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Effect of sonication on thermal, mechanical, and thermomechanical properties of epoxy resin.

机译:超声处理对环氧树脂的热,机械和热机械性能的影响。

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摘要

Epoxy resin is an important engineering material in many industries such as electronics, automotive, aerospace, etc not only because it is an excellent adhesive but also because the materials based on it provide outstanding mechanical, thermal, and electrical properties. Epoxy resin has been proved to be an excellent matrix material for the nanocomposites when including another phase such as inorganic nanofillers. The properties of a nanocomposite material, in general, are a hybrid between the properties of matrix material and the nanofillers. In this sense, the thermal, mechanical, and electrical properties of a nanocomposite may be affected by the corresponding properties of matrix material. When the sonication is used to disperse the nanofillers in the polymer matrix, with the dispersal of the nanofillers, there comes some modification in the matrix as well and it finally affects the properties of nanocomposites. In this regard, we attempted to study the thermal, mechanical, and dynamic properties of EPON 862 epoxy resin where ultrasonic processing was taken as the effect causing variable. Uncured epoxy was subjected to thermal behavior studies before and after ultrasonic treatment and the cured epoxies with amine hardener EPICURE 3223 (diethylenetriamine) after sonications were tested for mechanical and dynamic properties. We monitored the ultrasonic processing effect in fictive temperature, enthalpy, and specific heat capacity using differential scanning calorimetry. Fictive temperature decreased whereas enthalpy and specific heat capacity were found to increase with the increased ultrasonic processing time. Cured epoxy rectangular solid strips were used to study the mechanical and dynamic properties. Flexural strength at 3% strain value measured with Dillon universal testing machine under 3-point bending method was found to degrade with the ultrasonic processing. The storage modulus and damping properties were studied for the two samples sonicated for 60 minutes and 120 minutes. Our study showed that the 60 minutes sonicated sample has higher damping or loss modulus than 120 minutes sonicated sample.
机译:环氧树脂是电子,汽车,航空航天等许多行业中重要的工程材料,不仅因为它是一种极好的粘合剂,而且因为基于它的材料具有出色的机械,热和电性能。当包含另一种相(例如无机纳米填料)时,环氧树脂已被证明是纳米复合材料的优异基质材料。通常,纳米复合材料的性质是基质材料和纳米填料的性质之间的混合。从这个意义上讲,纳米复合材料的热,机械和电性能可能会受到基质材料相应性能的影响。当使用超声处理将纳米填料分散在聚合物基质中时,随着纳米填料的分散,基质中也会发生一些修饰,最终影响纳米复合材料的性能。在这方面,我们尝试研究了EPON 862环氧树脂的热,机械和动态特性,其中超声处理被认为是引起变化的因素。在超声处理之前和之后,对未固化的环氧树脂进行热行为研究,并在超声处理后,用胺硬化剂EPICURE 3223(二乙烯三胺)对固化的环氧树脂进行机械和动态性能测试。我们使用差示扫描量热法监测了虚构温度,焓和比热的超声处理效果。虚构温度降低,而焓和比热容随超声处理时间的增加而增加。使用固化的环氧矩形实心条来研究机械性能和动态性能。发现用Dillon万能试验机在三点弯曲法下测得的3%应变值下的弯曲强度会随着超声处理而降低。研究了分别超声处理60分钟和120分钟的两个样品的储能模量和阻尼特性。我们的研究表明,与120分钟超声处理相比,超声处理60分钟具有更高的阻尼或损耗模量。

著录项

  • 作者

    Sharma, Bed P.;

  • 作者单位

    Southern Illinois University at Carbondale.;

  • 授予单位 Southern Illinois University at Carbondale.;
  • 学科 Physics Condensed Matter.;Engineering Materials Science.
  • 学位 M.S.
  • 年度 2009
  • 页码 77 p.
  • 总页数 77
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:38:18

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