This application is a 35 USC § 371 National Stage application of International Application No. PCT/EP2020/068406, entitled “HEADGEAR,” filed on Jun. 30, 2020, which claims the benefit of United Kingdom Patent Application No. 1911794.4, filed on Aug. 16, 2019, the disclosure of which is incorporated herein by reference in its entirety.
The present invention relates to an item of headgear, for example an item of headgear for contact field sports including but not limited to rugby, soccer, and Australian Rules football.
Contact sports that involve impact with an opponent and equipment, such as goal posts or a ball have the potential to cause serious injury. To mitigate some of the risk of injury, competitors may wear headgear designed to absorb some of the impact of an impact. Headgear typically include padding designed to deform on impact to absorb some of the energy of an impact. One example of such headgear is a rugby scrum cap.
Headgear used in contact sports are better at protecting against an axial component of an impact, passing through the centre of gravity of the head, than a tangential component of an impact that causes the head to rotate. During an oblique impact, tangential force components may be exerted on the receiver of an impact. In the case of an oblique impact on a receiver's head, this may result in angular acceleration of the head. Angular acceleration of the head causes the brain to rotate within the skull, creating injuries on bodily elements connecting the brain to the skull and also to the brain itself.
Examples of rotational injury include subdural haematomas, bleeding as a consequence of blood vessels rupturing, and diffuse axonal injuries, which can be summarised as nerve fibres being overstretched as a consequence of high shear deformations in the brain tissue. Dependent on the characteristics of the rotational force, such as the duration, amplitude and rate of increase, either subdural haematomas or diffuse axonal injuries occur, or a combination of these is suffered. Generally speaking, subdural haematomas occur in the case of short duration and great amplitude rotational accelerations, while diffuse axonal injuries occur in the case of longer and more widespread acceleration loads. In addition, rotational injuries can include less severe injuries such as concussion.
The present invention aims to at least partially address some of the problems discussed above.
According to an aspect of the invention there is provided headgear for rugby and/or soccer, comprising: an inner layer configured to accommodate a wearer's head; an outer layer covering at least a part of the inner layer; a padding layer between the inner and outer layers, configured to absorb and/or redirect energy of an impact between the headgear and an object; and a sliding interface between the inner layer and the outer layer at which the inner layer and the outer layer are configured to slide relative to each other in response to an impact between the headgear and an object.
Optionally, at least one of the inner and outer layers is formed from an elastic material configured to stretch elastically in response to an impact between the headgear and an object to allow the inner layer and the outer layer to slide relative to each other.
Optionally, the inner and outer layers are connected by an elastic connecting means configured to stretch elastically in response to an impact between the headgear and the object to allow the inner layer and the outer layer to slide relative to each other.
Optionally, the sliding interface comprises an intermediate layer formed from a material selected such that there is low friction between the intermediate layer and at least one adjacent layer.
Optionally, the sliding interface comprises first and second intermediate layers, arranged adjacent each other and each formed from a material selected such that there is low friction at least between the first and second intermediate layers.
Optionally, the sliding interface comprises a modification of the surface of at least one of the inner, outer and padding layers such that there is low friction between that surface and an adjacent layer.
Optionally, said modification of the surface comprises the use of a different substance from that used to form the inner, outer or padding layer, impregnated into the surface of the inner, outer or padding layer or bonded to the inner, outer or a padding layer.
Optionally, said modification of the surface comprises a physical treatment to the surface of at least one of the inner, outer, and padding layers in order to change the mechanical properties of the surface of the layer.
Optionally, the sliding interface is provided between the outer layer and the padding layer.
Optionally, the sliding interface is provided between the inner layer and the padding layer.
Optionally, the padding layer comprises first and second padding layers and the sliding interface is provided between the first and second padding layers.
Optionally, the inner layer has a multi-layered structure and the sliding interface is provided between respective layers of the inner layer.
Optionally, the outer layer has a multi-layered structure and the sliding interface is provided between respective layers of the outer layer.
Optionally, the padding layer comprises a plurality of padding segments, each padding segment being configured to slide relative to the inner and/or outer layers at a sliding interface and each padding segment being configured to slide independently of each other padding segment.
Optionally, the outer layer comprises a plurality of outer layer segments, each outer layer segment being configured to slide relative to the padding and/or inner layers at a sliding interface and each outer layer segment being configured to slide independently of each other outer layer segment.
