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Frictional Performance and Temperature Rise of a Mining Nonasbestos Brake Material during Emergency Braking

机译:矿用非石棉制动材料在紧急制动过程中的摩擦性能和温升

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By simulating emergency braking conditions of mine hoisters, tribological experiments of a mining nonasbestos brake material sliding on E355CC steel friction disc investigated a pad-on-disc friction tester. It is shown that, under combined influence of braking velocity and pressure, the lubricating film and micro-convex-apices on wear surface would have complex physicochemical reactions which make the instant friction coefficient rise gradually while the instant surface temperature rises first and then falls. With the antifriction effect from lubricating film and the desquamating of composite materials, the mean friction coefficient decreases first, then rises, and decreases again with the increasing of initial braking velocity. And with the existence of micro-convex-apices and variation from increment ratio of load and actual contacting area, it rises first and then falls with the increasing of braking pressure. However, the mean surface temperature rises obviously with the increasing of both initial braking velocity and braking pressure for growth of transformed kinetic energy. It is considered that the friction coefficient cannot be considered as a constant when designing brake devices for mine hoisters. And special attention should be paid to the serious influence of surface temperature on tribological performance of brake material during emergency braking.
机译:通过模拟矿井提升机的紧急制动条件,在E355CC钢制摩擦盘上滑动的矿用非石棉制动材料的摩擦学实验研究了盘式摩擦试验仪。结果表明,在制动速度和压力的共同作用下,磨损表面的润滑膜和微凸区会发生复杂的物理化学反应,使瞬时摩擦系数逐渐升高,而瞬时温度先升高后降低。由于润滑膜的减摩作用和复合材料的脱脂作用,平均摩擦系数先减小,然后增大,然后随着初始制动速度的增加而再次减小。并且随着微凸面的存在以及载荷增量比和实际接触面积的变化,随着制动压力的增加,其先上升后下降。但是,平均表面温度随着初始制动速度和制动压力的增加而明显升高,以增加转化动能。在设计用于矿井提升机的制动装置时,不能将摩擦系数视为常数。在紧急制动过程中,应特别注意表面温度对制动材料的摩擦学性能的严重影响。

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