Research Article
BibTex RIS Cite

Harnessing response surface methodology for diesel engine optimization using titanium dioxide-enhanced rice bran biodiesel to improve emissions and efficiency

Year 2025, Volume: 11 Issue: 5, 1276 - 1292, 21.10.2025

Abstract

The present work is associated with synergistic optimization and the effect of three operational variables, namely Load on the engine, rice bran biodiesel Blend, and TiO2 Nanoparticle for
emission attenuation of HC, CO2, NOx, O2, and CO, along with BTE amelioration of diesel engine sustainability. Under the category of Empirical Research work, Central Composite Design-based Response Surface Modeling and analysis of variance were done to find out the best suitable mathematical relationship with the most and least significant operational variable for all responses at a 95% level of confidence and 5% significance factor. Experimental data were obtained using a diesel engine test rig with biodiesel blends up to 30% and TiO₂ nanoparticles up to 200 ppm, under low, medium, and high load conditions. The responses were optimized using MINITAB with contour and surface plots. The optimum combination of three operation parameters reported as 2.64094 kW engine Load, 30 ppm rice bran Biodiesel, and 141.742 ppm TiO2 nanoparticles. Additionally, the optimal combination included CO 0.050% of the total sample, CO2 3.30% of the total sample, HC 13.29 ppm, NOX 385.78 ppm, and BTE 32.50%, resulting in a desirability effect of 73.74%; Improves BTE by 31.4% compared to pure diesel at low load and 22.9% at high load. A confirmation test run validates the result with a forecast error of less than 4%, with remarkable emissions reduction and performance gain of regular diesel engines without major changes, making it an eco-friendly option for the future.

