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1、镁合金论文:az61镁合金的磷化及阴极电泳【中文摘要】镁合金作为优质的合金结构材料,在航空航天、汽 车、电子和医疗器材等行业得到广泛应用。但是镁的耐蚀性较差,制 约了镁合金的应用。镁合金磷酸盐转化膜具有多孔结构、附着力好, 是有机涂层的有效基底。本文采用磷化与阴极电泳涂装相结合的方法 改善az61镁合金的表面性能。本研究的研究方法、研究内容和结果 分别叙述如下。在国内外锌系磷化研究的基础上,选取三种不同的磷 化体系。通过对三种磷化体系所得磷化膜的厚度、耐碱性、表面形貌 以及元素组成进行对比,选取适宜阴极电泳涂装的磷化膜。采用单因 素试验,分别研究磷化液中各物质对磷化成膜的影响。研究表明: zn
2、 (h2p04) 2的浓度对磷化膜的厚度有较大影响,浓度越大,厚度越大; nan03对磷化过程具有良好的促进作用;硫酸轻胺是一种良好的磷化 氧化促进剂,且具有用量低的优点;naf能够促进磷化、细化膜层。 间硝基苯磺酸钠与酒石酸添加后对磷化膜的成膜有利,但是添加的浓 度与成膜状况关系较小。采用正交设计的方法设计实验,正交表为 (l9 (34),选取四种浓度对磷化过程影响较大的物质naf、硫酸轻胺、 znh2p04、nan03作为止交试验的四个因素,物质的浓度为各因素的水 平。正交优化结果:naf浓度为1.67g- l-k硫酸疑胺的浓度为1. 5 g l-1、znh2p04 的浓度为 23. 1
3、g l-1、nan03 的浓度为 5 g lt。 在上述优化物质浓度下,az61镁合金表面形成的磷化膜厚度适中、a w小、均匀性好、腐蚀电流密度低、耐蚀性良好。在以上工作的基础 上,采用上述磷化条件的磷化膜进行阴极电泳涂装,得到外观(颜色、 光亮度、均匀性)较好,厚度在35 nm左右,硬度达到2h-3h,与基体的 附着力为0级,耐蚀性较好的复合电泳涂层。采用电涡流测厚仪测量 磷化膜的厚度;利用金相显微镜、扫描电镜(sem)观察磷化膜的表面 形貌;利用化学分析方法和能谱分析(eds)分析磷化膜的成分组成; 通过阳极极化曲线、电化学阻抗谱(eis)、腐蚀失重等方法评价磷化 膜的耐腐蚀性能。电泳部分
4、采用电涡流测厚仪测量有机涂层的厚度, 采用eis测试有机涂层的耐蚀性;按国家标准规定的方法测量有机涂 层的附着力、硬度和耐溶剂性。【英文摘要】as a high-qual ity structural material, magnesium alloys have been used in lots of fields, especially in the aerospace, automobile, electronic and medical equipment. however, the use of magnesium alloy was severely limited by its
5、 poor corrosion resisting property magnesium alloy phosphating conversion treatment was an effective substrate of organic coating because of its porous and binding force in this dissertation, phosphating and cathode electrophoretic painting methods were applied to improve the surface performance of
6、the magnesium alloys the experimental methods, main work and results were recounted as fol lows separately.tn this dissertation, three phosphating systems were selected on the basis of investigation both at home and abroad. we select a optimum phosphating coating for cathode electrophoretic painting
7、 by comparing the thickness, weight loss in alkaline solution, surface morphology and elements of three phosphating coatings obtained in different phosphate baths. the influences of each substance in phosphate bath on phosphate coatings were researched with single factor test the results are as foll
8、ows:the concerttration of zn(h2p04)2 has an important effect on thickness of film, the film would be thicker with a higher the concentration of zn(h2p04)2: the concentration of nan03 has effects on the accelerating of the phosphate process; hydroxylamine sulfate is a good accelerator which has chara
9、cteristic of low con sumption; the concentration of naf can promote the forming of phosphme film and thin crystalline grain. tartaric acid and nitrobenzene sulfonate have important effects on the formation of phosphate coatings, but their concentrations have no effects on it. orthogonal design was u
