稻壳颗粒尺寸对树脂基刹车片性能的影响——从农业废弃物用作增强材料的文献综述、环氧树脂的化学聚合反应到实验

Q2 Engineering
A. Nandiyanto, S. N. Hofifah, G. C. S. Girsang, S. R. Putri, B. Budiman, F. Triawan, A. Al-Obaidi
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引用次数: 13

摘要

本研究旨在研究稻壳粒径对树脂基刹车片性能(即抗压强度、穿刺强度、质量损失、磨损率、摩擦系数和耐热性)的影响。将双酚A-环氧氯丙烷和脂环族胺混合形成树脂,并用作刹车片的基材。在实验中,将特定粒径(即250、500和1000μm)的稻壳添加到树脂中。稻壳由于其木质素、纤维素和二氧化硅的含量而引起了人们的极大兴趣,由于其类似陶瓷的行为,使其适合用作摩擦材料。实验结果表明,小稻壳颗粒提高了抗压强度、穿刺强度和堆积密度。这可以通过分析由尺寸为250、500和1000μm的颗粒支撑的制动片的最大抗压强度获得,颗粒的值为0.238;0.173;和0.144MPa。相反,大颗粒形成粗糙的表面和孔隙,降低了质量损失率,并提高了摩擦性能(即磨损率、摩擦系数)。尺寸为250、500和1000µm的颗粒支撑的制动片的摩擦系数值分别为0.2075;0.2070;和0.3379。颗粒尺寸影响制动片的层间粘合、界面粘合、孔隙数量和尺寸、热软化、机械性能和摩擦性能。还对制备的树脂基刹车片和商用刹车片进行了比较,证实了农业废弃物作为刹车片摩擦材料的潜在替代品的利用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Effects of Rice Husk Particles Size as A Reinforcement Component on Resin-Based Brake Pad Performance: From Literature Review on the Use of Agricultural Waste as A Reinforcement Material, Chemical Polymerization Reaction of Epoxy Resin, to Experiments
This study aims to investigate the effect of rice husks’ particle size on resin-based brake pad performance (i.e. compressive strength, puncture strength, mass loss, wear rate, friction coefficient, and heat resistance). Bisphenol A-epichlorohydrin and cycloaliphatic amine were mixed to form resin and used as the brake pad's base material. In the experiment, rice husk with a specific particle size (i.e., 250, 500, dan 1000 μm) was added to the resin. Rice husk has received considerable interest due to its lignin, cellulose, and silica content, making it suitable as friction material due to its ceramic-like behavior. The experimental results showed small rice husk particles improved compressive strength, puncture strength, and bulk density. This can be obtained from the analysis of the maximum compressive strength for brake pad supported by particles with sizes of 250, 500, and 1000 μm having values of 0.238; 0.173; and 0.144 MPa, respectively. In contrast, large particles formed coarse surfaces and pores, decreased mass loss rate, and improve friction properties (i.e. wear rate, friction coefficient). The friction coefficient values of brake pad supported by particles with sizes of 250, 500, and 1000 µm were, respectively, 0.2075; 0.2070; and 0.3379. Particle size affected interpacking, interfacial bonding, pores number and size, thermal softening, mechanical properties, and friction properties of the brake pad. Comparison between the prepared resin-based and commercial brake pad was also done, confirming the utilization of agro-waste as a potential alternative for friction material in the brake pad.
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来源期刊
Automotive Experiences
Automotive Experiences Engineering-Automotive Engineering
CiteScore
3.00
自引率
0.00%
发文量
14
审稿时长
12 weeks
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