The present disclosure generally relates to skates, and more particularly, to hockey skates.
Ice skating and inline skating are rather unique forms of human locomotion. There a variety of sports that utilize ice (or inline) skates such as, for example, speed skating, hockey, and figure skating. A skate boot is generally constructed of a material upper (e.g., leather and/or other synthetic material) adhered to a last board. The base is bonded to an outer sole made of plastic, rubber, or composite fibers, which effectively sandwiches the folded edge of the material upper between the last board and the outer sole. The rigid parts of the skate boot are comprised of the sole piece and a counter piece, which in combination provide the support structure of the footwear.
Recently, the sport of hockey has demanded improved skate boot technology to allow athletes to reach higher speeds and/or accelerate faster. As such, many recent hockey skate designs have borrowed technology from speed skating for improved performance. For example, speed skates are known to be comprised of a stiff shell structure 100 such as the structure identified in
One common safety feature of a hockey skate is a tendon guard. Tendon guards are usually permanently attached to a rear of the skate that extends above a skater's ankle and extend upward therefrom in order to protect the skaters tendon from impacts. Although tendon guards serve a useful purpose, they can reduce movement of a skater's foot most notably upward and downward movement (e.g., dorsiflexion and planarflexion), which is undesirable.
Some skates have a tendon guard that is more flexible than the outer shell of the skate allowing the tendon guard to flex backwards and thus improving the movement of the skater's foot. These tendon guards are attached to the top of an ankle portion of the outer shell in a variety of ways such as, for example, via stitching, over molding, thermal bonding, high frequency welding, vibration welding, piping, zipper, adhesive, and staples. Accordingly, these tendon guards flex at the point of attachment, which can provide increased mobility of the skater's foot. However, movement of the skater's foot is still somewhat restricted because the ankle portion of the stiff outer shell covers the lower portion of the skater's Achilles tendon.
Accordingly, a need exists for an improved skate boot that can increase a skater's speed and acceleration while still providing adequate ankle support and protection for impact sports such as hockey.
The invention will be more readily understood in view of the following description when accompanied by the below figures, wherein like reference numerals represent like elements:
In one example, a skate assembly includes a shell structure and a removable tendon guard. The shell structure includes a heel portion, a lateral ankle portion, and a medial ankle portion. The heel portion is formed to cover a human heel. The lateral ankle portion is formed to extend beyond the heel portion. The medial ankle portion is formed to extend beyond the heel portion. The lateral ankle portion and the medial ankle portion are spaced apart to form a notch extending downward toward the heel portion. The removable tendon guard is removably attached between the lateral ankle portion and medial ankle portion to cover the notch.
The skate assembly provides, among other advantages, increased mobility of a skater's foot, which can increase skating speed and/or acceleration of the skater. In addition, the skate assembly provides safety features suitable for impact sports such as hockey without compromising the mobility of the foot. Other advantages will be recognized by those of ordinary skill in the art.
Referring now to
The skate boot 202 includes a stiff unitary shell structure 208, a side panel 210 on the medial and lateral side of the skate boot 202, a removable tongue 212, a removable tendon guard 214, and an inner liner 216. The shell structure 208 can be made of any suitable stiff material such as for example, carbon fiber, aramid fiber, such as KEVLAR®, heat moldable thermoplastic, such as by Rhenoflex Corp of Germany, or other suitable thermoplastics that softens at a temperature under 80° C. For example, in one embodiment, the shell structure 208 can include a layer of carbon fiber, a layer of aramid fiber, and a layer of thermoplastic. In this example, the layer of aramid fiber can be sandwiched between the layer of carbon fiber and the layer of thermoplastic. In addition, the layer of carbon fiber can provide a hard exterior surface to the shell structure 208 and the layer of thermoplastic can provide a heat moldable interior of the shell structure 208.
The shell structure 208 can be manufactured in any suitable manner known in the art. For example, the shell structure 208 can be manufactured using a wet lay-up process. In this process, the thermoplastic is heated and shaped to a foot last. Next, pre-impregnated (pre-preg) carbon fiber and aramid fiber are layered over and onto the foot last. Thereafter, the layers on the foot last are vacuum bagged and heated until cured.
The thermoplastic is positioned over areas of the foot where maximal variation from individual to individual can occur such as the arch (or instep), ankle, metatarsus, and/or other suitable portions of the foot. In areas of the foot that have less shape variance, composite fibers can be used to provide a rigid and lightweight structure. The thermoplastic is designed to melt at a temperature at or around 60° C., although other suitable thermoplastics are contemplated. As such, the skate 200 can be placed in a conventional oven at or around 60° C. for approximately 20 minutes. Thereafter, the thermoplastic portions of the shell structure 208 can be easily formed to a particular foot.
