球形蜡质元形成体积压实体的实验模拟

S. Zhilin, N. Bogdanova, O. N. Komarov
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摘要

工业生产金属强度的增长和成品金属产品消费量的增加决定了开发和研究节能技术过程的相关性,这些技术过程旨在通过减少操作次数来降低成本,同时保持产品性能。在机械工程中,采用一种常用的熔模铸造方法,解决了获得尺寸精度高、几何精度高、形状复杂的毛坯的问题。在机械工程中扩大使用这种技术方法来生产毛坯受到许多与投资和陶瓷材料热膨胀有关的物理现象的阻碍,这导致产品最终成本的增加。通过应用一种创新的解决方案,通过压实基于蜡质材料的混合物形成多孔可移动模型,可以消除大量缺陷形成因素。这样解决了材料收缩的问题,增加了陶瓷模具的抗裂性,大大降低了加工在整体工艺作业中所占的份额。新方法的技术试验揭示了目前不能完全消除铸件加工的原因。问题主要在于模型混合料的压实材料的弹性响应,在某些情况下,它会影响压实尺寸的增大。本文考虑了模拟单组分和双组分模型混合物的球形单元的初始填料对粉末体在刚性圆柱形矩阵中受到单边压实的应力-应变状态的影响,以技术上合理的密度值。实验结果以应力-应变关系的形式给出。考虑了压实材料弹性响应最小的压实条件。
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Experimental simulation of volumetric compacts formation from spherical waxy elements
The growth in metal intensity of industrial production and the volume of consumption of finished metal products determine the relevance of development and research of energy efficient technological processes aimed at reducing costs by reducing the number of operations while maintaining product performance. In mechanical engineering, the problem of obtaining blanks with increased dimensional and geometric accuracy and complex configuration is solved by using a common method of investment casting. Expansion of the use of such technological approach to produce blanks in mechanical engineering is hindered by a number of physical phenomena associated with the thermal expansion of investment and ceramic materials, which leads to an increase in the product final cost. A significant number of defect-forming factors can be eliminated by applying an innovative solution consisting in the formation of porous removable models by compacting mixtures based on waxy materials. This solves the problem of material shrinkage and increases the crack resistance of ceramic molds, which significantly reduces the share of machining in the overall volume of technological operations. Technical tests of the new method have revealed the reason why the machining of castings cannot be completely eliminated at present. The problem mainly lies in elastic response of compacted material of the model mixture, which, in some cases, affects the increase in the compacts size. This paper considers the effect of initial packing of spherical-shaped elements simulating one- and two-component model mixtures on the stress-strain state of a powder body subjected to unilateral compaction in a rigid cylindrical matrix to technologically justified density values. The results of the experiment are presented in the form of stress-strain relations. Preferable conditions of compact formation with minimal values of elastic response of the compacted material are considered.
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