The present invention relates to an exercise apparatus, and more particularly to an abdominal muscle exercise apparatus with adjustable resistance.
Abdominal exercise devices are known in the art. For example, U.S. patent application publication 2007/0027008 to Levinson et al. describes an abdominal exercise device including an upper abdominal lever member a lower abdominal lever member connected by with spring-biased resistance hubs, wherein operation of the lever members when rotated about the resistance hubs provides a scissor-like movement of respective upper and lower lever members connected to the resistance hub. However, such devices are very limited in the variety of exercises it permits, since the lever members are singular members. Also, while Levinson does allude to interchangeable resistance hubs pairs of varying resistance or tension, the apparatus must be disassembled and reassembled to effect each change of hubs and does not allow for a facile change of resistance during an exercise routine. Additionally, in such an apparatus the components required to change tension can be easily lost or misplaced.
In another example U.S. Pat. No. 6,080,090 to Taylor et al. describes a folding portable exercise apparatus having a single padded U-bar and a single padded lap bar, wherein two pairs of length-adjustable telescoping rods connect the bars and each pair of telescoping rods is joined by a coil spring. While U.S. Pat. No. 7,341,547 to Liao describes an exercise apparatus having a base, a head member, two first mounting members, and two handles. The base includes a main portion, and two arm portions extending from opposite ends of the main portion. Such apparatuses are very limited in that they each fail to provide a means for a user to conveniently vary resistance and each design permits only limited exercise options.
Therefore, the abdominal fitness devices known in the art have the following drawbacks that and required improvements.
Since the resistance of such devices is fixed or not easily adjustable without disassembly, a user cannot make appropriate rapid adjustments of resistance during a training routine or for different training regimes. Furthermore, the devices having a single thigh leaning bar are designed for a user to lift both legs simultaneously thereby limiting the variety of exercises that can be performed.
Therefore, a need exists for an abdominal fitness apparatus that allows users to make rapid adjustments to enable a variety of training modes. A further need exists for a portable apparatus that provides easily adjustable resistance without disassembly, such that users may rapidly and easily vary resistance during a training regime. A still further need exists for an apparatus that permits exercising each leg individually as well each side of the abdominal area individually.
The present invention address these as well as other needs.
A typical exercise apparatus of the present invention comprises a U-bar having a first U-bar end section comprising a first U-bar hinge component having a first U-bar hinge component internal surface and a first U-bar hinge component external surface, a second U-bar end section comprising a second U-bar hinge component having a second U-bar hinge component internal surface and a second U-bar hinge component external surface, wherein each U-bar hinge component is configured to define a U-bar hinge component pivot pin hole extending there through, and a U-bar median section wherein the first U-bar end section, the second U-bar end section and the U-bar median section are essentially coplanar and wherein each U-bar end section is perpendicular to the U-bar median section. The apparatus further comprises two mirror-imaged L-bars each having an L-bar proximal section and an L-bar distal section, wherein the end of each L-bar proximal section comprises an L-bar hinge component having an L-bar hinge component internal surface and an L-bar hinge component external surface, wherein each L-bar hinge component internal surface is mated to one of the corresponding U-bar hinge component internal surfaces and wherein each L-bar hinge component is configured to define an L-bar hinge component pivot pin hole extending there through. A pivot pin extends through each of the U-bar pivot pin holes and each of the corresponding L-bar pivot pin holes to provide a first rotatable hinge assembly and a second rotatable hinge assembly such that each L-bar is independently rotatable with respect to the U-bar and wherein each L-bar proximal section rotates in a plane parallel to the plane of the first and second U-bar sections. Each rotatable hinge assembly further comprises a torsion spring and a torsion spring tension setting means configured to vary tension of the torsion spring and to secure the torsion spring at two or more distinct tensions settings without disassembly of the apparatus thus providing two or more distinct desired levels of resistance to the relative rotation of each L-bar independently with respect to the U-bar. Furthermore, such a tension setting means allows for the quick and easy variation the resistance to rotation of each L-bar according to the requirements of the user.
