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Fracture Resistance Enhancement in Hard Mo-B-C Coatings Tailored by Composition and Microstructure

机译:通过成分和微观结构量身定制的增强Mo-B-C硬涂层的抗断裂性能

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State-of-the-art protective coatings often suffer from brittleness. Therefore, the coatings are intensively sought which would simultaneously exhibit high hardness and stiffness with moderate ductility and fracture resistance. In this paper, we report on the nanostructure designing of coatings containing metal, boron, and carbon enabling the simultaneous presence of stiff boridic and carbidic bonds together with weaker metallic bonds to provide coatings with these desirable properties. Three designs are presented with different relative amounts of nanocrystalline and amorphous phases, ranging from near-amorphous to prevalently crystalline microstructure. All presented coatings exhibit an unusual combination of high fracture resistance and high hardness that cannot be achieved with state-of-the-art protective coatings. Indentation tests at high loads revealed that no cracks are present at the surface of the investigated coatings while state-of-the-art ceramic protective coatings already exhibit significant cracking. Cracks in the bulk of the presented coating are detected only when the deformation is so severe that the substrate itself fails.
机译:最先进的保护涂层经常会变脆。因此,人们强烈地寻求能够同时显示出高硬度和刚度以及适度的延展性和抗断裂性的涂层。在本文中,我们报告了包含金属,硼和碳的涂层的纳米结构设计,这些涂层能够同时存在刚性的硼键和碳键以及较弱的金属键,从而为这些涂层提供理想的性能。提出了三种设计,它们具有不同的相对数量的纳米晶相和非晶相,范围从近乎非晶的到普遍的晶体微观结构。所有提出的涂料均表现出高抗断裂性和高硬度的非凡组合,而最新的保护性涂料则无法实现。高负荷下的压痕测试表明,所研究涂层的表面没有裂纹,而最先进的陶瓷保护涂层已经显示出明显的裂纹。仅在变形严重到基材本身失效的情况下,才能检测到存在的涂层大部分出现裂纹。

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