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Role of titanium carbide and alumina on the friction increment for Cu-based metallic brake pads under different initial braking speeds

机译:不同初始制动速度下碳化钛和氧化铝对Cu基金属制动垫摩擦增量的作用

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To understand the effect of abrasives on increasing friction in Cu-based metallic pads under different braking speeds, pad materials with two typical abrasives, titanium carbide (TiC) and alumina (Al_(2)O_(3)), were produced and tested using a scale dynamometer under various initial braking speeds (IBS). The results showed that at IBS lower than 250 km/h, both TiC and Al_(2)O_(3)particles acted as hard points and exhibited similar friction-increasing behavior, where the increase in friction was not only enhanced as IBS increased, but also enhanced by increasing the volume fraction of the abrasives. However, at higher IBS, the friction increase was limited by the bonding behavior between the matrix and abrasives. Under these conditions, the composite containing TiC showed a better friction-increasing effect and wear resistance than the composite containing Al_(2)O_(3)because of its superior particle-matrix bonding and coefficient of thermal expansion (CTE) compatibility. Because of the poor interface bonding between the matrix and Al_(2)O_(3), a transition phenomenon exists in the Al_(2)O_(3)-reinforced composite, in which the friction-increasing effect diminished when IBS exceeded a certain value.
机译:要了解磨料对不同制动速度下Cu基金属焊盘中摩擦的影响,用两个典型的研磨剂,碳化钛(TiC)和氧化铝(Al_(2)O_(3))的垫材料,并使用各种初始制动速度(IBS)下的刻度测力计。结果表明,在低于250公里/小时的IBS,TIC和AL_(2)O_(3)颗粒作用为硬点并表现出类似的摩擦力行为,其中摩擦的增加不仅随着IBS增加而增强,而且还通过增加磨料的体积分数来增强。然而,在较高的IBS处,摩擦增加受基质和研磨剂之间的粘合行为限制。在这些条件下,含有TIC的复合材料显示出比含有Al_(2)O_(3)的复合材料更好的摩擦效果和耐磨性,因为其优越的粒子 - 基质键合和热膨胀系数(CTE)相容性。由于矩阵和AL_(2)O_(3)之间的界面粘合较差,因此在AL_(2)O_(3) - 重新施加的复合材料中存在过渡现象,其中当IBS超过某一时,摩擦效应减少价值。

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