Adjustable cam for exercise equipment
10052515 ยท 2018-08-21
Assignee
Inventors
Cpc classification
A63B23/03525
HUMAN NECESSITIES
A63B21/155
HUMAN NECESSITIES
F16H37/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
A63B21/00
HUMAN NECESSITIES
A63B23/035
HUMAN NECESSITIES
A63B21/062
HUMAN NECESSITIES
F16H25/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A cam assembly is disclosed which includes a cam having a first cam pivot, a second cam pivot, and a machine shaft guide; a range plate which is engageable with the cam; a belt connected to the cam; and a machine shaft connected to the range plate. The first cam pivot defines the motion of a first arc and the second cam pivot guide defines the motion of a second arc as the cam is adjusted. A method of using a cam assembly is also disclosed which includes engaging an adjustor on a cam; releasing a connection between the cam and a range plate; rotating the cam; releasing the adjustor; and securing a connection between the cam and the range plate.
Claims
1. A cam assembly comprising: a cam having a first cam pivot, a second cam pivot, and a machine shaft guide; a range plate which is engageable with the cam; a belt having a first end and a second end, wherein the belt is connected at the first end to the cam; and a machine shaft connected to the range plate, wherein the first cam pivot and the second cam pivot guide the cam as the cam is adjusted.
2. The cam assembly of claim 1, wherein the cam further comprises an adjustor which allows for the engagement between the range plate and the cam.
3. The cam assembly of claim 2, wherein the adjustor is a lever.
4. The cam assembly of claim 1, wherein the range plate contains at least one aperture and the adjustor contains an adjustor pin, which traverses the cam and engages with the at least one aperture.
5. The cam assembly of claim 1, wherein the machine shaft traverses the cam between the machine shaft guide and a machine shaft track.
6. The cam assembly of claim 5, wherein adjusting the cam allows for a movement of the cam about the machine shaft in a non-circular motion.
7. The cam assembly of claim 1, wherein the cam is made of metal.
8. The cam assembly of claim 1, wherein the range plate is made of metal.
9. The cam assembly of claim 1, wherein the second cam pivot is defined by a pivot track follower in engagement with a pivot track.
10. The cam assembly of claim 1, wherein the first cam pivot is defined by a first linkage between the cam and the range plate.
11. The cam assembly of claim 1, wherein the second cam pivot is defined by a second linkage between the cam and the range plate.
12. The cam assembly of claim 1, wherein the belt remains taut as the cam is adjusted into a position.
13. The cam assembly of claim 1, wherein the second end of the belt is engaged with a weight unit.
14. A cam assembly comprising: a cam having a first cam pivot and a second cam pivot; a range plate, the range plate having a pivot track in the range plate that guides the second cam pivot; a machine shaft engaged with the range plate; a belt with a first end and a second end, the belt being connected to the cam at the first end and a weight unit at the second end; and an adjustor with a first end and a second end, wherein the adjustor is connected at the adjustor first end to the range plate by an adjustor pivot mount and the first cam pivot at the adjustor second end; wherein as the adjustor is engaged, the first cam pivot and second cam pivot guide the cam in such a way that the belt will stay taut between the cam and the weight unit.
15. The cam assembly of claim 14, wherein the adjustor has an adjustor pin that engages with the range plate.
16. A method of using a cam assembly comprising the steps of: engaging an adjustor on a cam; releasing a connection between the cam and a range plate; rotating the cam; releasing the adjustor; and securing a connection between the cam and the range plate.
17. The method of using the cam assembly according to claim 16, wherein engaging the adjustor on the cam further comprises engaging a lever to release the connection between the cam and the range plate.
18. The method of using the cam assembly according to claim 16, wherein rotating the cam further comprises rotating the cam about a machine shaft in engagement with a machine shaft guide.
19. The method of using the cam assembly according to claim 18, wherein the cam rotating about the machine shaft is guided by a first arc and a second arc.
Description
BRIEF DESCRIPTION OF THE DRAWING(S)
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DESCRIPTION OF THE INVENTION
(8) For purposes of the description hereinafter, the terms upper, lower, right, left, vertical, horizontal, top, bottom, lateral, longitudinal, and derivatives thereof, shall relate to the invention as it is oriented in the drawing figures. However, it is to be understood that the invention may assume various alternative variations and step sequences, except where expressly specified to the contrary. It is also to be understood that the specific devices and processes illustrated in the attached drawings, and described in the following specification, are simply exemplary embodiments of the invention. Hence, specific dimensions and other physical characteristics related to the embodiments disclosed herein are not to be considered as limiting.
