Tire vulcanization mold and tire manufacturing method using the same
10737452 ยท 2020-08-11
Assignee
Inventors
Cpc classification
B29C33/424
PERFORMING OPERATIONS; TRANSPORTING
B29C33/306
PERFORMING OPERATIONS; TRANSPORTING
B29D30/0662
PERFORMING OPERATIONS; TRANSPORTING
B29D30/0606
PERFORMING OPERATIONS; TRANSPORTING
B29D2030/0616
PERFORMING OPERATIONS; TRANSPORTING
B29D2030/0612
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A tire vulcanization mold includes a side molding surface, a mark forming stencil plate for forming a convex mark at an outer surface of a side portion, an attachment recess provided in the side molding surface, and a screw fixing the stencil plate to the attachment recess. The stencil plate is formed larger than the attachment recess so as to cover the attachment recess, and a peripheral portion of the stencil plate is in contact with an opening peripheral portion of the attachment recess.
Claims
1. A tire vulcanization mold comprising: a side molding surface for molding an outer surface of a side portion of a tire, a mark forming stencil plate for forming a convex mark at the outer surface of the side portion, an attachment recess which is provided in the side molding surface so that the stencil plate is attached thereto, and a screw which fixes the stencil plate to the attachment recess, wherein the stencil plate is formed larger than the attachment recess so as to cover the attachment recess, and a peripheral portion of the stencil plate is in contact with an opening peripheral portion of the attachment recess, and the stencil plate has a convex portion formed protruding on a rear surface side of the stencil plate so that a concave portion for mark molding is formed on a front surface side of the stencil plate, a gap is formed between the convex portion and a bottom of the attachment recess in a state in which the stencil plate is fitted to the attachment recess so as to cover the attachment recess and in which the screw is not tightened yet, and the convex portion and the bottom of the attachment recess are in contact with each other in a state in which the screw is already tightened.
2. The tire vulcanization mold according to claim 1, wherein a hollow which receives the peripheral portion of the stencil plate is provided in the opening peripheral portion of the attachment recess.
3. The tire vulcanization mold according to claim 1, wherein a stepped portion which is depressed in the rear surface side of the stencil plate is provided in the peripheral portion of the stencil plate so as to be fitted in an inner side of the opening peripheral portion of the attachment recess.
4. A tire vulcanization mold comprising: a side molding surface for molding an outer surface of a side portion of a tire, a mark forming stencil plate for forming a convex mark at the outer surface of the side portion, an attachment recess which is provided in the side molding surface so that the stencil plate is attached thereto, and a screw which fixes the stencil plate to the attachment recess, wherein the stencil plate is formed larger than the attachment recess so as to cover the attachment recess, and a peripheral portion of the stencil plate is in contact with an opening peripheral portion of the attachment recess, the opening peripheral portion of the attachment recess that is in contact with the peripheral portion of the stencil plate is flush with the side molding surface, and the peripheral portion of the stencil plate is formed in a shape inclined towards a rear surface side of the stencil plate.
5. The tire vulcanization mold according to claim 4, wherein the stencil plate has a convex portion formed protruding on the rear surface side of the stencil plate so that a concave portion for mark molding is formed on a front surface side of the stencil plate, and a portion on an outer side of the concave portion for mark molding in the width direction is formed in a shape bulging towards the front surface side so that the peripheral portion of the stencil plate is formed in a shape inclined towards the rear surface side.
6. The tire vulcanization mold according to claim 4, wherein the stencil plate is formed in a bulge shape such that an entire width direction thereof bulges towards a front surface side of the stencil plate so that the peripheral portion is formed in a shape inclined towards the rear surface side.
7. The tire vulcanization mold according to claim 1, wherein the stencil plate has a plurality of embossed convex portions as the convex portion, and the plurality of embossed convex portions each have an embossed concave portion as the concave portion for mark molding.
8. The tire vulcanization mold according to claim 5, wherein the stencil plate has a plurality of embossed convex portions as the convex portion, and the plurality of embossed convex portions each have an embossed concave portion as the concave portion for mark molding.
