CHEST PROTECTOR
20230000184 · 2023-01-05
Assignee
Inventors
- Richard Person (Shirley, MA, US)
- Stan M. Jurga, JR. (Shirley, MA, US)
- Austin Rodrick (Shirley, MA, US)
- Ya Chi Chen (New Taipei City, TW)
Cpc classification
A63B2071/1208
HUMAN NECESSITIES
A63B71/12
HUMAN NECESSITIES
International classification
Abstract
The present invention is directed to a chest pad that significantly reduces the occurrence of commotio cordis among athletes. The chest pad may be utilized as a stand-alone chest protector intended to provide coverage primarily for the upper chest wall and the cardiac area. The chest pad may also be implanted into or utilized in traditional chest protectors that provide full coverage of the user's torso. The chest pad of the present invention provides additional protection to the heart of the wearer such that impact in the heart area with a projectile is absorbed by the chest pad.
Claims
1-20. (canceled)
21. A chest protector comprising: a base; a chest pad fastened to the front side of the base configured to correspond to the user's chest, wherein the chest pad comprises a first layer comprising polyurethane foam and having a first density and a first hardness, a second layer comprising a polymeric thermoplastic material and having a second density and a second hardness, and a third layer comprising memory foam and having a third density and a third hardness, wherein the third density is greater than the first density, and wherein the third hardness is less than the first hardness; and a strapping system configured to removably and adjustably attach the chest protector.
22. The chest protector of claim 21, wherein the first density ranges from 13 kg/m.sup.3 to 33 kg/m.sup.3 and the first hardness ranges from 75 to 85.
24. The chest protector of claim 22, wherein the third density ranges from 47 kg/m.sup.3 to 70 kg/m.sup.3 and the third hardness ranges from 14 to 38.
25. The chest protector of claim 21, wherein the polymeric thermoplastic material comprises polyethylene, high-density polyethylene (HDPE), polyethylene terephthalate (PET), or combinations thereof.
26. The chest protector of claim 21, wherein the first layer is arranged directly adjacent to the base, the second layer is arranged directly adjacent to the first layer, and the third layer is arranged directly adjacent to the second layer such that the third layer is the outermost layer.
27. The chest protector of claim 21, further comprising a plurality of shoulder pads fastened to a front side of the base configured to correspond to a user's shoulders, a plurality of abdomen pads, wherein the plurality of abdomen pads comprises one or more upper abdomen pads configured to correspond to an upper portion of the user's abdomen, one or more lower abdomen pads configured to correspond to a lower portion of the user's abdomen, one or more lateral abdomen pads configured to correspond to lateral sides of the user's abdomen, or a combination thereof
28. A chest protector comprising: a base; a chest pad fastened to the front side of the base configured to correspond to the user's chest, wherein the chest pad comprises a first layer having a first density of 13 kg/m.sup.3 to 33 kg/m.sup.3 and a first thickness, a second layer having a second density and a second thickness, and a third layer having a third density of 47 kg/m.sup.3 to 70 kg/m.sup.3 and a third thickness, wherein the second thickness is less than the first thickness and the second thickness, and wherein the third layer comprises memory foam; and a strapping system configured to removably and adjustably attach the chest protector.
29. The chest protector of claim 28, wherein the first layer comprises polyurethane foam, and wherein the first thickness ranges from 19 mm to 30 mm.
30. The chest protector of claim 29, wherein the second layer comprises polyethylene, high-density polyethylene (HDPE), polyethylene terephthalate (PET), or combinations thereof, and wherein the second thickness ranges from 3.98 mm to 6 mm.
31. The chest protector of claim 30, wherein the third thickness ranges from 12 mm to 20 mm.
32. The chest protector of claim 28, wherein the chest pad further comprises a fourth layer disposed between the second and third layers, and wherein the fourth layer has a fourth thickness less than the first and third thicknesses.
