HELMET
20200085131 ยท 2020-03-19
Assignee
Inventors
Cpc classification
International classification
Abstract
A helmet that can effectively reduce the rotational acceleration of an impact and at the same time also effectively reduce translational acceleration is provided. A helmet has an outer shell comprising a hard material and a shock absorbing liner (14) disposed inside the shell. The shock absorbing liner (14) comprises a main body liner (16), a recessed portion (30) provided at an inner surface of the main body liner (16), an insert liner (18) fitted into the recessed portion (30), and a central raised portion (42) (central support member) disposed between a bottom surface of the recessed portion (30) and a bottom surface of the insert liner (18). When the helmet receives an impact, the insert liner (18) swings about the central support member as a fulcrum, thereby reducing the impact.
Claims
1. A helmet, comprising an outer shell configured by a hard material, and a shock absorbing liner disposed inside the outer shell, wherein the shock absorbing liner comprises a main body liner, a recessed portion provided at an inner surface of the main body liner, an insert liner fitted into the recessed portion, and a central support member disposed between a bottom surface of the recessed portion and a bottom surface of the insert liner, a ventilation passage that communicates with an air inlet at a front side of the helmet and a ventilation passage that communicates with an air outlet at a back side of the helmet are provided at the recessed portion, and a ventilation passage that communicates the recessed portion with the inner surface of the main body liner is provided at the insert liner, the inner surface being configured to contact a head region of a wearer.
2. The helmet according to claim 1, wherein the shock absorbing liner comprises a plurality of other support members disposed around the central support member.
3. The helmet according to claim 1, wherein the central support member is molded integrally with the insert liner.
4. The helmet according to claim 2, wherein a cross-sectional area of respective distal ends of the other support members is smaller than a cross-sectional area of a distal end of the central support member, and the central support member and the other support members are molded integrally with the insert liner.
5. (canceled)
6. The helmet according to claim 1, wherein the air inlet is provided at an edge-rolled member disposed at an open portion of a front face of the helmet.
7. The helmet according to claim 2, wherein the central support member is molded integrally with the insert liner.
8. The helmet according to claim 3, wherein a cross-sectional area of respective distal ends of the other support members is smaller than a cross-sectional area of a distal end of the central support member, and the central support member and the other support members are molded integrally with the insert liner.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENT
[0043] When a helmet 10 receives an impact F2 at a position lower than its center of gravity (G) as shown in
[0044] As the angle becomes smaller than 45 degrees, rotational acceleration gradually increases and reaches a maximum at 0 degrees. Thus, in the present invention, it is deemed preferable to provide in a main body liner 16 a recessed portion 30 described later (see FIG. 3) in a position of 0 degrees to 45 degrees with respect to the line connecting the top to the center of gravity (G). Furthermore, it is deemed more preferable to provide the recessed portion 30 in a position of 0 degrees to 20 degrees.
[0045] First, the configuration of the helmet 10 pertaining to an embodiment of the present invention will be described using
[0046] As shown in
[0047] As shown in
[0048] As shown in
[0049] The position of the recessed portion 30 in the main body liner 16 is preferably within an elliptical shape formed by the intersection of the surface of the outer shell of the helmet 10 with a cone drawn when the line interconnecting the position of the center of gravity of the helmet 10 and the top of the helmet 10 (see
[0050] As shown in
[0051] The surface on the underside of the insert liner main body portion 40 curves in a shape following the top portion of the user's head, and plural grooves 48 for ventilation are formed therein. Furthermore, a thin-walled portion 50 is disposed at the end portion of an outer periphery 49 of the insert liner main body portion 40. The thin-walled portion 50 has a thinner wall thickness than the insert liner main body portion 40, and plural cutout portions 52 serving as communicating portions that are continuous with the plural grooves 48 and whose edge portions are substantially U-shaped as seen from below are formed in the thin-wall portion 50. In this way, the surface on the underside of the insert liner 18 (the surface that contacts the wearer's head) has a shape that is longitudinally and bilaterally symmetrical. To industrially manufacture the insert line 18, it is preferably circular or elliptical in shape. Furthermore, the central raised portion 42 is formed substantially in the shape of a solid cylinder and projects upward from the front and rear direction center portion and the right and left direction center portion of the surface on the upper side of the insert liner main body portion 40. Furthermore, the three peripheral raised portions 44 are each formed substantially in the shape of a circular truncated cone with a smaller outer diameter than the central raised portion 42. In the present embodiment, two peripheral raised portions 44 disposed an interval apart from each other in the right and left direction are formed at the front side of the central raised portion 42, and one peripheral raised portion 44 is formed in the right and left direction center portion at the rear side of the central raised portion 42.
