Heat transfer intensity of pulsating gas flows in the exhaust system elements of a piston engine

Author:

Plotnikov L. V.,Brodov Y. M.,Misnik M. O.

Abstract

Internal combustion engines are the most common sources of energy among heat engines. Therefore, the improvement of their design and workflow is an urgent task in the development of world energy. Thermal-mechanical perfection of the exhaust system has a significant impact on the technical and economic performance of piston engines. The article presents the results of experimental studies of gas-dynamics and heat exchange of pulsating gas flows in the exhaust system of a piston engine. Studies were carried out on a full-scale model of a single-cylinder engine. The article describes the instrument-measuring base and methods of experiments. The heat transfer intensity was estimated in different elements of the exhaust system: the exhaust pipe, the channel in the cylinder head, the valve assembly. Heat transfer studies were carried out taking into account the gas-dynamic nonstationarity characteristic of gas exchange processes in engines. The article presents data on the influence of gas-dynamic and regime factors on the heat transfer intensity. It is shown that the restructuring of the gas flow structure in the exhaust system occurs depending on the engine crankshaft speed, this has a significant impact on the local heat transfer coefficient. It has been established that the heat transfer intensity in the valve assembly is 2-3 times lower than in other elements of the exhaust system.

Publisher

EDP Sciences

Reference19 articles.

1. Heywood J.B. Internal combustion engine fundamentals (New York: McGraw-Hill) 458 (1988)

2. Draganov B.H., Kruglov M.G., Obuhova V.S. Construction of intake and exhaust channels of internal combustion engines (Kiev: Vishcha shkola) 175 (1987)

3. Vihert M.M., Grudskij Yu.G., Construction of the intake systems of high-speed diesel engines (Moscow: Mashinostroenie) 151 (1982)

4. Bari S., SAE Technical Papers 2019 April (2019)

5. Numerical analysis of the influence of exhaust system design on the volumetric efficiency of combustion engine

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