Optionally, the inner layer comprises a plurality of inner layer segments, each inner layer segment being configured to slide relative to the padding and/or outer layers at a sliding interface and each inner layer segment being configured to slide independently of each other inner layer segment.
Optionally, the outer layer comprises a plurality of outer plates, the outer plates being mounted on the padding layer such that, under an impact to an outer plate, the outer plate can slide across the relatively padding layer and move relative to other outer plates.
Optionally, the headgear is configured to provide unobstructed peripheral vision clearance downwards in the vertical field.
Optionally, the headgear is a cap configured to cover the top of the wearer's head.
Optionally, the headgear is a headband configured to encircle the wearer's head.
Optionally, the sliding interface, is at least provided in a portion of the headgear configured to cover the forehead of the wearer.
Optionally, the padding facing towards the wearer has the same texture, hardness and/or density as the padding facing away from the wearer.
Optionally, the padding layer has a maximum uncompressed thickness of no more than 1 cm.
Optionally, the padding layer has a maximum density of no more than 60 kilograms per cubic meter, or optionally no more than 45 kilograms per cubic meter.
Optionally, the headgear is configured to cover the ear areas of the wearer.
Optionally, a portion of the headgear covering the ear area comprises an aperture having a maximum linear dimension of no more than 30 mm.
Optionally, the aperture has a minimum linear dimension of no less than 25 mm.
Optionally, the aperture comprises a mesh covering.
Optionally, the headgear further comprises a chin strap for securing the headgear to the wearer's head.
Optionally, the chinstrap is configured to deform to accommodate the sliding.
Optionally, the headgear is configured to provide peripheral vision clearance of at least 105 degrees to each side in the horizontal field.
Optionally, the headgear is configured to provide peripheral vision clearance of at least 25 degrees upwards in the vertical field.
Optionally, the headgear may comprise a fluid filled envelope between the inner and outer layers configured to provide the sliding interface.
The invention will now be described by way of non-limiting examples, with reference to the accompanying drawings, in which:
A first example headgear is shown in
The headgear comprises an inner layer 1 configured to accommodate a wearer's head. Accordingly, the inner layer 1 defines a cavity within which a head can be inserted. Covering at least a part of the inner layer 1 is an outer layer 2. Between the inner and outer layers 1, 2 is a padding layer 3. The padding layer is configured to absorb and/or redirect energy of an impact between the headgear and an object. The inner and outer layers may be connected at one or more seams 5, e.g. by stitching.
The inner and outer layers 1, 2 may, for example, be formed from a textile, a cloth and/or a fabric. These may be constructed from synthetic yarns, such as Polyester (PES), Polyamide (PA, e.g. PA6) and/or Elastane, natural yarns, such as cotton and/or wool, or a combination of both. However, other materials may also be used, including felts and directly-formed flexible sheet materials including, for example, leather and/or artificial leather. Preferably, the inner and outer layers are made from soft, thin materials so as not to cause injury to players.
It should be appreciated that the first and second layers may be formed from different materials and/or different types of material. The layer of material to be provided on the inside of the headgear may be selected for one particular quality, such as comfort for the wearer, while a second material may be selected for the layer to be formed on the outside of the headgear, for example for its appearance, wear resistance, and/or water resistance. Both layers may be formed from the same material.
As shown in
The headgear further comprises a sliding interface between the inner layer and the outer layer at which the inner layer and outer layer are configured to slide relative to each other in response to an impact between the headgear and an object. This sliding mitigates the transmission of rotational forces to the wearer's head, caused by an oblique impact to the to the wearer's head, e.g. by redirecting the energy of an impact. In an arrangement, the headgear may be configured such that, in response to an impact, the sliding results in a relative movement between the inner layer and the outer layer in a range of between 1 mm and 100 mm, optionally greater than 5 mm, 10 mm, or 15 mm, optionally less than 15 mm, 20 mm or 30 mm.
Various examples of sliding interfaces for the headgear depicted in
It should be appreciated that, for clarity, in
In an arrangement such as that shown in
In the arrangements shown in
Depending on the modified surface, it may be sufficient that the surface of only one of the outer layer 2 and padding layer 3 be modified.
It should be appreciated that this arrangement may be combined with those discussed above, namely by providing one or more intermediate layers 4 between the modified surfaces 21, 31 of the outer layer 2 and padding layer 3 in order to promote further the low friction interface.
