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Tensile behavior of multilayer 3D smart woven composites embedded with shape memory alloy (SMA) wires

机译:具有形状记忆合金(SMA)电线的多层3D智能编织复合材料的多层3D智能编织复合材料的拉伸行为

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Shape memory alloys (SMA) are reputable for their capability of regaining shape at certain temperatures even after large deformations. In the martensite phase, when a load is applied on SMA wire, it accommodates strain rather than breakage by unfolding its lattice that results in improving damping and stiffness. Also, SMA generates stresses due to phase transformation from martensite to austenite at higher temperatures. This coupling effect of SMA in response to load and temperature makes its use for improving properties of composites by embedding in composite structures. The major factor considered during embedding SMA wires into composite structures is the compatibility between SMA and matrix. SMA wires should have excellent adhesion with matrix otherwise, cracking and delamination in the composite will occur. Therefore, different techniques are carried out for surface modification of SMA wire to improve the bonding between matrix and SMA wire. These techniques are expensive, time-consuming and sometimes give undesirable results. An alternative approach used in this research is to weave SMA wires in 3D structures for providing better grip to these wires before composite fabrication. 3D structures have higher through-the-thickness properties and delamination resistance, but their in-plane properties are lower than 2D laminated composites. Due to the weaving of SMA wires into 3D structures, binder yarns provide a better grip to SMA wire that ultimately increases the interfacial strength of composite while SMA wire improves the tensile properties of 3D structures. Results show that a single SMA wire embedded in three different 3D configurations contributes in improving the tensile properties of each 3D structure depending on the interlocking behavior of fibers with SMA wire. The layer-to-layer 3D configuration loosely grips SMA wire, hence SMA wire faces less resistance upon activation and improves Young’s Modulus to 34.9%. The modified 3D structure provides a strong grip to the SMA wire, hence limitise the increment of Young's Modulus to 16.06%. Tensile behavior along with structural failures of SMA embedded 3D woven composites are discussed in detail.
机译:形状记忆合金(SMA)对于它们即使在大变形之后,它们也能够在某些温度下恢复形状的能力。在马氏体相中,当在SMA线上施加负荷时,它通过展开其晶格来容纳应变而不是破损,从而导致阻尼和刚度。此外,SMA由于在较高温度下从马氏体到奥氏体的相变而产生应力。 SMA响应于负载和温度的这种耦合效应使其用于通过在复合结构中嵌入来改善复合材料的性能。在将SMA线嵌入复合结构期间考虑的主要因素是SMA和矩阵之间的兼容性。 SMA线应具有优异的粘附性与基质,否则,将发生复合材料中的开裂和分层。因此,对SMA线的表面改性进行了不同的技术,以改善基质和SMA线之间的粘合。这些技术昂贵,耗时,有时会产生不希望的结果。本研究中使用的另一种方法是在3D结构中编织SMA线,以在复合制造之前提供更好地抓住这些电线。 3D结构具有更高的厚度性能和分层电阻,但其面内特性低于2D层压复合材料。由于SMA线的编织到3D结构,粘合剂纱线提供了更好的抓地力与SMA线最终增加复合材料的界面强度,而SMA线改善了3D结构的拉伸性能。结果表明,嵌入三种不同的3D配置中的单个SMA线有助于提高每个3D结构的拉伸性能,这取决于具有SMA线的纤维的互锁行为。层到层3D配置松散地握住SMA线,因此SMA线面向激活时较少的阻力,并将杨氏模量改善为34.9%。改进的3D结构为SMA线提供了强大的抓地力,因此限制杨氏模量的增量至16.06%。详细讨论了张拉伸行为以及SMA嵌入式3D编织复合材料的结构故障。

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