Journal of Engineering and Applied Sciences

Year: 2019
Volume: 14
Issue: 4
Page No. 1014 - 1033

An Investigation of Air-Gas Mixer Types Designed for Dual Fuel Engines: Review

Authors : Hussein A. Mahmood, Nor Mariah Adam, B.B. Sahari, S.U. Masuri and Hamdi E. Ahmed

References

Abagnale, C., M.C. Cameretti, D.L. Simio, M. Gambino and S. Iannaccone et al., 2014. Numerical simulation and experimental test of dual fuel operated diesel engines. Appl. Therm. Eng., 65: 403-417.
Direct Link  |  

Abdul-Wahhab, H.A., A.R.A. Aziz, H.H. Al-Kayiem and M.S. Nasif, 2015. Modeling of diesel/CNG mixing in a pre-injection chamber. IOP Conf. Ser.: Mater. Sci. Eng., Vol. 100. 10.1088/1757-899X/100/1/012044

Alrazen, H.A., A.A. Talib and K.A. Ahmad, 2016. A two-component CFD studies of the effects of H 2, CNG and diesel blend on combustion characteristics and emissions of a diesel engine. Intl. J. Hydrogen Energy, 41: 10483-10495.
Direct Link  |  

Alrazen, H.A., A.A. Talib, R. Adnan and K.A. Ahmad, 2016. A review of the effect of hydrogen addition on the performance and emissions of the compression-Ignition engine. Renewable Sustainable Energy Rev., 54: 785-796.
Direct Link  |  

Ani, T.R., P.G. Tewari and N.K.S. Rajan, 2009. Analysis and optimal design of a producer gas carburetor. Intl. J. Appl. Eng. Res., 4: 1125-1138.

Ani1l, T.R., S.D. Ravi, M. Shashikanth, P.G. Tewari and N.K.S. Rajan, 2006. CFD analysis of a mixture flow in a producer gas carburetor for optimizing the design configuration. Visvesvaraya Technological University, Belgaum, India.

Anil, T.R., S.D. Ravi, M. Shashikanth, N.R.P. Tewari and N.K.S. Rajan, 2006. CFD analysis of a mixture flow in a producer gas carburetor. Proceedings of the International Conference On Computational Fluid Dynamics, Acoustics, Heat Transfer and Electromagnetics, July 24-25, 2006, Andhra University, Visakhapatnam, India, pp: 1-8.

Bakar, R.A., K. Kadirgama, M.M. Rahman and K.V. Sharma, 2012. Application of Natural Gas for Internal Combustion Engines. In: Advances in Natural Gas Technology, Megren, H.A. (Ed.). Universiti Malaysia Pahang, Gambang, Malaysia, ISBN:978-953-51-0507-7, pp: 454-478.

Banapurmath, N.R., V.S. Yaliwal, S. Kambalimath, A.M. Hunashyal and P.G. Tewari, 2011. Effect of wood type and carburetor on the performance of producer gas-biodiesel operated dual fuel engines. Waste Biomass Valorization, 2: 403-413.
CrossRef  |  Direct Link  |  

Bora, B.J., B.K. Debnath, N. Gupta, N. Sahoo and U.K. Saha, 2013. Investigation on the flow behaviour of a venturi type gas mixer designed for dual fuel diesel engines. Int. J. Emerging Technol. Adv. Eng., 3: 202-209.

Bora, B.J., U.K. Saha, S. Chatterjee and V. Veer, 2014. Effect of compression ratio on performance, combustion and emission characteristics of a dual fuel diesel engine run on raw biogas. Energy Convers. Manage., 87: 1000-1009.
Direct Link  |  

Bose, P.K., R. Banerjee and M. Deb, 2013. Effect of hydrogen-diesel combustion on the performance and combustion parameters of a dual fuelled diesel engine. Intl. J. Energy Environ., 15: 497-510.
Direct Link  |  

Celik, M.B. and B. Ozdalyan, 2010. Gasoline Direct Injection. INTECH Open Access Publisher, Rijeka, Croatia,.

Chang, Y.S., Z. Yaacob and R. Mohsin, 2007. Computational fluid dynamics simulation of injection mixer for CNG engines. Proceedings opf the World Congress on Engineering and Computer Science, October 24-26, 2007, University of Technology, Malaysia, Johor Bahru, Malaysia, ISBN:978-988-98671-6-4, pp: 1-6.

