Internal magnetic resistance system for use with fitness device
11376462 ยท 2022-07-05
Assignee
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
A63B22/0605
HUMAN NECESSITIES
H02K7/14
ELECTRICITY
International classification
A63B21/005
HUMAN NECESSITIES
H02K1/18
ELECTRICITY
Abstract
An internal magnetic resistance system for use with a fitness device includes an axle, inertia wheel, transmission wheel, magnetic permeable ring and electromagnet. The inertia wheel is disposed at the axle and has a protruding ring portion. The transmission wheel connects to the inertia wheel and transfers an external force to the inertia wheel to cause the inertia wheel to rotate. An outer circumferential surface of the magnetic permeable ring is fixedly disposed on an inner circumferential surface of the protruding ring portion such that the magnetic permeable ring rotates together with the inertia wheel. The electromagnet is disposed in the protruding ring portion and surrounded by the magnetic permeable ring. The electromagnet has a support fixedly disposed at the axle and iron cores disposed at the support. Each said iron core is surrounded by a coil and separated from the magnetic permeable ring by a gap.
Claims
1. An internal magnetic resistance system for use with a fitness device, comprising: an axle; an inertia wheel rotatably disposed at the axle and having a lateral surface, the lateral surface having a protruding ring portion; a transmission wheel rotatably disposed at the axle and connected to another lateral surface of the inertia wheel, the another lateral surface facing away from the protruding ring portion; a magnetic permeable ring having an outer circumferential surface fixedly disposed on an inner circumferential surface of a protruding ring portion of the inertia wheel; and an electromagnet disposed in the protruding ring portion of the inertia wheel and surrounded by the magnetic permeable ring, wherein the electromagnet has a support, iron cores and coils, the support being fixedly disposed at the axle, the iron cores being disposed at the support, spaced apart relative to the axle, and separated from an inner circumferential surface of the magnetic permeable ring by a gap, and the coils winding around the iron cores, respectively.
2. The internal magnetic resistance system for use with a fitness device according to claim 1, wherein a lateral surface of the inertia wheel has a first axial portion disposed in the protruding ring portion, with a first bearing disposed between the first axial portion and the axle, wherein a second axial portion is disposed at an end of the transmission wheel and coaxially disposed in the first axial portion of the inertia wheel, wherein a bearing chamber is disposed at another end of the transmission wheel, and a second bearing is disposed in the bearing chamber and between the transmission wheel and the axle.
3. The internal magnetic resistance system for use with a fitness device according to claim 2, wherein a bushing is disposed between the transmission wheel and the axle.
4. The internal magnetic resistance system for use with a fitness device according to claim 3, wherein a right limiting ring is disposed at a right end of the axle and abuts against an outer end surface of the second bearing.
5. The internal magnetic resistance system for use with a fitness device according to claim 1, wherein the support is connected to a fixing board having a third axial portion such that the third axial portion and the axle are fixed together by a flat key.
6. The internal magnetic resistance system for use with a fitness device according to claim 5, wherein a left limiting ring is disposed at a left end of the axle and abuts against an outer end surface of the third axial portion of the fixing board.
7. The internal magnetic resistance system for use with a fitness device according to claim 1, further comprising an adjustment component having a sleeve, an adjustment screw, a first adjustment nut, a second adjustment nut and a spacer, the sleeve being fitted to a left end of the axle and having a radial opening, the adjustment screw being movably disposed at the spacer and having an end disposed in a radial through-hole of the sleeve, wherein both the first adjustment nut and the second adjustment nut are fastened to the adjustment screw and face away from each other, and the spacer is disposed between the first adjustment nut and the second adjustment nut.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(10) Direction-related terms used herein, including the embodiments and the claims, must be interpreted according to the accompanying drawings. Identical reference numerals used herein, including the embodiments and the accompanying drawings, denote identical or similar components or structural features thereof.
(11) Referring to
(12) The left and right ends of the axle 20 each have a thread segment 21. A first keyway 22 is disposed at the axle 20 and located centrally but slightly toward the left.
(13) The inertia wheel 30 is made of cast iron. The left lateral surface of the inertia wheel 30 has a protruding ring portion 31 and a first axial portion 32 disposed in the protruding ring portion 31. The first axial portion 32 has therein two first bearings 33 arranged side by side. Referring to
(14) The left end of the transmission wheel 40 has a second axial portion 41 coaxially, penetratingly connected to the first axial portion 32 of the inertia wheel 30. The right end of the transmission wheel 40 has a bearing chamber 42 (shown in
(15) The magnetic permeable ring 45 is made of a magnetic permeable material, such as carbon steel. The magnetic permeable ring 45 is disposed in the protruding ring portion 31 of the inertia wheel 30. As shown in
(16) The electromagnet 50 is disposed in the protruding ring portion 31 of the inertia wheel 30 and surrounded by the magnetic permeable ring 45. The electromagnet 50 has a fixing board 51, a support 56, six iron cores 58 and six coils 59. As shown in
(17) Therefore, as soon as current is passed through the coils 59, magnetic field changes happen to the vicinity of all the iron cores 58. As a result, the magnetic permeable ring 45 is susceptible to magnetic hysteresis and thereby exerts a resistance force on the transmission wheel 40 through the inertia wheel 30, allowing the transmission component 16 to drive the transmission wheel 40 while allowing the user to attain the benefits of fitness training.
(18) When operating in conjunction with the fitness device 10 shown in
(19) Referring to
(20) In conclusion, according to the present disclosure, the internal magnetic resistance system 18 enables the stable gap G to be maintained between the iron cores 58 and the magnetic permeable ring 45. The magnetic permeable ring 45 rotates together with the inertia wheel 30 and thereby divides the magnetic field generated around the iron cores 58; hence, magnitude of the current passing through the coils 59 varies and thus adjusts the strength of the magnetic field, allowing the electromagnet 50 to steadily exert different degrees of resistance forces on the inertia wheel 30. Furthermore, the internal magnetic resistance system 18 is not only applicable to the upright body-building bike 10 shown in