Machine for Performance of Front Squat Exercises
A weight horn is supported on a bearing housing that slides along two vertical guide rails. The upper and lower ends of the vertical guide rails are connected to tubular sleeves that slide along horizontal guide rails, which are enclosed by a rectangular frame. A roller pad extends from the opposite side of the weight horn, perpendicular to the horizontal guide rails and over a platform containing an adjustable seat, calf support and foot pads. The weight lifter performs the movement by standing upright with his/her legs positioned between the calf support and foot pads, wrapping his/her arms around the roller pad, and squatting onto the seat. The combination of vertical and horizontal guide rails allows the weighted roller pad to travel a curved path downward and backward as the lifter descends into the squat position. The dual rail configuration for both the vertical and horizontal guide rails prevents jamming of the mechanisms if the weight lifter twists his/her torso during the squat.
The present invention generally relates to the field of exercise equipment, and more particularly to weighted exercise machines.
BACKGROUND OF THE INVENTIONIn doing a conventional front squat movement, a barbell is typically supported against the chest/shoulder area of the front torso. As currently performed, the front squat movement demands that the weight lifter manually grip and hold the barbell against his/her body, typically in the cross-armed fashion, as depicted in U.S. Pat. No. 6,135,932. While a shoulder harness, such as that described in U.S. Pat. No. 5,472,398, can also be used, it still requires that the barbell be manually gripped. In both cases, a slip of the lifter's hands can cause him/her to lose control of the barbell, resulting in potential injury. A principal objective of the present invention is to provide a safer, more efficient means for doing front squat exercises.
SUMMARY OF THE INVENTIONIn the present invention, a weight horn is supported on a bearing housing that slides along two vertical guide rails. The upper and lower ends of the vertical guide rails are connected to tubular sleeves that slide along horizontal guide rails, which are enclosed by a rectangular frame. A roller pad extends from the opposite side of the weight horn, perpendicular to the horizontal guide rails and over a platform containing an adjustable seat, calf support and foot restraints. The weight lifter performs the movement by standing upright with his/her legs positioned between the calf support and foot pads, wrapping his/her arms around the roller pad, and squatting onto the seat.
The combination of vertical and horizontal guide rails in the present invention allows the weighted roller pad to travel a curved path downward and backward as the weight lifter descends into the squat position. As shown in
The foregoing summarizes the general design features of the present invention. In the following sections, specific embodiments of the present invention will be described in some detail. These specific embodiments are intended to demonstrate the feasibility of implementing the present invention in accordance with the general design features discussed above. Therefore, the detailed descriptions of these embodiments are offered for illustrative and exemplary purposes only, and they are not intended to limit the scope either of the foregoing summary description or of the claims which follow.
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The upright section 11 comprises a rigid, substantially rectangular, upright frame 17, comprising a pair of parallel, generally vertical stanchions 18 19, consisting of a front stanchion 18 and a rear stanchion 19, which are spaced apart by a pair of parallel, generally horizontal cross braces 20 21, consisting of an upper cross brace 20 and a lower cross brace 21. The stanchions 18 19 and the cross braces 20 21 comprising the upright frame 17 are preferably tubular steel. As depicted in
The upright section 11 also comprises a dynamic weight carriage assembly 23, comprising a pair of parallel, rigid, generally horizontal, transverse guide rods 24 25, consisting of a top transverse guide rod 24 and a bottom transverse guide rod 25. The transverse guide rods 24 25 are preferably stainless steel, and they can extend from the front stanchion 18 to the rear stanchion 19. Alternatively, as depicted in
Slidably mounted on the transverse rods 24 25 are two sliding members 26 27, consisting of a top sliding member 26, mounted to the top transverse guide rod 24, and a bottom sliding member 27, mounted to the bottom transverse guide rod 25. The two sliding members 26 27 are dynamically coupled together by two parallel, rigid, vertical guide rods 28. The vertical guide rods 28 are preferably stainless steel, and they synchronize the sliding movement of the sliding members 26 27 along the transverse guide rods 24 25, so as to prevent relative uneven movement of the sliding members 26 27, which would cause them to bind on the transverse guide rods 24 25.
The dynamic weight carriage assembly 23 also comprises a weight housing 29, comprising a pair of parallel, generally vertical, guide bearing sleeves 30 31, consisting of a front guide bearing sleeve 30 and a rear guide bearing sleeve 31. The guide bearing sleeves 30 31 are slidably mounted on the vertical guide rods 28, which dynamically couple the guide bearing sleeves 30 31 to the sliding members 26 27, so as to synchronize the movement of the guide bearing sleeves 30 31 along the vertical guide rods 28. This coupled synchronization prevents uneven relative movement of the guide bearing sleeves 30 31, which would cause them to bind on the vertical guide rods 28.
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Another alternative configuration of the weight handling means 35, illustrated in
An exemplary alternative weight racking means 56 is depicted in
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Although the preferred embodiment of the present invention has been disclosed for illustrative purposes, those skilled in the art will appreciate that many additions, modifications and substitutions are possible, without departing from the scope and spirit of the present invention as defined by the accompanying claims.
