Introduction of a performance analysis criterion called effective exergetic performance coefficient and application to an engine operated on seven-process cycle


GONCA G., GENÇ İ., Hocaoğlu M. F.

International Journal of Exergy, vol.46, no.1, pp.1-12, 2025 (SCI-Expanded, Scopus) identifier identifier

  • Publication Type: Article / Article
  • Volume: 46 Issue: 1
  • Publication Date: 2025
  • Doi Number: 10.1504/ijex.2025.143811
  • Journal Name: International Journal of Exergy
  • Journal Indexes: Science Citation Index Expanded (SCI-EXPANDED), Scopus, Aerospace Database, Communication Abstracts, Compendex, INSPEC, Metadex, Civil Engineering Abstracts
  • Page Numbers: pp.1-12
  • Keywords: dual-miller cycle, engine performance, internal combustion engines, performance analysis, Takemura cycle, thermo-ecology
  • Yıldız Technical University Affiliated: Yes

Abstract

In a few decades, the researchers studying on the optimisation and improvement of performance specifications and emission formations of the internal combustion engines have turned the attention on application of different cycles such Miller cycle and Takemura cycle into internal combustion engines. In this work, a novel analysis criterion named as effective exergetic performance coefficient (EFEXPEC) have been presented and applied to seven-process cycle consisting of Takemura cycle and Miller cycle. Maximum performance specifications such as maximum thermal efficiency, maximum power output, maximum EFEXPEC, power at maximum EFEXPEC and efficiency at maximum EFEXPEC have been examined. The consequences can be assessed by researchers who work on ICEs to actualise the proposed combination practically and to determine maximum EFEXPEC conditions. The maximum value of power (PMAX) is 27.3 kW and it has been obtained at 6,000 rpm and 20 of compression ratio. The maximum value of thermal efficiency is 40.15% and it has been obtained at 0.9 of equivalence ratio and 20 of compression ratio. The maximum value of EFECPEC (EFECPECMAX) is 0.18 and it has been obtained at 0.9 of equivalence ratio and 14 of compression ratio.