首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >Erosive wear of borosilicate glass edges by unidirectional low velocity impact of steel balls
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Erosive wear of borosilicate glass edges by unidirectional low velocity impact of steel balls

机译:钢球的单向低速冲击对硼硅玻璃边缘的冲蚀磨损

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摘要

The erosive wear of borosilicate glass edges by randomly located unidirectional impacts of steel balls was investigated experimentally. Glass edges were damaged by overlapping chips, while flat surfaces remained unaffected by the impacts. For a given impact velocity, the extent of edge damage grew rapidly, but then became saturated, showing no further increase with increasing number of impacts. This saturation of damage was attributed to the evolution of edge geometry, characterized by an increase of the effective edge included angle and the width of the damage zone. Tests on chamfered edges demonstrated a critical chamfer width above which chipping was reduced significantly. Chamfering did not affect chipping when the chamfer width was below the critical value. The critical chamfer width was related to the size of the chips formed by impact, and therefore it increased with increasing impact velocity and decreasing edge included angle. Cyclic crack growth due to repeated impacts at a given location was found to be a common mechanism of chip removal. The effect of edge geometry on edge chipping was investigated further by quasi-static chipping tests on edges of various included angles, which showed a significant increase of the forces required to create chips as the included angle of the edge increased.
机译:实验研究了随机定位的钢球单向冲击对硼硅玻璃边缘的腐蚀磨损。玻璃边缘被切屑重叠损坏,而平坦的表面则不受冲击的影响。对于给定的冲击速度,边缘损坏的程度迅速增加,但随后达到饱和,随着冲击次数的增加,边缘损伤的程度不再增加。损坏的这种饱和归因于边缘几何形状的演变,其特征在于有效边缘包含角度和损坏区域宽度的增加。对倒角边缘的测试表明,关键的倒角宽度可大大减少切屑。当倒角宽度低于临界值时,倒角不会影响切屑。临界倒角宽度与通过冲击形成的切屑的尺寸有关,因此,其随冲击速度的增加和边缘夹角的减小而增加。发现由于在给定位置的反复冲击而产生的周期性裂纹扩展是切屑去除的常见机制。通过在各种夹角的边缘上进行准静态切屑测试,进一步研究了边缘几何形状对切角的影响,结果表明,随着切角的增加,产生切屑所需的力显着增加。

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