Apparatus for Resistance-Based Fitness Training
20170001059 ยท 2017-01-05
Inventors
- Matthew Feinman (New York, NY, US)
- Carl Jonas Peter Schonning (Jacksonville, FL, US)
- Henrik Georg Stahre (Jacksonville, FL, US)
Cpc classification
A63B21/0726
HUMAN NECESSITIES
A63B21/4001
HUMAN NECESSITIES
A63B21/0609
HUMAN NECESSITIES
A63B21/4039
HUMAN NECESSITIES
A63B21/072
HUMAN NECESSITIES
International classification
A63B21/00
HUMAN NECESSITIES
Abstract
An improved resistance-based fitness apparatus is described. This improved resistance-based fitness apparatus may be transformed in multiple temporary yet stable shapes by the user, such that the all or some apparatus subsections may move freely be immobilized in a fixed position or manipulated by the user into various shapes. An improved joint-based connector apparatus is further described herein which may enable the improved resistance-based fitness apparatus described herein to be transformed into multiple temporary yet stable shapes with subsections that are either freely moving, immobilized in a fixed position, or a combination thereof. This improved joint may connect one or more objects while also providing for three-dimensional non-coplanar movement that may be selectively locked or unlocked at a variety of angles by a single activating action (e.g., pressing a button). The improved joint may also be fashioned into useful devices in various other arts beyond the fitness arts.
Claims
1-20. (canceled)
21. An apparatus comprising: a mechanism having two subsections and a subsection joint, wherein the subsection joint is mechanically interposed between the two subsections; wherein the subsection joint further comprises a locking mechanism within the subsection joint in a locked mode and in an unlocked mode at a user selected position; wherein the subsection joint is mechanically interposed between the two subsections when the locking mechanism is in the locked mode and when the locking mechanism is in the unlocked mode; wherein when the locking mechanism is activated in the unlocked mode, the subsection joint is mechanically configured such that each of the two subsections may rotate within three-dimensional space; wherein when the locking mechanism is activated in the locked mode, the subsection joint mechanically prevents the two subsections from substantially deviating from their positions in three-dimensional space each of the two subsections occupied just prior to the activation of the locking mechanism to the locked mode; and wherein the activation of the locking mechanism in the locked mode and the activation of the locking mechanism in the unlocked mode occurs by a single activating action without movement of the two subsections.
22. The apparatus as in claim 21, wherein the subsection joint further comprises a joint casing enclosing the locking mechanism and wherein the actuator is partially protruding from the joint casing mechanically connected to the locking mechanism.
23. The apparatus as in claim 21, wherein the two subsections comprise weight to enable the mechanism to be used in an exercise regimen.
24. The apparatus as in claim 23, wherein the resistance mechanism is transformable from at least two subsections that are freely moving to at least two subsections that are rigid.
25. The apparatus as in claim 24, wherein the two subsections are capable of being locked in a non-coplanar configuration.
26. The apparatus as in claim 23, wherein at least one of the subsections includes an internal hole.
27. The apparatus as in claim 26, wherein the subsections do not slip between each other because the subsections are secured by the subsection joint.
28. The apparatus as in claim 21, wherein the subsection joint that is further capable of being activated in a single action in a locked mode and in an unlocked mode at a plurality of user selected positions.
29. The apparatus as in claim 28 wherein the plurality of user selected positons are not co-planar.
30. An apparatus comprising: a joint mechanism; a joint casing enclosing the joint mechanism; a locking device that selectively engages the joint mechanism via an actuator within the joint casing in a locked mode and in an unlocked mode; wherein the actuator partially protrudes from the joint casing mechanically connected to the locking device; wherein the joint mechanism comprises at least one joint coupling connector, and wherein each of the at least one joint coupling connector is mechanically interposed with a device external to the joint casing when the joint mechanism is in the locked mode and when the joint mechanism is in the unlocked mode; wherein when the joint mechanism is in the unlocked mode, each of the at least one joint coupling connector mechanically allow each device external to the joint casing that is mechanically engaged with each of the at least one joint coupling connector to rotate within three-dimensional space; wherein when the joint mechanism is in the locked mode, each of the at least one joint coupling connector prevent each device external to the joint casing that is mechanically engaged with each of the at least one joint coupling connector from substantially deviating from the position in three-dimensional space each device external to the joint casing that is mechanically engaged with each of the at least one joint coupling connector occupied just prior to the engagement of the joint mechanism in the locked mode; wherein the activation of the locking mechanism in the locked mode and the activation of the locking mechanism in the unlocked mode occurs without movement of the two subsections movement of each device external to the joint casing; and wherein the locking device engages the joint mechanism via the actuator within the joint casing in the locked mode and in the unlocked mode by a single activating action without movement of each device external to the joint casing.
