Thermopyhsical properties charaterisation of water based mango oxide hybrid nanofluid / (Record no. 96204)

MARC details
000 -LEADER
fixed length control field 04981nam a2200349 i 4500
003 - CONTROL NUMBER IDENTIFIER
control field MY-KuUP
005 - DATE AND TIME OF LATEST TRANSACTION
control field 20251125105939.0
006 - FIXED-LENGTH DATA ELEMENTS--ADDITIONAL MATERIAL CHARACTERISTICS
fixed length control field a||||fr|||| 001 0
007 - PHYSICAL DESCRIPTION FIXED FIELD--GENERAL INFORMATION
fixed length control field ta
008 - FIXED-LENGTH DATA ELEMENTS--GENERAL INFORMATION
fixed length control field 220331t20202020my a|||fr|||| 001 0 eng d
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
International Standard Book Number THE0009257(Local)
040 ## - CATALOGING SOURCE
Original cataloging agency UMP
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) KK .L38 2020 r Thesis
100 1# - MAIN ENTRY--PERSONAL NAME
Personal name James Lau Tze Chen,
Relator term author.
245 10 - TITLE STATEMENT
Title Thermopyhsical properties charaterisation of water based mango oxide hybrid nanofluid /
Statement of responsibility, etc. James Lau Tze Chen
264 #1 - PRODUCTION, PUBLICATION, DISTRIBUTION, MANUFACTURE, AND COPYRIGHT NOTICE
Place of production, publication, distribution, manufacture Kuantan, Pahang :
Name of producer, publisher, distributor, manufacturer UMP,
Date of production, publication, distribution, manufacture, or copyright notice 2020
264 #4 - PRODUCTION, PUBLICATION, DISTRIBUTION, MANUFACTURE, AND COPYRIGHT NOTICE
Place of production, publication, distribution, manufacture © 2020
300 ## - PHYSICAL DESCRIPTION
Extent xv, 111 pages :
Other physical details illustrations (some color) ;
Dimensions 30 cm. +
Accompanying material 1 CD ROM
336 ## - CONTENT TYPE
Content type term text
Source rdacontent
337 ## - MEDIA TYPE
Media type term unmediated
Source rdamedia
338 ## - CARRIER TYPE
Carrier type term volume
Source rdacarrier
347 ## - DIGITAL FILE CHARACTERISTICS
File type text file
Encoding format PDF
Source rda
500 ## - GENERAL NOTE
General note College of Engineering
502 ## - DISSERTATION NOTE
Dissertation note Thesis (Master of Science) -- Universiti Malaysia Pahang – 2020
504 ## - BIBLIOGRAPHY, ETC. NOTE
Bibliography, etc. note Includes bibliographical references
520 3# - SUMMARY, ETC.
Summary, etc. Nanofluid can be described as a mixture of nanoparticles and base fluid. Many researchers attempted to enhance the thermal conductivity of base fluids by adding metallic and non-metallic nanoparticles in fluids. Although metallic and non-metallic nanoparticles can increase the thermal conductivity of base fluids, it also increases the viscosity of base fluids that causes a high pressure drop in the heat transfer application. This results that higher pumping power is needed which in turn increases the system operation cost. Therefore, an alternative solution needs to be devised. For this, hybrid nanofluid with a combination of metallic or non-metallic nanoparticles and bio nanoparticles dispersed in a base fluid can be one option to reduce the pressure drop further while maintaining the heat transfer application. This is because of the addition of bio nanoparticles that have fibre by nature in fluids resulting in low thermal conductivity enhancement with an exponentially decreasing trend of viscosity that might reduce pressure drop. Thus, the three objectives of this research are to determine the stability of mango/oxide hybrid nanofluid, to evaluate thermophysical properties of mango/oxide hybrid nanofluid and to measure the optimum parameters for enhanced thermal properties and reduced viscosity. Mango bark (MB) and mango leaf (ML) nanoparticles were first produced using the top-down method. In the second processing step, the MB and ML nanoparticles that are prepared separately mixed with oxide nanoparticles and suspended into the base fluid using stirrer and an ultrasonic bath. Stability of the nanofluids was measured using sedimentation method and UV-Vis analysis. Then, density, viscosity, thermal conductivity and specific heat capacity of the nanofluids were evaluated using theoretical and experimental method. After that, the optimum parameters for enhanced thermal properties and reduced viscosity of nanofluids were determined using Response Surface Methodology (RSM). From the results, the nanofluids have stability in moderation with the sign of sedimentation after 1 day and slightly increased after 14 days. All nanofluids are stable and applicable at 300nm wavelength with average peak absorbance of 2.491. At 30oC with 1% of volume concentration, MB/TiO2 and ML/TiO2 water-based nanofluids have 12.2% and 14.7% reduced viscosity than TiO2 water-based nanofluid. MB/SiO2 and ML/SiO2 water-based nanofluids have 3.2% and 4.4% reduced viscosity than SiO2 water-based nanofluid. At 30oC with 1% of volume concentration, MB/TiO2 and ML/TiO2 water-based nanofluids have maintained thermal conductivity enhancement with 4.5% and 5.4% lower than TiO2 water-based nanofluid. MB/SiO2 and ML/SiO2 water-based nanofluids have maintained thermal conductivity enhancement with 1.1% and 1.6% lower than SiO2 water-based nanofluid. Density and specific heat capacity are dependent on the material type. The viscosity decreased with temperature and increased with concentration. Meanwhile, the thermal conductivity increased with temperature and concentration. From the results of RSM, MB/oxide nanofluids have the most enhanced thermal conductivity and reduced viscosity with the material type of MB/SiO2 (12.92% SiO2 and 87.08% of mango bark), the temperature of 70oC and concentration of 0.25. Meanwhile, ML/oxide nanofluid have the most enhanced thermal conductivity and reduced viscosity with the material type of MB/SiO2 (42.98% SiO2 and 57.02% of mango leaf), the temperature of 70oC and concentration of 0.25%. In conclusion, mango/oxide hybrid nanofluids have stability in moderation with reduced viscosity and maintained thermal conductivity enhancement than non-bio based nanofluids that can be used to reduce the pressure drop further while maintaining the heat transfer application.
610 20 - SUBJECT ADDED ENTRY--CORPORATE NAME
Corporate name or jurisdiction name as entry element College of Engineering
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
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 Collection Home library Current library Shelving location 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     Reference UMPLIB PEKAN UMPLIB PEKAN Reference 05/01/2022   KK .L38 2020 r Thesis T000001439 10/05/2022 1 05/01/2022 Thesis
  Not lost Library of Congress Classification     Reference UMPLIB PEKAN UMPLIB PEKAN   31/03/2022   CD 12886 T000001440 31/03/2022 1 31/03/2022 Thesis

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