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Research Article

Diesel engine performance with nickel-oxide-doped Calophyllum oil biodiesel under varying injection timings

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Pages 1284-1297 | Received 26 Sep 2022, Accepted 30 Dec 2022, Published online: 09 Feb 2023

References

  • Agarwal, A. K., V. Katiyar, and K. Singh. 2016. “Optimisation of Karanja/Jatropha-Methanol Emulsification Variables and Their Engine Evaluation.” Renewable Energy 96: 433–441. doi:10.1016/j.renene.2016.04.092.
  • Agbulut, U., M. Karagoz, S. Sarıdemir, and A. Ozturk. 2020. “Impact of Various Metal-Oxide Based Nanoparticles and Biodiesel Blends on the Combustion, Performance, Emission, Vibration and Noise Characteristics of a CI Engine.” Fuel 270. doi:10.1016/j.fuel.2020.117521.
  • Anchupogu, P., R. L. Krupakaran, G. Lakshmi Narayana Rao, and B. Balakrishna. 2021. “An Assessment of the TiO2 Nanoparticle Concentration in the C. Inophyllum Biodiesel Blend on the Engine Characteristics of a DI Diesel Engine.” International Journal of Ambient Energy 43: 5464–5477. doi:10.1080/01430750.2021.1953584.
  • Anh, T. H. 2021a. “Combustion Behavior, Performance and Emission Characteristics of Diesel Engine Fuelled with Biodiesel Containing Cerium Oxide Nanoparticles: A Review.” Fuel Processing Technology 218. doi:10.1016/j.fuproc.2021.106840.
  • Anh, T. Hoang, N. Sandro, Hwai Chyuan Ong, Wieslaw Tarelko, Van V. Pham, Tri H. Le, Minh Q. Chau, and Xuan P. Nguyen. 2021b. “A Review on Application of Artificial Neural Network (ANN) for Performance and Emission Characteristics of Diesel Engine Fueled with Biodiesel-Based Fuels.” Sustainable Energy Technologies and Assessments 47. doi:10.1016/j.seta.2021.101416.
  • Arul, Nicolas T., A. Venkatakrishna, N. Joy, and A. Mariadoss. 2019. “Performance and Emission Analysis on Diesel Engine Fuelled with Neat Pongamia Biodiesel.” International Journal of Ambient Energy 43: 21–27. doi:10.1080/01430750.2019.1630315.
  • Arunprasad, J., N. K. Alla, Dharavathu Radha, Mandeep Singh, Raviteja Surakasi, and D. G. Tewodros. 2022. “Nanometal-Based Magnesium Oxide Nanoparticle with C. Vulgaris Algae Biodiesel in Diesel Engine.” Journal of Nanomaterials 2022: 1–9. doi:10.1155/2022/1688505.
  • Banerji, C., S. S. R. Sheeju, V. Suresh, and D. Yuvarajan. 2022. “Detailed Analysis on Exploiting the low Viscous Waste Orange Peel oil and Improving its Usability by Adding Renewable Additive: Waste to Energy Initiative.” Biomass Conversion and Biorefinery. doi:10.1007/s13399-022-02870-x.
  • Bawane, R. K., A. Muthuraja, G. N. Shelke, and C. Choudhary. 2020b. “Impact Analysis of Emulsified Calophyllum oil Biodiesel B100-WIC and B50-WIC on Performance and Emission Characteristic of a Diesel Engine Under Variation in Compression Ratio.” International Journal of Ambient Energy 43: 3771–3780. doi:10.1080/01430750.2020.1852110.
  • Bawane, R. K., A. Muthuraja, G. N. Shelke, and A. Gangele. 2020a. “Impact Analysis of CalophyllumInophyllum oil Biodiesel on Performance and Emission Characteristic of Diesel Engine Under Variation in Compression Ratio, Engine Load, and Blend Proportion.” International Journal of Ambient Energy 43: 2278–2289. doi:10.1080/01430750.2020.1730955.
