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Coating fracture toughness determined by Vickers indentation: an important parameter in cavitation erosion resistance of WC-Co thermally sprayed coatings

机译:维氏压痕确定的涂层断裂韧性:WC-Co热喷涂涂层抗气蚀的重要参数

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The deficient performance of thermally sprayed coatings in cavitation erosion tests is often attributed to the nature of their lamellar microstructure. Poor coating/substrate adhesion, low toughness and tensile residual stresses, which are introduced during the deposition process, can also adversely affect their cavitation resistance. In order to improve the cavitation performance of such coatings, it is also important to control some of the coating properties such as elastic modulus (E) and hardness (H). By reducing E and increasing H (i.e. to ensure a higher HIE ratio), a better tribological performance is usually achieved. The erosive environment also plays a decisive role in determining the final chemical composition of the coating. Thermally sprayed WC-Co coatings are well known because of their high hardness and, in such cemented carbides, the corrosion resistance is frequently affected by the susceptibility of the cobalt binder to chemical attack. In this work, an attempt to improve the cavitation resistance of WC-Co coating's was made by either modifying coating composition (and therefore modifying some coating properties such as hardness, elastic modulus and toughness) or by carrying out a 'melt' post-deposition treatment in order to disrupt the intrinsic lamellar microstructure of the coating. Four different coatings were deposited onto an AISI 1020 steel substrate: (i) WC-12%Co; 60 as-sprayed (AS) 50%(WC-12%Co)+50%(NiCr); (iii) post-melted (PM) 50%(WC-12%Co) +50%(NiCr) and (iv) a duplex system comprising a WC-12%Co top layer and a NiCrAl interlayer. The 'PM' coating produced from the pre-alloyed powder 50%(WC-12%Co) + 50% (NiCr) displayed a higher elastic modulus (measured by Knoop indentation) and a lower hardness (and thus a lower HIE ratio) than the WC-12%Co. Also, the fracture toughness of the latter (measured by Vickers indentation tests) was increased from 1.6 +/- 0.9 to 32 +/- 12 MPa m(1/2). The worst performance in cavitation erosion tests was achieved by the WC-12%Co coating, which showed the highest mass loss throughout the test. Conversely, the 'PM' 50%(WC-12%Co)+50%(NiCr) coating exhibited the best cavitation resistance and a correlation between coating toughness and cavitation resistance could be established. (C) 2003 Elsevier B.V. All rights reserved. [References: 18]
机译:热喷涂涂层在气蚀试验中的性能不足通常归因于其层状微结构的性质。在沉积过程中引入的不良涂层/基材附着力,低韧性和拉伸残余应力也会对它们的抗气蚀性产生不利影响。为了改善这种涂层的空化性能,控制某些涂层性能(例如弹性模量(E)和硬度(H))也很重要。通过降低E并增加H(即确保更高的HIE比),通常可获得更好的摩擦性能。侵蚀性环境在确定涂层的最终化学成分方面也起着决定性的作用。热喷涂WC-Co涂层因其高硬度而广为人知,在这种硬质合金中,耐蚀性通常受钴粘合剂对化学侵蚀的敏感性影响。在这项工作中,试图通过改变涂层成分(从而改变某些涂层性能,例如硬度,弹性模量和韧性)或通过“熔化”后沉积来改善WC-Co涂层的抗气蚀性。处理以破坏涂层的固有层状微结构。将四种不同的涂层沉积到AISI 1020钢基底上:(i)WC-12%Co; 60喷雾(AS)50%(WC-12%Co)+ 50%(NiCr); (iii)后熔融(PM)50%(WC-12%Co)+ 50%(NiCr),以及(iv)包含WC-12%Co顶层和NiCrAl中间层的双相体系。由50%(WC-12%Co)+ 50%(NiCr)的预合金粉末制成的“ PM”涂层显示出较高的弹性模量(通过努氏压痕法测量)和较低的硬度(因此具有较低的HIE比)比WC-12%Co此外,后者的断裂韧性(通过维氏压痕测试测量)从1.6 +/- 0.9增至32 +/- 12 MPa m(1/2)。在WC-12%Co涂层的作用下,空化腐蚀测试的性能最差,在整个测试过程中质量损失最高。相反,'PM'50%(WC-12%Co)+ 50%(NiCr)涂层表现出最佳的抗气蚀性,可以确定涂层韧性与抗气蚀性之间的关系。 (C)2003 Elsevier B.V.保留所有权利。 [参考:18]

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