考虑材料不同模块性的氟塑料弯曲带的特殊特性

IF 0.3 Q4 ENGINEERING, MULTIDISCIPLINARY Science & Technique Pub Date : 2019-07-02 DOI:10.21122/2227-1031-2019-18-3-185-194
G. A. Vershina, L. E. Reut
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引用次数: 2

摘要

本文研究了一种将带形工件缠绕在圆柱形口径芯轴上的密封圈生产工艺,该工艺具有后续的耐载能力,并进一步切割环内螺旋,并研究了采用不含热稳定操作的工件冷成形方法获得产品的可能性。考虑到氟塑料即使在非常低的温度下也是一种高塑性材料,这种技术看起来相当真实。因此,在芯轴上缠绕带,在不加热的情况下,在完成松弛过程所需的时间内,在力作用的条件下,螺旋工件的耐久性,以及随后的环切割,将允许获得所需尺寸的成品环。然而,氟塑料具有特定的力学性能和一些特定的特征,这些特征在变形过程中显现出来。它的变形行为与低分子材料的行为有很大的不同,因此它需要一个坚实的方法,同时利用现有的理论基础和发展的计算方法。考虑到氟塑料是高密度材料,具有高结晶度的结构,其在力场条件下的变形行为机制主要类似于金属的行为,可以采用固体力学中公认的氟塑料制品的计算方法和途径。然而,应用的计算公式需要一定的修正和适应机械氟塑性性能的特定特征,其中之一是它在拉伸和压缩时的不同刚度,这在芯轴上缠绕带工件的情况下显示出来。氟塑料是一种具有多种模块性的材料,其压缩时的刚度高于拉伸时的刚度,因此在带弯曲的情况下,截面的中性轴从重心向压缩纤维区域偏移,拉伸面积增大。拉伸时的高弹性和该面积的增大导致大量弹性变形的积累,造成卸载后的弹跳和成品尺寸的变化。在计算和设计芯轴工具时,必须考虑到这些事实,还必须记住材料的各种模块化以及因此导致均匀刚性的部分可能采取其他形状的可能性。作者已经为这两个版本的章节开发了计算方法,这些方法直接或间接地考虑到具有各种模块化的材料,并且彼此不矛盾,并且通过实验数据相当精确地证明了这一点。
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Specific Features of Fluoroplastic Band Bending with Due Account of Various Modularity of Material
The paper considers a technological process for production of sealing rings by winding a band work-piece on a cylindrical caliber mandrel with subsequent endurance under load and further cutting of a spiral in rings and also studies the possibility to obtain products while using a method for cold forming of a work-piece which excludes thermal stabilization operation. Taking into account the fact that fluorine plastic is a high-plastic material even at very low temperatures such technology looks quite real. Therefore winding of a band on a mandrel, endurance of a spiral work-piece without heating but under conditions of force action within the time which is necessary for completion of relaxation processes, and the subsequent cutting in rings will allow to obtain finished ring products of the required size. However fluoroplastic has specific mechanical properties and a number of specific features which are revealed during deformation process. Its deformation behavior considerably differs from behavior of low-molecular materials and therefore it requires a solid approach while using the existing theoretical base and developing calculation methodologies. While taking into consideration the fact that fluorine plastic is high density material and has structure with high degree of crystallinity, the mechanism of deformation behavior in it under conditions of a force field is mainly similar to metal behavior that allows to use methods and approaches for calculation of fluoroplastic products which are accepted in mechanics of solid bodies. However the applied calculating formulae require a certain correction and adaptation to specific features of mechanical fluoroplastic properties, one of which is its various rigidity at stretching and compression that is revealed in case of winding band work-piece on a mandrel. Fluorine plastic is a material with various modularity and its rigidity is higher during compression than under stretching and consequently in the case of band bending a neutral axis of section is displaced from the center of gravity to the area of compressed fibers, and the area of stretching is increasing. High elasticity at stretching and increase of this area lead to large accumulation of elastic deformations causing springing after unloading and changes in size of a finished product. These facts must be taken into account while calculating and designing a mandrel tool, it is also necessary to keep in mind various modularity of a material and possibility that a section being led to an uniform rigidity may take some other shape due to this. Calculation methodologies have been developed by the authors for both versions of section that take into consideration directly or indirectly a material with various modularity and which do not contradict each other and which are rather precisely proved by experimental data.
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来源期刊
Science & Technique
Science & Technique ENGINEERING, MULTIDISCIPLINARY-
自引率
50.00%
发文量
47
审稿时长
8 weeks
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