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Laser cladding of austenitic stainless steel using NiTi strips for resisting cavitation erosion

机译:奥氏体不锈钢的激光熔覆,使用镍钛合金带材抵抗气蚀

摘要

Being part of a larger project on using different forms of nickel titanium (NiTi) in the surface modification of stainless steel for enhancing cavitation erosion resistance, the present study employs NiTi strips as the cladding material. Our previous study shows that laser surfacing using NiTi powder can significantly increase the cavitation erosion resistance of AISI 316 L stainless steel [K.Y. Chiu, F.T. Cheng, H.C. Man, Mater. Sci. Eng. A 392 (2005) 348-358]. However, from an engineering point of view, NiTi strips are more attractive than powder because NiTi powder is very expensive due to high production cost. In the present study, NiTi strips were preplaced on AISI 316 L samples and remelted using a high-power CW Nd:YAG laser to form a clad layer. To lower the dilution due to the substrate material, samples doubly clad with NiTi were prepared. The volume dilution ratio in the singly clad sample was high, being in the range of 13-30% depending on the processing parameters, while that of the doubly clad sample was reduced to below 10%. Analysis by scanning electron microscopy (SEM), energy-dispersive spectroscopy (EDS) and X-ray diffractometry (XRD) reveals that the clad layer is composed of a NiTi B2 based matrix together with fine precipitates of a tetragonal structure. Vickers indentation shows a tough cladding/substrate interface. The microhardness of the clad layer is increased from 200 HV of the substrate to about 750 HV due to the dissolution of elements like Fe, Cr and N in the matrix. Nanoindentation tests record a recovery ratio near to that of bulk NiTi, a result attributable to a relatively low dilution. The cavitation erosion resistance of the doubly clad samples is higher than that of 316-NiTi-powder (samples laser-surfaced with NiTi powder) and approaches that of NiTi plate. The high erosion resistance is attributed to a high hardness, high indentation recovery ratio and the absence of cracks or pores.
机译:作为在不锈钢表面改性中使用不同形式的镍钛(NiTi)以增强抗气蚀性的一项较大计划的一部分,本研究采用NiTi条带作为包覆材料。我们之前的研究表明,使用NiTi粉末进行激光堆焊可以显着提高AISI 316 L不锈钢的抗气蚀性能[K.Y.赵超郑HC男人,Mater。科学。 A 392(2005)348-358]。但是,从工程学的角度来看,由于高生产成本,NiTi粉末非常昂贵,因此NiTi条带比粉末更具吸引力。在本研究中,将NiTi条带预先放置在AISI 316 L样品上,并使用高功率CW Nd:YAG激光重熔以形成覆层。为了降低由于基材引起的稀释,制备了用NiTi双重包覆的样品。单包层样品的体积稀释率高,取决于加工参数,在13-30%的范围内,而双包层样品的体积稀释率降低到10%以下。通过扫描电子显微镜(SEM),能量色散谱(EDS)和X射线衍射仪(XRD)的分析表明,包覆层由基于NiTi B2的基体以及四方结构的细小析出物组成。维氏压痕显示出坚固的覆层/基板界面。由于诸如Fe,Cr和N之类的元素在基质中的溶解,包覆层的显微硬度从基底的200HV增加到约750HV。纳米压痕测试记录的回收率接近整体NiTi的回收率,这归因于稀释度相对较低。双包层样品的抗气蚀性能高于316-NiTi-粉末(经NiTi粉末激光表面处理的样品),并且接近NiTi板。高耐蚀性归因于高硬度,高压痕回复率和不存在裂纹或孔隙。

著录项

  • 作者

    Chiu KY; Cheng FT; Man HC;

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  • 年度 2005
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  • 原文格式 PDF
  • 正文语种 eng
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