The invention relates to a centrifugal water pump having a polar anisotropic magnetic ring, and in particular to a centrifugal water pump having a ferrite polar anisotropic magnetic ring to output a large amount of water at high pressure.
In general, a magnetic ring of a rotor for a conventional centrifugal water pump can be fabricated by plastic injection or tiled magnets with polar anisotropy.
The invention provides a centrifugal water pump comprising a rotor having a polar anisotropic magnetic ring. Magnetic force lines are distributed at least one surface of the polar anisotropic magnetic ring so as to obtain high magnetic flux density and the shortest magnetic line path for increasing output efficiency and providing large output efficiency when the polar anisotropic magnetic ring is coupled to the stator.
The polar anisotropic magnetic ring is made of ferrite; thus rust and chemical erosion of the polar anisotropic magnetic ring can be prevented when the ferrite magnetic ring is used in water and no additional water-proofing element is required.
The centrifugal water pump of the invention comprises a housing, a rotor and a stator. The housing comprises an inlet and an outlet. The rotor disposed in the housing comprises a polar anisotropic magnetic element. The stator disposed in the housing with respect to the polar anisotropic magnetic element of the rotor provides electromagnetic force for driving the rotor.
The polar anisotropic magnetic element is preferably a ferrite polar anisotropic magnetic ring, to prevent the polar anisotropic magnetic ring from rust and chemical erosion when used in water, to obtain high magnetic flux density and shortest magnetic line path, and to increase output efficiency when the polar anisotropic magnetic ring is coupled to the stator.
The centrifugal water pump of the invention can be an outer-rotor or inner-rotor water pump. In the outer-rotor water pump, magnetic force lines are centrally distributed at the inner surface of the polar anisotropic magnetic ring; in the inner-rotor water pump, magnetic force lines are centrally distributed at the outer surface of the polar anisotropic magnetic ring.
The invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:
In
The housing 10 comprises a frame 102, a cover 101 disposed on one side of the frame 102, and a bottom plate 103 disposed on one side of the frame 102 with respect to the cover 101. The cover 101 has an inlet 1011 and an outlet 1012 (shown by dotted lines) to transfer water, respectively. An accommodation portion formed between the cover 101 and the frame 102 receives the rotor 12. A closed portion formed between the bottom plate 103 and the frame 102 receives the stator 14. The shaft 16 is fixed to the cover 101 and the frame 102 at both ends thereof.
The rotor 12 comprises a rotator 121 having a top surface, a polar anisotropic magnetic element 122 disposed on the inner wall of the rotator 121, and a plurality of blades 123 disposed on the top surface of the rotator 121. In this embodiment, the rotator 121 is made of plastics, and the polar anisotropic magnetic element 122 is a magnetic ring. A working fluid, e.g. water, passes through the clearance between the rotor 12, the cover 101 and the frame 102.
The stator 14 disposed in the rotor 12 comprises a plurality of stacked silicon-steel sheets and coils wound on the stacked silicon-steel sheets. When the stator 14 coupled to the rotor 12 is electrically powered, electromagnetic force is generated to drive the rotor 12.
The polar anisotropic magnetic ring 122 is preferably made of ferrite. Thus, the magnetic ring 122 can be prevented from rust when used in water and no additional water-proofing element is required. Furthermore, the polar anisotropic magnetic element 122 can be a sintered ferrite polar anisotropic magnetic ring, having magnetic property better than the general ferrite magnet.
In
The housing 20 comprises a frame 202, a cover 201 disposed on one side of the frame 202, and a bottom plate 203 disposed on one side of the frame 202 with respect to the cover 201. The cover 201 has an inlet 2011 and an outlet 2012 (shown by dotted lines) to transfer water, respectively. An accommodation portion formed between the cover 201 and the frame 202 receives the rotor 22. A closed portion formed between the bottom plate 203 and the frame 202 receives the stator 24. The shaft 26 is fixed to the cover 201 and the frame 202 at both ends thereof.
The rotor 22 comprises a rotator 121 having a top surface, a polar anisotropic magnetic element 222 disposed on the outer wall of the rotator 121, and a plurality of blades 223 disposed on the top surface of the rotator 121. In this embodiment, the rotator 121 is made of plastics, and the polar anisotropic magnetic element 222 is a magnetic ring. A working fluid, e.g. water, passes through the clearance between the rotor 22, the cover 201 and the frame 202.
The stator 24 disposed in the rotor 22 comprises a plurality of stacked silicon-steel sheets and coils wound on the stacked silicon-steel sheets. When the stator 24 coupled to the rotor 22 is electrically powered, electromagnetic force is generated to drive the rotor 22.
The polar anisotropic magnetic ring 222 is preferably made of ferrite. Thus, the magnetic ring 222 can be prevented from rust when used in water and no additional water-proofing element is required. Furthermore, the polar anisotropic magnetic element 222 can be a sintered ferrite magnet polar anisotropic magnetic ring, having magnetic property better than the general ferrite magnet.
With the rust-proof polar anisotropic magnetic ring 222, the centrifugal water pumps P1 and P2 of the invention have magnetic property better than the conventional pump and output a large amount of water at high pressure.
While the invention has been described with respect to preferred embodiment, it is to be understood that the invention is not limited thereto, but, on the contrary, is intended to accommodate various modifications and equivalent arrangements included within the spirit and scope of the appended claims.
Number | Date | Country | Kind |
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94122791 | Jul 2005 | TW | national |