Triple layered compressible liner for impact protection
11617405 · 2023-04-04
Assignee
Inventors
Cpc classification
B65D65/403
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A compressible liner for a helmet or other apparatus subject to shock loading comprises three substantially co-extensive layers mutually engaged by respective cone-like protuberances and cone-like recesses. The intermediate layer is of a different compressibility and provides for de-coupling of the layers in an oblique impact.
Claims
1. A helmet comprising: an outer shell; an inner liner; and a compressible liner disposed between the outer shell and the inner liner, said compressible liner comprising: three co-extensive layers comprising an intermediate layer between a first layer and a second layer, wherein the first layer comprises a first array of cone-like protuberances, wherein the intermediate layer comprises a first array of cone-like recesses; wherein the cone-like protuberances in the first array of cone-like protuberances in the first layer project into corresponding cone-like recesses in the first array of cone-like recesses in the intermediate layer, wherein the intermediate layer further comprises a second array of cone-like protuberances, wherein the cone-like recesses in the first-array of cone-like recesses in the intermediate layer extend within the cone-like protuberances in the second array of cone-like protuberances in the intermediate layer, wherein the second layer comprises a second array of cone-like recesses; wherein the cone-like protuberances in the second array of cone-like protuberances in the intermediate layer project into corresponding cone-like recesses in the second array of cone-like recesses in the second layer, wherein an outer surface of the compressible liner is smooth and continuous; and wherein at least one of said co-extensive layers has a different at least one of compressibility and density to that of an adjacent layer of said co-extensive layers; wherein said co-extensive layers are each configured as one-piece and selected from foam expanded polystyrene and viscoelastic foam.
2. A helmet according to claim 1, wherein the second layer has a density in a range from 35-110 kgm.sup.−3, the intermediate layer has a density in a range from 15-100 kgm.sup.−3, and the first layer has a density in a range from 15-90 kgm.sup.−3.
3. A helmet comprising: an outer shell; an inner liner; and a compressible liner disposed between the outer shell and the inner liner, said compressible liner comprising: three co-extensive layers comprising an intermediate layer between an inner layer and an outer layer, each of the intermediate, the inner and the outer layer comprising respective arrays of cone-like protuberances and corresponding cone-like recesses; wherein the three layers are mutually engaged by the respective arrays of cone-like protuberances and corresponding cone-like recesses; wherein an outer surface of the compressible liner is smooth and continuous; wherein at least one of said co-extensive layers has a different at least one of compressibility and density to that of an adjacent layer of said co-extensive layers; wherein the cone-like protuberances in the inner layer and the intermediate layer protrude in the direction of the outer layer; wherein the cone-like protuberances in the inner layer and the intermediate layer fall short of the outer surface of the outer layer; wherein the cone-like protuberances in the inner layer and the intermediate layer are selected from cones with conical tips and cones with truncated tips; wherein said co-extensive layers are each configured as one-piece and selected from foam expanded polystyrene and viscoelastic foam.
4. A helmet comprising: an outer shell; an inner liner; and a compressible liner disposed between the outer shell and the inner liner, said compressible liner comprising: three co-extensive layers comprising an intermediate layer between an inner layer and an outer layer, each of the intermediate, the inner and the outer layer comprising respective arrays of cone-like protuberances and corresponding cone-like recesses; wherein the three layers are mutually engaged by the respective arrays of cone-like protuberances and corresponding cone-like recesses; wherein an outer surface of the compressible liner is smooth and continuous; wherein one of said three co-extensive layers has a different at least one of compressibility and density to that of an adjacent layer of said three co-extensive layers; wherein the cone-like protuberances in the inner layer and the intermediate layer protrude in the direction of the outer layer; wherein the cone-like protuberances in the inner layer fall short of the outer surface of the outer layer; wherein the cone-like protuberances in the intermediate layer are contiguous with the outer surface of the outer layer; wherein the cone-like protuberances in the intermediate layer are selected from cones with conical tips and cones with truncated tips; wherein said co-extensive layers are each configured as one-piece and selected from foam expanded polystyrene and viscoelastic foam.
