Magneto-rheological fluid rotary resistance device
10207138 ยท 2019-02-19
Assignee
Inventors
Cpc classification
A63B21/00845
HUMAN NECESSITIES
F16D57/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A63B21/0056
HUMAN NECESSITIES
F16F9/535
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A63B22/0605
HUMAN NECESSITIES
F16F2224/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F9/53
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D57/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A63B21/00
HUMAN NECESSITIES
A63B21/005
HUMAN NECESSITIES
F16F15/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A63B22/06
HUMAN NECESSITIES
Abstract
A resistance device applied to relative rotations between a flywheel and an axis includes an inner stator, an outer rotor, a conductive wire and a magneto-rheological fluid. The inner stator is fixedly joined with the axis and includes an accommodating space surrounding the axis at a position away from the axis. The outer rotor, fixedly joined with the flywheel, encloses and rotates relative to the inner stator. An accommodating gap is formed between the outer rotor and the inner stator at a position away from the axis. The conductive wire is wound in the accommodating space, and generates a magnetic line passing the accommodating gap when applied by an electric current. The magneto-rheological fluid is filled in the accommodating gap. Thus, the outer rotor is disposed at the outer most region of the resistance device to increase the braking torque, and the magneto-rheological fluid is away from the axis to increase the braking moment.
Claims
1. A magneto-rheological fluid rotary resistance device, for braking a relative rotation between a flywheel and an axis, comprising: an inner stator, fixedly joined with the axis, provided with an accommodating space that surrounds the axis at a position away from the axis; an outer rotor, fixedly joined with the flywheel, enclosing the inner stator and rotating relative to the inner stator, wherein an accommodating gap is formed between the outer rotor and the inner stator at a position away from the axis; a conductive line, wound in the accommodating space, generating a magnetic line passing the accommodating gap when applied by an electric current; and a magneto-rheological fluid, filled in the accommodating gap, wherein the accommodating space comprises an opening in communication with the accommodating gap in a direction away from the axis, and a magnetic baffle plate for sealing the opening is disposed at the opening.
2. The magneto-rheological fluid rotary resistance device of claim 1, wherein the inner stator comprises a fixed portion and a fastening portion, the fixed portion is fixedly joined with the axis, the fastening portion is fixed to the fixed portion using at least one fastening element, and the accommodating space is formed between the fixed portion and the fastening portion.
3. The magneto-rheological fluid rotary resistance device of claim 1, wherein two spacing rings are respectively disposed on two sides of the inner stator, and two sealing members for sealing the accommodating space are respectively disposed on a side of each of the spacing rings adjacent to the outer rotor.
4. The magneto-rheological fluid rotary resistance device of claim 1, wherein a bearing is disposed between the axis and each of two sides of the outer rotor.
5. The magneto-rheological fluid rotary resistance device of claim 1, wherein the outer rotor comprises a first disc and a second disc, the first disc and the second disc respectively cover and enclose the inner stator at two sides of the inner stator and are fixedly joined, and the first disc comprises a screw fastening structure for fastening to the flywheel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
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(5)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(6) Details and technical features of the present invention are given with the accompanying drawings below.
(7)
(8) In practice, the inner stator 30 may include a fixed portion 32 and a fastening portion 33. The fixed portion 32 is fixedly joined with the axis 20. The fastening portion 33 is fixed to the fixed portion 32 using at least one fastening element 34. The accommodating space 31 is formed between the fixed portion 32 and the fastening portion 33. As such, the inner stator 30 may be formed as an assembly to reduce manufacturing complications.
(9) The outer rotor 40 encloses the inner stator 30, and rotates relative to the inner stator 30. More specifically, the outer rotor 40 is directly connected to a curved crank (not shown) that a user pedals, and is driven by the rotational force as the user pedals. Alternatively, the outer rotor 40 is driven to rotate through an indirect connection means of a chain or a linked band. Similarly, for manufacturing possibilities, the outer rotor 40 may include a first disc 41 and a second disc 42. The first disc 41 and the second disc 42 cover and enclose at the two sides of the inner stator 30 and are fixedly joined. Further, the first disc 41 includes a screw fastening structure 43, through which the first disc 41 may be directly connected to the curved crank (not shown) that a user pedals, such that the outer rotor 40 is driven to rotate by the rotational force as the user pedals. Alternatively, the outer rotor 40 may be driven to rotate through an indirect connection means of a chain or a linked band.
(10) At a position away from the axis 20, an accommodating gap 70 is formed between the outer rotor 40 and the inner stator 30, and the magneto-rheological fluid 60 is filled in the accommodating gap 70. The conductive line 50 is winded in the accommodating space 31, and generates a magnetic line 51 (as shown in
(11) Away from the axis 20, the accommodating space 31 is provided with an opening 35 in communication with the accommodating gap 70. A magnetic baffle plate 80 for sealing the opening 35 is disposed at the opening 35. To enlarge an effective range of the magnetic line 51, the width of the magnetic baffle plate 80 may be larger than the width of the conductive line 50, so as to force the magnetic line 51 to bypass the magnetic baffle plate 80 to increase the region where the magnetic line 51 encircles the accommodating gap 70. Thus, the magnetic line 51 is prevented from choosing a shortest route instead of passing the position of accommodating gap 70, hence eliminating the issue that the magneto-rheological fluid may fail to fully exercise the magnetic force for generating a resistive force. Further, when the inner stator 30 is assembled from the fixed portion 32 and the fastening portion 33, each of the fixed portion 32 and the fastening portion 33 may include a notch 36. Through the opening 35, the fixed portion 32 and the fastening portion 33 may fasten and position the magnetic baffle plate 80, while contact areas of the fixed portion 32, the fastening portion 33 and the magnetic baffle plate 80 may be increased to securely seal the opening 35 of the accommodating space 31 and to prevent the magneto-rheological fluid 60 from seeping into the accommodating space 31 via the accommodating gap 70.
(12) To prevent the magneto-rheological fluid 60 from seeping out and to allow the outer rotor 40 with a good degree of freedom for rotation, two sides of the inner stator 30 and between the inner stator 30 and the outer rotor 40 may be disposed with a spacing ring 90 and a sealing member 91 sealing the accommodating gap 70, respectively. The spacing ring 90 maintains the gap between the inner stator 30 and the outer rotor 40, and further prevents an issue of relative displacement between the inner stator 30 and the outer rotor 40 with respective to the axial direction. The sealing member 91 prevents the magneto-rheological fluid 60 from seeping out. Further, a bearing 92 may be disposed between each of the two sides of the outer rotor 40 and the axis 20. The bearing 92 allows the outer rotor 40 to freely rotate relative to the axis 20.
(13) Referring to
(14) In conclusion, as opposed to the prior art, the present invention provides at least following advantages.
(15) 1. With the incorporation of the outer rotor and the inner stator, the outer rotor is disposed at the outermost to provide a larger braking torque.
(16) 2. By locating the accommodating gap at a position away from the axis, when magneto-rheological fluid exercises a viscous effect under the influence of the magnetic line, a larger moment is generated to provide a better braking effect.
(17) 3. Through the magnetic baffle plate, the magnetic line is better distributed to increase an effective region of the magneto-rheological fluid and to enhance the braking effect.
(18) 4. By sealing the opening with the magnetic baffle plate, the magneto-rheological fluid is prevented from seeping into the accommodating space.