Mold for vulcanizing a tire
10730256 ยท 2020-08-04
Assignee
Inventors
Cpc classification
B60C15/0242
PERFORMING OPERATIONS; TRANSPORTING
B29D2030/062
PERFORMING OPERATIONS; TRANSPORTING
B29D30/0606
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A tire (20) comprises a sidewall (21) and an attachment bead (23) extending the said sidewall (21) and designed to be attached to a rim of a wheel of a motor vehicle. A mould (10) for vulcanizing a tire comprises a lateral part (12) designed to mould the sidewall (21) of the tire and a lower part 13 designed to mould the attachment bead (23). The lateral part 12 and the lower part 13 at least partially delimit a tire receiving space (E) designed to receive the tire that is to be vulcanized in the mould (10). The mould comprises a slot (16) extending the tire receiving space (E) and the slot (16) is at least partially moulded by the lower part 13 of the mould (10).
Claims
1. A mold for vulcanizing a tire, the tire comprising a sidewall, an attachment bead extending the sidewall and designed to be attached to a rim of a wheel of a motor vehicle, and a wall of rubber extending circumferentially along the sidewall, the mold comprising a lateral part designed to mold the sidewall of the tire and a lower part designed to mold the attachment bead, the lateral part and the lower part at least partially delimiting a tire receiving space E designed to receive the tire that is to be vulcanized in the mold, wherein the mold comprises a slot extending the tire receiving space E, wherein the slot is at least partially delimited by the lower part of the mold, wherein, viewed in cross-section, the slot makes an angle less than or equal to 30, in terms of absolute value, with a radial direction Z of the mold, and wherein the slot is designed to mold the wall of rubber.
2. The mold according to claim 1, wherein the angle is less than or equal to 15.
3. The mold according to claim 1, wherein the slot extends parallel to the radial direction Z.
4. The mold according to claim 1, wherein a length L of the slot is greater than or equal to 5 times a width W of the slot.
5. The mold according to claim 4, wherein the width W of the slot is less than or equal to 10 mm.
6. The mold according to claim 1, wherein the tire receiving space E comprises a junction part E joining the slot with the rest of the tire receiving space E, a width W of the junction part E reducing progressively from the tire receiving space E toward the slot.
7. The mold according to claim 1, wherein the lower part comprises a first part and a second part, and wherein the slot is delimited by the first part and the second part.
8. The mold according to claim 1, wherein the slot is covered with a non-stick coating.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further features and advantages of the invention will become apparent from the following description, given by way of non-limiting example, with reference to the attached drawings in which:
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DETAILED DESCRIPTION
(9) In the following description, elements which are substantially identical or similar will be denoted by identical references.
(10)
(11) The tyre of
(12) When viewed in cross section, the wall of rubber 25 begins from the sidewall and extends towards the attachment bead 23, forming an angle beta with a radial direction Z of the tyre. This angle is less than 30 with the radial direction Z.
(13) The wall of rubber 25 extends circumferentially along the sidewall 21 of the tyre 20 so as to form a barrier to deflect the air flow and prevent this flow of air from reaching the attachment bead 23. This then reduces the rolling resistance of the tyre 20 during the running of this tyre.
(14)
(15) The mould comprises several parts 11, 12, 13. These parts are designed to move relative to one another between a mould-open position and a position in which the said mould is closed. In the mould-open position it is possible to place the tyre that is to be vulcanized (referred to as a green tyre) into the mould or it is possible to remove the vulcanized tyre (referred to as a cured tyre) from the mould. In the position in which the mould is closed, the tyre is enclosed in the mould where it will be vulcanized.
(16) The mould 10 thus comprises:
(17) an upper part 11 designed to mould the tread of a tyre;
(18) a lateral part 12 designed to mould a sidewall of the tyre;
(19) a lower part 13 designed to mould a bead of the tyre;
(20) a slot 16.
(21) Upper Part 11:
(22) The upper part 11 of the mould is designed to mould the tread of the tyre 20.
(23) The upper part 11 of the mould thus comprises the negative of the tread pattern present on the tread of the tyre 20. More specifically, the upper part 11 of the mould comprises a set of protuberances and of recesses which are designed to mould voids (grooves and/or sipes) into the tread of the tyre 20.
(24) In one preferred embodiment which has not been depicted, the upper part 11 of the mould comprises several parts. The dynamics of these various parts are determined in such a way that when the mould is brought towards its open position, the various parts move away from each other. Conversely, when the mould is brought towards its closed position, the various parts move closer together.
(25) Lateral Part 12:
(26) The lateral part 12 of the mould is designed to mould the sidewall 21 of the tyre. More specifically, the lateral part 12 of the mould comprises a first S1 moulding surface S1. This first moulding surface S1 extends between the points A and B visible in
(27) In one preferred embodiment, the mould comprises two lateral mould parts. Each of these lateral mould parts is intended to mould a respective sidewall of the tyre. The dynamics of these two lateral mould parts are determined in such a way that when the mould is brought towards its open position, the two lateral parts of the mould move away from each other. Conversely, when the mould is brought towards its closed position, the two lateral parts of the mould move closer together.