  • Bora, B. J., and U. K. Saha. 2016. “Experimental Evaluation of a Rice Bran Biodiesel – Biogas run Dual Fuel Diesel Engine at Varying Compression Ratios.” Renewable Energy 87: 782–790. doi:10.1016/j.renene.2015.11.002.
  • Bueno, A. V., M. P. B. Pereira, J. V. de Oliveira Pontes, F. M. T. de Luna, and C. L. Cavalcante. 2017. “Performance and Emissions Characteristics of Castor oil Biodiesel Fuel Blends.” Applied Thermal Engineering 125: 559–566. doi:10.1016/j.applthermaleng.2017.06.114.
  • Bupesh Raja, V. K., and J. Jaya Prabakar. 2018. “Performance and Emission Characteristics of Cashew nut Shell oil on the CI Engine.” International Journal of Ambient Energy 40: 563–565. doi:10.1080/01430750.2017.1421584.
  • Chacko, N., and J. Thangaraja. 2020. “Effect of Pilot and Post Fueling on the Combustion and Emission Characteristics of a Light-Duty Diesel Engine Powered with Diesel and Waste Cooking Biodiesel Blend.” Energy Sources, Part A: Recovery, Utilization, and Environmental Effects. doi:10.1080/15567036.2020.1791285.
  • Channapattana, S. V., A. A. Pawar, and P. G. Kamble. 2016. “Investigation of DI-CI Four Stroke VCR Engine at Different Fuel Injection Timing Using bio-Fuel Derived from non-Edible oil Source as a Fuel.” Biofuels. Taylor &Francis Group LLC 7 (6): 661–670. doi:10.1080/17597269.2016.1187540.
  • Datla, R., R. Puli, C. Velayudhan Parvathy, and E. G. Varuvel. 2020. “Effect of Start of Main Injection Timing on Performance, Emission, and Combustion Characteristics of a VGT CI Engine Fueled with Neem Biodiesel.” Environmental Science and Pollution Research 28: 11942–11953. doi:10.1007/s11356-020-08231-3.
  • Devarajan, Y., G. Choubey, and M. Kulmani. 2019. “Ignition Analysis on Neat Alcohols and Biodiesel Blends Propelled Research Compression Ignition Engine.” Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 42 (23): 2911–2922. doi:10.1080/15567036.2019.1618998.
  • Devarajan, Y., R. Jayabal, D. B. Munuswamy, S. Ganesan, and E. G. Varuvel. 2022. “Biofuel from Leather Waste fat to Lower Diesel Engine Emissions: Valuable Solution for Lowering Fossil Fuel Usage and Perception on Waste Management.” Process Safety and Environmental Protection 165: 374–379. doi:10.1016/j.psep.2022.07.001.
  • Dharmalingam, B., S. Ramalingam, A. Santhoshkumar, M. P. Gundupalli, and M. Sriariyanun. 2022. “A Review on Different Additives and Advanced Injection Strategy on Diesel Engine Characteristics Fuelled with First, Second and Third Generation Biodiesel.” Materials Today 72 (Part 6): 2909–2914. doi:10.1016/j.matpr.2022.07.439.
  • Dubey, P., and R. Gupta. 2018. “Influences of Dual bio-Fuel (Jatropha Biodiesel and Turpentine oil) on Single Cylinder Variable Compression Ratio Diesel Engine.” Renewable Energy. 115: 1294–1302. doi:10.1016/j.renene.2017.09.055.
  • Elkelawy, M., H. Bastawissi, S. Chandra Sekar, K. Karuppasamy, N. Vedaraman, K. Sathiyamoorthy, and R. Sathyamurthy. 2018. “Numerical and Experimental Investigation of Ethyl Alcohol as Oxygenator on the Combustion, Performance, and Emission Characteristics of Diesel/Cotton Seed Oil Blends in Homogenous Charge Compression Ignition Engine.” SAE International Powertrains, Fuels & Lubricants Meeting. Technical Paper No. 2018-01-1680. doi:10.4271/2018-01-1680.
