Applications of Oxyhydrogen, Direct Water Injection, and Early-Intake Valve Closure Technologies on a Petrol Spark Ignition Engine — A Path towards Zero-Emission Hydrogen Internal Combustion Engines

Applications of Oxyhydrogen, Direct Water Injection, and Early-Intake Valve Closure Technologies on a Petrol Spark Ignition Engine — A Path towards Zero-Emission Hydrogen Internal Combustion Engines

This study investigates the performance of a 4-MIX engine utilizing hydrogen combustion in pure oxygen, water injection, and the application of the early-intake valve closure (EIVC) Miller cycle. Transitioning from a standard petrol–oil mix to hydrogen fuel with pure oxygen combustion aims to reduce emissions. Performance comparisons between baseline and oxyhydrogen engines showed proportional growth in the energy input rate with increasing rotational speed. The oxyhydrogen engine exhibited smoother reductions in brake torque and thermal efficiency as rotational speed increased compared to the baseline, attributed to hydrogen’s higher heating value. Water injection targeted cylinder and exhaust temperature reduction while maintaining a consistent injected mass. The results indicated a threshold of around 2.5 kg/h for the optimal water injection rate, beyond which positive effects on engine performance emerged. Investigation into the EIVC Miller cycle revealed improvements in brake torque, thermal efficiency, and brake specific fuel consumption as early-intake valve closure increased. Overall, the EIVC model exhibited superior energy efficiency, torque output, and thermal efficiency compared to alternative models, effectively addressing emissions and cylinder temperature concerns.

MDPI, Energies 2024, 17(9), 2014


Realis Simulation, formerly Ricardo Software.

Our insights

A study on the effect of aluminium piston pin bore profiles on stress using PISDYN

A study on the effect of aluminium piston pin bore profiles on stress using PISDYN

Conference
Download resource
Calculation of the piston temperature field for a heavy-duty diesel engine using FEARCE-Vulcan

Calculation of the piston temperature field for a heavy-duty diesel engine using FEARCE-Vulcan

Conference
Download resource
Applicability of default flow field boundaries for exhaust manifolds based on FEARCE-Vulcan and validation of boiling module

Applicability of default flow field boundaries for exhaust manifolds based on FEARCE-Vulcan and validation of boiling module

Conference
Download resource