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首页> 外文期刊>Scientific reports. >Strength and Performance Enhancement of Multilayers by Spatial Tailoring of Adherend Compliance and Morphology via Multimaterial Jetting Additive Manufacturing
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Strength and Performance Enhancement of Multilayers by Spatial Tailoring of Adherend Compliance and Morphology via Multimaterial Jetting Additive Manufacturing

机译:通过多材料喷射增材制造的空间调整贴合剂的顺应性和形态来增强多层的强度和性能

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Material tailoring of bondlayer compliance is a known effective route to enhance performance of multilayers, and here spatial material-tailoring of compliance and morphology of the adherends is examined. Multimaterial jetting additive manufacturing (AM) allows us to realize for the first time compliance- and morphology-tailored adherends, and evaluate directly the mechanical performance, including failure, of the tensile-loaded multilayers. Adherend compliance-tailoring, unlike bondlayer tailoring, requires additional consideration due to adherend bending stiffness and moment influences on bondlayer stresses. We introduce anisotropic as well as layered/sandwich adherend tailoring to address this dependence. Numerical models show that for both sub-critical and critical bondlengths (at which shear-dominated load transfer occurs through the bondlayer), adherend tailoring reduces peak stresses significantly, particularly peel stress (reductions of 47–80%) that typically controls failure in such systems. At sub-critical bondlengths, the AM-enabled layered/sandwich adherend tailoring shows significantly increased experimental performance over the baseline multilayer: strength is increased by 20%, toughness by 48%, and strain-to-break by 18%, while retaining multilayer stiffness. The adherend tailoring demonstrated here adds to the techniques available to increase the performance of bonded multilayers, suggesting that adherend tailoring is particularly well-suited to additively manufactured multilayers, but can also have application in other areas such as layered electronics and advanced structural composite laminates.
机译:调整粘合层柔韧性的材料是提高多层材料性能的已知有效途径,在这里要检查柔顺性和被粘物形态的空间材料定制。多材料喷射增材制造(AM)使我们能够首次实现依从性和形态量身定制的被粘物,并直接评估拉伸负载多层的机械性能,包括失效。与粘合层剪裁不同,由于粘合层的弯曲刚度和弯矩对粘合层应力的影响,与粘合层剪裁不同的是,需要对粘合层进行量身定制。我们介绍了各向异性以及分层/三明治粘附体的定制方法,以解决这种依赖性。数值模型表明,对于亚临界和临界粘结长度(通过粘结层发生剪切主导的载荷传递),被粘物剪裁可显着降低峰值应力,尤其是剥离应力(降低47-80%),通常可控制此类断裂系统。在亚临界粘结长度下,启用AM的分层/三明治式被粘物剪裁显示出与基线多层相比显着提高的实验性能:强度增加20%,韧性增加48%,断裂应变增加18%,同时保留多层刚性。此处展示的被粘物剪裁增加了可用于提高粘合多层膜性能的技术,这表明被粘物剪裁特别适用于增材制造的多层膜,但也可用于其他领域,例如分层电子产品和高级结构复合层压板。

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