CRAWL SIMULATION EXERCISE AND STRETCHING MACHINE
20240123279 ยท 2024-04-18
Inventors
Cpc classification
A63B2022/0043
HUMAN NECESSITIES
A63B22/001
HUMAN NECESSITIES
International classification
A63B22/00
HUMAN NECESSITIES
Abstract
A crawling simulation exercise and stretching machine having left and right horizontally oriented curved tracks suspended between a forward support frame and a rearward support frame, left and right leg supports assemblies movably mounted on the curved tracks and each having a foot platform and shin pads for supporting a user's legs, left and right arm supports assemblies pivotally mounted on the front support frame and each having a lever and handle for supporting a user's arms, a rocker arm assembly located central to the leg supports assemblies and the arm supports assemblies, and multiple linkage assemblies operably connecting the leg supports assemblies and the arm supports assemblies to the rocker arm assembly such that the leg supports assemblies and the arm supports assemblies cooperate to create a reciprocating arcing motion of a user's arms and legs to simulate a crawling exercise or stretching motion.
Claims
1. A crawling simulation exercise and stretching machine comprising: a) a rear support frame and a forward support frame; b) a left side horizontally oriented curved wheel track and a right side horizontally oriented curved wheel track each with a first end and a second end, wherein the first ends are connected to the rear support frame and the second ends are connected to the forward support frame; c) a left wheel carriage rollably engaged with the left side horizontally oriented wheel track and a right wheel carriage rollably engaged with the right side horizontally oriented curved wheel tracks; d) an elongated rocker arm with a left end, a right end, and a central axle that is pivotally mounted on the forward support frame; e) a left side linkages connection hub pivotably mounted on the forward support frame and a right side linkages connection hub pivotably mounted on the forward support frame; f) a left side vertically oriented lever having a lower end that is pivotally mounted on the forward support frame and an upper end comprising a first handle, and a right side vertically oriented lever having a lower end that is pivotally mounted on the forward support frame and an upper end comprising a second handle; g) first and second left side linkage bars, wherein a first end of the first left side linkage bar is pivotally connected to the left side wheel carriage and a second end of the first left side linkage bar is pivotally connected to a first end of the second left side linkage bar, and a second end of the second left side linkage bar is connected to the left side linkages connection hub; h) first and second right side linkage bars, wherein a first end of the first right side linkage bar is pivotally connected to the right side wheel carriage and a second end of the first right side linkage bar is pivotally connected to a first end of the second right side linkage bar, and a second end of the second right side linkage bar is connected to the right side linkages connection hub; i) a left side foot platform and shin support pad connected to the first end of the first left side linkage bar and a right side foot platform and shin support pad connected to the first end of the first right side linkage bar; j) a third left side linkage bar, wherein a first end of the third left side linkage bar is connected to the left side linkages connection hub and a second end of the third left side linkage bar is connected to the left end of the elongated rocker arm, and a third right side linkage bar, wherein a first end of the third right side linkage bar is connected to the right side linkages connection hub and a second end of the third right side linkage bar is connected to the right end of the elongated rocker arm; and. k) a fourth left side linkage bar, wherein a first end of the fourth left side linkage bar is connected to the left side vertically oriented lever arm and a second end of the fourth left side linkage bar is connected to the left side linkages connection hub, and a fourth right side linkage bar, wherein a first end of the fourth right side linkage bar is connected to the right side vertically oriented lever arm and a second end of the fourth right side linkage bar is connected to the right side linkages connection hub, wherein the elongated rocker arm is constructed so as to synchronize and control the motions of the left side lever arm, the right side lever arm, the left side foot platform and shin support pad, and the right side foot platform and shin support pad such that the left side lever arm and the left side foot platform and shin support pad move in opposite directions from each other and the right side lever arm and the right side foot platform and shin support pad move in opposite directions from each other during operation of the crawling simulation exercise and stretching machine.
2. The machine of claim 1, wherein the left side lever arm, the right side lever arm, the left side foot platform and shin support pad, and the right side foot platform and shin support pad all move in reciprocating arcing patterns of motion of less than 180 degrees.
3. The machine of claim 2, wherein the reciprocating arcing pattern of motion of the left side lever, the right side lever, the left side foot platform and shin support pad, and the right side foot platform and shin support pad are all controlled by mechanical components of the machine, and a range of movement of the pattern of motion of the left side lever, the right side lever, the left side foot platform and shin support pad, and the right side foot platform and shin support pad are all controllable by a range of movement of the exercise motion of a user of the machine.
4. The machine of claim 3, further comprising a resistance mechanism operatively connected to the movement of the left side lever, the right side lever, the left side foot platform and shin support pad, and the right side foot platform and shin support pad.
5. The machine of claim 4, wherein the resistance mechanism creates a magnetic resistance that is adjustable to a plurality of amounts of magnetic resistance, and at each set amount of magnetic resistance, the amount of magnetic resistance is constant through the entire range of movement of the left side lever, the right side lever, the left side foot platform and shin support pad, and the right side foot platform and shin support pad.
6. The machine of claim 4, wherein the resistance mechanism creates a friction resistance that is adjustable to a plurality of amounts of friction resistance, and at each set amount of contact friction resistance, the amount of contact friction resistance is constant through the entire range of movement of the left side lever, the right side lever, the left side foot platform and shin support pad, and the right side foot platform and shin support pad.
