Evaluation of the strength characteristics of polymer materials for the manufacture of personal electric vehicle elements

S. Yankevich, I. N. Khrol, N. A. Kalinovskij
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Abstract

The properties of materials for airless wheel propulsion of vehicles, including electric ones, have been studied. The experimental substantiation of the choice of the type of polymer matrices and compositions of reinforcing fillers for the manufacture of an airless wheel mover of electric vehicles has been carried out. To test the basic epoxy matrix, part of the samples without the addition of reinforcing fibers was cured at room temperature (L-285H), and the rest (L-285G) – when heated to 60 °C. In order to improve the strength characteristics of the epoxy matrix L-285G, glass reinforcement was carried out with EC16 1600T-16(400) glass reinforcement. The Smooth-Cast 300 Series was chosen as the matrix for performing samples based on injection-molded polyurethanes. Samples are made of base polyurethane under various conditions: at atmospheric rejection (SC), under vacuum 0.8 kPa (SC-0.8) and during vibration-induced curing (SCV). Comparative tests were carried out, which showed differences in the mechanical properties of the base matrices based on epoxy resins and injection-molded polyurethanes, in particular, the relative elongation of samples from injection-molded polyurethane by more than 2 times. It is established that the most rational use of injection-molded polyurethane is application as damping elements, and the material for manufacturing spokes dampers is composite SCV-S-20. It is advisable to manufacture products from the resulting composite when vibrations are applied to the mold and with preliminary vacuuming at a vacuum of 0.8 kPa of the components of the polyurethane matrix, which reduces the number of internal defects in the form of shells. Since vacuuming of the product during polymerization does not give a significant effect due to the presence of a set of specialized deaeration additives in the base matrix, it is proposed to carry it out under constant control, since exceeding the vacuum in the range from 0.8 to 0.9 kPa entails decomposition of individual matrix components with foam formation.
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用于个人电动汽车部件制造的高分子材料强度特性评价
对包括电动车辆在内的车辆无气轮推进材料的性能进行了研究。为制造电动汽车无气轮动器,对聚合物基体类型和增强填料组成的选择进行了实验验证。为了测试碱性环氧基,部分未添加增强纤维的样品在室温(L-285H)下固化,其余(L-285G)加热至60℃。为了提高环氧基L-285G的强度特性,采用EC16 1600T-16(400)玻璃增强。Smooth-Cast 300系列被选为基于注塑成型聚氨酯进行样品的基质。样品由基础聚氨酯在不同条件下制成:大气排斥(SC),真空0.8 kPa (SC-0.8)和振动诱导固化(SCV)。对比试验表明,环氧树脂基基体与注塑聚氨酯基基体的力学性能存在差异,特别是注塑聚氨酯基基体的相对伸长率相差2倍以上。确定了注塑成型聚氨酯最合理的用途是作为阻尼元件,制造辐条阻尼器的材料为复合材料SCV-S-20。将振动施加到模具上,并在0.8千帕的真空条件下对聚氨酯基体的成分进行初步抽真空,这样可以减少外壳形式的内部缺陷的数量,由此产生的复合材料制造产品是可取的。由于在聚合过程中,由于在基础基质中存在一组专门的脱氧添加剂,产品的抽真空不会产生显著的效果,因此建议在恒定控制下进行,因为超过0.8至0.9 kPa范围内的真空会分解单个基质成分并形成泡沫。
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CiteScore
0.40
自引率
0.00%
发文量
35
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