FORECAST EVALUATION OF HEAT PROTECTION AND MECHANICAL PROPERTIES OF INSULATING CONSTRUCTION CERAMIC MATERIALS

L. Shchukina, Yaroslav Olegovych Halushka, L. Yashchenko, S. L. Lihezin
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Abstract

An integrated approach to determine the rational design of wall ceramic products based on modeling their behavior under operating conditions is proposed. This approach was used in the development of technology for heat–efficient insulating construction ceramic materials for energy–saving construction. For two models of porous–hollow ceramic products with a porous frame (40 % of voids) and a dense frame (60 % of voids), a predictive assessment of their heat–shielding and mechanical properties was carried out. Calculations of the equivalent coefficient of thermal conductivity of models based on Fourier’s law established that with a decrease in the voidness of products with a porous wall, the coefficient of their thermal conductivity decreases by 12 %, which improves the heat–shielding properties. Based on the results of computer simulation of the behavior of models under the influence of static power loads, it was determined that porosity of the ceramic framework of products leads to degradation of mechanical strength almost proportionally to a decrease in voidness. The stress–strain state of 3D models of ceramic structures with different pore geometry (spherical, globular, ellipsoidal) is analyzed and it is shown that stresses are concentrated in the contact zones of a ceramic matrix with pores. It is shown that the most durable is the structural model with spherical pores. The expediency of organizing such a structure, the need to strengthen the ceramic matrix of materials and zones surrounding the pores, as the most vulnerable structural sites, is shown. The results of predictive calculations have been experimentally confirmed in the development of technology for structural and heat–insulating composite–type ceramic materials based on low–melting loam and ash microspheres, which provide a given structural picture of the ceramic material.
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绝缘建筑陶瓷材料的热防护及力学性能预测评价
提出了一种基于对墙体陶瓷产品在运行条件下的行为建模的综合方法来确定墙体陶瓷产品的合理设计。该方法已应用于节能建筑隔热陶瓷材料的技术开发。针对多孔框架(空隙率为40%)和致密框架(空隙率为60%)两种多孔空心陶瓷产品模型,对其热屏蔽性能和力学性能进行了预测评估。根据傅里叶定律计算模型的等效导热系数,发现随着多孔壁产品空隙度的减小,其导热系数降低12%,热屏蔽性能得到改善。基于静功率载荷作用下模型行为的计算机模拟结果,确定了产品陶瓷框架的孔隙率导致机械强度的下降几乎与孔隙率的降低成正比。分析了不同孔隙几何形状(球形、球形、椭球形)的陶瓷结构三维模型的应力-应变状态,结果表明,应力集中在具有孔隙的陶瓷基体的接触区。结果表明,具有球形孔隙的结构模型最耐用。组织这种结构的便利性,需要加强材料的陶瓷基体和孔隙周围的区域,作为最脆弱的结构部位。预测计算结果在低熔点壤土和灰分微球结构和隔热复合陶瓷材料的技术开发中得到了实验证实,提供了陶瓷材料的结构图。
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