模型压实法制作均匀致密陶瓷体的比较

K. Oleg, D. Edgar, S. Vitaly, C. Prakorb
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引用次数: 4

摘要

提出了一种无宏观缺陷、形状复杂、均质致密粉状体的单轴干燥压实“收集器”方法。它是基于自对准均匀密度区域内的绿色紧凑型设计的特殊模具,以减少模壁摩擦的影响。提出了一个方程,确定密度微分在整个绿色压块的高度,这取决于几何参数,并要求控制运动的模具零件。TPU开发了捕集剂加压技术,并申请了专利。基于集电极法原理,建立了一种螺旋型压实模具,该压实模具采用带滑块的被动成型表面的两个相互交替、相反运动的零件,以36度的角度旋转进行压实。采用有限元法对粉末压实过程进行了模拟。变形过程的仿真结果表明,各层密度在冲床运动方向上随等曲面曲率呈不规则分布。对比仿真结果表明,与常规静态压实相比,集热器法用螺旋型模具压实的绿坯局部变形值的统计离散度降低了48%,与采用非螺旋型模具的集热器压实相比,统计离散度降低了5%。这种方法减小了密度梯度。它可以应用于由纳米粉末制成的陶瓷制品,如叶轮和纵向孔板。
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The comparison of model compaction method to make uniformly dense ceramic bodies
The “collector” method of uniaxial dry compacting homogeneously dense powdered bodies of complex shape without macroscopic defects has been developed. It was based on the self-alignment of uniform density regions within a green compact by design of special mold to reduce die-wall friction effects. An equation was proposed that determined the density differential throughout the height of a green compact, which depended on geometrical parameters, and required the controlled movement of die parts. The technique of pressing with the collector method has been developed and patented by TPU. Based on the principles of the collector method a compaction mold of spiral type was modeled for compaction of cylindrical compacts with two alternating, oppositely-moving parts of the passive shaping surface with sliders, twisted at an angle of 36 degrees. The process of powder compaction was simulated by finite element method. The simulation results of the deformation process in the compacts showed that the density of each layer distributed irregularly with the curvature of isosurfaces in the direction of movement of the punch. The results of comparative simulation showed that the statistical dispersion of local values of the deformation of the green compacts made by collector method with the mold of spiral type is reduced to 48% when compared with conventional static compaction and reduced to 5% when compared with collector compaction using the mold of non-spiral type. This method decreases the density gradients. It can be applied to manufacture ceramic articles from nanopowders like impellers and plates with longitudinal holes.
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