5. A helmet comprising: an outer shell; an inner liner; and a compressible liner disposed between the outer shell and the inner liner, said compressible liner comprising: three co-extensive layers comprising an intermediate layer between an inner layer and an outer layer, each of the intermediate, the inner and the outer layer comprising respective arrays of cone-like protuberances and corresponding cone-like recesses; wherein the three layers are mutually engaged by the respective arrays of cone-like protuberances and corresponding cone-like recesses; wherein an outer surface of the compressible liner is smooth and continuous; wherein one of said co-extensive layers has a different at least one of compressibility and density to that of an adjacent layer of said co-extensive layers; wherein the cone-like protuberances in the outer layer and the intermediate layer protrude in the direction of an inner surface of the inner layer; wherein the cone-like protuberances in the outer layer and the intermediate layer fall short of the inner surface of the inner layer; wherein the cone-like protuberances in the outer layer and the intermediate layer are selected from cones with conical tips and cones with truncated tips; wherein said co-extensive layers are each configured as one-piece and selected from foam expanded polystyrene and viscoelastic foam.
6. A helmet comprising: an outer shell; an inner liner; and a compressible liner disposed between the outer shell and the inner liner, said compressible liner comprising: three co-extensive layers comprising an intermediate layer between an inner layer and an outer layer, each of the intermediate, the inner and the outer layer comprising respective arrays of cone-like protuberances and corresponding cone-like recesses; wherein the three layers are mutually engaged by the respective arrays of cone-like protuberances and corresponding cone-like recesses; wherein an outer surface of the compressible liner is smooth and continuous; wherein one of said co-extensive layers has a different at least one of compressibility and density to that of an adjacent layer of said co-extensive layers; wherein the cone-like protuberances in the outer layer and the intermediate layer protrude in the direction of the inner layer; wherein the cone-like protuberances in the outer layer fall short of an inner surface of the inner layer; wherein the cone-like protuberances in the intermediate layer are contiguous with the inner surface of the inner layer; wherein the cone-like protuberances in the intermediate layer are selected from cones with conical tips and cones with truncated tips; wherein said co-extensive layers are each configured as one-piece and selected from foam expanded polystyrene and viscoelastic foam.
7. A helmet comprising: an outer shell; an inner liner; and a compressible liner disposed between the outer shell and the inner liner, said compressible liner comprising: five co-extensive layers comprising a core central layer, an upper intermediate layer, an upper outer layer, a lower intermediate layer and a lower outer layer, each of the upper and lower sides of the core layer, the upper intermediate layer, the upper outer layer, the lower intermediate layer and the lower outer layer comprising respective arrays of cone-like protuberances and corresponding cone-like recesses; wherein the five layers are mutually engaged by the respective arrays of cone-like protuberances and corresponding cone-like recesses, such engagement achieved through the engagement of the upper side of the core layer, the upper intermediate layer and the upper outer layer, and the lower side of the core layer, the lower intermediate layer and the lower outer layer; wherein the core layer comprises a first array of cone-like protuberances on its upper side, wherein the upper intermediate layer comprises a first array of cone-like recesses, wherein the cone-like protuberances in the first array of cone-like protuberances in the upper side of the core layer project into corresponding cone-like recesses in the first array of cone-like recesses in the upper intermediate layer; wherein the upper intermediate layer further comprises a second array of cone-like protuberances, wherein the core upper layer comprises a second array of cone-like recesses, wherein the cone-like protuberances in the second array of cone-like protuberances in the upper intermediate layer project into corresponding cone-like recesses in the second array of cone-like recesses in the core upper layer; wherein the upper intermediate layer further comprises a third array of cone-like protuberances, wherein the upper outer layer comprises a third array of cone-like recesses, wherein the cone-like protuberances in the third array of cone-like protuberances in the upper intermediate layer project into corresponding cone-like recesses in the third array of cone-like recesses in the upper outer layer; wherein the upper outer layer comprises a fourth array of cone-like protuberances, wherein the upper intermediate layer comprises a fourth array of cone-like recesses, wherein the cone-like protuberances in the fourth array of cone-like protuberances in the upper outer layer project into corresponding cone-like recesses in the fourth array of cone-like recesses in the upper intermediate layer; wherein the core layer comprises a fifth array of cone-like protuberances on its lower side, wherein the lower intermediate layer comprises a fifth array of cone-like recesses, wherein the cone-like protuberances in the fifth array of cone-like protuberances in the lower side of the core layer project into corresponding cone-like recesses in the fifth array of cone-like recesses in the lower intermediate layer; wherein the lower intermediate layer further comprises a sixth array of cone-like protuberances, wherein the core lower layer comprises a sixth array of cone-like recesses, wherein the cone-like protuberances in the sixth array of cone-like protuberances in the lower intermediate layer project into corresponding cone-like recesses in the sixth array of cone-like recesses in the core lower layer; wherein the lower intermediate layer further comprises a seventh array of cone-like protuberances, wherein the lower outer layer comprises a seventh array of cone-like recesses, wherein the cone-like protuberances in the seventh array of cone-like protuberances in the lower intermediate layer project into corresponding cone-like recesses in the seventh array of cone-like recesses in the lower outer layer; wherein the lower outer layer comprises an eighth array of cone-like protuberances, wherein the lower intermediate layer comprises an eighth array of cone-like recesses, wherein the cone-like protuberances in the eighth array of cone-like protuberances in the lower outer layer project into corresponding cone-like recesses in the eighth array of cone-like recesses in the lower intermediate layer; wherein an outer upper surface of the compressible liner is smooth and continuous; wherein at least one of said co-extensive layers has a different at least one of compressibility and density to that of an adjacent layer of said co-extensive layers; wherein said co-extensive layers are each configured as one-piece and selected from foam expanded polystyrene and viscoelastic foam.