Chintala, V. and K.A. Subramanian, 2013. A CFD (computational fluid dynamics) study for optimization of gas injector orientation for performance improvement of a dual-fuel diesel engine. Energy, 57: 709-721.
Direct Link  |  

Chowdaiah, K.P., K. Somasundaram, U.B. Gokulraj, B. Ashok and S.D. Ashok et al., 2015. A comparative study of port injected and carbureted type LPG-diesel dual fuel engine using CFD analysis. J. Chem. Pharm. Sci., 1: 238-334.
Direct Link  |  

Comino, J.C.C., 2012. Investigation of knock limits of dual fuel engines. Master Thesis, Budapest University of Technology and Economics Budapest, Hungary.

Dahake, M.R., S.E. Patil and S.D. Patil, 2016. Performance and emission improvement through optimization of venturi type gas mixer for CNG engines. Intl. Res. J. Eng. Technol., 3: 994-999.
Direct Link  |  

Danardono, D., K.S. Kim, S.Y. Lee and J.H. Lee, 2011. Optimization the design of venturi gas mixer for syngas engine using three-dimensional CFD modeling. J. Mech. Sci. Technol., 25: 2285-2296.
CrossRef  |  Direct Link  |  

Deshmukh, B.S., M.K.G. Babu, M.N. Kumar, L.M. Das and Y.V. Aghav, 2012. Simulation approach for quantifying the homogeneity of in-cylinder mixture formation for port injected diesel fuel for PCCI/HCCI. Intl. J. Sci. Eng. Res., 3: 1-14.
Direct Link  |  

Dubey, A., 2014. A novel method to improve internal combustion engine emission control and performance parameter: A review. Intl. J. Res. Eng. Technol., 2: 153-162.
Direct Link  |  

Gorjibandpy, M. and M.K. Sangsereki, 2010. Computational investigation of air-gas venturi mixer for powered bi-fuel diesel engine. World Acad. Sci. Eng. Technol., 4: 1197-1201.
Direct Link  |  

Guo, M., Z. Fu, D. Ma, N. Ji and C. Song et al., 2015. A short review of treatment methods of marine diesel engine exhaust gases. Procedia Eng., 121: 938-943.
Direct Link  |  

Hairuddin, A.A., T. Yusaf and A.P. Wandel, 2014. A review of hydrogen and natural gas addition in diesel HCCI engines. Renewable Sustainable Energy Rev., 32: 739-761.
Direct Link  |  

Hussain, J., K. Palaniradja, N. Alagumurthi and R. Manimaran, 2012. Diesel engine emissions and after treatment techniques: A review. J. Eng. Res. Stud., 3: 34-44.
Direct Link  |  

Kahraman, E., 2005. Analysis of a hydrogen fueled internal combustion engine. M.Sc. Thesis, Graduate School of Engineering and Sciences of İzmir Instute of Technology.

Karagoz, Y., I. Guler, T. Sandalci, L. Yuksek and A.S. Dalkilic et al., 2016. Effects of hydrogen and methane addition on combustion characteristics, emissions and performance of a CI engine. Intl. J. Hydrogen Energy, 41: 1313-1325.
Direct Link  |  

Konigsson, F., 2014. On combustion in the CNG-diesel dual fuel engine. Ph.D Thesis, Royal Institute of Technology, Stockholm University, Stockholm, Sweden.

Korakianitis, T., A.M. Namasivayam and R.J. Crookes, 2011. Natural-gas fueled Spark-Ignition (SI) and Compression-Ignition (CI) engine performance and emissions. Prog. Energy Combust. Sci., 37: 89-112.
CrossRef  |  

Larsen, R.I., 1966. Air pollution from motor vehicles. Ann. New York Acad. Sci., 136: 277-301.
CrossRef  |  Direct Link  |  

Li, L.P., 2004. The effect of compression ratio on the CNG-diesel engine. A Research Project. University of Southern Queensland. http://eprints.usq.edu.au/72/1/LIMPeiLi-2004.pdf.