References

  • [1] Singh Pali H, Kumar M, Nguyen NV, Singh Y, Deepanraj B, Quy P, et al. Enhancement of combustion characteristics of waste cooking oil biodiesel using TiO2 nanofluid blends through RSM. Fuel 2023;331:125681–125681. [Crossref]
  • [2] Balajii M, Niju S. Esterification optimization of underutilized Ceiba pentandra oil using response surface methodology. Biofuels 2021;12:495–502. [Crossref]
  • [3] Rajak R, Chattopadhyay A. Short and Long Term Exposure to Ambient Air Pollution and Impact on Health in India: A Systematic Review. Int J Environ Health Res 2020;30:593–617. [Crossref]
  • [4] Walsh MP. Mobile source related air pollution: Effects on health and the environment. Encycl Environ Heal 2019;436–442. [Crossref]
  • [5] International Energy Agency. World Energy Outlook 2021. Available at: https://www.iea.org/reports/world-energy-outlook-2021 Accessed on Sep 5, 2025
  • [6] US Energy Information Administration (EIA). International Energy Outlook 2017 Overview. Available at: https://www.eia.gov/outlooks/ieo/pdf/0484(2017).pdf. Accessed on Sep 5, 2025
  • [7] Sustainable T, Project M. Mobility 2030. World Bussiness Counc Sustain Dev 2014.
  • [8] ROOT MH. International Energy Agency 2012. Available at https://www.iea.org/reports/world-energy-outlook-2012
  • [9] Dye C, Reeder JC, Terry RF. Research for universal health coverage. Sci Transl Med. 2013;5:199. [Crossref]
  • [10] S. L. C. Richard PK, Allan, Arias PA, Berger S, Canadell JG, Cassou C , Chen D, Cherchi A. Climate Change 2021. Available at: https://www.ipcc.ch/report/ar6/wg1/. Accessed on Sep 5, 2025
  • [11] Raheman H, Phadatare AG. Performance of compression ignition engine with mahua (Madhuca indica) biodiesel. Fuel 2007;86:2568–2573. [Crossref]
  • [12] Makepa DC, Chihobo CH, Musademba D. Advances in sustainable biofuel production from fast pyrolysis of lignocellulosic biomass. Biofuels. 2023;14:529–550. [Crossref]
  • [13] Chandrasekaran V, Arthanarisamy M, Nachiappan P, Dhanakotti S, Moorthy B. The role of nano additives for biodiesel and diesel blended transportation fuels. Transp Res Part D Transp Environ. 2016;46:145–156. [Crossref]
  • [14] Sundar SP, P Vijayabalan, Hemalatha D, Ramani B, Chamkha JA, Sathyamurthy R, et al. Feasibility study of neat plastic oil with TiO₂ nanoadditive as an alternative fuel in internal combustion engine. J Therm Anal Calorim 2022;147:2567–2578. [Crossref]
  • [15] Fasogbon SK, Oyedepo SO. Nano-additive blends examination of performance and emission profile of CI engines fuelled with waste cooking oil based-biodiesel. J Therm Eng. 2025;11:1–15. [Crossref]
  • [16] Khankal D, Hole S, Gadekar H, Jagtap A, Pandhare A. Comparative analysis of performance and emission from single cylinder diesel engine fuelled with mango kernel biodiesel. J Therm Eng 2024;10:1632–1646. [Crossref]
  • [17] Yamini K, Kishore PS, Dhana Raju V. Effect of diethyl ether and isobutanol as fuel additives on the diesel engine attributes fueled with subabul seed biodiesel. J Therm Eng 2025;11:215–225. [Crossref]
  • [18] Sharma P, Le MP, Chhillar A, Said Z, Deepanraj B, Cao DN, et al. Using response surface methodology approach for optimizing performance and emission parameters of diesel engine powered with ternary blend of Solketal‑biodiesel‑diesel. Sustain Energy Technol Assessments 2022;52. [Crossref]
  • [19] I Veza, Karaoglan AD, Ileri E, Afzal A, Hoang AT, Tamaldin N, et al. Multi‑objective optimization of diesel engine performance and emission using grasshopper optimization algorithm. Fuel 2022;323. [Crossref]
  • [20] Gbadeyan OJ, Muthivhi J, Linganiso LZ, Mpongwana N, Dziike F, Deenadayalu N. Recent improvements to ensure sustainability of biodiesel production. Biofuels 2024;15:1063–1077. [Crossref]
  • [21] Rajan K, Prabhahar M, Senthilkumar KR. Experimental studies on the performance, emission and combustion characteristics of a biodiesel‑fuelled (Pongamia methyl ester) diesel engine with diethyl ether as an oxygenated fuel additive. Int J Ambient Energy 2016;37:439–445. [Crossref]
  • [22] Kumar S, Dinesha P, Bran I. Influence of nanoparticles on the performance and emission characteristics of a biodiesel fuelled engine: An experimental analysis. Energy 2017;140:98–105. [Crossref]
  • [23] ASTM D6751‑15c. Standard Specification for Biodiesel Fuel Blend Stock (B100) for Middle Distillate Fuels. ASTM Int 2010;i:1–11.
  • [24] Prasad A, Sivanraju R, Teklemariam A, Tafesse D, Tufa M, Bejaxhin BH. Influence of nano additives on performance and emissions characteristics of a diesel engine fueled with watermelon methyl ester. J Therm Eng 2023;9:395–400. [Crossref]
  • [25] Machado Corrêa S, Arbilla G. Carbonyl emissions in diesel and biodiesel exhaust. Atmos Environ 2008;42:769–775. [Crossref]
  • [26] Raheman H, Phadatare AG. Diesel engine emissions and performance from blends of karanja methyl ester and diesel. Biomass Bioenergy 2004;27:393–397. [Crossref]
  • [27] Venkata Subbaiah G, Raja Gopal K. An experimental investigation on the performance and emission characteristics of a diesel engine fuelled with rice bran biodiesel and ethanol blends. Int J Green Energy 2011;8:197–208. [Crossref]