7. The machine of claim 4, wherein the resistance mechanism creates air displacement resistance.
8. A crawling simulation exercise and stretching machine comprising: a) a rear support frame and a forward support frame; b) a left side horizontally oriented curved wheel track and a right side horizontally oriented curved wheel track each with a first end and a second end, wherein the first ends are connected to the rear support frame and the second ends are connected to the forward support frame; c) a left wheel carriage rollably engaged with the left side horizontally oriented wheel track and a right wheel carriage rollably engaged with the right side horizontally oriented curved wheel track; d) an elongated rocker arm with a left end, a right end, and a central axle that is pivotally mounted on the forward support frame; e) a left side linkage connection hub pivotably mounted on the forward support frame and a right side linkage connection hub pivotably mounted on the forward support frame; f) a left side vertically oriented lever having a lower end that is operatively connected to the left side linkages connection hub and an upper end comprising a first handle, and a right side vertically oriented lever having a lower end that is operatively connected to the right side linkages connection hub and an upper end comprising a second handle; g) first and second left side linkage bars, wherein a first end of the first left side linkage bar is pivotally connected to the left side wheel carriage and a second end of the first left side linkage bar is pivotally connected to a first end of the second left side linkage bar and a second end of the second left side linkage bar is connected to the left side linkage connection hub; h) first and second right side linkage bars, wherein a first end of the first right side linkage bar is pivotally connected to the right side wheel carriage and a second end of the first right side linkage bar is pivotally connected to a first end of the second right side linkage bar and a second end of the second right side linkage bar is connected to the right side linkage connection hub; i) a left side foot platform and shin support pad connected to the first end of the first left side linkage bar and a right side foot platform and shin support pad connected to the first end of the first right side linkage bar; j) a third left side linkage bar. wherein a first end of the third left side linkage bar is connected to the left side linkages connection hub and a second end of the third left side linkage bar is connected to the left end of the elongated rocker arm, and a third right side linkage bar wherein a first end of the third right side linkage bar is connected to the right side linkages connection hub and a second end of the third right side linkage bar is connected to the right end of the elongated rocker arm, wherein the elongated rocker arm is structured to synchronize and control the motions of the left side lever arm, the right side lever arm, the left side foot platform and shin support pad, and the right side foot platform and shin support pad such that the left side lever arm and the left side foot platform and shin support pad move in opposite directions from each other and the right side lever arm and the right side foot platform and shin support pad move in opposite directions from each other during operation of the crawling simulation exercise and stretching machine.
9. The machine of claim 8, wherein the left side lever, the right side lever, the left side foot platform and shin support pad, and the right side foot platform and shin support pad all move in reciprocating arcing patterns of motion of less than 180 degrees.
10. The machine of claim 9, wherein the reciprocating arcing pattern of motion of the left side lever, the right side lever, the left side foot platform and shin support pad, and the right side foot platform and shin support pad are all controlled by mechanical components of the machine, and a range of movement of the pattern of motion of the left side lever, the right side lever, the left side foot platform and shin support pad, and the right side foot platform and shin support pad are all controllable by a range of movement of the exercise motion of the user.
11. The machine of claim 10, further comprising a resistance mechanism operatively connected to the left side lever, the right side lever, the left side foot platform and shin support pad, and the right side foot platform and shin support pad.
12. The machine of claim 11, wherein the resistance mechanism creates a magnetic resistance that is adjustable to a plurality of amounts of magnetic resistance and at each set amount of magnetic resistance, the amount of magnetic resistance is constant through the entire range of movement of the left side lever, the right side lever, the left side foot platform and shin support pad, and the right side foot platform and shin support pad.
13. The machine of claim 11, wherein the resistance mechanism creates contact friction resistance that is adjustable to a plurality of amounts of contact friction resistance and at each set amount of contact friction resistance, the amount of contact friction resistance is constant through the entire range of movement of the left side lever, the right side lever, the left side foot platform and shin support pad, and the right side foot platform and shin support pad.
14. The exercise and stretching machine of claim 11, wherein the resistance mechanism creates air displacement resistance.
15. A crawling simulation exercise and stretching machine comprising: a) a rear support frame and a forward support frame; b) a left side horizontally oriented curved wheel track and a right side horizontally oriented curved wheel track each with a first end and a second end, wherein the first ends are connected to the rear support frame and the second ends are connected to the forward support frame; c) a left wheel carriage rollably engaged with the left side horizontally oriented wheel track and a right wheel carriage rollably engaged with the right side horizontally oriented curved wheel track; d) an elongated rocker arm with a left end, a right end, and a central axle that is pivotally mounted on the forward support frame; e) a left side linkage connection hub pivotably mounted on the forward support frame and a right side linkage connection hub pivotably mounted on the forward support frame; f) first and second left side linkage bars, wherein a first end of the first left side linkage bar is pivotally connected to the left side wheel carriage and a second end of the first left side linkage bar is pivotally connected to a first end of the second left side linkage bar and a second end of the second left side linkage bar is connected to the left side linkage connection hub; g) first and second right side linkage bars, wherein a first end of the first right side linkage bar is pivotally connected to the right side wheel carriage and a second end of the first right side linkage bar is pivotally connected to a first end of the second right side linkage bar and a second end of the second right side linkage bar is connected to the right side linkage connection hub; h) a left side foot platform and shin support pad connected to the first end of the first left side linkage bar and a right side foot platform and shin support pad connected to the first end of the first right side linkage bar; i) a third left side linkage bar, wherein a first end of the third left side linkage bar is connected to the left side linkage connection hub and a second end of the third left side linkage bar is connected to the left end of the elongated rocker arm, and a third right side linkage bar, wherein a first end of the third right side linkage bar is connected to the right side linkage connection hub and a second end of the third right side linkage bar is connected to the right end of the elongated rocker arm, wherein the elongated rocker arm is structured so as to synchronize and control the motions of the left side foot platform and shin support pad and the right side foot platform and shin support pad such that the left side foot platform and the right side foot platform and shin support pad move in opposite directions from each other during operation of the crawling simulation exercise and stretching machine.
