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Experimental investigations on performance improvement of multi point sequential fuel injection engine by reducing back pressure

Year 2025, Volume: 11 Issue: 5, 1497 - 1506, 21.10.2025

Abstract

Substantial developments in automotive technology have led to the recent explosion in the availability of high-performance vehicles. One of the most important components of inter-nal combustion engines for reducing fuel consumption and exhaust emissions. Exhaust back pressure, a critical engine characteristic regulates the amount of internal exhaust gas trapped in the cylinder, affecting emissions and engine performance. The present work is focused on improving the performance of a multipoint sequential fuel injection engine by reducing the back pressure. The performance tests were carried out on a Hyundai i10 engine (1200 cc, multi-cylinder, 3000 rpm maximum speed). This study includes introducing fresh jet air at various flow rates into the exhaust system to reduce the concentration of exhaust gas contaminants and provide the desired backpressure while accounting for changes in engine speed. The effect of backpressure on various engine performance parameters at different engine speed conditions has been analyzed. It is inferred from the present study that at 2000 engine rpm, the temperature of exhaust gas drops between 50oC and 90°C and there is a marginal increase in the volumetric efficiency from 4.5 to 6.25%. The engine power increased about 6 to 8.2% at this operating condition.

References

  • REFERENCES
  • [1] Bober B, Andrych-Zalewska M, Boguś P. Influence of exhaust manifold modification on engine power. Combust Engines 2024;196:54–65. [CrossRef]
  • [2] Venkatesan SP, Ganesan S, Devaraj R, Hemanandh J. Design and analysis of exhaust manifold of the spark ignition engine for emission reduction. Int J Ambient Energy 2020;41:659–664. [CrossRef]
  • [3] Shekhar R, Singh Dhugga P, Malik K. CFD analysis of back pressure due to bend in exhaust pipe of 4 stroke petrol engine. Int J Aerosp Mech Eng 2016;3:3–5.
  • [4] Deng X, Chen Z, Wang X, Zhen H, Xie R. Exhaust noise, performance and emission characteristics of spark ignition engine fuelled with pure gasoline and hydrous ethanol gasoline blends. Case Stud Therm Eng 2018;12:55–63. [CrossRef]
  • [5] Kritsanaviparkporn E, Baena-Moreno FM, Reina TR. Catalytic converters for vehicle exhaust: fundamental aspects and technology overview for newcomers to the field. Chemistry 2021;3:630–646. [CrossRef]
  • [6] Bhandari R, Joshi P, Ghimire A, Tamrakar A. Study and optimization of muffler to reduce back pressure of exhaust system. SSRN Electron J 2023. Preprint. doi: 10.2139/ssrn.4615719 [CrossRef]
  • [7] Thirumurugaveerakumar S. Design and optimization of muffler back pressure. AIP Conf Proc 2020;2270. [CrossRef]
  • [8] Lee J, Park C, Kim Y, Choi Y, Bae J, Lim B. Effect of turbocharger on performance and thermal efficiency of hydrogen-fueled spark ignition engine. Int J Hydrogen Energy 2019;44:4350–4360. [CrossRef]
  • [9] Leman AM, Rahman F, Jajuli A, Zakaria S, Feriyanto D. Emission treatment towards cold start and back pressure in internal combustion engine against performance of catalytic converter: a review. MATEC Web Conf 2016;87:02021. [CrossRef]
  • [10] Fernoaga V, Sandu V, Balan T. Artificial intelligence for the prediction of exhaust back pressure effect on the performance of diesel engines. Appl Sci 2020;10:7370. [CrossRef]
  • [11] Liu H, Li Z, Zhang M, Xu H, Ma X, Shuai S. Exhaust non-volatile particle filtration characteristics of three-way catalyst and influencing factors in a gasoline direct injection engine compared to gasoline particulate filter. Fuel 2021;290:120065. [CrossRef]
  • [12] Umesh KS, Pravin V, Rajagopal K. Experimental investigation and CFD analysis of a multi-cylinder four stroke SI engine exhaust manifold for optimal geometry to reduce backpressure and to improve fuel efficiency. Int J Automob Eng 2014;4:13–20.
  • [13] Murali R, Shahriman AB, Razlan ZM, Ahmad WKW, Azizul AI, Rojan MA, et al. A review on the correlation between exhaust backpressure and the performance of IC engine. J Phys Conf Ser 2021;2051:012044. [CrossRef]
  • [14] Murali R, Shahriman AB, Razlan ZM, Rojan MA, Azizul AI, Rani MFH, et al. A study on the significance of exhaust manifold’s bending angle to the brake torque of 115cc SI engine. J Phys Conf Ser 2023;2643:012016. [CrossRef]
  • [15] Choi Y, Lee J, Jang J, Park S. Effects of fuel-injection systems on particle emission characteristics of gasoline vehicles. Atmos Environ 2019;217:116941. [CrossRef]
  • [16] Kang IS, Yang SM. The effect of back pressure change on exhaust emissions according to the confluence geometry of a dual exhaust system in idling. Appl Sci 2022;12:1855. [CrossRef]
  • [17] Jang J, Lee J, Choi Y, Park S. Reduction of particle emissions from gasoline vehicles with direct fuel injection systems using a gasoline particulate filter. Sci Total Environ 2018;644:1418–1428. [CrossRef]
  • [18] Gülmez Y, Özmen G. Effects of exhaust backpressure increment on the performance and exhaust emissions of a single cylinder diesel engine. J Eta Marit Sci 2021;9:177–191. [CrossRef]
  • [19] Sivaram AR, Rajavel R, Jayakumar N, Vinothkumar M. Exhaust back pressure effect on the performance features of a diesel engine. ARPN J Eng Appl Sci 2017;12:5353–5356.
  • [20] Huang L, Liu J, Liu R, Wang Y, Liu L. Experimental investigation on combustion and performance of diesel engine under high exhaust back pressure. Machines 2022;10:919. [CrossRef]
  • [21] Bhure S. Effect of exhaust back pressure on performance and emission characteristics of diesel engine equipped with diesel oxidation catalyst and exhaust gas recirculation. Int J Veh Struct Syst 2018;10:199–203. [CrossRef]
  • [22] Sapra H, Godjeva M, Visser K, Stapersma D, Dijkstra C. Experimental and simulation-based investigations of marine diesel engine performance against static back pressure. Appl Energy 2017;204:78–92. [CrossRef]