31. The apparatus as in claim 30, wherein the at least one joint coupling connector comprise a first joint coupling connector and a second joint coupling connector and wherein the first joint coupling connector and the second joint coupling connector are in substantially orthogonal positions within the joint mechanism.
32. The apparatus as in claim 31, wherein the rotation of the device external to the joint casing that is mechanically engaged with the first joint coupling connector is not co-planar with the rotation of the device external to the joint casing that is mechanically engaged with the second joint coupling connector.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0022] The accompanying figures, where like reference numerals refer to identical or functionally similar elements throughout the separate views, together with the detailed description below, are incorporated in and form part of the specification, and serve to further illustrate embodiments of concepts that include the claimed invention, and explain various principles and advantages of those embodiments.
[0023] The following numbers correspond to portions of the figures discussed herein.
TABLE-US-00001 10 Improved Linked Oval Chain in Locked, Straight Formation 20 Improved Linked Oval Chain in Locked, Curved Formation 22 Improved Linked Solid Chain in Locked, Straight Formation 24 Improved Linked Square Chain in Locked, Straight Formation 25 Improved Linked Oval Chain in Unlocked Formation 28 Portion of Improved Linked Oval Chain in Unlocked Formation 29 Schematic of Three-Dimensional Diagram Showing Potential Movement of Unlocked Chain 30 Cutaway of Unlocked Sprocket Joint: Front Perspective View 35 Cutaway of Unlocked Sprocket Joint: Rear Perspective View 40 Cutaway of Locked Sprocket Joint: Front Perspective View 45 Cutaway of Locked Sprocket Joint: Rear Perspective View 70 Cutaway of Unlocked Rotator Join with Joint Rotating: Front Perspective View 71 Cutaway of Unlocked Rotator Joint: Front Perspective View 72 Cutaway of Locked Rotator Joint: Front Perspective View 74 Cutaway of Locked Rotator Joint: Rear Perspective View 76 Cutaway of Unlocked Rotator Joint: Rear Perspective View 110 Link A 120 Link B 130 Link C 140 Link D 150 Link E 160 Link F 170 Link G 172 Connector A 174 Connector B 176 Connector C 178 Connector D 180 Connector E 182 Connector F 184 Connector G 186 Connector H 188 Connector I 210 Joint AB 220 Joint BC 230 Joint CD 240 Joint DE 250 Joint EF 260 Joint FG 270 Joint GH 280 Joint HI 310 Sprocket Joint Casing 320 Pusher Lever 1 330 Pusher Lever 2 340 Distal Sprocket 1 Holder 350 Proximal Sprocket 1 Holder 360 Sprocket 1 370 Distal Sprocket 2 Holder 380 Proximal Sprocket 2 Holder 390 Sprocket 2 400 Sprocket Lock 1 410 Sprocket Lock 2 420 Sprocket Locking Button 430 Sprocket Unlocking Button 440 Sprocket Actuator 500 Square Link A 510 Square Link B 520 Square Link C 530 Square Joint AB 540 Square Joint Locking Button AB 550 Square Joint BC 560 Square Joint Locking Button BC 600 Rotator Joint Casing 610 Stopper 2 620 Rotator Joint 2 630 Rotator Actuator 640 Stopper 1 650 Rotator Locking Button 655 Rotator Unlocking Button 660 Rotator Joint 1 1010 Up/Down Z-Axis 1020 Left/Right X-Axis 1030 Front/Back Y-Axis 1040 Pitch Rotation About X-Axis 1050 Roll Rotation About Y-Axis 1060 Yaw Rotation About Z-Axis
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[0039]
[0040] Skilled artisans will appreciate that elements in the figures are illustrated for simplicity and clarity and have not necessarily been drawn to scale. For example, the dimensions of some of the elements in the figures may be exaggerated relative to other elements to help to improve understanding of embodiments of the present invention.
[0041] The apparatus and method components have been represented where appropriate by conventional symbols in the drawings, showing only those specific details that are pertinent to understanding the embodiments of the present invention so as not to obscure the disclosure with details that will be readily apparent to those of ordinary skill in the art having the benefit of the description herein.