16. The machine of claim 15, wherein the left side foot platform and shin support pad and the right side foot platform and shin support pad move in reciprocating arcing patterns of motion of less than 180 degrees.
17. The machine of claim 16, wherein the reciprocating arcing pattern of motion of the left side foot platform and shin support pad and the right side foot platform and shin support pad are all controlled by mechanical components of the machine, and a range of movement of the pattern of motion of the left side foot platform and shin support pad and the right side foot platform and shin support pad are controllable by a range of movement of the exercise motion of the user.
18. The machine of claim 17, further comprising a resistance mechanism operatively connected to the movement of the left side foot platform and shin support pad and the right side foot platform and shin support pad.
19. The machine of claim 18, wherein the resistance mechanism creates a magnetic resistance that is adjustable to a plurality of amounts of magnetic resistance and at each set amount of magnetic resistance, the amount of magnetic resistance is constant through the entire range of movement of the left side foot platform and shin support pad and the right side foot platform and shin support pad.
20. The machine of claim 18, wherein the resistance mechanism creates friction resistance that is adjustable to a plurality of amounts of contact friction resistance and at each set amount of contact friction resistance, the amount of contact friction resistance is constant through the entire range of movement of the left side foot platform and shin support pad and the right side foot platform and shin support pad.
21. The exercise and stretching machine of claim 18, wherein the resistance mechanism creates air displacement resistance.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In some figures, the invention is illustrated from one side and in these figures the invention looks the same, but in a general mirror image from the opposite side, with both sides having similar structures, features, and components. In some figures certain components have been removed or are illustrated as transparent such that the view of other components is not obstructed.
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0043] Exemplary preferred embodiments are disclosed below in connection with the attached drawings. Throughout this specification, various terms will be used to describe various elements or sets of elements, features or sets of features, mechanisms, and devices. For example, the term rearward end or portion of the machine will refer to the end or portion of the machine most near the foot platforms and distal to the handles. The term forward end or portion of the machine will refer to the end or portion of the machine most near the handles and distal to the foot platforms. The term pivot will refer to any combination of an axle, one or more bushings or bearings housings, or other rotational components in which another component or set of components rotate upon. The term assembly will refer to a group of components that cooperate together to create a function of the invention.
[0044] The invention is comprised of many identical left and right components as illustrated in various perspective views and many of these components will frequently be referred to and described in a plural context so as to prevent the duplication of descriptions of identical left and right components. Many of these components will have the same identification number and will frequently be referred to as a left or right component. A left or left side component or set of components will refer to those that would be on the user's left side of the machine when the user is mounted on the machine and a right or right side component or set of components will refer to those that would be on the user's right side of the machine when the user is mounted on the machine. Descriptions of components or sets of components that are identified once as being identical on the left and right side of the machine may be referred to in a singular dialogue to prevent excessive duplication of description, but it is to be understood that the description or terminology of a left component or set of components applies to the right counterpart component or set of components and vice versa unless expressly stated otherwise. Also, it is to be understood that when components or sets of components that have been identified at least once as being duplicates on the left and right sides of the machine are described as cooperating with or being connected to other components or sets of components that have been identified at least once as being duplicates on the left and right sides of the machine, that left side components or sets of components will cooperate with or connect to left side components and right side components or sets of components with cooperate with or connect to right side components.
[0045] The term horizontally oriented will refer to a component or set of components on the machine that is more parallel to the floor surface than perpendicular to the floor surface during operation of the machine or while stationary. The term vertically oriented will refer to a component or set of components on the machine that is more perpendicular to the floor surface than parallel to the floor surface during operation of the machine or while stationary. The term hub will refer to a rotatable component that connects multiple functional components of the machine.
[0046] There are three embodiments of the invention; however, each of the embodiments has many components and assemblies that are common to all three embodiments and these common components and assembly function identically or nearly identical on each of the three embodiments. These common components will be identified with like or similar numbers and to prevent unnecessary duplication the description of the structure, configuration, and function of these components and assemblies may only be described once with references to previous descriptions for other embodiments to prevent excessive duplication of description.
[0047] To further comply with written description and enablement requirements, the following patents and patent application publications are also incorporated herein by this reference in their entirety. U.S. Pat. Nos. 9,155,933, 10,065,062, 10,994,169, US Patent Application Publication No. 2015/0283425, and U.S. Pat. No. 8,025,609.
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[0049] In other embodiments of the invention the user's arms are supported by a stationary grip while the user's legs concurrently movement in forward and rearward reciprocating arcing motions. During these exercise motions, the user's left leg and the user's right leg move in opposite directions from each other. During these exercise motions while one leg is pushing, the other leg is pulling. These exercise motions of the user's left leg and the user's right leg are synchronized such that the user's left leg and the user's right leg move in unison.