33. The chest protector of claim 32, wherein the fourth layer comprises ethylene vinyl acetate.
34. The chest protector of claim 33, wherein the fourth thickness ranges from 2.5 mm to 10 mm.
35. The chest protector of claim 28, further comprising a plurality of shoulder pads fastened to a front side of the base configured to correspond to a user's shoulders, a plurality of abdomen pads, wherein the plurality of abdomen pads comprises one or more upper abdomen pads configured to correspond to an upper portion of the user's abdomen, one or more lower abdomen pads configured to correspond to a lower portion of the user's abdomen, one or more lateral abdomen pads configured to correspond to lateral sides of the user's abdomen, or a combination thereof
36. A chest protector comprising: a base; a chest pad fastened to the front side of the base configured to correspond to the user's chest, wherein the chest pad comprises: a polyurethane foam layer having a first density of 13 kg/m.sup.3 to 33 kg/m.sup.3 and a first thickness of 19 mm to 30 mm, a plate having a second density of 0.85 g/cm.sup.3 to 0.98 g/cm.sup.3 and a second thickness of 3.98 mm to 6 mm, and a memory foam layer having a third density of 47 kg/m.sup.3 to 70 kg/m.sup.3 and a third thickness of 12 mm to 20 mm, wherein the plate is disposed between the polyurethane foam layer and the memory foam layer such that the polyurethane foam layer is the innermost layer.
37. The chest protector of claim 36, wherein the polyurethane foam layer has a hardness ranging from 75 to 85.
38. The chest protector of claim 36, wherein the memory foam layer has a hardness ranging from 14 to 38.
39. The chest protector of claim 36, wherein the chest pad further comprises a layer disposed between the plate and the memory foam layer, wherein the layer has a thickness of 2.5 mm to 10 mm.
40. The chest protector of claim 39, wherein either of both of the base and the layer comprise ethyl vinyl acetate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Further features and advantages of the invention can be ascertained from the following detailed description that is provided in connection with the drawings described below:
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
DETAILED DESCRIPTION OF THE INVENTION
[0021] The present invention is directed to a chest pad that provides enhanced protection for athletes and chest protectors including the chest pad. More particularly, the chest pad of the present invention provides coverage for the upper chest wall and cardiac area of the user and prevents high impact blows from disrupting the normal rhythm of the heart and causing cardiac arrest. The chest pads may also be implanted in or utilized in chest protectors that provide full coverage of the user's torso for a variety of players including, for example, field players in baseball, softball, and lacrosse, batters, base runners, catchers, and goalies. Through the use of the chest pad of the present invention, the chest protectors of the present invention provide additional protection for the area around the heart while also providing maximum freedom of movement for the user.
[0022] Referring to
[0023] The chest protector 100 includes a base 2 having a central panel 4 and side panels 6, 8 along each side of the central panel 4. The base 2 is generally shaped to protect the front side of the user's torso including the shoulders, neck, chest, and abdomen. In another embodiment, the base 2 may be shaped to protect only the upper portion of the user's torso, for example, the chest and cardiac area. The base may be made of any material having a suitable thickness that provides adequate shock absorbing properties and protection from high impact blows, for example, from speeding balls. In one embodiment, the base 2 is made of ethylene vinyl acetate foam. The base 2 may also be coated with a microorganism-resisting and mildew-retarding treatment agent. In another embodiment, the base 2 may include a plurality of air vents.
[0024] As shown in
[0025] In another embodiment, the central panel 4 may include only the chest pad 10. That is, the chest pad 10 may be adapted to a stand-alone chest protector that provides coverage primarily for the upper chest wall and cardiac area of the user. This allows for greater freedom of movement for users such as field players, batters, and baserunners that desire enhanced protection for the cardiac area, but do not necessarily require the protection of a full torso chest protector.
[0026] The chest pad 10 is designed to provide enhanced protection for the area around the heart of the user from the force of impacts, such as high impact blows, during sporting activities. In one embodiment, as shown in
[0027] The shape and dimensions of the chest pad 10 may vary so long as the chest pad 10 provides adequate protection of the user's chest including the sternum, adjoining ribs, and area around the heart. In one embodiment, the chest pad 10 may be a single, unitary pad (as shown in
[0028] In another embodiment, the chest pad 10 may be composed of more than one pad. For instance, the chest pad 10 may include two or more pads. In still another embodiment, the chest pad 10 may include three or more pads. Regardless of the number of pads, each pad should have a shape that interlocks with the other(s) to form the chest pad 10. The shape of each pad may vary so long as each pad cohesively interlocks with the other(s) to provide continuous protection across the user's chest.
[0029] The chest pad 10 generally conforms in size to cover the chest area of the user. In one embodiment, the chest pad 10 has a length of about 7.25 inches to about 8.75 inches. In another embodiment, the chest pad 10 has a length of about 7.5 inches to about 8.5 inches. In still another embodiment, the chest pad 10 has a length of about 7.75 inches to about 8.25 inches. The chest pad 10 may have a height of about 6 inches to about 8 inches. In one embodiment, the chest pad 10 has a height of about 6.25 inches to about 7.5 inches. In another embodiment, the chest pad 10 has a height of about 6.25 inches to about 7 inches.
