VEHICLE WHEEL
20190111731 ยท 2019-04-18
Inventors
Cpc classification
B60C19/002
PERFORMING OPERATIONS; TRANSPORTING
B60B21/12
PERFORMING OPERATIONS; TRANSPORTING
B60B21/02
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/86
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
An auxiliary air chamber member includes connecting portions recessed into an auxiliary air chamber from an upper surface portion and a lower surface portion to partially connect the upper surface portion and the lower surface portion. A non-connecting portion of the lower surface portion excluding the connecting portions is a curved surface corresponding to a shape of an outer peripheral surface of a well portion. The connecting portions are arranged separated equally in a wheel circumferential direction and include a first connecting portion on one side and a second connecting portion on the other side arranged in parallel in a wheel width direction. One of the connecting portions is disposed at a position in an offset plus direction and the other is disposed at a position in an offset minus direction with reference to a cross-sectional center of gravity in the wheel width direction.
Claims
1. A vehicle wheel with an auxiliary air chamber member as a Helmholtz resonator mounted on an outer peripheral surface of a well portion, wherein the auxiliary air chamber member comprises: a lower surface portion disposed on the outer peripheral surface side of the well portion; an upper surface portion disposed radially outward of the lower surface portion; an auxiliary air chamber formed between the upper surface portion and the lower surface portion; a first edge portion and a second edge portion respectively connecting the lower surface portion and the upper surface portion on both sides in a width direction and engaged with the well portion; and a plurality of connecting portions recessed into the auxiliary air chamber from at least one of the upper surface portion and the lower surface portion to partially connect the upper surface portion and the lower surface portion, and wherein a non-connecting portion of the lower surface portion excluding the plurality of connecting portions is a curved surface corresponding to a shape of the outer peripheral surface of the well portion, the plurality of connecting portions are arranged separated at equal intervals in a wheel circumferential direction and have a first connecting portion on one side and a second connecting portion on an other side that are arranged in parallel in a wheel width direction, the first connecting portion and the second connecting portion are respectively arranged offset in the wheel width direction with reference to a cross-sectional center of gravity G, and a separation distance from the cross-sectional center of gravity G to the first connecting portion disposed offset in the wheel width direction and a separation distance from the cross-sectional center of gravity G to the second connecting portion disposed offset in the wheel width direction are different from each other.
2. (canceled)
3. The vehicle wheel according to claim 1, wherein the auxiliary air chamber member does not comprise a bead connecting the first connecting portion and the second connecting portion.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
DESCRIPTION OF EMBODIMENTS
[0025] Next, an embodiment of the present invention will be described in detail with reference to the drawings as appropriate.
[0026] As shown in
[0027] The vehicle wheel 1 includes a rim 11 and a disk 12 for connecting the rim 11 to a hub (not shown). An auxiliary air chamber member 10 is fitted into and mounted on an outer peripheral surface 11d of a well portion 11c of the rim 11.
[0028]
[0029] The well portion 11c is provided for fitting bead portions 21a, 21b of a tire 20 thereto when the tire 20 is assembled to the rim 11. Incidentally, the well portion 11c of the present embodiment is formed into a cylindrical shape having substantially the same diameter over the wheel width direction Y.
[0030]
[0031] As shown in
[0032] The auxiliary air chamber member 10 is curved in its longitudinal direction and is configured to follow the wheel circumferential direction X when attached to the outer peripheral surface 11d of the well portion 11c (see
[0033] As shown in
[0034] As shown in
[0035] Further, the main body portion 13 of the auxiliary air chamber member 10 includes a first edge portion 14a and a second edge portion 14b which respectively connect the lower surface portion 25b and the upper surface portion 25a at both sides in the width direction and are engaged with the well portion 11c, and a plurality of connecting portions 33 which partially connect the upper surface portion 25a and the lower surface portion 25b by being respectively recessed into the auxiliary air chamber SC from the upper surface portion 25a and the lower surface portion 25b.
