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Innovative Impact Protection and Monitoring System for Composite Pressure Vessels

机译:复合压力容器的创新冲击保护和监控系统

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摘要

Impact behavior and resistance of composite structures are difficult to predict. For composite pressure vessels, where failure can be fatal, impact protection and detection is particularly important. This thesis aims to render high pressure composite vessels safer to use with regards to impact. Three main objectives were identified; Firstly, finding an effective impact protection method and material. Secondly, developing a low cost impact detection system. Lastly, find an approach to estimate the severity of damage in an impacted composite vessel. Adopting an experimental approach, each objective was investigated separately before combining them into a final prototype. For the protective material, a material-search was conducted where cross-linked Polyvinyl Chloride foam (X-PVC), Polyethylene terephthalate foam (PET) and Low-density polyethylene foam (LDPE) were chosen and impact tested. X-PVC was identified as the most promising impact absorption material for protection of composite pressure vessels. The low cost solution for impact detection was developed by taking advantage of the elastic wave induced in the composite material during an impact. Instrumenting the pressure vessel with simple piezo elements and an accelerometer together with a low cost processor, allowed detection of the elastic waves and the origin of the impacts on a composite tube. Residual strain in the composite after impact was tested in an attempt to assess impact damage. Optical fiber strain measurements were conducted to register the residual strain after impact. Elevated strains were found and correlation between impact damage and the residual strain was identified. As a proof of concept, a final prototype was built, satisfying the main objectives; The protective material was able to fully protect the impacted pipe as no visible damage was detected. The low cost piezo element was able to detect the imposed impacts and residual strain measurement in the composite indicated a low level of damage as well as predicting the location of damage.
机译:复合结构的冲击行为和抵抗力很难预测。对于复合材料压力容器,如果故障可能是致命的,则冲击保护和检测尤为重要。本文旨在使高压复合材料容器在冲击方面更安全地使用。确定了三个主要目标;首先,寻找有效的冲击防护方法和材料。其次,开发低成本的影响检测系统。最后,找到一种方法来估算受影响的复合材料容器中的损坏严重程度。采用实验方法,对每个目标进行了单独研究,然后将它们组合为最终原型。对于保护材料,进行了材料研究,选择了交联的聚氯乙烯泡沫(X-PVC),聚对苯二甲酸乙二醇酯泡沫(PET)和低密度聚乙烯泡沫(LDPE)并进行了冲击测试。 X-PVC被认为是用于保护复合压力容器的最有希望的冲击吸收材料。通过利用复合材料在撞击过程中感应出的弹性波,开发出了一种低成本的撞击检测解决方案。通过使用简单的压电元件和加速度计以及低成本的处理器来对压力容器进行仪表化,从而可以检测弹性波以及对复合管的撞击源。测试了冲击后复合材料中的残余应变,以评估冲击破坏。进行光纤应变测量以记录冲击后的残余应变。发现高应变,并确定冲击损伤与残余应变之间的相关性。作为概念的证明,最终的原型被制造出来,满足了主要目标。由于未检测到可见的损坏,保护材料能够完全保护受影响的管道。低成本的压电元件能够检测到施加的冲击,并且复合材料中的残余应变测量结果表明损伤程度较低,并且可以预测损伤的位置。

著录项

  • 作者

    Kopperud Paul Andreas;

  • 作者单位
  • 年度 2015
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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