Study of strain-stress state of flat knives for cutting thin-walled pipes

S. Eron’ko, E. V. Oshovskaya, O. A. Kovaleva
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Abstract

Cutting of pipes into measured lengths on-line of pipe welding mill by disc saws and by facilities of abrasive cutting requires special measures of safety of personal. Besides, the necessity of frequent change of cutting instrument results in losses of production time. To eliminate the drawbacks, a study was initiated related to creation of shears which could enable to accomplish a quality transverse cutting of thin-walled pipes of small diameter by flat knives with various form of the working edges. A methodology and the results of study of strain-stress state of flat knives with application of physical and mathematical simulation of the process of transverse cutting of thin-walled pipes of small diameter presented. At the physical simulation using a polarization-optical installation, the pictures of deformation centers arising in the lower part of the knife in the zone of contact of its cutting edges with the body of the hollow circular profile being cut by it were obtained. In the experiment, models of three types of knives made of organic glass on a scale of 1:1 were used. Cutting edges of the knives for cutting pipes of 25 mm outer diameter, wall thickness of 2 mm were wedge-shaped, convex semicircular and concave. The data from studies of the loaded state of transparent knife models served as the basis for mathematical simulation of the strain-stress state of the shears cutting tool in the SolidWork application package using a strength analysis module that implements the finite element method in the form of tetrahedrons. The current values of the pipe cutting force used in the mathematical model were preliminarily calculated according to the previously proposed dependence, taking into account the strength of the hollow profile material and the area of the cut layer of its cross section for a given relative displacement of the cutting edges of the knife. The results of mathematical modeling were the pictures of deformations and equivalent stresses of the cutting part of the knife, determined according to the third theory of strength. A qualitative similarity has been established for the distribution patterns of stress fields recorded using the polarization-optical method on knife models and obtained in mathematical modeling for working samples of the shears cutting tool operated under the conditions of pipe welding mills. The proposed mathematical model makes it possible to estimate the values of the maximum equivalent stresses in the working part of a flat knife, taking into account the shape of its cutting edges, as well as the force required for cutting a thin-walled pipe into measured lengths with the corresponding dimensions of its cross-section and the strength of the material.
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薄壁管材平刀的应变-应力状态研究
用圆盘锯和磨料切割设备将管道在线切割成测量长度,需要采取特殊的人身安全措施。此外,频繁更换切削刀具的必要性造成了生产时间的损失。为了消除这些缺点,开始了一项有关剪切机的研究,该剪切机可以通过具有各种形式工作刃的平刀完成小直径薄壁管的高质量横向切割。介绍了一种利用小直径薄壁管材横切过程的物理和数学模拟研究平刀应变-应力状态的方法和结果。利用偏光装置进行物理模拟,得到了刀的下半部分在刀刃与被切空心圆型材本体接触区域内产生的变形中心图像。实验中使用了三种有机玻璃材质的刀具模型,比例为1:1。切割外径25mm、壁厚2mm的管道用刀具的切削刃为楔形、凸半圆和凹形。透明刀模型加载状态研究数据作为SolidWork应用程序包中剪切刀具应变-应力状态数学模拟的基础,采用四面体形式的强度分析模块实现有限元法。在给定刀刃相对位移的情况下,考虑到空心型材材料的强度及其截面切割层的面积,根据先前提出的依赖关系,初步计算了数学模型中所用的管材切割力的电流值。数学建模的结果是根据强度第三理论确定的刀切割部分的变形和等效应力图。用偏振光学方法记录的刀模型应力场分布模式与在管焊机条件下运行的剪切刀具工作样品的数学建模结果具有定性的相似性。所提出的数学模型使得在考虑其切削刃形状的情况下,估计平刀工作部分的最大等效应力值以及将薄壁管切割成具有相应截面尺寸和材料强度的测量长度所需的力成为可能。
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