In certain preferred embodiments each torsion spring comprises a torsion spring first hook-shaped end and a torsion spring second hook-shaped end, wherein approximately half of the body of the torsion spring comprising the first hook-shaped end is disposed within an L-bar hinge component torsion spring embedding groove that extends into the L-bar hinge component internal surface and which is circumferentially disposed about the pivot pin hole and wherein the torsion spring second hook-shaped end is embedded and retained in an L-bar hinge component torsion spring retainer notch that extends into the L-bar hinge component internal surface and which is contiguous with the L-bar hinge component torsion spring embedding groove. While the approximately half of the body of the torsion spring comprising the second hook-shaped end is disposed within a U-bar hinge component embedding groove circumferentially disposed about the pivot pin hole extending into the mating U-bar hinge component internal surface and extending towards the periphery of the U-bar hinge component, wherein the U-bar hinge component embedding grove is configured to defines a U-bar hinge component embedding groove rim overhanging the U-bar hinge component embedding groove around the entire circumference. The torsion spring second hook-shaped end is disposed through a torsion spring hook access notch that extends into the U-bar hinge component internal surface and which is contiguous with the U-bar hinge component embedding groove. In such embodiments the torsion spring tension setting means comprises a tension adjustment knob springedly coupled to, and rotatable about, the pivot pin distal end, wherein the tension adjustment knob comprises a tension adjustment knob pin disposed parallel to the axis of the pivot pin. The first and second U-bar hinge components are each configured to define two or more adjustment knob pin holes extending though the U-bar hinge components embedding grooves parallel to the longitudinal axis of, and arranged circumferentially about, the pivot pin and dimensioned to accept tension the adjustment knob pin to be extended there through; wherein such an arrangement enables rotation of the tension adjustment knob as well movement of the tension adjustment knob along the pivot pin longitudinal axis to enable insertion of the adjustment knob pin into a selected one of the two or more adjustment knob pin holes, so that the adjustment knob pin engages the torsion spring second hook-shaped end, thereby setting the level of resistance to the relative rotation of each L-bar independently with respect to the U-bar.
In certain preferred embodiments each hinge assembly is provided with an operation setting means that functions to control the allowable independent rotation of each L-bar relative to the first and second U-bar sections. In certain preferred embodiments the operation setting means comprise an operation setting pin having a proximal end and a distal end and an operation setting pin knob attached to the operation setting pin proximal end, wherein the operation setting pin is disposed within an operation setting pin hole extending through each U-bar hinge component parallel to the longitudinal axis of the pivot pin, and wherein the internal surface of each mating L-bar hinge component is configured to define an operation setting pin hole and an arc shaped operation setting pin slot positioned circumferentially about the pivot pin hole and proximate to the operation setting second pin hole; wherein both the operation setting pin holes and the arc shaped operation setting pin slots are dimensioned to accommodate the distal end of the operation setting pin. In certain of such embodiments the degree of arc is about 90°.
In certain other preferred embodiments each L-bar is also provided with a cylindrical roller circumferentially disposed about the L-bar distal section near the distal ends of the L-bar. Such a roller is freely rotatable about the L-bar distal section and functions to cushion the contact between the apparatus and the thighs or other body parts of the user. In certain preferred embodiments the rollers comprise a soft resilient material such as rubber, foam rubber, soft plastic, textile or other suitable material.
In a typical application a user assumes a starting position by sitting in a chair or on a bench and leaning the chest against the median section of the U-bar while the thighs contact the cylindrical rollers of the L-bars. The user then applies downward pressure with the chest to overcome the resistance of the torsion spring and rotate the U-bar median section toward the thighs to exercise the hip flexors and the lower abdominal muscles. Alternatively, a user can assume the same a starting position and then lift the thigh to overcome the resistance of the torsion spring and rotate the U-bar median section towards the chest to perform the thigh muscle training. Such a thigh training exercise can be performed by moving each thigh alternately or in unison. Furthermore, a different resistance level can be set for each thigh.
Also depicted in
By this arrangement, when the rotatable hinge mechanism is assembled, the torque adjusting knob 80 can be fully depressed such that the torque adjusting knob pin 82 is inserted into and extends through a chosen one of the torque adjusting knob pin holes 100 such that the torsion spring second hook-shaped end 92 is engaged by the torque adjusting knob pin 82 to set a desired resistance level to the torsion spring 90, wherein the torque adjusting knob 80 is retained in this position aided by the arrangement of the pivot pin compression spring 77 and the pivot pin internal rod 76. When the aforementioned components as depicted in
Additionally, the U-bar rotatable hinge component 24B is configured to define an operation setting pin first hole 105 extending through the hinge component 24B and parallel to the longitudinal axis of circular pivot pin hole 40. The operation setting pin first hole 105 is dimensioned to accommodate the shaft of the operation setting pin 112, which has an externally threaded operation proximal end 113 having a thread mated to the an internal thread 111 in an operation setting knob 110. The operation setting pin 112 is configured to define a setting pin collar 115 disposed near the distal end 114 and having a diameter greater than that of the distal end 114 and the proximately threaded shaft.