[0050] All of the exercise motion components of the machine are mounted on a forward support frame and a rearward support frame. In all embodiments, the machine does not require a resistance mechanism such that it can be operated to performing stretching exercises, physical therapy, and light cardiovascular exercises. In all embodiments, the machine may comprise a resistance mechanism for performing higher exertion cardiovascular exercises and or strength exercises.
[0051]
[0052] Now referring to
[0053] As illustrate in
[0054] As best illustrated in
[0055] As best illustrated in
[0056] First ends of left and right first leg support linkage bars 15 is rigidly connected to a forward side of left and right upper wheel carriage axles 35, respectively, and the second end of first leg support linkage bars 15 extends forward of upper wheel carriage axles 35 such that first leg support linkage bars 15 are mostly parallel to the floor surface. A first end of left and right shin pad support tubes 12 is rigidly connected proximal to the first end of first left and right leg support linkage bars 15 respectively, and the second end of shin pad support tubes 12 extends upward from first leg support linkage bars 15 at a slight angle off of perpendicular.
[0057] A central portion of rectangular shaped left and right shin pads 11 is rigidly connected to the second ends of left and right shin pads support tubes 12, respectively, such that shin pads 11 are in line with wheel carriage tracks 31 wherein the first narrower ends of shin pads 11 are more proximal to the rearward end of machine 1 and the second narrower ends of shin pads 11 are more proximal to the forward end of machine 1. The upper side of shin support pads 11 are represented as a concave shape so as to comfortably and securely support user's U legs during operation of machine 1.
[0058] The second ends of left and right first leg support linkage bars 15 are pivotally connected to the first ends of left and right second leg support linkage bars 17, respectively, with left and right leg support linkage bar pivots 16, respectively. The left and right second ends of second leg support linkage bars 17 are rigidly connected to the lower portion of left and right linkage connection hubs pivots 91, respectively. Second leg support linkage bars 17 are mostly oriented at a perpendicular angle to first leg support linkage bars 15 when wheel carriage assembly 30 is proximal to a central portion of carriage wheel tracks 31 and second leg support linkage bars 17 move to various degrees of angle relative to first leg support linkage bars 15 as wheel carriage assembly 30 moves towards the forward and rearward ends of wheel carriage tracks 31.
[0059] As best illustrated in
[0060] As best illustrated in
[0061] As best illustrated in
[0062] As illustrated in
[0063] During operation in a first direction motion of the left side components of machine 1, when left foot flatform 14 and shin pad 11 move rearward, left wheel carriage assembly 30 moves rearward such that left upper carriage wheel 33 and left lower carriage wheels 34 roll rearward along left wheel carriage track 31. This causes left first leg support linkage bar 15 to move rearward as the second end of left first leg support linkage bar 15 pivots with the first end of left second leg support linkage bar 17 about left leg support linkage bar pivot 16. This causes the first end of left second leg support linkage bar 17 to swing rearward as the second end of left second leg support linkage bar 17 pivots about left linkages connection hub pivot 91. Concurrent to this motion, left lever 71 and left handle 72 pivot forward about left lever pivot 74 causing left lever linkage bar 75 to move forward as the first end left lever linkage bar 75 pivots about left lever linkage bar pivot 77. This causes the second end of left lever linkage bar 75 to pivot about left linkages connection hub flange forward pivot 94 as left linkages connection hub pivot 91 rotates forward. This causes left rocker arm linkage bar 53 to move upward as the second end of left rocker arm linkage bar 53 pivots about left linkages connection hub flange rear pivot 93. This causes the first end of left rocker arm linkage bar 53 to pivot about rocker arm left end linkage pivot 54 as rocker arm 51 pivots about rocker arm pivot axle 56 and the left end of rocker arm 51 moves upward.
[0064] During operation in a first direction of motion of the right side components of machine 1, when right foot flatform 14 and shin pad 11 move forward, right wheel carriage assembly 30 moves forward such that right upper carriage wheel 33 and right lower carriage wheels 34 roll forward along right wheel carriage track 31. This causes right first leg support linkage bar 15 to move forward as the second end of right first leg support linkage bar 15 pivots with the first end of right second leg support linkage bar 17 about right leg support linkage bar pivot 16. This causes the first end of right second leg support linkage bar 17 to swing forward as the second end of right second leg support linkage bar 17 pivots about right linkages connection hub pivot 91. Concurrent to this motion, right lever 71 and right handle 72 pivot rearward about right lever pivot 74 causing right lever linkage bar 75 to move rearward as the first end right lever linkage bar 75 pivots about right lever linkage bar pivot 77. This causes the second end of right lever linkage bar 75 to pivot about right linkages connection hub flange forward pivot 94 as right linkages connection hub pivot 91 rotates rearward. This causes right rocker arm linkage bar 53 to move downward as the second end of right rocker arm linkage bar 53 pivots about right linkages connection hub flange rear pivot 93. This causes the first end of right rocker arm linkage bar 53 to pivot about rocker arm right end linkage pivot 55 as rocker arm 51 pivots about rocker arm pivot axle 56 and the right end of rocker arm 51 moves downward.
