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Composite patch repair of damaged tubular members from flare boom structures subjected to compressive loads

机译:从闪光吊杆结构经受压缩载荷的血压吊杆结构复合贴片修复

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摘要

Conventional repair method for steel structures requires cutting and welding processes, which in offshore platforms may impose several disadvantages. Composite material repair has become an alternative for the rehabilitation of damaged structures and has been widely applied in other industries. In this work a numerical experimental investigation evidences the effectiveness of the composite patch repair for flare boom corroded tubular elements subjected to axial compressive loads. A finite element model developed to determine the minimum composite laminate thickness that recovers the structural element strength is validated through numerical simulations. Twelve API 5L grade B reduced scale steel tubes with central perforations and similar longitudinal and transverse slenderness, respectively defined by length to radius of gyration of the cross-section area and diameter to thickness ratios, are tested covering the range of interest for full scale members. The composite material consists of a hybrid fabric made of carbon and glass fibers impregnated with epoxy resin. Severe localized corrosion is considered conservatively, idealized as a circular perforation in half the element length. In many cases the maximum load of the repaired tube even exceeded the intact tube capacity. Moreover, it is shown that sufficient load capacity recovery is achieved for the conditions assumed.
机译:钢结构的常规修复方法需要切割和焊接过程,在海上平台中可能施加若干缺点。复合材料修复已成为损坏结构恢复的替代方案,并已广泛应用于其他行业。在这项工作中,数值实验研究证明了对经受轴向压缩载荷的闪光波动腐蚀管元件的复合贴片修复的有效性。通过数值模拟验证了开发用于确定恢复结构元件强度的最小复合层压板厚度的有限元模型。 12个API 5L等级B级具有中央穿孔的减小钢管和相似的纵向和横向细长,分别由横截面积和直径与厚度比的长度限定,覆盖满量程成员的感兴趣范围。复合材料包括由浸渍有环氧树脂浸渍的碳和玻璃纤维制成的混合织物。严重的局部腐蚀保守,理想化为元素长度的圆周穿孔。在许多情况下,修复管的最大负荷甚至超过了完整的管能力。此外,示出了对于假设的条件实现了足够的负载能力恢复。

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