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Experimental investigation of varying composition of HCNG on performance and combustion characteristics of a SI engine
Authors:SMV Sagar  Avinash Kumar Agarwal
Affiliation:Engine Research Laboratory, Department of Mechanical Engineering, Indian Institute of Technology Kanpur, Kanpur 208016, India
Abstract:With rapid depletion of petroleum resources, researchers are investigating alternate fuels to meet global transportation energy demand. Gaseous fuels such as compressed natural gas (CNG) and hydrogen are of special interest because of their cleaner combustion characteristics compared to liquid petroleum based fossil fuels. However both these gaseous fuels have some technical issues when they are used as stand-alone alternate fuel in conventional spark ignition (SI) engines. CNG suffers from lower energy density and narrow flammability range whereas backfiring tendency is highly pronounced in hydrogen fueled engines. Hydrogen enriched compressed natural gas (HCNG) mixtures are observed to be good alternative to these individual fuels since these mixtures do not pose the issues experienced by the constituent fuels i.e. CNG and hydrogen. In this study, experiments were conducted in a spark ignited gas engine using various compositions of HCNG mixtures having 0, 10, 20, 30, 50, 70 and 100% (v/v) hydrogen fraction. The performance and combustion characteristics of these test fuels were compared with that of baseline CNG, in order to find an optimum HCNG mixture composition for a single cylinder gas engine. Results obtained showed that 30HCNG mixture delivered superior engine performance compared to other HCNG mixtures and baseline CNG, which is in sharp contrast to 15HCNG being advocated globally.
Keywords:HCNG mixture  Combustion  Performance  Heat release rate  Mass burn fraction  B20  20% (v/v) biodiesel blend  BMEP  brake mean effective pressure  BSEC  brake specific energy consumption  BSFC  brake specific fuel consumption  bTDC  before TDC  BTE  brake thermal efficiency  CHR  cumulative heat release  CNG  compressed natural gas  carbon dioxide  coefficient of variation of IMEP  EGR  exhaust gas recirculation  EGT  exhaust gas temperature  EoC  end of combustion  EVO  exhaust valve opening  EVC  exhaust valve closing  H/C  hydrogen to carbon ratio  HCNG  hydrogen enriched compressed natural gas  HRR  heat release rate  IMEP  indicated mean effective pressure  IVO  intake valve opening  IVC  intake valve closing  LPG  liquefied petroleum gas  MBT  maximum brake torque  MFB  mass fraction burnt  50% mass fraction burnt  maximum cylinder pressure  RAFR  relative air–fuel ratio  RoPR  rate of pressure rise  maximum RoPR  SI  spark ignition  SoC  start of combustion  STP  standard temperature and pressure  TDC  top dead center  v/v  volume by volume fraction
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