Port Flow Simulation and In-cylinder Swirl Motion Characteristic Effects in Internal Combustion Engine Duty Cycle

Combustion process in internal combustion engines involve significant temperature and pressure, carbon deposit, turbulence flame, swirling and tumbling flows which are considered necessary for operating these engines. This study examines the in-cylinder effects of swirling and tumbling motion along...

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Main Authors: Aniekan Essienubong Ikpe, Ikechukwu Bismarck Owunna, Philip Obhenime John
Format: Article
Language:English
Published: ARQII PUBLICATION 2021-03-01
Series:Applications of Modelling and Simulation
Subjects:
Online Access:http://arqiipubl.com/ojs/index.php/AMS_Journal/article/view/254/116
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spelling doaj-5f1916641cc1400692171f1f4ec62d1e2021-03-20T14:31:34ZengARQII PUBLICATIONApplications of Modelling and Simulation2600-80842021-03-015102114Port Flow Simulation and In-cylinder Swirl Motion Characteristic Effects in Internal Combustion Engine Duty CycleAniekan Essienubong Ikpe0Ikechukwu Bismarck Owunna1Philip Obhenime John2Department of Mechanical Engineering, University of Benin, P.M.B. 1154, NigeriaDepartment of Mechanical Engineering, University of Benin, P.M.B. 1154, NigeriaDepartment of Mechanical Engineering, University of Benin, P.M.B. 1154, NigeriaCombustion process in internal combustion engines involve significant temperature and pressure, carbon deposit, turbulence flame, swirling and tumbling flows which are considered necessary for operating these engines. This study examines the in-cylinder effects of swirling and tumbling motion along with the in-cylinder temperature during combustion process of air-fuel mixture. A detailed port flow analysis was carried out using ANSYS R-16 software and a valve lift of 8 mm. The velocity magnitude and mass flow rate were monitored using swirl motion simulated profiles and cut planes. Motion analysis was carried out to determine the angular velocity of the cycle using SOLIDWORKS 2017. The average angular velocity of the crankshaft was found to be 1315 rpm, with percentage deviation of less than 20%. It was also found that the area-weighted average velocity of charge was 11 m/s with corresponding mass flow rate measured as -0.055479 kg/s. The maximum flow rate was calculated at 8 mm as 0.005417 kg/s. The ICE swirl plane 1, 2 and 3 were characterized by different contours of velocity magnitude, indicating that the swirl intensity increased as the charge moved further down the cylinder while the charge volume of swirl increased along the cylinder length. For the ICE cut plane, the velocity increased as the swirl increased while the mass flow rate decreased as the fluid went further away from the poppet valve. Therefore, the intensity of swirl increased along the stroke length of the engine cylinder. In addition, increase in the swirl number led to uniform radial temperature distribution as well as reduction in the in-cylinder flame temperature which can mitigate against the formation of toxic pollutants.http://arqiipubl.com/ojs/index.php/AMS_Journal/article/view/254/116air-fuelin-cylinder combustioninternal combustion engineport flow simulationswirl motion
collection DOAJ
language English
format Article
sources DOAJ
author Aniekan Essienubong Ikpe
Ikechukwu Bismarck Owunna
Philip Obhenime John
spellingShingle Aniekan Essienubong Ikpe
Ikechukwu Bismarck Owunna
Philip Obhenime John
Port Flow Simulation and In-cylinder Swirl Motion Characteristic Effects in Internal Combustion Engine Duty Cycle
Applications of Modelling and Simulation
air-fuel
in-cylinder combustion
internal combustion engine
port flow simulation
swirl motion
author_facet Aniekan Essienubong Ikpe
Ikechukwu Bismarck Owunna
Philip Obhenime John
author_sort Aniekan Essienubong Ikpe
title Port Flow Simulation and In-cylinder Swirl Motion Characteristic Effects in Internal Combustion Engine Duty Cycle
title_short Port Flow Simulation and In-cylinder Swirl Motion Characteristic Effects in Internal Combustion Engine Duty Cycle
title_full Port Flow Simulation and In-cylinder Swirl Motion Characteristic Effects in Internal Combustion Engine Duty Cycle
title_fullStr Port Flow Simulation and In-cylinder Swirl Motion Characteristic Effects in Internal Combustion Engine Duty Cycle
title_full_unstemmed Port Flow Simulation and In-cylinder Swirl Motion Characteristic Effects in Internal Combustion Engine Duty Cycle
title_sort port flow simulation and in-cylinder swirl motion characteristic effects in internal combustion engine duty cycle
publisher ARQII PUBLICATION
series Applications of Modelling and Simulation
issn 2600-8084
publishDate 2021-03-01
description Combustion process in internal combustion engines involve significant temperature and pressure, carbon deposit, turbulence flame, swirling and tumbling flows which are considered necessary for operating these engines. This study examines the in-cylinder effects of swirling and tumbling motion along with the in-cylinder temperature during combustion process of air-fuel mixture. A detailed port flow analysis was carried out using ANSYS R-16 software and a valve lift of 8 mm. The velocity magnitude and mass flow rate were monitored using swirl motion simulated profiles and cut planes. Motion analysis was carried out to determine the angular velocity of the cycle using SOLIDWORKS 2017. The average angular velocity of the crankshaft was found to be 1315 rpm, with percentage deviation of less than 20%. It was also found that the area-weighted average velocity of charge was 11 m/s with corresponding mass flow rate measured as -0.055479 kg/s. The maximum flow rate was calculated at 8 mm as 0.005417 kg/s. The ICE swirl plane 1, 2 and 3 were characterized by different contours of velocity magnitude, indicating that the swirl intensity increased as the charge moved further down the cylinder while the charge volume of swirl increased along the cylinder length. For the ICE cut plane, the velocity increased as the swirl increased while the mass flow rate decreased as the fluid went further away from the poppet valve. Therefore, the intensity of swirl increased along the stroke length of the engine cylinder. In addition, increase in the swirl number led to uniform radial temperature distribution as well as reduction in the in-cylinder flame temperature which can mitigate against the formation of toxic pollutants.
topic air-fuel
in-cylinder combustion
internal combustion engine
port flow simulation
swirl motion
url http://arqiipubl.com/ojs/index.php/AMS_Journal/article/view/254/116
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AT ikechukwubismarckowunna portflowsimulationandincylinderswirlmotioncharacteristiceffectsininternalcombustionenginedutycycle
AT philipobhenimejohn portflowsimulationandincylinderswirlmotioncharacteristiceffectsininternalcombustionenginedutycycle
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