[0030] The chest pad 10 is composed of a plurality of impact-resistant materials. The combination of impact-resistant materials disclosed herein may significantly reduce the risk of occurrence of commotio cordis to a user participating in an athletic activity. Indeed, the disclosed combination of impact-resistant materials are able to absorb an impact in the heart area from a projectile. In one embodiment, the chest pad 10 includes at least a polymeric foam layer and a polymeric thermoplastic layer. In another embodiment, the chest pad 10 includes at least the polymeric foam layer, the polymeric thermoplastic layer, and a memory foam layer. In still another embodiment, the chest pad 10 includes at least the polymeric foam layer, the polymeric thermoplastic layer, the memory foam layer, and a layer of ethylene-vinyl acetate. The chest pad 10 may also include additional layers of impact-resistant materials known to those of ordinary skill in the art, for example, additional elastomer or polymeric layers.
[0031] In another embodiment, the chest pad 10 may further include a fabric material surrounding the layers of impact-resistant materials. The fabric material may collectively surround the polymeric foam layer, the polymeric thermoplastic layer, the memory foam layer, and the layer of ethylene-vinyl acetate (if used). The fabric material may be provided to increase comfort and/or the aesthetic appearance of the chest pad 10. In one embodiment, the chest pad 10 may be built into the chest protector 100 such that the fabric material covers the chest pad 10 as well as the other padding fastened to base 2.
[0032] The layers of impact-resistant materials are arranged in a particular order to dissipate the force of impacts to the chest pad 10. For example, to provide enhanced protection for the user, the polymeric foam layer may be the innermost layer of the chest pad 10 while the polymeric thermoplastic layer or memory foam layer may be the outermost layer of the chest pad 10.
[0033]
[0034]
[0035] In this aspect, the layers of impact-resistant materials discussed above may be arranged in a tray to provide additional support and protection. In one embodiment, the impact-resistant materials may be arranged in a vacuum formed tray. As shown in
[0036] In one embodiment, the polymeric foam layer 50 has a density of about 13 kg/m.sup.3 to about 33 kg/m.sup.3. In another embodiment, the polymeric foam layer 50 may have a density of about 18 kg/m.sup.3 to about 28 kg/m.sup.3. In yet another embodiment, the polymeric foam layer 50 may have a density of about 20 kg/m.sup.3 to about 25 kg/m.sup.3. In still another embodiment, the polymeric foam layer 50 may have a density of about 23 kg/m.sup.3 to about 25 kg/m.sup.3. Additionally, the polymeric foam layer 50 should have a hardness of about 75 to 85. Unless otherwise specified, all hardness values disclosed herein refer to hardness measured using an Asker Type F durometer. In another embodiment, the polymeric foam layer 50 may have a hardness of about 78 to about 83. In still another embodiment, the polymeric foam layer 50 may have a hardness of about 80 to about 82.
[0037] Suitable materials for forming the polymeric foam layer 50 include, but are not limited to, various types of polyurethane foam. In one embodiment, the polymeric foam layer 50 is formed of polyurethane foam. For instance, the polymeric foam layer 50 may be formed from a polyurethane foam having a density of about 13 kg/m.sup.3 to about 33 kg/m.sup.3 and a hardness of about 75 to 85.
[0038] The polymeric thermoplastic layer 52 may have a density of about 0.85 g/cm.sup.3 to about 0.98 g/cm.sup.3. In another embodiment, the polymeric thermoplastic layer 52 may have a density of about 0.88 g/cm.sup.3 to about 0.96 g/cm.sup.3. In still another embodiment, the polymeric thermoplastic layer 52 may have a density of about 0.92 g/cm.sup.3 to about 0.95 g/cm.sup.3. In addition, the polymeric thermoplastic layer 52 may have a hardness of about 55 to 70 Shore D. The Shore D hardness values were measured according to ASTM D2240. In another embodiment, the polymeric thermoplastic layer 52 may have a hardness of about 60 to 68 Shore D. In still another embodiment, the polymeric thermoplastic layer 52 may have a hardness of about 62 to 67 Shore D. In yet another embodiment, the polymeric thermoplastic layer 52 may have a hardness of about 64 to 66 Shore D.
[0039] The polymeric thermoplastic layer 52 may be formed from materials including, but not limited to, polyethylene, high-density polyethylene (HDPE), polyethylene terephthalate (PET), and combinations thereof. For example, in one embodiment, the polymeric thermoplastic layer 52 is formed of HDPE.
