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Simulation of Effect of Pore Structure on Coke Strength Using 3-dimensional Discrete Element Method

机译:孔穴结构对焦炭强度影响的三维离散元模拟

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The compression and cleavage simulations of cylindrical coke sample using 3-dimensional Discrete Element Method are carried out to investigate failure phenomena of coke, and the results are discussed by comparing with experimental results.The following assumptions are applied to model coke. Coke matrix is an aggregation of primary particles which are connected by parallel bonds to be broken when the stress exceeds its corresponding bond strength. The voids between the primary particles are considered as pores and ‘large pore balls’ are inserted intentionally to investigate the effect of large pores on the coke strength by regulating their size and location.According to the results, porosity is the most dominant factor for coke strength when it is compared with the strength of coke matrix texture. When large pores are distributed regularly they strengthen the coke compared with the randomly arranged cases. In the cleavage test, critical strength of coke sample is proportional to the exponential of porosity and minimum coke matrix area fraction of crack propagated cross sections.
机译:利用三维离散元方法对圆柱状焦炭样品进行压缩和裂解模拟,研究了焦炭的破坏现象,并与实验结果进行了比较讨论。以下假设应用于模型焦炭。焦炭基体是一次颗粒的聚集体,当应力超过其相应的结合强度时,它们会通过平行键连接而断裂。初级粒子之间的空隙被视为孔洞,有意插入``大孔球''以通过调节大小和位置来研究大孔洞对焦炭强度的影响。结果,孔隙率是焦炭的最主要因素与焦炭基体织构强度相比时的强度。当大孔规则分布时,与随机排列的情况相比,它们会增强焦炭。在解理试验中,焦炭样品的临界强度与孔隙率的指数和裂纹扩展横截面的最小焦炭基质面积分数成正比。

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