Thermal management analysis of lithium-ion battery using passive methods : (Record no. 101145)

MARC details
000 -LEADER
fixed length control field 05115ntm a2200337 i 4500
003 - CONTROL NUMBER IDENTIFIER
control field MY-KuUP
005 - DATE AND TIME OF LATEST TRANSACTION
control field 20251125110917.0
006 - FIXED-LENGTH DATA ELEMENTS--ADDITIONAL MATERIAL CHARACTERISTICS
fixed length control field t||||fr|||| 000 0
007 - PHYSICAL DESCRIPTION FIXED FIELD--GENERAL INFORMATION
fixed length control field ta
008 - FIXED-LENGTH DATA ELEMENTS--GENERAL INFORMATION
fixed length control field 240820t20242024my a|||fr|||| 000 0 eng d
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
International Standard Book Number THE0009911 (Local)
Qualifying information Hardback
040 ## - CATALOGING SOURCE
Original cataloging agency UMPSA
Language of cataloging eng
Transcribing agency UMP
Description conventions rda
090 ## - LOCALLY ASSIGNED LC-TYPE CALL NUMBER (OCLC); LOCAL CALL NUMBER (RLIN)
Classification number (OCLC) (R) ; Classification number, CALL (RLIN) (NR) FTKMA .H37 2024 r Thesis
100 0# - MAIN ENTRY--PERSONAL NAME
Personal name Hasan Najafi Khaboshan,
Relator term author.
245 10 - TITLE STATEMENT
Title Thermal management analysis of lithium-ion battery using passive methods :
Remainder of title numerical and artificial intelligence approaches /
Statement of responsibility, etc. Hasan Najafi Khaboshan
264 #1 - PRODUCTION, PUBLICATION, DISTRIBUTION, MANUFACTURE, AND COPYRIGHT NOTICE
Place of production, publication, distribution, manufacture Kuantan, Pahang :
Name of producer, publisher, distributor, manufacturer UMPSA,
Date of production, publication, distribution, manufacture, or copyright notice 2024
264 #4 - PRODUCTION, PUBLICATION, DISTRIBUTION, MANUFACTURE, AND COPYRIGHT NOTICE
Date of production, publication, distribution, manufacture, or copyright notice © 2024
300 ## - PHYSICAL DESCRIPTION
Extent xv, 107 pages :
Other physical details illustrations ;
Dimensions 30 cm. +
Accompanying material 1 CD-ROM
336 ## - CONTENT TYPE
Source rdacontent
Content type term text
337 ## - MEDIA TYPE
Source rdamedia
Media type term unmediated
338 ## - CARRIER TYPE
Source rdacarrier
Carrier type term volume
347 ## - DIGITAL FILE CHARACTERISTICS
Source rda
File type text file
Encoding format PDF
500 ## - GENERAL NOTE
General note Faculty of Mechanical and Automotive Engineering Technology
502 ## - DISSERTATION NOTE
Dissertation note Thesis (Master of Science) -- Universiti Malaysia Pahang – 2024
504 ## - BIBLIOGRAPHY, ETC. NOTE
Bibliography, etc. note Includes bibliographical references
520 3# - SUMMARY, ETC.
Summary, etc. The development of an efficient battery thermal management system (BTMS) to maintain temperatures of lithium-ion batteries in a specific range has gained significant interest, particularly for electric vehicle applications. A failed BTMS will cause thermal runaway and potential explosions in batteries due to an increment in the temperature of batteries, which endangers the lives of occupants. Using phase change materials (PCMs) in a BTMS is a technique that can control the temperature of batteries during fast battery discharging. However, the thermal conductivity of PCMs is low to provide an excellent heat transfer within the system under harsh conditions. Hence, this research is conducted to analyze the cooling performance enhancement of a PCM-based battery thermal management system with the combinations of fins and metal foam using computational fluid dynamics. Four distinct BTMS configurations are investigated, considering PCM, fins, and metal foam. Furthermore, the effect of various materials of BTMS combination, different fin shapes, and various fin lengths on the performance of the selected BTMS have been investigated. Finally, to find easier and faster methods instead of numerical simulation, the ability of artificial intelligence to predict the average battery temperature and PCM liquid fraction has been analyzed. The analysis is considered under harsh and normal environmental conditions during the discharging process with a 3C current rate. To model the behavior of the PCM, the enthalpy-porosity method is utilized. In the numerical simulations, a two-equation non-equilibrium thermal model is utilized, that offers improved accuracy in capturing heat transfer between the metal foam and PCM compared to traditional thermal equilibrium models. Besides, the validation of the numerical simulation revealed that there is a good agreement between the current numerical findings and previous numerical and experimental data. Results demonstrated that the optimal BTMS configuration, which combines PCM, fins, and metal foam (fourth case), achieves a reduction of 3 K, which is about 1% reduction in the battery temperature. Moreover, the temperature difference in the battery decreases by approximately 75% and 66% in the fourth case compared to the first case (with pure PCM) under normal and harsh environmental conditions, respectively. Additionally, the optimum case exhibits a maximum delay of approximately 470 seconds in PCM melting. The fins employed in BTMS function as a heat sources network, effectively distributing heat throughout the system; while the utilization of metal foam ensures uniform heat distribution between the battery and the surrounding environment. Furthermore, the findings indicated that utilizing copper fins and copper metal foam leads to the lowest battery surface temperature compared to other material combinations. Examining the impact of various fin shapes on the optimal BTMS performance revealed minimal variations in the battery temperature across different fin shapes. It appears challenging to identify a single fin shape suitable for all environmental conditions. Additionally, when examining the effect of fins length on the performance of the fourth BTMS configuration, it was observed that increasing the fins length results in a decrease in the battery temperature. Lastly, the developed artificial neural network model demonstrated excellent prediction capability, achieving high R-squared values which were 0.98 for the liquid fraction of PCM and 0.99 for the battery surface temperature. To investigate a BTMS utilizing PCM, metal foam, and fins, further work should be studied on this BTMS as a battery pack. In addition, the heat generation of the battery can be considered with the electrochemical models in future works
610 20 - SUBJECT ADDED ENTRY--CORPORATE NAME
Corporate name or jurisdiction name as entry element Faculty of Mechanical and Automotive Engineering Technology
General subdivision Dissertations
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name entry element Universities and colleges
General subdivision Dissertations
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name entry element Theses
General subdivision Dissertations
942 ## - ADDED ENTRY ELEMENTS (KOHA)
Source of classification or shelving scheme Library of Congress Classification
Koha item type Thesis
Holdings
Withdrawn status Lost status Source of classification or shelving scheme Damaged status Not for loan Home library Current library Date acquired Total checkouts Full call number Barcode Date last seen Copy number Price effective from Koha item type
  Not lost Library of Congress Classification   Not for loan UMPLIB PEKAN UMPLIB PEKAN 20/08/2024   FTKMA .H37 2024 r Thesis T000003259 20/08/2024 1 20/08/2024 Thesis
  Not lost Library of Congress Classification     UMPLIB PEKAN UMPLIB PEKAN 20/08/2024   CD13632 T000003260 20/08/2024 1 20/08/2024 Thesis

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