DETAILED DESCRIPTION
[0042] The improved resistance-based fitness training apparatus described herein allows for a user to manipulate the shape of the apparatus and lock the apparatus into a variety of fixed positions and to also manipulate the mobility and rigidity of some or all of the apparatus's subsections, such that the apparatus can be transformed from a lax structure with free movement (such as the links of a chain) to an immobile rigid structure (such as that of a barbell) and to also be manipulated in various different shapes (such as that of a square or circle like shape). The joints and joint-based connectors described herein allow for the resistance-based fitness training apparatus to be transformed into multiple temporary yet stable configurations by connecting one or more objects while providing for three-dimensional movement in non-coplanar directions. The joints may be selectively locked or unlocked at a variety of angles in non-co planar directions by a single activating action. In addition, when locked, the joint prevents any radial movement between the two links it joins in addition to preventing slippage between the links. When unlocked, the joint allows radial movement between the links it joins while preventing slippage between the links connected by the joint. The links may be ring-shaped (incorporating an internal hole) or solid-shaped (not incorporating an internal hole).
[0043] Turning to
[0044] The improved link chain shown includes seven links in ring shapes: Link A 110, Link B 120, Link C 130, Link D 140, Link E 150, Link F 160 and Link G 170. The seven links are secured by six joints: Joint AB 210, Joint BC 220, Joint CD 230, Joint DE 240, Joint EF 250 and Joint FG 260. In
[0045] Turning to
[0046] Turning to
[0047] The linked connector may have a greater or fewer number of links and corresponding joints. The linked connector may also optionally be able to add links and joints on an as-needed basis. The linked connector may also optionally add an additional joint to the edge of link that did not previously have a joint (such as Link A 110 or Link G 170) such that the linked connector may form a closed loop shape. The connector may include ring-shaped links as shown in
[0048] Further, since each joint may be locked individually at an angle of the user's choosing or not locked at all, the improved linked connector may be formed into a multitude of shapes, both within a single plane in two dimensions and in three dimensions. The three-dimensional shapes may take non co-planar configurations. Further, since one or more joints may be unlocked and one or more other joint may be locked, part or parts of the improved linked connector may be rigid with another part or parts may be fluid.
[0049] The locking/unlocking mechanisms for the links may be placed anywhere within the joint to allow radial movement among the links without slippage between the links. The connector may include a mechanism to lock or unlock more than one joint at approximately the same time. Or the connector may include a mechanism to lock or unlock some or all joints at approximately the same time. This may be accomplished by mechanical interference within a joint or several joints and may also operate by a connecting cable joining two or more links that creates tension sufficient to lock or unlock each link when activated. Whatever shaped the improved linked connector takes and no matter how may joints are unlocked or locked, the links are secured so that the links will not slip among the connector.
[0050] Turning to
[0051] Turning to
[0052] Turning to
[0053] The unlocked joint is encased within a sprocket joint casing 310. The unlocking button 430 is engaged within the sprocket joint casing 310 and secures the actuator 440 with the sprocket joint casing 310 into an unlocked position. In this unlocked position, the actuator 440 engages with the pusher lever 1 320 so that it does not engage and push sprocket lock 1 400 into sprocket 1 360. Since the rotation of sprocket 1 360 is not impeded by sprocket lock 1 400, distal sprocket 1 holder 340 and proximal sprocket 1 holder 350, which are mechanically connected to sprocket 1 360, are free to rotate about the center of the sprocket 1 360. This freedom of movement allows a joint that is formed from distal sprocket 1 holder 340 and a joint that is formed from proximal sprocket 1 holder 350 to rotate freely without causing slipping between links among the connector. Distal sprocket 1 holder 340 and proximal sprocket 1 holder 350 may be called a rotator. Distal sprocket 1 holder 340 and proximal sprocket 1 holder 350 may also be called a joint coupling connector.
[0054] In the unlocked position, the actuator 440 also engages with the pusher lever 2 330 so that it does not engage and push sprocket lock 2 410 into sprocket 2 390. Since the rotation of sprocket 2 390 is not impeded by sprocket lock 2 410, distal sprocket 2 holder 370 and proximal sprocket 2 holder 380, which are mechanically connected to sprocket 2 390, are free to rotate about the center of the sprocket 2 390. This freedom of movement allows a joint that is formed from distal sprocket 2 holder 370 and a joint that is formed from proximal sprocket 2 holder 380 to rotate freely without causing slipping between links among the connector. The sprocket 1 360 and sprocket 2 390 may be orthogonal to each other. Distal sprocket 2 holder 370 and proximal sprocket 2 holder 380 may be called a rotator. Distal sprocket 2 holder 370 and proximal sprocket 2 holder 380 may also be called a joint coupling connector. Sprocket 1 360 and sprocket 2 390 may each be called a rotator securing mechanism.