  • [28] Alam A, Kalam MA, Habibullah M, Hossain MM, Masjuki HH, Rashedul HK, et al. Impact of edible and non‑edible biodiesel fuel properties and engine operation condition on the performance and emission characteristics of unmodified DI diesel engine. Biofuels 2016;7:219–232. [Crossref]
  • [29] Çalhan R, Kaskun Ergani S. The impacts of nano fuels containing Fe‑Ni‑TiO₂/activated carbon nanoparticles on diesel engine performance and emission characteristics. Biofuels 2023;14:661–671. [Crossref]
  • [30] Kumar S, Dinesha P, Bran I. Experimental investigation of the effects of nanoparticles as an additive in diesel and biodiesel fuelled engines: a review. Biofuels 2019;10:615–622. [Crossref]
  • [31] Jaikumar S, Srinivas V, Rajasekhar M. Influence of dispersant added nanoparticle additives with diesel‑biodiesel blend on direct injection compression ignition engine: Combustion, engine performance, and exhaust emissions approach. Energy 2021;224:120197. [Crossref]
  • [32] Mahalingam S, Ganesan S. Effect of nano‑fuel additive on performance and emission characteristics of the diesel engine using biodiesel blends with diesel fuel. Int J Ambient Energy 2020;41:316–321. [Crossref]
  • [33] Soudagar MEM, Nik‑Ghazali NN, Abul Kalam M, Badruddin IA, Banapurmath NR, Akram N. The effect of nano‑additives in diesel‑biodiesel fuel blends: A comprehensive review on stability, engine performance and emission characteristics. Energy Convers Manag 2018;178:146–177. [Crossref]
  • [34] Yusof SNA, Sidik NAC, Asako Y, Japar WMAA, Mohamed SB, az Muhammad NM. A comprehensive review of the influences of nanoparticles as a fuel additive in an internal combustion engine (ICE). Nanotechnol Rev 2021;9:1326–1349. [Crossref]
  • [35] Giwa SO, Aasa SA, Shote AS, Sharifpur M. Nanoparticles‑suspended biodiesel and its blends in compression ignition engines: a bibliometric analysis of research trend and future outlook. Biofuels 2023;14:673–686. [Crossref]
  • [36] Dehhaghi M, Kazemi Shariat Panahi H, Aghbashlo M, Lam SS, Tabatabaei M. The effects of nanoadditives on the performance and emission characteristics of spark‑ignition gasoline engines: A critical review with a focus on health impacts. Energy 2021;225:120259. [Crossref]
  • [37] Hosseini SH, Taghizadeh‑Alisaraei A, Ghobadian B, Abbaszadeh‑Mayvan A. Effect of added alumina as nano‑catalyst to diesel‑biodiesel blends on performance and emission characteristics of CI engine. Energy 2017;124:543–552. [Crossref]
  • [38] Manzoor Q, et al. Toxicity spectrum and detrimental effects of titanium dioxide nanoparticles as an emerging pollutant: A review. Desalin Water Treat 2024;317:100025. [Crossref]
  • [39] Jain A, Ambekar A, Thajudeen T. Effect of Titania Nano‑additives on Fine and Ultrafine Carbonaceous Emissions during Flame Combustion of Diesel. Aerosol Air Qual Res 2024;24. [Crossref]
  • [40] Yamin J, Hdaib II, Eh Sheet EA, Abu Mushref AJ. RSM analysis of heat balance of direct injection 4‑stroke diesel engine using biodiesel fuel. Biofuels 2021;12:777–787. [Crossref]
  • [41] Chinmaya M, Anuj P, Singh TV, Naveen K. Combustion, Emission and Performance Characteristics of a Light Duty Diesel Engine Fuelled with Methanol Diesel Blends. Int J Mech Mechatronics Eng 2013;7:40–50.
  • [42] Jayaraman J, Alagu K, Venu H, Appavu P, Joy N, Jayaram P, Mariadhas A. Enzymatic production of rice bran biodiesel and testing of its diesel blends in a four‑stroke CI engine. Energy Sources Part A Recover Util Environ Eff 2023;45:5340–5351. [Crossref]
  • [43] Hotti SR, Hebbal OD. Biodiesel production and fuel properties from non‑edible champaca (Michelia champaca) seed oil for use in diesel engine. J Therm Eng 2015;1:330–336. [Crossref]
  • [44] Kayode B, Hart A. An overview of transesterification methods for producing biodiesel from waste vegetable oils. Biofuels 2019;10:419–437. [Crossref]
  • [45] Bohlouli A, Mahdavian L. Catalysts used in biodiesel production: a review. Biofuels. 2021;12:885–898. [Crossref]
  • [46] Ghanati SG, Doğan B, Yeşilyurt MK. The effects of the usage of silicon dioxide (SiO₂) and titanium dioxide (TiO₂) as nano‑sized fuel additives on the engine characteristics in diesel engines: a review. Biofuels 2024;15:229–243. [Crossref]
  • [47] Drews A. Standard Test Method for Kinematic Viscosity of Transparent and Opaque Liquids (the Calculation of Dynamic Viscosity). In Manual on Hydrocarbon Analysis.6th ed. Pennsylvania, USA: ASTM Manuals; 2008. p. 126–128. [Crossref]
  • [48] Tomar M, Kumar N. Influence of nanoadditives on the performance and emission characteristics of a CI engine fuelled with diesel, biodiesel, and blends–a review. Energy Sources Part A Recover Util Environ Eff 2020;42:2944–2961. [Crossref]
  • [49] Drews A. Standard Practice for Density, Relative Density (Specific Gravity), or API Gravity of Crude Petroleum and Liquid Petroleum Products by Hydrometer Method. In Manual on Hydrocarbon Analysis.6th ed. Pennsylvania, USA: ASTM Manuals 2008. p. 252–255. [Crossref]

