Evaluation of the wear of the duckfoot sweep cultivator blades and the technology of their hardening

T. Skoblo, I. Rybalko, O. Nanka, O. Saychuk
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引用次数: 1

Abstract

In recent years, research and developments related to the creation of new areas using nanotechnology take a special place in scientific achievements. They are developed and widely used in Physics, Chemistry, Biology, Electronics, Medicine, Food Production and to a much lesser extent in Engineering. This is due to the fact that there are different requirements to parts and products used in mechanical engineering, they have a complex shape, are made of different materials, production methods, heat treatment. While operating, their working layer undergoes degradation with a significant change in structure and their hardening using nanocoatings may turn out to be ineffective in both technical and economic aspects. In this case, only a specific approach, which is determined by comprehensive research with identification of the main factors of parts damageability in specific production and operation conditions, can be expedient. In addition, in some cases for hardening, repair and restoration of parts it is expedient to use surfacing methods with the introduction of modifying agents in a liquid bath during crystallization. These modifying agents are nano-and dispersed diamonds, which make it possible to adjust temperature parameters of crystallization, grain size, and stress level. This approach allows using high-alloyed, high-carbon electrodes even for thin-walled steel and cast iron products. In this case, the diamond inclusions additive plays the role of micro-refrigerators, which significantly change the crystallization temperature range. It is important to determine the optimal dose of the introduction of such a modifier and ensure uniform distribution the components in the coating. The presented work is devoted to the new technology development of hardening of cultivator blades metal with nano-and dispersed diamond additives, which are the part of the detonation charge from the disposal of ammunition. Nowadays, in agriculture, a large number of tillage implements are used for tillage, the working bodies of which are sweep blades. They are operated under conditions of abrasive particles impact, and this is accompanied by their intense wear with a corresponding change in the geometric dimensions of the main working surfaces. The worn sweep blades significantly reduce efficiency and quality of the carried-out work. The analysis of the effective choice of surfacing materials for hardening and improving their performance has been carried out and the nature of wear has been evaluated in order to identify areas of maximum damage and to determine the optimal method. It is known that T-590 and T-620 electrodes are used for the restoration surfacing of tillage implements. It was found the hardfacing of thin-walled parts is accompanied by a smaller heat sink and, in some cases, they are flooded with defect formation. To reduce it, a non-magnetic fraction of detonation charge from ammunition disposalin the form of an electrode modification was introduced, which ensured the uniform distribution the components in the coating. The method of the X-ray electron-probe analysis has been used to evaluate features of structure formation and component distribution along the perimeter of the coating. It was found out that this method of hardening reduces heat input and increases the microhardness and wear resistance of the surfaced coating, reduces the transition zone and thermal impact. The recommended method of metal hardening of new cultivator blades is to apply stripes on the point tip and wings of blades. On the basis of the nature of wear, the expediency of applying stripes on the point tip of the cultivator blade from the front side, and on wings from the rear side, is justified. The optimal geometrical dimensions of hardening stripes and their location on the blade are presented, which allows minimizing the local stresses and increasing wear resistance.
鸭掌式中耕机刀片的磨损评估及其强化技术
近年来,与利用纳米技术创建新领域相关的研究和开发在科学成就中占有特殊地位。它们被开发并广泛应用于物理、化学、生物学、电子、医学、食品生产,在工程中的应用程度要低得多。这是由于机械工程中使用的零件和产品有不同的要求,它们形状复杂,由不同的材料、生产方法、热处理制成。在操作过程中,它们的工作层会随着结构的显著变化而退化,使用纳米涂层进行硬化可能在技术和经济方面都无效。在这种情况下,只有通过综合研究确定特定生产和操作条件下零件易损性的主要因素来确定特定的方法才是有利的。此外,在某些情况下,为了硬化、修复和修复零件,在结晶过程中,宜采用在液浴中引入改性剂的堆焊方法。这些改性剂是纳米分散的金刚石,可以调节结晶的温度参数、晶粒尺寸和应力水平。这种方法允许使用高合金、高碳电极,甚至适用于薄壁钢和铸铁产品。在这种情况下,金刚石夹杂物添加剂起到了微型冰箱的作用,它显著改变了结晶温度范围。重要的是确定引入这种改性剂的最佳剂量并确保组分在涂层中的均匀分布。本文致力于用纳米和分散的金刚石添加剂硬化中耕机刀片金属的新技术开发,这些添加剂是弹药处理中爆轰装药的一部分。如今,在农业中,大量的耕作工具被用于耕作,其工作体是扫地刀。它们是在磨料颗粒撞击的条件下运行的,这伴随着它们的剧烈磨损,主要工作表面的几何尺寸也发生了相应的变化。磨损的清扫叶片显著降低了作业的效率和质量。对用于硬化和提高其性能的堆焊材料的有效选择进行了分析,并对磨损性质进行了评估,以确定最大损伤区域并确定最佳方法。已知T-590和T-620电极用于农具的修复表面。研究发现,薄壁零件的堆焊伴随着较小的散热器,在某些情况下,它们会形成大量缺陷。为了减少它,以电极改性的形式引入了来自弹药处理的爆轰装药的非磁性部分,这确保了涂层中成分的均匀分布。采用X射线电子探针分析方法对涂层的结构形成和成分分布特征进行了评价。研究发现,这种淬火方法减少了热输入,提高了表面涂层的显微硬度和耐磨性,减少了过渡区和热冲击。推荐的新型中耕机叶片金属硬化方法是在叶片尖端和机翼上施加条纹。根据磨损的性质,从前侧在耕耘机刀片的尖端和从后侧在机翼上施加条纹的方便性是合理的。给出了硬化条纹的最佳几何尺寸及其在叶片上的位置,这可以最大限度地减少局部应力并提高耐磨性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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