Claims
1. An exercise machine, comprising:
- an upright section, having an interior side and an exterior side, and a base section, having an inner base side and an outer base side;
- wherein the upright section comprises a rigid, substantially rectangular, upright frame, comprising a pair of parallel, generally vertical, stanchions, consisting of a front stanchion and a rear stanchion, and wherein the stanchions are spaced apart by a pair of parallel, generally horizontal, cross braces, consisting of an upper cross brace and a lower cross brace, and wherein the lower cross brace connects the interior side of the upright section to the inner base side of the base section at a substantially right angle;
- wherein the upright section further comprises a dynamic weight carriage assembly, comprising a pair of parallel, rigid, generally horizontal, transverse guide rods, consisting of a top transverse guide rod and a bottom transverse guide rod, and wherein each of the transverse guide rods extends from the front stanchion to the rear stanchion, or to a generally vertical medial beam between the front stanchion and the rear stanchion, and wherein a sliding member is slidably mounted on each of the transverse guide rods, and wherein the sliding members consist of a top sliding member, which is slidably mounted on the top transverse guide rod, and a bottom sliding member, which is slidably mounted on the bottom transverse guide rod, and wherein the sliding members are dynamically coupled together by a pair of parallel, rigid, generally vertical, vertical guide rods, such that the sliding members are configured for a generally horizontal, coupled horizontal sliding movement along the transverse guide rods, and such that the coupled horizontal sliding movement of the sliding members is synchronized, so as to prevent uneven movement of the top sliding member relative to the bottom sliding member, thereby preventing binding of the sliding members on the transverse guide rods;
- wherein the dynamic weight carriage assembly further comprises a weight housing, comprising a pair of parallel, generally vertical, guide bearing sleeves, consisting of a front guide bearing sleeve and a rear guide bearing sleeve, and wherein the guide bearing sleeves are slidably mounted on the vertical guide rods, and wherein the guide bearing sleeves are dynamically coupled by the vertical guide rods to the sliding members of the dynamic weight carriage assembly, such that the guide bearing sleeves are configured for a generally vertical, coupled vertical sliding movement along the vertical guide rods, and such that the coupled vertical sliding movement of the guide bearing sleeves is synchronized, so as to prevent uneven movement of the front guide bearing sleeve relative to the rear guide bearing sleeve, thereby preventing binding of the guide bearing sleeves on the vertical guide rods;
- wherein the weight housing further comprises an exterior housing side, facing the exterior side of the upright section, and an interior housing side, facing the interior side of the upright section, and wherein a weight bearing means extends generally horizontally from the exterior housing side, substantially perpendicular to the upright section, and wherein a weight handling means extends generally horizontally from the interior housing side, substantially perpendicular to the upright section, and wherein a weight racking means extends from the interior housing side and cooperates with multiple racking pegs located on the front stanchion or on a generally vertical racking beam attached between the top sliding member and the bottom sliding member; and
- wherein the base section comprises a generally horizontal, planar base frame or base platform, within which or on which a user of the exercise machine can stand and squat while grasping the weight handling means, so as to perform a front squat exercise.
2. The exercise machine according to claim 1, wherein the weight handling means comprises a substantially cylindrical weight bar, having an inner bar side, which transitions into the weight bearing means on the exterior housing side, and having an outer bar side, which extends from the inner bar side to a substantially circular weight bar end, and wherein the outer bar side comprises a padded bar segment that is enclosed by a resilient padding sleeve, having two padding sleeve ends consisting of an inner padding sleeve end and an outer padding sleeve end.
3. The exercise machine according to claim 2, wherein the padding sleeve is coaxially rotatable about the outer bar side.
4. The exercise machine according to claim 3, wherein the weight handling means further comprises a generally horizontal gripping bar, having a central gripping portion with one or more substantially arcuate segments, wherein the gripping bar extends generally parallel to the weight bar between the inner padding sleeve end and the outer padding sleeve end, and wherein the gripping bar is axially offset from the weight bar by a pair of offset arms, which are orthogonally and rotatably connected to the padding sleeve ends.
5. The exercise machine according to claim 3, wherein the outer bar side of the weight bar is axially offset from the inner bar side of the weight bar by a linkage arm, which orthogonally and rotatably connects the inner bar side to the outer bar side.
6. The exercise machine according to claim 4, wherein the outer bar side of the weight bar is axially offset from the inner bar side of the weight bar by a linkage arm, which orthogonally and rotatably connects the inner bar side to the outer bar side.
7. The exercise machine according to claim 2, wherein the weight bearing means comprises a substantially cylindrical support bar, which conjugately engages one or more weight plates through an axial bore in each of the weight plates.
8. The exercise machine according to claim 3, wherein the weight bearing means comprises a substantially cylindrical support bar, which conjugately engages one or more weight plates through an axial bore in each of the weight plates.
9. The exercise machine according to claim 4, wherein the weight bearing means comprises a substantially cylindrical support bar, which conjugately engages one or more weight plates through an axial bore in each of the weight plates.
10. The exercise machine according to claim 5, wherein the weight bearing means comprises a substantially cylindrical support bar, which conjugately engages one or more weight plates through an axial bore in each of the weight plates.
11. The exercise machine according to claim 6, wherein the weight bearing means comprises a substantially cylindrical support bar, which conjugately engages one or more weight plates through an axial bore in each of the weight plates.
12. The exercise machine according to any one of claims 1 through 11, wherein the base section further comprises an adjustable, generally horizontal seat, an adjustable, generally vertical calf support, and two adjustable, general horizontal foot restraints, such that the user of the exercise machine can stand with two user feet engaging the foot restraints and with two user calves engaging the calf support, from which position the user can squat down onto the seat while grasping the weight handling means, so as to perform the front squat exercise.
Type: Application
Filed: Feb 15, 2018
Publication Date: Aug 15, 2019
Inventor: Steve Tylee (Chester, NJ)
Application Number: 15/898,011