Starting to Unpick the Unique Air–Fuel Mixing Dynamics in the Recuperated Split Cycle Engine

In this work air fuel mixing and combustion dynamics in the recuperated split cycle engine (RSCE) are investigated through new theoretical analysis and complementary optical experiments of the flow field. First, a brief introduction to the basic working principles of the RSCE cycle will be presented...

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Main Authors: Simon A. Harvey, Konstantina Vogiatzaki, Guillaume de Sercey, William Redpath, Robert E. Morgan
Format: Article
Language:English
Published: MDPI AG 2021-04-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/14/8/2148
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spelling doaj-fee79ce44637436aa155d93bcee4943f2021-04-12T23:03:20ZengMDPI AGEnergies1996-10732021-04-01142148214810.3390/en14082148Starting to Unpick the Unique Air–Fuel Mixing Dynamics in the Recuperated Split Cycle EngineSimon A. Harvey0Konstantina Vogiatzaki1Guillaume de Sercey2William Redpath3Robert E. Morgan4Advanced Engineering Centre, University of Brighton Cockroft Building, Lewes Road, East Sussex, Brighton BN2 4GJ, UKAdvanced Engineering Centre, University of Brighton Cockroft Building, Lewes Road, East Sussex, Brighton BN2 4GJ, UKAdvanced Engineering Centre, University of Brighton Cockroft Building, Lewes Road, East Sussex, Brighton BN2 4GJ, UKAdvanced Manufacturing Research Centre, University of Sheffield, Sheffield S60 5TZ, UKAdvanced Engineering Centre, University of Brighton Cockroft Building, Lewes Road, East Sussex, Brighton BN2 4GJ, UKIn this work air fuel mixing and combustion dynamics in the recuperated split cycle engine (RSCE) are investigated through new theoretical analysis and complementary optical experiments of the flow field. First, a brief introduction to the basic working principles of the RSCE cycle will be presented, followed by recent test bed results relevant to pressure traces and soot emissions. These results prompted fundamental questioning of the air-fuel mixing and combustion dynamics taking place. Hypotheses of the mixing process are then presented, with differences to that of a conventional Diesel engine highlighted. Moreover, the links of the reduced emissions, air transfer processes and enhanced atomisation are explored. Initial experimental results and Schlieren images of the air flow through the poppet valves in a flow rig are reported. The Schlieren images display shockwave and Mach disk phenomena. Demonstrating supersonic air flow in the chamber is consistent with complementary CFD work. The results from the initial experiment alone are inconclusive to suggest which of the three suggested mixing mechanism hypotheses are dominating the air–fuel dynamics in the RSCE. However, one major conclusion of this work is the proof for the presence of shockwave phenomena which are atypical of conventional engines.https://www.mdpi.com/1996-1073/14/8/2148internal combustion enginethermal propulsion systemefficiencyemissionsatomisationrecuperated split cycle engine
collection DOAJ
language English
format Article
sources DOAJ
author Simon A. Harvey
Konstantina Vogiatzaki
Guillaume de Sercey
William Redpath
Robert E. Morgan
spellingShingle Simon A. Harvey
Konstantina Vogiatzaki
Guillaume de Sercey
William Redpath
Robert E. Morgan
Starting to Unpick the Unique Air–Fuel Mixing Dynamics in the Recuperated Split Cycle Engine
Energies
internal combustion engine
thermal propulsion system
efficiency
emissions
atomisation
recuperated split cycle engine
author_facet Simon A. Harvey
Konstantina Vogiatzaki
Guillaume de Sercey
William Redpath
Robert E. Morgan
author_sort Simon A. Harvey
title Starting to Unpick the Unique Air–Fuel Mixing Dynamics in the Recuperated Split Cycle Engine
title_short Starting to Unpick the Unique Air–Fuel Mixing Dynamics in the Recuperated Split Cycle Engine
title_full Starting to Unpick the Unique Air–Fuel Mixing Dynamics in the Recuperated Split Cycle Engine
title_fullStr Starting to Unpick the Unique Air–Fuel Mixing Dynamics in the Recuperated Split Cycle Engine
title_full_unstemmed Starting to Unpick the Unique Air–Fuel Mixing Dynamics in the Recuperated Split Cycle Engine
title_sort starting to unpick the unique air–fuel mixing dynamics in the recuperated split cycle engine
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2021-04-01
description In this work air fuel mixing and combustion dynamics in the recuperated split cycle engine (RSCE) are investigated through new theoretical analysis and complementary optical experiments of the flow field. First, a brief introduction to the basic working principles of the RSCE cycle will be presented, followed by recent test bed results relevant to pressure traces and soot emissions. These results prompted fundamental questioning of the air-fuel mixing and combustion dynamics taking place. Hypotheses of the mixing process are then presented, with differences to that of a conventional Diesel engine highlighted. Moreover, the links of the reduced emissions, air transfer processes and enhanced atomisation are explored. Initial experimental results and Schlieren images of the air flow through the poppet valves in a flow rig are reported. The Schlieren images display shockwave and Mach disk phenomena. Demonstrating supersonic air flow in the chamber is consistent with complementary CFD work. The results from the initial experiment alone are inconclusive to suggest which of the three suggested mixing mechanism hypotheses are dominating the air–fuel dynamics in the RSCE. However, one major conclusion of this work is the proof for the presence of shockwave phenomena which are atypical of conventional engines.
topic internal combustion engine
thermal propulsion system
efficiency
emissions
atomisation
recuperated split cycle engine
url https://www.mdpi.com/1996-1073/14/8/2148
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