Year 2025, Volume: 11 Issue: 5, 1497 - 1506, 21.10.2025

Abstract

References

  • REFERENCES
  • [1] Bober B, Andrych-Zalewska M, Boguś P. Influence of exhaust manifold modification on engine power. Combust Engines 2024;196:54–65. [CrossRef]
  • [2] Venkatesan SP, Ganesan S, Devaraj R, Hemanandh J. Design and analysis of exhaust manifold of the spark ignition engine for emission reduction. Int J Ambient Energy 2020;41:659–664. [CrossRef]
  • [3] Shekhar R, Singh Dhugga P, Malik K. CFD analysis of back pressure due to bend in exhaust pipe of 4 stroke petrol engine. Int J Aerosp Mech Eng 2016;3:3–5.
  • [4] Deng X, Chen Z, Wang X, Zhen H, Xie R. Exhaust noise, performance and emission characteristics of spark ignition engine fuelled with pure gasoline and hydrous ethanol gasoline blends. Case Stud Therm Eng 2018;12:55–63. [CrossRef]
  • [5] Kritsanaviparkporn E, Baena-Moreno FM, Reina TR. Catalytic converters for vehicle exhaust: fundamental aspects and technology overview for newcomers to the field. Chemistry 2021;3:630–646. [CrossRef]
  • [6] Bhandari R, Joshi P, Ghimire A, Tamrakar A. Study and optimization of muffler to reduce back pressure of exhaust system. SSRN Electron J 2023. Preprint. doi: 10.2139/ssrn.4615719 [CrossRef]
  • [7] Thirumurugaveerakumar S. Design and optimization of muffler back pressure. AIP Conf Proc 2020;2270. [CrossRef]
  • [8] Lee J, Park C, Kim Y, Choi Y, Bae J, Lim B. Effect of turbocharger on performance and thermal efficiency of hydrogen-fueled spark ignition engine. Int J Hydrogen Energy 2019;44:4350–4360. [CrossRef]
  • [9] Leman AM, Rahman F, Jajuli A, Zakaria S, Feriyanto D. Emission treatment towards cold start and back pressure in internal combustion engine against performance of catalytic converter: a review. MATEC Web Conf 2016;87:02021. [CrossRef]
  • [10] Fernoaga V, Sandu V, Balan T. Artificial intelligence for the prediction of exhaust back pressure effect on the performance of diesel engines. Appl Sci 2020;10:7370. [CrossRef]
  • [11] Liu H, Li Z, Zhang M, Xu H, Ma X, Shuai S. Exhaust non-volatile particle filtration characteristics of three-way catalyst and influencing factors in a gasoline direct injection engine compared to gasoline particulate filter. Fuel 2021;290:120065. [CrossRef]
  • [12] Umesh KS, Pravin V, Rajagopal K. Experimental investigation and CFD analysis of a multi-cylinder four stroke SI engine exhaust manifold for optimal geometry to reduce backpressure and to improve fuel efficiency. Int J Automob Eng 2014;4:13–20.
  • [13] Murali R, Shahriman AB, Razlan ZM, Ahmad WKW, Azizul AI, Rojan MA, et al. A review on the correlation between exhaust backpressure and the performance of IC engine. J Phys Conf Ser 2021;2051:012044. [CrossRef]
  • [14] Murali R, Shahriman AB, Razlan ZM, Rojan MA, Azizul AI, Rani MFH, et al. A study on the significance of exhaust manifold’s bending angle to the brake torque of 115cc SI engine. J Phys Conf Ser 2023;2643:012016. [CrossRef]
  • [15] Choi Y, Lee J, Jang J, Park S. Effects of fuel-injection systems on particle emission characteristics of gasoline vehicles. Atmos Environ 2019;217:116941. [CrossRef]
  • [16] Kang IS, Yang SM. The effect of back pressure change on exhaust emissions according to the confluence geometry of a dual exhaust system in idling. Appl Sci 2022;12:1855. [CrossRef]
  • [17] Jang J, Lee J, Choi Y, Park S. Reduction of particle emissions from gasoline vehicles with direct fuel injection systems using a gasoline particulate filter. Sci Total Environ 2018;644:1418–1428. [CrossRef]
  • [18] Gülmez Y, Özmen G. Effects of exhaust backpressure increment on the performance and exhaust emissions of a single cylinder diesel engine. J Eta Marit Sci 2021;9:177–191. [CrossRef]
  • [19] Sivaram AR, Rajavel R, Jayakumar N, Vinothkumar M. Exhaust back pressure effect on the performance features of a diesel engine. ARPN J Eng Appl Sci 2017;12:5353–5356.
  • [20] Huang L, Liu J, Liu R, Wang Y, Liu L. Experimental investigation on combustion and performance of diesel engine under high exhaust back pressure. Machines 2022;10:919. [CrossRef]
  • [21] Bhure S. Effect of exhaust back pressure on performance and emission characteristics of diesel engine equipped with diesel oxidation catalyst and exhaust gas recirculation. Int J Veh Struct Syst 2018;10:199–203. [CrossRef]
  • [22] Sapra H, Godjeva M, Visser K, Stapersma D, Dijkstra C. Experimental and simulation-based investigations of marine diesel engine performance against static back pressure. Appl Energy 2017;204:78–92. [CrossRef]
There are 23 citations in total.

