This invention relates generally to protective sports equipment. More particularly, this invention relates to shoulder pads for the sports of football, lacrosse and hockey.
Improvements are desired in the construction of football, lacrosse and hockey shoulder pads. In particular, improvements are desired in the dissipation of body heat and moisture of the wearer as well as the sanitary cleaning aspects of the pad component of football, lacrosse and hockey shoulder pad systems.
The soft pad component of the conventional shoulder pad system is the element of the football, lacrosse and hockey shoulder pad system that is immediately in contact with the wearer's body. The typical football, lacrosse or hockey shoulder pad system is comprised of a hard exoskeletal component and a soft pad component. The “soft pad component” is defined herein as the compressible padding that provides cushioning. The soft pad component is distinguishable from the rigid elements of the exoskeletal component. The soft pad component in the typical shoulder pad system is mechanically attached to the exoskeleton component so as to be positioned between the wearer's torso and upper body and the exoskeleton component of the shoulder pad system. The construction of conventional shoulder pad systems undesirably traps moisture and body heat between the soft pad component and the wearer's body. Additionally, the soft pad component of the conventional shoulder pad system cannot be laundered in a conventional fashion, thus leading to unsanitary conditions of the soft pad component.
The present invention relates to an improved shoulder pad system that enables improved heat and moisture transfer away from the wearer's body. Shoulder pads according to the invention would also enable frequent and conventional laundering of the soft pad component.
With regard to the foregoing, the present invention is directed to a soft pad component for a shoulder pad. In the preferred embodiment, the soft pad component is bilaterally symmetrical comprising left and right soft pad components that are positioned between the wearer's upper body and torso and the exoskeletal component of the shoulder pad system.
In another aspect, the invention relates to bilaterally symmetrical soft pad components comprised of releasably and mechanically attached multiple sub assembly segments. Each bilaterally symmetrical soft pad component comprising a front/chest segment, back segment and top/shoulder segment that is positioned between the front/chest segment and the back segment.
Another feature of the present invention is that the each sub assembly of the bilaterally symmetrical soft pad component is releasably and mechanically attached to the exoskeletal component of the shoulder pad system.
Another feature of the present invention is that the soft pad component of the shoulder pad system is constructed of a compressible, perforated, closed cell foam layer laminated between a moisture wicking, breathable fabric layer on the surface in immediate contact with the wearer's upper body and torso, and a breathable fabric on the surface in immediate contact with the exoskeletal component of the shoulder pad system.
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Soft Pad Component
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Soft pad component sub assemblies 20 and 30 are releasably and mechanically attached to exoskeleton assembly 10 by means of fasteners 153, 154, 155, 162, 164 and 165 that are preferably constructed of a hook and loop fastening system.
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Exoskeleton Assembly
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Each arch member 130 and 140 is generally U-shaped in configuration and preferably of one-piece molded plastic construction. The arch member 130 is preferably constructed to include a chest portion 32 and a back portion 34 and a connecting portion 36. Similarly, the arch member 140 is shown as having a chest portion 42, a back portion 44, and a connecting portion 46.
Each epaulette assembly 70 and 80 is preferably comprised of a one-piece molded hard plastic element that is generally convex in shape. Each such assembly has a fabric covered foam interior liner and a flexible connector 78 and 80 for attaching the epaulette assembly to the respective arch member 130 and 140.
Each shoulder cap assembly 50 and 60 is preferably comprised of a one-piece molded hard plastic element that is generally convex in shape. Each such assembly has a fabric covered foam interior liner and a flexible connector 76 and 86 for attaching the epaulette assembly to the respective arch member 130 and 140.
The sub arches 38 and 48 are preferably of one-piece molded plastic construction generally curved in shape. The sub arch is preferably connected to the same-side arch member 130 and 140 so as to be positioned under the connecting member 36 and 46 and between the arch member chest and back portions 32 and 34 or 42 and 44. The sub arch is preferably attached to the arch member by mechanical means, such as rivets or screws and nuts at points near the tops of the arch member front portion 32 and arch member back portion 34. The chest portion and the back portion are configured to have raised areas of varying shapes and sizes within their perimeters to provide added structural strength.
Each epaulette assembly 70 and 80 and each shoulder cap assembly 50 and 60 is preferably attached to the connecting portion 36 and 46 of the corresponding main arch at a point approximately above the wearer's shoulder by using mechanical connectors such as rivets or screws and nuts. The preferred assembly is accomplished by aligning the apertures in the connecting portion 36 or 46, the shoulder cap assembly flexible connector 76 or 80, and the epaulette assembly flexible connector 78 or 88 with the shoulder cap assembly flexible connector positioned between the connecting portion 36 and the epaulette assembly flexible connector.
Arch members 130 and 140 are preferably connected by placing the two arch members in adjacent relationship at a desired distance apart, with the back portion 34 substantially parallel to the back portion 44. A plurality of the connectors 222 are used to span between and connect the back portions 34 and 44 by means of a mechanical fastener such as a rivet or a screw and nut.
Arch members 130 and 140 are preferably connected at the front by placing the arch members 130 and 140 adjacent to one another, with the chest portion 32 substantially parallel to the chest portion 42. Flexible cord 126 is threaded through apertures in chest portions 32 and 42 and fastener 128 is used to maintain the wearer's desired tension in flexible cord. The preferred fastener 128 is constructed of molded hard plastic and enables the wearer to quickly and frequently lock or unlock its hold on flexible cord 126.