8. A helmet according to claim 1, 3, 4, 5, 6 or 7 wherein each layer of said coextensive layers defines a transverse direction, longitudinal direction and through thickness direction, said transverse direction, longitudinal direction and through thickness direction being mutually perpendicular; wherein one of the layers is divided along the transverse and longitudinal directions into elements, each element having an edge; and adjacent elements of said layer being inter-lockable to one another by means of complementary male and female locking structures or keys formed along the edge.
9. A helmet according to claim 8 wherein said locking structures or keys prevent transverse separation of the elements thereof.
10. A helmet according to claim 9 wherein said locking structures or keys comprises integral orthogonally engageable male and female members.
11. A helmet according to claim 1, 3, 4, 5, 6, or 7, wherein at least one of the protuberances of one of the layers of said coextensive layers protrudes to the surface of an adjacent one of the layers of said coextensive layers.
12. A helmet according to claims 1, 3, 4, 5, or 6, wherein the outer layer has a density in a range from 35-110 kgm.sup.−3, the intermediate layer has a density in a range from 15-100 kgm.sup.−3, and the inner layer has a density in a range from 15-90 kgm.sup.−3.
13. A helmet according to claim 12 wherein the intermediate layer has isotropic or anisotropic properties.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) Other features of the invention will be apparent from the following description of a preferred embodiment illustrated by way of example only in the accompanying drawings in which:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
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(11) A helmet 112 comprises an outer shell 116, typically of a hard plastics material, within which is provided a double compressible layer 124, 128 and an optional soft internal comfort liner 120.
(12) As best illustrated in
(13) Particular details of the prior art construction can be obtained by reference to the description of WO 2010/001230A, and will not be further described here.
(14) The invention will be described with reference to a helmet 1112, indicated in phantom in
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(16) Each of the three layers 1124, 1128, 1160 typically comprises a shock absorbing expanded polystyrene material (or other suitable thick absorbing material as previously described). The layers may be respectively homogeneous. Adjacent layers are of different compressibility so as to permit greater variation in the compression and crushing gradients across the thickness of the liner 1110. As will be appreciated the invention permits three different densities of material in three different layers (i.e. a factorial three possibility) which provides many more potential combinations than the prior art, but maintaining a comparatively low manufacturing cost.
(17) An alternative embodiment is illustrated in
(18) In both embodiments of
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(20) In
(21) The protuberance 1301 exhibits a resistance to compression which increases quickly over the tapering point 1303. The main body 1305 of the protuberance is of substantially constant section, and exhibits substantially increased stiffness. The shaft taper of the main body ensures a snug fit in the corresponding recess.
(22) In
(23) The protuberance 1401 exhibits a resistance to compression at the tapering point 1403 which is slight. The main body 1403 of the protuberance permits only further compression before the entire base thickness 1404 is engaged to resist compression. It will be appreciated that the protuberance 1401 squashes down more readily than the protuberance 1301.
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(33) In the variations disclosed in
(34) The invention comprises layers whose comparative densities (or portions thereof) may be characterized as follows (‘a’ being the outer layer; ‘b’ being the intermediate layer, and ‘c’ being the inner layer): a>b>c, or a>c>b, or b>a>c, or b>c>a, or c>b>a, or c>a>b, or (a=c)>b, or (a=c)<b.
(35) It follows that the respective compressibilities are: c>b>a, or b>c>a, or c>a>b, or a>c>b, or a>b>c, or b>a>c, or (a=c)<b, or (a=c)>b.