[0040] The memory foam layer 54 should have a density greater than the density of the polymeric foam layer 50. In this aspect, the density of the memory foam layer 54 is at least about 10 kg/m.sup.3 greater than the density of the polymeric foam layer 50. In another embodiment, the density of the memory foam layer 54 is at least about 15 kg/m.sup.3 greater than the density of the polymeric foam layer 50. In still another embodiment, the density of the memory foam layer 54 is at least about 20 kg/m.sup.3 greater than the density of the polymeric foam layer 50. In yet another embodiment, the density of the memory foam layer 54 is at least about 25 kg/m.sup.3 greater than the density of the polymeric foam layer 50. In still another embodiment, the density of the memory foam layer 54 is at least about 30 kg/m.sup.3 greater than the density of the polymeric foam layer 50.
[0041] In one embodiment, the memory foam layer 54 has a density of about 47 kg/m.sup.3 to about 70 kg/m.sup.3. In another embodiment, the memory foam layer 54 has a density of about 50 kg/m.sup.3 to about 65 kg/m.sup.3. In yet another embodiment, the memory foam layer 54 has a density of the about 52 kg/m.sup.3 to about 62 kg/m.sup.3. In still another embodiment, the memory foam layer 54 has a density of the about 55 kg/m.sup.3 to about 60 kg/m.sup.3. In this aspect, the memory foam layer 54 should have a hardness less than the hardness of the polymeric foam layer 50. In one embodiment, the memory foam layer 54 has a hardness of about 14 to 38. In another embodiment, the memory foam layer 54 may have a hardness of about 18 to 35. In still another embodiment, the memory foam layer 54 may have a hardness of about 20 to about 32. In yet another embodiment, the memory foam layer 54 may have a hardness of about 22 to about 28.
[0042] The memory foam layer 54 may be formed of low-resilience polyurethane foam (LRPu). For instance, in one embodiment, the memory foam layer 54 may be formed of LRPu having a density of about 47 kg/m.sup.3 to about 70 kg/m.sup.3 and a hardness of about 14 to 38.
[0043] The use of the disclosed impact-resistant materials in chest pad 10 helps to adequately protect the user's chest from high impact forces. However, the thickness of chest pad 10 should also enable comfort, flexibility, and ease of movement during sporting activities. As such, the layers of impact-resistant materials in chest pad 10 should be sufficiently thin enough not to hinder the user's movement, but also protect the user from high impact blows, which may disrupt the normal rhythm of the heart and cause cardiac arrest.
[0044] In one embodiment, the polymeric foam layer 50 may have a thickness of about 19 mm to about 30 mm. In another embodiment, the polymeric foam layer 50 may have a thickness of about 20 mm to about 27 mm. In still another embodiment, the polymeric foam layer 50 may have a thickness of about 20 mm to about 25 mm. In yet another embodiment, the polymeric foam layer 50 has a thickness of about 20 mm to about 22 mm. For instance, the polymeric foam layer 50 may have a thickness of about 20 mm.
[0045] The polymeric thermoplastic layer 52 may have a thickness of about 3.98 mm to about 6 mm. In another embodiment, the polymeric thermoplastic layer 52 may have a thickness of about 4 mm to about 5.5 mm. In still another embodiment, the polymeric thermoplastic layer 52 may have a thickness of about 4 mm to about 5 mm. In yet another embodiment, the polymeric thermoplastic layer 52 may have a thickness of about 4 mm to about 4.02 mm. For example, the polymeric thermoplastic layer 52 may have a thickness of about 4 mm.
[0046] When the layer of ethylene-vinyl acetate 56 is used in the chest pad 10, the layer of ethylene-vinyl acetate 56 may have a thickness of about 2.5 mm to about 10 mm. In another embodiment, the layer of ethylene-vinyl acetate 56 may have a thickness of about 3 mm to about 8 mm. In yet another embodiment, the layer of ethylene-vinyl acetate 56 may have a thickness of about 3 mm to about 6 mm. In still another embodiment, the layer of ethylene-vinyl acetate 56 may have a thickness of about 3 mm to about 4 mm.
[0047] The memory foam layer 54 may have a thickness of about 12 mm to about 20 mm. In another embodiment, the memory foam layer 54 may have a thickness of about 13 mm to about 18 mm. In still another embodiment, the memory foam layer 54 may have a thickness of about 14 mm to about 16 mm. In yet another embodiment, the memory foam layer 54 may have a thickness of about 14 mm to about 15 mm. For instance, the memory foam layer 54 may have a thickness of about 14 mm.
