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February 6, 2026Thermal Science0 citationsOpen Access

Effect of fuel injection on emissions of diesel engine fueled with waste cooking oil biodiesel produced by ultrasonic transesterification

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HMHasan MaksumWPWawan PurwantoRRR Rifdarmon

Key Points

  • The aim was to investigate how different injection timings affect emissions from a diesel engine running on biodiesel made from waste cooking oil.
  • Evaluated various injection timings: standard, advanced, and retarded from the baseline.
  • Engine operated at a constant speed of 2,400 rpm during tests.
  • Measured exhaust gas temperatures and emissions including CO, UHC, NOx, and smoke opacity.
  • Standard injection timing (17? CA BTDC) yielded optimal engine performance with an exhaust gas temperature (EGT) of approximately 250?C.
  • Advancing injection timing increased EGT to 320?C, reducing CO and UHC emissions by 11.11% and 26.30%, respectively.
  • Advanced timing resulted in significant increases in smoke opacity and NOx emissions by 14.58% and 31.1%.
  • Retarding injection timing decreased EGT to 220?C and increased CO, UHC, and smoke opacity emissions, with NOx rising by 10.4%.

Abstract

This study aimed to examine effect of injection timing on the use of biodiesel fuel from waste cooking oil processed with ultrasonic transesterification technology on exhaust emissions of diesel engine. Several variations of injection timing were applied to evaluate their impact on exhaust gas characteristics and engine emissions. Engine was run at a constant speed of 2,400 rpm with standard injection timing (17? CA BTDC), advanced at an angle of 3? and 6? CA (20? and 23? CA BTDC), followed by retardation at 3? and 6? CA (14? and 11? CA BTDC). The results showed that the standard injection timing of 17? CA BTDC provided optimal performance with an EGT of approximately 250?C at B10. Advancing injection timing increased the EGT to 320?C but reduced CO and UHC emissions by 11.11% and 26.30%, respectively. However, there was a significant increase in smoke opacity emissions and NOx by 14.58% and 31.1%, respectively. The retardation in injection timing decreased EGT to 220?C as well as increased CO, UHC, and smoke opacity emissions, with NOx rising by 10.4%. These results showed that ultrasonic transesterification technology produced high-quality biodiesel with better combustion characteristics. Meanwhile, increasing biodiesel content (B20-B100) tended to cause a rise in NOx emissions due to higher oxygen content.

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Cite This Study

Maksum et al. (2026) studied this question.

synapsesocial.com/papers/698585bd8f7c464f2300958bhttps://doi.org/10.2298/tsci250325002m
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