(Publisher of Peer Reviewed Open Access Journals)

International Journal of Advanced Technology and Engineering Exploration (IJATEE)

ISSN (Print):2394-5443    ISSN (Online):2394-7454
Volume-9 Issue-86 January-2022
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Paper Title : Thermodynamic study in a diesel engine using karanja biodiesel-diethyl ether-producer gas
Author Name : Pradipta Kumar Dash, Shakti Prakash Jena and Harish Chandra Das
Abstract :

In the current experimentation, a thermodynamic assessment was performed in a 4-stroke compression ignition engine (CIE) running in dual-fuel mode. The ternary blend of karanja biodiesel, diethyl ether along with diesel was used as pilot fuel and producer gas was used as inducted fuel to run the engine. The findings indicate that brake-specific energy consumption (BSEC) increased with the induction of producer gas (PG). The mixing of diethyl ether (DEE) by 5% on a volume basis has reduced the BSEC in dual fuel run that approaches the base result (diesel alone operation). The exergy destruction and exergy efficiency curve also indicate the positive influence of DEE on dual fuel performance. 10% volume blend of karanja oil methyl ester with diesel (B10) when further mixed with a 5% volume blend of DEE gave the highest diesel saving of 86.7% in dual-fuel run with PG followed by B10 + PG (84.5%), Diesel + 5DEE + PG (83.6%) and diesel + PG (78.5%) at 80% engine load operation.