Liu, J., F. Yang, H. Wang, M. Ouyang and S. Hao, 2013. Effects of pilot fuel quantity on the emissions characteristics of a CNG/diesel dual fuel engine with optimized pilot injection timing. Applied Energy, 110: 201-206.
CrossRef  |  Direct Link  |  

Liu, J., X. Zhang, T. Wang, J. Zhang and H. Wang, 2015. Experimental and numerical study of the pollution formation in a diesel/CNG dual fuel engine. Fuel, 159: 418-429.
Direct Link  |  

Lu, X.C., L.B. Ji, J.J. Ma, C. Huang and Z. Huang, 2008. Experimental study on the effects of mixture homogeneity on stratified-charge compression ignition combustion. Proc. Inst. Mech. Eng. J. Automobile Eng., 222: 2457-2467.
Direct Link  |  

Ochieng, M.H. and M. Hawi, 2015. Performance and emission characteristics of a modified direct injection diesel engine running on diesel-biogas fuel. Ph.D Thesis, Jomo Kenyatta University of Agriculture and Technology, Juja, Kenya.

Oliveira, A.C., 2016. Exhaust gas recirculation in dual-fuel engine. Masters Thesis, Department of Mechanical Engineering, Aalto University, Espoo, Finland.

Park, C., C. Kim, Y. Choi and J. Lee, 2013. Operating strategy for exhaust gas reduction and performance improvement in a heavy-duty hydrogen-natural gas blend engine. Energy, 50: 262-269.
Direct Link  |  

Paul, A., R.S. Panua, D. Debroy and P.K. Bose, 2015. An experimental study of the performance, combustion and emission characteristics of a CI engine under dual fuel mode using CNG and oxygenated pilot fuel blends. Energy, 86: 560-573.
Direct Link  |  

Pichayapat, K., S. Sukchai, S. Thongsan and A. Pongtornkulpanich, 2014. Emission characteristics of using HCNG in the internal combustion engine with minimum pilot diesel injection for greater fuel economy. Intl. J. Hydrogen Energy, 39: 12182-12186.
Direct Link  |  

Prasad, R. and V.R. Bella, 2011. A review on diesel soot emission, its effect and control. Bull. Chem. React. Eng. Catal., 5: 69-86.
Direct Link  |  

Puttaiah, G., T.A. Drennen, S.C. Brunetti and C.M. Traylor, 2012. Conversion of a gasoline internal combustion engine into a hydrogen Engine. West Virginia University, Morgantown, West Virginia.

Ramasamy, D., 2005. Development of a compressed natural gas (CNG) mixer for a two stroke internal combustion engine. Ph.D Thesis, University of Technology, Johor Bahru, Malaysia.

Reddy, R. and P. Reddy, 2014. Analysis of producer gas carburetor for different air-fuel ratios using CFD. Intl. J. Res. Eng. Technol., 3: 470-474.

Resitoglu, I.A., K. Altinişik and A. Keskin, 2015. The pollutant emissions from diesel-engine vehicles and exhaust aftertreatment systems. Clean Technol. Environ. Policy, 17: 15-27.
CrossRef  |  Direct Link  |  

Robison, J.A. and W.M. Brehob, 1967. The influence of improved mixture quality on engine exhaust EM issions ANA performance. J. Air Pollution Control Assoc., 17: 446-453.
Direct Link  |  

Semin, S., 2011. Development of new injector for compressed natural gas engine and the effect on performance. Ph.D Thesis, Universiti Malaysia Pahang, Gambang, Malaysia.

Serie, A.E., M. Ozgur and K. Altinşik, 2016. Computational analysis of methane-air venturi mixer for optimum design. Mevlana University, Konya, Turkey. https://www.researchgate.net/profile/Essam_Abo-Serie/publication/281684556_Computational_analysis_of_methane-air_venturi_mixer_for_optimum_design/links/562f625008ae4742240ac6ea.pdf.

Shaikh, M.A. and A.H. Shukla, 2016. Optimization of natural gas mixture design by computational method for improving swirl effect to obtain enhancement of SI engine performance: A review. Intl. J. Curr. Eng. Technol., 6: 1-6.
Direct Link  |  

Sharaf, J., 2013. Exhaust emissions and its control technology for an internal combustion engine. Intl. J. Eng. Res. Appl., 3: 947-960.
Direct Link  |  

Sharma, H., S. Singh and R. Goel, 2014. CFD analysis of the natural gas based carburetor for a two stroke spark ignition engine. Int. J. Mech. Eng. Rob. Res., 1: 83-88.
Direct Link  |  

Sun, Z.Y., F.S. Liu, X.H. Liu, B.G. Sun and D.W. Sun, 2012. Research and development of hydrogen fuelled engines in China. Intl. J. Hydrogen Energy, 37: 664-681.
Direct Link  |  

