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- W4285403005 abstract "Anti-attrition and water lubrication are two areas where ceramics are widely applied. In comparison to pure ceramics, glass-ceramic composite materials are more accessible to machine and manufacture into water lubrication kits. However, current water lubrication theories are mainly applied to ceramic materials such as SiC, Si 3 N 4 , Al 2 O 3 and ZrO 2 . Glass-ceramic water lubrication mechanisms are not involved, in particular, the specific development process of low friction glass-ceramics in the water environment is yet unknown, which limits the application of glass-ceramics. As a result, we developed custom-made γ-LiAlSi 2 O 6 glass-ceramics for a ball and a wafer that were utilized to conduct friction and wear tests. By contrasting the dry and wet friction coefficients between the ball and the wafer, abrasion losses and surface roughnesses of glass-ceramics, particle size distribution and zeta potential of wear debris over time, the water lubrication mechanisms of glass-ceramics in three different friction stages were clarified, the interactive lubrication effects of the electrical double layer and the dynamic fluid pressure ensure that the wet friction coefficient of the glass-ceramics is constant below 0.02. • Water lubrication of a custom-made γ-LiAlSi 2 O 6 is first proposed and detailedly clarify via friction and wear tests. • Mechanical wear and tribochemical reaction of γ-LiAlSi 2 O 6 impel a rapid decrease of wet friction coefficient. • Electrical double layer and dynamic fluid pressure ensure the constant low friction coefficient in water lubrication. • Electrical double layer, dynamic fluid pressure, surface-bound hydration layer dominate water lubrication." @default.
- W4285403005 created "2022-07-14" @default.
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- W4285403005 date "2022-10-01" @default.
- W4285403005 modified "2023-09-25" @default.
- W4285403005 title "An interactive water lubrication mechanism of γ-LiAlSi2O6 glass-ceramics in friction and wear" @default.
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- W4285403005 doi "https://doi.org/10.1016/j.wear.2022.204440" @default.
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