[0065] During operation of a second direction motion of the left and right side components of machine 1, the motions of the left and right side components are reversed as previously described herein. During the first or second direction motions of all embodiments of the invention, user U is in total control of the range of the exercise motions of all embodiments of the invention without having to making any adjustments to any of the features or components of any embodiment of the invention. In other words, user U can properly operate any embodiment of the invention by moving wheel carriages assembly 30 and levers 71 any distance in a forward or rearward motion simply by how far they choose to push or pull wheel carriages assembly 30 and levers 71. No components of any embodiments of the invention require the user U to move wheel carriage assemblies 30 and levers 71 any set distance to properly operate machine 1.
[0066] Now referring to
[0067]
[0068] As best illustrated in
[0069]
[0070] Magnetic resistance mechanism 20 also comprises left and right conductive blades 21 that are each elongated arc shaped blades that can be constructed of various conductive material, with aluminum and copper being the most common materials. In length, conductive blades 21 span the travel distance of the forward and rearward motions of wheel carriage assemblies 30. The arc shape of conductive blades 21 matches the arc shape of wheel carriage tracks 31. These left and right conductive blades 21 are horizontally spaced from and parallel to left and right wheel carriage tracks 31, respectively, such that left and right conductive blades 21 are always in horizontal alignment with each other and suspended at spaced locations in between left and right wheel carriage tracks 31. Left conductive blade 21 is spaced off of left wheel track 31 such that it is in vertical alignment with the gapped space between left first magnets housings 22A and left second magnets housings 22B. Right conductive blade 21 is spaced off of right wheel track 31 such that it is in vertical alignment with the gapped space between right first magnets housings 22A and right second magnets housings 22B.
[0071] Left and right conductive blades 21 are adjustably connected to machine 1 as follows. A conductive blade forward support bar mounting bracket 26 is connected to forward portions of left and right wheel tracks 31 such that conductive blade forward support bar mounting bracket 26 is suspended above and in between left and right wheel tracks 31. A conductive blade rear support bar mounting bracket 27 is rigidly connected to the upper end of rear support frame 5 and extends slightly forward of rear support frame 5 such that conductive blade rear support bar mounting bracket 27 is suspended above and in between left and right wheel tracks 31. A conductive blade forward support bar 24 supports the forward ends of left and right conductive blades 21. Conductive blades forward support bar 24 is a rectangular bar with a left side and a right side and is pivotally connected to conductive blades forward support bar mounting bracket 26 with conductive blade forward support bar upper pivot 24A. The left side of conductive blade forward support bar lower pivot 24B is pivotally connected to the forward end of left conductive blade 21 and the right side of conductive blade forward support bar lower pivot 24B is pivotally connected to the forward end of right conductive blade 21. A conductive blades rear support bar 24 supports the rearward ends of left and right conductive blades 21. Conductive blades rear support bar 25 is a rectangular bar with a left side and a right side and is pivotally connected to conductive blades rear support bar mounting bracket 26 with conductive blade rear support bar upper pivot 25A. The left side of conductive blade rear support bar lower pivot 25B is pivotally connected to the rearward end of left conductive blade 21 and the right side of conductive blade rear support bar lower pivot 24B is pivotally connected to the rearward end of right conductive blade 21.
[0072] In this configuration, left and right conductive blades 21 are movably suspended between conductive blade forward support bar 24 and conductive blade rear support bar 24 such that left and right conductive blades 21 pass through the spaced gaps in between left and right first magnets housings 22A and second magnets housings 22B respectively. However, conductive blades 21 do not touch first magnets housings 22A, second magnets housings 22B, or magnets 23, but rather conductive blades 21 occupy a portion of the space in between first magnets housings 22A and second magnets housings 22B with a small space remaining between the outer vertical faces of magnetic blades 21 and the magnets housed in first magnets housings 22A and a small space remaining between the inner vertical faces of magnetic blades 21 and the magnets housed in second magnets housings 22B.
[0073] This configuration of the magnets 23 and the left and right conductive blades 21 creates a magnetic field of resistance in the space between the magnets 23 and the left and right conductive blades 21 as left and right wheel carriages assembly 30 moves along left and right wheel carriages tracks 31 respectively. The amount of magnetic resistance created by magnetic resistance mechanism 20 can be adjusted with a resistance adjustment assembly 40. The components and function of resistance adjustment assembly 40 are best illustrated in
[0074] Resistance adjustment assembly 40 is configured as follows. A resistance adjustment lever pivot axle 42 is rigidly mounted proximal to the forward ends of left wheel carriage track 31 and right wheel carriage track 31 in a transverse configuration. A central portion of a resistance adjustment lever 41 is pivotally mounted on resistance adjustment lever pivot axle 42 such that resistance adjustment lever 41 can be pivoted forward and rearward about resistance adjustment lever pivot axle 42 on machine 1. A handle 48 is rigidly connected to the upper end of resistance adjustment lever 41. The lower end of resistance adjustment lever 41 comprises a resistance adjustment lever linkage bar pivot 46. A spring loaded detent pin 44 is mounted on resistance adjustment lever 41 at a perpendicular angle central to resistance adjustment lever linkage bar pivot 46 and resistance adjustment lever pivot axle 42. A mostly triangular shaped locking plate 43 is rigidly connected to resistance adjustment lever pivot axle 42 adjacent to resistance adjustment lever 41 such that detent pin 44 is perpendicular to locking plate 43 and detent pin 44 engages locking plate 43. A series of detent pin receiver holes 45 pass through the lower portion of locking plate 43 and detent pin receiver holes 45 are in alignment with the swinging path of detent pin 44 such that detent pin 44 will engage with a detent pin receiver hole 45 to secure a position of resistance adjustment lever 41 during operation of machine 1. The first end of a resistance adjustment lever linkage bar 47 is pivotally connected to resistance adjustment lever linkage bar pivot 46 and the second end of resistance adjustment lever linkage bar 47 is pivotally connected to conductive blade forward support bar lower pivot 24B.
