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Mechanical characterization and structural analysis of recycled fiber-reinforced-polymer resin-transfer-molded beams.

机译:再生纤维增强聚合物树脂传递模塑梁的力学特性和结构分析。

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摘要

The present investigation was focussed on the mechanical characterization and structural analysis of resin-transfer-molded beams containing recycled fiber-reinforced polymers. The beams were structurally reinforced with continuous unidirectional glass fibers. The reinforcing filler materials consisted entirely of recycled fiber-reinforced polymer wastes (trim and overspray). The principal resin was a 100-percent dicyclo-pentadiene unsaturated polyester specially formulated with very low viscosity for resin transfer molding. Variations of the resin transfer molding technique were employed to produce specimens for material characterization.; The basic materials that constituted the structural beams, continuous-glass-fiber-reinforced, recycled-trim-filled and recycled-overspray-filled unsaturated polyesters, were fully characterized in axial and transverse compression and tension, and inplane and interlaminar shear, to ascertain their strengths, ultimate strains, elastic moduli and Poisson's ratios. Experimentally determined mechanical properties of the recycled-trim-filled and recycled-overspray-filled materials from the present investigation were superior to those of unsaturated polyester polymer concretes and Portland cement concretes.; Mechanical testing and finite element analyses of flexure (1 x 1 x 20 in) and beam (2 x 4 x 40 in) specimens were conducted. These structurally-reinforced specimens were tested and analyzed in four-point, third-point flexure to determine their ultimate loads, maximum fiber stresses and mid-span deflections. The experimentally determined load capacities of these specimens were compared to those of equivalent steel-reinforced Portland cement concrete beams computed using reinforced concrete theory.; Mechanics of materials beam theory was utilized to predict the ultimate loads and mid-span deflections of the flexure and beam specimens. However, these predictions proved to be severely inadequate. Finite element (fracture propagation) analyses of the flexure and beam specimens were also performed. These progressive failure analyses more closely approximated flexural behavior under actual testing conditions by reducing the elastic moduli of elements that were considered to have partially or totally failed. Individual element failures were predicted using the maximum stress, Tsai-Hill and Tsai-Wu failure criteria. Excellent predictions of flexural behavior were attributed to the progressive failure analyses combined with an appropriate failure criterion, and the reliable input material properties that were generated.
机译:本研究的重点是含有再生纤维增强聚合物的树脂传递模塑梁的力学表征和结构分析。用连续的单向玻璃纤维对梁进行结构加固。增强填料完全由回收的纤维增强聚合物废料(饰边和过喷)组成。主要树脂是100%的二环戊二烯不饱和聚酯,特别配制,粘度非常低,用于树脂传递模塑。采用各种树脂传递模塑技术来生产用于材料表征的样品。构成结构梁的基本材料,连续玻璃纤维增​​强,再生边填充和回收过喷填充的不饱和聚酯,具有轴向和横向压缩和拉伸以及面内和层间剪切的特性,从而确定它们的强度,极限应变,弹性模量和泊松比。根据本研究,由实验确定的再生边填充和再生过喷填充材料的机械性能优于不饱和聚酯聚合物混凝土和波特兰水泥混凝土。进行了挠曲(1 x 1 x 20英寸)和梁(2 x 4 x 40英寸)样品的机械测试和有限元分析。这些结构增强的样品在四点,三点弯曲中进行了测试和分析,以确定它们的极限载荷,最大纤维应力和中跨挠度。将这些样品的实验确定的承载能力与使用钢筋混凝土理论计算的等效钢筋混凝土波特兰水泥混凝土梁的承载能力进行了比较。材料力学原理用梁理论来预测挠性和梁试样的极限载荷和中跨挠度。但是,这些预测严重不足。还对弯曲和梁样品进行了有限元分析(断裂扩展)。通过减少被认为部分或全部失效的元件的弹性模量,这些渐进式失效分析可以在实际测试条件下更接近地模拟弯曲行为。使用最大应力,Tsai-Hill和Tsai-Wu破坏准则来预测单个元件的破坏。弯曲行为的出色预测归因于渐进式失效分析,并结合了适当的失效准则,并生成了可靠的输入材料特性。

著录项

  • 作者

    Tan, Eugene Wie Loon.;

  • 作者单位

    University of Wyoming.;

  • 授予单位 University of Wyoming.;
  • 学科 Engineering Mechanical.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 459 p.
  • 总页数 459
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;工程材料学;
  • 关键词

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