Method of stabilizing pulsating gas flows in the intake system of a piston engine with turbocharging
Autor: | Leonid Plotnikov, Yu. M. Brodov, B. P. Zhilkin |
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Rok vydání: | 2019 |
Předmět: |
History
HEAT TRANSFER SINGLE CYLINDER ENGINE Heat transfer coefficient CONSTANT TEMPERATURE Combustion INSTANTANEOUS VALUE Education law.invention Piston HYDRAULIC EQUIPMENT law COMPLEX CONFIGURATION KNOWLEDGE BASED SYSTEMS PISTONS Heat engine FLOW CHARAC-TERISTICS INTAKE SYSTEMS Mechanics LOCAL HEAT TRANSFER COEFFICIENT INTERNAL COMBUSTION ENGINES Computer Science Applications Heat transfer Environmental science THERMO-ANEMOMETERS TURBOCHARGING SYSTEMS Gas compressor Intensity (heat transfer) Turbocharger |
Zdroj: | Journal of Physics: Conference Series |
ISSN: | 1742-6596 1742-6588 |
DOI: | 10.1088/1742-6596/1382/1/012205 |
Popis: | Piston internal combustion engines (ICE) are the most common sources of energy among heat engines. Currently, most ICEs are equipped with a turbocharging system. Thermomechanical perfection of processes in the intake system largely determines the efficiency of engines. This article proposes a method of stabilizing the pulsating flows in the intake system by installing the leveling grid in the output channel of the turbocharger (TC) compressor. Studies were conducted on an experimental setup, which consisted of a single-cylinder engine and turbocharging system. A constant-temperature thermo-anemometer was used to determine the instantaneous values of the air flow rate and the local heat transfer coefficient. It has been established that the presence of a leveling grid in the intake system leads to a decrease in the turbulence number by up to 25% compared with the basic intake system (while maintaining the flow characteristics). It is shown that the installation of a leveling grid in the intake system of the ICE with TC also leads to a decrease in the heat transfer intensity by up to 15 % compared to the base system. The obtained data expands the knowledge base on the thermomechanics of pulsating flows in hydraulic systems of complex configuration. © 2019 Institute of Physics Publishing. All rights reserved. Russian Science Foundation, RSF: 18-79-10003 The work has been supported by the Russian Science Foundation (grant No. 18-79-10003). |
Databáze: | OpenAIRE |
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