Keywords : Biodiesel, Diethyl ether, Producer gas, Exergy destruction.
Cite this article : Dash PK, Jena SP, Das HC. Thermodynamic study in a diesel engine using karanja biodiesel-diethyl ether-producer gas. International Journal of Advanced Technology and Engineering Exploration. 2022; 9(86):16-27. DOI:10.19101/IJATEE.2021.874974.
References :
[1]Yesilyurt MK, Aydin M. Experimental investigation on the performance, combustion and exhaust emission characteristics of a compression-ignition engine fueled with cottonseed oil biodiesel/diethyl ether/diesel fuel blends. Energy Conversion and Management. 2020.
[Crossref] [Google Scholar]
[2]Jena SP, Mahapatra S, Acharya SK. Optimization of performance and emission characteristics of a diesel engine fueled with karanja biodiesel using grey-taguchi method. Materials Today: Proceedings. 2021; 41:180-5.
[Crossref] [Google Scholar]
[3]Loganathan M, Madhavan VM, Balasubramanian KA, Thanigaivelan V, Vikneswaran M, Anbarasu A. Investigation on the effect of diethyl ether with hydrogen-enriched cashew nut shell (CNS) biodiesel in direct injection (DI) diesel engine. Fuel. 2020.
[Crossref] [Google Scholar]
[4]Ferguson CR, Kirkpatrick AT. Internal combustion engines: applied thermosciences. John Wiley & Sons; 2015.
[Google Scholar]
[5]Banapurmath NR, Yaliwal VS, Hosmath RS, Indudhar MR, Guluwadi S, Bidari S. Dual fuel engines fueled with three gaseous and biodiesel fuel combinations. Biofuels. 2018; 9(1):75-87.
[Crossref] [Google Scholar]
[6]Yaliwal VS, Banapurmath NR. Combustion and emission characteristics of a compression ignition engine operated on dual fuel mode using renewable and sustainable fuel combinations. SN Applied Sciences. 2021; 3(1):1-15.
[Crossref] [Google Scholar]
[7]Ram NK, Singh NR, Raman P, Kumar A, Kaushal P. A detailed experimental analysis of air–steam gasification in a dual fired downdraft biomass gasifier enabling hydrogen enrichment in the producer gas. Energy. 2019.
[Crossref] [Google Scholar]
[8]Nayak SK, Mishra PC. Achieving high performance and low emission in a dual fuel operated engine with varied injection parameters and combustion chamber shapes. Energy Conversion and Management. 2019; 180:1-24.
[Crossref] [Google Scholar]
[9]Carlucci AP, Ficarella A, Laforgia D, Strafella L. Improvement of dual-fuel biodiesel-producer gas engine performance acting on biodiesel injection parameters and strategy. Fuel. 2017; 209:754-68.
[Crossref] [Google Scholar]
[10]Lal S, Mohapatra SK. The effect of compression ratio on the performance and emission characteristics of a dual fuel diesel engine using biomass derived producer gas. Applied Thermal Engineering. 2017; 119:63-72.
[Crossref] [Google Scholar]
[11]Bates R, Dölle K. Dual fueling a diesel engine with producer gas produced from woodchips. Advances in Research. 2018; 14(1):1-9.
[Google Scholar]
[12]Akkoli KM, Banapurmath NR, Shivashimpi MM, Soudagar ME, Badruddin IA, Alazwari MA, et al. Effect of injection parameters and producer gas derived from redgram stalk on the performance and emission characteristics of a diesel engine. Alexandria Engineering Journal. 2021; 60(3):3133-42.
[Crossref] [Google Scholar]
[13]Suryawanshi S, Yarasu R. Mixing performance analysis of producer gas carburetors for a dual fuel CI engine. Journal of the Institution of Engineers (India): Series C. 2021; 102(5):1251-9.
[Crossref] [Google Scholar]
[14]Basha JS, Al BM, Al SK, Al FM, Al RS, Al MS, et al. An emission control strategy in a low capacity single cylinder compression ignition engine powered with dee blended fuels. Materials Science for Energy Technologies. 2020; 3:770-9.
[Crossref] [Google Scholar]
[15]Raman R, Kumar N. Performance and emission characteristics of twin cylinder diesel engine fueled with mahua biodiesel and DEE. Transportation Engineering. 2020.
[Crossref] [Google Scholar]
[16]Rath MK, Acharya SK, Roy S. Thermodynamic analysis of compression ignition engine using neat karanja oil under varying compression ratio. International Journal of Ambient Energy. 2016; 37(1):94-102.
[Crossref] [Google Scholar]
[17]Verma S, Das LM, Kaushik SC. Effects of varying composition of biogas on performance and emission characteristics of compression ignition engine using exergy analysis. Energy Conversion and Management. 2017; 138:346-59.
[Crossref] [Google Scholar]
[18]Jena SP, Acharya SK. Thermodynamic analysis of a thermal barrier-coated CI engine in a dual-fuel mode using biogas. International Journal of Ambient Energy. 2020:1-9.
[Crossref] [Google Scholar]
[19]Verma S, Kumar K, Das LM, Kaushik SC. Effect of hydrogen enrichment strategy on performance and emission features of biodiesel-biogas dual fuel engine using simulation and experimental analyses. Journal of Energy Resources Technology. 2021; 143(9).
[Crossref] [Google Scholar]
[20]Sarkar A, Saha UK. Energetic and exergetic analyses of a dual-fuel diesel engine run on preheated intake biogas-air mixture and oxygenated pilot fuels. Journal of Energy Engineering. 2020; 146(5).
[Crossref] [Google Scholar]
[21]Rangasamy M, Duraisamy G, Govindan N. A comprehensive parametric, energy and exergy analysis for oxygenated biofuels based dual-fuel combustion in an automotive light duty diesel engine. Fuel. 2020.
[Crossref] [Google Scholar]
[22]Selmane F, Djermouni M, Ouadha A. Thermodynamic modeling of a turbocharged diesel–hydrogen dual-fuel marine engine. Journal of the Institution of Engineers (India): Series C. 2021; 102(1):221-34.
[Crossref] [Google Scholar]
[23]Nayak C, Achrya SK, Swain RK. Performance of a twin cylinder dual-fuel diesel engine using blends of neat karanja oil and producer gas. International Journal of Ambient Energy. 2016; 37(1):36-45.
[Crossref] [Google Scholar]