high power fibre laser

机译:用10 kW大功率光纤激光器对不锈钢进行高质量焊接

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The objectives of this research are to investigate penetration characteristics, to clarify welding phenomena and to develop high quality welding procedures in bead on plate welding of type 304 austenitic stainless steel plates with a 10 kW fibre laser beam. The penetration depth reached 18 mm at the maximum at 5 mm s−1. At 50 mm s−1 or lower welding speeds, however, porosity was generated at any fibre laser spot diameter. On the other hand, at 100 mm s−1 or higher welding speeds, underfilling and humping weld beads were formed under the conventionally and tightly focused conditions respectively. The generation of spatters was influenced mainly by a strong shear force of a laser induced plume and was greatly reduced by controlling direction of the plume blowing out of a keyhole inlet. The humping formation was dependent upon several dynamic or static factors, such as melt volume above the surface, strong melt flow to the rear molten pool on the top surface, solidification rate and narrow molten pool width and corresponding high surface tension. Its suppression was effective by producing a wider weld bead width under the defocused laser beam conditions or reduction of melt volume out of keyhole inlet under the full penetration welding conditions. Concerning porosity, X-ray transmission in situ observation images demonstrated that pores were formed not only from the tip of the keyhole but also at the middle part because of high power density. The keyhole behaviour was stabilised using a nitrogen shielding gas, resulting in porosity prevention. Consequently, to produce high quality welds in 10 kW high power fibre laser welding, the reduction procedures of welding defects were required on the basis of understanding their formation mechanism, and 10 kW fibre laser power could produce sound deeply penetrated welds of 18 mm depth in a nitrogen shielding gas.
机译:这项研究的目的是研究熔深特性,阐明焊接现象并开发高质量的焊接程序,以10 kW光纤激光束对304型奥氏体不锈钢板进行压焊。穿透深度在5 mm s-1处最大达到18 mm。但是,在50 mm s-1或更低的焊接速度下,在任何光纤激光光斑直径处都会产生孔隙。另一方面,在100mm s-1或更高的焊接速度下,分别在常规和紧密聚焦的条件下形成底部填充和隆起焊珠。飞溅物的产生主要受到激光诱导羽流的强剪切力的影响,并且通过控制从钥匙孔入口吹出的羽流的方向而大大减少了飞溅。驼峰形成取决于若干动态或静态因素,例如表面上方的熔体体积,流向顶部表面后熔池的强熔体流量,凝固速率和较窄的熔池宽度以及相应的高表面张力。通过在散焦激光束条件下产生更宽的焊缝宽度或在全熔透焊接条件下减少从锁孔入口流出的熔体体积,这种抑制作用是有效的。关于孔隙率,X射线透射原位观察图像表明,由于高功率密度,不仅在锁眼的尖端而且在中部形成孔。使用氮气保护气体使匙孔性能稳定,从而防止了孔隙。因此,为了在10 kW大功率光纤激光焊接中生产高质量的焊缝,在了解其缺陷形成机理的基础上,需要减少焊接缺陷的程序,而10 kW光纤激光功率可以产生深达18mm的深熔焊缝。氮气保护气体。

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