The present invention relates generally to a protection device for a helmet.
It is known to use helmets comprising inner portions of energy or shock absorbing material such as for instance expanded polystyrene (EPS) or expanded polypropylene (EPP) to provide light-weight helmets with energy absorbing capabilities. Such helmets are known from for instance US2012/0036619 A, or US2008/0172774 A1 by the applicant.
In alpine skiing sports, involving high speeds and the turning around poles defining a course, the continuous high energy impact hitting of the poles against the helmet and other portions of the skier's equipment or body is present. As the skier seeks the shortest distance and/or the least time consuming path along the course the poles often need to be brought out of the way leading to a direct contact situation between the skiers body, and often, helmet and the poles. The combination of high speeds and the relatively heavy poles generates high energy impacts against the skier's helmet.
The ability of the material of the helmet to withstand the impact in a crash situation and absorb the resulting high energies due to the large forces acting on the helmet in such situations may be decreased by the frequently occurring impacts from e.g. poles causing plastic deformation of the material of the helmet over time. Another disadvantage is that these repeated impacts each may cause the head and brain to frequently accelerate to undesirable levels.
An object of the present invention is to alleviate some of the disadvantages of the prior art and to provide an improved helmet, which improves the helmets ability to protect the users head in a crash-situation after a prolonged use involving repeated impacts.
Another object of the invention is to provide a light-weight and aerodynamic helmet that protects the users head during repeated impact from reaching undesirable acceleration levels.
According to one embodiment of the invention, a helmet is provided comprising: a rigid outer shell, at least one inner portion comprising a first energy absorbing material, wherein the helmet further comprising a protection device comprising a protective section, wherein the protective section comprises a surface portion, wherein a second energy absorbing material is arranged between the first energy absorbing material and the surface portion of the protective section.
According to one embodiment, the protective section comprises a raised protective section extending from the rigid outer shell.
According to another embodiment the second energy absorbing material is arranged adjacent the first energy absorbing material.
According to another embodiment, the protection device is formed integrally with the rigid outer shell, wherein the protective section comprises the rigid outer shell, wherein the protective section forms an inner space, wherein the second energy absorbing material is arranged in the inner space.
According to another embodiment, the protection device is arranged on the rigid outer shell, wherein the rigid outer shell is arranged between the first energy absorbing material and the second energy absorbing material.
According to another embodiment, the protective section further comprises an edge portion wherein the surface portion and edge portion forms the inner space and the edge portion has an angle a in relation to the surface portion, wherein α>90□, preferably in the range of 110□-160□.
According to another embodiment, the protection device comprises a plurality of raised protective sections.
According to another embodiment, the helmet comprises a front portion and a rear portion, wherein the protection device is formed on the front portion of the helmet.
According to another embodiment, the first energy absorbing material comprises Expanded Polypropylene.
According to another embodiment, the second energy absorbing material comprises foam polyurethane, preferably viscoelastic flexible polyurethane.
According to another embodiment, the surface portion comprises a low friction material having a friction coefficient μagainst itself, i.e. wherein the countersurface/material is formed by the low friction material, below 0.6, more preferably being in the range of 0.1<μ<0.4.
According to another embodiment a helmet is provided comprising: a rigid outer shell, at least one inner portion comprising a first energy absorbing material; wherein the rigid outer shell comprises a low friction material.
The invention is now described, by way of example, with reference to the accompanying drawings, in which:
In the following, a detailed description of the invention will be given. In the drawing figures, like reference numerals designate identical or corresponding elements throughout the several figures. It will be appreciated that these figures are for illustration only and are not in any way restricting the scope of the invention.
As can be seen in
According to one embodiment, an inner space 6 is formed by the protective section 3a being hollow and defined by the surface portion 3b and, when present, the edge portion 3c. According to one embodiment, a second energy absorbing and chock absorbing protective material 5 is arranged below the protective section 3a, on the inner surface, facing the inner space 6, of the surface portion 3b of the protective device 3a. According to one embodiment, an adhesive is used to fixedly arrange the second energy absorbing material onto inner surface of the surface portion 3b. According to one embodiment, the second energy absorbing material 5 is arranged in the inner space 6. According to one embodiment, the protective second energy absorbing material 5 is arranged directly onto and adjacent the first energy absorbing material 4 by the use of an adhesive, i.e. wherein an adhesive is arranged between the first energy absorbing material and the second energy absorbing material.
According to one embodiment, the protection device 3 is arranged onto the outer shell 2, i.e. whereby the rigid outer shell 2 is arranged between the first energy absorbing material 4 and the second energy absorbing material 5. In this embodiment, a separate protection device 3 may be arranged onto the outer shell 2 of the helmet 1. The separate protection device 3 may have a shell formed by the same material as the outer shell 2, and forms a separate inner space 6 which may be filled with the second energy absorbing material 5.
According to one embodiment, the second energy absorbing material 5 comprises a viscoelastic flexible polyurethane foam also known by the registered trademark VPD® by the applicant. According to one embodiment, the protective material 5 may comprise any type of polyurethane foam having elastic and energy absorbing capabilities. Such material is commonly referred to as a multi-impact material. According to one embodiment, the second energy absorbing material 5 may comprise any kind of polymeric foam. According to one embodiment, the second energy absorbing material may be a shock absorbing pad. According to one embodiment, the second energy absorbing material may comprise honeycomb material.
According to one embodiment, the protective section 3a, and at least the surface portion 3b may be formed by a low friction material having a lower friction coefficient than the outer shell 2 against a given countersurface/material, to reduce the friction between e.g. the poles and the helmet during impact and, subsequently, the sliding of the pole against the helmet as the skier passes the pole/gate. If the raised protective section 3a is formed by the same material as the outer shell 2, the protective section 3a may be covered by a thin layer of low friction material having a lower friction coefficient than the outer shell 2 against a given countersurface/material.
According to one embodiment, a helmet is provided comprising a rigid outer shell 2, and an inner portion 4 comprising an energy absorbing material 4, wherein the rigid outer shell 2 comprises a low friction material. The helmet 1 may be provided comprising a rigid outer shell 2, and an inner portion 4 comprising an energy absorbing material 4, wherein the entire shell 2 is covered by a material having a low friction coefficient. The rigid outer shell 2 may also be formed by a low friction material.
According to one embodiment, the low friction material has a friction coefficient which is lower than that of polycarbonate or ABS against a given and same countersurface/material. According to one embodiment, the friction coefficient 1.1 of the low friction material against itself, i.e. wherein the countersurface/material is formed by the low friction material, is below 0.6, more preferably in the range of 0.1<μ<0.4.
According to one embodiment, the protection device 3 is arranged on the helmet in an area where the most frequent engagement or hitting of the poles against the helmet has been found to occur from a plurality of studies.
According to one embodiment, the protection device 3 may comprise a plurality of protective sections 3a (not shown) distributed on suitable areas of the surface of the helmet, i.e. areas comprised by the area as previously defined.
A preferred embodiment of a protection device for helmet according to the invention has been described. However, the person skilled in the art realizes that this can be varied within the scope of the appended claims without departing from the inventive idea.
All the described alternative embodiments above or parts of an embodiment can be freely combined without departing from the inventive idea as long as the combination is not contradictory.
Filing Document | Filing Date | Country | Kind |
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PCT/SE2012/051300 | 11/23/2012 | WO | 00 |