Design, Modeling, and Feasibility Analysis of Rotary Valve for Internal Combustion Engine

There have been several studies focused on improving the efficiency of internal combustion engines using various techniques such as better design, better materials, and regenerative technologies. Recently, in 2016, Toyota reported 40% gas engine efficiency with their Prius model; however, there rema...

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Main Authors: Wenbo Dong, Vishwas N. Bedekar
Format: Article
Language:English
Published: Hindawi Limited 2024-01-01
Series:Journal of Combustion
Online Access:http://dx.doi.org/10.1155/2024/8049436
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author Wenbo Dong
Vishwas N. Bedekar
author_facet Wenbo Dong
Vishwas N. Bedekar
author_sort Wenbo Dong
collection DOAJ
description There have been several studies focused on improving the efficiency of internal combustion engines using various techniques such as better design, better materials, and regenerative technologies. Recently, in 2016, Toyota reported 40% gas engine efficiency with their Prius model; however, there remains a lot more room for improvement towards the theoretical maximum value of 73% using the Carnot theorem. In this research, we present a freshly designed valvetrain that has the potential to improve the efficiency of a known conventional valve designed engine. The goal of this research was to prove the feasibility and significance of the new valve design. This research developed a simulation model of the new valve design and produced its physical property data. The data of the new design were compared to the conventional poppet valve design with respect to several parameters to discuss its working principle and advantages over the conventional valve mechanism. Modeling was performed using Python programming to predict the valve-opening mechanism. The design of experiments was setup to control and tune different parameters accordingly within the reasonable range of engine speed, viz., 1000–6000 rpm to simulate various working conditions. The maximum opening area for the rotary valve is calculated to be 0.795 sq.in which is smaller than the poppet valve’s area of 1.315 sq.in. However, under an example of 2900 rpm, the rotary valve was able to remain fully opened with constant efficiency of about 54% from 40 to 160 degrees of the crankshaft angle. While the poppet valve can achieve 88% efficiency at 90 degrees of the crankshaft angle and the efficiency significantly drops on either side of the maxima, the authors believe that this research would help explore improvements in the performance of a combustion cycle due to the novel rotary valve design that is investigated in this paper.
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spelling doaj.art-84c47c0fd8d94e82b3f54f6a27bfd20e2024-01-26T00:01:00ZengHindawi LimitedJournal of Combustion2090-19762024-01-01202410.1155/2024/8049436Design, Modeling, and Feasibility Analysis of Rotary Valve for Internal Combustion EngineWenbo Dong0Vishwas N. Bedekar1Department of Engineering TechnologyDepartment of Engineering TechnologyThere have been several studies focused on improving the efficiency of internal combustion engines using various techniques such as better design, better materials, and regenerative technologies. Recently, in 2016, Toyota reported 40% gas engine efficiency with their Prius model; however, there remains a lot more room for improvement towards the theoretical maximum value of 73% using the Carnot theorem. In this research, we present a freshly designed valvetrain that has the potential to improve the efficiency of a known conventional valve designed engine. The goal of this research was to prove the feasibility and significance of the new valve design. This research developed a simulation model of the new valve design and produced its physical property data. The data of the new design were compared to the conventional poppet valve design with respect to several parameters to discuss its working principle and advantages over the conventional valve mechanism. Modeling was performed using Python programming to predict the valve-opening mechanism. The design of experiments was setup to control and tune different parameters accordingly within the reasonable range of engine speed, viz., 1000–6000 rpm to simulate various working conditions. The maximum opening area for the rotary valve is calculated to be 0.795 sq.in which is smaller than the poppet valve’s area of 1.315 sq.in. However, under an example of 2900 rpm, the rotary valve was able to remain fully opened with constant efficiency of about 54% from 40 to 160 degrees of the crankshaft angle. While the poppet valve can achieve 88% efficiency at 90 degrees of the crankshaft angle and the efficiency significantly drops on either side of the maxima, the authors believe that this research would help explore improvements in the performance of a combustion cycle due to the novel rotary valve design that is investigated in this paper.http://dx.doi.org/10.1155/2024/8049436
spellingShingle Wenbo Dong
Vishwas N. Bedekar
Design, Modeling, and Feasibility Analysis of Rotary Valve for Internal Combustion Engine
Journal of Combustion
title Design, Modeling, and Feasibility Analysis of Rotary Valve for Internal Combustion Engine
title_full Design, Modeling, and Feasibility Analysis of Rotary Valve for Internal Combustion Engine
title_fullStr Design, Modeling, and Feasibility Analysis of Rotary Valve for Internal Combustion Engine
title_full_unstemmed Design, Modeling, and Feasibility Analysis of Rotary Valve for Internal Combustion Engine
title_short Design, Modeling, and Feasibility Analysis of Rotary Valve for Internal Combustion Engine
title_sort design modeling and feasibility analysis of rotary valve for internal combustion engine
url http://dx.doi.org/10.1155/2024/8049436
work_keys_str_mv AT wenbodong designmodelingandfeasibilityanalysisofrotaryvalveforinternalcombustionengine
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