Mechanical properties and wear resistance of Fe–Ni–Cu-based metal matrix composites reinforced with hollow corundum microspheres

M. Bychkova, O. S. Manakova, A. Akhmetov, A. Kaysinov, E. N. Avdeenko, P. Loginov, S. Vorotilo
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Abstract

This paper focuses on the development of composite materials based on the Fe–Ni–Cu alloy with hollow corundum microspheres (HCM). The composites were produced by means of powder metallurgy: by mixing initial metallic powders in various types of mixers followed by hot pressing. Compact samples of Fe–Ni–Cu + HCM composites featured high relative density and microstructure homogeneity. The introduction of HCM leads to a decrease in strength to 30 % (from 1125 MPa to 800 MPa at a HCM concentration of 15 vol.%). However, resulting composite materials retained high plasticity. It was established by the micromechanical modeling method that such composites have stress concentration regions not at the interface between HCM and the matrix, but on the inner surface of microspheres. On the contrary, the adjacent matrix volume around HCM features stress relaxation and «unloaded» regions formed. HCM introduction into the matrix based on the Fe–Ni–Cu alloy increases wear resulting from friction on M300 concrete by 50–170 % with a grain size of 70–100 μm and by 160–325 % with a grain size of 100–140 μm. During friction, HCMs act as a reservoir for debris (concrete particles), so the matrix surface remains free of wear products and directly contacts the material processed. The heavy wear of composites with HCM makes them promising for use as a binder in diamond tools designed for the dry cutting of concrete and reinforced concrete.
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空心刚玉微球增强fe - ni - cu基金属基复合材料的力学性能和耐磨性
本文主要研究了Fe-Ni-Cu合金空心刚玉微球复合材料的研制。复合材料的制备采用粉末冶金的方法:在不同类型的混合器中混合初始金属粉末,然后热压。致密的Fe-Ni-Cu + HCM复合材料具有较高的相对密度和组织均匀性。HCM的引入导致强度下降30%(当HCM浓度为15 vol.%时,强度从1125 MPa降至800 MPa)。然而,所得到的复合材料保持了较高的塑性。通过微观力学建模方法证实,这种复合材料的应力集中区域不在HCM与基体的界面处,而是在微球的内表面。相反,HCM周围相邻的矩阵体具有应力松弛和“卸载”区域。在Fe-Ni-Cu合金基体中引入HCM,在晶粒尺寸为70-100 μm时,M300混凝土的摩擦磨损率提高了50 - 170%,在晶粒尺寸为100-140 μm时,磨损率提高了160 - 325%。在摩擦过程中,hcm作为碎屑(混凝土颗粒)的储存器,因此基体表面保持无磨损产物,并直接接触被加工的材料。具有HCM的复合材料的严重磨损使它们有希望用作用于干切割混凝土和钢筋混凝土的金刚石工具的粘合剂。
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