[0052] The insert liner 18 preferably has a thickness of 5 mm or more from its surface on the underside (the surface facing the wearer's head) to the bottom surface of the recessed portion 30 of the main body liner 16, and more preferably has a thickness of 10 to 15 mm. Moreover, the central raised portion 42 and the peripheral raised portions 44 prevent the insert liner 18 from being pushed by the wearer's head and wobbling when the helmet is put on. However, when a region in the vicinity of the top portion of the helmet receives an impact, first, the peripheral raised portions 44 become deformed, bent, or cracked by the impact force, but because the central raised portion 42 supports the insert liner 18 in its center position, a phenomenon occurs where part of the insert liner 18 sinks into the recessed portion 30 and the part on the opposite side comes up. That is, the insert liner 18 tilts with respect to the main body liner 16. Next, the sunk-in peripheral raised portion 44 comes up because of repulsive force from the bottom surface of the recessed portion 30 (the surface of the upper liner portion 28), and then the central raised portion and the other peripheral raised portions 44 to which the impact has propagated after that become deformed, bent, or crack and sink into the recessed portions. In this way, the insert liner 18 swings (oscillates). It will be noted that the peripheral raised portions 44 may also have conical distal ends as shown in
[0053] As shown in
[0054] Furthermore, in a state in which the insert liner 18 is secured to the main body liner 16, a gap is formed between the surface on the upper side of the insert liner main body portion 40 of the insert liner 18 and the main body liner 16. In order for the insert liner 18 to swing (oscillate and move with respect to the main body liner), a gap formed between the outer periphery 49 of the insert liner 18 and the inner wall of the recessed portion 30 is preferably 10 mm or less and more preferably 3 mm to 7 mm. Moreover, it is possible for the central raised portion 42 and the three peripheral raised portions 44 of the insert liner 18 to be members separate from the insert liner 18 and the main body liner 16, and to industrially manufacture them, the central raised portion 42 and the three peripheral raised portions 44 may be integrally molded on the bottom surface of the insert liner 18 or integrally molded on the bottom surface of the recessed portion 30 of the main body liner 16.
[0055] Furthermore, the thin-walled portion 50 covers and hides the space between the outer periphery 49 of the insert liner 18 and the inner wall of the recessed portion 30; however, when the insert liner 18 swings, the thin-walled portion 50 becomes pushed against the inner wall of the recessed portion 30 and easily becomes deformed or broken, so it does not obstruct the swinging.
[0056] (Action and Effects of Embodiment) Next, the action and effects of the embodiment will be described.
[0057] As shown in
[0058] Specifically, a gap is provided between the insert liner 18 and the recessed portion 30, so as soon as the impact travels to the insert liner 18, instantaneously the phenomenon of rising and sinking occurs (i.e., the insert liner 18 swings). Because the insert liner 18 swings in this way, the wearer's head in close contact with the insert liner 18 also swings and rocks together with the insert liner 18. That is, even if the rotation of the helmet 10 is stopped after rotational force has occurred in the helmet 10 because of an impact, the wearer's head inside the helmet 10 continues to move, so the rotational acceleration caused by the impact does not propagate to the inside of the head or can be reduced.
