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Numerical simulation on effects of pore characteristics on strength in porous ceramics

机译:孔隙特性对多孔陶瓷强度影响的数值模拟

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Porous ceramics are expected to be applied as filters, catalysts, etc. in energy related structures, because they have higher heat-resistance and larger specific surface area. Even for such functional applications, their strength should be adequately evaluated to guarantee long-term durability with fulfilling the required functions. However, it is very difficult to investigate strength for porous ceramics with various pore characteristics experimentally. In this work, an analytical procedure was proposed for estimating strength in porous ceramics by taking account of the pore characteristics, such as porosity, pore density and pore radius. In the procedure, porous ceramics were assumed to have the same characteristics of crack distribution as those of pore distribution, and pores were presumed to be surrounded by virtual cracks. For several materials with different pore characteristics, numerical simulations based on the proposed procedure were carried out to estimate their strength and to clarify effects of pore characteristics on strength. It was reconfirmed that the strength of porous ceramics had a general tendency to decrease drastically as increasing porosity. It was also revealed that the strength of porous ceramics were affected by porosity, pore density and average pore radius, respectively. Based on the simulated results, it was suggested that porous ceramics with higher strength can be obtained by including many small pores in producing porous ceramics with a predetermined bulk porosity. In other words, for porous ceramics with the same bulk porosity, various strength characteristics can be attained by controlling the pore size.
机译:多孔陶瓷由于具有较高的耐热性和较大的比表面积,因此有望用作能量相关结构中的过滤器,催化剂等。即使对于此类功能性应用,也应适当评估其强度,以确保在满足所需功能的情况下具有长期耐用性。然而,通过实验研究具有各种孔特征的多孔陶瓷的强度是非常困难的。在这项工作中,提出了一种通过考虑孔隙特征(例如孔隙率,孔隙密度和孔隙半径)来估算多孔陶瓷强度的分析程序。在该程序中,假定多孔陶瓷具有与孔分布相同的裂纹分布特征,并且假定孔被虚拟裂纹包围。对于几种具有不同孔隙特性的材料,基于所提出的程序进行了数值模拟,以估算其强度并阐明孔隙特性对强度的影响。可以肯定的是,多孔陶瓷的强度总体上会随着孔隙率的增加而急剧下降。还发现多孔陶瓷的强度分别受孔隙率,孔密度和平均孔半径的影响。根据模拟结果,建议通过在制造具有预定的整体孔隙率的多孔陶瓷中包括许多小孔,可以获得具有较高强度的多孔陶瓷。换句话说,对于具有相同的整体孔隙率的多孔陶瓷,可以通过控制孔径来获得各种强度特性。

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