Details

Primary Language English
Subjects Computational Methods in Fluid Flow, Heat and Mass Transfer (Incl. Computational Fluid Dynamics)
Journal Section Articles
Authors

Chandrakumar Pardhi This is me 0000-0001-5395-675X

Anshul Gangele This is me 0000-0001-6371-1174

Sanjay Chhalotre This is me 0000-0002-8609-1665

C.p. Jawahar This is me 0000-0001-6674-8247

Publication Date October 21, 2025
Submission Date September 14, 2024
Acceptance Date January 14, 2025
Published in Issue Year 2025 Volume: 11 Issue: 5

Cite

APA Pardhi, C., Gangele, A., Chhalotre, S., Jawahar, C. (2025). Experimental investigations on performance improvement of multi point sequential fuel injection engine by reducing back pressure. Journal of Thermal Engineering, 11(5), 1497-1506. https://doi.org/10.14744/thermal.0000989
AMA Pardhi C, Gangele A, Chhalotre S, Jawahar C. Experimental investigations on performance improvement of multi point sequential fuel injection engine by reducing back pressure. Journal of Thermal Engineering. October 2025;11(5):1497-1506. doi:10.14744/thermal.0000989
Chicago Pardhi, Chandrakumar, Anshul Gangele, Sanjay Chhalotre, and C.p. Jawahar. “Experimental Investigations on Performance Improvement of Multi Point Sequential Fuel Injection Engine by Reducing Back Pressure”. Journal of Thermal Engineering 11, no. 5 (October 2025): 1497-1506. https://doi.org/10.14744/thermal.0000989.
EndNote Pardhi C, Gangele A, Chhalotre S, Jawahar C (October 1, 2025) Experimental investigations on performance improvement of multi point sequential fuel injection engine by reducing back pressure. Journal of Thermal Engineering 11 5 1497–1506.
IEEE C. Pardhi, A. Gangele, S. Chhalotre, and C. Jawahar, “Experimental investigations on performance improvement of multi point sequential fuel injection engine by reducing back pressure”, Journal of Thermal Engineering, vol. 11, no. 5, pp. 1497–1506, 2025, doi: 10.14744/thermal.0000989.
ISNAD Pardhi, Chandrakumar et al. “Experimental Investigations on Performance Improvement of Multi Point Sequential Fuel Injection Engine by Reducing Back Pressure”. Journal of Thermal Engineering 11/5 (October2025), 1497-1506. https://doi.org/10.14744/thermal.0000989.
JAMA Pardhi C, Gangele A, Chhalotre S, Jawahar C. Experimental investigations on performance improvement of multi point sequential fuel injection engine by reducing back pressure. Journal of Thermal Engineering. 2025;11:1497–1506.
MLA Pardhi, Chandrakumar et al. “Experimental Investigations on Performance Improvement of Multi Point Sequential Fuel Injection Engine by Reducing Back Pressure”. Journal of Thermal Engineering, vol. 11, no. 5, 2025, pp. 1497-06, doi:10.14744/thermal.0000989.
Vancouver Pardhi C, Gangele A, Chhalotre S, Jawahar C. Experimental investigations on performance improvement of multi point sequential fuel injection engine by reducing back pressure. Journal of Thermal Engineering. 2025;11(5):1497-506.

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