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Design of high performance CMC brake discs

机译:高性能CMC制动盘设计

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摘要

Ceramic matrix composite (CMC) materials based on 2D-earbon fibre preforms show high heat-absorption capacities and good tribological as well as thermomechanical properties. To take advantage of the full lightweight potential of these newmaterials in high performance automotive brake discs, the thermal conductivity transverse to the friction surface has to be high in order to reduce the surface temperature. Experimental tests showed, that lower surface temperatures prevent over heating of the brake's periphery and stabilizes the friction behaviour. In this study different design approaches with improved transverse heat conductivity have been investigated by finite element analysis. C/C-SiC bolts as well as SiC coatings and combinations ofthem have been investigated and compared with an orthotropic brake disc, showing a reduction of temperature of up to 50%. Original sized brake discs with C/C-SiC have been manufactured and tested tinder real conditions which verified the calculations.Using only low-cost CMC materials and avoiding any additional processing steps, the potential of C/C-SiC brake discs are very attractive under tribological as well as tinder economical aspects.
机译:基于2D-Egbon纤维预制件的陶瓷基质复合(CMC)材料显示出高吸收能力和良好的摩擦学以及热机械性能。为了利用这些新材料的全部轻质电位在高性能汽车制动盘中,横向摩擦表面的导热率必须高,以降低表面温度。实验测试显示,下表面温度防止过度加热制动的周边并稳定摩擦行为。在这项研究中,通过有限元分析研究了具有改善的横向导热率的不同设计方法。 C / C-SIC螺栓以及SIC涂层和血液的组合并与正交制动盘进行比较,表现出高达50%的温度降低。具有C / C-SIC的原始尺寸制动盘已经制造和测试了验证了计算的真实条件。只有低成本的CMC材料并避免任何额外的处理步骤,C / C-SIC制动盘的潜力非常有吸引力根据摩擦学以及火种经济方面。

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