Referring now to
When the skate boot 200 is fully assembled, the removable tendon guard 214 is removably attached between the medial ankle portion 402 and the lateral ankle portion 404 to cover the notch. More specifically, the medial ankle portion 402 and the lateral ankle portion 404 are removably attached to the removable tendon guard 214. In addition, the removable tendon guard 214 can be removably attached to heel point 412 to further secure the removable tendon guard 214 to the shell structure 208. As such, the combination of the notch 406 and the removable tendon guard 214 provide increased (or in some cases uninhibited) flexion and/or extension while protecting the Achilles tendon.
As shown, the arch structure 405 is positioned between the heel portion 400 and the toe portion 401 and is proximate the medial ankle portion 402. The arch structure 405 is formed to fit the medial longitudinal arch of a human foot in order to provide arch support for the foot. The arch structure 405 can be made of any suitable material. For example, in one embodiment, the arch structure 405 can be made of a heat moldable thermoplastic that becomes moldable at a sufficient temperature (e.g., 60° C.) such that the foot will not be burned. As such, in this embodiment, the arch structure 405 can be custom molded to each individual foot for greater comfort and fit.
Likewise, in one embodiment, the medial ankle portion 402 and the lateral ankle portion 404 can also be made of a heat moldable thermoplastic that becomes moldable at a sufficient temperature (e.g., 60° C.) such that the foot will not be burned. Accordingly, the medial ankle portion 402 and the lateral ankle portion 404 can be custom molded to each individual's foot for greater comfort and fit.
Referring now to
The removable tendon guard 214 can include an exterior portion 606 generally identified at 607 and an inner portion 608 generally identified at 610. The exterior portion 606 provides the main support structure and can be made of any suitable rigid material that provides pliability. For example, in one embodiment, the exterior portion 606 can be an injection molded plastic piece such as a pebax Nylon elastomer, ST 801 Dupont PS Nylon 66, or other suitable material. The inner potion 608 is a padded material to provide comfort when making contact with the Achilles tendon and/or other parts of the lower leg. In one embodiment, the inner portion 608 can be comprised of suitable comfort foam wrapped in a piece of CLARINO™ liner material although other materials are contemplated.
The removable tendon guard 214 has a narrow mid channel design. More specifically, the mid channel 612 is narrower and has a smaller dimension than the top width 614 of the removable tendon guard 214. The mid channel 612 can be any suitable width that is smaller than the top width 614. For example, in one embodiment, the mid channel 612 has a width that is ⅓ of the top width 614. In other embodiments, the mid channel 612 can be any suitable width that is less than 59% of the top width 614 although other dimensions are contemplated. The narrower mid channel 612 and corresponding notch 406 in the shell structure 208 allow a human ankle joint to extend more freely. For example, the back portion of the lower leg and Achilles tendon can pass through the notch 406 and engage the removable tendon guard 214, which allows continued movement through the increased flex allowed by the mid channel 612.
Referring now to
Referring back to
The removable tongue 212 is also comprised of one or more pieces of thermoplastic 710 that softens at or around 60° C. for safe anatomical shaping. In one embodiment, the removable tongue 212 is also comprised of two pieces of thermoplastic 710. The thermoplastic 710 can be bonded to the tongue in any suitable location such as the outermost foam layer 708, for example. The thermoplastic 710 provides rigidity and support to the tongue. In addition, when heated, the removable tongue 212 can be custom shaped to a particular skater's foot. The foam layer 708 and the thermoplastic 710 can be covered with a thin piece of black felt material to provide added comfort if desired.
Referring now to
The side panel 210 supports and houses eyelets 800. As such, the side panel 210 is reinforced with a reinforcement material 806 in order to prevent tearing when the skate boot 202 is laced up. Any suitable material can be used to reinforce the side panel 210 such as an aramid fiber material (e.g., KEVLAR®), for example. In addition, the side panel 210 can include a thermoplastic 808 that softens at or around 60° C. for safe anatomical shaping. The thermoplastic 808 further supports and gives rigidity to the eyelets 800. Furthermore, the side panel 210 can be heat shaped to the skate 202 boot during manufacturing. Moreover, when the skate boot 202 is heat molded to a particular skater's foot, the side panel 210 custom forms to their foot shape. In some embodiments, the side panel 210 can include a synthetic leather 810 to provide an aesthetically pleasing skate boot design. In addition, one or more portions 812 can be removed from the synthetic leather 810 revealing the thermoplastic 808, which can be used to display company graphics and/or logos if desired.