[0048] In this aspect, the chest pad 10 may have a total thickness of about 34 mm to about 67 mm. In another embodiment, the chest pad 10 may have a total thickness of about 38 mm to about 60 mm. In still another embodiment, the chest pad 10 may have a total thickness of about 40 mm to about 56 mm. In yet another embodiment, the chest pad 10 may have a total thickness of about 44 mm to about 50 mm.
[0049] The central panel 4 may or may not include a plurality of abdomen pads. As discussed above, the central panel 4 may include only the chest pad 10 to provide greater freedom of movement for users that do not require the protection provided by a full chest protector. In another embodiment, the central panel 4 may include a plurality of abdomen pads 12 that are respectively fastened to the front side of the base 2 corresponding to the front portion of the user's abdomen. The number and arrangement of abdomen pads on the chest protector 100 may vary so long as the abdomen pads provide sufficient protection and shock absorbing properties for the abdomen of the user. In one embodiment, as shown in
[0050] The upper abdomen pads 12a and the lower abdomen pads 12b may be made of any material that allows for support and protection of the user's abdomen. In one embodiment, the upper and lower abdomen pads 12a, 12b are formed of expanded polyurethane (e.g., polyurethane foam), cross-linked polyethylene, soft rubber foam, memory foam, gel padding, or compression molded foams such as ethylene vinyl acetate (EVA). In another embodiment, the upper and lower abdomen pads 12a, 12b may be formed of multiple layers of any of the above-mentioned materials. For instance, as shown in
[0051] In one embodiment, the upper and lower abdomen pads 12a, 12b may be designed such that the pads decrease in thickness from the upper abdomen pads 12a to the lower abdomen pads 12b.
[0052] In another embodiment, the upper and lower abdomen pads 12a, 12b may be designed such as those featured in U.S. Pat. No. 7,900,283, which is herein incorporated by reference in its entirety. In this aspect, the upper and lower abdomen pads 12a, 12b may each include an inner low bounce foam, for example, a polyurethane foam, and an outer low bounce foam, for example, memory foam, that enhance the shock-absorbing and buffering effects of the chest protector.
[0053] The chest protector 100 may or may not include side panels 6, 8. When the left and right side panels 6, 8 are included on the chest protector 100, the left and right side panels 6, 8 may be composed of a plurality of pads. Each of the side panels 6, 8 may include shoulder pads 14 corresponding to the user's shoulders. In another embodiment, each of the side panels 6, 8 may include one or more shoulder covers (not pictured). The shoulder cover may be integrally formed with or detachably secured to base 2. In one embodiment, the shoulder cover is detachably secured to base 2 so that it can be secured at different positions along the shoulder area of the user. For instance, the shoulder cover may be removably attached to base 2 with hook-and-loop closures, such as Velcro®, snaps, clips, or the like.
[0054] Side panels 6, 8 may also include a plurality of lateral pads that extend from the user's shoulders downward to the lateral and bottom portion of the user's abdomen. The shape, number, and arrangement of the lateral pads may vary. In one embodiment, side panels 6, 8 may each include one or more lateral pads 16 that extend from the shoulder pads 14 to the upper abdomen pads 12a. The lateral pads 16 are fastened to the front side of base 2 and surround chest pad 10 to provide additional protection to the user's chest area. In another embodiment, side panels 6, 8 may also each include one or more lateral abdomen pads 18. Lateral abdomen pads 18 are fastened to the front side of base 2 and correspond to the two opposite lateral sides of the user's abdomen. Lateral abdomen pads 18 are intended to protect the portions of the user's abdomen that are not covered by the upper and lower abdomen pads 12a, 12b.
[0055] Shoulder pads 14, lateral pads 16, and lateral abdomen pads 18, may be made of any material that allows for support and protection of the user's torso. In one embodiment, the pads are formed of expanded polyurethane (e.g., polyurethane foam), cross-linked polyethylene, soft rubber foam, memory foam, gel padding, or compression molded foams such as EVA. In another embodiment, the pads may be formed of multiple layers of any of the above-mentioned materials. The pads may also be encased in a thin, resilient covering of plastic material and the peripheral edges are covered by a plastic sewn-in-place binding. In another embodiment, the pads may be coated with a microorganism-resisting and mildew-retarding treatment agent.