  • Elkelawy, M., E. A. El Shenawy, Salma Khalaf Abd Almonem, M. H. Nasef, H. Panchal, Alm-Eldin B Hagar, K. K. Sadasivuni, A. K. Choudhary, D. Sharma, and Khalid Mohammad. 2021b. “Experimental Study on Combustion, Performance, and Emission Behaviours of Diesel /WCO Biodiesel/Cyclohexane Blends in DI-CI Engine.” Process Safety and Environmental Protection 149: 684–697. doi:10.1016/j.psep.2021.03.028.
  • Elkelawy, M., Safaa El-din H Etaiw, H. Alm-Eldin Bastawissi, M. I. Ayad, A. M. Radwan, and M. M. Dawood. 2020a. “Diesel/ Biodiesel /Silver Thiocyanate Nanoparticles/Hydrogen Peroxide Blends as New Fuel for Enhancement of Performance, Combustion, and Emission Characteristics of a Diesel Engine.” Energy 216. doi:10.1016/j.energy.2020.119284.
  • Elkelawy, M., Safaa El-din H Etaiw, M. I. Ayad, M. Hassan, D. Mohamed, H. Panchal, and Alm-Eldin B Hagar. 2021a. “An Enhancement in the Diesel Engine Performance, Combustion, and Emission Attributes Fueled by Diesel-Biodiesel and 3D Silver Thiocyanate Nanoparticles Additive Fuel Blends.” Journal of the Taiwan Institute of Chemical Engineers 124: 369–380. doi:10.1016/j.jtice.2021.02.019.
  • Elkelawy, M., Alm-Eldin B. Hagar, K. K. Esmaeil, A. M. Radwan, H. Panchal, K. K. Sadasivuni, S. Muthusamy, and Mohammad Israr. 2020b. “Maximization of Biodiesel Production from Sunflower and Soybean Oils and Prediction of Diesel Engine Performance and Emission Characteristics Through Response Surface Methodology.” Fuel 266. doi:10.1016/j.fuel.2020.117072.
  • Elkelawy, M., Alm-Eldin B. Hagar, E. K. Khodary, A. M. Radwan, H. Panchal, K. K. Sadasivuni, P. Deepalekshmi, and R. Walvekar. 2019. “Experimental Studies on the Biodiesel Production Parameters Optimization of Sunflower and Soybean oil Mixture and DI Engine Combustion, Performance, and Emission Analysis Fueled with Diesel/Biodiesel Blends.” Fuel 255. doi:10.1016/j.fuel.2019.115791.
  • Elumalai, P. V., S. K. Dash, M. Parthasarathy, N. R. Dhineshbabu, D. Balasubramanian, Dao Nam Cao, Thanh Hai Truong, Anh Tuan Le, and A. T. Hoang. 2022. “Combustion and Emission Behaviors of Dual-Fuel Premixed Charge Compression Ignition Engine Powered with n-Pentanol and Blend of Diesel/Waste Tire oil Included Nanoparticles.” Fuel 324 (Part B). doi:10.1016/j.fuel.2022.124603.
  • Foroutan, R., R. Mohammadi, H. Esmaeili, F. M. Bektashi, and S. Tamjidi. 2020. “Transesterification of Waste Edible Oils to Biodiesel Using Calcium Oxide @ Magnesium Oxide Nanocatalyst.” Waste Management 105: 373–383. doi:10.1016/j.wasman.2020.02.032.
  • Freitas, E. S. d. C, L. L. N. Guarieiro, M. V. I. Da Silva, K. K. d. S Amparo, B. A. S. Machado, E. T. d. A Guerreiro, J. F. C. De Jesus, and E. A. Torres. 2022. “Emission and Performance Evaluation of a Diesel Engine Using Addition of Ethanol to Diesel/Biodiesel Fuel Blend.” Energies 15 (9). doi:10.3390/en15092988.
  • Ganapathy, T., R. P. Gakkhar, and K. Murugesan. 2011. “Influence of Injection Timing on Performance, Combustion and Emission Characteristics of Jatropha Biodiesel Engine.” Applied Energy 88 (12): 4376–4386. doi:10.1016/j.apenergy.2011.05.016.