It should also be appreciated that instead of modifying the surfaces of the outer layer 2 and/or padding layer 3, the materials forming the outer layer 2 and/or padding layer 3 may be selected such that there is sufficiently low friction between the opposing surfaces of the outer layer 2 and padding layer 3 to provide a low friction interface.
A variety of modifications may be used in order to modify the surfaces 21, 31 of the outer layer 2 and padding layer 3. It should also be appreciated that a different modification may be used for the outer layer 2 from the modification used for the padding layer 3. By way of example, the surface of a layer may be modified by impregnating a different substance into the surface of the layer. Alternatively or additionally, a different substance may be bonded to the surface of the layer. Alternatively or additionally, a physical treatment may be applied to the surface of the layer. For example, in the case of a woven synthetic material, the surface to be modified may be partially melted in order to provide a smoother surface.
It should be appreciated that, for clarity, in
In an arrangement such as that shown in
In the arrangements shown in
Depending on the modified surface, it may be sufficient that the surface of only one of the inner layer 1 and padding layer 3 be modified.
It should be appreciated that this arrangement may be combined with those discussed above, namely by providing one or more intermediate layers 4 between the modified surfaces 21, 31 of the inner layer 1 and padding layer 3 in order to promote further the low friction interface.
It should also be appreciated that instead of modifying the surfaces of the inner layer 1 and/or padding layer 3, the materials forming the inner layer 1 and/or padding layer 3 may be selected such that there is sufficiently low friction between the opposing surfaces of the inner layer 1 and padding layer 3 to provide a low friction interface.
A variety of modifications may be used in order to modify the surfaces 21, 31 of the inner layer 1 and padding layer 3. It should also be appreciated that a different modification may be used for the inner layer 1 from the modification used for the padding layer 3. By way of example, the surface of a layer may be modified by impregnating a different substance into the surface of the layer. Alternatively or additionally, a different substance may be bonded to the surface of the layer. Alternatively or additionally, a physical treatment may be applied to the surface of the layer. For example, in the case of a woven synthetic material, the surface to be modified may be partially melted in order to provide a smoother surface.
A second example headgear is shown in
As in the first example headgear, the second example headgear further comprises a sliding interface between the inner layer and the outer layer at which the inner layer and outer layer are configured to slide relative to each other in response to an impact between the headgear and an object. However, in this example, a sliding interface is provided between the first and second padding layers 3A, 3B. Various examples of sliding interfaces for the headgear depicted in
It should be appreciated that, for clarity, in
In an arrangement such as that shown in
In the arrangements shown in
Depending on the modified surface, it may be sufficient that the surface of only one of the first and second padding layers 3A, 3B be modified.
It should be appreciated that this arrangement may be combined with those discussed above, namely by providing one or more intermediate layers 4 between the modified surfaces 31A, 31B of the first and second padding layers 3A, 3B in order to promote further the low friction interface.
It should also be appreciated that instead of modifying the surfaces of the first and second padding layers 3A, 3B, the materials forming the first and second padding layers 3A, 3B may be selected such that there is sufficiently low friction between the opposing surfaces of the first and second padding layers 3A, 3B to provide a low friction interface.
A variety of modifications may be used in order to modify the surfaces 31A, 31B of the first and second padding layers 3A, 3B. It should also be appreciated that a different modification may be used for the first padding layer 3A from the modification used for the second padding layer 3B. By way of example, the surface of a layer may be modified by impregnating a different substance into the surface of the layer. Alternatively or additionally, a different substance may be bonded to the surface of the layer. Alternatively or additionally, a physical treatment may be applied to the surface of the layer. For example, in the case of a woven synthetic material, the surface to be modified may be partially melted in order to provide a smoother surface.
A further arrangement for providing a sliding interface to the headgear is shown in
As the inner and outer layers of the headgear move relative each other, so opposing walls of the envelope move relative each other. The envelope may be secured to one or both adjacent layers of the headgear. Alternatively, the envelope may be free to move within the space between the layers. Multiple relatively small envelopes 40 may be provided within the headgear. Alternatively, one envelope 40 may be provided. This envelope may be relatively large, so as to substantially cover the entire headgear.
In this arrangement, the fluid filled envelope is provided between the outer layer 2 and the padding layer. However, the envelope may be provided between any sliding layers described above.
In the preceding description, reference has been made to the provision of a low friction sliding interface. It should be appreciated that the level of friction necessary to constitute low friction may vary. However, in this context, it is meant a level of friction between the respective layers that ensures that the layers may slide relative each other under the loading that may be expected for an item of headgear used for punching. In some uses of the invention, it may be desirable to configure the low friction interface such that the coefficient of friction is between 0.001 and 0.3 and/or below 0.15.