[0056] The chest protector 100 is removably and adjustably attachable to the torso of a user. In one embodiment, the chest protector 100 includes a strapping system that is provided to secure the chest protector 100 in position. The strapping system of the present invention may include a back harness such as the harness described in U.S. Pat. No. 6,021,528, which is herein incorporated by reference in its entirety. In this aspect, the back harness may include a center harness material that is designed to cushion the back of the user and one or more straps attached to the center harness material. The one or more straps may include at least a pair of upper shoulder straps and a pair of lower shoulder straps. For example, the chest protector 100 may include at least two upper shoulder straps attached to each respective shoulder pad 14 and at least two lower shoulder straps attached to lateral abdomen pads 18 that are intended to secure the center harness material. More straps may be included in the strapping system of the present invention for extra security and support.
[0057] In another embodiment, when the chest pad 10 is utilized as a stand-alone chest protector, the chest pad 10 itself is removably and adjustably attachable to the user. In this aspect, the chest pad 10 may include a strapping system that is provided to secure the chest pad 10 in position. Any of the above-noted strapping systems are suitable for securing the chest pad 10. For example, the chest pad may include a back harness, where the back harness includes a center harness material that is designed to cushion the back of the user and one or more straps attached to the center harness material. The one or more straps may include at least a pair of shoulder straps attached to the chest pad 10 that are intended to secure the back harness. More straps may be included in the strapping system used with the chest pad for extra security and support.
[0058] Any of the above-mentioned straps are made of a durable, resilient material. For instance, the straps of the present invention may be made of a woven natural or synthetic material, such as woven nylon. In another embodiment, the straps of the present invention may be made of elastic or neoprene.
[0059] In one embodiment, the straps of the present invention may be removably attachable to the chest protector 100 or the chest pad 10 (when utilized as a stand-alone chest protector). In this aspect, the chest protector 100 or chest pad 10 may include a plurality of metal or plastic loops to which any of the above mentioned straps may be fastened. As will be apparent to one of ordinary skill in the art, the loops may be positioned at any location on the chest protector 100 or chest pad 10 that is deemed suitable for fastening a strap and the loops may be used in any quantity deemed necessary. The loops may be connected to webs of nylon or similar strap material that are attached to the base 2 and are connected thereto by one or more rivets. Each loop may be composed of a single metal or plastic loop or two metal or plastic loops. Any of the straps contemplated by the present invention may carry hook fasteners for connecting to the loops to securely and adjustably connect the chest protector 100 or chest pad 10 to the torso of the user.
[0060] In another embodiment, the straps of the present invention may be fixedly attached to one side of the chest protector or chest pad, for example, by sewing, stitching, or riveting the straps to the base 2. In this aspect, on the other side of the chest protector 100 or chest pad 10, the straps may be detachably attachable to the chest protector 100 or chest pad 10. For instance, a securing mechanism, such as a hook or clip, is provided on the strap. The securing mechanism removably attaches to a corresponding slot, clip, or hook fixedly attached to the chest protector.
EXAMPLES
[0061] The following non-limiting examples are merely illustrative of the preferred embodiments of the present invention, and are not to be construed as limiting the invention, the scope of which is defined by the appended claims.
Example 1
[0062] Testing Conditions
[0063] Chest protectors were tested using a mechanical surrogate according to the following test conditions: [0064] 1. Environment: testing was conducted after the chest protector, projectile, and mechanical surrogate were exposed to controlled ambient temperature conditions per NOCSAE requirements for at least four hours. [0065] 2. Mechanical surrogate: consists of damped loading surface, three single axis load cells (750 lbf maximum capacity capable of measuring force, and a rigid back plate. The three load cells) were positioned in between the loading surface and the back plate and represent the upper chest, lower chest, and cardiac silhouette. The mechanical surrogate was mounted to a linear bearing table capable of providing post impact motion with a weight not to exceed 12.5 lb with the base of the surrogate perpendicular (+/−2.5 degrees) to the line of travel of the projectile. [0066] 3. Air Cannon: positioned such that impact occurs to the impact site on the mechanical surrogate within 24 inches from the end of the muzzle (or the point at which the projectile is released). [0067] 4. Projectile: regulation baseball with a weight of 5-5.25 ounces, a circumference of 9-9.25 inches, and a C-D at 0.25 inches of 200-300 lbs. [0068] 5. Impact location: projectile impacted the center (+/−0.25 inch) of the cardiac silhouette, the lower load cell, and upper load cell as shown in
[0072] Results
[0073] A 12″×12″ cut of various materials was tested for overall effectiveness for use in the chest pad as the innermost layer. The thickness of the material for each cut was 20 mm.
