关于磁化切削变形刀具磨损的量子力学性质

V. Zelinskyi, E. Borisova
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引用次数: 4

摘要

在这篇文章中,我们提出了一个关于抗粘着的性质的假设,作为一种方法的加工切割和变形的磁场工具。这一假设是基于对操作经验的分析和对各种仪器的实验研究。我们建议使用原子-电子方法研究磁场对粘附过程的影响,该方法基于在纳米结构磁化体的晶格水平上发生的过程的检查。理论建模表明,磁场对粘附过程的影响可能是由于晶格中纳米结构的能量状态发生了变化,这与它们对磁效应响应的量子力学性质是一致的。特别注意实验建模的方法学方面。得到了新的结果,阐明了磨损对磁化仪器粘着磨损的影响。通过对磁场的处理,提出了一种新的影响磨损的机制,并由此得出结论,具有改变能级的电子系统的出现是导致粘附的原因,该电子系统可以抵抗强化学键的形成。
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About the quantum-mechanical nature of wear on magnetized cutting and deforming tools
In this article, we present a hypothesis about the nature of anti-adhesion as a method of processing cutting and deforming tools by the magnetic field. This hypothesis is based on analysis of operating experience and experimental studies on a wide range of instruments. We propose to study the influence of magnetic fields on the adhesion process using an atomic-electron approach based on examination of the processes taking place at the level of the crystal lattice of the nanostructure's magnetized body. Theoretical modeling shows that the influence of the magnetic field on the process of adhesion may be due to a change in the energy state of nanostructures in the crystal lattice in accordance with the quantum-mechanical nature of their response to magnetic effects. Specific attention is paid to the methodological aspects of experimental modeling. New results were reached that illuminate the effect of wear on the prevailing conditions of adhesive wear on the magnetization instruments. A new mechanism of influence is proposed by processing the magnetic field on the wear, from which it is concluded that the appearance of an electron system with a modified energy level that is resistant to the formation of strong chemical bonds caused the adhesion.
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