Calculation of the thermoplastic beryllium oxide slurry molding with ultrasonic activation

U. Zhapbasbayev, G. Ramazanova, V.I. Terekhov, Z. Sattinova
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Abstract

The article presents the results of assessing thermal shrinkage during the formation of beryllium oxide ceramics using the hot casting method. The thermoplastic slurry is a composite system with a dispersion medium (binder) that has a very low thermal conductivity compared to the dispersed phase (beryllium oxide). Ultrasonic treatment reduces the viscosity of the slurry and improves its casting properties. The formation of beryllium oxide slurry is carried out without disrupting the integrity of the system and depends on the casting speed and temperature factors. The combined influence of these factors determines the casting properties of the slurry. Cooling - solidification of the slurry in the casting mold occurs in stages in the liquid, amorphous states with a phase transition, and in the viscoplastic state of the casting. The cooling rate of the casting at all stages depends on the cavity design, the rheological properties of the slurry, and the casting process parameters. It is important to maintain the integrity of the casting due to temperature shrinkage.
超声波活化热塑性氧化铍浆料成型计算
文章介绍了使用热铸造法形成氧化铍陶瓷过程中的热收缩评估结果。热塑性浆料是一种复合系统,其中的分散介质(粘结剂)与分散相(氧化铍)相比具有非常低的热导率。超声波处理可降低浆料的粘度,改善其铸造性能。氧化铍浆料的形成不会破坏系统的完整性,并取决于浇铸速度和温度因素。这些因素的综合影响决定了浆料的铸造性能。冷却--浆料在铸模中的凝固分液态、相变的无定形态和铸件的粘塑态几个阶段进行。铸件在各个阶段的冷却速度取决于型腔设计、浆料的流变特性和铸造工艺参数。由于温度收缩,保持铸件的完整性非常重要。
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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