The present application is a reissue application of U.S. patent application Ser. No. 15/577,437, filed on Nov. 28, 2017 and issued as U.S. Pat. No. 10,124,207 on Nov. 13, 2018, which is an 35 USC 371 national stage entry of PCT/CA2016/050609 filed on May 30, 2016 which claims priority on U.S. 62/167,931 filed on May 29, 2015. These documents are hereby incorporated by reference in their entirety.
The present disclosure relates to a grip apparatus for exercise equipment and a method for making thereof, and in particular, a grip apparatus having a freely rotatable handle.
Various types of exercise equipment, especially weight lifting equipment, provide a grip for a user to hold. Such grips are typically stationary, which may cause user discomfort or limit the user's ability to maximize his or her workout.
It would thus be highly desirable to be provided with an apparatus, system or method that would at least partially address the disadvantages of the existing technologies.
The embodiments described herein provide in one aspect a grip apparatus for exercise equipment, the grip apparatus comprising a first annular member having a first annular sidewall and a first flange extending radially inwardly from the first annular sidewall, a second annular member having a second annular sidewall and a second flange extending radially inwardlyoutwardly from the second annular sidewall, a diameter of the second annular sidewall being less than a diameter of the first annular sidewall, the second annular member being positioned within the first annular member whereby the first annular sidewall, the second annular sidewall, the first flange and the second flange define together an annular chamber, a handle member extending between opposing portions of the second annular sidewall and a bearing positioned within the annular chamber, the first annular sidewall frictionally engaging a first race of the bearing and the second annular sidewall frictionally engaging a second race of the bearing, whereby the second annular member is freely rotatable relative to the first annular member.
The embodiments described herein provide in another aspect a grip apparatus for exercise equipment, the grip apparatus comprising: a first annular member having a first annular sidewall and a first flange extending radially inwardly from the first annular sidewall. The apparatus also comprises a second annular member having a second annular sidewall and a second flange extending radially inwardlyoutwardly from the second annular sidewall, a diameter of the second annular sidewall being less than a diameter of the first annular sidewall, the second annular member being positioned within the first annular member whereby the first annular sidewall, the second annular sidewall, the first flange and the second flange define together an annular chamber; a handle member connected to the second annular sidewall; and a bearing positioned within the annular chamber, the first annular sidewall frictionally engaging a first race of the bearing and the second annular sidewall frictionally engaging a second race of the bearing, whereby the second annular member is freely rotatable relative to the first annular member.
The embodiments described herein provide in another aspect an exercise equipment comprising at least one grip apparatus for exercise equipment as described herein according to various exemplary embodiments and one attachment member connected to the first annular member and adapted to be connected to a weight system.
The embodiments described herein provide in yet another aspect a method for manufacturing a grip apparatus for exercise equipment, the method comprising: providing a first annular member having a first annular sidewall and a first flange extending radially inwardly from the first annular sidewall, providing a second annular member having a second annular sidewall and a second flange extending radially inwardly from the second annular sidewall, a diameter of the second annular sidewall being less than a diameter of the first annular sidewall, attaching a handle member to opposing portions of the second annular sidewall, inserting a bearing into the first annular member, whereby an inner surface of the first annular member frictionally engages an outer surface of the bearing; and inserting the second annular member into the bearing, whereby an outer surface of the second annular member frictionally engages an inner surface of the bearing.
The following drawings represent non-limitative examples in which:
The following examples are presented in a non-limiting manner.
The word “a” or “an” when used in conjunction with the term “comprising” in the claims and/or the specification may mean “one”, but it is also consistent with the meaning of “one or more”, “at least one”, and “one or more than one” unless the content clearly dictates otherwise. Similarly, the word “another” may mean at least a second or more unless the content clearly dictates otherwise.
As used in this specification and claim(s), the words “comprising” (and any form of comprising, such as “comprise” and “comprises”), “having” (and any form of having, such as “have” and “has”), “including” (and any form of including, such as “include” and “includes”) or “containing” (and any form of containing, such as “contain” and “contains”), are inclusive or open-ended and do not exclude additional, unrecited elements or process steps.
The terms “coupled” or “coupling” as used herein can have several different meanings depending in the context in which these terms are used. For example, the terms coupled or coupling can have a mechanical or electrical connotation. For example, as used herein, the terms coupled or coupling can indicate that two elements or devices are directly connected to one another or connected to one another through one or more intermediate elements or devices via an electrical element, electrical signal or a mechanical element depending on the particular context.