[0036] The upper surface portion 25a is located above the lower surface portion 25b disposed along the outer peripheral surface 11d side of the well portion 11c and is curved to bulge to form the auxiliary air chamber SC. Incidentally, the communication hole 18a (see
[0037] A length of the auxiliary air chamber member 10 in the wheel circumferential direction X may be appropriately set in consideration of adjustment of a weight of the vehicle wheel 1 and an assembling property to the well portion 11c, with a half length of a circumferential length (circumferential length of the outer peripheral surface 11d of the well portion 11c) of the rim 11 (see
[0038] As shown in
[0039] A pair of lower connecting portions 34a, 34b is formed on the lower surface portion 25b at positions corresponding to the pair of upper connecting portions 33a, 33b. Both the upper connecting portions 33a, 33b and the lower connecting portions 34a, 34b are combined to form the connecting portions 33. The lower connecting portions 34a, 34b are formed so that the lower surface portion 25b is recessed toward the upper surface portion 25a, and are formed in a circular shape as viewed from the bottom. The lower connecting portions 34a, 34b have their distal end portions integrated with distal end portions of the upper connecting portions 33a, 33b of the upper surface portion 25a, to partially connect the upper surface portion 25a and the lower surface portion 25b.
[0040] In other words, the upper surface portion 25a and the lower surface portion 25b are integrally and partially connected via the upper connecting portions 33a, 33b and the lower connecting portions 34a, 34b which are connected to each other at their bottoms.
[0041] The upper connecting portion 33a and the lower connecting portion 34a arranged on the inner side (one side) in the wheel width direction Y are higher in the wheel radial direction Z than that of the upper connecting portion 33b and the lower connecting portion 34b arranged on the outer side (the other side) in the wheel width direction Y (see
[0042] Incidentally, the upper connecting portions 33a, 33b and the lower connecting portions 34a, 34b connected to each other in the auxiliary air chamber SC improve a mechanical strength of the auxiliary air chamber member 10 and prevent variation of a volume of the auxiliary air chamber SC, to exert a sound deadening function.
[0043] In the present embodiment, as shown in
[0044] In contrast, in the present embodiment, no one corresponding to the bead B disclosed in Patent Document 1 is formed on the lower surface portion 25b. In the present embodiment, the lower connecting portion 34a disposed on the one side (inner side) in the wheel width direction Y and the lower connecting portion 34b disposed on the other side (outer side) in the wheel width direction Y are not connected to each other but separated from each other by a predetermined distance. As shown in
[0045] A cross-sectional center of gravity G for balancing the auxiliary air chamber member 10 in the wheel circumferential direction X, in the wheel width direction Y, and in the wheel radial direction Z is provided in a cross-section of the main body portion 13 in the wheel width direction Y. The cross-sectional center of gravity G is appropriately set depending on a shape, weight, or the like of the auxiliary air chamber member 10.
[0046]
[0047] The vehicle wheel 1 according to the present embodiment is basically configured as described above, and its function and effect will be described next.
[0048]
[0049] As shown in
[0050] As shown in
[0051] Comparative Example 1 has the same structure as that of the related art disclosed in Patent Document 1, and the bead B (so-called lateral bead) is formed in which the lower surface portion 25b is partially recessed toward the upper surface portion 25a and extends in the wheel width direction Y. Since the beads B respectively connects the lower connecting portion 33b on the one side and the lower connecting portion 34b on the other side, the surface rigidity of the lower surface portion 25b is increased. However, in the structure of Comparative Example 1, a volume of the auxiliary air chamber SC decreases by a volume of the bead B.
[0052] In Comparative Example 2, since the bead B connecting the inner connecting portion 33 and the outer connecting portion 33 is not provided, it is possible to increase the volume of the auxiliary air chamber SC by the volume of the bead B. However, in Comparative Example 2, compared with Comparative Example 1, for example, there is a possibility that a cross-sectional bending rigidity of the auxiliary air chamber member 10 is reduced to increase an amount of internal pressure deformation, and an amount of centrifugal force deformation caused by centrifugal force due to a balance change of mass is increased.
