用微尺度模型评价sio2基陶瓷耐火材料的局部力学性能

IF 0.3 Q4 MECHANICS
A. Grigoriev, A. Dmitriev, E. V. Shil’ko
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引用次数: 1

摘要

建立具有发展前景的耐火材料的多尺度力学模型是固体力学领域亟待解决的问题。其中一个原因是这些模型在创建高级耐火材料的数字孪生时的适用性。本文作者最近开发并验证了一种广泛应用于冶金的sio2基耐火材料的介观模型。该模型考虑了SiO2耐火材料在10-5 ~ 10-2 m尺度范围内的结构特征和在大应变率范围内的力学行为特征。然而,充分利用该模型需要了解介观结构元素的局部力学特性,特别是由小于102 pm的细颗粒形成的高多孔区域。对这些区域的有效力学特性进行实验研究是一项极其困难的任务。因此,本工作的目的是通过对SiO2耐火材料高孔隙区的微观数值模拟,获得理论估计,并确定其整体力学特性。为了研究这一问题,开发了二维模型样品,模拟耐火材料的细粒区域,并以不同的孔隙率和孔隙结构类型(通道状或封闭型)为特征。试样的杨氏模量和强度特性的变化区间取决于孔隙度和孔隙空间的形态。确定了封闭型孔隙率对耐火材料整体力学特性的贡献;然而,与通道状孔隙相比,这种孔隙的体积分数很低。所得数据将作为中尺度耐火材料模型的输入参数,用于解决微观结构参数对sio2基耐火材料宏观力学和热力学性能影响研究的迫切问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluation of local mechanical properties of SiO2-based ceramic refractories using microscale modeling
The development of multiscale mechanical models of promising refractory materials is an urgent problem in the mechanics of solids. One of the reasons is the applicability of these models when creating digital twins of advanced refractories. The authors of this paper recently developed and validated a mesoscopic model of the SiO2-based refractory material that is widely used in metallurgy. This model takes into account the characteristic structural features of SiO2 refractory in the scale range of 10-5 - 10-2 m and the mechanical behavior features in a wide range of strain rates. However, the full use of the model requires knowledge of local mechanical properties of mesoscopic structural elements, in particular, the highly porous regions, which are formed by fine grains less than 102 pm in size. An experimental study of effective mechanical characteristics of such regions is an extremely difficult task. Therefore, the purpose of this work is to obtain the theoretical estimate using the microscale numerical simulation of highly porous regions of SiO2 refractory material and to determine their integral mechanical characteristics. To study this problem, the two-dimensional model samples are developed that simulate fine-grained regions of the refractory and are characterized by different porosity and pore structure types (channel-like or closed type). The intervals of the variation of Young’s modulus and strength characteristics of the samples are obtained depending on the porosity and morphology of the pore space. The contribution of the closed-type porosity to the integral mechanical characteristics of the refractory is determined; though, the volume fraction of such pores is low as compared to that of the channel-like pores. The obtained data will be used as input parameters of mesoscale refractory models for solving the urgent problems related to the study of the effect of microstructure parameters on the macroscopic mechanical and thermomechanical properties of SiO2-based refractories.
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来源期刊
CiteScore
0.90
自引率
66.70%
发文量
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