The effects of spray atomization by using blended alumina oxide ,titanium oxide, and cerium oxide nano particles with diesel fuel in direct injection engine / (Record no. 100252)

MARC details
000 -LEADER
fixed length control field 04761ntm a2200361 i 4500
003 - CONTROL NUMBER IDENTIFIER
control field MY-KuUP
005 - DATE AND TIME OF LATEST TRANSACTION
control field 20251125110825.0
006 - FIXED-LENGTH DATA ELEMENTS--ADDITIONAL MATERIAL CHARACTERISTICS
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007 - PHYSICAL DESCRIPTION FIXED FIELD--GENERAL INFORMATION
fixed length control field ta
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fixed length control field 240105t20232023my a|||fr|||| 000 0 eng d
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
International Standard Book Number THE0009817 (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 .O47 2023 r Thesis
100 1# - MAIN ENTRY--PERSONAL NAME
Personal name Ali Mohammed Omar Salem Ba Saleem,
Relator term author.
245 10 - TITLE STATEMENT
Title The effects of spray atomization by using blended alumina oxide ,titanium oxide, and cerium oxide nano particles with diesel fuel in direct injection engine /
Statement of responsibility, etc. Ali Mohammed Omar Salem Ba Saleem
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 2023
264 #4 - PRODUCTION, PUBLICATION, DISTRIBUTION, MANUFACTURE, AND COPYRIGHT NOTICE
Date of production, publication, distribution, manufacture, or copyright notice ©2023
300 ## - PHYSICAL DESCRIPTION
Extent xiii, 107 pages :
Other physical details illustrations (some color) ;
Dimensions 30 cm. +
Accompanying material 1-CD ROM
336 ## - CONTENT TYPE
Source rdacontent
Content type term text
336 ## - CONTENT TYPE
Source rdacontent
Content type term text
337 ## - MEDIA TYPE
Source rdamedia
Media type term unmediated
337 ## - MEDIA TYPE
Source rdamedia
Media type term computer
338 ## - CARRIER TYPE
Source rdacarrier
Carrier type term volume
338 ## - CARRIER TYPE
Source rdacarrier
Carrier type term computer disc
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 – 2023
504 ## - BIBLIOGRAPHY, ETC. NOTE
Bibliography, etc. note Various studies have been undertaken over the previous decades to locate an alternative fuel that can reduce the environmental issues caused by diesel fuel. A previous study has indicated nano-enhanced diesel fuels as viable diesel fuel alternatives. However, research on nano-enhanced diesel fuel's physical properties and spray characteristics is sparse. The goal of this study was to look at the macroscopic spray parameters like spray penetration length and cone angle of different nano diesel fuels like DFAL (alumina diesel fuel), DFTI (Titanium diesel fuel), and DFCE (cerium diesel fuel) at concentrations of 25, 50, and 75 parts per million (ppm). The spray properties were explored using a high-speed camera in continuous static situations by shadowgraph methods. Experiments were carried out at room temperature using 50, 80, and 100 MPa injection pressures. The images of the test fuels are handled with the picture editing programs da-Vinci and ImageJ.Ultrasonic vibration served as the experiment's stabilizing approach. Furthermore, the peak absorbance of the nanofluid, the connection between concentration and absorbance, the optimal sonication period, and time-dependent sedimentation data were used to study fuel stability. All three doses' absorbances declined when compared to their original absorbances but remained more than 80% stable over 200 hours. Fixing the concentration at 25 ppm while varying the pressure shows that a better dispersion occurs due to the increase of the power of the injector, therefore, better spray tip penetration (STP), and spray cone angle (SCA), for example, DFTI initial distance increased by 30% at 27.25 mm in 0.1 ms and breakup time of 0.3 ms faster than the neat diesel D100 at 80 MPa. They were followed by DFAL and DFCE at break up time of 0.4 ms at a distance of 26.51 mm and 44.3 mm from 0.1 ms. In terms of increasing concentration, it can be summarized that increasing nanoparticles aids the perdormance of the atomization process; however, reaching higher concentrations, such as 100 ppm, is not a suitable approach because it affects the physical properties of the fuel, which reflect on cerium nanoparticle DFCE, which achieves poor values compared to where using 50 ppm nano concentration at all injection pressures of 50,80, and 100 MPa are sufficient to allow the fuel to atomize. To summarize, increasing pressure increased the interaction of the nano fuel with the surrounding environment, resulting in more penetration than pure diesel due to improved spray dispersion.Regarding cone angle, the nano fuel is identical to the neat but has superior penetration.Furthermore, Findings indicate that increasing injection pressure leads to greater penetration. While lowering breakup time, which was greater with the nano-enhanced fuel. The fuel blend was better and atomized faster than the neat diesel, which took too long to reach the edge of the wall. As a result, the fuel did not atomize equally, leading the diesel to enter too slowly and the angle to rise drastically. When using the split injection method, raising the pressure substantially influenced the macroscopic aspects of the spray. Higher pressure of the injected fuel in general increased the interaction of the nano fuel with the surrounding environment, resulting in greater penetration compared to neat diesel due to improved spray dispersion.
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
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 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 Non-fiction UMPLIB PEKAN UMPLIB PEKAN 05/01/2024   FTKMA .O47 2023 r Thesis T000002840 05/01/2024 1 05/01/2024 Thesis
  Not lost Library of Congress Classification     Non-fiction UMPLIB PEKAN UMPLIB PEKAN 05/01/2024   CD13495 T000002841 05/01/2024 1 05/01/2024 Thesis

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