高资源金刚石磨具用低熔点玻璃陶瓷粘结剂的研制

O. Fedorenko, L. Yashchenko, D. Fedorenko, V. Fedorovych, Oleksandr Koniev
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引用次数: 0

摘要

研究旨在制造具有工作层大孔结构的高资源金刚石磨具,其使用可减少加工易过热材料时磨削缺陷的发生。工作层的开放式结构的形成保证了有效的切屑去除,避免了刀具因被磨削污泥污染而降低切削能力,为采用高速切削模式时强化材料的加工创造了有利条件。作为研究的一部分,已经开发出用于金刚石磨具的低熔点玻璃陶瓷粘结剂,由于防止金刚石颗粒过早破坏和在工作层形成大孔开放结构,从而有可能增加工具的使用寿命。通过因子规划方法,利用一组关于玻璃成分主要特征的计算数据,确定了“成分-性能”的依赖关系,并确定了玻璃-陶瓷键的最佳成分面积,以确保在550-650°C的温度下烧结含金刚石复合材料。利用技术来源的硅酸铝微球作为结构形成填料提供形成大孔结构的效率被证明。测定了从Krivoy Rog TPP飞灰中回收的技术球的化学和物相组成特征。当工具的含金刚石层在灰球的外壳中烧结时,形成了具有高硬度的新结晶(海长石、莫来石、磁铁矿、尖晶石)。使用灰球和开发的低熔点粘合剂,其中包括高达30的质量。%的玻璃废料,制备了开孔率为45-50%的含金刚石复合材料的实验室样品。通过对其微观结构和形态特征的研究,可以确定其孔径(130 ~ 200 μm),并确定在磨削过程中,随着附加切削元素的形成,灰球会发生部分破坏,从而提高刀具的切削能力。研究结果表明,采用该方法对金刚石-陶瓷复合材料部件的选择和含金刚石层的热处理方式进行加工是可取的。这种方法将极大地扩展以最小的材料成本制造具有高使用寿命的大孔金刚石磨具的可能性,并将改善由难以加工的材料制成的零件的加工。
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DEVELOPMENT OF LOW-MELTING GLASSCERAMIC BONDS FOR HIGH RESOURCE DIAMOND-ABRASIVE TOOLS
Research is aimed at creating high-resource diamond-abrasive tools with a large-pore structure of the working layer, the use of which reduces the occurrence of grinding defects when processing materials sensitive to overheating. The formation of an open structure of the working layer ensures effective chip removal, which excludes a decrease in the сutting ability of the tool due to contamination with grinding sludge and creates favorable conditions for intensifying the processing of materials when using high-speed cutting modes. As part of the research, low-melting glass-ceramic binders for diamond-abrasive tools have been developed, which make it possible to increase the tool service life  due to the prevention of diamond grains premature destruction and the creation of a large-pore open structure of the working layer. Using a set of calculated data about the main characteristics of glass compositions by factor planning means, the dependences «composition - properties» were determined and the area of optimal compositions of glass-ceramic bonds was established, which ensure sintering of a diamond-containing composite at a temperature of 550–650 °C. The efficiency of the use of alumino-silicate microspheres of technogenic origin as a structure-forming filler providing the formation of a large-pore structure is shown. The features of the chemical and phase composition of the technogenic spheres recovered from the fly ash of the Krivoy Rog TPP have been determined. It has been established that when the diamond-bearing layer of the tool is sintered in the shell of the ash spheres, crystalline new formations with high hardness (hercynite, mullite, maghemite, spinel) are formed. Using ash spheres and developed low-melting binders, which include up to 30 mass. % of glass waste, the laboratory samples of diamond-containing composites with open porosity of 45-50% were made. Studies of their microstructure and morphological features made it possible to determine the pore size (130-200 μm) and establish that during grinding, partial destruction of ash spheres occurs with the formation of additional cutting elements, which increases the tool cutting ability. The research results indicate the advisability of using the proposed approach for selection of the diamond-ceramic composite components and the modes of heat treatment of the diamond-bearing layer when creating a tool. This approach will significantly expand the possibilities of manufacturing large-pore diamond-abrasive tools with a high service life at minimal material costs and will improve the processing of parts made of difficult-to-machine materials.
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