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Passive machine augmented composite for multifunctional properties

机译:被动机增强复合材料,具有多功能性能

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摘要

This dissertation studies by experiment and numerical analysis an advanced composite material (Machine Augmented Composite or MAC) for enhancement of the passive damping while maintaining its stiffness. This MAC is composed of a pre-buckled wall structure placed within a viscoelastic matrix. The pre-buckled machine can contain viscous fluids for additional energy dissipation. For the experiments, the MAC was fabricated by using rigid and soft polyurethane as a machine and matrix material respectively. Various viscosity fluids (0.83 ~ 4730 cps) filled the inner-channel of the machine structure. Dynamic properties such as tan ?? and the loss modulus (E") of the composite were measured and compared with those of a homogeneous matrix sample over a frequency range of 0.1 to 100 Hz at room temperature through load-controlled cyclic testing. Measured tan ?? and loss modulus values for the composite were higher than those of the matrix alone in the 1 to 40 Hz range. However the viscous fluid effects on the overall damping properties were small. The performance of a theoretical MAC was explored through numerical analysis. The amount of inner-channel gap closure was calculated for various matrix Poisson??s ratios, for various Young??s modulus ratios between the machine and matrix (Emachine/Ematrix), and for the volume fraction of the machines. The most desirable performance of the composite was obtained when the matrix Poisson??s ratio was 0.49, and there was interaction between the Emachine/Ematrix and the volume fraction of the machines. Also the proper volume fraction range of the machine was predicted to be between 0.15 and 0.2 for the lamina shape MAC. Based upon the analysis, a sandwich structure MAC was fabricated and tested. This composite showed 11 times higher stiffness than the matrix without loosing the matrix damping property. This dissertation shows that the research met these objectives: 1) the MAC concept is effective for passive damping of vibrations, 2) that material combinations studied here had optimal combinations for best performance, and 3) that this is a promising field study for future passive and active materials development.
机译:本文通过实验和数值分析研究了一种先进的复合材料(机械增强复合材料或MAC),用于增强被动阻尼,同时保持其刚度。该MAC由放置在粘弹性基质中的预屈曲壁结构组成。预屈曲的机器可能包含粘性流体,以消耗更多能量。对于实验,通过分别使用硬质聚氨酯和软质聚氨酯作为机械材料和基质材料来制造MAC。各种粘度的流体(0.83〜4730 cps)充满了机器结构的内部通道。 tan ??等动态特性测量了复合材料的损耗模量和损耗模量(E“),并通过负载控制循环测试在室温下在0.1至100 Hz的频率范围内与均质基质样品的损耗模量和损耗模量(E”)进行了比较。复合材料在1至40 Hz范围内比单独的基体材料高,但是粘性流体对整体阻尼性能的影响很小,通过数值分析探索了理论MAC的性能。计算了各种基质泊松比,机器与基质之间的各种杨氏模量比(Emachine / Ematrix)以及机器的体积分数的闭合率,得到了复合材料最理想的性能。矩阵的泊松比为0.49,并且Emachine / Ematrix与机器的体积分数之间存在相互作用,并且预测机器的适当体积分数范围之间存在相互作用叶片形状MAC的n为0.15和0.2。基于该分析,制造并测试了夹层结构MAC。该复合材料显示出的刚度是基体的11倍,而不会降低基体的阻尼性能。本文表明,该研究满足了以下目标:1)MAC概念可有效地对振动进行被动阻尼; 2)本文研究的材料组合具有最佳组合以获得最佳性能; 3)这对于未来的被动研究是有前途的和活性材料开发。

著录项

  • 作者

    Kim Jong Hyun;

  • 作者单位
  • 年度 2005
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_US
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