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Ecofriendly Ultrasonic Rust Removal: An Empirical Optimization Based on Response Surface Methodology

机译:ECOFriendly超声波锈去除:基于响应面方法的实证优化

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This study shows that the hard-to-remove rust layer on the guide sleeve surface of a used cylinder can be removed using a specially developed, environmentally friendly formula for cleaning rust. Furthermore, we studied the rust removal technology that is based on ultrasonic cavitation and chemical etching. The surface morphology and structural components of the rust layer were observed using an electron microscope and an X-ray powder diffractometer. These tools were used to explore the mechanism of combined rust removal. Using response surface methodology (RSM) and central composite design (CCD), with the rust removal rate as our index of evaluation, data were analyzed to establish a response surface model that can determine the effect of cleaning temperature and ultrasonic power interaction on the rate of rust removal. Results showed that the main components of the rust layer on a 45 steel guide sleeve were α-FeOOH, γ-FeOOH, and Fe3O4. The rust was unevenly distributed with a loose structure, which was easily corroded by chemical reagents and peeled off under ultrasonic cavitation. With the increase in the cleaning temperature, the chemical reaction effect was intensified, and the cleaning ability was enhanced. With the increase in ultrasonic power, the cavitation effect was aggravated, the ultrasonic agitation was enhanced, and the rust removal rate was improved. According to response surface analysis and the application scope of the rust remover, we determined that the optimal cleaning temperature is 55 °C, and that the optimal ultrasonic power is 2880 W. The descaling rate under these parameters is 0.15 g·min?1·m?2.
机译:本研究表明,可以使用专门开发的环境友好的公式来除去使用的圆筒的引导套筒表面上的淬火防锈层,用于清洁生锈。此外,我们研究了基于超声波空化和化学蚀刻的防锈技术。使用电子显微镜和X射线粉末衍射仪观察锈层的表面形态和结构部件。这些工具用于探索混合脱模的机制。使用响应表面方法(RSM)和中央复合设计(CCD),具有防锈率作为我们的评估索引,分析数据以建立响应面模型,可以确定清洁温度和超声波功率相互作用对速率的影响防锈。结果表明,45钢导套上的锈层的主要部件是α-FeO​​OH,γ-FeOOH和Fe3O4。用松散的结构不均匀地分布锈,这易于通过化学试剂腐蚀并在超声波空穴下剥离。随着清洁温度的增加,增强了化学反应效果,提高了清洁能力。随着超声波功率的增加,加剧了空化效果,提高了超声搅拌,提高了锈去除率。根据响应表面分析和防锈去除剂的应用范围,我们确定最佳清洁温度为55°C,最佳超声波功率为2880W。这些参数下的除垢率为0.15g·min?1· m?2。

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