In an example, at least one of the materials used to form the inner and outer layers 1, 2 may be stretchable. This may enable a region of one of the inner and outer layers 2, 3 to slide relative to the other of the layers, even if the edges of the first and second layers are secured relative to each other, for example, where a section of the layer is secured to another component, e.g. the other of the inner and outer layers 1, 2. In such a condition, a part of one of the layers may be stretched on one side of the region that is sliding.
Accordingly, at least one of the inner and outer layers 1, 2 may be formed from an elastic material configured to stretch elastically in response to an impact between the headgear and an object to allow the inner layer and the outer layer to slide relative to each other.
Alternatively or additionally, at least one of the materials used to connect the inner and outer layers 1, 2 may be stretchable. Accordingly, the inner and outer layers 1, 2 may be connected by an elastic connecting means configured to stretch elastically in response to an impact between the headgear and the object to allow the inner layer and the outer layer to slide relative to each other. For example, the seams 5 may be stitched using a stretchable material.
Although the above description has referred to the layers as if they are formed of a single material, it should be appreciated that these layers may themselves may be formed from multiple layers of materials For example, the inner and/or outer layers 1, 2 may be formed from a fabric substrate (or any other example material described above) coated with plastic or rubber.
The layers may be formed from different materials in different regions. In another example, a central portion of the inner and/or outer layers 1, 2 may be formed from a relatively inelastic material (e.g. synthetic woven fabric) and a peripheral portion, e.g. surrounding the central portion, may be formed from a relatively elastic material (e.g. Lycra™). Accordingly, the central portion may be allowed to move relative to the peripheral portion (and slide relative to an adjacent layer), by the elastic stretching of the peripheral portion.
A third example headgear is shown in
The inner layer 1 of the third example headgear may comprise an inner-inner layer 1A and an outer-inner layer 1B. One or more intermediate layers 4 may be provided between the inner-inner layer 1A and the outer-inner layer 1B. The arrangement and function of the multiple layers of the inner layer 1 may be analogous to the multiple layers described above in relation to
The materials forming the inner-inner layer 1A and outer-inner layer 1B may be formed from a textile, a cloth and/or a fabric. These may be constructed from synthetic yarns, such as Polyester (PES), Polyamide (e.g. PA6) and/or Elastane, natural yarns such as cotton, or a combination of both. However, other materials may also be used, including felts and directly-formed flexible sheet materials including, for example, artificial leather.
It should be appreciated that the inner-inner layer 1A and outer-inner layer 1B may be different and/or different types. Accordingly, the layer of material to be provided on the inside of the inner layer 1 may be selected for one particular quality, such as comfort for the wearer, while a second material may be selected for the layer to be formed on the outside of the inner layer 1, for example for its appearance. Both layers may be formed from the same material.
The material may be configured to include perforations and/or ventilation holes. In general, the inner layer 1 may be configured, by use of such perforations and/or ventilation holes and/or by selection of the substances used to form the material, to ensure that heat and/or sweat can be transferred away from the head of the wearer.
At least one of the inner-inner layer 1A and outer-inner layer 1B may be selected to be stretchable, which may help in ensuring that a region of the inner-inner layer 1A and outer-inner layer 1B are slidable relative to each other. Use of such material may also ensure that the inner layer 1 overall is stretchable and thereby may provide a comfortable but secure fit to a variety of head sizes.
In an arrangement, the material used to form the inner layer 1 may have a total thickness of from 0.1 mm to 20 mm.
A fourth example headgear is shown in
The outer layer 2 of the fourth example headgear may comprise an inner-outer layer 2A and an outer-outer layer 2B. One or more intermediate layers 4 may be provided between the inner-outer layer 2A and the outer-outer layer 2B. The arrangement and function of the multiple layers of the outer layer 2 may be analogous to the multiple layers described above in relation to
The materials forming the inner-outer layer 2A and outer-outer layer 2B may be the same as described above in relation to the inner-inner layer 1A and outer-inner layer 1B respectively.
A fifth example headgear is shown in
The padding layer 3 may comprise at least two padding segments connected to each other by a connector 3F configured to allow relative movement between the two padding segments.
As in the example shown in
In a variation of the fifth example, the connector 3F may be an integral part of the padding layer co-formed with the at least two padding segments, between the at least two padding segments. The connector 3F may be formed so as to have a lower stiffness than the at least two padding segments so as to allow the at least two padding segments to move relative to each other.