Supee, A., M. Shafeez, R. Mohsin and Z. Majid, 2014. Performance of Diesel-Compressed Natural Gas (CNG) Dual Fuel (DDF) engine via CNG-air venturi mixjector application. Arabian J. Sci. Eng., 39: 7335-7344.
Direct Link  |  

Supee, A.R., Z.A. Mohsin, M.I. Majid and Raiz, 2014. Effects of Compressed Natural Gas (CNG) injector position on intake manifold towards Diesel-CNG Dual Fuel (DDF) engine performance. J. Technol., Vol. 70,

Suryawanshi, S.J. and R.B. Yarasu, 2014. Design and simulation of a producer gas carburetor a review. Intl. J. Current Eng. Technol. Spec., 3: 10-13.
Direct Link  |  

Tang, W., 1995. Investigation of mixture preparation for natural gas engines. Ph.D Thesis, University of Bath, Bath, England.

Thipse, S., A.V. Kulkarni, S.J. Vispute, S.D. Rairikar and S.B. Sonawane et al., 2015. Development of dual fuel (Diesel-CNG) engine for SUV application in India. SAE. Intl. J. Engines, 8: 341-349.
CrossRef  |  Direct Link  |  

Tormanen, J., 2015. Variable valve actuation and dual-fuel combustion. Masters Thesis, Department of Energy Technology, Aalto University, Espoo, Finland.

Vinay, S.S., S.D. Ravi, G. PremaKumar and N.K.S. Rajan, 2008. Numerical and experimental modeling of producer gas carburettor. Proceedings of the International Conference on ‘Advances in Mechanical Engineering, December 15-17, 2008, Bangalore University, Bengaluru, India, pp: 1-6.

Walker, N.R., 2016. Natural gas for advanced dual-fuel combustion strategies. Ph.D Thesis, University of Wisconsin-Madison, Madison, Wisconsin.

Wang, Z., Z. Zhao, D. Wang, M. Tan and Y. Han et al., 2016. Impact of pilot diesel ignition mode on combustion and emissions characteristics of a diesel natural gas dual fuel heavy-duty engine. Fuel, 167: 248-256.
Direct Link  |  

Wei, L. and P. Geng, 2016. A review on natural gas/diesel dual fuel combustion, emissions and performance. Fuel Process. Technol., 142: 264-278.
Direct Link  |  

Wong, W.L., 2005. Compressed natural gas as an alternative fuel in diesel engines. Ph.D Thesis, University of Southern Queensland, Toowoomba, Queensland.

Yaliwal, V.S., N.R. Banapurmath, N.M. Gireesh, R.S. Hosmath and T. Donateo et al., 2016. Effect of nozzle and combustion chamber geometry on the performance of a diesel engine operated on dual fuel mode using renewable fuels. Renewable Energy, 93: 483-501.
Direct Link  |  

Yang, B., C. Xi, X. Wei, K. Zeng and M.C. Lai, 2015. Parametric investigation of natural gas port injection and diesel pilot injection on the combustion and emissions of a turbocharged common rail dual-fuel engine at low load. Appl. Energy, 143: 130-137.
Direct Link  |  

Yusaf, T. and M.Z. Yusoff, 2000. Development of a 3D CFD model to investigate the effect of the mixing quality on the CNG-diesel engine performance. Proceedings of the International Conference on Exhibition and Natural Gas Vehicles, October 17-19, 2000, University of Southern Queensland, Toowoomba, Queensland, pp: 1-14.

Yusaf, T., P. Baker, I. Hamawand and M.M. Noor, 2013. Effect of compressed natural gas mixing on the engine performance and emissions. Int. J. Automot. Mech. Eng., 8: 1416-1429.
Direct Link  |  

Zastavniouk, O., 1997. Study of mixing phenomena in a dual fuel diesel engine air intake manifold. Masters Thesis, University of Alberta, Edmonton, Alberta.

Zhang, C.H. and J.T. Song, 2016. Experimental study of co-combustion ratio on fuel consumption and emissions of NG diesel dual-fuel heavy-duty engine equipped with a common rail injection system. J. Energy Inst., 89: 578-585.
Direct Link  |  

Zhou, J.H., C.S. Cheung and C.W. Leung, 2014. Combustion, performance and emissions of a diesel engine with H2, CH4 and H2-CH4 addition. Intl. J. Hydrogen Energy, 39: 4611-4621.
Direct Link  |  

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