[0055] Turning to
[0056] The locked joint is encased within a sprocket joint casing 310. The locking button 440 is engaged within the sprocket joint casing 310 and secures the actuator 440 with the sprocket joint casing 310 into a locked position. In this locked position, the actuator 440 engages with the pusher lever 1 320 so that it engages with and pushes sprocket lock 1 400 into the teeth of sprocket 1 360. When the sprocket lock 1 400 is engaged with the teeth of sprocket 1 360, distal sprocket 1 holder 340 and proximal sprocket 1 holder 350 (which are mechanically connected to sprocket 1 360) cannot rotate about the center of the sprocket 1 360. This means that a joint that is formed from distal sprocket 1 holder 340 and a joint that is formed from proximal sprocket 1 holder 350 cannot rotate freely and will be held in place at an angle depending on where the sprocket lock 1 400 is engaged within the teeth of sprocket 1 360.
[0057] In the locked position, the actuator 440 also engages with the pusher lever 2 330 so that it engages with and pushes sprocket lock 2 410 into the teeth of sprocket 2 390. When the sprocket lock 2 410 is engaged with the teeth of sprocket 2 390, distal sprocket 2 holder 370 and proximal sprocket 2 holder 380 (which are mechanically connected to sprocket 1 390) cannot rotate about the center of the sprocket 2 390. This means that a joint that is formed from distal sprocket 2 holder 370 and a joint that is formed from proximal sprocket 2 holder 380 cannot rotate freely and will be held in place at an angle depending on where the sprocket lock 2 390 is engaged within the teeth of sprocket 2 390. The joint that is formed from the sprocket lock 1 400 and distal sprocket 2 holder 370 and the joint that is formed from sprocket lock 2 410 and proximal sprocket 2 holder 380 may be called a joint mechanism. The pusher lever 1 320, pusher lever 2 330, sprocket lock 1 400 and sprocket lock 2 410 may be called a locking device. Sprocket lock 1 400 and sprocket lock 2 410 may each be called a rotator securing mechanism.
[0058] In addition to using sprocket teeth and a sprocket lock, there are many other ways to create the necessary form of mechanical interference within the joint to lock each link (for example: gears, keyhole/tongue and groove, a common cables running through each link, etc.).
[0059] Turning to
[0060] The joint casing may be made of any material that secure the joints parts within the sprocket joint casing 310. The pusher lever 1 320, pusher lever 2 330, distal sprocket holder 1 holder 340, proximal sprocket 1 holder 350, sprocket 360, distal sprocket holder 2 holder 370, proximal sprocket 2 holder 380, sprocket 2 390, sprocket lock 1 400 and sprocket lock 2 410, locking button 420, unlocking button 430 and actuator 440 may be made of any material that is strong and flexible enough to perform their respective functions. Such material may include, without limitation rubber, plastic, composites, metal or a combination of the foregoing.
[0061] Turning to
[0062] The rotator joint is encased in a rotator joint casing 600. In an unlocked position, the rotator unlocking button 655 is engaged within the rotator joint casing 600 and is mechanically connected to the rotator actuator 630. The position of the rotator actuator 630 when unlocked allow the rotator joint 1 660 and rotator joint 2 620 to each independently rotate about its cylindrical axis (the axis running in the z direction using cylindrical coordinates , , z). This freedom of rotation will allow links that are mechanically connected to rotator joint 1 and rotator joint 2 to have freedom of radial movement within the chain without causing slipping between links among the connector. The combination of rotator joint 1 660; rotator joint 2 620; and rotator actuator 630 may be called a joint mechanism. The rotator actuator 630 may be called a locking device. Rotator joint 1 660 may be called a rotator. Rotator joint 2 620 may be called a rotator.
[0063] Shown in
[0064] The act of locking the rotator joint is accomplished by depressing the rotator locking button 650, which is mechanically engaged to the rotator actuator 630. Within the joint casing 600 are stopper 1 640 and stopper 2 610 that engage with the rotator actuator 630 and ensure that the locking mechanism does not damage the rotator joint 1 660 and rotator joint 2 620. The rotator actuator engages with the rotator joint 1 660 and rotator joint 2 620 so as to impeded their movement about their cylindrical axes. Thus, the links that are mechanically connected to rotator joint 1 660 and rotator joint 2 620 become locked and will not have freedom of radial movement within the chain. As such, rotator joint 1 660 and rotator joint 2 620 may each be called joint coupling connectors. Slipping between links among the connector is also prevented. Stopper 1 640 and stopper 2 610 may each be called a rotator securing mechanism.