According to example grip apparatuses disclosed herein the first race is an outer race of the bearing, the second race is an inner race of the bearing, and an inner surface of the first annular sidewall frictionally engages the outer race of the bearing and the second race frictionally engages the inner race of the bearing.
According to example grip apparatuses disclosed herein, the inner surface of the first annular sidewall is press fit against the outer race of the bearing.
According to example grip apparatuses disclosed herein, the outer surface of the second annular sidewall is press fit against the inner race of the bearing.
According to example grip apparatuses disclosed herein, the second annular member is swaged against the inner race.
According to example grip apparatuses disclosed herein, a diameter of the inner race corresponds with a diameter of the outer surface of the second annular sidewall within a tolerance of approximately ±0.0015 inch.
According to example grip apparatuses disclosed herein, a diameter of the outer race corresponds with a diameter of the inner surface of the first annular sidewall within a tolerance of approximately ±0.0015 inch.
According to example grip apparatuses disclosed herein, a difference between the diameter of the inner surface of the first annular sidewall and the diameter of the outer surface of the second annular sidewall substantially corresponds to a radial width of the first annular flange.
According to example grip apparatuses disclosed herein, a difference between the diameter of the inner surface of the first annular sidewall and the diameter of the outer surface of the second annular sidewall substantially corresponds to a radial width of the second annular flange.
According to example grip apparatuses disclosed herein, a top wall of the bearing abuts against the first annular flange of the first annular member.
According to example grip apparatuses disclosed herein, a bottom wall of the bearing abuts against the second annular flange of the second annular member.
According to example grip apparatuses disclosed herein, wherein the first annular flange has an annular recessed portion for accommodating portions of balls of the bearing protruding from a top wall of the bearing.
According to example grip apparatuses disclosed herein, the second annular flange has an annular recessed portion for accommodating portions of balls of the bearing protruding from a bottom wall of the bearing.
According to example grip apparatuses disclosed herein, the handle member is welded to the second annular sidewall of the second annular member.
According to example grip apparatuses disclosed herein, the grip apparatus can be free of fastening systems for attaching the first annular member to the second annular member.
According to example grip apparatuses disclosed herein, the bearing is a ball bearing.
According to example grip apparatuses disclosed herein, the bearing is chosen from a rolling element bearing, rotational bearing, a thrust bearing, a spherical bearing, a thrust bearing, a needle bear, a cam follower, a cup and cone bearing and individual ball bearings.
According to example grip apparatuses disclosed herein, the bearing is formed of a material chosen from at least one of carbon, steel, chromium steel, bronze, oil impregnated bronze, plastic, nylon based resins, graphite filled, UHMW, acetal resin, PTFE, engineered plastics, phenolic resin and wood.
According to example exercise equipment disclosed herein, the weight system is chosen from weight plates and cabled weight system.
According to example exercise equipment disclosed herein, the strength equipment is chosen from chinning triangle, a tricep press down, a lat bar, a stirrup handle, a pulldown bar, a curl bar, an Olympic bar, dumbbell handle, a hex bar, and a tricep bar.
According to example methods disclosed herein, the inner surface of the first annular member is pressfit against the outer race of the bearing and the outer surface of the second annular member is pressfit against the inner race of the bearing.
According to example methods disclosed herein, the method further includes swaging the inner surface of the second sidewall of the second annular member outwardly radially.
According to example methods disclosed herein, the handle member is welded to the second annular sidewall and the method further includes after welding the handle member, machining the outer surface of the second annular sidewall to a diameter substantially corresponding to an inner diameter of the inner race.
Referring now to
It will be understood that although the flange 24 of the first annular member 8 is illustrated in
According to various exemplary embodiments, and as illustrated in
For example, and as illustrated, both the recessed portion 32 and the raised portion 40 extend continuously and circumferentially.
According to various exemplary embodiments, an outer surface 56 of the annular sidewall 16 and outer surface 64 of the flange 24 may have rounded corners so as to provide a more pleasing visual appearance. The rounded corners may also be used to identify the first annular member 8.
The first annular member 8 may be formed of a material that is susceptible to be easily machined and welded. For example, the first annular member 8 can be formed of a low carbon steel.
Referring now to
The diameter of the annular sidewall 80 is smaller than the diameter of the annular sidewall 16 of the first annular member 8. For example, the difference between the diameter of an outer surface 88 of the annular sidewall 80 of the second annular member 72 and inner surface 96 of the annular sidewall 16 of the first annular member 8 can be between about 0.5 inches to about 2 inches.