  • Ganesan, S., D. B. Munuswamy, G. Subbiah, Y. Devarajan, R. Mishra, and J. Thangaraja. 2022. “Experimental Research on Waste and Inedible Feedstock as a Partial Alternate Fuel: Environmental Protection and Energy-Saving Initiative.” Biomass Conversion and Biorefinery. doi:10.1007/s13399-022-02799-1.
  • Gugulothu, S. K. 2020. “Performance and Emission Analysis of SOME (Schleicheraoleosa oil Methyl Ester) on DI Diesel Engine.” SN Applied Sciences 2: Article No. 692.doi:10.1007/s42452-020-2494-9.
  • Hariram, V., and R. Vagesh Shangar. 2015. “Influence of Compression Ratio on Combustion and Performance Characteristics of Direct Injection Compression Ignition Engine.” Alexandria Engineering Journal 54 (4): 807–819. doi:10.1016/j.aej.2015.06.007.
  • Hasannuddin, A. K. 2018. “Performance, Emissions and Carbon Deposit Characteristics of Diesel Engine Operating on Emulsion Fuel.” Energy 142: 496–506. doi:10.1016/j.energy.2017.10.044.
  • Hawi, M., A. Elwardany, S. Ookawara, and M. Ahmed. 2019. “Effect of Compression Ratio on Performance, Combustion and Emissions Characteristics of Compression Ignition Engine Fuelled with Jojoba Methyl Ester.” Renewable Energy 141: 632–645. doi:10.1016/j.renene.2019.04.041.
  • Hoang, A. T. 2018. “Prediction of the Density and Viscosity of Biodiesel and the Influence of Biodiesel Properties on a Diesel Engine Fuel Supply System.” Journal of Marine Engineering & Technology 20 (5): 299–311. doi:10.1080/20464177.2018.1532734.
  • Hoang, A. T., Minh Xuan Le, Sandro Nizetic, Zuohua Huang, Umit Agbulut, Ibham Veza, Zafar Said, Anh Tuan Le, Viet Dung Tran, and Xuan Phuong Nguyen. 2022. “Understanding Behaviors of Compression Ignition Engine Running on Metal Nanoparticle Additives-Included Fuels: A Control Comparison Between Biodiesel and Diesel Fuel.” Fuel 326. doi:10.1016/j.fuel.2022.124981.
  • Hoang, A. T., M. Tabatabaei, M. Aghbashlo, A. P. Carlucci, A. I. Olcer, A. T. Le, and A. Ghassemi. 2021. “Rice Bran oil-Based Biodiesel as a Promising Renewable Fuel Alternative to Petrodiesel: A Review.” Renewable and Sustainable Energy Reviews 135. doi:10.1016/j.rser.2020.110204.
  • Hwang, Joonsik, Donghui Qi, Yongjin Jung, and Choongsik Bae. 2014. “Effect of Injection Parameters on the Combustion and Emission Characteristics in a Common-Rail Direct Injection Diesel Engine Fueled with Waste Cooking oil Biodiesel.” Renewable Energy 63: 9–17. doi:10.1016/j.renene.2013.08.051.
  • Jamuna Rani, G., Y. V. Hanumantha Rao, and B. Balakrishna. 2020. “Fuel Injection Timing Impact on Diesel Engine Performance, Combustion and Emission Characteristics of Nano Additive Biodiesel Blends.” International Journal of Ambient Energy 43 (1): 2078–2085. doi:10.1080/01430750.2020.1725119.
  • Jayabal, R., S. Subramani, D. Dillikannan, Y. Devarajan, L. Thangavelu, M. Nedunchezhiyan, G. Kaliyaperumal, and Melvin Victor De Poures. 2022. “Multi-objective Optimization of Performance and Emission Characteristics of a CRDI Diesel Engine Fueled with Sapota Methyl Ester/Diesel Blends.” Energy 250. doi:10.1016/j.energy.2022.123709.
  • Jindal, S., B. P. Nandwana, N. S. Rathore, and V. Vashistha. 2010. “Experimental Investigation of the Effect of Compression Ratio and Injection Pressure in a Direct Injection Diesel Engine Running on Jatropha Methyl Ester.” Applied Thermal Engineering 30 (5): 442–448. doi:10.1016/j.applthermaleng.2009.10.004.
