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ASME 2016 International Mechanical Engineering Congress and Exposition | 2016

Experimental Study on the Adhering Fuel Film of the Impinged N-Butanol-Diesel Blends

Hongsheng Zhang; Xingyu Liang; Hanzhengnan Yu; Yuesen Wang; Chen Weijian

In this paper, the characteristics of the adhering fuel film after a spray impingement for the n-butanol-diesel blending fuels have been investigated under different injection pressures (60MPa, 80MPa, 100MPa, and 120MPa) and impingement angles (45°, 60°, 75° and 90° ). The blending fuels include the n-butanol (10%)-diesel (90%) volume ratio (B10), the n-butanol (20%)-diesel (80%) (B20) and the n-butanol (30%)-diesel (70%) (B30). The applied diesel is the commercial No. 0 diesel fuel. A cold rolling flat steel plate with a dry surface (Dry wall) and a plate coated with lubricating oil on its surface (Wet wall) were used as an impingement wall. Adhering ratio of each impinged fuel was calculated from the measurement with a precision balance, the adhering fuel film morphology data were captured using an oil film thickness measurement instrument. All experiments were conducted through a common-rail high-pressure fuel injection system where a single-hole nozzle is employed under the normal temperature and pressure. The experimental results demonstrate that the increase of the injection pressure leads to a lower adhering fuel ratio and a smaller distribution of the thick film regions. Meanwhile, with the reduction of the impingement angle, the oil on the wall shows the shape of droop with a thinner fuel film and the adhering fuel ratios decline gradually. The ratio of the adhered oil of B30 is lowest among the three blends, but the difference of their mean thickness on the wet wall is not huge and there is a large central thinner area for the film of B20 on the dry wall which means the faster rate of evaporation.Copyright


Fuel | 2016

Experimental investigation on spray-wall impingement characteristics of n-butanol/diesel blended fuels

Hanzhengnan Yu; Xingyu Liang; Gequn Shu; Yuesen Wang; Hongsheng Zhang


Applied Thermal Engineering | 2017

Multi-objective optimization and grey relational analysis on configurations of organic Rankine cycle

Yuesen Wang; Jun Zhao; Yongzhen Wang; Qingsong An


Applied Thermal Engineering | 2017

Effect of different combustion models and alternative fuels on two-stroke marine diesel engine performance

Xiuxiu Sun; Xingyu Liang; Gequn Shu; Yajun Wang; Yuesen Wang; Hanzhengnan Yu


Applied Thermal Engineering | 2016

Effect of base oil on the nanostructure and oxidation characteristics of diesel particulate matter

Yajun Wang; Xingyu Liang; Ke Wang; Yuesen Wang; Lihui Dong; Gequn Shu


Fuel | 2017

Correlation between cycle-by-cycle variation, burning rate, and knock: A statistical study from PFI and DISI engines

Yu Chen; Yuesen Wang; Robert R. Raine


Applied Energy | 2017

Numerical investigation of the effect of two-stage injection strategy on combustion and emission characteristics of a diesel engine☆

Hanzhengnan Yu; Xingyu Liang; Gequn Shu; Yuesen Wang; Xiuxiu Sun; Hongsheng Zhang


WCX™ 17: SAE World Congress Experience | 2017

Effects of Lubricating Oil Metallic Content on Morphology, Nanostructure and Graphitization Degree of Diesel Engine Exhaust Particles

Yajun Wang; Xingyu Liang; Yuesen Wang; Xiuxiu Sun; Hanzhengnan Yu; Xikai Liu


Ocean Engineering | 2017

Numerical investigation of two-stroke marine diesel engine emissions using exhaust gas recirculation at different injection time

Xiuxiu Sun; Xingyu Liang; Gequn Shu; Jiansheng lin; Yuesen Wang; Yajun Wang


Fuel | 2017

Impact of lubricating oil combustion on nanostructure, composition and graphitization of diesel particles

Yuesen Wang; Xingyu Liang; Gong Tang; Yu Chen; Lihui Dong; Gequn Shu

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Lihui Dong

Civil Aviation University of China

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