Experimental study on laser layered removal of blue automotive paint based on optimal laser parameters

IF 3.4 3区 物理与天体物理 Q2 INSTRUMENTS & INSTRUMENTATION
Tianxuan Bian , Yang Bai , Jingyan Yang , Xuechen Liu , Yi Li , Xiaoying Zhang
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Abstract

Achieving high efficiency and quality in laser paint removal relies on selecting optimal laser parameters. In this study, a 1064 nm pulsed laser with a pulse repetition frequency of 100 kHz was employed for layered paint removal experiments on blue automotive paint with a multi-coating structure (clear, color, mid, and epoxy primer coatings). The optimal pulse width for laser paint removal was determined to be ∼ 200 ns through an image binarization method from the five preselected values of ∼ 100 ns, ∼150 ns, ∼200 ns, ∼250 ns, and ∼ 300 ns. An area extrapolation method was used to analyze the laser ablation thresholds of the coatings relative to average laser power, classifying them into two groups: the upper group (clear and color coatings) and the lower group (mid and epoxy primer coatings), with optimal average laser powers of 14 W and 20 W, respectively. An image binarization method evaluated the effective laser paint removal speed across different spot overlap ratios for both groups. The results indicated that a 50 % spot overlap ratio was optimal for both groups, leading to the maximum effective laser paint removal speed. A laser-induced breakdown spectroscopy (LIBS) was used to monitor the Pearson correlation coefficient over successive laser paint removal cycles. The optimal number of laser paint removal cycles was 5 for the upper coating group and 7 for the lower coating group based on the maximum Pearson correlation coefficient. Under these optimized conditions, the laser paint removal efficiency for a 50 mm × 50 mm blue automotive paint sample reached 98.6 %, with a relative error of ± 0.41 %. The novelty of this work lies in the integration of image binarization, area extrapolation, and LIBS for laser parameter optimization, ensuring minimal damage to the underlying layers and improving precision.
基于最优激光参数的汽车蓝色涂料激光分层去除实验研究
激光除漆的效率和质量取决于激光参数的选择。在本研究中,采用脉冲重复频率为100 kHz的1064 nm脉冲激光,对具有多涂层结构(透明、彩色、中涂层和环氧底漆)的蓝色汽车漆进行了分层脱漆实验。通过图像二值化方法确定激光去除涂层的最佳脉冲宽度为~ 200 ns,从5个预选值(~ 100 ns、~ 150 ns、~ 200 ns、~ 250 ns和~ 300 ns)中选取~ 200 ns。采用面积外推法分析了涂层相对于平均激光功率的激光烧蚀阈值,将其分为两组:上组(透明和彩色涂层)和下组(中、环氧底漆涂层),最佳平均激光功率分别为14 W和20 W。图像二值化方法评估了两组在不同光斑重叠比下的有效激光除漆速度。结果表明,50%的光斑重叠率是两组的最佳选择,从而导致最大的有效激光除漆速度。激光诱导击穿光谱(LIBS)用于监测连续激光脱漆周期的Pearson相关系数。基于最大Pearson相关系数,上涂层组最佳激光除漆次数为5次,下涂层组最佳激光除漆次数为7次。在此优化条件下,激光对50 mm × 50 mm蓝色汽车涂料样品的脱漆效率达到98.6%,相对误差为±0.41%。这项工作的新颖之处在于将图像二值化、面积外推和LIBS集成到激光参数优化中,确保对底层的损伤最小并提高精度。
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来源期刊
CiteScore
5.70
自引率
12.10%
发文量
400
审稿时长
67 days
期刊介绍: The Journal covers the entire field of infrared physics and technology: theory, experiment, application, devices and instrumentation. Infrared'' is defined as covering the near, mid and far infrared (terahertz) regions from 0.75um (750nm) to 1mm (300GHz.) Submissions in the 300GHz to 100GHz region may be accepted at the editors discretion if their content is relevant to shorter wavelengths. Submissions must be primarily concerned with and directly relevant to this spectral region. Its core topics can be summarized as the generation, propagation and detection, of infrared radiation; the associated optics, materials and devices; and its use in all fields of science, industry, engineering and medicine. Infrared techniques occur in many different fields, notably spectroscopy and interferometry; material characterization and processing; atmospheric physics, astronomy and space research. Scientific aspects include lasers, quantum optics, quantum electronics, image processing and semiconductor physics. Some important applications are medical diagnostics and treatment, industrial inspection and environmental monitoring.
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