[0059] In order to maximize the rocking effect resulting from the rising and sinking (swinging) of the insert liner 18, it is necessary for the insert liner 18 to tilt centering on the center point of the insert liner 18. Thus, it is preferred to provide the central raised portion 42 in the center point of the bottom surface of the insert liner 18 and dispose the peripheral raised portions 44 therearound. Furthermore, by giving the peripheral raised portions 44 a shape that becomes deformed more easily than the central raised portion 42, deformation occurs starting at the peripheral raised portions 44 because of an impact, so the tilting of the insert liner 18 centered on the central raised portion 42 can be promoted.
[0060] Here, test results of an impact test of the helmet 10 will be described.
[0061] (Test Results of Impact Test)
[0062] The helmet 10 was put on a model head and dropped on top of a steel anvil from a height of 2.5 m, and the rotational force produced by the impact at that time was measured by an angular velocimeter. It will be noted that the places of impact were the three points of the vicinity of the top portion of the helmet 10, the front portion in a case where the helmet 10 was tilted 45 degrees forward, and the left side portion in a case where the helmet was tilted 45 degrees leftward.
TABLE-US-00001 TABLE 1 Impact Test Results (Unit: rad/s2) When Conventional Insert When Swinging Insert Liner was Used Liner was Used Top Portion 10,133 6,665 Front Portion 12,280 10,692 Left Side Portion 10,571 8,731
[0063] As will be apparent from table 1, when the swinging insert liner 18 was used as in the helmet 10 of the embodiment, rotational acceleration was clearly reduced compared to the conventional insert liner. It will be noted that the conventional insert liner is a type where the insert liner does not swing with respect to the main body liner.
[0064] Furthermore, in the helmet 10 of the embodiment, as shown in
[0065] Furthermore, if only the central raised portion 42 is provided, the insert liner 18 is unstable just with the wearer putting on the helmet 10 (the insert liner 18 easily tilt's with respect to the main body liner 16), so comfort is poor. Furthermore, if the translational acceleration of the impact is too large, it is expected that the central raised portion 42 will not be able to support the wearer's head and be easily crushed, resulting in the insert liner 18 caving in substantially parallel to the recessed portion 30. That is, in this case, the rising and sinking phenomenon of the insert liner 18 does not occur. Thus, in the present embodiment, by providing, in addition to the central raised portion 42, the three peripheral raised portions 44 in which the cross-sectional area of their distal ends is smaller than that of the central raised portion 42, the force with which the insert liner 18 is supported can be reinforced.
[0066] Additionally, translational acceleration can be buffered as a result of any of the three peripheral raised portions 44 being deformed or bent, and rotational acceleration can also be buffered as a result of the insert liner 18 producing the rising and sinking phenomenon.
[0067] Moreover, in this embodiment, as shown in
[0068] Furthermore, in the insert liner 18 of the present embodiment, the thin-walled portion 50 whose thickness is thinner compared to the thickness of a center portion 46 is disposed at the end portion of the outer periphery 49 of the insert liner main body portion 40. In addition to this, the plural cutout portions 52 are formed in the thin-walled portion 50. The rigidity of the thin-walled portion 50 is reduced because of the cutout portions 52. Because of this, when the helmet 10 is impacted, the thin-walled portion 50 is easily deformed or broken, so the thin-walled portion 50 does not obstruct the moving (swinging) of the insert liner. Additionally, in the present embodiment, the insert liner 18 is reinforced by disposing the plural peripheral raised portions 44 around the central raised portion 42 so that the central raised portion 42 does not become crushed and the insert liner 18 swings without collapsing into the recessed portion 30.
[0069] Furthermore, in the present embodiment, as shown in
[0070] An embodiment of the invention has been described above, but the invention is not limited to what is described above and can of course be modified and implemented in a variety of ways, in addition to what is described above, in a range that does not depart from the scope thereof.