  • Kaushik, Y., V. Verma, K. K. Saxena, C. Prakash, L. R. Gupta, and S. Dixit. 2022. “Effect of Al2O3 Nanoparticles on Performance and Emission Characteristics of Diesel Engine Fuelled with Diesel–Neem Biodiesel Blends.” Sustainability 14 (13). doi:10.3390/su14137913.
  • Krishnamoorthi, M., R. Malayalamurthi, and P. Mohamed Shameer. 2018. “RSM Based Optimization of Performance and Emission Characteristics of DI Compression Ignition Engine Fuelled with Diesel/Aeglemarmelos oil/Diethyl Ether Blends at Varying Compression Ratio, Injection Pressure and Injection Timing.” Fuel 221: 283–297. doi:10.1016/j.fuel.2018.02.070.
  • Loyte, A., J. Suryawanshi, G. Bhiogade, Y. Devarajan, and G. Subbiah. 2022. “Recent Developments in Utilizing Hydrous Ethanol for Diverse Engine Technologies.” Chemical Engineering and Processing - Process Intensification 177. doi:10.1016/j.cep.2022.108985.
  • Mahalingam, A., B. Nagappan, P. Jayaram, and N. R. Battu. 2019. “Investigating the Physio-Chemical Properties of Densified Biomass Pellet Fuels from Fruit and Vegetable Market Waste.” Arabian Journal for Science and Engineering 45: 563–574. doi:10.1007/s13369-019-04294-8.
  • Melo-Espinosa, E. A., R. Piloto-Rodríguez, Y. Sánchez-Borroto, and S. Verhelst. 2017. “Effect of Emulsified Fuels Based on Fatty Acid Distillates on Single Cylinder Diesel Engine Performance and Exhaust Emissions.” Applied Thermal Engineering 120: 187–195. doi:10.1016/j.applthermaleng.2017.03.133.
  • Minardi, L. T., F. H. Alshafei, Z. K. Mishra, and D. A. Simonetti. 2021. “Impacts of Metal Oxide Additives on the Capacity and Stability of Calcium Oxide Based Materials for the Reactive Sorption of CO2.” Sustainable Energy & Fuels 5 (3): 767–778. doi:10.1039/D0SE01638A.
  • Mohebbi, M., M. Reyhanian, V. Hosseini, M. F. M. Said, and A. A. Aziz. 2018. “The Effect of Diethyl Ether Addition on Performance and Emission of a Reactivitycontrolled Compression Ignition Engine Fueled with Ethanol and Diesel.” Energy Conversion and Management 174: 779–792. doi:10.1016/j.enconman.2018.08.091.
  • Munuswamy, D. B., Y. Devarajan, S. Ramalingam, S. Subramani, and N. B. Munuswamy. 2022. “Critical Review on Effects of Alcohols and Nanoadditives on Performance and Emission in Low-Temperature Combustion Engines: Advances and Perspectives.” Energy & Fuels 36 (14): 7245–7268. doi:10.1021/acs.energyfuels.2c00930.
  • Murugesan, P., A. T. Hoang, E. Perumal Venkatesan, D. Santosh Kumar, D. Balasubramanian, A. T. Le, and V. V. Pham. 2021. “Role of Hydrogen in Improving Performance and Emission Characteristics of Homogeneous Charge Compression Ignition Engine Fueled with Graphite Oxide Nanoparticle-Added Microalgae Biodiesel/Diesel Blends.” International Journal of Hydrogen Energy 47 (88): 37617–37634. doi:10.1016/j.ijhydene.2021.08.107.
  • Muthiya, S. J., L. Natrayan, S. Kaliappan, P. P. Patil, B. E. Naveena, J. A. Dhanraj, M. Subramaniam, and P. Paramasivam. 2022. “Experimental Investigation to Utilize Adsorption and Absorption Technique to Reduce CO2 Emissions in Diesel Engine Exhaust Using Amine Solutions.” Adsorption Science & Technology 2022: Article ID 9621423. doi:10.1155/2022/9621423.
