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FABRICATION AND TESTING OF DURABLE REDUNDANT AND FLUTED-CORE JOINTS FOR COMPOSITE SANDWICH STRUCTURES

机译:复合夹心结构的耐用冗余和芯核接头的制造和测试

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The development of durable bonded joint technology for assembling composite structures is an essential component of future space technologies. While NASA is working toward providing an entirely new capability for human space exploration beyond low Earth orbit, the objective of this project is to design, fabricate, analyze, and test a NASA patented durable redundant joint (DRJ) and a NASA/Boeing co-designed fluted-core joint (FCJ). The potential applications include a wide range of sandwich structures for NASA's future launch vehicles.rnThree types of joints were studied - splice joint (SJ, as baseline), DRJ, and FCJ. Tests included tension, after-impact tension, and compression. Teflon strips were used at the joint area to increase failure strength by shifting stress concentration to a less sensitive area. Test results were compared to those of pristine coupons fabricated utilizing the same methods. Tensile test results indicated that the DRJ design was stiffer, stronger, and more impact resistant than other designs. The drawbacks of the DRJ design were extra mass and complex fabrication processes. The FCJ was lighter than the DRJ but less impact resistant. With barely visible but detectable impact damages, all three joints showed no sign of tensile strength reduction. No compression test was conducted on any impact-damaged sample due to limited scope and resource. Failure modes and damage propagation were also studied to support progressive damage modeling of the SJ and thernDRJ.
机译:用于组装复合结构的耐用粘结接头技术的发展是未来太空技术的重要组成部分。尽管NASA致力于为近地轨道以外的人类太空探索提供全新的功能,但该项目的目的是设计,制造,分析和测试NASA专利耐用冗余接头(DRJ)和NASA /波音公司的合作伙伴,设计了槽芯接头(FCJ)。潜在的应用包括用于NASA未来运载火箭的各种夹层结构。研究了三种类型的接头-拼接接头(作为基准的SJ),DRJ和FCJ。测试包括拉伸,冲击后拉伸和压缩。在接头区域使用特氟龙条,通过将应力集中转移到不太敏感的区域来增加破坏强度。将测试结果与使用相同方法制造的原始试样进行了比较。拉伸测试结果表明,DRJ设计比其他设计更坚固,更坚固并且具有更高的抗冲击性。 DRJ设计的缺点是额外的质量和复杂的制造过程。 FCJ比DRJ轻,但抗冲击性差。几乎看不见但可检测到的冲击损伤,所有三个接头均未显示出抗拉强度降低的迹象。由于范围和资源有限,因此未对任何受冲击破坏的样品进行压缩测试。还研究了失效模式和损伤传播,以支持SJ和thernDRJ的渐进损伤建模。

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