Abstract
This article provides a comparative analysis of unsteady gas dynamics and instantaneous local heat transfer of pulsating flows in the intake and exhaust systems of reciprocating internal combustion engines in the case of a turbo-compressor installed without it and based on the results of experimental studies. Experimental studies were carried out on full-scale laboratory stands under the conditions of gas-dynamic nonstationarity. The article provides an original method for determining the instantaneous values of the local heat transfer coefficient in pipes, and describes the procedure for conducting experiments. It has been established that the presence of a turbo compressor in the gas-air system of a piston engine leads to significant differences in the patterns of changes in the gas-dynamic and heat exchange characteristics of pulsating flows. The obtained new data can be used to improve engineering methods for calculating the quality indicators of gas exchange processes, to refine the working processes of the engine when installing a turbocharger, as well as to develop advanced gas-air ICE systems with turbocharging.
Highlights
For citation: Plotnikov LV, Brodov YM, Zhilkin BP, Grigoriev NI
Результаты и обсуждение Сначала рассмотрим особенности газодинамики и теплоотдачи пульсирующих потоков во впускной системе поршневого двигателя с турбокомпрессором
Жилкин Б.П., Лашманов В.В., Плотников Л.В., Шестаков Д.С
Summary
For citation: Plotnikov LV, Brodov YM, Zhilkin BP, Grigoriev NI. Features of heat and mechanical characteristics of pulsating flows in gas-air paths of piston engines with turbocharging. 1 и 2 показаны закономерности изменения местных скорости и давления потока воздуха во впускных трубах поршневого ДВС с турбокомпрессором и без него (атмосферный двигатель) от угла поворота коленвала φ при разных скоростях вращения n.
Talk to us
Join us for a 30 min session where you can share your feedback and ask us any queries you have
More From: Power engineering: research, equipment, technology
Disclaimer: All third-party content on this website/platform is and will remain the property of their respective owners and is provided on "as is" basis without any warranties, express or implied. Use of third-party content does not indicate any affiliation, sponsorship with or endorsement by them. Any references to third-party content is to identify the corresponding services and shall be considered fair use under The CopyrightLaw.