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HCCI combustion characteristics during operation on DME and methane fuels

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Abstract

The Homogeneous Charge Compression Ignition (HCCI) engine has attracted much interest because it can simultaneously achieve high efficiency and low emissions. However, the ignition timing is difficult to control because this engine has no physical ignition mechanism. In addition, combustion proceeds very rapidly because the premixed mixture ignites simultaneously at multiple locations in the cylinder, making it difficult to increase the operating load. In this study, an HCCI engine was operated using blended test fuels comprised of dimethyl ether (DME) and methane, each of which have different ignition characteristics. The effects of mixing ratios and absolute quantities of the two types of fuel on the ignition timing and rapidity of combustion were investigated. Cool flame reaction behavior, which significantly influences the ignition, was also analyzed in detail on the basis of in-cylinder spectroscopic measurements. The experimental results revealed that within the range of the experimental conditions used in this study, the quantity of DME supplied substantially influenced the ignition timing, whereas there was little observed effect from the quantity of methane supplied. Spectroscopic measurements of the behavior of a substance corresponding to HCHO also indicated that the quantity of DME supplied significantly influenced the cool flame behavior. However, the rapidity of combustion could not be controlled even by varying the mixing ratios of DME and methane. It was made clear that changes in the ignition timing substantially influence the rapidity of combustion.

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References

  • Aoyama, T., Hattori, Y., Mizuta, J. and Sato, Y. (1996). An experimental study on premixed-charge compressionignition gasoline engine. SAE Paper No. 960081.

  • Fujimoto, K., Kajitani, S. and Goto, S. (2006). DME Handbook. Ohmsha Ltd. Japan.

    Google Scholar 

  • Gaydon, A. G. (1974). The Spectroscopy of Flame 2nd Edition. Chapman and Hall Ltd. London.

    Google Scholar 

  • Glassman, I. (1996). Combustion 3rd Edition. USA. 589–603.

  • Hyvonen, J. (2005). Operating conditions using spark assisted HCCI combustion during combustion mode transfer to SI in a multi-cylinder VCR-HCCI engine. SAE Paper No. 2005-01-0109.

  • Iijima, A., Yoshida, K., Shoji, H. and Lee, J. T. (2007). Analysis of HCCI combustion characteristics based on experimentation and simulations-influence of fuel octane number and internal EGR on combustion. Int. J. Automotive Technology 8,2, 134–147.

    Google Scholar 

  • Iijima, A. and Shoji, H. (2007). A Study of HCCI combustion characteristics using spectroscopic techniques. SAE Paper No. 2007-01-1886.

  • Koyama, T., Ibaragi, Y. and Iida, N. (2001). Numerical calculation of the homogeneous charge compression ignition process by using an elementary reaction model of dimethyl ether. JSME Trans. 67,657B, 165–171.

    Google Scholar 

  • Konno, M. (2003). Compression ignition mechanism of methane/DME composite fuel. Proc. Mechanical Engineering Cong., 3, 119–120.

    MathSciNet  Google Scholar 

  • Leppard, W. R. (1988). The autoignition chemistry of isobutane: A motored engine study. SAE Paper No. 881606.

  • Muto, T., Yoshida, K., Nishimi, S., Nomura, H., Yoshida, K. and Shoji, H. (2006). Analysis of combustion in DME and methane fueled HCCI engine. JSAE Trans. 37,4, 95–100.

    Google Scholar 

  • Ozaki, J., Yamashita, D., Sato, S. and Iida, N. (2006). Effects of the compositions of the double componential fuel on the HCCI combustion mechanism. JSAE Trans. 37,6, 121–126.

    Google Scholar 

  • Prothero, A. (1969). Computing with thermochemical data. Combustion and Flame 13,4, 399–408.

    Article  Google Scholar 

  • Pilling, M. J. (1997). Low-Temperature Combustion and Autoignition. Elsevier. Netherlands. 35. 9–17.

    Google Scholar 

  • Persson, H., Agrell, M., Olsson, J. O., Johansson, B. and Ström, H. (2004). The effect of intake temperature on HCCI operation using negative valve overlap. SAE Paper No. 2004-01-0944.

  • Shoji, H., Saima, A., Shiino, K. and Ikeda, S. (1992). Clarification of abnormal combustion in a spark ignition engine. SAE Trans., 101 (Section 4), 1885–1895.

    Google Scholar 

  • Shoji, H., Tosaka, Y., Yoshida, K. and Saima, A. (1994). Radical behavior in preflame reactions under knocking operation in a spark ignition engine. SAE Paper No. 942061.

  • Shoji, H., Shimizu, T., Nishizawa, T., Yoshida, K. and Saima, A. (1996). Spectroscopic measurement of radical behavior under knocking operation. SAE Paper No. 962104.

  • Shudo, T., Nabetani, S. and Nakajima, Y. (2000). Analysis of degree of constant volume and cooling loss in a hydrogen premixed combustion engine. JSAE Trans. 31,4, 5–10.

    Google Scholar 

  • Sato, S., Kweon, P., Yamashita, D. and Iida, N. (2006). Influence of the mixing ratio of double componential fuels on HCCI combustion. Int. J. Automotive Technology 7,3, 251–259.

    Google Scholar 

  • Thring, R. H. (1989). Homogeneous-charge compressionignition (HCCI) engines. SAE Paper No. 892068.

  • Urushihara, T., Hiraya, K., Kakuhou, A. and Itoh, T. (2003). Expansion of HCCI operating region by the combination of direct fuel injection, negative valve overlap and internal fuel reformation. SAE Paper No. 2003-01-0749.

  • Urata, Y., Awasaka, M., Takanashi, J., Kakinuma, T., Hakozaki, T. and Umemoto, A. (2004). A study of gasoline-fuelled HCCI engine equipped with an electromagnetic valve train. SAE Paper No. 2004-01-1898.

  • Yoshida, K., Takahiro, K., Shinichi, T., Shoji, H., Yoshida, K., Shimada, K. and Shibano, K. (2005). Diversified combustion analysis of homogeneous change compression ignition engine with dimethyl ether. JSAE Trans. 36,4, 39–44.

    Google Scholar 

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Correspondence to Y. Tsutsumi.

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Tsutsumi, Y., Iijima, A., Yoshida, K. et al. HCCI combustion characteristics during operation on DME and methane fuels. Int.J Automot. Technol. 10, 645–652 (2009). https://doi.org/10.1007/s12239-009-0076-3

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  • DOI: https://doi.org/10.1007/s12239-009-0076-3

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