10、sed to scheme experiment, the concentrations of four substances were chosen as four factors of orthogonal design table (l9(34) the optimum orthogonal conditions were cnaf二1. 67 g l-l, chydroxylamine sulfate=l. 5 g lt, cznh2p04=23. 1 g ll, cnan03二5 g l-l. in the optimized conditions, test results sho
11、wed that the phosphate coatings formed on magnesium alloyshave moderate thickness, lower corrosion weight-loss, moredetailed micro-structure and more excellent corrosion resistance than the contrast phosphate coatings.electrophoretic composite coatings were prepared on basis of optimized phosphate c
12、oatings by cathodic electrophoretic the appearances (color, brightness, uniformity) of the electrophoretic composite coatings obtained in the optimized conditions were better than others, the thickness was 35 u m, hardness was 2h-3h, adhesion was on zero level and the corrosion resistance was excel
13、1 ent.the thickness of the phosphate coatings were measured by the eddy curreny thickness meter. thesurfaces morphologies of the phosphate coatings were observed by metallographic microscope and sem; the compositions of the corrosion resistance of the phosphate coatings were assessed by anodic polar
14、ization curves measurement, electronical impedanee spectra(eis) and corrosion weight-loss test. the thickness of the organic coatings were measured by the eddy curreny thickness meter. the corrosion resistance of the organic coatings were assessed by ets the thickness, weight loss and solvent resist
15、anee of organic coatings were tested according to the national standards.phosphatecoatings were analyzed by titrimetry and eds.the【关键词】镁合金 磷化 表面形貌 耐蚀性阴极电泳涂装【英文关键词】magnesium alloysphosphatingsurface morphologiescorrosion resistancecathode electrophoretic painting【口录】az61镁合金的磷化及阴极电泳摘要10-12 abstract 12
16、-13 第一章 绪论 14-301. 1镁及镁合金的性质及分类14-161. 1. 1镁及镁合金的性质141. 1. 2镁合金的分类14-161. 2镁及镁合金的腐蚀16-191.2. 1镁及镁合金的腐蚀反应16-171.2.2负羌数效应17-181.2.3镁合金腐蚀的类型18-191.3镁合金的腐蚀防护措施19-251. 3. 1改变合金的显微组织19-201.3.2镁合金的表面处理20-251.4本课题的研究方向25-301. 4. 1镁合金磷化的特点25-271. 4. 2镁合金阴极电泳涂装的特点27-281.4.3研究课题的提出28-30 第二章实验材料、工艺及研究方法30-442.
17、1实验材料、药晶及仪器302. 1. 1基体材料302. 1.2化学试剂302. 1.3实验设备302.2实验方法30-442. 2. 1前处理工艺30-332. 2. 2磷化工艺33-352.2.3阴极电泳工艺352. 2. 4测试方法35-44第三章镁合金磷化工艺研究44-803. 1磷化休系的选择44-493. 1. 1不同体系得到的磷化膜的厚度分析45-463.1.2不同体系得到的磷化膜的耐碱性试验463. 1. 3不同体系得到的磷化膜的金相显微分析46- 473. 1. 4不同体系得到的磷化膜的扫描电镜分析47- 493. 2磷化液中各成分对磷化的影响49-703. 2. 1磷酸二氢
18、锌浓度对磷化的影响49-523. 2. 2有机胺对磷化的影响52-583. 2. 3硝酸钠浓度对磷化的影响58-623. 2. 4氟化钠浓度对磷化的影响62-663. 2. 5酒石酸浓度对磷化的影响66-683. 2. 6间硝基苯磺酸钠浓度对磷化的影响68-703. 3磷化体系优化70-783. 3. 1正交设计及实验结果70-733. 3. 2正交最佳配方的性能测试73-783.4本章小结78-80 第四章 镁合金磷化膜上的阴极电泳涂装80-914. 1复合涂层的耐溶剂性80-814. 2复合涂层的交流阻抗测试81-884. 2. 1最佳磷化复合电泳涂层交流阻抗测试81-824.2.2对比磷化复合电泳复层交流阻抗测试82-844.2.3表调复合屯泳涂层交流阻抗测试84-854. 2
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