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Year 2024, Volume: 10 Issue: 2, 396 - 403, 22.03.2024
https://doi.org/10.18186/thermal.1448677

Abstract

References

  • [1] Godiganur S, Murthy CHS, Reddy RP. 6BTA 5.9 G2-1 Cummins engine performance and emission tests using methyl ester mahua (madhuca indica) oil/diesel blends. Renew Energy 2009;34:2172–2177. [CrossRef]
  • [2] Yasin MHM, Mamat R, Yusop AF, Idris DMNDI, Yusaf T, Rasul M, et al. Study of a diesel engine performance with Exhaust Gas Recirculation (EGR) system fuelled with palm biodiesel. Energy Procedia 2017;110:26–31. [CrossRef]
  • [3] Mohamed YES. Effect of EGR on some combustion characteristics of dual fuel engine. Energy Convers Manage 2003;4:709–723.
  • [4] Agarwal D, Sinha S, Agarwal AK. Experimental investigation of control of NOx emissions in biodiesel fuelled compression ignition engine. Renew Energy 2005;31:2356–2369. [CrossRef]
  • [5] Sivakumar G, Shankar V, Hemath Kumar G, Renganathan NG, Garud VU. Is thermal barrier coating for low heat rejection in SI engines or diesel engines? Int J Emerg Technol Adv Eng 2012;2:460–466.
  • [6] Narayana Reddy J, Ramesh A. Parametric studies for improving the performance of a Jatropha oil-fuelled compression ignition engine. Renew Energy 2006;31:1994–2016. [CrossRef]
  • [7] Balu P, Saravanan P, Jayaseela V. Effect of ceramic coating on the performance, emission, and combustion characteristics of ethanol DI diesel engine. Mater Today Proceed 2021;39:1259–1264. [CrossRef]
  • [8] Saravanan S, Nagarajan G, Sampath S. Combined effect of injection timing, EGR & injection pressure in NOx control of a stationary diesel engine fuelled with crude rice bran oil methyl ester. Fuel 2013;104:409–416. [CrossRef]
  • [9] Harigaran A, Balu P. An experimental study on the performance and emission characteristics of a single-cylinder diesel engine running on biodiesel made from palm oil and antioxidant additive. Int J Ambient Energy 2023;44:1076–1080. [CrossRef]
  • [10] Kulkarni PS, Sharanappa G, Ramesh MR, Banapurmath NR, Khandal SV. Experimental investigations of a low heat rejection (LHR) engine powered with Mahua oil methyl ester (MOME) with exhaust gas recirculation (EGR). Biofuels 2019;10:747–756. [CrossRef]
  • [11] Mani M, Nagarajan G, Sampath S. An experimental investigation on a DI diesel engine using waste plastic oil with exhaust gas recirculation. Fuel 2010;89:1826–1832. [CrossRef]
  • [12] Parlak A, Yasar H, Sahin B. Performance and exhaust emission characteristics of a lower compression ratio LHR Diesel engine. Energy Conver Manage 2003;44:163–175. [CrossRef]
  • [13] Ekrem B, Tahsin E, Muhammet C. Effects of thermal barrier coating on gas emissions and performance of a LHR engine with different injection timings and valve adjustments. Energy Conv Manage 2006;47:1298–1310. [CrossRef]
  • [14] Balu P, Vasanthkumar P, Govindan P, Sathish T. An experimental investigation on ceramic coating with retarded injection timing on diesel engine using Karanja oil methyl ester. Int J Ambient Energy 2023;44:1031–1035. [CrossRef]
  • [15] Serio DD, de Oliveira A, Sodre JR. Effects of EGR rate on performance and emissions of a diesel power generator fueled by B7. J Braz Society Mech Sci Engineer 2017;39:1919–1927. [CrossRef]
  • [16] Venkatesan B, Seeniappan K, Shanmugam E, Subramanian S, Veerasundaram J. Characterization and effect of the use of safflower methyl ester and diesel blends in the compression ignition engine. Oil Gas Sci Technol 2021;76:1–7. [CrossRef]

Study on exhaust gas recirculation diesel engine using karanja oil methyl ester with low heat rejection in direct injection

Year 2024, Volume: 10 Issue: 2, 396 - 403, 22.03.2024
https://doi.org/10.18186/thermal.1448677