Year 2025, Volume: 11 Issue: 5, 1276 - 1292, 21.10.2025

Abstract

References

  • [1] Singh Pali H, Kumar M, Nguyen NV, Singh Y, Deepanraj B, Quy P, et al. Enhancement of combustion characteristics of waste cooking oil biodiesel using TiO2 nanofluid blends through RSM. Fuel 2023;331:125681–125681. [Crossref]
  • [2] Balajii M, Niju S. Esterification optimization of underutilized Ceiba pentandra oil using response surface methodology. Biofuels 2021;12:495–502. [Crossref]
  • [3] Rajak R, Chattopadhyay A. Short and Long Term Exposure to Ambient Air Pollution and Impact on Health in India: A Systematic Review. Int J Environ Health Res 2020;30:593–617. [Crossref]
  • [4] Walsh MP. Mobile source related air pollution: Effects on health and the environment. Encycl Environ Heal 2019;436–442. [Crossref]
  • [5] International Energy Agency. World Energy Outlook 2021. Available at: https://www.iea.org/reports/world-energy-outlook-2021 Accessed on Sep 5, 2025
  • [6] US Energy Information Administration (EIA). International Energy Outlook 2017 Overview. Available at: https://www.eia.gov/outlooks/ieo/pdf/0484(2017).pdf. Accessed on Sep 5, 2025
  • [7] Sustainable T, Project M. Mobility 2030. World Bussiness Counc Sustain Dev 2014.
  • [8] ROOT MH. International Energy Agency 2012. Available at https://www.iea.org/reports/world-energy-outlook-2012
  • [9] Dye C, Reeder JC, Terry RF. Research for universal health coverage. Sci Transl Med. 2013;5:199. [Crossref]
  • [10] S. L. C. Richard PK, Allan, Arias PA, Berger S, Canadell JG, Cassou C , Chen D, Cherchi A. Climate Change 2021. Available at: https://www.ipcc.ch/report/ar6/wg1/. Accessed on Sep 5, 2025
  • [11] Raheman H, Phadatare AG. Performance of compression ignition engine with mahua (Madhuca indica) biodiesel. Fuel 2007;86:2568–2573. [Crossref]
  • [12] Makepa DC, Chihobo CH, Musademba D. Advances in sustainable biofuel production from fast pyrolysis of lignocellulosic biomass. Biofuels. 2023;14:529–550. [Crossref]
  • [13] Chandrasekaran V, Arthanarisamy M, Nachiappan P, Dhanakotti S, Moorthy B. The role of nano additives for biodiesel and diesel blended transportation fuels. Transp Res Part D Transp Environ. 2016;46:145–156. [Crossref]
  • [14] Sundar SP, P Vijayabalan, Hemalatha D, Ramani B, Chamkha JA, Sathyamurthy R, et al. Feasibility study of neat plastic oil with TiO₂ nanoadditive as an alternative fuel in internal combustion engine. J Therm Anal Calorim 2022;147:2567–2578. [Crossref]
  • [15] Fasogbon SK, Oyedepo SO. Nano-additive blends examination of performance and emission profile of CI engines fuelled with waste cooking oil based-biodiesel. J Therm Eng. 2025;11:1–15. [Crossref]
  • [16] Khankal D, Hole S, Gadekar H, Jagtap A, Pandhare A. Comparative analysis of performance and emission from single cylinder diesel engine fuelled with mango kernel biodiesel. J Therm Eng 2024;10:1632–1646. [Crossref]
  • [17] Yamini K, Kishore PS, Dhana Raju V. Effect of diethyl ether and isobutanol as fuel additives on the diesel engine attributes fueled with subabul seed biodiesel. J Therm Eng 2025;11:215–225. [Crossref]
  • [18] Sharma P, Le MP, Chhillar A, Said Z, Deepanraj B, Cao DN, et al. Using response surface methodology approach for optimizing performance and emission parameters of diesel engine powered with ternary blend of Solketal‑biodiesel‑diesel. Sustain Energy Technol Assessments 2022;52. [Crossref]