The second annular member 72 further includes a flange 104 extending outwardly from the annular sidewall 80. As shown in
It will be understood that although the flange 104 of the second annular member 72 is illustrated in
According to various exemplary embodiments, and as illustrated in
The second annular member 72 may be formed of a material that is susceptible to be easily machined and welded. For example, the second annular member 72 is formed of a low carbon steel.
A handle member 136 (
For example, the handle member 136 may be connected to the annular sidewall 80 using suitable fastening systems known in the art, such as, welding, rivets, nuts and bolts, and/or screws.
For example, the handle member 136 may be connected to the annular sidewall 80 by welding ends of the handle member 136 to the opposing portions of the inner surface 84 of the annular sidewall 80.
Referring now to
Referring now to
Referring now to
Referring back to
According to various exemplary embodiments, the bearing 164 may be formed other suitable materials, such as metal, steel, carbon, chromium steel, bronze, oil impregnated bronze (ex: Oilite™) or plastics. The plastics may include nylon based resins, nylon MC901, MC905, Nylatron™, graphite filled, Nyoil™ filled, UHMW copolymer types, Delrin™ acetal types, PTFE (Teflon™), and engineered plastics. Phenolic resins or wood may also be used.
For example, the bearing 164 may have sealed lubrication so as to reduce maintenance required.
The bearing 164 may be chosen from various types, such as a rolling element bearing, rotational bearing, a thrust bearing, a ball bearing, a spherical bearing, a thrust bearing, a needle bear, a cam follower, a cup and cone bearing or individual ball bearings.
The bearing 164 includes a first race and a second race being freely rotatable relative to one another. The bearing 164 is positioned between the first annular member 8 and the second annular member 72 so that the annular sidewall 16 of the first annular member 8 frictionally engages the first race. In this position, the annular sidewall 80 of the second annular member 72 frictionally engages the second race. Accordingly, the second annular member and handle member 136 is freely rotatable relative to the first annular member 8.
According to example illustrated in
An outer diameter of the outer race 172 substantially corresponds with an inner diameter of an inner surface 96 of the annular sidewall 16 of the first annular member 8. The diameter of the outer race 172 may correspond with the inner diameter of the annular sidewall 16 within a tolerance of approximately ±0.0015 inch. Accordingly, when the bearing 164 is positioned within the annular chamber 156, the inner surface 96 frictionally engages the outer race 172 of the bearing 164. For example, the sidewall 16 of the first annular member 8 is press fit against the outer race 172 of the bearing 164. Engagement of the outer race 172 with the sidewall 16 restricts the bearing 164 separating from the first annular member 8.
An inner diameter of the inner race 180 substantially corresponds with an outer diameter of an outer surface 88 of the annular sidewall 80 of the second annular member 72. The diameter of the inner race 180 may correspond with the outer diameter of the annular sidewall 80 within a tolerance of approximately ±0.0015 inch. Accordingly, when the bearing 164 is positioned within the annular chamber 156, the outer surface 88 frictionally engages the inner race 180 of the bearing 164. For example, the sidewall 80 of the second annular member 72 is press fit against the inner race 180 of the bearing 164. Engagement of the inner race 180 with the sidewall 72 restricts the bearing 164 separating from the first annular member 8. Furthermore, the engagement of the sidewall 16 of the first annular member 8 with the outer race 172 combined with the engagement of the sidewall 80 of the second annular member 72 with the inner race 180 restricts the first annular member 8 separating from the second annular member 72.
According to various exemplary embodiments, after positioning the second annular member 72 within the first annular member 8, the inner surface 88 of the annular sidewall 80 is swaged outwardly to promote engagement of the annular sidewall 80 with the inner race 180. The outward force on the annular sidewall 80 from the swaging may be further transmitted to the outer race 172, thereby also promoting engagement of the outer race 180 with the annular sidewall 16 of the first annular member 8.
The inner race 180 is freely rotatable relative to the outer race 172 of the bearing 164. Accordingly, when the grip apparatus 140 is fully assembled, the second annular member 72 is freely rotatable relative to the first annular member 8. Furthermore, the handle member 136 connected to the second annular member 72 is also freely rotatable relative to the first annular member 8.
According to various exemplary embodiments, the radial width of the annular flange 24 of the first annular member 8 substantially corresponds to a difference between the diameter of the inner surface 96 of the annular sidewall 16 and the diameter of the outer surface 88 of the annular sidewall 80. Similarly, the radial width of the annular flange 104 of the second annular member 72 substantially corresponds to a difference between the diameter of the inner surface 96 of the annular sidewall 16 and the diameter of the outer surface 88 of the annular sidewall 80. Accordingly, when the grip apparatus 140 is fully assembled, the bearing 164 is concealed by the flange 24, sidewall 16, flange 104 and sidewall 80 so that it is not visible from the outside.
