Enhancement of rate of heat transfer in HCCI engine with induction induced swirl and under varying compression ratios and boost pressures
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  • 作者:T. Karthikeya Sharma ; G. Amba Prasad Rao…
  • 关键词:HCCI engine ; ECFM ; 3Z ; Rate of heat transfer ; Swirl ratio ; Boost pressure ; Compression ratio
  • 刊名:Journal of Mechanical Science and Technology
  • 出版年:2015
  • 出版时间:October 2015
  • 年:2015
  • 卷:29
  • 期:10
  • 页码:4545-4553
  • 全文大小:1,801 KB
  • 参考文献:[1]K. Epping, S. M. Aceves, R. L. Bechtold and J. E. Dec, The potential of HCCI combustion for high efficiency and low emissions, SAE Paper No. 2002-01-1923.
    [2]T. K. Sharma, G. A. P. Rao and K. Madhumurthy, Combustion analysis of ethanol in HCCI engine, Trends in Mech. Engg., 3 (1) (2012).
    [3]R. Manimaran and R. T. K. Raj, Computational studies of swirl ratio and injection timing on atomization in a direct injection diesel engine, Front. in Heat &Mass Trans. (FHMT), 5 (1) (2014).
    [4]S. P. Venkateswaran and G. Nagarajan, Effects of the reentrant bowl geometry on a DI turbocharged diesel engine performance and emissions鈥擜 CFD approach, J. Engg. for Gas Turb. and Power, 132 (12) (2010) 122803.CrossRef
    [5]F. Maroteaux, L. Noel and A. Ahmed, Numerical investigations on methods to control the rate of heat release of HCCI combustion using reduced mechanism of n-heptane with a multidimensional CFD code, Comb. Theory and Model, 11 (4) (2007) 501鈥?25.MATH CrossRef
    [6]T. K. Sharma, G. A. P. Rao and K. Madhumurthy, Effect of swirl of performance and emissions of CI engine in HCCI mode, J. Braz. Soc. Mech. Sci. Eng., 37 (2015) 1405鈥?416.CrossRef
    [7]J. M. Duclos, M. Zolver and T. Baritaud, 3D modeling of combustion for DI-SI engines, Oil & Gas Sci & Tech鈥揜ev., IFP, 54 (2) (1999) 259鈥?64.CrossRef
    [8]O. Colin and A. Benkenida, The 3-zone extended coherent flame model (ECFM3Z) for computing premixed/diffusion combustion, Oil & Gas Sci & Tech鈥揜ev. IFP, 59 (6) (2004) 593鈥?09.CrossRef
    [9]F. Ravet, D. Abouri, M. Zellat and S. Duranti, Advances in combustion modeling in STAR-CD: Validation of ECFM CLE-H model to engine analysis, 18th Int. Multdl Eng Users鈥?Meet SAE Congress, Detroit, April, 13 (2008).
    [10]G. Subramanian, L. Vervish and F. Ravet, New developments in turbulent combustion modeling for engine design: ECFM-CLEH combustion sub model, SAE Int. -2007-01-0154.
    [11]V. Moureau, G. Lartigue, Y. Sommerer, C. Angelberger, O. Colin and T. Poinsot, Numerical methods for unsteady compressible multi-component reacting flows on fixed and moving grids, Int J. Comput. Phy., 202 (2) (2005) 710鈥?36.MATH MathSciNet CrossRef
    [12]S. P. Venkateswaran and G. Nagarajan, Effects of the reentrant bowl geometry on a DI turbocharged diesel engine performance and emissions鈥擜 CFD approach, J. Engg. Gas Turb. and Power, 132 (12) (2010).
    [13]M. Zellat et al., Towards a universal combustion model in STAR-CD for IC engines: from GDI to HCCI and application to DI Diesel combustion optimization, Proc. 14th Int. Multid. Eng. User鈥檚 Meeting, SAE Cong. (2005).
