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Elastic stress field model and micro-crack evolution for isotropic brittle materials during single grit scratching

机译:单手砂刮板上各向同性脆性材料的弹性应力场模型及微裂纹演化

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摘要

An analytical model for the elastic stress field in isotropic hard and brittle materials during scratching is presented. The model considers the entire elastic stress field and the effect of material densification that was ignored in past studies, and is developed under a cylindrical coordinate system to make the modeling process simpler. Based on the model's predictions, the location and sequence of crack nucleation are estimated and the associated mechanisms are discussed. A single grit scratching experiment with an increasing scratch depth up to 2 mu m is conducted for two types of optical glasses representing isotropic brittle materials: fused silica and BK7 glasses. It is found that the model's predictions correlate well with experimental data. Median cracks are found to be formed first during scratching, and the corresponding depth of the scratch sets the basis for determining the critical depth for brittle to ductile machining. Lateral cracks are initiated in the plastic yielding region and deflect to the work surface to cause material removal, while Hertzian cracks interact with lateral cracks to help remove lateral-cracked material. Furthermore, it is found that, owing to its open network molecular structure, fused silica has a much worse ductile machinability than the BK7 glass.
机译:介绍了在刮擦过程中各向同性硬化材料弹性应力场的分析模型。该模型考虑了整个弹性应力场和过去研究忽略的材料致密化的效果,并且在圆柱坐标系下开发,以使建模过程更简单。基于模型的预测,估计裂缝成核的位置和序列并讨论了相关机制。对于代表各向​​同性脆性材料的两种类型的光学眼镜,对具有增加的划痕深度的单个砂砾刮擦实验,这是代表各向同性脆性材料的两种光学玻璃:熔融二氧化硅和BK7玻璃。结果发现,模型的预测与实验数据相相关。发现中值裂缝首先在刮伤期间形成,并且对应的划痕深度设定了确定脆性加工脆性的临界深度的基础。在塑料产生区域中启动横向裂缝并偏转到工作表面以使材料去除,而赫兹裂缝与横向裂缝相互作用以帮助去除横向裂纹的材料。此外,发现,由于其开放的网络分子结构,熔融二氧化硅具有比BK7玻璃更差的延展性加理性。

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