For example, the connector 3F may comprise apertures in the padding layer forming the part of the padding layer configured to provide the lower stiffness of the connector compared to the at least two padding segments, wherein the material of the padding layer defining the apertures forms a resilient structure.
A sixth example headgear is shown in
The outer layer 2 may comprise at least two outer layer segments connected to each other by a connector 2F configured to allow relative movement between the two outer layer segments.
As in the example shown in
In a variation of the sixth example, the connector 2F may be an integral part of the outer layer co-formed with the at least two outer layer segments, between the at least two outer layer segments. The connector 2F may be formed so as to have a lower stiffness than the at least two outer layer segments so as to allow the at least two outer layer segments to move relative to each other.
For example, the connector 2F may comprise apertures in the outer layer forming the part of the outer layer configured to provide the lower stiffness of the connector 2F compared to the at least two outer layer segments, wherein the material of the padding layer defining the apertures forms a resilient structure.
A seventh example headgear is shown in
The inner layer 1 may comprise at least two inner layer segments connected to each other by a connector 1F configured to allow relative movement between the two inner layer segments.
As in the example shown in
In a variation of the seventh example, the connector 1F may be an integral part of the inner layer co-formed with the at least two inner layer segments, between the at least two inner layer segments. The connector 1F may be formed so as to have a lower stiffness than the at least two inner layer segments so as to allow the at least two inner layer segments to move relative to each other.
For example, the connector 1F may comprise apertures in the inner layer forming the part of the inner layer configured to provide the lower stiffness of the connector 1F compared to the at least two inner layer segments, wherein the material of the padding layer defining the apertures forms a resilient structure.
In the above examples, segments should not be confused with layers. Whereas the layers are provided substantially adjacent each other in a thickness direction of the headgear, in contrast, the segments are substantially provided adjacent each other in a direction substantially perpendicular to the thickness direction of the headgear.
An eighth example headgear is shown in
A low friction interface may be provided between the outer surface of the padding layer and at least a part of the surface of the outer plates 17 that is in contact with the outer surface of the padding layer under an impact to an outer plate 17. The low friction interface may be provided by an intermediate layer 18 formed form a material that is relatively hard compared to the padding layer 3.
The headgear may comprise at least one connector (not shown) associated with each outer plate 17, configured to secure the outer plate 17 to at least one of the padding layer and the intermediate layer 14 in the absence of an impact.
The connector may be configured to deform under an impact to the outer plate associated with the connector, e.g. elastically. Alternatively, or additionally, the connector may be configured to rupture under an impact to the outer plate 17 associated with the connector.
A ninth example headgear is shown in
In this example, the headgear is substantially formed from the padding 200 such that one of the first support layer 101 and the second support layer 102 forms the inner layer 1 of the headgear and the other of the first support layer 101 and the second support layer forms the outer layer 2 of the headgear.
In each of the above example headgear, it may be preferable that the padding facing towards the wearer has the same texture, hardness and/or density as the padding facing away from the wearer. This may ensure that the forces experiences by the wearer and an opponent are similar.
In each of the above example headgear, it may be preferable that the padding layer has a maximum uncompressed thickness of no more than 1 cm, and/or has a maximum density of no more than 60 kilograms per cubic meter, or optionally no more than 45 kilograms per cubic meter.
In each of the above example headgear, it may be preferable that a portion of the headgear covering the ear area comprises an aperture having a maximum linear dimension of no more than 30 mm, the aperture has a minimum linear dimension of no less than 25 mm, and/or the aperture comprises a mesh covering.
In each of the above example headgear, it may be preferable that a chin strap is provided for securing the headgear to the wearer's head. The chinstrap may be configured to deform to accommodate the sliding.
In each of the above example headgear, it may be preferable that the headgear is configure to provide peripheral vision clearance of at least 105 degrees to each side in the horizontal field, peripheral vision clearance of at least 25 degrees upwards in the vertical field and/or to provide unobstructed peripheral vision clearance downwards in the vertical field.
Variations of the above described embodiments are possible in light of the above teachings. It is to be understood that the invention may be practised otherwise than specifically described herein without departing from the spirit and scope of the invention.
Number | Date | Country | Kind |
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1911794 | Aug 2019 | GB | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2020/068406 | 6/30/2020 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2021/032347 | 2/25/2021 | WO | A |
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