[0075] To operate adjustment resistance assembly 40 in a first direction so as to adjust and increase the amount of magnetic resistance that magnetic resistance mechanism 20 applies to the exercise motion of machine 1, a user U would grip resistance adjustment lever handle 48 while resistance adjustment lever 41 is in a first position and urge resistance adjustment lever handle 48 forward to move resistance adjustment lever 41 away from the first position. This would cause resistance adjustment lever 41 to pivot about resistance adjustment lever pivot axle 42 and cause detent pin 44 to disengage from a detent pin receiver hole 45 as the lower portion of resistance adjustment lever 41 swings rearward. This motion will cause the first end of resistance adjustment lever linkage bar 47 to pivot about resistance adjustment lever linkage bar pivot 46 as resistance adjustment lever linkage bar 47 moves rearward and the second end of resistance adjustment lever linkage bar 47 pivots about conductive blade forward support bar lower pivot 24B as conductive blade forward support bar 24 swings rearward and pivots about conductive blade forward support bar upper pivot 24A. This will cause the forward ends of left and right conductive blades 21 to pivot about conductive blade forward support bar lower pivot 24B as left and right conductive blades 21 swing rearward and upward. This causes the rearward ends of left and right conductive blades 21 to pivot about conductive blade rear support bar lower pivot 25B as conductive blade rear support bar 25 pivots about conductive blade rear support bar upper pivot 25A such that conductive blade rear support bar 25 swings rearward. When the adjustment lever 41 is moved to a second position to increase the amount of magnetic resistance, detent pin 44 will engage with a detent pin receiver hole 45 to secure resistance adjustment lever in the second position.
[0076] To operate adjustment resistance assembly 40 in a second direction so as to adjust and decrease the amount of magnetic resistance that magnetic resistance mechanism 20 applies to the exercise motion of machine 1, a user U would grip resistance adjustment lever handle 48 while resistance adjustment lever 41 is in a first position and urge resistance adjustment lever handle 48 rearward to move resistance adjustment lever 41 away from the first position. This would cause resistance adjustment lever 41 to pivot about resistance adjustment lever pivot axle 42 and cause detent pin 44 to disengage from a detent pin receiver hole 45 as the lower portion of resistance adjustment lever 41 swings forward. This motion will cause the first end of resistance adjustment lever linkage bar 47 to pivot about resistance adjustment lever linkage bar pivot 46 as resistance adjustment lever linkage bar 47 moves forward and the second end of resistance adjustment lever linkage bar 47 pivots about conductive blade forward support bar lower pivot 24B as conductive blade forward support bar 24 swings forward and pivots about conductive blade forward support bar upper pivot 24A. This will cause the forward ends of left and right conductive blades 21 to pivot about conductive blade forward support bar lower pivot 24B as left and right conductive blades 21 swing forward and downward. This causes the rearward ends of left and right conductive blades 21 to pivot about conductive blade rear support bar lower pivot 25B as conductive blade rear support bar 25 pivots about conductive blade rear support bar upper pivot 25A such that conductive blade rear support bar 25 swings forward. When the adjustment lever 41 is moved to a second position to decrease the amount of magnetic resistance, detent pin 44 will engage with a detent pin receiver hole 45 to secure resistance adjustment lever in the second position. As illustrated in
[0077]
[0078] Friction resistance mechanism 60 comprises left and right friction resistance pads 63 each with a top side and a bottom side and the top sides of left and right friction resistance pads 63 are mounted to the bottom sides of left and right wheel carriage housings 32, respectively. Friction pads 63 are represented as rectangular shaped components constructed of durable and flexible material that can be compressed, such as wool or felt by way of example. The bottom sides of left and right friction pads 63 engage left and right friction resistance plates 61, respectively. Left and right friction resistance plates 61 are mostly rectangular arc shaped plates capable of withstanding long term frictional engagement without incurring excessive wear. Hardened steel would be the most common material used for this application. In length, friction resistance plates 61 span the travel distance of the forward and rearward motions of wheel carriage assemblies 30. The width of each friction resistance plate 61 is generally equal to the width of each friction pad 63. The arc shape of friction resistance plates 61 matches the arc shape of wheel carriage tracks 31. A portion of the forward and rearward ends of each friction resistance plate 61 is bent at an approximate right angle to form a forward and rearward connection point for mounting left and right friction resistance plates 61 to machine 1. The forward ends of left and right friction resistance plate 61 are pivotally connected to the left and right sides of the lower end of friction resistance plate forward support bar 64, respectively, and the rearward ends of left and right friction resistance plates 61 are pivotally connected to the left and right sides of the lower end of friction resistance plate rear support bar 64, respectively. When mounted to machine 1, left and right friction resistance plates 61 are in mirrored alignment to each other and parallel to wheel carriage tracks 31. During operation of machine 1, as wheel carriage assemblies 30 move along wheel carriage tracks 31, the bottom sides of left and right friction pads 63 engage and slide along left and right friction resistance plates 61, respectively, creating a friction resistance to the movement of wheel carriage assemblies 30 and machine 1.