  • Nachippan, N. M., M. Parthasarathy, P. V. Elumalai, A. Backiyaraj, D. Balasubramanian, and A. T. Hoang. 2022. “Experimental Assessment on Characteristics of Premixed Charge Compression Ignition Engine Fueled with Multi-Walled Carbon Nanotube-Included Tamanu Methyl Ester.” Fuel 323. doi:10.1016/j.fuel.2022.124415.
  • Nagarajan, J., Balasubramanian D Zuohua Huang, Anh Tuan Le, Xuan Phuong Nguyen, P. L. Pandian, and A. T. Hoang. 2022. “Experimental Evaluation Over the Effects of Natural Antioxidants on Oxidation Stability of Binary Biodiesel Blend.” International Journal of Energy Research 46 (14): 20437–20461. doi:10.1002/er.7956.
  • Nataraj, G., B. S. Bibhuti, E. Porpatham, P. V. Elumalai, D. S. Olusegun, C. E. Christopher, Asif Afzal, and C. Ahamed Saleel. 2022. “Experimental Based Comparative Exergy Analysis of a Spark-Ignition Honda GX270 Genset Engine Fueled with LPG and Syngas.” Energy Science & Engineering 10 (7): 2191–2204. doi:10.1002/ese3.1125.
  • Nayak, S. K., S. Nizetic, V. V. Pham, Z. Huang, A. I. Olcer, V. G. Bui, K. Wattanavichien, and A. T. Hoang. 2022. “Influence of Injection Timing on Performance and Combustion Characteristics of Compression Ignition Engine Working on Quaternary Blends of Diesel Fuel, Mixed Biodiesel, and t-Butyl Peroxide.” Journal of Cleaner Production 333. doi:10.1016/j.jclepro.2021.130160.
  • Nithya, S., S. Manigandan, P. Gunasekar, J. Devipriya, and W. S. R. Saravanan. 2017. “The Effect of Engine Emission on Canola Biodiesel Blends with TiO.” International Journal of Ambient Energy 40 (8): 838–841. doi:10.1080/01430750.2017.1421583.
  • Parida, M. K., P. Mohapatra, S. S. Patro, and S. Dash. 2020. “Effect of TiO2 Nano-Additive on Performance and Emission Characteristics of Direct Injection Compression Ignition Engine Fueled with Karanja Biodiesel Blend.” Energy Sources, Part A: Recovery, Utilization, and Environmental Effects. doi:10.1080/15567036.2020.1756991.
  • Perumal, V., and M. Ilangkumaran. 2018. “Water Emulsified Hybrid Pongamia Biodiesel as a Modified Fuel for the Experimental Analysis of Performance, Combustion and Emission Characteristics of a Direct Injection Diesel Engine.” Renewable Energy 121: 623–631. doi:10.1016/j.renene.2018.01.060.
  • Prabhu, A., M. Venkata Ramanan, and J. Jayaprabakar. 2018. “Effect of Compression Ratio on the Performance of CI Engine Fuelled with Freshwater Algae Biodiesel.” International Journal of Ambient Energy 41 (1): 80–83. doi:10.1080/01430750.2018.1451380.
  • Qi, D. H., H. Chen, L. M. Geng, and Y. Z. H. Bian. 2010. “Experimental Studies on the Combustion Characteristics and Performance of a Direct Injection Engine Fueled with Biodiesel/Diesel Blends.” Energy Conversion and Management 51 (12): 2985–2992. doi:10.1016/j.enconman.2010.06.042.
  • Qi, D. H., L. M. Geng, H. Chen, Y. Z. H. Bian, J. Liu, and X. C. H. Ren. 2009. “Combustion and Performance Evaluation of a Diesel Engine Fueled with Biodiesel Produced from Soybean Crude oil.” Renewable Energy 34 (12): 2706–2713. doi:10.1016/j.renene.2009.05.004.
  • Qi, Donghui, Michael Leick, Yu Liu, and Chia-fon F. Lee. 2011. “Effect of EGR and Injection Timing on Combustion and Emission Characteristics of Split Injection Strategy DI-Diesel Engine Fueled with Biodiesel.” Fuel 90 (5): 1884–1891. doi:10.1016/j.fuel.2011.01.016.