(28) Lower Part 13:
(29) The lower part 13 of the mould is a mould part designed specifically to mould the attachment bead 23 of the tyre 20. This lower part 13 of the mould is borne by the lateral mould part 12. It therefore follows the same dynamics as this lateral mould part 12. The lower part 13 comprises a second moulding surface S2, a moulding finger 15 and a slot 16.
(30) The second moulding surface S2 is designed to mould an external surface of the attachment bead 23 of the tyre 20. The second S2 moulding surface S2 extends between the points C and D visible in
(31) Internal Membrane:
(32) The mould 10 comprises an internal membrane 14. This internal membrane 14 is designed to adopt an expanded position and a rest position. In the expanded position, the internal membrane 14 occupies a maximum volume in the mould. In this expanded position, the internal membrane 14 defines, with the first moulding surface S1 of the lateral part 12 of the mould and with the second moulding surface S2 of the lower part 13 of the mould, a tyre receiving space E. This receiving space E is designed to receive a tyre that is to be vulcanized in the mould 10. More specifically, when the internal membrane 14 is in the expanded position, the said internal membrane 14 presses the green tyre against the upper part 11 of the mould, against the lateral part 12 of the mould and against the lower part 13 of the mould. The tread pattern on the tread of the tyre 20 is then moulded by the upper part 11. Likewise, the markings on the sidewall 21 of the tyre are moulded by the lateral mould part 12. The moulding of the tread patterns and the markings can be achieved by heating the mould 10 to a very high temperature (of the order of 150 C.) for around ten minutes. In a preferred embodiment, the mould 10 is heated using superheated water and steam. Under the effect of the heat, the rubber present in the green tyre flows into the gaps in the mould 10. The slot 16 fills with material to form the wall of rubber 25 on the cured tyre, this slot 16 extending the tyre receiving space E in the mould. Once the vulcanizing operation is over, the internal membrane 14 retracts to adopt its rest position to make it easier to extract the cured tyre 20 from the mould. The transition of the internal membrane 14 from the rest position to the expanded position is rendered possible by circulating a fluid in this internal membrane 14.
(33) Slot:
(34) As already specified, the mould 10 comprises a slot 16 designed to mould a wall of rubber 25 of a tyre 20. This slot 16 takes the form of an extension of the receiving space E of the mould 10. Viewed in cross section, the slot 16 is a hollow space of rectangular overall shape. It extends from the point B to the point C and extends circumferentially in the mould 10.
(35) In one nonlimiting embodiment, the slot 16 makes an angle less than or equal to 30, in terms of absolute value, with a radial direction Z. This slot 16 has a main direction U in its length L, and the angle is measured between this main direction U and the radial direction Z, in the clockwise direction. With such an angle , the wall of rubber 25 moulded by the slot 16 makes a limited angle on the tyre 20. Thus, when the tyre 20 is running, the air flow will act on the wall of rubber 25 in such a way as to move this wall of rubber 25 closer to the attachment bead 23. The protection of the attachment bead 23 by the wall of rubber 25, namely the fact of limiting the air flow directly on this attachment bead, is thus dynamically improved during running.
(36) In one nonlimiting alternative form of embodiment, the angle of the slot 16 is less than or equal to 15. The extent to which the wall of rubber 25 moves closer towards the attachment bead 23 during the running of the tyre 20 is improved still further.
(37) In a nonlimiting alternative form of embodiment illustrated in
(38) As has already been specified, the slot 16 has a length L. This length is measured from the intersection between the slot 16 and the moulding surface S1 as far as one end of this slot 16. The slot 16 also has a width W, corresponding to the distance between two opposite walls of this slot. The length L of the slot is determined in such a way that this length is greater than or equal to 5 times the width W. The wall of rubber 25 moulded by the slot 16 maintains the same proportionality between its length and its width. In this way, the wall of rubber 25 possesses greater flexibility. This wall of rubber 25 thus more readily moves closer to the attachment bead under the action of the air flow when the tyre is running.
(39) In a nonlimiting alternative form of embodiment, the width W of the slot is less than or equal to 10 mm. For preference the width W of the slot is less than or equal to 2 mm.
(40) As illustrated in
(41) In one nonlimiting embodiment, the length of the slot 16 corresponds to at least 90% of the maximum height HS of the moulding finger 15. In this way, the overlapping of the attachment bead 23 by the wall of rubber 25 is optimized. For preference, the length of the slot 16 corresponds to the maximum height HS of the moulding finger 15.
(42) In one nonlimiting embodiment illustrated in
(43) In one nonlimiting embodiment, the lower part 13 of the mould is in several parts. In one embodiment illustrated in
(44) In one nonlimiting embodiment, the slot 16 is covered with a non-stick coating, such as XYLAN. The non-stick coating encourages the demoulding of the wall of rubber 25 from the slot 16 once the tyre 20 has been vulcanized.
(45) The invention is not limited to the examples described and depicted and various modifications can be made thereto without departing from its scope.