Experimental investigation on emission reduction in diesel engine by using biodiesel fuel with nano catalytic converter

2020 ◽  
Author(s):  
Valarmathi Thirumalai Natesan ◽  
Senthilkumar Jayapalan ◽  
Purusothaman Mani ◽  
J. Harish Raj ◽  
S. Lingesh Raj
2020 ◽  
Author(s):  
Senthilkumar Jayapalan ◽  
B. R. Ramesh Bapu ◽  
Kalaiyarasan ◽  
P. Hemanthkumar ◽  
Jayaprakash Venugopal ◽  
...  

Energies ◽  
2019 ◽  
Vol 12 (11) ◽  
pp. 2201 ◽  
Author(s):  
Kibong Choi ◽  
Suhan Park ◽  
Hyun Gu Roh ◽  
Chang Sik Lee

The purpose of this paper is to investigate the effects of using gas to liquid (GTL)-biodiesel blends as an alternative fuel on the physical properties as well as the combustion and emission reduction characteristics in a diesel engine. In order to assess the influence of the GTL-biodiesel blending ratio, the biodiesel is blended with GTL fuel, which is a test fuel with various blending ratios. The effects of GTL-biodiesel blends on the fuel properties, heat release, and emission characteristics were studied at various fuel injection timing and blending ratios. The test fuels investigated here were GTL, biodiesel, and biodiesel blended GTL fuels. The biodiesel blending ratio was changed from 0%, 20% and 40% by a volume fraction. The GTL-biodiesel fuel properties such as the fuel density, viscosity, lower heating value, and cetane number were analyzed in order to compare the effects of different mixing ratios of the biodiesel fuel. Based on the experimental results, certain meaningful results were derived. The increasing rate of the density and kinematic viscosity of the GTL-biodiesel blended fuels at various temperature conditions was increased with the increase in the biodiesel volumetric fraction. The rate of density changes between biodiesel-GTL and GTL are 2.768% to 10.982%. The combustion pressure of the GTL fuel showed a higher pressure than the biodiesel blended GTL fuels. The biodiesel-GTL fuel resulted in reduced NOx and soot emissions compared to those of the unblended GTL fuel. Based on the experimental results, the ignition delay of the GTL-biodiesel blends increased with the increase of the biodiesel blending ratio because of the low cetane number of biodiesel compared to GTL. As the injection timing is advanced, the NOx emissions were significantly increased, while the effect of the injection timing on the soot emission was small compared to the NOx emissions. In the cases of the HC and CO emissions, the GTL-biodiesel blended fuels resulted in similar low emission trends and, in particular, the HC emissions showed a slight increase at the range of advanced injection timings.


2020 ◽  
Author(s):  
Senthilkumar Jayapalan ◽  
B. R. Ramesh Bapu ◽  
Syed Khalid P. ◽  
M. Sharuhan ◽  
Jayaprakash Venugopal ◽  
...  

Author(s):  
Y Wang ◽  
S Zeng ◽  
J Huang ◽  
Y He ◽  
X Huang ◽  
...  

An experimental investigation of nitrogen oxides (NOx) emission reduction from a diesel engine using the Miller cycle was carried out. A Lister-Petter diesel engine, type TS2, was used for the experiments. Three versions of Miller cycles were designed and realized on a diesel engine. A series of tests were carried out on the test rig to compare the performances and emissions of the original engine (standard dual cycle) with those of the three versions of Miller cycles. The test results from the standard dual cycle and from the three versions of Miller cycles showed that applying Miller cycle to the diesel engine could reduce the NOx emission from the diesel engine. The reduction ratios of NOx for the Miller cycles are from 4.4 to 17.5 per cent. The best reduction effect is Miller cycle 1 and the reduction rates of NOx are from 11.0 to 17.5 per cent.


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