TABLE-US-00001 TABLE 1 Test Results or Example 1 Example 1 Example 2 Example 3 Example 4 PU foam D579 D579 HS100 P50 Density 23 kg/m.sup.3 23 kg/m.sup.3 30 kg/m.sup.3 27 kg/m.sup.3 Hardness 78 82 88 50
Of the four examples, Example 2 performed the best. Example 2 tested well at both 30 mph and 50 mph. As such, the polyurethane foam material of Example 2 having a density of 23 kg/m.sup.3 and a hardness of 82 was most effective for reducing the risk of occurrence of commotio cordis to a user.
Example 2
[0074] Testing Conditions
[0075] A chest protector according to one embodiment of the present invention was tested according to NOCSAE Standard ND 200-17am18 “Standard Test Method and Performance Specification Used in Evaluating the Performance Characteristics of Chest Protectors for Commotio Cordis.” The chest protector included a chest pad composed of two pads, such as that shown in
[0076] According to the testing standards for the 30 mile per hour condition, for any impact, the peak force measured by the cardiac load cell (“CLC”) shall not exceed 90 lbf (400N) and the peak force measured by the upper chest load cell (“ULC”) or lower chest load cell (“LLC”) shall not exceed 112 lbf (498 N). For the 50 mile per hour condition, for any impact, the peak force measured by the CLC shall not exceed 180 lbf (800N) and the peak force measured by the ULC or LLC shall not exceed 225 lbf (1001 N).
[0077] The laboratory, samples and ball conditioning parameters are set forth in Table 2 below.
TABLE-US-00002 TABLE 2 Laboratory, Samples and Ball Conditioning Parameters Lab Temperature (.sup.o F.) Lab % Relative Humidity Average Min max Average Min Max 70.7 69.4 71.5 46.0 44.6 46.8
[0078] The test was carried out under the following laboratory conditions: 71.3° F. and 48.2% relative humidity.
[0079] Results
[0080] The results of the chest protector impact tests are shown below in Table 3 (30 mile per hour condition) and Table 4 (50 mile per hour condition).
TABLE-US-00003 TABLE 3 Chest Protector Impact Test (30 mph condition) Velocity MPH Ibsf Target (30 ± 3%) CLC ULC LLC CLC 30.26 67.88 24.19 12.84 ULC 29.86 27.69 67.20 <10* LLC 30.16 26.98 14.84 51.06 *The laboratory where the above testing occurred utilizes the label, “<10”, for all values less than 10 due to system variation.
TABLE-US-00004 TABLE 4 Chest Protector Impact Test (50 mph condition) Velocity MPH Ibsf Target (50 ± 3%) CLC ULC LLC CLC 50.02 144.75 50.82 23.46 ULC 50.99 52.87 182.51 <10 LLC 50.02 49.39 25.49 139.63
[0081] As can be seen from the above results, the chest protector passed each of the tests by a large margin. This means that the chest protector (and accompanying chest pad) according to the present invention may significantly reduce the risk of occurrence of commotio cordis to a user.
Example 3
[0082] Testing Conditions
[0083] A chest protector according to one embodiment of the present invention was tested according to NOCSAE Standard ND 200-17a m18 “Standard Test Method and Performance Specification Used in Evaluating the Performance Characteristics of Chest Protectors for Commotio Cordis.” The chest protector included a unitary chest pad. The chest pad included a polymeric foam layer, a polymeric thermoplastic layer, and a memory foam layer. The polymeric foam layer was arranged directly adjacent to the polymeric thermoplastic layer and the polymeric thermoplastic layer was arranged directly adjacent to the memory foam layer.
[0084] According to the testing standards for the 30 mile per hour condition, for any impact, the peak force measured by the cardiac load cell (“CLC”) shall not exceed 90 lbf (400N) and the peak force measured by the upper chest load cell (“ULC”) or lower chest load cell (“LLC”) shall not exceed 112 lbf (498 N). For the 50 mile per hour condition, for any impact, the peak force measured by the CLC shall not exceed 180 lbf (800N) and the peak force measured by the ULC or LLC shall not exceed 225 lbf (1001 N).
[0085] The laboratory, samples and ball conditioning parameters are set forth in Table 5 below.
TABLE-US-00005 TABLE 5 Laboratory, Samples and Ball Conditioning Parameters Lab Temperature (° F.) Lab % Relative Humidity Average Min max Average Min Max 71.1 70.4 71.9 48.2 47.0 49.4
[0086] The test was carried out under the following laboratory conditions: 71.5° F. and 47.7% relative humidity.