[0079]
[0080]
[0081] During operation of machine 1, the cooperation of the components of fan blades resistance mechanism 80 are as follows. When left lever 71, left handle 72, and left lever mounting tube 73 pivot in a first direction with left lever pivot 74, which causes left drive belt sprocket 85 to move in a first direction causing left drive belt 84 to move in a first direction, which causes left clutch bearing sprocket 83 to move in a first direction to engage and propel the rotation of fan blades axle 81 and fan blades 87. Concurrent to this motion, when right lever 71, right handle 72, and right lever mounting tube 73 pivot in a second direction with right lever pivot 74, which causes right drive belt sprocket 85 to move in a second direction causing right drive belt 84 to move in a second direction, which causes right clutch bearing sprocket 83 to move in a second direction and disengaging from fan blades axle 81 to rotate freely on fan blades axle 81.
[0082] When the motions of left and right levers 71, left and right handles 72, left and right lever mounting tubes 73, and left and right lever pivots 74, respectively, are reversed, left lever 71, left handle 72, and left lever mounting tube 73 pivot in a second direction with left pivot lever 74, which causes left drive belt sprocket 85 to move in a second direction causing left drive belt 84 to move in a second direction, which causes left clutch bearing sprocket 83 to move in a second direction and disengage from fan blades axle 81 to rotate freely on fan blades axle 81. Concurrent to this motion, when right lever 71, right handle 72, and right lever mounting tube 73 pivot in a first direction with right lever pivot 74, which causes right drive belt sprocket 85 to move in a first direction causing right drive belt 84 to move in a first direction, which causes right clutch bearing sprocket 83 to move in a first direction to engage and propel the rotation of fan blades axle 81 and fan blades 87.
[0083] A higher velocity of the exercise motion of machine 1 increases the resistance created by fan blades resistance mechanism 80. A lower velocity of the exercise motion of machine 1 decreases the resistance created by fan blades resistance mechanism 80.
[0084] Now referring to
[0085] As illustrated in
[0086]
[0087]
[0088]
[0089] Left and right clutch bearing sprockets 183 are rotatably mounted on fan blades axle 181 outward of fan blades 187. Clutch bearing sprockets 183 comprise an inner clutch bearing that freely rotates on fan blades axle 181 in a first direction and engages and propels fan blades axle 181 in the opposite second direction. A sprocket for accepting a flexible drive member such as a belt or chain is mounted on the outside of clutch bearing sprocket 183. Left and right drive belt sprockets 185 are mounted on the inward portions of left and right linkage connection hub pivots 191, respectively, such that the pivoting motions of left and right levers 171, left and right handles 172, and left and right linkage connection hub pivots 191 as previously described herein moves left and right drive belt sprockets 185 respectively in first and second directions. The second ends of left and right second leg supports linkage bars 117 are rigidly connected to the lower portion of left and right linkage connection hub pivots 191, respectively, to also urge the pivoting motions of left and right linkage connection hub pivots 191.
[0090] Left and right second leg supports linkage bars 117 are operative components of leg supports assembly 110 as previously described herein. Left and right drive belt sprockets 185 are operatively connected to clutch bearing sprockets 183 with left and right drive belts 184, respectively. Other flexible components could be substituted for drive belts 184 such as chains, cables, ropes, and the like. Drive belt sprockets 185 are much larger in diameter than clutch bearing sprockets 183 in order to achieve a gear reduction ratio such that fan blades axle 181 and fan blades 187 will rotate at a higher speed than the speed of the pivoting motion of levers 171, handles 172, and linkage connection hub pivots 191. This increased speed of the rotation of fan blades 187 will displace a greater volume of air and create a greater amount of resistance to the exercise motion of machine 100.
[0091] During operation of machine 100, the cooperation of the components of fan blades resistance mechanism 180 are as follows. When left lever 171, left handle 172, and left second leg support linkage bar 117 pivot in a first direction with left linkage connection hub pivot 191, this causes left drive belt sprocket 185 to move in a first direction causing left drive belt 184 to move in a first direction, which causes left clutch bearing sprocket 183 to move in a first direction to engage and propel the rotation of fan blades axle 181 and fan blades 187. Concurrent to this motion, when right lever 171, right handle 172, and second leg support linkage bar 117 pivot in a second direction with right linkage connection hub pivot 191, this causes right drive belt sprocket 185 to move in a second direction causing right drive belt 184 to move in a second direction, which causes right clutch bearing sprocket 183 to move in a second direction and disengaging from fan blades axle 181 to rotate freely on fan blades axle 181.
[0092] When the motions of left and right levers 171, left and right handles 172, left and right second leg support linkage bar 117, and left and right linkage connection hub pivots 191, respectively, are reversed, left lever 71, left handle 72, and left second leg support linkage bar 117 pivot in a second direction with left linkage connection hub pivot 191, which causes left drive belt sprocket 185 to move in a second direction causing left drive belt 184 to move in a second direction, which causes left clutch bearing sprocket 183 to move in a second direction and disengage from fan blades axle 181 to rotate freely on fan blades axle 181. Concurrent to this motion, when right lever 171, right handle 172, and second leg support linkage bar 117 pivot in a first direction with right linkage connection hub pivot 191, this causes right drive belt sprocket 185 to move in a first direction causing right drive belt 184 to move in a first direction, which causes right clutch bearing sprocket 183 to move in a first direction to engage and propel the rotation of fan blades axle 181 and fan blades 187.
