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Investigation on Ammonia–Biodiesel Fueled RCCI Combustion Engine Using a Split Injection Strategy

[Image: see text] Advanced combustion concepts in compression ignition are emerging as one of the most promising solutions to reduce nitrogen oxides (NO(x)) and particle emissions without sacrificing fuel efficiency. Among many advanced combustion concepts, reactive controlled compression ignition (...

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Autores principales: Ramachandran, Elumalai, Krishnaiah, Ravi, Perumal Venkatesan, Elumalai, Saleel, Chanduveetil Ahamed, Shaik, Saboor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10468844/
https://www.ncbi.nlm.nih.gov/pubmed/37663499
http://dx.doi.org/10.1021/acsomega.3c02641
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author Ramachandran, Elumalai
Krishnaiah, Ravi
Perumal Venkatesan, Elumalai
Saleel, Chanduveetil Ahamed
Shaik, Saboor
author_facet Ramachandran, Elumalai
Krishnaiah, Ravi
Perumal Venkatesan, Elumalai
Saleel, Chanduveetil Ahamed
Shaik, Saboor
author_sort Ramachandran, Elumalai
collection PubMed
description [Image: see text] Advanced combustion concepts in compression ignition are emerging as one of the most promising solutions to reduce nitrogen oxides (NO(x)) and particle emissions without sacrificing fuel efficiency. Among many advanced combustion concepts, reactive controlled compression ignition (RCCI) can achieve a wider working range. In this study, to implement RCCI operation, ammonia gas is introduced through the manifold as a low-reactive fuel, and biodiesel is injected directly as a high-reactivity fuel with a 40:60 energy ratio. The effect of biodiesel split ratio in a split injection strategy (pre- and main injections) is examined under varied load conditions, and the results are compared with ammonia/biodiesel single injection. Results indicate that the use of the 45% biodiesel split ratio at full load boosts the peak in-cylinder pressure and heat release rate and shifts the peak occurrence toward the top dead center (TDC). An increase in brake thermal efficiency (BTE) to 36.22% and reduced brake specific energy consumption (BSEC) to 8.75 MJ/kWh are 12.33% higher and 19.31% lower than ammonia/biodiesel single injection. Emissions of HC, CO, and smoke opacity were reduced to 50 ppm, 0.098% vol, and 15.6%, which are 34.21, 39.13, and 33.89% lower, while the emission of NO(x) was increased to 615 ppm, which is 36.06% higher than the single-injection ammonia/biodiesel RCCI combustion.
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spelling pubmed-104688442023-09-01 Investigation on Ammonia–Biodiesel Fueled RCCI Combustion Engine Using a Split Injection Strategy Ramachandran, Elumalai Krishnaiah, Ravi Perumal Venkatesan, Elumalai Saleel, Chanduveetil Ahamed Shaik, Saboor ACS Omega [Image: see text] Advanced combustion concepts in compression ignition are emerging as one of the most promising solutions to reduce nitrogen oxides (NO(x)) and particle emissions without sacrificing fuel efficiency. Among many advanced combustion concepts, reactive controlled compression ignition (RCCI) can achieve a wider working range. In this study, to implement RCCI operation, ammonia gas is introduced through the manifold as a low-reactive fuel, and biodiesel is injected directly as a high-reactivity fuel with a 40:60 energy ratio. The effect of biodiesel split ratio in a split injection strategy (pre- and main injections) is examined under varied load conditions, and the results are compared with ammonia/biodiesel single injection. Results indicate that the use of the 45% biodiesel split ratio at full load boosts the peak in-cylinder pressure and heat release rate and shifts the peak occurrence toward the top dead center (TDC). An increase in brake thermal efficiency (BTE) to 36.22% and reduced brake specific energy consumption (BSEC) to 8.75 MJ/kWh are 12.33% higher and 19.31% lower than ammonia/biodiesel single injection. Emissions of HC, CO, and smoke opacity were reduced to 50 ppm, 0.098% vol, and 15.6%, which are 34.21, 39.13, and 33.89% lower, while the emission of NO(x) was increased to 615 ppm, which is 36.06% higher than the single-injection ammonia/biodiesel RCCI combustion. American Chemical Society 2023-08-19 /pmc/articles/PMC10468844/ /pubmed/37663499 http://dx.doi.org/10.1021/acsomega.3c02641 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Ramachandran, Elumalai
Krishnaiah, Ravi
Perumal Venkatesan, Elumalai
Saleel, Chanduveetil Ahamed
Shaik, Saboor
Investigation on Ammonia–Biodiesel Fueled RCCI Combustion Engine Using a Split Injection Strategy
title Investigation on Ammonia–Biodiesel Fueled RCCI Combustion Engine Using a Split Injection Strategy
title_full Investigation on Ammonia–Biodiesel Fueled RCCI Combustion Engine Using a Split Injection Strategy
title_fullStr Investigation on Ammonia–Biodiesel Fueled RCCI Combustion Engine Using a Split Injection Strategy
title_full_unstemmed Investigation on Ammonia–Biodiesel Fueled RCCI Combustion Engine Using a Split Injection Strategy
title_short Investigation on Ammonia–Biodiesel Fueled RCCI Combustion Engine Using a Split Injection Strategy
title_sort investigation on ammonia–biodiesel fueled rcci combustion engine using a split injection strategy
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10468844/
https://www.ncbi.nlm.nih.gov/pubmed/37663499
http://dx.doi.org/10.1021/acsomega.3c02641
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