评估激光烧蚀涂层去除(LACR)在遗留桥梁钢材上的可行性:涂层去除和附着力以及对机械性能的影响

W. P. Moffat, S. Sharp, J. Provines, S. R. Agnew, J. M. Fitz-Gerald
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摘要

使用有机保护涂料是最有效、最常用的缓蚀策略之一。为了保持涂层对钢桥构件等长期暴露表面的保护性,必须定期去除涂层并重新涂抹。一种相对较新的方法被称为激光烧蚀涂层清除(LACR),它将高能纳秒脉冲激光束与高效过滤系统相结合,可以安全有效地清除金属表面的涂层和污染物。在本研究中,LACR 清洁技术对传统桥梁钢构件进行了测试,以研究其对基底清洁度和钢材机械性能的影响。这些桥梁截面从未经过喷砂处理,在多个涂层(包括富铅涂层)下面含有 20-100 μm 厚的毫米级氧化层(氧化铁)。LACR 熔化了氧化层顶部的微米,同时还对下层钢材进行了热绝缘处理,防止金属基材内部发生任何熔化。使用显微镜、硬度测试、拉伸和疲劳测试对所产生的表面进行分析,结果表明 LACR 不会对桥梁钢材的整体机械性能造成任何可测量的不利影响,并能有效去除所有油漆涂层。此外,对 LACR 清洁过的基材进行的附着力测试表明,其附着力极佳,超过了涂层钢材的附着力要求。
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Assessing the feasibility of laser ablation coating removal (LACR) on legacy bridge steel: Coating removal and adhesion, and effects on mechanical properties
The application of protective organic coatings is one of the most effective and commonly used corrosion mitigation strategies. To maintain the protective nature of coatings on long-term-exposed surfaces such as steel bridge components, coatings must be periodically removed and reapplied. A relatively new method called laser ablation coating removal (LACR), which incorporates a high energy nanosecond pulsed laser beam in combination with a high efficiency filtration system, allows for safe and effective removal of coatings and contamination from metal surfaces. In this study, LACR cleaning is tested on legacy bridge steel components to investigate the effect on substrate cleanliness and steel mechanical properties. These bridge sections were never blasted and contain a 20–100 μm thick mill-scale layer (iron oxide) below several coating layers (including lead-rich coatings). The top micron of the oxide layer is melted by LACR and also thermally insulates the underlying steel and prevents any melting within the metallic substrate. The resulting surfaces are analyzed using microscopy, hardness testing, tensile, and fatigue testing, and it is shown that LACR does not cause any measurable detrimental effects to the bulk mechanical properties of the bridge steel, as well as effectively removes all paint coatings. Furthermore, adhesion testing on LACR-cleaned substrates shows excellent adhesion, qualifying above adhesion requirements for coated steel.
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