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首页> 外文期刊>Materials & design >Fatigue properties of laser-brazed joints of Dual Phase and TRansformation Induced Plasticity steel with a copper-aluminium consumable
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Fatigue properties of laser-brazed joints of Dual Phase and TRansformation Induced Plasticity steel with a copper-aluminium consumable

机译:铜铝消耗品双相和相变诱导塑性钢的激光钎焊接头的疲劳性能

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摘要

High strength steels combine good formability with excellent mechanical properties and have developed continuously in recent years. Joining these materials is however increasingly difficult as fusion joining processes destroy the carefully constructed microstructure. To counteract this problem, joining processes which require less heat input have been investigated. Laser brazing is a relatively new technique and a potential candidate which has found application in the automotive industry.rnIn this paper the fatigue lifetime properties of laser-brazed Dual Phase (DP600) and TRansformation Induced Plasticity (TRIP700) steel joints made with a copper-aluminium consumable are reported. Joints created with DP600 steel showed fracture through the steel due to a brass present in the stress concentration region at the edge of the reinforcement. TRIP700 steels show similar results if the applied maximum stress is in excess of 280 MPa. However, at maximum stresses of 230 MPa, failure occurred across the interface between the braze metal and the steel. A basic fatigue crack path model is presented for the two competing failure mechanisms.
机译:高强度钢结合了良好的成形性和出色的机械性能,并且近年来不断发展。然而,由于熔合工艺破坏了精心构造的微结构,因此连接这些材料变得越来越困难。为了解决这个问题,已经研究了需要较少热量输入的连接过程。激光钎焊是一种相对较新的技术,并且已在汽车工业中得到应用。rn本文采用铜铜合金制成的激光钎焊双相(DP600)和相变诱导塑性(TRIP700)钢接头的疲劳寿命特性。有铝耗材的报道。用DP600钢制成的接头由于钢筋边缘应力集中区域中存在黄铜而显示出钢的断裂。如果施加的最大应力超过280 MPa,TRIP700钢将显示出相似的结果。但是,在最大应力为230 MPa时,钎焊金属和钢之间的界面会发生破坏。提出了两种竞争失效机理的基本疲劳裂纹路径模型。

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  • 来源
    《Materials & design》 |2010年第8期|P.3922-3928|共7页
  • 作者单位

    Delft University of Technology, Mekelweg 2, 2628 CD Delft, Netherlands;

    Delft University of Technology, Mekelweg 2, 2628 CD Delft, Netherlands;

    Delft University of Technology, Mekelweg 2, 2628 CD Delft, Netherlands;

    Delft University of Technology, Mekelweg 2, 2628 CD Delft, Netherlands;

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