[0053] In contrast, in the present embodiment, as shown in
[0054] Further, in the present embodiment, as shown in
[0055] That is, in the present embodiment, the connecting portion 33 on the one side (inner side) in the wheel width direction Y of the auxiliary air chamber member 10 is disposed at a position (position away from the cross-sectional center of gravity G) plus-offset in a direction away from the cross-sectional center of gravity G with respect to the connecting portion 33 (see the two-dot chain line in
[0056] As for a plus and minus of an amount of offset, it is a plus offset (D3>D3) when a separation distance from the cross-sectional center of gravity G is long with reference to the connecting portion 33 (see the two-dot chain line) of Comparative Example disposed at the equal distance (D1=D2) from the center axis C, and it is a minus offset (D4<D4) when the separation distance from the cross-sectional center of gravity G is short. The amount of offset of each connecting portion 33 does not need to be equal between the plus direction and the minus direction, and may be unequal, for example, as a left-right asymmetric cross-sectional shape (D3 D4).
[0057] In the present embodiment, two rows of connecting portions 33 on the one side (inner side) and the other side (outer side) are distributed in the plus direction (plus offset; D3>D3) and in the minus direction (minus offset; D4<D4) in the wheel width direction Y with reference to the cross-sectional center of gravity G of a point on which the centrifugal force acts, within an allowable range (within a reference) of an amount of surface deformation when an internal pressure is applied, and thus an optimum balance arrangement can be achieved. Specifically, in the present embodiment, it is possible to prevent reduction in the cross-sectional bending rigidity of the auxiliary air chamber member 10 to prevent the amount of internal pressure deformation, and to prevent increase in the amount of centrifugal force deformation caused by the centrifugal force due to the balance change of mass. As a result, in the present embodiment, even when the conventional bead B is not provided, it is possible to increase the volume of the auxiliary air chamber SC of the auxiliary air chamber member 10 as compared with the related art while suppressing the deformation by the centrifugal force to the desired amount.
[0058] As described above, in the present embodiment, by suppressing reduction in cross-sectional rigidity when the bead is not provided and by optimizing a balance of mass arrangement of the connecting portion 33, it is possible to suppress the amount of centrifugal force deformation and the amount of internal pressure deformation within a reference when the internal pressure is applied, thereby balancing both of them.
[0059] In the present embodiment, it is arranged so that the separation distance (D3) from the cross-sectional center of gravity G to the connecting portion 33 on the one side and the separation distance (D4) from the cross-sectional center of gravity G to the connecting portion 33 on the other side are different from each other (D3<D4) in the wheel width direction Y of the auxiliary air chamber member 10 (see
[0060] In the present embodiment, the separation distances in the wheel width direction Y of the auxiliary air chamber member 10 are different from each other, however, the present invention is not limited thereto, but the separation distance (D3) from the cross-sectional center of gravity G to the connecting portion 33 on the one side and the separation distance (D4) from the cross-sectional center of gravity G to the connecting portion 33 on the other side may be the same (D3=D4).
[0061] In the present embodiment, it is possible to further improve sound deadening property for road noise by increasing the volume of the auxiliary air chamber member 10 by the volume of the bead B (see the two-dot chain line). Further, in the present embodiment, a length in the circumferential direction of the auxiliary air chamber member 10 is reduced by an amount corresponding to an increase in the volume of the auxiliary air chamber member 10, and thus reduction in size and weight can be achieved.
[0062] Further, in the present embodiment, it is possible to improve a ride comfort by reducing an unsprung weight and to achieve reduction in fuel consumption. Furthermore, in the present embodiment, is possible to improve an assembling performance to the vehicle wheel 1 by reducing the length in the circumferential direction of the auxiliary air chamber member 10.
REFERENCE SIGNS LIST
[0063] 1: vehicle wheel [0064] 10: auxiliary air chamber member (Helmholtz resonator) [0065] 11c: well portion [0066] 11d: outer peripheral surface [0067] 14a, 14b: edge portion [0068] 25a: upper surface portion [0069] 25b: lower surface portion [0070] 33: connecting portion [0071] 33a, 33b: upper connecting portion [0072] 34a, 34b: lower connecting portion [0073] 36: non-connecting portion [0074] 38: curved surface [0075] SC: auxiliary air chamber [0076] G: cross-sectional center of gravity [0077] B: bead