...
首页> 外文期刊>Mechanical Engineering Journal >Cavitation damage of epoxy resin subjected to uniaxial tensile loading
【24h】

Cavitation damage of epoxy resin subjected to uniaxial tensile loading

机译:单轴拉伸载荷下环氧树脂的空化损伤

获取原文
   

获取外文期刊封面封底 >>

       

摘要

In turbomachinery, such as turbine, pump, and valve, components damage caused by collapsing cavitation bubbles has been a critical issue that needs a proper solution. For this reason, investigation on the cavitation erosion behavior of materials as well as the life prediction techniques has been extensively conducted. Moreover, a number of repairing techniques, such as by a surface coating of polymeric materials, has been established. However, in real operation, cavitation is actually not the only load acquired by the components. Other external loads, such as centrifugal force and hydraulic pressure, may also affect the generation of damage. Therefore, its effect on the lifetime needs to be considered carefully. In this paper, the behavior of cavitation damage of epoxy resin specimens subjected to uniaxial tensile loading is reported. A self-developed testing device was used to conduct a cavitation test based on ASTM G32 while at the same time exerting a constant uniaxial tensile load to the specimen. Using this device, various levels of tensile stress effect on the cavitation damage was examined. As a result, besides erosion damage, we revealed that the specimens demonstrated fracture when a certain tensile load was applied. Furthermore, as the tensile load was increased, the time to fracture was shortened significantly, indicating the pronounced effect of tensile stress on the damage formation. The crack growth mechanism was then analyzed by fractography. The result indicated that the crack propagation under a mixed condition of cavitation and tensile loads was most likely driven by the combination of creep deformation and fatigue-like crack growth. Finally, a mathematical relationship between tensile stress and cavitation damage life was proposed. The relationship is important to enhancing the existing theory of cavitation damage evaluation in e.g. turbomachinery application.
机译:在涡轮机,涡轮机,泵和阀门等涡轮机械中,由空化气泡破裂引起的组件损坏一直是需要适当解决的关键问题。因此,已经广泛地进行了材料的空化腐蚀行为以及寿命预测技术的研究。此外,已经建立了许多修复技术,例如通过聚合物材料的表面涂层。但是,在实际操作中,气蚀实际上并不是组件所承受的唯一负载。其他外部负载(例如离心力和液压压力)也可能影响损坏的产生。因此,需要仔细考虑其对寿命的影响。本文报道了单轴拉伸载荷下环氧树脂试样的空化破坏行为。使用自行开发的测试设备根据ASTM G32进行空化测试,同时对样品施加恒定的单轴拉伸载荷。使用该装置,检查了不同程度的拉伸应力对空化损伤的影响。结果,除了腐蚀损伤,我们还发现,当施加一定的拉伸载荷时,试样还显示出断裂。此外,随着拉伸载荷的增加,断裂时间显着缩短,表明拉伸应力对损伤形成的显着影响。裂纹扩展机理然后通过分形法分析。结果表明,在空化和拉伸载荷混合条件下的裂纹扩展最有可能是蠕变变形和类似疲劳的裂纹扩展共同作用的结果。最后,提出了拉应力与空化损伤寿命之间的数学关系。该关系对于增强现有的空化损伤评估理论是重要的,例如。涡轮机械的应用。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号