  • [19] I Veza, Karaoglan AD, Ileri E, Afzal A, Hoang AT, Tamaldin N, et al. Multi‑objective optimization of diesel engine performance and emission using grasshopper optimization algorithm. Fuel 2022;323. [Crossref]
  • [20] Gbadeyan OJ, Muthivhi J, Linganiso LZ, Mpongwana N, Dziike F, Deenadayalu N. Recent improvements to ensure sustainability of biodiesel production. Biofuels 2024;15:1063–1077. [Crossref]
  • [21] Rajan K, Prabhahar M, Senthilkumar KR. Experimental studies on the performance, emission and combustion characteristics of a biodiesel‑fuelled (Pongamia methyl ester) diesel engine with diethyl ether as an oxygenated fuel additive. Int J Ambient Energy 2016;37:439–445. [Crossref]
  • [22] Kumar S, Dinesha P, Bran I. Influence of nanoparticles on the performance and emission characteristics of a biodiesel fuelled engine: An experimental analysis. Energy 2017;140:98–105. [Crossref]
  • [23] ASTM D6751‑15c. Standard Specification for Biodiesel Fuel Blend Stock (B100) for Middle Distillate Fuels. ASTM Int 2010;i:1–11.
  • [24] Prasad A, Sivanraju R, Teklemariam A, Tafesse D, Tufa M, Bejaxhin BH. Influence of nano additives on performance and emissions characteristics of a diesel engine fueled with watermelon methyl ester. J Therm Eng 2023;9:395–400. [Crossref]
  • [25] Machado Corrêa S, Arbilla G. Carbonyl emissions in diesel and biodiesel exhaust. Atmos Environ 2008;42:769–775. [Crossref]
  • [26] Raheman H, Phadatare AG. Diesel engine emissions and performance from blends of karanja methyl ester and diesel. Biomass Bioenergy 2004;27:393–397. [Crossref]
  • [27] Venkata Subbaiah G, Raja Gopal K. An experimental investigation on the performance and emission characteristics of a diesel engine fuelled with rice bran biodiesel and ethanol blends. Int J Green Energy 2011;8:197–208. [Crossref]
  • [28] Alam A, Kalam MA, Habibullah M, Hossain MM, Masjuki HH, Rashedul HK, et al. Impact of edible and non‑edible biodiesel fuel properties and engine operation condition on the performance and emission characteristics of unmodified DI diesel engine. Biofuels 2016;7:219–232. [Crossref]
  • [29] Çalhan R, Kaskun Ergani S. The impacts of nano fuels containing Fe‑Ni‑TiO₂/activated carbon nanoparticles on diesel engine performance and emission characteristics. Biofuels 2023;14:661–671. [Crossref]
  • [30] Kumar S, Dinesha P, Bran I. Experimental investigation of the effects of nanoparticles as an additive in diesel and biodiesel fuelled engines: a review. Biofuels 2019;10:615–622. [Crossref]
  • [31] Jaikumar S, Srinivas V, Rajasekhar M. Influence of dispersant added nanoparticle additives with diesel‑biodiesel blend on direct injection compression ignition engine: Combustion, engine performance, and exhaust emissions approach. Energy 2021;224:120197. [Crossref]
  • [32] Mahalingam S, Ganesan S. Effect of nano‑fuel additive on performance and emission characteristics of the diesel engine using biodiesel blends with diesel fuel. Int J Ambient Energy 2020;41:316–321. [Crossref]
  • [33] Soudagar MEM, Nik‑Ghazali NN, Abul Kalam M, Badruddin IA, Banapurmath NR, Akram N. The effect of nano‑additives in diesel‑biodiesel fuel blends: A comprehensive review on stability, engine performance and emission characteristics. Energy Convers Manag 2018;178:146–177. [Crossref]
  • [34] Yusof SNA, Sidik NAC, Asako Y, Japar WMAA, Mohamed SB, az Muhammad NM. A comprehensive review of the influences of nanoparticles as a fuel additive in an internal combustion engine (ICE). Nanotechnol Rev 2021;9:1326–1349. [Crossref]