  • Qi, D., K. Li, C. Zhang, and T. Wang. 2022. “Effect of Split Injection Strategies on Diverse Characteristics of a Common Rail Direct Injection Diesel Engine Operating with Diesel-Palm oil-Ethanol Micro-Emulsions.” Proceedings of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy 236 (6): 1210–1226. doi:10.1177/09576509221077545.
  • Qi, D., L. Ma, R. Chen, X. Jin, and M. Xie. 2021. “Effects of EGR Rate on the Combustion and Emission Characteristics of Diesel-Palm oil-Ethanol Ternary Blends Used in a CRDI Diesel Engine with Double Injection Strategy.” Applied Thermal Engineering 199. doi:10.1016/j.applthermaleng.2021.117530.
  • Qi, D. H., K. Yang, D. Zhang, and B. Chen. 2017. “Combustion and Emission Characteristics of Diesel-Tung oil-Ethanol Blended Fuels Used in a CRDI Diesel Engine with Different Injection Strategies.” Applied Thermal Engineering 111: 927–935. doi:10.1016/j.applthermaleng.2016.09.157.
  • Raheman, H., and S. V. Ghadge. 2008. “Performance of Diesel Engine with Biodiesel at Varying Compression Ratio and Ignition Timing.” Fuel 34 (1): 135–144. doi:10.1016/j.fuel.2008.03.006.
  • Saiteja, P., B. Ashok, P. Saiteja, and R. Vignesh. 2022. “Chapter 14 - NOX Reduction Through Various low Temperature Combustion Technologies.” In NOX Emission Control Technologies in Stationary and Automotive Internal Combustion Engines, edited by B. Ashok, 423–459. Vellore: Elsevier, ISBN 9780128239551. doi:10.1016/B978-0-12-823955-1.00014-0.
  • Sayin, C., and M. Gumus. 2011. “Impact of Compression Ratio and Injection Parameters on the Performance and Emissions of a DI Diesel Engine Fueled with Biodiesel-Blended Diesel Fuel.” Applied Thermal Engineering 31 (16): 3182–3188. doi:10.1016/j.applthermaleng.2011.05.044.
  • Sindhu, R., G. Amba Prasad Rao, and K. Madhu Murthy. 2018. “Effective Reduction of NOx Emissions from Diesel Engine Using Split Injections.” Alexandria Engineering Journal 57 (3): 1378–1392. doi:10.1016/j.aej.2017.06.009.
  • Singh, Kshitij R. B., V. Nayak, T. Sarkar, and R. P. Singh. 2020. “Cerium Oxide Nanoparticles: Properties, Biosynthesis and Biomedical Application.” RSC Advances 10 (45): 27194–27214. doi:10.1039/d0ra04736h.
  • Sridhar Raja, K. S., S. K. Srinivasan, K. Yoganandam, and R. Mahalingam. 2021. “Emissions and Performance Investigation on the Effect of Dual Fuel Injection in Biodiesel Driven Diesel Engine.” Energy Sources, Part A: Recovery, Utilization, and Environmental Effects. doi:10.1080/15567036.2021.1877372.
  • Srikanth, H. V., S. Godiganur, B. Manne, S. Bharath Kumar, and S. Spurthy. 2020. “Niger Seed oil Biodiesel as an Emulsifier in Diesel-Ethanol Blends for Compression Ignition Engine.” International Journal of Ambient Energy 43 (1): 3029–3039. doi:10.1080/01430750.2020.1783354.
  • Srinidhi, C., A. Madhusudhan, and S. V. Channapattana. 2019. “Effect of NiO Nanoparticles on Performance and Emission Characteristics at Various Injection Timings Using Biodiesel-Diesel Blends.” Fuel 235: 185–193. doi:10.1016/j.fuel.2018.07.067.