Abstract

Energy is a fundamental necessity for man›s life in the digital world today. The rapid depletion of fossil fuel resources forces rigorous alternative fuel analysis. Petroleum diesel can better replace vegetable oils, edible or motored today. The rapid depletion of fossil fuel resources forces rigorous alternative fuel analysis. Petroleum diesel can better replace vegetable oils, edible or not. Karanja may be a possible supplier of diesel fuel for non-edible oil substitution. Current combustion surfaces for pistons, valves, and cylinders have been filled with ceramic materials, which make the engine totally adiabatic (LHR). The performance of a biodiesel-powered compressing ignition (CI) engine may be further boosted by utilising the engine›s heat effectively and increasing thermal efficiency. Exhaust Gas Recirculation (EGR) is actually one of the most important methods of limiting NOx emissions in internal combustion engines. Explore the output with and without exhaust gas recirculation on a retarded timing engine with diesel and karanja oil methyl ester (KOME). The LHR with a retarded timing engine yielded improved thermal brake efficiency (TBE), decreased HC, smoke, and CO emissions, while increasing KOME›s NOx in comparison with an uncoated engine. As the EGR rate grew, NOx and BTE were reduced marginally with increased HC, CO, and smoke. 24.1 g/kw-hour CO, 10.1 g/kw-hour NOx, and 0.55 g/kW-hour HC were registered at 20 percent of EGR.

References

  • [1] Godiganur S, Murthy CHS, Reddy RP. 6BTA 5.9 G2-1 Cummins engine performance and emission tests using methyl ester mahua (madhuca indica) oil/diesel blends. Renew Energy 2009;34:2172–2177. [CrossRef]
  • [2] Yasin MHM, Mamat R, Yusop AF, Idris DMNDI, Yusaf T, Rasul M, et al. Study of a diesel engine performance with Exhaust Gas Recirculation (EGR) system fuelled with palm biodiesel. Energy Procedia 2017;110:26–31. [CrossRef]
  • [3] Mohamed YES. Effect of EGR on some combustion characteristics of dual fuel engine. Energy Convers Manage 2003;4:709–723.
  • [4] Agarwal D, Sinha S, Agarwal AK. Experimental investigation of control of NOx emissions in biodiesel fuelled compression ignition engine. Renew Energy 2005;31:2356–2369. [CrossRef]
  • [5] Sivakumar G, Shankar V, Hemath Kumar G, Renganathan NG, Garud VU. Is thermal barrier coating for low heat rejection in SI engines or diesel engines? Int J Emerg Technol Adv Eng 2012;2:460–466.
  • [6] Narayana Reddy J, Ramesh A. Parametric studies for improving the performance of a Jatropha oil-fuelled compression ignition engine. Renew Energy 2006;31:1994–2016. [CrossRef]
  • [7] Balu P, Saravanan P, Jayaseela V. Effect of ceramic coating on the performance, emission, and combustion characteristics of ethanol DI diesel engine. Mater Today Proceed 2021;39:1259–1264. [CrossRef]
  • [8] Saravanan S, Nagarajan G, Sampath S. Combined effect of injection timing, EGR & injection pressure in NOx control of a stationary diesel engine fuelled with crude rice bran oil methyl ester. Fuel 2013;104:409–416. [CrossRef]
  • [9] Harigaran A, Balu P. An experimental study on the performance and emission characteristics of a single-cylinder diesel engine running on biodiesel made from palm oil and antioxidant additive. Int J Ambient Energy 2023;44:1076–1080. [CrossRef]
  • [10] Kulkarni PS, Sharanappa G, Ramesh MR, Banapurmath NR, Khandal SV. Experimental investigations of a low heat rejection (LHR) engine powered with Mahua oil methyl ester (MOME) with exhaust gas recirculation (EGR). Biofuels 2019;10:747–756. [CrossRef]
  • [11] Mani M, Nagarajan G, Sampath S. An experimental investigation on a DI diesel engine using waste plastic oil with exhaust gas recirculation. Fuel 2010;89:1826–1832. [CrossRef]
  • [12] Parlak A, Yasar H, Sahin B. Performance and exhaust emission characteristics of a lower compression ratio LHR Diesel engine. Energy Conver Manage 2003;44:163–175. [CrossRef]
  • [13] Ekrem B, Tahsin E, Muhammet C. Effects of thermal barrier coating on gas emissions and performance of a LHR engine with different injection timings and valve adjustments. Energy Conv Manage 2006;47:1298–1310. [CrossRef]
  • [14] Balu P, Vasanthkumar P, Govindan P, Sathish T. An experimental investigation on ceramic coating with retarded injection timing on diesel engine using Karanja oil methyl ester. Int J Ambient Energy 2023;44:1031–1035. [CrossRef]
  • [15] Serio DD, de Oliveira A, Sodre JR. Effects of EGR rate on performance and emissions of a diesel power generator fueled by B7. J Braz Society Mech Sci Engineer 2017;39:1919–1927. [CrossRef]
  • [16] Venkatesan B, Seeniappan K, Shanmugam E, Subramanian S, Veerasundaram J. Characterization and effect of the use of safflower methyl ester and diesel blends in the compression ignition engine. Oil Gas Sci Technol 2021;76:1–7. [CrossRef]
There are 16 citations in total.

