Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8062576 | Ocean Engineering | 2018 | 11 Pages |
Abstract
The stringent environmental regulations along with the LNG fuel penetration and the development of port and bunkering facilities render the use of the dual fuel engines an attractive alternative of the traditional ship propulsion plants based on diesel engines running with HFO for reducing both the plant operating cost and environmental footprint. The present study deals with the computational investigation of a large marine dual fuel (DF) engine of the four-stroke type for comparing its performance and emissions, in both the diesel and gas operaitng modes by using the commercial software GT-ISE. The engine diesel model was initially set up and calibrated to adequately represent the engine operation. Subsequently, the engine dual fuel model was further developed by considering the injection of two different fuels; methane in the cylinder inlet ports and pilot diesel fuel into the engine cylinders. The derived results were analysed for revealing the differences of the engine performance and emissions at each operating mode. In addition, the turbocharger matching was investigated and discussed to enlighten the turbocharging system challenges due to the completely different airâfuel ratio requirements in the diesel and gas modes, respectively. Finally, parametric simulations were performed for the gas mode at different loads by varying the pilot fuel injection timing, the inlet valve closing and the inlet manifold boost pressure, aiming to identify the engine settings that simultaneously reduce the CO2 and NOx emissions considering the airâfuel ratio operation window limitations. The parametric study results are discussed to infer the engine optimal settings.
Keywords
Related Topics
Physical Sciences and Engineering
Engineering
Ocean Engineering
Authors
Sokratis Stoumpos, Gerasimos Theotokatos, Evangelos Boulougouris, Dracos Vassalos, Iraklis Lazakis, George Livanos,