According to various exemplary embodiments, a top wall 188 of the bearing 164 abuts against the annular flange 24 of the first annular member 8. More particularly, the top wall 188 abuts against a surface of the raised portion 40 of the annular flange 24. Furthermore, a portion of the balls of the bearing 164 may protrude past the top wall 188. This protruding portion is positioned within the space of the annular chamber 156 provided by the recessed portion 32 of the flange 24. Accordingly, the balls of the bearing 164 are disengaged from the annular flange 24 and can be rotated to allow free rotation of the inner race 180.
Similarly, a bottom wall 196 may abut against the annular flange 104 of the second annular member 72. More particularly, the top wall 196 abuts against a surface of the raised portion 120 of the annular flange 104. Furthermore a portion of the balls of the bearing 164 may protrude past the bottom wall 196. This protruding portion is positioned within the space of the annular chamber 156 provided by the recessed portion 112 of the flange 104. Accordingly, the balls of the bearing 164 are disengaged from the annular flange 014104 and can be rotated to allow free rotation of the inner race 180. Accordingly, the bearing 164 is positioned snugly within the annular chamber 156.
It will be appreciated that according to various exemplary embodiments where the handle member 136 is welded to the second annular member 72 and the first annular member 8, the second annular member 72 and the bearing 164 are mutually engaged through frictional engagement, the grip apparatus 140 can be assembled without the use (i.e. free of) any fastening system, such as the use of rivets, bolts and nuts, and/or screws.
According to various exemplary embodiments, an exercise equipment includes at least one grip apparatus 140 described according to various exemplary embodiments herein. The exercise equipment further includes at least one attachment member connected to the first annular member 8. The at least one attachment member is adapted to be connected to a weight system.
Referring back to
An inner diameter of the inner race 180 substantially corresponds with an outer diameter of an outer surface 88 of the annular sidewall 80 of the second annular member 72. The diameter of the inner race 180 may correspond with the outer diameter of the annular sidewall 80 within a tolerance of approximately ±0.0015 inch.
Referring now to
Referring now to
Referring now to
Referring now to
Referring now to
Referring now to
According to various exemplary methods for manufacturing the grip apparatus 140 described herein, a first annular member 8 as described herein according to various exemplary embodiments is first provided. For example, the first annular member 8 may be formed by machining block of metal, such as low carbon steel.
A second annular member 72 as described herein according to various exemplary embodiments is also provided. For example, the first annular member 8 may be formed by machining a block of metal, such as low carbon steel.
Referring now to
According to various exemplary methods for manufacturing the grip apparatus 140 described herein, a handle member 136 is attached to opposing portions of the second annular member 72.
Attaching the handle member 136 to the initially formed second annular member 72, for example by welding the handle member 136, may cause the outer diameter of the outer surface 88 of the annular sidewall 80 to expand outwardly. Accordingly, the method further includes machining the outer portion 320 of the annular sidewall 80 of the second annular member 72 after welding the handle member 136 thereto to reduce the outer diameter of the annular sidewall 80 such that this diameter corresponds to the inner diameter of the inner race 180 of the bearing 164 to be included in the grip apparatus. For example, after further machining the outer portion 320, the second annular member 72 may have the shape illustrated in
According to various exemplary methods for manufacturing the grip apparatus 140 described herein, a bearing 164 is inserted into the first annular member 8 so that an inner surface 96 of the annular sidewall 16 of the first annular member 8 frictionally engages the outer race 172 of the bearing 164. For example, the annular sidewall 16 is press fit against the outer race 180 of the bearing 164.
Furthermore, the second annular member 72 (ex: after further machining of its outer surface 80) is inserted into the bearing 164 so that an outer surface 88 of the annular sidewall 72 of the second annular member 72 frictionally engages the inner race 180 of the bearing 164. For example, the annular sidewall 72 is press fit against the inner race 180 of the bearing 164.
According to various exemplary methods for manufacturing the grip apparatus 140 described herein, the inner surface 84 of the annular sidewall 72 of the second annular member 72 is swaged radially outwardly so as to promote engagement of the annular sidewall 72 with the inner race 180. This swaging may further promote engagement of the annular sidewall 8 with outer race 172.
