Bicycle helmet with reinforcement structure
A bicycle helmet has a body with a concave inner surface configured to permit the helmet to fit a user's head. The helmet also includes a reinforcement structure having a plurality of separate frames interconnected with each other, at least one of the plurality of frames comprising a unidirectional filament, wherein the reinforcement structure engages the body.
1. A bicycle helmet, comprising:
a body having a concave inner surface configured to permit the helmet to fit a user's head; and
a reinforcement structure comprising a plurality of frames interconnected with each other, at least one of the plurality of frames comprising a unidirectional filament, the unidirectional filament forming a plurality of loops, at least two of the loops overlapping with each other,
wherein the reinforcement structure engages the body.
2. The helmet of claim 1 , wherein the reinforcement structure is embedded in the body.
3. The helmet of claim 2 , wherein the body comprises an expanded foam material formed about substantially the entire reinforcement structure.
4. The helmet of claim 1 , wherein the filament comprises Kevlar.
5. The helmet of claim 1 , wherein the filament comprises carbon fiber.
6. The helmet of claim 1 , wherein the filament comprises fiberglass.
7. The helmet of claim 1 , wherein the filament comprises a combination of at least two materials chosen from the group consisting of Kevlar, carbon fiber and fiberglass.
8. The helmet of claim 1 , wherein the filament is hand-laid.
9. The helmet of claim 1 , wherein the plurality of frames comprise loops of linear material.
10. The helmet of claim 9 , wherein one of said loops overlaps with another of said loops to form said structure.
11. The helmet of claim 10 , wherein the loops overlap between about 3 cm and about 4 cm with each other.
12. The helmet of claim 1 , wherein the plurality of frames are interconnected by plastic rivets.
13. A bicycle helmet, comprising:
a body having a concave inner surface configured to permit the helmet to fit a user's head; and
a reinforcement structure embedded in the body, the reinforcement structure comprising a continuous unidirectional filament that forms a plurality of loops, at least two of the loops overlapping with each other,
wherein the unidirectional filament engages the body.
14. The helmet of claim 13 , wherein the filament comprises Kevlar.
15. The helmet of claim 13 , wherein the filament comprises carbon fiber.
16. The helmet of claim 13 , wherein the filament comprises fiberglass.
17. The helmet of claim 13 , wherein the filament comprises a combination of at least two materials chosen from the group consisting of Kevlar, carbon fiber and fiberglass.
18. The helmet of claim 13 , wherein the filament is hand-laid.
19. The helmet of claim 13 , wherein the reinforcement structure comprises a plurality of frames, the frames interconnected with each other.
20. The helmet of claim 19 , wherein the plurality of frames are interconnected via plastic rivets.
21. A method of manufacturing a bicycle helmet, comprising:
forming a reinforcement structure comprising a plurality of frames interconnected with each other, the reinforcement structure comprising a unidirectional filament that forms a plurality of loops, at least two of the loops overlapping with each other; and
embedding the reinforcement structure in a body having a concave inner surface and a convex outer surface, the reinforcement structure engaging at least a portion of the body.
22. The method of claim 21 , wherein the unidirectional filament is continuous.
23. The method of claim 21 , wherein forming the reinforcement structure comprising the plurality of frames includes attaching a plurality of loops of linear material to each other so that one of said loops overlaps with another of said loops to form said reinforcement structure.
24. The method of claim 21 , wherein the unidirectional filament comprises a material chosen from the group consisting of Kevlar, carbon fiber and fiberglass.
25. The method of claim 24 , wherein the unidirectional filament comprises a combination of at least two materials chosen from the group.
26. The method of claim 21 , wherein forming the reinforcement structure includes hand-laying the unidirectional filament into a mold to form a frame having a desired layout, and curing the frame.