  • [35] Giwa SO, Aasa SA, Shote AS, Sharifpur M. Nanoparticles‑suspended biodiesel and its blends in compression ignition engines: a bibliometric analysis of research trend and future outlook. Biofuels 2023;14:673–686. [Crossref]
  • [36] Dehhaghi M, Kazemi Shariat Panahi H, Aghbashlo M, Lam SS, Tabatabaei M. The effects of nanoadditives on the performance and emission characteristics of spark‑ignition gasoline engines: A critical review with a focus on health impacts. Energy 2021;225:120259. [Crossref]
  • [37] Hosseini SH, Taghizadeh‑Alisaraei A, Ghobadian B, Abbaszadeh‑Mayvan A. Effect of added alumina as nano‑catalyst to diesel‑biodiesel blends on performance and emission characteristics of CI engine. Energy 2017;124:543–552. [Crossref]
  • [38] Manzoor Q, et al. Toxicity spectrum and detrimental effects of titanium dioxide nanoparticles as an emerging pollutant: A review. Desalin Water Treat 2024;317:100025. [Crossref]
  • [39] Jain A, Ambekar A, Thajudeen T. Effect of Titania Nano‑additives on Fine and Ultrafine Carbonaceous Emissions during Flame Combustion of Diesel. Aerosol Air Qual Res 2024;24. [Crossref]
  • [40] Yamin J, Hdaib II, Eh Sheet EA, Abu Mushref AJ. RSM analysis of heat balance of direct injection 4‑stroke diesel engine using biodiesel fuel. Biofuels 2021;12:777–787. [Crossref]
  • [41] Chinmaya M, Anuj P, Singh TV, Naveen K. Combustion, Emission and Performance Characteristics of a Light Duty Diesel Engine Fuelled with Methanol Diesel Blends. Int J Mech Mechatronics Eng 2013;7:40–50.
  • [42] Jayaraman J, Alagu K, Venu H, Appavu P, Joy N, Jayaram P, Mariadhas A. Enzymatic production of rice bran biodiesel and testing of its diesel blends in a four‑stroke CI engine. Energy Sources Part A Recover Util Environ Eff 2023;45:5340–5351. [Crossref]
  • [43] Hotti SR, Hebbal OD. Biodiesel production and fuel properties from non‑edible champaca (Michelia champaca) seed oil for use in diesel engine. J Therm Eng 2015;1:330–336. [Crossref]
  • [44] Kayode B, Hart A. An overview of transesterification methods for producing biodiesel from waste vegetable oils. Biofuels 2019;10:419–437. [Crossref]
  • [45] Bohlouli A, Mahdavian L. Catalysts used in biodiesel production: a review. Biofuels. 2021;12:885–898. [Crossref]
  • [46] Ghanati SG, Doğan B, Yeşilyurt MK. The effects of the usage of silicon dioxide (SiO₂) and titanium dioxide (TiO₂) as nano‑sized fuel additives on the engine characteristics in diesel engines: a review. Biofuels 2024;15:229–243. [Crossref]
  • [47] Drews A. Standard Test Method for Kinematic Viscosity of Transparent and Opaque Liquids (the Calculation of Dynamic Viscosity). In Manual on Hydrocarbon Analysis.6th ed. Pennsylvania, USA: ASTM Manuals; 2008. p. 126–128. [Crossref]
  • [48] Tomar M, Kumar N. Influence of nanoadditives on the performance and emission characteristics of a CI engine fuelled with diesel, biodiesel, and blends–a review. Energy Sources Part A Recover Util Environ Eff 2020;42:2944–2961. [Crossref]
  • [49] Drews A. Standard Practice for Density, Relative Density (Specific Gravity), or API Gravity of Crude Petroleum and Liquid Petroleum Products by Hydrometer Method. In Manual on Hydrocarbon Analysis.6th ed. Pennsylvania, USA: ASTM Manuals 2008. p. 252–255. [Crossref]
There are 49 citations in total.