[0093] A higher velocity of the exercise motion of machine 100 increases the resistance created by fan blades resistance mechanism 180. A lower velocity of the exercise motion of machine 100 decreases the resistance created by fan blades resistance mechanism 180. Now referring to
[0094] Now referring to
[0095] As illustrated in
[0096]
[0097]
[0098]
[0099] A higher velocity of the exercise motion of machine 200 increases the resistance created by fan blades resistance mechanism 280. A lower velocity of the exercise motion of machine 200 decreases the resistance created by fan blades resistance mechanism 280.
[0100] While the invention has been described in connection with certain preferred embodiments, it is not intended to limit the spirit or scope of the invention to the particular forms set forth, but is intended to cover such alternatives, modifications, and equivalents as may be included within the true spirit and scope of the invention as defined by the appended claims.
REFERENCE NUMERALS
[0101] U User [0102] 1 Machine [0103] 5 Rear support frame [0104] 6 Forward support frame [0105] 10 Leg supports assembly [0106] 11 Shin pad [0107] 12 Shin pad support tube [0108] 13 Foot platform support tube [0109] 14 Foot platform [0110] 15 First leg support linkage bar [0111] 16 Leg support linkage bar pivot [0112] 17 Second leg support linkage bar [0113] 20 Magnetic resistance mechanism [0114] 21 Conductive blade [0115] 22A First magnets housing [0116] 22B Second magnets housing [0117] 23 Magnet [0118] 24 Conductive blades forward support bar [0119] 24A Conductive blades forward support bar upper pivot [0120] 24B Conductive blades forward support bar lower pivot [0121] 25 Conductive blades rear support bar [0122] 25A Conductive blades rear support bar upper pivot [0123] 25B Conductive blades rear support bar lower pivot [0124] 26 Conductive blades forward support bar mounting bracket [0125] 27 Conductive blades rear support bar mounting bracket [0126] 30 Wheel carriages assembly [0127] 31 Wheel carriage track [0128] 32 Wheel carriage housing [0129] 33 Upper carriage wheel [0130] 34 Lower carriage wheel [0131] 35 Upper carriage wheel axle [0132] 40 Resistance adjustment assembly [0133] 41 Resistance adjustment lever [0134] 42 Resistance adjustment lever pivot axle [0135] 43 Locking plate [0136] 44 Detent pin [0137] 45 Detent pin receiver hole [0138] 46 Resistance adjustment lever linkage bar pivot [0139] 47 Resistance adjustment lever linkage bar [0140] 48 Resistance adjustment lever handle [0141] 50 Rocker arm assembly [0142] 51 Rocker arm [0143] 52 Rocker arm support tube [0144] 53 Rocker arm linkage bar [0145] 54 Rocker arm left end linkage pivot [0146] 55 Rocker arm right end linkage pivot [0147] 56 Rocker arm pivot axle [0148] 60 Friction resistance assembly [0149] 61 Friction resistance plate [0150] 63 Friction resistance pads [0151] 64 Friction resistance plate forward support bar [0152] 65 Friction resistance plate rear support bar [0153] 70 Arm supports assembly [0154] 71 Lever [0155] 72 Handle [0156] 73 Lever mounting tube [0157] 74 Lever pivot [0158] 75 Lever linkage bar [0159] 76 Lever pivot axle [0160] 77 Lever linkage bar pivot [0161] 80 Fan blades resistance mechanism [0162] 81 Fan blades axle [0163] 83 Clutch bearing sprocket [0164] 84 Drive belt [0165] 85 Drive belt sprocket [0166] 86 Axle bearings [0167] 87 Fan Blade [0168] 90 Linkages connection hubs assembly [0169] 91 Linkages connection hub pivot [0170] 92 Linkages connection hub flange [0171] 93 Linkages connection hub flange rear pivot [0172] 94 Linkages connection hub flange forward pivot [0173] 100 Machine [0174] 105 Rear support frame [0175] 106 Forward support frame [0176] 110 Leg supports assembly [0177] 117 Second leg support linkage bar [0178] 120 Magnetic resistance mechanism [0179] 130 Wheel carriages assembly [0180] 140 Resistance adjustment assembly [0181] 150 Rocker arm assembly [0182] 160 Friction resistance mechanism [0183] 170 Arm supports assembly [0184] 171 Lever [0185] 172 Handle [0186] 180 Fan blades resistance mechanism [0187] 181 Fan blades axle [0188] 183 Clutch bearing sprocket [0189] 184 Drive belt [0190] 185 Drive belt sprocket [0191] 186 Axle bearings [0192] 187 Fan Blade [0193] 190 Linkage connection hub assembly [0194] 191 Linkage connection hub pivot [0195] 200 Machine [0196] 205 Rear support frame [0197] 206 Forward support frame [0198] 210 Leg supports assembly [0199] 220 Magnetic resistance mechanism [0200] 240 Resistance adjustment assembly [0201] 250 Rocker arm assembly [0202] 252 Rocker arm support tube [0203] 260 Friction resistance mechanism [0204] 270 Arm supports assembly [0205] 272 Stationary handle [0206] 273 Stationary handle support tube [0207] 280 Flywheel resistance mechanism [0208] 290 Linkage connection hub assembly