RESISTANCE SENSING MECHANISM FOR EXERCISE EQUIPMENT
20170312580 ยท 2017-11-02
Inventors
Cpc classification
A63B21/0051
HUMAN NECESSITIES
A63B24/0087
HUMAN NECESSITIES
A63B2220/833
HUMAN NECESSITIES
A63B22/0605
HUMAN NECESSITIES
G01L1/12
PHYSICS
A63B2220/58
HUMAN NECESSITIES
A63B2220/80
HUMAN NECESSITIES
G01D5/145
PHYSICS
A63B21/00069
HUMAN NECESSITIES
International classification
A63B24/00
HUMAN NECESSITIES
A63B22/06
HUMAN NECESSITIES
G01L1/12
PHYSICS
Abstract
A resistance sensing mechanism including a resistance adjusting unit including a holder frame, a locating sleeve disposed above the holder frame, an adjustment screw rod rotatably inserted through the locating sleeve and a screw nut threaded onto the adjustment screw rod and pivotally connected to the holder frame, and a sensor unit including a first linkage pivotally connected with one end to the screw nut, a second linkage having one end pivotally connected to an opposite end of the first linkage and an opposite end pivotally connected to the locating sleeve, a sensor mounted at one of the first and second linkages and a sensible member mounted at the other of the first and second linkages to face toward the sensor. Subject to the linkage relationship between the first and second linkages, the distance between the sensor and the sensible member can be changed, thereby generating a relative sensing signal.
Claims
1. A resistance sensing mechanism used in an exercise equipment comprising a bicycle frame and a flywheel rotatably mounted at said bicycle frame, the resistance sensing mechanism comprising: a resistance adjusting unit comprising a holder frame configured to be pivotally connected with one end thereof to said bicycle frame and disposed around an outer perimeter of said flywheel, a locating sleeve configured to be affixed to said bicycle frame and disposed above said holder frame, an adjustment screw rod having a threaded shank axially inserted through said locating sleeve and rotatable in situ relative to said locating sleeve, and a screw nut pivotally mounted connected to said holder frame and threaded onto said threaded shank of said adjustment screw rod; and a sensor unit comprising a first linkage, a second linkage, a sensor and a sensible member, said first linkage having one end thereof pivotally connected with one end of said second linkage and an opposite end thereof pivotally connected to said screw nut of said resistance adjusting unit, said second linkage having an opposite end thereof pivotally connected to said locating sleeve of said resistance adjusting unit, said sensor being mounted at one of said first linkage and said second linkage, said sensible member being mounted at the other of said first linkage and said second linkage to face toward said sensor and sensible by said sensor.
2. The resistance sensing mechanism as claimed in claim 1, wherein said holder frame comprises two elongated slots respectively and symmetrically located in two opposite lateral sides thereof, and two pivot pins respectively slidably inserted through said elongated slots to pivotally connect said screw nut to said holder frame.
3. The resistance sensing mechanism as claimed in claim 1, wherein said sensor is mounted at said first linkage and said sensible member is mounted at said second linkage.
4. The resistance sensing mechanism as claimed in claim 1, wherein said sensor is mounted at said second linkage and said sensible member is mounted at said first linkage.
5. The resistance sensing mechanism as claimed in claim 1, wherein said sensor is a Hall sensor and said sensible member is a magnet.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
[0009]
[0010]
DETAILED DESCRIPTION OF THE INVENTION
[0011] Referring to
[0012] The resistance adjusting unit 30 comprises a holder frame 31, two opposing magnetic members 32, a locating sleeve 33, an adjustment screw rod 34, and a screw nut 35. The holder frame 31 is disposed around the outer perimeter of the flywheel 14 and pivotally connected with a rear end thereof to the bicycle frame 12, having two elongated slots 312 respectively cut through two opposite sidewalls thereof. The magnetic members 32 are bilaterally mounted in the holder frame 31 for allowing the flywheel 14 to rotate therebetween. The locating sleeve 33 is affixed to the bicycle frame 12 and disposed above the holder frame 31. The adjustment screw rod 34 comprises a rotary knob 342, and a threaded shank 344 fixedly connected with the rotary knob 342. The threaded shank 344 is inserted through the locating sleeve 33 and can be rotated in situ. The screw nut 35 is threaded onto the threaded shank 344 of the adjustment screw rod 34, having two opposite lateral sides thereof respectively pivotally connected to the holder frame 31 by a respective first pivot pin P1. The first pivot pins P1 are respectively slidably inserted through the respective elongated slots 312 of the holder frame 31.
[0013] The sensor unit 40 comprises a first linkage 41 and a second linkage 42. The first linkage 41 has one end thereof pivotally connected to one end of the second linkage 42 by a pair of second pivot pins P2, and an opposite end thereof pivotally connected to the two opposite lateral sides of the screw nut 35 of the resistance adjusting unit 30 by the aforesaid first pivot pins P1. The second linkage 42 has an opposite end thereof pivotally connected to the locating sleeve 33 by a pair of third pivot pins P3. The sensor unit 40 further comprises a sensor 43 and a sensible member 44. The sensor 43 can be, for example, a Hall sensor selectively mounted at a top side of the first linkage 41 or a bottom side of the second linkage 42, and the sensible member 44, which can be, for example, a magnet, is selectively mounted at the bottom side of the second linkage 42 or the top side of the first linkage 41 to face toward the sensor 43. If the sensor 43 is mounted at the top side of the first linkage 41, the sensible member 44 should be mounted at the bottom side of the second linkage 42. On the contrary, if the sensor 43 is mounted at the bottom side of the second linkage 42, the sensible member 44 should be mounted at the top side of the first linkage 41. In either of the aforesaid two selective mounting arrangements, the sensor 43 and the sensible member 44 must be arranged to face toward each other.
[0014] As illustrated in
[0015] In conclusion, the resistance sensing mechanism 10 utilizes the arrangement of the first and second linkages 41, 42 for enabling the sensor 43 and the sensible member 44 to be moved toward or away from each other upon a resistance change. When compared to prior art techniques of unilateral action, the present invention can effectively achieve the effects of reducing the itinerary of the action and shortening the sensing time.
[0016] Although a particular embodiment of the invention has been described in detail for purposes of illustration, various modifications and enhancements may be made without departing from the spirit and scope of the invention. Accordingly, the invention is not to be limited except as by the appended claims.