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首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >Tribology performance, airborne particle emissions and brake squeal noise of copper-free friction materials
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Tribology performance, airborne particle emissions and brake squeal noise of copper-free friction materials

机译:摩中性能,空气颗粒排放和铜摩擦材料的刹车尖噪声

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摘要

Copper and its alloy have been widely used in the formulation of non-asbestos organic (NAO) friction materials as reinforcements and/or additives. But U.S.A has raised a legislation to reduce the copper content in friction materials due to the toxicity of copper in wear debris. Thus, there is a need to develop copper-free friction materials which also owns the desired tribology performance. In the present study, two new copper-free non-asbestos organic (NAO) friction materials were developed by replacing the copper fiber with steel fiber (named SFM) or ceramic fiber (named CFM). Friction and wear behaviors, airborne wear particle emissions and brake squeal noise of these two copper-free friction materials were evaluated and compared with a reference copper containing friction material (RFM) by using a pin-on-disc test rig. Results show that all friction materials have comparable friction coefficients, and the specific wear rates of SFM and CFM are larger than that of RFM. The mean fractal dimension of RFM surface is larger than those of SFM and CFM surfaces. For the airborne particle emissions, RFM presents the lowest particle number emissions and particle mass concentrations (PMCs) of PM10 (particles smaller than 10 mu m) and SFM presents the highest values of these two results. For brake squeal noise, the brake squeal noise of all friction materials has comparable A-weighted sound pressure levels (SPLs). It can be concluded that the replacement of copper fiber with steel and ceramic fibers can obtain comparable tribology performance and brake squeal noise, but it will increase the particle emissions.
机译:铜及其合金已广泛用于非石棉有机(NaO)摩擦材料作为增强剂和/或添加剂的配方。但是,美国已经提出了一种立法,以减少由于佩戴碎片中铜的毒性而在摩擦材料中降低铜含量。因此,需要开发出具有所需摩擦性能的无铜摩擦材料。在本研究中,通过用钢纤维(命名为SFM)或陶瓷纤维(命名为CFM)来开发两种新的无铜非石棉有机(NaO)摩擦材料。通过使用销盘盘试验台评价摩擦和磨损行为,使用这两个无铜摩擦材料的制动尖噪声和制动尖端噪声,并与含有引脚盘试验台的参考铜铜铜(RFM)进行比较。结果表明,所有摩擦材料都具有相当的摩擦系数,SFM和CFM的特定磨损率大于RFM的磨损率。 RFM表面的平均分形尺寸大于SFM和CFM表面的分形尺寸。对于空中颗粒排放,RFM呈现最低粒子数排放和PM10(小于10μm颗粒)的粒子数排放和粒子质量浓度(PMC),SFM呈现了这两种结果的最高值。对于制动尖叫声噪声,所有摩擦材料的制动尖端噪声具有相当的A加权声压水平(SPL)。可以得出结论,用钢和陶瓷纤维更换铜纤维可以获得可比的摩擦学性能和制动尖叫声噪声,但它会增加颗粒排放。

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