    [14]Y. Bakhshan et al., Multi-dimensional simulation of nheptane combustion under HCCI engine condition using detailed chemical kinetics, The J. Eng. Research, 22 (2011).
    [15]D. Ganesh and G. Nagarajan, Homogeneous charge compression ignition (HCCI) combustion of diesel fuel with external mixture formation, Energy, 35 (1) (2010) 148鈥?57.CrossRef
    [16]E. Neshat and R. K. Saray, Effect of different heat transfer models on HCCI engine simulation, Energy Conversion and Management, 88 (2014) 1鈥?4.CrossRef
    [17]M. T. Garc铆a, F. J. J.-E. Aguilar, T. S. Lencero and J. A. B. Villanueva, A new heat release rate (HRR) law for homogeneous charge compression ignition (HCCI) combustion mode, Applied Thermal Engineering, 29 (17) (2009) 3654鈥?662.CrossRef
    [18]M. Christensen and B. Johansson, Per Amn茅us and Fabian Mauss, Supercharged homogeneous charge compression ignition. SAE Technical paper, No. 980787 (1998).CrossRef
  • 作者单位:T. Karthikeya Sharma (1)
    G. Amba Prasad Rao (1)
    K. Madhu Murthy (1)

    1. Department of Mechanical Engineering, NIT Warangal, New Delhi, 506004, T.S, India
  • 刊物类别:Engineering
  • 刊物主题:Mechanical Engineering
    Structural Mechanics
    Control Engineering
    Industrial and Production Engineering
  • 出版者:The Korean Society of Mechanical Engineers
  • ISSN:1976-3824
文摘
Better fuel economy and lower NOx and PM emissions are the two major issues perplexing the researchers as well as new engine developers. Of late a new combustion concept- HCCI has gained popularity in this direction. Low combustion chamber temperatures favor low NOx emission formation. An attempt is made to study the effect of induction induced swirl in enhancing the rate of heat transfer to attain low in-cylinder temperatures favoring low NOx emissions formation. In this regard a computational study is undertaken in analyzing the heat distribution to the engine parts in HCCI mode of combustion under four swirl ratios and operating parameters. Extensive numerical study is carried out on a single cylinder 1.6 L, reentrant piston bowl CI engine. The analysis has been done using ECFM-3Z model of STAR-CD. Suitable modifications in the existing code are done to incorporate the HCCI mode of combustion. The ECFM -3Z model for HCCI mode of combustion is validated with the existing literature to make sure that the results obtained are accurate. The parameters like compression ratio and boost pressure are varied under different swirl ratios to analyze the rate of heat transfer in the combustion chamber. The analysis resulted in achieving maximum increased heat transfer rates of 0.88% to the wall with swirl ratio 1, 45.66% to the dome and 39.99% to the piston with swirl ratio 4; when the compression ratios are increase from 18 to 21. A maximum increase in heat transfer rates of 15.82% to the wall, 26.41% to the dome and 27.46% to the piston with compression ratio 21; when the swirl ratio is increase from 1 to 4. Similarly a maximum increased heat transfer rates of 83.75% to the wall with swirl ratio 4, 88.04% to the dome with swirl ratio 3 and 87.52% to the piston with swirl ratio 4; when the boost pressures are increase from 1 bar to 2 bar were achieved. A maximum increase in heat transfer rates of 59.35% to the wall with boost pressure 1.5 bar, 81.32% to the dome and 76.34% to the piston with boost pressure 2 bar; when the swirl ratio is increase from 1 to 4 were obtained. The study revealed that apart from adopting higher compression ratios and boost pressures adoption of high swirl ratios is observed to be contributing to a large extent in enhancing the rates of heat transfer which would lead to significant reduction in in-cylinder temperatures suitable for low NOx emission formation in HCCI mode. Keywords HCCI engine ECFM-3Z Rate of heat transfer Swirl ratio Boost pressure Compression ratio

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