It will be appreciated that, for simplicity and clarity of illustration, where considered appropriate, reference numerals may be repeated among the figures to indicate corresponding or analogous elements or steps. In addition, numerous specific details are set forth in order to provide a thorough understanding of the exemplary embodiments described herein. However, it will be understood by those of ordinary skill in the art that the embodiments described herein may be practiced without these specific details. In other instances, well-known methods, procedures and components have not been described in detail so as not to obscure the embodiments described herein. Furthermore, this description is not to be considered as limiting the scope of the embodiments described herein in any way but rather as merely describing the implementation of the various embodiments described herein.
Filing Document | Filing Date | Country | Kind |
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PCT/CA2016/050609 | 5/30/2016 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2016/191867 | 12/8/2016 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
1333005 | Warner | Mar 1920 | A |
3384370 | Bailey | May 1968 | A |
4629184 | Selkee | Dec 1986 | A |
4768778 | Thomas, Jr. | Sep 1988 | A |
4822035 | Jennings et al. | Apr 1989 | A |
5024434 | Smith | Jun 1991 | A |
5080349 | Vittone | Jan 1992 | A |
5211616 | Riley, Jr. | May 1993 | A |
5334113 | Roepke | Aug 1994 | A |
5718654 | Kennedy | Feb 1998 | A |
6022300 | Hightower | Feb 2000 | A |
6652420 | Chen | Nov 2003 | B2 |
7094182 | Holten | Aug 2006 | B1 |
7094186 | Diakonov et al. | Aug 2006 | B2 |
D535336 | Diakonov et al. | Jan 2007 | S |
7238147 | Mills et al. | Jul 2007 | B2 |
7862486 | Watson | Jan 2011 | B1 |
D671996 | Wierszewski | Dec 2012 | S |
8485948 | Cen | Jul 2013 | B2 |
8549854 | Dion et al. | Oct 2013 | B2 |
8602951 | Morris | Dec 2013 | B2 |
8636630 | Morris | Jan 2014 | B2 |
8672815 | Springer | Mar 2014 | B1 |
8800528 | Fuqua et al. | Aug 2014 | B2 |
8820294 | Fuqua et al. | Sep 2014 | B2 |
8845500 | Huang | Sep 2014 | B2 |
8870723 | Morris | Oct 2014 | B2 |
9004387 | Hiraoka | Apr 2015 | B2 |
20030207740 | Fenelon et al. | Nov 2003 | A1 |
20040082448 | Martin | Apr 2004 | A1 |
20050085352 | Baxter | Apr 2005 | A1 |
20050187079 | Diakonov et al. | Aug 2005 | A1 |
20050202942 | De Lano | Sep 2005 | A1 |
20080176723 | Johnson | Jul 2008 | A1 |
20120028770 | Barchi | Feb 2012 | A1 |
20120115688 | Cen | May 2012 | A1 |
20130035218 | Wierszewski | Feb 2013 | A1 |
20130059696 | Hijmans et al. | Mar 2013 | A1 |
20130193700 | Walden | Aug 2013 | A1 |
20130260969 | Huang | Oct 2013 | A1 |
20140151483 | Hiraoka | Jun 2014 | A1 |
20170100628 | Wilt | Apr 2017 | A1 |
20210077853 | Martin, Sr. | Mar 2021 | A1 |
Number | Date | Country |
---|---|---|
203736796 | Jul 2014 | CN |
204121675 | Jan 2015 | CN |
Entry |
---|
Body Gym Equipements—Gymnetic, “360 Degree biceps/triceps bar with swivel”, published on Feb. 25, 2015. (The year of publication is sufficiently earlier than the effective U.S. filing date so that the particular month of publication is not an issue). |
English Translation—Machine Generated of CN203736796U, “Burn Machine”, published on Jul. 30, 2014. |
Burn Machine LLC, “The Universal Barbell”, [online], [retrieved on Dec. 18, 2012]. Retrieved from the Internet <URL:http://theburnmachine.com/the-universal.html>. |
English Abstract of WO2011137556(A1), “Physical training device comprising a central movable weight and having variable handling options”, published on Nov. 10, 2011. |
English Translation—Machine Translation of CN204121675(U), “Arm exerciser structure”, published on Jan. 28, 2015. |
Pumphouse Fitness Systems, “Specialty training Bars”, [online], [retrieved on Nov. 9, 2017]. Retrieved from the Internet <URL:http://pumphousefitness.com/SPECIALTY%20TRAINING%20BARS.html>, published on Nov. 7, 2011. |
Number | Date | Country | |
---|---|---|---|
62167931 | May 2015 | US |
Number | Date | Country | |
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Parent | 15577437 | May 2016 | US |
Child | 17096946 | US |