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首页> 外文期刊>Journal of Engineering Tribology >Fluorinated mix in plain ZDDP oil and commercial oil using design of experiment analysis of all interactions and fundamental study of fluorinated mix in plain ZDDP oils under 2 different r/min test cycles and extreme boundary lubrication
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Fluorinated mix in plain ZDDP oil and commercial oil using design of experiment analysis of all interactions and fundamental study of fluorinated mix in plain ZDDP oils under 2 different r/min test cycles and extreme boundary lubrication

机译:在2个不同的r / min试验循环和极限边界润滑条件下,使用ZDDP普通油和商品油中所有混合物的实验分析设计和氟化ZDDP普通油中的氟化混合物的基础研究

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摘要

Wear performance of engine oil was studied in the presence of submicron iron fluoride (FeF3) and polytetrafluoroethylene (PTFE) using 2 different r/min test cycles and a ball-on-ring wear tester apparatus under boundary lubrication. The submicron powder mix was called fluorinated mixture with FeF3 catalyst to PTFE ratio of [1:2]. X-ray photoelectron spectroscopy and differential scanning calorimetry analysis of PTFE and FeF3 presented clear evidence of the catalyst importance in preparing the surface and lowering energy barrier. An explicit design of experiment analysis was developed to investigate the interactions of the fluorinated mix in commercial fully formulated oil and in plain oils subject to 2 different r/min test cycles of 100 r/min for the first 5000 revolutions and a 700 r/min until failure or 100 000 revolutions whichever comes first. All tests were generated under extreme boundary lubrication (Hertzian contact pressure of 2.72 GPa) and compared with 1 cycle at 700 r/min. The tests cylinders were baked in oil for a specific period of time and this was included as a factor in the 2-level factorial of the design of experiment (DOE). A fundamental and analytical study of the friction and wear performance was carried out on the plain zinc dialkyldithiophosphates (ZDDP) oil+(FeF3, PTFE) optimized DOE combination to justify the model predictions of the DOE. The fundamental analysis did not include commercial oils in the study since there were many components that affect the wear performance and frictional behaviour. Friction coefficient under boundary lubrication is affected by many factors. In order to study the friction characteristic of optimized tests, DOE was used to simplify experimentations and to investigate the failure and wear responses with respect to fluorinated mix interactions in plain and fully formulated oils. The 2 different r/min cycles tests indicate better performance than the one continuous 700 r/min cycle tests. Findings indicate that the positive factors affecting friction and wear are fluorinated mix concentrations together with oil formulations. Scanning electron microscopy, energy dispersive spectroscopy, focus ion beam, X-ray of wear track, and Auger electron spectroscopy were used to characterize the tribofilm of the two optimized tests of fluorinated mix in plain ZDDP oil under 1 continuous 700 r/min and 2 different r/min test cycles. Results indicate that the thickness of the tribofilms is in the range of 220 nm and phosphorus exists in both wear tracks with more traces in the 2 r/min cycles sample.
机译:在亚微米氟化铁(FeF 3 )和聚四氟乙烯(PTFE)的存在下,使用2个不同的r / min测试循环和边界下的球上环磨损测试仪,研究了机油的磨损性能润滑。亚微米粉末混合物被称为氟化混合物,其中FeF 3 催化剂与PTFE的比例为[1:2]。 PTFE和FeF 3 的X射线光电子能谱和差示扫描量热分析为催化剂在制备表面和降低能垒中的重要性提供了明确的证据。开发了一个明确的实验分析设计,以研究含氟混合物在商业全配方油和普通油中的相互作用,在最初的5000转和700 r / min的2种不同r / min测试循环下,分别进行100 r / min的测试循环直到失败或十万转,以先到者为准。所有测试均在极限润滑条件下(赫兹接触压力为2.72 GPa)进行,并与700 r / min的1个循环进行了比较。将测试钢瓶在油中烘烤特定时间,并将其作为实验设计(DOE)的2级因数中的一个因素。对普通的二烷基二硫代磷酸锌(ZDDP)油+(FeF 3 ,PTFE)优化的DOE组合进行了摩擦和磨损性能的基础和分析研究,以证明DOE的模型预测是正确的。由于有许多影响磨损性能和摩擦性能的成分,因此基本分析未将商业用油纳入研究。边界润滑下的摩擦系数受许多因素影响。为了研究优化测试的摩擦特性,使用DOE简化了实验,并研究了普通和全配方油中氟化混合物相互作用的失效和磨损响应。 2种不同的r / min循环测试表明其性能优于一项连续的700 r / min循环测试。研究结果表明,影响摩擦和磨损的积极因素是氟化混合物的浓度以及机油配方。使用扫描电子显微镜,能量色散光谱,聚焦离子束,磨损痕迹的X射线和俄歇电子能谱表征了在普通ZDDP油中在1个连续的700 r / min和2下的两次氟化混合物优化测试的摩擦膜。不同的r / min测试周期。结果表明,摩擦膜的厚度在220 nm范围内,并且在两个磨损轨迹中都存在磷,并且在2 r / min循环样品中存在更多的轨迹。

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    《Journal of Engineering Tribology》 |2011年第4期|p.193-211|共19页
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    Department of Mechanical and Material Engineering, University of Balamand, Lebanon North, El-Koura, Lebanon;

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