Magnetic coupling control device and magnetic coupling device
10530234 ยท 2020-01-07
Inventors
Cpc classification
Y02E60/16
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02T10/62
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A magnetic coupling device includes a magnetic flywheel unit including a flywheel and multiple first magnets equiangularly spaced around the periphery of the flywheel to form a first annular magnetic series with the same pole facing toward the radial outer side of the flywheel, and a magnetic coupling unit including a plate body rotatably mounted to the periphery of the flywheel, a rotating shaft mounted to the center of axis of the plate body, multiple second magnets and third magnets alternatively mounted on the plate body around the rotating shaft to create a second annular magnetic series that is magnetically coupled to the first annular magnetic series. Further, a magnetoresistive ring frame is mounted to the periphery of the flywheel for movement along the axial direction of the flywheel to create a magnetic coupling control device.
Claims
1. A magnetic coupling control device, comprising: a magnetic flywheel unit comprising a flywheel mounted to an external machine and a plurality of first magnets mounted at the periphery of said flywheel and equiangularly spaced around the center of axis of said flywheel to form a first annular magnetic series, each said first magnet comprising a first magnetic pole facing toward the center of axis of said flywheel and a second magnetic pole opposite to said first magnetic pole; a magnetoresistive ring frame mounted to said external machine around the periphery of said flywheel and movable along the axial direction of said flywheel; and a magnetic coupling unit mounted to said external machine and located on the periphery of said flywheel, said magnetic coupling unit comprising a plate body, a rotating shaft, a plurality of second magnets and a plurality of third magnets, said plate body being rotatably mounted to said external machine and located on the periphery of said flywheel, said plate body comprising a bottom surface facing toward the second magnetic pole of each said first magnet, said rotating shaft being mounted to the center of axis of said plate body for synchronous rotation with said plate body, said second magnets and said third magnets being alternatively mounted on said plate body around said rotating shaft, the first magnetic pole of each said second magnet being disposed to face toward the second magnetic pole of one respective said first magnet, the second magnetic pole of each said third magnet being disposed to face toward the second magnetic pole of one respective said first magnet; wherein, the first magnetic poles of said second magnets and the second magnetic poles of said third magnets together form a second annular magnetic series, said second annular magnetic series being magnetically coupled to said first annular magnetic series.
2. The magnetic coupling control device as claimed in claim 1, further comprising at least three positioning rods mounted in said external machine and inserted through said magnetoresistive ring frame for allowing movement of said magnetoresistive ring frame on said positioning rod along the axial direction of said flywheel.
3. The magnetic coupling control device as claimed in claim 2, wherein said magnetoresistive ring frame comprises an outer ring frame and a conducting inner ring frame mounted within said outer ring frame; said positioning rods are inserted through said outer ring frame for allowing movement of said outer ring frame on said positioning rods to carry said conducting inner ring frame along the axial direction of said flywheel.
4. The magnetic coupling control device as claimed in claim 3, wherein said conducting inner ring frame are selectively made of aluminum or copper.
5. The magnetic coupling control device as claimed in claim 1, wherein the distance between each two adjacent said first magnets is equal to the width of one said first magnet.
6. The magnetic coupling control device as claimed in claim 1, wherein said rotating shaft is selectively connected with a fan module, a power generating module or an output shaft.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
DETAILED DESCRIPTION OF THE INVENTION
(10) Referring to
(11) Referring to
(12) The first magnets 24 are permanent magnets. Each first magnet 24 defines opposing first magnetic pole 242 and second magnetic pole 244. The multiple first magnets 24 are arranged on the rim of the flywheel 22 and equiangularly spaced around the center of axis of the flywheel 22 to create a first annular magnetic series 39. More to the point, the multiple first magnets 24 are arranged on the rim of the flywheel 22 and equiangularly spaced around the center of axis of the flywheel 22 in the present preferred embodiment. In other embodiments of the present invention, the first magnets 24 can be directly mounted to the annular side off the flywheel 22 and equiangularly spaced around the center of axis of the flywheel 22. The first magnetic pole 242 of each first magnet 24 faces toward the center of axis (axial direction) of the flywheel 22. The second magnetic pole 244 of each first magnet 24 faces toward the radial outer side of the flywheel 22. The first magnetic pole 242 and the second magnetic pole 244 are respectively S pole and N pole, or respectively N pole and S pole. Further, a predetermined distance D is defined between each two adjacent first magnets 24.
(13) The magnetoresistive ring frame 30 is mounted to the external machine 1 around the periphery of the flywheel 22, and movable axially relative to the flywheel 22. More to the point, the magnetic coupling control device 10 comprises at least 3 positioning rods 36. These positioning rods 36 are mounted to the external machine 1 in parallel to the axial direction of the flywheel 22 and inserted through the magnetoresistive ring frame 30 for allowing movement of the magnetoresistive ring frame 30 along these three positioning rods 36 in the axial direction of the flywheel 22. More to the point, the magnetoresistive ring frame 30 comprises an outer ring frame 32 and a conducting inner ring frame 34. The conducting inner ring frame 34 is mounted within the outer ring frame 32. The positioning rods 36 are inserted through the outer ring frame 32 for allowing movement of the outer ring frame 32 on the positioning rods 36 to carry the conducting inner ring frame 34 along the axial direction of the flywheel 22. The conducting inner ring frame 34 is made of high conductivity material such as aluminum, copper or silver. As illustrated in
(14) Further, as the magnetoresistive ring frame 30 moves, the overlap area between the conducting inner ring frame 34 and the first annular magnetic series 39 is relatively changed, causing change in the magnetic resistance. The size of the magnetic resistance and the displacement distance of the magnetoresistive ring frame 30 presents a linear proportional relationship, thereby achieving precise control of the resistance of the magnetic coupling control device 10.
(15) Referring to
(16) Referring to
(17) Further, the predetermined distance D between each two adjacent first magnets 24 is equal to the width of one first magnet 24.
(18)
(19) Since the two adjacent first magnets 24 are separated by a predetermined distance D, the third magnet 48 can be stably held between the two adjacent first magnets 24, smoothening the rotation of the plate body 42 and the rotating shaft 44.
(20) Based on the above description, as the external machine 1 drives the flywheel 22 to rotate, the first magnets 24 are synchronously rotated, causing rotation of each second magnet 46, each third magnet 48, the plate body 42 and the rotating shaft 44 by magnetic repulsion and magnetic attraction. With the fan module 50, the power generating module or the output shaft disposed on the rotating shaft 44, it achieves the effect of dissipating the heat generated by the magnetic coupling control device 10, generating electricity or outputting the rotating energy of the flywheel 22 to external devices.
(21) Further, as the magnetoresistive ring frame 30 moves along the axial direction of the flywheel 22, the conducting inner ring frame 34 overlaps the first annular magnetic series 39 on the flywheel 22, and the overlapped area is relatively changed with the movement of the magnetoresistive ring frame 30, resulting in a linear proportional relationship between the magnetic resistance force and the moving distance of the magnetoresistive ring frame 30 to achieve the effect of accurately controlling the resistance provided by the magnetic coupling control device 10.
(22) Referring to
(23) Finally, it must be stated again that the constituent elements disclosed in the foregoing embodiments and the polarities of the second magnetic pole 244, the first magnetic pole 462 and the second magnetic pole 482 are only illustrative and not intended to limit the scope of the invention. The exchange of polarity or the substitution or variation of other equivalent components shall also be covered by the scope of the present application.