  • Srinivasa, R. M, and R. B. Anand. 2016. “Performance and Emission Characteristics Improvement Studies on a Biodiesel Fuelled DICI Engine Using Water and AlO(OH) Nanoparticles.” Applied Thermal Engineering 98: 636–645. doi:10.1016/j.applthermaleng.2015.12.090.
  • Srinivasa, Rao T., H. S. Babu Rao, S. A. K. Jilani, and A. Mutluri. 2021. “Effect of Cerium Oxide Nanoparticles Additive Blended in Palm Oil Biodiesel as Alternative Fuel Used in Diesel Engine.” IOP Conference Series; Materials Science and Engineering 1112. doi:10.1088/1757-899x/1112/1/012012.
  • Subramanian, B., N. Lakshmaiya, D. Ramasamy, and Y. Devarajan. 2022. “Detailed Analysis on Engine Operating in Dual Fuel Mode with Different Energy Fractions of Sustainable HHO gas.” Environmental Progress & Sustainable Energy 41 (5). doi:10.1002/ep.13850.
  • Suleiman, R. K., A. M. Kumar, M. M. Rahman, F. A. Al-Badour, M. H. Meliani, and T. A. Saleh. 2020. “Effect of Metal Oxide Additives on the Structural and Barrier Properties of a Hybrid Organosilicon sol-gel Coating in 3.5% NaCl Medium.” Progress in Organic Coatings 148. doi:10.1016/j.porgcoat.2020.105825.
  • Vairamuthu, G., S. Sundarapandian, and B. Thangagiri. 2015. “Experimental Investigations on the Influence of Properties of Calophyllum Inophyllum Biodiesel on Performance, Combustion, and Emission Characteristics of a DI Diesel Engine.” International Journal of Ambient Energy 37 (6): 616–624. doi:10.1080/01430750.2015.1023838.
  • Vali, R. H., A. T. Hoang, M. M. Wani, H. Pali, D. Balasubramanian, Muslum Arici, Zafar Said, and Xuan Phuong Nguyen. 2022. “Optimization of Variable Compression Ratio Diesel Engine Fueled with Zinc Oxide Nanoparticles and Biodiesel Emulsion Using Response Surface Methodology.” Fuel 323. doi:10.1016/j.fuel.2022.124290.
  • Venu, H., and P. Appavu. 2019a. “Experimental Studies on the Influence of Zirconium Nanoparticle on Biodiesel-Diesel Fuel Blend in CI Engine.” International Journal of Ambient Energy 42 (14): 1588–1594. doi:10.1080/01430750.2019.1611653.
  • Venu, H., and P. Appavu. 2020. “Al2O3 Nano Additives Blended Polanga Biodiesel as a Potential Alternative Fuel for Existing Unmodified DI Diesel Engine.” Fuel 279. doi:10.1016/j.fuel.2020.118518.
  • Venu, H., and V. Madhavan. 2016. “Effect of Al2O3 Nanoparticles in Biodiesel-Diesel-Ethanol Blends at Various Injection Strategies: Performance, Combustion and Emission characteristics.” Fuel 186: 176–189. doi:10.1016/j.fuel.2016.08.046.
  • Venu, H., V. D. Raju, and L. Subramani. 2019b. “Experimental Assessment on the Regulated and Unregulated Emissions of DI Diesel Engine Fuelled with Chlorella Emersonii Methyl Ester (CEME).” Renewable Energy 151: 88–102. doi:10.1016/j.renene.2019.11.010.
  • Vijayaragavan, M., B. Subramanian, S. Sudhakar, and L. Natrayan. 2022. “Effect of Induction on Exhaust gas Recirculation and Hydrogen gas in Compression Ignition Engine with Simarouba oil in Dual Fuel Mode.” International Journal of Hydrogen Energy 47 (88): 37635–37647. doi:10.1016/j.ijhydene.2021.11.201.
  • Wang, S., V. Karthickeyan, E. Sivakumar, and M. Lakshmikandan. 2020. “Experimental Investigation on Pumpkin Seed oil Methyl Ester Blend in Diesel Engine with Various Injection Pressure, Injection Timing and Compression Ratio.” Fuel 264. doi:10.1016/j.fuel.2019.116868.

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