Effect of the Intake Valve Lift and Closing Angle on Part Load Efficiency of a Spark Ignition Engine

This study provides an experimental evaluation of the effectiveness of Miller cycles with various combinations of lift and intake valve closing angle for a passenger car engine with premixed combustion in naturally aspirated operation. A fully variable electro-hydraulic valve train provided differen...

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Main Authors: Michelangelo Balmelli, Norbert Zsiga, Laura Merotto, Patrik Soltic
Format: Article
Language:English
Published: MDPI AG 2020-04-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/13/7/1682
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spelling doaj-58b239d3581f423aa4c852a8fb4eb6372020-11-25T03:10:55ZengMDPI AGEnergies1996-10732020-04-01131682168210.3390/en13071682Effect of the Intake Valve Lift and Closing Angle on Part Load Efficiency of a Spark Ignition EngineMichelangelo Balmelli0Norbert Zsiga1Laura Merotto2Patrik Soltic3Automotive Powertrain Technologies Laboratory, Empa Swiss Federal Laboratories for Materials Science and Technology, 8600 Dübendorf, SwitzerlandAutomotive Powertrain Technologies Laboratory, Empa Swiss Federal Laboratories for Materials Science and Technology, 8600 Dübendorf, SwitzerlandAutomotive Powertrain Technologies Laboratory, Empa Swiss Federal Laboratories for Materials Science and Technology, 8600 Dübendorf, SwitzerlandAutomotive Powertrain Technologies Laboratory, Empa Swiss Federal Laboratories for Materials Science and Technology, 8600 Dübendorf, SwitzerlandThis study provides an experimental evaluation of the effectiveness of Miller cycles with various combinations of lift and intake valve closing angle for a passenger car engine with premixed combustion in naturally aspirated operation. A fully variable electro-hydraulic valve train provided different valve lift profiles. Six load points, from 1.5 up to 5 bar brake mean effective pressure at a constant engine speed of 2000 min<sup>−1</sup>, were tested with 6 different intake valve lift/intake valve closing angle combinations. The intake valve closing angle was always set before bottom dead center to achieve the desired load with unthrottled operations. Experimental comparison with throttled operation outlines an indicated efficiency increase of up to 10% using high intake lift with early valve closing angle. Furthermore, this analysis outlines the influences that early intake valve closing angle has on fuel energy disposition. Longer combustion duration occurs using early intake valve closing angle because of turbulence dissipation effects, leading to slight reductions in the heat-to-work efficiency. However, overall pressure and temperature levels decrease and consequently heat losses and losses due to incomplete combustion decrease as well. Overall, we found that combustion deterioration is compensated/mitigated by the reduction of the heat losses so that reductions of pumping losses using early intake valve closing can be fully exploited to increase the engine’s efficiency.https://www.mdpi.com/1996-1073/13/7/1682Miller cyclesearly intake valve closingelectro hydraulic valve trainenergy balanceheat losses
collection DOAJ
language English
format Article
sources DOAJ
author Michelangelo Balmelli
Norbert Zsiga
Laura Merotto
Patrik Soltic
spellingShingle Michelangelo Balmelli
Norbert Zsiga
Laura Merotto
Patrik Soltic
Effect of the Intake Valve Lift and Closing Angle on Part Load Efficiency of a Spark Ignition Engine
Energies
Miller cycles
early intake valve closing
electro hydraulic valve train
energy balance
heat losses
author_facet Michelangelo Balmelli
Norbert Zsiga
Laura Merotto
Patrik Soltic
author_sort Michelangelo Balmelli
title Effect of the Intake Valve Lift and Closing Angle on Part Load Efficiency of a Spark Ignition Engine
title_short Effect of the Intake Valve Lift and Closing Angle on Part Load Efficiency of a Spark Ignition Engine
title_full Effect of the Intake Valve Lift and Closing Angle on Part Load Efficiency of a Spark Ignition Engine
title_fullStr Effect of the Intake Valve Lift and Closing Angle on Part Load Efficiency of a Spark Ignition Engine
title_full_unstemmed Effect of the Intake Valve Lift and Closing Angle on Part Load Efficiency of a Spark Ignition Engine
title_sort effect of the intake valve lift and closing angle on part load efficiency of a spark ignition engine
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2020-04-01
description This study provides an experimental evaluation of the effectiveness of Miller cycles with various combinations of lift and intake valve closing angle for a passenger car engine with premixed combustion in naturally aspirated operation. A fully variable electro-hydraulic valve train provided different valve lift profiles. Six load points, from 1.5 up to 5 bar brake mean effective pressure at a constant engine speed of 2000 min<sup>−1</sup>, were tested with 6 different intake valve lift/intake valve closing angle combinations. The intake valve closing angle was always set before bottom dead center to achieve the desired load with unthrottled operations. Experimental comparison with throttled operation outlines an indicated efficiency increase of up to 10% using high intake lift with early valve closing angle. Furthermore, this analysis outlines the influences that early intake valve closing angle has on fuel energy disposition. Longer combustion duration occurs using early intake valve closing angle because of turbulence dissipation effects, leading to slight reductions in the heat-to-work efficiency. However, overall pressure and temperature levels decrease and consequently heat losses and losses due to incomplete combustion decrease as well. Overall, we found that combustion deterioration is compensated/mitigated by the reduction of the heat losses so that reductions of pumping losses using early intake valve closing can be fully exploited to increase the engine’s efficiency.
topic Miller cycles
early intake valve closing
electro hydraulic valve train
energy balance
heat losses
url https://www.mdpi.com/1996-1073/13/7/1682
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