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Fatigue design of CFRP strengthened steel members

机译:CFRP加固钢构件的疲劳设计

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Fatigue failure is brittle and sudden and is one of the main problems with steel members and connections. Carbon fiber reinforced polymer (CFRP) sheets and laminates have been shown to be effective and practical for strengthening steel under fatigue loading regardless of the existence of initial cracks. Many studies have examined the fatigue behaviors of CFRP strengthened steel, but fatigue design guides or available programs for designers and engineers are limited. Thus, based on existing design codes and guidance for pure steel under fatigue loading (e.g., Design Guide for Circular and Rectangular Hollow Section Welded Joints under Fatigue Loading and Recommendations for Fatigue Design of Welded Joints and Components), this paper proposes fatigue design guides and programs for CFRP strengthened steel structures. First, for steel without initial fatigue cracks, Classification method is adopted along with a related calculation method for obtaining the reduced stress range of steel after strengthening. Then, a classification table for hybrid CFRP-steel members is given to illustrate where to glue CFRP sheets or laminates and the correct fiber orientation. Second, for steel with initial fatigue cracks, fracture mechanics are adopted to obtain the reduced stress range. This paper considers debonding at the crack tip using the finite element method (FEM) and introduces a coefficient d to enlarge the range of the stress intensity factor (SIP). Then, a program called "EasyFatigueforFSS" (Easy Fatigue design for FRP Strengthened Steel) is developed to calculate the available life or allowable stress. Finally, typical design examples are given for reference.
机译:疲劳失效是脆弱和突然的,并且是钢构件和连接件的主要问题之一。碳纤维增强聚合物(CFRP)板和层压板已显示出在疲劳载荷下加固钢的有效和实用性,无论是否存在初始裂纹。许多研究检查了CFRP增强钢的疲劳行为,但是疲劳设计指南或可供设计人员和工程师使用的程序有限。因此,根据现有的疲劳载荷下纯钢的设计规范和指南(例如,疲劳载荷下的圆形和矩形空心截面焊接接头的设计指南以及焊接接头和零件的疲劳设计建议),提出了疲劳设计指南和建议。 CFRP加强钢结构的计划。首先,对于没有初始疲劳裂纹的钢,采用分类方法以及相关的计算方法来获得加强后钢的减小的应力范围。然后,给出了混合CFRP钢构件的分类表,以说明在哪里粘贴CFRP片材或层压板以及正确的纤维取向。其次,对于具有初始疲劳裂纹的钢,采用断裂力学来获得减小的应力范围。本文考虑使用有限元方法(FEM)在裂纹尖端处剥离,并引入系数d来扩大应力强度因子(SIP)的范围。然后,开发了一个名为“ EasyFatigueforFSS”的程序(用于FRP增强钢的Easy Fatigue设计),以计算可用寿命或允许应力。最后,给出了典型的设计实例供参考。

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