Weightlifting converting device
10625136 ยท 2020-04-21
Inventors
Cpc classification
A63B71/0054
HUMAN NECESSITIES
A63B21/0607
HUMAN NECESSITIES
A63B21/0722
HUMAN NECESSITIES
A63B2071/009
HUMAN NECESSITIES
International classification
Abstract
A weightlifting converting device is provided that includes a plurality of converting segments arranged end-to-end in a chain. Each converting segment has a semi-circular outer surface defining an arc and a planar inner surface. When the weightlifting converting device is installed on a polygonal-shaped weightlifting plate, the planar inner surface of each converting segment engages a flat outer edge of the polygonal plate, and the semi-circular outer surfaces together provide the weightlifting plate with a round outer surface.
Claims
1. A weightlifting converting device comprising a plurality of converting segments arranged in a chain, wherein each converting segment includes: a semi-circular outer surface defining a continuous arc, a planar inner surface opposite the semi-circular outer surface, a first side, a second side, a first end and a second end; first and second sleeve members extending inward from the first and second sides, respectively, and beyond the planar inner surface; and hinge elements located at the first and second ends, respectively for attaching the converting segment to an adjacent converting segment; wherein the continuous arcs defined by the semi-circular outer surfaces, measured in degrees, add up to about 360 degrees.
2. The weightlifting converting device of claim 1, comprising three or more of the converting segments arranged in the chain.
3. The weightlifting converting device of claim 1, comprising eight or more of the converting segments arranged in the chain.
4. The weightlifting converting device of claim 1, wherein the continuous arc defined by each semi-circular outer surface, measured in degrees, is about 360 divided by the number of converting segments in the chain.
5. The weightlifting converting device of claim 1, wherein each semi-circular outer surface is semi-cylindrical.
6. The weightlifting converting device of claim 1, wherein each planar inner surface has pockets formed therein.
7. The weightlifting converting device of claim 1, wherein the hinge elements comprise a female hinge element at the first end of each converting segment and a male hinge element at the second end of each converting segment.
8. The weightlifting converting device of claim 1, wherein at least some of the converting segments in the chain are permanently hinged together.
9. The weightlifting converting device of claim 8, wherein the converting segments arranged in the chain are formed as a continuous unitary device.
10. The weightlifting converting device of claim 9, wherein the hinge elements between converting segments are formed as a bridging piece of flexible material.
11. A weightlifting converting device comprising twelve converting segments arranged in a chain, wherein each converting segment includes: a semi-circular outer surface defining a continuous arc, a planar inner surface opposite the semi-circular outer surface, a first side, a second side, a first end and a second end; first and second sleeve members extending inward from the first and second sides, respectively, and beyond the planar inner surface; and hinge elements for attaching each converting segment to an adjacent converting segment; wherein the continuous arcs defined by the semicircular outer surfaces, measured in degrees, add up to about 360 degrees.
12. The weightlifting converting device of claim 11, wherein the hinge elements include a pivoting mechanism and a fastening mechanism.
13. The weightlifting converting device of claim 11, wherein at least some of the converting segments in the chain are permanently connected together.
14. A combination, including a polygonal weightlifting plate having three or more flat outer edges and corners between the flat outer edges, and a weightlifting converting device; the weightlifting converting device including a plurality of converting segments equal in number to the plurality of flat outer edges, each converting segment covering one of the flat outer edges; each converting segment including a semi-circular outer surface defining a continuous arc, and a planar inner surface opposite the semi-circular outer surface that engages a flat outer edge of the polygonal weightlifting plate; wherein the converting segments are arranged in a chain such that the continuous arcs defined by the semi-circular outer surfaces add up to about 360 degrees and together define a circular outer surface of the combination.
15. The combination of claim 14, wherein the semi-circular outer surface of each converting segment is semi-cylindrical.
16. The combination of claim 14, wherein the polygonal weightlifting plate has at least six of the flat edges and the weightlifting converting device has an equal number of the converting segments.
17. The combination of claim 14, wherein the polygonal weightlifting plate comprises twelve of the flat edges, the weightlifting converting device comprises twelve of the converting segments, and the continuous arc defined by each semi-circular outer surface is about 30 degrees.
18. The combination of claim 14, wherein each of the converting segments further comprises first and second members that extend inward from the planar inner surface and over a rim of the polygonal weightlifting plate.
19. The combination of claim 14, wherein the converting segments comprise a material having a Shore A hardness of about 70 to about 100.
20. The combination of claim 19, wherein the Shore A hardness of the material is about 80 to 90.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(9) Referring to
(10) Referring to
(11) The semi-circular outer surface 24 of each converting segment 22 has an arc 25 which, when measured in degrees, is approximately equal to 360 divided by the number of converting segments 22 in the weightlifting converting device 20. For example, the illustrated converting assembly 20 has twelve converting segments 22. In this embodiment, the arc 25 on the semi-circular outer surface 24 of each converting segment is about 30 degrees. Thus, as shown in
(12) The planar inner surface 26 is a substantially flat surface of converting segment 22 that makes direct contact with the corresponding flat edge 14 on the weightlifting plate 10. As shown in
(13) As best illustrated in
(14) Referring to
(15) The converting device 20 can be carried around in a gym bag or other suitable container in the assembled state shown in
(16) Referring to
(17) Because the converting segments 22 have curved outer surfaces 24 whose arcs add up to 360 degrees, the converting device 20 provides the combination 50 with a circular, preferably cylindrical outer edge that overcomes the flat edges 14 and corners 16 on the polygonal weightlifting plate 10. Moreover, only two of the polygonal plates 10 (one on each side of the barbell) need to be combined with a converter device 20 in order to overcome the disadvantages that result from the polygonal plates 10 being lowered and raised from the floor during exercise. This is because the converter assemblies 20 add slightly to the diameters of the polygonal plates 10 (
(18) By way of example, a 45-lb polygonal weightlifting plate is often the largest plate available for the barbell. When performing a heavy exercise such as the deadlift, the user may stack three or more of these plates on both sides of the barbell. A standard 45-lb dodecagonal plate may have a side-to-side distance of 17 inches and a corner to corner distance of 17.5 inches. By designing the converting device 20 to provide a combination 50 having a diameter of 18.5 inches, only the combination 50 (applied to each side of the barbell) will touch the floor during exercise. Regardless of how many additional 45-lb dodecagonal plates 10 are placed on each side of the barbell, the remaining plates 10 will never touch the floor during exercise. By having only two of the combinations 50 (one on each side) touch the floor, the remaining plates 10 will also between much easier to load and remove from the barbell.
(19) The converting segments 22 used to make the converting device 20 can be molded or otherwise formed from any suitable thermoplastic or thermoset polymer material having sufficient durability to withstand the repeated collision of heavily loaded barbells with the gym floor. The material may have a Shore A hardness of about 70 to about 100, suitably about 80 to about 90, measured using ASTM D12240. Suitable polymer materials include without limitation Innothane IE-90A, which is a tough semi-flexible polyurethane elastomer available from Innovative Polymers, Inc. in St. Johns, Mich. This material has a Shore A hardness of 855 measured using ASTM D-2240, a tensile strength of 1750 psi measured using ASTM D-638, an elongation at break of 180% measured using ASTM D-638, a tensile strength of 215 pli measured using ASTM D-624, and a linear shrink of less than 0.005 in./in., measured using ASTM D-2566. Other suitable polymer materials, and combinations thereof, may also be used.
(20) While the embodiments of the invention described herein are presently preferred, various modifications and improvements can be made without departing from the spirit and scope of the invention.