[0087] Results
[0088] The results of the chest protector impact tests are shown below in Table 6 (30 mile per hour condition) and Table 7 (50 mile per hour condition).
TABLE-US-00006 TABLE 6 Chest Protector Impact Test (30 mph condition) Velocity (30 ± 3%) Ibsf Target MPH CLC ULC LLC CLC 30.36 56.76 19.48 11.97 ULC 30.66 24.01 78.93 <10 LLC 30.16 18.90 12.79 65.97
TABLE-US-00007 TABLE 7 Chest Protector Impact Test (50 mph condition) Velocity (50 ± 3%) Ibsf Target MPH CLC ULC LLC CLC 50.43 143.76 61.26 25.24 ULC 50.49 49.79 167.65 10.30 LLC 50.79 42.40 23.78 150.57
[0089] As can be seen from the above results, the chest protector passed each of the tests by a large margin. This means that the chest protector (and accompanying chest pad) according to the present invention may significantly reduce the risk of occurrence of commotio cordis to a user.
Example 4
[0090] Testing Conditions
[0091] A chest protector according to one embodiment of the present invention was tested according to NOCSAE Standard ND 200-17am18 “Standard Test Method and Performance Specification Used in Evaluating the Performance Characteristics of Chest Protectors for Commotio Cordis.” The chest protector included a unitary chest pad. The chest pad included a polymeric foam layer, a polymeric thermoplastic layer, and a memory foam layer. The polymeric foam layer was arranged directly adjacent to the polymeric thermoplastic layer and the polymeric thermoplastic layer was arranged directly adjacent to the memory foam layer.
[0092] According to the testing standards for the 30 mile per hour condition, for any impact, the peak force measured by the cardiac load cell (“CLC”) shall not exceed 90 lbf (400N) and the peak force measured by the upper chest load cell (“ULC”) or lower chest load cell (“LLC”) shall not exceed 112 lbf (498 N). For the 50 mile per hour condition, for any impact, the peak force measured by the CLC shall not exceed 180 lbf (800N) and the peak force measured by the ULC or LLC shall not exceed 225 lbf (1001 N).
[0093] The laboratory, samples and ball conditioning parameters are set forth in Table 8 below.
TABLE-US-00008 TABLE 8 Laboratory, Samples and Ball Conditioning Parameters Lab Temperature (° F.) Lab % Relative Humidity Average Min max Average Min Max 71.1 70.4 71.9 48.2 47.0 49.4
[0094] The test was carried out under the following laboratory conditions: 71.5° F. and 47.7% relative humidity.
[0095] Results
[0096] The results of the chest protector impact tests are shown below in Table 9 (30 mile per hour condition) and Table 10 (50 mile per hour condition).
TABLE-US-00009 TABLE 9 Chest Protector Impact Test (30 mph condition) Velocity (30 ± 3%) Ibsf Target MPH CLC ULC LLC CLC 29.62 64.38 23.31 12.24 ULC 30.09 32.18 72.41 <10 LLC 29.93 20.57 10.67 74.08
TABLE-US-00010 TABLE 10 Chest Protector Impact Test (50 mph condition) Velocity (50 ± 3%) Ibsf Target MPH CLC ULC LLC CLC 49.67 140.79 65.41 25.53 ULC 49.76 53.56 167.57 10.60 LLC 51.16 49.53 22.18 153.01
[0097] As can be seen from the above results, the chest protector passed each of the tests by a large margin. This means that the chest protector (and accompanying chest pad) according to the present invention may significantly reduce the risk of occurrence of commotio cordis to a user.
[0098] Notwithstanding that the numerical ranges and parameters setting forth the broad scope of the invention are approximations, the numerical values set forth in the specific examples are reported as precisely as possible. Any numerical values, however, inherently contain certain errors necessarily resulting from the standard deviation found in their respective testing measurements. Furthermore, when numerical ranges of varying scope are set forth herein, it is contemplated that any combination of these values inclusive of the recited values may be used.
[0099] The invention described and claimed herein is not to be limited in scope by the specific embodiments herein disclosed, since these embodiments are intended as illustrations of several aspects of the invention. Any equivalent embodiments are intended to be within the scope of this invention. Indeed, various modifications of the invention in addition to those shown and described herein will become apparent to those skilled in the art from the foregoing description. Such modifications are also intended to fall within the scope of the appended claims. All patents and patent applications cited in the foregoing text are expressly incorporated herein by reference in their entirety.