Please use this identifier to cite or link to this item: http://hdl.handle.net/11452/26043
Title: Numerical modeling of the momentum and thermal characteristics of air flow in the intercooler connection hose
Authors: Uysal, Alper
Korgavus, Ayhan
Korgavus, Orhan
Uludağ Üniversitesi/Mühendislik Fakültesi/Makine Mühendisliği Bölümü.
0000-0002-4976-9027
Özalp, A. Alper
ABI-6888-2020
6506131689
Keywords: Automation & control systems
Engineering
Engine hose
Momentum and thermal characteristics
Stationary/vibration operation
Fluid-solid interaction
Dissipation
Industry
System
Engine
Length
Pipes
Solid state physics
Air flow
Air hose
Air mass flow rate
Computational analysis
Fluid solid interaction
Gage pressures
Intercoolers
Numerical investigations
Numerical modeling
Pressure loss
Simple harmonic motion
Temperature drops
Thermal characteristics
Hose
Issue Date: May-2012
Publisher: Springer
Citation: Uysal, A. vd. (2012). "Numerical modeling of the momentum and thermal characteristics of air flow in the intercooler connection hose". International Journal of Advanced Manufacturing Technology, 60(5-8), 811-824.
Abstract: This paper presents a numerical investigation on the momentum and thermal characteristics of an intercooler connection hose that is in use in the 1.3 SDE 75 CV type FIAT engine. Computational analyses are carried out with ANSYS FLUENT v.12.0.1, where both stationary and vibrating scenarios are handled. The work is structured in accordance with the "Subsystem Functional Description for Charge Air Hoses Fiat 225 Euro 5" FIAT standard, where the air mass flow rate, temperature, and gage pressure at the hose inlet are identified as = 0.085 kg/s, (in) = 90A degrees C, and (in) = 130 kPa, respectively. In the stationary case, it is determined that the pressure loss value in the air domain of the hose is Delta (K) = 1.50 kPa; moreover, the corresponding data for the temperature drop is Delta = 0.80A degrees C. Vibration is characterized by employing simple harmonic motion at the engine side of the hose. The fluid-solid interaction methodology showed that pressure loss values grow due to vibration; moreover, the impact of vibration came out to generate diverse fluctuation schemes at different sections of the hose.
Description: Bu çalışma, 07-08 Haziran 2012 tarihleri arasında Montreal[Kanada]’da düzenlenen 5. Automotive Technology Conference (OTEKON)’da bildiri olarak sunulmuştur.
URI: https://doi.org/10.1007/s00170-011-3591-0
https://link.springer.com/article/10.1007%2Fs00170-011-3591-0
http://hdl.handle.net/11452/26043
ISSN: 0268-3768
Appears in Collections:Scopus
Web of Science

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