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A 3D CFD-based workflow for analyses of a wide range of flow and heat transfer conditions in air gaps of electric machines
ID
Žnidarčič, Anton
(
Author
),
ID
Katrašnik, Tomaž
(
Author
)
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MD5: 2C3EA334BD1BC7DEE1B2A49A4AD8C0BB
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https://www.mdpi.com/2311-5521/7/8/273/htm
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Abstract
Increasing power densities of electric machines in e-vehicles in addition to the resulting quest for enhanced cooling concepts are bringing forward the importance of defining adequate heat transfer correlations in air gaps. This is a highly challenging topic, as there exist no generally applicable flow and heat transfer phenomena descriptions for air gaps due to their highly variable geometrical properties and operating conditions. As an answer to this challenge, this paper presents a workflow that defines an adequate 3D CFD model for an arbitrary air-gap design that includes its system-dependent boundary conditions. The workflow is built on the recognition of underlying air-gap flow phenomena, which are used to steer the subsequent design of the 3D CFD model in a systematic step-by-step manner. Consequently, the complexity of the 3D CFD model gradually increases to the point where it provides an adequate flow and heat transfer description. Validation of the workflow is presented for a wide range of air-gap designs and flow conditions. It is demonstrated that the 3D CFD models obtained with the workflow match the experimentally obtained data from various flow cases that have been documented in the literature. Considerable optimization of computational costs, offering potentially an order-of-magnitude reduction in computational time, is achieved as a result of computational domain span optimization and transient simulations being applied only when required. The validation confirms that this workflow facilitates construction of valid 3D CFD models without the prior knowledge of flow and heat transfer phenomena in a specific air gap. This workflow thus provides a reliable and computationally efficient tool for valorization of convective heat transfer, and opens up prospects for time- and cost-efficient optimizations of electric machines’ cooling system designs.
Language:
English
Keywords:
heat transfer
,
air gaps
,
Taylor–Couette–Poiseuille flow
,
electric machines
,
3D CFD analyses
Work type:
Article
Typology:
1.01 - Original Scientific Article
Organization:
FS - Faculty of Mechanical Engineering
Publication status:
Published
Publication version:
Version of Record
Publication date:
10.08.2022
Year:
2022
Number of pages:
28 str.
Numbering:
Vol. 7, iss. 8, art. 273
PID:
20.500.12556/RUL-138761
UDC:
536.24:519.6:621.313
ISSN on article:
2311-5521
DOI:
10.3390/fluids7080273
COBISS.SI-ID:
118272003
Publication date in RUL:
16.08.2022
Views:
1255
Downloads:
83
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Record is a part of a journal
Title:
Fluids
Shortened title:
Fluids
Publisher:
MDPI AG
ISSN:
2311-5521
COBISS.SI-ID:
525935385
Licences
License:
CC BY 4.0, Creative Commons Attribution 4.0 International
Link:
http://creativecommons.org/licenses/by/4.0/
Description:
This is the standard Creative Commons license that gives others maximum freedom to do what they want with the work as long as they credit the author.
Licensing start date:
10.08.2022
Secondary language
Language:
Slovenian
Keywords:
prenos toplote
,
zračne reže
,
Taylor-Couette-Poiseuillov tok
,
električni stroji
,
3D CFD analize
Projects
Funder:
ARRS - Slovenian Research Agency
Project number:
P2-0401
Name:
Energetsko strojništvo
Funder:
Other - Other funder or multiple funders
Funding programme:
Slovenian Ministry of Education, Science and Sport
Acronym:
MOTZART
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