Details

Primary Language English
Subjects Thermodynamics and Statistical Physics
Journal Section Articles
Authors

Ravisankar Rajendran This is me 0000-0001-6975-5418

V.s.k. Venkatachalapathy This is me 0000-0001-7339-1557

K. Velmurugan This is me 0000-0001-7864-7953

M. Elangovan This is me 0009-0002-6225-3719

P. Balu This is me 0000-0003-3480-1116

Publication Date March 22, 2024
Submission Date March 3, 2023
Published in Issue Year 2024 Volume: 10 Issue: 2

Cite

APA Rajendran, R., Venkatachalapathy, V., Velmurugan, K., Elangovan, M., et al. (2024). Study on exhaust gas recirculation diesel engine using karanja oil methyl ester with low heat rejection in direct injection. Journal of Thermal Engineering, 10(2), 396-403. https://doi.org/10.18186/thermal.1448677
AMA Rajendran R, Venkatachalapathy V, Velmurugan K, Elangovan M, Balu P. Study on exhaust gas recirculation diesel engine using karanja oil methyl ester with low heat rejection in direct injection. Journal of Thermal Engineering. March 2024;10(2):396-403. doi:10.18186/thermal.1448677
Chicago Rajendran, Ravisankar, V.s.k. Venkatachalapathy, K. Velmurugan, M. Elangovan, and P. Balu. “Study on Exhaust Gas Recirculation Diesel Engine Using Karanja Oil Methyl Ester With Low Heat Rejection in Direct Injection”. Journal of Thermal Engineering 10, no. 2 (March 2024): 396-403. https://doi.org/10.18186/thermal.1448677.
EndNote Rajendran R, Venkatachalapathy V, Velmurugan K, Elangovan M, Balu P (March 1, 2024) Study on exhaust gas recirculation diesel engine using karanja oil methyl ester with low heat rejection in direct injection. Journal of Thermal Engineering 10 2 396–403.
IEEE R. Rajendran, V. Venkatachalapathy, K. Velmurugan, M. Elangovan, and P. Balu, “Study on exhaust gas recirculation diesel engine using karanja oil methyl ester with low heat rejection in direct injection”, Journal of Thermal Engineering, vol. 10, no. 2, pp. 396–403, 2024, doi: 10.18186/thermal.1448677.
ISNAD Rajendran, Ravisankar et al. “Study on Exhaust Gas Recirculation Diesel Engine Using Karanja Oil Methyl Ester With Low Heat Rejection in Direct Injection”. Journal of Thermal Engineering 10/2 (March 2024), 396-403. https://doi.org/10.18186/thermal.1448677.
JAMA Rajendran R, Venkatachalapathy V, Velmurugan K, Elangovan M, Balu P. Study on exhaust gas recirculation diesel engine using karanja oil methyl ester with low heat rejection in direct injection. Journal of Thermal Engineering. 2024;10:396–403.
MLA Rajendran, Ravisankar et al. “Study on Exhaust Gas Recirculation Diesel Engine Using Karanja Oil Methyl Ester With Low Heat Rejection in Direct Injection”. Journal of Thermal Engineering, vol. 10, no. 2, 2024, pp. 396-03, doi:10.18186/thermal.1448677.
Vancouver Rajendran R, Venkatachalapathy V, Velmurugan K, Elangovan M, Balu P. Study on exhaust gas recirculation diesel engine using karanja oil methyl ester with low heat rejection in direct injection. Journal of Thermal Engineering. 2024;10(2):396-403.

IMPORTANT NOTE: JOURNAL SUBMISSION LINK http://eds.yildiz.edu.tr/journal-of-thermal-engineering