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Characterization of viscoelastic response and damping of composite materials used in flywheel rotors.

机译:飞轮转子中使用的复合材料的粘弹性响应和阻尼特性。

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摘要

The long-term goal for spacecraft flywheel systems with higher energy density at the system level requires new and innovative composite material concepts. Multi-Direction Composite (MDC) offers significant advantages over traditional filament-wound and multi-ring press-fit filament-wound wheels in providing higher energy density (i.e., less mass), better crack resistance, and enhanced safety. However there is a lack of systematic characterization for dynamic properties of MDC composite materials. In order to improve the flywheel materials reliability, durability and life time, it is very important to evaluate the time dependent aging effects and damping properties of MDC material, which are significant dynamic parameter for vibration and sound control, fatigue endurance, and impact resistance.; The physical aging effects are quantified based on a set of creep curves measured at different aging time or different aging temperature. One parameter (tau) curve fit was proposed to represent the relationship of aging time and aging temperature between different master curves. The long term mechanical behavior was predicted by obtained master curves. The time and temperature shift factors of matrix were obtained from creep curves and the aging time shift rate were calculated. The aging effects on composite are obtained from experiments and compared with prediction.; The mechanical quasi-behavior of MDC composite was analyzed. The correspondence principle was used to relate quasi-static elastic properties of composite materials to time-dependent properties of its constituent materials (i.e., fiber and matrix). The Prony series combined with the multi-data fitting method was applied to inverse Laplace transform and to calculate the time dependent stiffness matrix effectively. Accelerated time-dependent deformation of two flywheel rim designs were studied for a period equivalent to 31 years and are compared with hoop reinforcement only composite.; Damping of pure resin and T700/epoxy composite lamina and laminate in longitudinal and transverse directions were investigated experimentally and analytically. The effect of aging on damping was also studied by placing samples at 60°C in an oven for extended periods. Damping master curves versus frequency were constructed from individual curves at different temperatures based on the Arrhenius equation. The damping response of the composite lamina was used to predict the response of laminate composites. Analytical results give close numerical values to experimental results from damping of cantilever beam laminated composite samples.
机译:在系统级别具有更高能量密度的航天器飞轮系统的长期目标需要新的和创新的复合材料概念。多方向复合材料(MDC)在提供更高的能量密度(即,更轻的质量),更好的抗裂性和增强的安全性方面,比传统的缠绕长丝和多环压配合的缠绕长丝车轮具有明显优势。但是,缺乏对MDC复合材料动力学特性的系统表征。为了提高飞轮材料的可靠性,耐用性和使用寿命,评估随时间变化的老化效应和MDC材料的阻尼特性非常重要,MDC材料是振动和声音控制,疲劳强度和耐冲击性的重要动态参数。 ;物理老化效果是根据一组在不同老化时间或不同老化温度下测得的蠕变曲线来量化的。提出了一个参数(tau)曲线拟合来表示不同主曲线之间的时效时间与时效温度之间的关系。通过获得的主曲线可以预测长期的机械性能。从蠕变曲线获得了基体的时间和温度漂移因子,并计算了老化时间漂移率。通过实验获得了对复合材料的时效影响,并与预测值进行了比较。分析了MDC复合材料的力学准行为。对应原理用于将复合材料的准静态弹性特性与其组成材料(即纤维和基质)的时间相关特性相关联。将Prony级数与多数据拟合方法相结合,进行拉普拉斯逆变换,并有效地计算了随时间变化的刚度矩阵。研究了两个飞轮轮辋设计的随时间变化的加速变形,等效时间为31年,并与仅箍筋增强复合材料进行了比较。通过实验和分析研究了纯树脂和T700 /环氧复合材料薄片和层压材料在纵向和横向上的阻尼。还通过将样品在60°C的烘箱中放置较长时间来研究老化对阻尼的影响。根据Arrhenius方程,从不同温度下的各个曲线构建阻尼主曲线与频率的关系。复合材料层板的阻尼响应被用来预测层压材料的响应。分析结果为悬臂梁层压复合材料样品的阻尼提供了与实验结果接近的数值。

著录项

  • 作者

    Chen, Jianmin.;

  • 作者单位

    Auburn University.;

  • 授予单位 Auburn University.;
  • 学科 Engineering Materials Science.; Textile Technology.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 152 p.
  • 总页数 152
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;轻工业、手工业;
  • 关键词

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