基于微观结构的 CGI 裂纹萌发和生长 CZE 模型:石墨颗粒形态和间距的影响

Solids Pub Date : 2024-03-01 DOI:10.3390/solids5010009
Xingling Luo, K. Baxevanakis, Vadim V. Silberschmidt
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引用次数: 0

摘要

压实石墨铁(CGI)是一种工程材料,由于其独特的微观结构和具有竞争力的价格,有望填补鳞片石墨铁和球化石墨铁之间的应用空白。尽管其用途广泛,过去也有大量研究,但其复杂的微观结构往往导致研究人员将重点放在基于多颗粒代表性体积元素的模型上,经常忽略单个颗粒形状和相邻颗粒之间的相互作用对裂纹产生和扩展的影响。本研究的重点是石墨形态和夹杂物之间的间距对 CGI 微尺度机械和断裂行为的影响。在这项工作中,我们建立了基于内聚区元素的二维模型,该模型具有不同的石墨形态和间距,用于研究机械行为以及裂纹的萌发和扩展。使用 ImageJ 和扫描电子显微镜对 CGI 的微观结构进行了表征和分析。在模拟中,假定石墨颗粒和金属基体具有各向同性和延展性。在研究的整个域中采用了内聚区元素(CZE)。结果发现,石墨形态对界面脱粘的影响可以忽略不计,但结节状夹杂物可以显著增强材料的刚度,并有效阻碍裂纹在基体内的扩展。此外,石墨颗粒之间的小间距会加速裂纹的生长。这些结果可用于设计和制造更好的金属基复合材料。
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Microstructure-Based CZE Model for Crack Initiation and Growth in CGI: Effects of Graphite-Particle Morphology and Spacing
Compacted graphite iron (CGI) is an engineering material with the potential to fill the application gap between flake- and spheroidal-graphite irons thanks to its unique microstructure and competitive price. Despite its wide use and considerable past research, its complex microstructure often leads researchers to focus on models based on representative volume elements with multiple particles, frequently overlooking the impact of individual particle shapes and interactions between the neighbouring particles on crack initiation and propagation. This study focuses on the effects of graphite morphology and spacing between inclusions on the mechanical and fracture behaviours of CGI at the microscale. In this work, 2D cohesive-zone-element-based models with different graphite morphologies and spacings were developed to investigate the mechanical behaviour as well as crack initiation and propagation. ImageJ and scanning electron microscopy were used to characterise and analyse the microstructure of CGI. In simulations, both graphite particles and metallic matrix were assumed isotropic and ductile. Cohesive zone elements (CZEs) were employed in the whole domain studied. It was found that graphite morphology had a negligible effect on interface debonding but nodular inclusions can notably enhance the stiffness of the material and effectively impede the propagation of cracks within the matrix. Besides, a small distance between graphite particles accelerates the crack growth. These results can be used to design and manufacture better metal-matrix composites.
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