000 02804nmm a2200313 a 4500
001 vtls000098391
003 KUKTEM
005 20251117113331.0
008 161213s2016 my fq d 001 0 eng d
020 _aTHE0005081(Local)
039 9 _a201905101606
_bhanafiah
_c201712121112
_dfateeha
_y201612131204
_zsaini
040 _aUMP
090 _aFKP .Z853 2016 r Bc.
090 _aCD 10410
100 0 _aMohd Zul Asri Mohd Ramli
245 1 0 _aMagnetic field simulation of pinch mode magnetorheological fluid valve
_h[electronic resource] /
_cMohd Zul Asri Mohd Ramli
260 _aKuantan, Pahang :
_bUMP,
_c2016
300 _a1 computer disc :
_bdigital data ;
_c12 cm.
500 _aFaculty of Manufacturing Engineering
500 _aTheses Gred B
502 _aProject Paper (Bachelor of Engineering in Mechatronis Engineering (Hons.)) -- Universiti Malaysia Pahang – 2016
520 3 _aThis thesis presents the magnetic field simulation of magnetorheological fluid using finite element method. Magnetorheological fluid (MRF) is a smart material fluid carrying small magnetic particles. There are four operational mode of MRF that is squeeze mode, valve mode, shear mode and pinch mode. This thesis will focus on pinch mode which is named as magnetic gradient pinch mode (MGP). The objective of this thesis is to develop a design concept of a magnetic gradient pinch mode valve. It is very important to develop a concept design because it can help in finding the possible design configuration in producing a magnetic gradient pinch shape inside the valve from the reaction of the electromagnetic. From the concept design, simulation was conducted using Finite Element Method Magnetics (FEMM) software to get the magnetic flux density, B and magnetic field intensity, H produced by MGP valve. By getting the magnetic flux density from the finite element analysis, magnetic saturation was prevented in the valve. Magnetic saturation happened when the magnetic flux density at the valve gap is more than the maximum magnetic flux density of the MRF at 0.78 T. Magnetic field intensity, H, determine the generated maximum yield stress. One of the proposed design which is the third design, was exhibit highest magnetic flux density, B than other two design. Therefore, the thrird design is suitable for MGP valve due to abality to produce highest yield stress, thus, can withstand higher pressure when applied.
538 _aItem in PDF format
610 2 0 _aFaculty of Manufacturing Engineering
_xDissertations
650 0 _aUniversities and Colleges
_xDissertations
650 0 _aTheses
856 4 0 _uhttp://ecollib.ump.edu.my/id/eprint/4008
_zAccess in library only
999 _aVIRTUA40
_c6918
_d6924
999 _aVTLSSORT0080*0200*0400*0900*0901*1000*2450*2600*3000*5000*5001*5020*5200*5380*6100*6500*6501*8560*9992