The L-bar hinge component 37B is further configured to define an operation setting second pin hole 120, which is dimensioned to accommodate the distal end 114 of the operation setting pin 112; and an arc shaped operation setting pin slot 121 positioned circumferentially about the circular pivot pin hole 60 and proximate to the operation setting second pin hole 120; wherein the arc shaped operation setting pin slot 121 is dimensioned to accommodate the distal end 114 of the operation setting pin 112. Also an operation setting pin collar 115 is disposed circumferentially about the operation setting pin 112 near the operation setting pin distal end 114. An operation setting pin compression spring 116 is dimensioned to accommodate the threaded shaft of the operation setting pin 112 disposed there through, while having a diameter greater that of the operation setting pin first hole 105. The compression spring 116 provides a force for pushing the distal end 114 of the operation-setting pin 112 into the operation-setting second pin hole 120 or the operation-setting pin slot 121. By this arrangement, when the rotatable hinge mechanism is assembled, the operation-setting knob 110 can be retracted thereby disengaging the distal end 114 of the setting pin 112 from either the second setting pin hole 120 or the setting pin slot 121; and whereby the operation-setting knob 110 can be depressed to retain the distal end 114 of the setting pin 112 in either the second setting pin hole 120 or within the setting pin slot 121. The arc shaped operation setting pin slot 121 in this depicted embodiment has an arc of approximately 90°, however in other embodiments the arc can range from about 45° to 305°, preferably from 45° to 180° and most preferably from about 75° to 105°.
By use of the operation-setting knobs 110, the U-bar 20 and the L-bars 31A and 31B can be set to an operation or idle mode. In an operation mode, as shown in FIG. 4,
When the two operation-setting knobs 110 are adjusted and pulled outward as shown in
With reference to
When the abdominal fitness machine is not in use, the operation setting knob 110 can be pulled outward permitting the U-bar 20 and the L-bars 31A or 31B to be turned towards one another such that the operation setting second pin hole 120 is aligned precisely with distal end 114 of the operation setting pin 112. When the operation-setting knob 110 is released, the distal end 114 of the operation-setting pin 112 is moved back by the force of the operation setting pin compression spring 116 and embedded into the operation setting second pin hole 120 as depicted in
Certain embodiments of the apparatus are configured such that the L-bar(s) must be disposed at or near (within about 10°) a storage position in order to change the tension setting.
Below are descriptions of several exercises that can be executed by an individual utilizing an apparatus of the present invention.
The lateral abdominal muscles are the muscles used when a person rotates the upper body or leans side-to-side. Technically, the lateral abdominal muscles are more properly referred to as the internal oblique and external oblique muscles, which are often collectively referred to as “the obliques”. For the purposed of the present invention lateral abdominal muscles and obliques have the same meaning.
In summation of the description above, exercise apparatuses of the present invention provide various abdominal fitness and abdomen reduction and other exercises to strengthen other muscles of a user such as muscles of the legs and back. Such exercise apparatuses are compact and allow a user to easily adjust the resistance load foe each side of the apparatus independently for a desired training regime by use of a simple spring torque-adjusting knob.
While the invention has been described with respect to specific embodiments, those skilled in the art with recognize that numerous modifications and variations could be made without departing from the scope and spirit of the invention herein described and set forth in the claims.
Number | Date | Country | Kind |
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100212735 | Jul 2011 | TW | national |
201120248131.3 | Jul 2011 | CN | national |
This application claims priority under 35 U.S.C. §119 to U.S. Provisional Application Ser. No. 61/495,822 filed Jun. 10, 2011; Taiwan Application No. 100212735 filed Jul. 12, 2011; and China Application No. 201120248131.3 filed Jul. 14, 2011; all of which are herein included by way of reference in their entirety.
Number | Date | Country | |
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61495822 | Jun 2011 | US |