Physical and numerical simulation of the thermal and mechanical characteristics of stationary flows in the gasair paths of piston engines
https://doi.org/10.30724/1998-9903-2019-21-5-22-28
Abstract
Thermomechanical perfection of intake and exhaust systems largely determine the efficiency of the working process of reciprocating engines (ICE). The article presents the results of numerical simulation and experimental study of the heat transfer of gas flows in profiled gas- air systems of ICEs. A description of the numerical simulation technique, experimental setup, configurations of the studied hydraulic systems, measuring base and features of the experiments are given. On the basis of numerical modeling, it has been established that the use of profiled sections with cross sections in the shape of a square or a triangle in exhaust systems of an ICEs leads to a decrease in the heat transfer coefficient by 5-11%. It is shown that the use of similar profiled sections in the intake system of reciprocating engines also leads to a decrease in the heat transfer coefficient to 10 % at low air flow rates (up to 40 m/s) and an increase in the heat transfer coefficient to 7% at high speeds. Experimental studies qualitatively confirm the simulation results.
Keywords
About the Authors
L. V. PlotnikovRussian Federation
Leonid V. Plotnikov
Ekaterinburg
Yu. M. Brodov
Russian Federation
Yurii M. Brodov
Ekaterinburg
B. P. Zhilkin
Russian Federation
Boris P. Zhilkin
Ekaterinburg
A. M. Nevolin
Russian Federation
Alexander M. Nevolin
Ekaterinburg
M. O. Misnik
Russian Federation
Maria O. Misnik
Ekaterinburg
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Review
For citations:
Plotnikov L.V., Brodov Yu.M., Zhilkin B.P., Nevolin A.M., Misnik M.O. Physical and numerical simulation of the thermal and mechanical characteristics of stationary flows in the gasair paths of piston engines. Power engineering: research, equipment, technology. 2019;21(5):22-28. (In Russ.) https://doi.org/10.30724/1998-9903-2019-21-5-22-28