Inverted Brayton Cycle With Exhaust Gas CondensationSource: Journal of Engineering for Gas Turbines and Power:;2018:;volume( 140 ):;issue: 011::page 111702DOI: 10.1115/1.4039811Publisher: The American Society of Mechanical Engineers (ASME)
Abstract: Approximately 30% of the energy from an internal combustion engine is rejected as heat in the exhaust gases. An inverted Brayton cycle (IBC) is one potential means of recovering some of this energy. When a fuel is burnt, water and CO2 are produced and expelled as part of the exhaust gases. In an IBC, in order to reduce compression work, the exhaust gases are cooled before compression up to ambient pressure. If coolant with a low enough temperature is available, it is possible to condense some of the water out of the exhaust gases, further reducing compressor work. In this study, the condensation of exhaust gas water is studied. The results show that the IBC installed in series on a turbocharged engine can produce an improvement of approximately 5% in brake-specific fuel consumption at the baseline conditions chosen and for a compressor inlet temperature of 310 K. The main factors that influence the work output are heat exchanger pressure drop, turbine expansion ratio, coolant temperature, and turbine inlet temperature. For conditions when condensation is possible, the water content of the exhaust gas has a significant influence on work output. The hydrogen to carbon ratio of the fuel has the most potential to vary the water content and hence the work generated by the system. Finally, a number of uses for the water generated have been presented such as to reduce the additional heat rejection required by the cycle. It can also potentially be used for engine water injection to reduce emissions.
|
Show full item record
contributor author | Kennedy, Ian | |
contributor author | Chen, Zhihang | |
contributor author | Ceen, Bob | |
contributor author | Jones, Simon | |
contributor author | Copeland, Colin D. | |
date accessioned | 2019-02-28T10:57:40Z | |
date available | 2019-02-28T10:57:40Z | |
date copyright | 7/31/2018 12:00:00 AM | |
date issued | 2018 | |
identifier issn | 0742-4795 | |
identifier other | gtp_140_11_111702.pdf | |
identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4251188 | |
description abstract | Approximately 30% of the energy from an internal combustion engine is rejected as heat in the exhaust gases. An inverted Brayton cycle (IBC) is one potential means of recovering some of this energy. When a fuel is burnt, water and CO2 are produced and expelled as part of the exhaust gases. In an IBC, in order to reduce compression work, the exhaust gases are cooled before compression up to ambient pressure. If coolant with a low enough temperature is available, it is possible to condense some of the water out of the exhaust gases, further reducing compressor work. In this study, the condensation of exhaust gas water is studied. The results show that the IBC installed in series on a turbocharged engine can produce an improvement of approximately 5% in brake-specific fuel consumption at the baseline conditions chosen and for a compressor inlet temperature of 310 K. The main factors that influence the work output are heat exchanger pressure drop, turbine expansion ratio, coolant temperature, and turbine inlet temperature. For conditions when condensation is possible, the water content of the exhaust gas has a significant influence on work output. The hydrogen to carbon ratio of the fuel has the most potential to vary the water content and hence the work generated by the system. Finally, a number of uses for the water generated have been presented such as to reduce the additional heat rejection required by the cycle. It can also potentially be used for engine water injection to reduce emissions. | |
publisher | The American Society of Mechanical Engineers (ASME) | |
title | Inverted Brayton Cycle With Exhaust Gas Condensation | |
type | Journal Paper | |
journal volume | 140 | |
journal issue | 11 | |
journal title | Journal of Engineering for Gas Turbines and Power | |
identifier doi | 10.1115/1.4039811 | |
journal fristpage | 111702 | |
journal lastpage | 111702-11 | |
tree | Journal of Engineering for Gas Turbines and Power:;2018:;volume( 140 ):;issue: 011 | |
contenttype | Fulltext |