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Effects of hole layout, braking torque and frictional heat on crack initiation from small holes in one-piece brake discs

机译:孔布局,制动扭矩和摩擦热对一件式制动盘中小孔的裂纹启动

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Brake discs have some holes in the flange for promoting heat dissipation as well as refreshing the pad surfaces. Onepiece brake discs are desirable even for large sizes in order to reduce the production cost. However, cracks exceptionally occurred from some holes in the flange during braking under extremely severe test condition for one-piece brake discs. On the other hand, no cracks were observed under the same condition for two-pieces brake discs consisting of a hub and a flange. The objective of the present work is to show why cracks occur in the case of one-piece brake discs. Cyclic braking tests under extremely severe condition were carried out using large one-piece brake discs having some holes in their flange. When the number of braking cycles was beyond 300, some tiny cracks occurring around holes were found. They grew in the radial direction of the brake discs. In order to examine whether braking torque is a driving force for crack initiation or not, the time interval was altered 10 times longer than the normal condition. The experimental results showed that the number of total cracks around holes after 300 times of braking decreased as the braking interval was extended. The crack length also decreased. These results indicate that the braking torque itself does have less direct effect on crack initiation. Additional test results indicated that heat cycles due to braking caused thermal cyclic strain around holes and 0-compression strain cycles acting discs beyond the yielding stress in compression lead compression-tension cyclic stress. Such cyclic stress causes crack initiation around holes.
机译:制动盘在法兰中具有一些孔,用于促进散热以及刷新垫表面。即使对于大尺寸,也希望单件制动盘是为了降低生产成本。然而,在制动期间在一个件式制动盘的极其严重的测试条件下制动期间,在制动期间,在法兰中的一些孔出现裂缝。另一方面,在由轮毂和凸缘组成的两件式制动盘的相同条件下没有观察到裂缝。本作工作的目的是展示为什么在一件式制动盘的情况下发生裂缝。使用在其凸缘中具有一些孔的大型单件式制动盘进行极其严重的条件下的循环制动试验。当制动循环的数量超过300时,发现孔周围发生的一些微小裂缝。它们在制动盘的径向方向上增长。为了检查制动扭矩是否是用于裂纹启动的驱动力,时间间隔比正常情况更长10倍。实验结果表明,随着制动间隔延伸300倍后,300倍后孔周围的总裂缝数。裂缝长度也降低。这些结果表明制动扭矩本身对裂纹引发产生的直接影响。另外的测试结果表明,由于制动引起的热循环导致孔周围的热循环应变和0-压缩应变循环作用的圆盘,其在压缩引线压缩循环应力中的屈服应力之外。这种循环应力导致孔周围的裂纹开始。

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