(36) Densities of the respective layers (or portions thereof) are in the following ranges: a 35-110 kgm.sup.−3 b 15-100 kgm.sup.−3 c 15-90 kgm.sup.−3
(37) In an embodiment of the invention, the materials of the respective layers are foam expanded polystyrene and/or a viscoelastic foam material. The material may be isotropic (having a material property that is identical in all directions) or anisotropic (having a material property that preferentially shears in one direction) to give a shearing in the direction substantially parallel to the layer direction.
(38) Thicknesses of the respective layers in a helmet gives an overall thickness in the range 15-45 mm, but is typically in the range 20-30 mm. The three layers may each have a uniform thickness, which may not be equal between layers, or may have a varying thickness.
EXAMPLE
(39) A comparative impact test using a variety of anvil shapes and ambient conditions has been carried out, with the following characteristics and results.
(40) A ‘standard’ single layer liner had a thickness of 30 mm and consisted of expanded polystyrene foam with a density of about 60 kg/m.sup.3.
(41) A triple layer liner according to the invention had an average thickness of 30 mm (25 mm to 35 mm) and consisted of expanded polystyrene foam having an outer layer density of 60 kg/m.sup.3. The middle layer had bigger cones than the inner layer. The density of the cones of the middle layer at the front, back and sides was 55 kg/m.sup.3, whereas on the top the density was 40 kg/m.sup.3. The density of the cones of the inner layer at the front, back and sides was 45 kg/m.sup.3, whereas on the top the density was 40 kg/m.sup.3 (the same as the corresponding cones of the middle layer).
(42) TABLE-US-00001 TABLE 1 Height Standard Liner Triple Liner Ref Anvil Test Helmet above base of Compression (mm) Compression (mm) No. Shape Conditions Angle Helmet (mm) Test 1 Test 2 Test 1 Test 2 1 Flat Ambient 0 300 21.6 21.7 27.3 27.6 2 Flat Hot 180 140 15.0 14.3 17.8 18.1 3 Hemispherical Cold Right 160 23.4 23.5 26.0 26.1 125 4 Flat Wet Right 180 20.2 19.4 23.0 22.5 120
(43) The helmet angle is the rotational position of the impact, with respect to the anvil; front being 0°, rear being 180° and so on. The test helmet in which the comparative liners were tested at a standard impact, and included a dummy head of appropriate size and mass (about 5 kg in total). Impacts were in each case translational. For impacts where the helmet was dropped onto a flat steel anvil, the drop height was 1.92 m and for impacts onto hemispherical anvil, the drop height was 1.43 m.
(44) It may be seen by comparison that the triple layer liner according to the invention provided a substantial percentage improvement (i.e. increased compression) over a single layer liner of the same thickness.
(45) The comparative g-forces measured during the tests exemplified in Table 1 are as follows:
(46) TABLE-US-00002 TABLE 2 Standard Liner Triple Liner Ref No. Test 1 Test 2 Test 1 Test 2 1 151.6 163.8 126.7 134.4 2 94.1 98.2 79.6 78.3 3 100.5 97.7 84.2 86.9 4 181.5 202.3 140.7 166.1
(47) The substantial reduction in measured g-force can be clearly seen, and hence the effectiveness of the triple layer liner of the invention.
(48) A comparative table of the mass of the respective helmets under test now follows:
(49) TABLE-US-00003 TABLE 3 Test Standard Liner Triple Inner Conditions (g) (g) Ambient 275 224 Hot 277 225 Cold 277 227 Wet 280 227
(50) This comparison clearly shows that the triple layer liner of the invention results in a lighter helmet, typically around 18% less mass.
(51) By way of illustration an alternative triple layer liner of expanded polystyrene foam could have the following density characteristics: Outer layer: uniform 70 kg/m.sup.3 Middle layer: top 50 kg/m.sup.3; front 55 kg/m.sup.3; back 60 kg/m.sup.3; side 65 kg/m.sup.3; Inner layer: top 30 kg/m.sup.3; front 35 kg/m.sup.3; back 40 kg/m.sup.3; side 45 kg/m.sup.3.
(52) Although the invention has been herein shown and described in what is conceived to be the most practical and preferred embodiments, it is recognized that departures can be made within the scope of the invention, which are not to be limited to the details described herein but are to be accorded the full scope of the appended claims so as to embrace any and all equivalent assemblies, devices and apparatus.