Methodology for Determining the Effective Thickness of the Cemented Layer of Steel

IF 0.2 Q4 INSTRUMENTS & INSTRUMENTATION
S. G. Sandomirski, A. L. Val’ko, Sergej P. Rudenko, Сергей Сандомирский, А.Л. Валько, С.П. Руденко
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引用次数: 0

Abstract

Highly loaded transmission gears are cemented and hardened. An important parameter of the hardened cemented layer is its effective thickness hef . Metal banding and the unavoidable instrumental error in hardness measuring have a great influence on the reliability of hef determination. The purpose of this article was to develop a methodology to improve the reliability of determining of the effective thickness hef of the hardened layer in steel after carburizing and quenching.The value of hef is the distance h from the surface of the product to the hardness zone of 50 HRC. The article substantiates that approximation of hardness change from the distance h to the product surface will allow to obtain a more reliable dependence of hardness change in the investigated area when making hardness measurements in a wider range of distance h. Therefore, to increase the reliability of hef determination, results of the HV0.5 hardness measurement in an extended range of changes in h in the vicinity of the analyzed zone were used. The HV0.5 measurement results are converted to HRC hardness values using the formula recommended by the international standard. The HRC(h) distribution of HRC hardness values in the measurement area is interpolated by a second-degree polynomial which physically correctly reflects the change in metal hardness in the analyzed area. The resulting polynomial is used to determine of the distance hef at which the hardness takes on a value of 50 HRC. The methodology was used to determine the hef of an 18KhGT steel gear wheel after carburizing and quenching. It is shown that results of two independent measurements of the hef sample differ from each other by 0.003 mm. This is significantly less than the permissible error of 0.02 mm of the hef determination according to the standard technique. The error of hef determination is reduced by extending the range of variation of h and statistically valid interpolation of the monotonic change in hardness with the distance from the surface of the item in the measurement area. The developed method of determining the effective thickness hef of the hardened steel layer consists in determining the distribution of its hardness in the expanded vicinity of the hef area, approximating the obtained dependence by a polynomial of the second degree and solving the square equation obtained with its use. The technique provides a significant reduction in the influence of the structural banding of the metal and the inevitable error in measuring hardness on the result of determining the hef . Its application will allow to optimize the cementation regimes of gear wheels to increase their service life.
测定钢胶结层有效厚度的方法
高负荷传动齿轮是胶结和硬化。硬化胶结层的一个重要参数是有效厚度。在硬度测量中,金属带和不可避免的仪器误差对硬度测定的可靠性有很大的影响。本文的目的是发展一种方法,以提高确定钢渗碳淬火后硬化层有效厚度的可靠性。hef的值是产品表面到50 HRC硬度区的距离h。本文证实,在更宽的距离h范围内进行硬度测量时,从距离h到产品表面的硬度变化近似,可以获得更可靠的研究区域硬度变化的依赖关系。因此,为了提高硬度测定的可靠性,我们使用了在分析区域附近更大的h变化范围内HV0.5硬度测量结果。HV0.5测量结果按照国际标准推荐的公式转换为HRC硬度值。测量区域内HRC硬度值的HRC(h)分布采用二次多项式插值,物理上正确地反映了分析区域内金属硬度的变化。所得到的多项式用于确定硬度值为50 HRC时的距离。采用该方法测定了18KhGT钢齿轮渗碳淬火后的重量。结果表明,两次独立测量的结果相差0.003 mm。这明显小于根据标准技术测定重量的允许误差0.02毫米。通过扩大h的变化范围,统计上有效地插值硬度随测量区域内物体表面距离的单调变化,减小了硬度测定的误差。现有的确定淬火钢层有效厚度厚度的方法是,确定其硬度在厚度区域扩展附近的分布,用二次多项式逼近所得到的依赖关系,并求解由此得到的平方方程。该技术显著降低了金属的结构带的影响和测量硬度时不可避免的误差对重量测定结果的影响。它的应用将允许优化胶结制度的齿轮,以增加其使用寿命。
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来源期刊
Devices and Methods of Measurements
Devices and Methods of Measurements INSTRUMENTS & INSTRUMENTATION-
自引率
25.00%
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18
审稿时长
8 weeks
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