Development of the algorithm for calculating the optimal molding modes of the BeO slurry using various rheological models

IF 0.3 Q4 PHYSICS, MULTIDISCIPLINARY
Z. Sattinova, B. Assilbekov, G. Ramazanova, K.M. Dyusenov
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引用次数: 1

Abstract

This paper presents the results of calculating a mathematical model of the flow and heat transfer of thermoplastic beryllium oxide in a round channel of a molding installation. An algorithm for calculating the system of equations based on the Herschel-Bulkley rheological model has been developed. The finite-difference analogue of the equations system of motion, continuity, and energy is solved numerically using the CrankNicholson difference scheme. The three-parameter equation is used to test the consistency of experimental, data, and how adequately the physical features of the non-isothermal flow of the slurry convey comparing to the Shvedov-Bingham model. The calculation results illustrate that the proposed model reflects the most important features of the thixotropic flow character of the slurry and is in better agreement with the experimental data of viscoplastic fluids. It provides the calculations of speed of viscous-plastic flow of the slurry based on Shvedov-Bingham and Herschel Bulkley’s two rheological models considering the peculiarities of coagulation structure formation and flow mechanism with boundary conditions. As a result of calculations, the fields of velocity, temperature, and density were obtained, which describe the regularities of the flow and heat transfer of a thermoplastic slurry. The change in the Nusselt criterion along the length of the shaping cavity is shown, which coincides with the analytical solution of Nusselt under first kind boundary conditions. The optimal conditions for the process of ceramics molding by hot casting method have been found, allowing to obtain a hardened product with a homogeneous structure of beryllium ceramics at the outlet.
利用各种流变模型计算BeO浆料最佳成型模式的算法开发
本文介绍了热塑性氧化铍在成型装置圆槽内流动和传热的数学模型的计算结果。本文提出了一种基于Herschel-Bulkley流变模型的方程组计算算法。运动、连续性和能量方程组的有限差分模拟用曲克尼科尔森差分格式进行了数值求解。三参数方程用于测试实验数据的一致性,以及与Shvedov-Bingham模型相比,浆料非等温流动的物理特征是否充分传达。计算结果表明,该模型反映了浆体触变流动特性的最重要特征,与粘塑性流体的实验数据吻合较好。基于Shvedov-Bingham和Herschel Bulkley两种流变模型,考虑混凝结构形成的特殊性和具有边界条件的流动机理,给出了浆料粘塑性流动速度的计算。通过计算,得到了热塑性浆料的速度场、温度场和密度场,它们描述了热塑性浆料的流动和传热规律。得到了Nusselt判据沿成形腔长度的变化规律,这与第一类边界条件下的Nusselt判据的解析解一致。找到了陶瓷热铸造成型工艺的最佳条件,可获得出口铍陶瓷结构均匀的硬化产品。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
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50.00%
发文量
32
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