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DEVELOPMENT OF LAMINAR PLASMA SHIELDED HF-ERW PROCESS : DVANCED WELDING PROCESS OF HF-ERW 3

机译:层状等离子屏蔽HF-ERW工艺的发展:HF-ERW 3的先进焊接工艺

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High frequency - electric resistance welded (HF-ERW) pipe has been successfully used for many years for a number of applications. The benefits of HF-ERW pipe are considerable, including a higher dimensional tolerance and lower prices than seamless pipe and UO pipe. The conventional weld seam produced by HF-ERW, however, often has a relatively low toughness. We have developed an automatic heat input control technique based on ERW phenomena that relies on optical and electrical monitoring methods and has been shown to result in a significant improvement in the toughness. Shielding of the weld area must also be considered as a key factor in the formation of a sound weld. It has been shown that an inert cold gas (e.g., at room temperature) shielding technique is effective for maintaining a stable low oxygen state in the weld area that inhibits the formation of penetrator, a pancake oxide inclusions. Compared to the cold gas shielding technique, high temperature gas shielding, due to its higher kinetic viscosity coefficient, should make it easier to sustain a higher laminar flow, thus leading to a rather low air entrainment in the shielding gas. In addition, plasma is a much higher temperature state (~6000 K), and the dissociated gases can react with the entrained oxygen; plasma jets should, therefore, enhance the overall shielding effects. Moreover, oxides on the strip edges can be expected to melt and/or be reduced by the high temperature plasma jets. Nippon Steel has developed a plasma torch that can generate a long and wide laminar argon - nitrogen - (hydrogen) jet. This paper describes the results obtained from our investigation of the effects of a plasma jet shield on the weld area of high strength line pipe with a yield strength grade of X65. Preliminary attempts in applying this novel shielding technique has been found, as expected, to demonstrate extremely low numbers of weld defects and a good low temperature toughness of the HF-ERW seam.
机译:高频-电阻焊(HF-ERW)管已在许多应用中成功使用了很多年。与无缝管和UO管相比,HF-ERW管的好处是可观的,包括更高的尺寸公差和更低的价格。然而,由HF-ERW产生的常规焊缝通常具有相对较低的韧性。我们已经开发了一种基于ERW现象的自动热输入控制技术,该技术依赖于光学和电气监视方法,并且已显示出可显着改善韧性的功能。焊接区域的屏蔽也必须被视为形成良好焊缝的关键因素。已经显示出惰性的冷气(例如,在室温下)屏蔽技术对于在焊接区域中保持稳定的低氧状态是有效的,该低氧状态抑制了渗透剂(薄煎饼氧化物夹杂物)的形成。与冷气体屏蔽技术相比,高温气体屏蔽由于其较高的运动粘度系数,应使其更易于维持较高的层流,从而导致保护气体中夹带的空气较少。另外,等离子体处于更高的温度状态(〜6000 K),离解的气体可以与夹带的氧气发生反应。因此,等离子流应增强整体屏蔽效果。此外,可以预期,带钢边缘上的氧化物会被高温等离子流熔化和/或还原。新日铁开发了一种等离子炬,可以产生长而宽的层状氩-氮-(氢)射流。本文描述了从我们对等离子流屏蔽层对屈服强度等级为X65的高强​​度管线管的焊接区域的影响所获得的结果。如所期望的,已经发现了应用这种新颖的屏蔽技术的初步尝试,以证明极少的焊接缺陷和HF-ERW接缝的良好的低温韧性。

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