金属和合金循环载荷下频率稳定性的安装和试验方法

IF 0.9 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY
V. V. Mylnikov, E. A. Dmitriev, D. I. Shetulov
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引用次数: 0

摘要

为了制造在复杂循环载荷条件下工作的零件,以及尺寸稳定的产品,需要具有最小非弹性性能表现的材料。为了研究它们,有必要使用具有适当实验技术的机器和装置进行专门的窄焦点测试。本文设计了一种在自振荡模式下工作的电磁疲劳与频率稳定性试验装置,在这种模式下,循环加载频率总是等于试样的振荡固有频率。安装控制系统包括自激振荡和稳定振荡幅值两个闭环。样品由电磁力加载,由材料的弹性力卸载。这项工作提出了一种计算各种几何形状样品应力的技术和算法,以评估幅频特性的变化。建立了施加在试样上的力与其在施力点的位移之间的计算关系,然后通过已知的力确定应力。给出了试样静态加载模式的标定试验结果,并在考虑最大应力和最大变形幅值的情况下,估计了作用在试样上的力(外力、惯量、弹性)。对静荷载和循环荷载进行了比较。根据提出的方法对钢样进行测试,得到了频率特性。对循环加载和连续加载时的断裂试验结果进行了分析。结果表明,在循环试验中,中断会导致频率的突然增加,而在连续试验中则不会出现这种跳跃。同时,对所考虑的测试类型的结果进行比较分析表明,在这两种情况下,整个工作周期的总频率偏差大致相同。结果表明,静息后频率的增加是随机的,与工作循环次数无关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Installation and Testing Methods for Frequency Stability under Cyclic Loading of Metals and Alloys

Installation and Testing Methods for Frequency Stability under Cyclic Loading of Metals and Alloys

For manufacturing parts operating under complex conditions of cyclic loading, as well as products with stable dimensions, materials with minimal manifestations of inelastic properties are required. To study them, it is necessary to conduct specialized narrow-focus tests using machines and installations with appropriate experimental techniques. This paper presents the design of an electromagnetic installation for fatigue and frequency stability testing operating in a self-oscillating mode, in which the cyclic loading frequency is always equal to the natural frequency of oscillations of a sample. The installation control system contains two closed loops—for excitation of self-oscillations and for the oscillation amplitude stabilization. The sample is loaded by electromagnetic force and unloaded owing to the elastic forces of the material. This work presents a technique and algorithms for calculating the stresses of samples of various geometric shapes to assess changes in the amplitude–frequency characteristics. A calculated relationship is established between the force applied to the sample and its displacement at the point of force application, followed by determining the stress by the known force. The results of calibration tests for the static loading mode of samples are presented and the forces acting on the sample (external, inertia, elasticity) are estimated taking into account the maximum stress and maximum deformation amplitude. Static and cyclic loading modes are compared. The frequency characteristics are obtained when testing steel samples according to the proposed method. An analysis of the experimental results of tests with breaks during cyclic loading and continuous tests is carried out. It is shown that breaks in cyclic tests lead to an abrupt increase in frequency, while such jumps are absent during continuous tests. At the same time, a comparative analysis of the results of the considered types of tests showed that the total frequency deviation for the entire operating cycle is approximately the same in both cases. It is shown that the increase in frequency after rest is random and does not depend on the number of operating cycles.

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来源期刊
Inorganic Materials
Inorganic Materials 工程技术-材料科学:综合
CiteScore
1.40
自引率
25.00%
发文量
80
审稿时长
3-6 weeks
期刊介绍: Inorganic Materials is a journal that publishes reviews and original articles devoted to chemistry, physics, and applications of various inorganic materials including high-purity substances and materials. The journal discusses phase equilibria, including P–T–X diagrams, and the fundamentals of inorganic materials science, which determines preparatory conditions for compounds of various compositions with specified deviations from stoichiometry. Inorganic Materials is a multidisciplinary journal covering all classes of inorganic materials. The journal welcomes manuscripts from all countries in the English or Russian language.
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