[0065] The rotator actuator is also mechanically engaged with the rotator unlocking button 655 so that when the joint is locked, the rotator unlocking button 655 juts out from the rotator casing 600 as the rotator locking button 650 becomes flush with the rotator casing 600.
[0066] Referring back to the 3-dimensional renderings in
[0067] The materials and parts of the improved linked connected may be made of any material that is strong and flexible enough to perform their respective functions. Such material may include, without limitation rubber, plastic, composites, metal or a combination of the foregoing.
[0068] The securing of the joints between the links in the improved linked connector allows it be used for many applications that take advantage of the connector's flexibility. Such applications include fitness where the connector can join one or more objects to be used as a weighted device or other resistive device that may take on different user desired shapes and that may be transformed from a rigid structure to a fluid structure.
[0069] Another application of the connector includes a weighted apparatus with connecting structures used for fitness or other purposes that may take on different shapes when the user manipulates the connecting structures. This transformable structure is capable of taking on all rigid elements, lax elements, or a combination thereof. In addition, this transformable structure may accommodate additional structures that may be attached to the joined object by various means, including quick release pins, eyebolt attachments or other means to adhesively add or remove the weights. In addition, the user may fashion the connector so as to wrap it around himself or herself to be supported by the shoulders, arms or legs. The connector may then be used as a resistance device for a particular part or parts of the users' body.
[0070] As an alternative, the improved linked connector may be anchored to operate in a fulcrum-like manner with three-dimensional movement being possible through the selective locking and unlocking of specific joints.
[0071] Another application of the connector includes any use where a rigid bar is needed and minimal storage space is desired. The connector can be folded up into a smaller space making transporting and storing the connector more convenient.
[0072] In addition to the fitness field, the connector has multiple applications in the field of mechanical tools, where the ability to lock and unlock a freely moving object may be desired. Because the connector allows the joints to move or be locked in non-co-planar directions, the mechanical tool may be used to create three-dimensional shapes to allow for useful tool designs not presently possible.
[0073] In addition, since links will not slip along the connector even when unlocked makes the connector far safer than current chains used in the fitness arts and other mechanical arts.
[0074] In the foregoing specification, specific embodiments have been described. However, one of ordinary skill in the art appreciates that various modifications and changes can be made without departing from the scope of the invention as set forth in the claims below. Accordingly, the specification and figures are to be regarded in an illustrative rather than a restrictive sense, and all such modifications are intended to be included within the scope of present teachings.
[0075] The benefits, advantages, solutions to problems, and any element(s) that may cause any benefit, advantage, or solution to occur or become more pronounced are not to be construed as a critical, required, or essential features or elements of any or all the claims. The invention is defined solely by the appended claims including any amendments made during the pendency of this application and all equivalents of those claims as issued.
[0076] Moreover in this document, relational terms such as first and second, top and bottom, and the like may be used solely to distinguish one entity or action from another entity or action without necessarily requiring or implying any actual such relationship or order between such entities or actions. The terms comprises, comprising, has, having, includes, including, contains, containing or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises, has, includes, contains a list of elements does not include only those elements but may include other elements not expressly listed or inherent to such process, method, article, or apparatus. An element proceeded by comprises . . . a, has . . . a, includes . . . a, contains . . . a does not, without more constraints, preclude the existence of additional identical elements in the process, method, article, or apparatus that comprises, has, includes, contains the element. The terms a and an are defined as one or more unless explicitly stated otherwise herein. The terms substantially, essentially, approximately, about or any other version thereof, are defined as being close to as understood by one of ordinary skill in the art. The term coupled as used herein is defined as connected, although not necessarily directly and not necessarily mechanically. A device or structure that is configured in a certain way is configured in at least that way, but may also be configured in ways that are not listed.
[0077] The Abstract of the Disclosure is provided to allow the reader to quickly ascertain the nature of the technical disclosure. It is submitted with the understanding that it will not be used to interpret or limit the scope or meaning of the claims. In addition, in the foregoing Detailed Description, it can be seen that various features are grouped together in various embodiments for the purpose of streamlining the disclosure. This method of disclosure is not to be interpreted as reflecting an intention that the claimed embodiments require more features than are expressly recited in each claim. Rather, as the following claims reflect, inventive subject matter lies in less than all features of a single disclosed embodiment. Thus the following claims are hereby incorporated into the Detailed Description, with each claim standing on its own as a separately claimed subject matter.