Referring now to
The skate blades are attached to the blade holder 206 via attachment points 908 at each end of the blade holder 206. By having the attachment points 908 at each end of the blade holder 206, the blade can flex when the skater applies force to the skate 200, which can result in improved control while skating. The further the attachment points 908 are from each other, the more the blade flexes. The attachment points 908 can be any suitable distance apart to achieve the desired flex. For example, a 30.9 cm blade can have the attachment points 908 separated by approximately 25.3 cm if desired. In another example, one of the attachment points 908 can be approximately 3.2 cm from the front of the blade holder 206 and the other attachment point 908 can be 2.5 cm from the back of the blade holder 206 although other distances are contemplated.
The skate blades can be attached to the blade holder 206 in any suitable manner. For example, in one embodiment, a suitable bolt and nut can be used to attach the skate blade to the blade holder 206. As such, in this embodiment, the skate blade and the blade holder 206 can be removably attached so that the skate blade can be easily replaced. Other attachment methodologies are contemplated.
In one embodiment, the blade holder 206 includes a textured surface 910 that has a rough or slightly spiky surface. For example, in one embodiment, the textured surface 910 can be comparable to that of sand paper, such as 60 grit or other suitable grit sandpaper. The textured surface 910 engages with the bottom of the skate boot 202 (e.g., the shell structure 208) when attached to the skate boot 202. As such, the textured surface 910 causes the blade holder 206 to bite into the skate boot 202 and thus inhibits medial and/or lateral movement of the blade holder 206 with respect to the skate boot 202.
Referring now to
The blade holder 206 includes multiple attachment points 1000 that can be attached to the skate boot 202 (e.g., the shell structure 208) via any suitable means such as a nut and bolt, a rivet, and/or other suitable attachment means. In this example, there are eight attachment points 1000 (i.e., four on each side) on the front portion of the blade holder 206 and six attachment points 1000 (i.e., three on each side) on the rear (or heel) of the blade holder 206 although any suitable number of attachment points 1000 may be used if desired.
The attachment points 1000 are apertures having an elongated shape such as a slot, elliptical, or other suitable elongated shape. Due to the elongated shape of the apertures, a skater can adjust the position of the blade holder 206 with respect to the skate boot 202 as desired. For example, the blade holder 206 can be adjusted laterally in order to center the blade for each particular skater's center of gravity. As such, the blade holder 206 is adjustable with respect to the skate boot 202 and thus can be adjusted to enhance comfort and/or performance for a particular skater.
As noted above, the blade holder 206 includes the textured surface 910 to ensure that there is no slippage of the blade holder 206 with respect to the skate boot 202 during skating. In one embodiment, the bottom side of the skate boot 202 can be coated with polyurethane or bonded with a thin piece of leather to further aid the textured surface 910 in preventing movement between the skate boot 202 and the blade holder 206.
Among other advantages, the skate 200 provides increased mobility of a skater's foot due to the notch 406 and removable tendon guard 214, which can increase skating speed and/or acceleration of the skater. In addition, the skate 200 provides safety features suitable for impact sports such as hockey without compromising the mobility of the foot. Furthermore, the skate 200 has multiple components that are removably attached and/or adjustable so that a particular skater can customize the skate 200 to meet their individual needs. Other advantages will be recognized by those of ordinary skill in the art.
While this disclosure includes particular examples, it is to be understood that the disclosure is not so limited. Numerous modifications, changes, variations, substitutions, and equivalents will occur to those skilled in the art without departing from the spirit and scope of the present disclosure upon a study of the drawings, the specification, and the following claims.
This application is a continuation of U.S. application Ser. No. 14/028,258, filed Sep. 16, 2013, which is a continuation of U.S. application Ser. No. 13/271,029, filed Oct. 11, 2011 and now U.S. Pat. No. 8,596,650, which is a continuation of U.S. application Ser. No. 12/609,627, filed Oct. 30, 2009 and now abandoned, all of which are incorporated herein by reference in their entireties.
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Number | Date | Country | |
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Parent | 14028258 | Sep 2013 | US |
Child | 14810321 | US | |
Parent | 13271029 | Oct 2011 | US |
Child | 14028258 | US | |
Parent | 12609627 | Oct 2009 | US |
Child | 13271029 | US |