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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Improving engine oil lubrication in light-duty vehicles by using of dispersing MWCNT and ZnO nanoparticles in 5W50 as viscosity index improvers (VII)
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Improving engine oil lubrication in light-duty vehicles by using of dispersing MWCNT and ZnO nanoparticles in 5W50 as viscosity index improvers (VII)

机译:在5W55中使用分散MWCNT和ZnO纳米颗粒作为粘度指数改进剂(VII),通过分散MWCNT和ZnO纳米粒子改善发动机油润滑

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摘要

The objective of this study is to offer a suitable nano-lubricant (engine oils containing nanoparticles) to use in light-duty automotive industries in order to reach a higher ability and efficient oil in comparison to ordinary engine oils, in order to reduce cold start engine damages. Therefore, in present study a feasibility study of using a new nano-engine oil containing a combination of MWCNT (multi wall carbon nanotubes)-ZnO nanoparticles with the ratio of 30-70% has been arranged. Results of experimental study show a considerable decrease in viscosity of nano-engine oil (in comparison to viscosity of pure 5W50 oil) after adding 0.05% and 0.1% nano particles to 5W50. This viscosity reduction, reduces the damage caused by starting up the engine in cold start condition. In order to predict the viscosity of this applied nano-engine oil (obtained from experimental studies), the efficiency of using a mathematical correlation using response surface methods (RSM) was investigated for viscosity prediction. For the proposed correlation, R-2 is equal to 0.9715 that shows its acceptable accuracy. An artificial neural network has also been used as the second method to predict viscosity in the range of 5 degrees C-55 degrees C and in solid volume fractions of 0.05%-1%. Selected structure of Artificial Neural Network with R = 9.999e-01 is the most optimal and precise structure among 100 studied structures.
机译:本研究的目的是提供一种合适的纳米润滑剂(含有纳米颗粒)的纳米润滑剂(发动机油),以便与普通发动机油相比达到更高的能力和有效的油,以减少冷启动发动机损坏。因此,在本研究中,已经安排了使用含有MWCNT(多壁碳纳米管)-ZNO纳米颗粒的组合的新纳米发动机油的可行性研究已经安排了30-70%的比例。实验研究结果表明,在加入0.05%和0.1%纳米颗粒至5w50后,纳米发动机油(与纯5w50油的粘度相比)显着降低。这种粘度降低,降低了在冷启动条件下启动发动机引起的损害。为了预测该应用纳米发动机油的粘度(从实验研究获得),研究了使用响应表面方法(RSM)使用数学相关性的效率进行粘度预测。对于提出的相关性,R-2等于0.9715,显示其可接受的精度。人工神经网络也被用作第二种方法,以预测5℃-55摄氏度的粘度,固体体积分数为0.05%-1%。具有R = 9.999E-01的人工神经网络的所选结构是100所研究的结构中最佳和精确的结构。

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