Details

Primary Language English
Subjects Aerodynamics (Excl. Hypersonic Aerodynamics)
Journal Section Articles
Authors

Manoj Kumar Gupta This is me 0000-0002-1432-9793

Ashok Kumar Srivastava This is me 0009-0003-5392-9681

Publication Date October 21, 2025
Submission Date January 26, 2025
Acceptance Date May 31, 2025
Published in Issue Year 2025 Volume: 11 Issue: 5

Cite

APA Gupta, M. K., & Srivastava, A. K. (2025). Harnessing response surface methodology for diesel engine optimization using titanium dioxide-enhanced rice bran biodiesel to improve emissions and efficiency. Journal of Thermal Engineering, 11(5), 1276-1292. https://doi.org/10.14744/thermal.0000996
AMA Gupta MK, Srivastava AK. Harnessing response surface methodology for diesel engine optimization using titanium dioxide-enhanced rice bran biodiesel to improve emissions and efficiency. Journal of Thermal Engineering. October 2025;11(5):1276-1292. doi:10.14744/thermal.0000996
Chicago Gupta, Manoj Kumar, and Ashok Kumar Srivastava. “Harnessing Response Surface Methodology for Diesel Engine Optimization Using Titanium Dioxide-Enhanced Rice Bran Biodiesel to Improve Emissions and Efficiency”. Journal of Thermal Engineering 11, no. 5 (October 2025): 1276-92. https://doi.org/10.14744/thermal.0000996.
EndNote Gupta MK, Srivastava AK (October 1, 2025) Harnessing response surface methodology for diesel engine optimization using titanium dioxide-enhanced rice bran biodiesel to improve emissions and efficiency. Journal of Thermal Engineering 11 5 1276–1292.
IEEE M. K. Gupta and A. K. Srivastava, “Harnessing response surface methodology for diesel engine optimization using titanium dioxide-enhanced rice bran biodiesel to improve emissions and efficiency”, Journal of Thermal Engineering, vol. 11, no. 5, pp. 1276–1292, 2025, doi: 10.14744/thermal.0000996.
ISNAD Gupta, Manoj Kumar - Srivastava, Ashok Kumar. “Harnessing Response Surface Methodology for Diesel Engine Optimization Using Titanium Dioxide-Enhanced Rice Bran Biodiesel to Improve Emissions and Efficiency”. Journal of Thermal Engineering 11/5 (October2025), 1276-1292. https://doi.org/10.14744/thermal.0000996.
JAMA Gupta MK, Srivastava AK. Harnessing response surface methodology for diesel engine optimization using titanium dioxide-enhanced rice bran biodiesel to improve emissions and efficiency. Journal of Thermal Engineering. 2025;11:1276–1292.
MLA Gupta, Manoj Kumar and Ashok Kumar Srivastava. “Harnessing Response Surface Methodology for Diesel Engine Optimization Using Titanium Dioxide-Enhanced Rice Bran Biodiesel to Improve Emissions and Efficiency”. Journal of Thermal Engineering, vol. 11, no. 5, 2025, pp. 1276-92, doi:10.14744/thermal.0000996.
Vancouver Gupta MK, Srivastava AK. Harnessing response surface methodology for diesel engine optimization using titanium dioxide-enhanced rice bran biodiesel to improve emissions and efficiency. Journal of Thermal Engineering. 2025;11(5):1276-92.

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