(9) According to a preferred and non-limiting embodiment, an adjustable cam is used to vary the weight load based on adjustments made by the user. The user is able to adjust the resistance and strength curve of the exercise machine by adjusting a lever or dowel pin to alter the first and second axes of rotation of a cam with respect to the machine axis of rotation.
(10) Referring now to
(11) In order to alter the strength curve, the user is able to move the cam by first releasing an adjuster 106. In a preferred and non-limiting embodiment, the cam 101 contains an adjustor 106, which acts as a detent to secure the cam 101 in position. The adjustor 106 is preferably a lever which rotates about the adjustor pivot mount 107. The adjustor 106 therefore rotates about the adjustor pivot mount 107. The adjustor 106 has a spring to maintain its position. When the user applies a force on the adjustor 106 opposite the direction of the spring force, the adjustor 106 rotates about the adjustor pivot mount 107 and pulls on an adjustor pin 108. The user can then move the cam 101 to the desired position and release the adjustor 106 to secure the cam 101 in position. When the user releases the adjustor 106, the adjustor pin 108 is secured into a groove or hole in the range plate 102, or presses against the range plate 102 such that the cam 101 is secured in position. While the adjustor 106 is preferably a lever, the adjustor 106 can be anything which secures the position of the cam 101 against the range plate 102, such as a bolt which threads into drilled holes of the range plate 102, or a bolt which forces a plate or a pad against the range plate 102.
(12) Referring now to
(13) In a preferred but non-limiting embodiment, the first arc, second arc, machine shaft guide 204, and the shape of cam 101 are designed such that as the cam 101 is adjusted, the belt 104 (as seen in
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(15) Referring now to
(16) Referring back to
(17) The cam 101 can be made of any material strong enough to withstand the maximum weight of the corresponding weight unit. Preferably, the cam 101 and the range plate 102 are made of metal, and coated with paint or an anti-corrosive finish if humidity and rust are a concern. While metal is preferred, any other material, such as a polymer or a plastic, could be used. The adjustor pin 108 should also be made of a material that is strong enough to maintain its integrity when the maximum weight of the weight unit is applied. If the adjustor pin 108 material is not strong enough, it could shear under duress and disengage the cam 101 with the range plate 102. Again, metal is preferred, but alternate materials, such as plastics or polymers, could be used.
(18) The belt 104 can also be any material which is able to support the maximum weight of the weight unit. Further, the belt 104 is preferably flexible enough to move fluidly around a pulley. For example, the belt 104 can be a rubber belt, a metal cable, or a knuckle chain.
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EXAMPLES
(22) The following tables provide illustrative examples of how the cam assembly 1000 functions. The numbers in the following examples were obtained using the embodiment of
Example 1
(23) The following example shows the data of Set 1, which is Pos. 5 in
(24) TABLE-US-00001 Angle in Distance Percent of Exercise Rotation from the Pivot Weight of Weight (degrees) (inches) Unit (%) Start 4.7908 87.99 17.5 5.1595 94.76 35 5.390804 99.00 52.5 5.476 100.57 70 5.4293 99.71 87.5 5.269 96.77 105 5.02009 92.20 122.5 4.7064 86.44
Example 2
(25) The following example shows the data of Set 2, which is Pos. 9 in
(26) TABLE-US-00002 Angle in Distance Percent of Exercise Rotation from the Pivot Weight of Weight (degrees) (inches) Unit (%) Start 3.233 59.38 17.5 3.6911 67.79 35 4.2048 77.22 52.5 4.6986 86.29 70 5.1026 93.71 87.5 5.3719 98.66 105 5.4926 100.87 122.5 5.4736 100.53
Example 3
(27) The following example shows the data of Set 3, which is Pos. 1 in
(28) TABLE-US-00003 Angle in Distance Percent of Exercise Rotation from the Pivot Weight of Weight (degrees) (inches) Unit (%) Start 5.4451 100.00 17.5 5.4246 99.63 35 5.2885 97.13 52.5 5.059 92.91 70 4.7626 87.47 87.5 4.4196 81.17 105 4.0539 74.45 122.5 3.6881 67.73
(29) With reference to
(30) The adjustability of the strength profile allows users to more easily tailor their exercise to their fitness goals. For a user looking to gain more strength at the end of the motion, they could adjust the cam to that of Example 2. For example, a user who wants to work on their strength at the beginning of a motion could adjust the cam to that of Example 3.