9. The tire vulcanization mold according to claim 1, wherein the stencil plate is an embossed metal plate having a constant thickness.
10. The tire vulcanization mold according to claim 4, wherein the stencil plate is an embossed metal plate having a constant thickness.
11. The tire vulcanization mold according to claim 6, wherein a central portion of the bulge shape bulges higher upwards than both end portions of the bulge shape.
12. A tire manufacturing method comprising molding a green tire by vulcanizing using the tire vulcanization mold according to claim 2.
13. A tire manufacturing method comprising molding a green tire by vulcanizing using the tire vulcanization mold according to claim 2.
14. A tire manufacturing method comprising molding a green tire by vulcanizing using the tire vulcanization mold according to claim 3.
15. A tire manufacturing method comprising molding a green tire by vulcanizing using the tire vulcanization mold according to claim 4.
16. A tire manufacturing method comprising molding a green tire by vulcanizing using the tire vulcanization mold according to claim 5.
17. A tire manufacturing method comprising molding a green tire by vulcanizing using the tire vulcanization mold according to claim 6.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(11) Hereinafter, embodiments will be described with reference to the drawings.
First Embodiment
(12)
(13) The vulcanization mold 10 is a mold which sets an unvulcanized green tire and molds the tire by vulcanizing. The vulcanization mold 10 includes a tread mold 12 including a tread molding surface 12A for molding an outer surface of the tread portion T1, a pair of upper and lower sidewall molds 14 and 14 including sidewall molding surfaces 14A and 14A for molding outer surfaces of the sidewall portions T2, and a pair of upper and lower bead molds 16 and 16 including bead molding surfaces 16A and 16A for molding outer surfaces of the bead portions T3, and forms a cavity which is a space for molding the tire T.
(14) As shown in
(15) In this example, the stencil plate 20 and the attachment recess 22 are provided in the sidewall molding surface 14A. However, the stencil plate 20 and the attachment recess 22 may be provided in the bead molding surface 16A or may be respectively provided in both the sidewall molding surface 14A and the bead molding surface 16A.
(16) The stencil plate 20 is a member for forming a convex mark T5 in an outer surface T41 of the side portion T4 as shown in
(17) As shown in
(18) Specifically, in the stencil plate 20, the front surface 20A facing the tire T side (that is, facing the cavity) is provided with a plurality of mark molding concave portions 24 formed by embossing (an embossing method) from the front surface 20A side. The mark molding concave portion 24 has a shape in which the mark T5 formed in the outer surface T41 (see
(19) As the mark T5, letters, symbols, or figures representing the manufacturer, the type, the size, the serial number, the manufacturing date, and the like of the tire can be mentioned. In the example of
(20) The convex portion 26 formed on the rear surface 20B side of the stencil plate 20 is formed on the rear surface side corresponding to the mark molding concave portion 24, and a protrusion height D2 of the convex portion 26 is substantially the same as the depth D1 of the mark molding concave portion 24.
(21) The attachment recess 22 is provided recessed in the side molding surface 18A as shown in
(22) The stencil plate 20 is formed larger than the attachment recess 22 so as to cover the attachment recess 22. In this example, as shown in
(23) The stencil plate 20 is mounted on the attachment recess 22 and is tightened and fixed to the attachment recess 22 by a screw (that is, a male screw) 30, as shown in
(24) As shown in
(25) As shown in
(26) The stencil plate 20 is provided with a receiving portion 40 which receives the head portion 32 of the screw 30. The receiving portion 40 has a tapered shape to be fitted to the counterbored portion 38. Similar to the convex portion 26, the receiving portion 40 is depressed from the front surface 20A by embossing (an embossing method) from the front surface 20A side of the stencil plate 20 and is in a convex shape as viewed from the rear surface 20B. Specifically, the receiving portion 40 has a tapered shape (that is, a truncated conical shape) in which the diameter gradually decreases as getting away from the front surface 20A. Specifically, a circular through hole 42 through which the shaft portion 34 of the screw 30 passes is provided at the tip end (that is, the lower end) which is the top portion of the receiving portion 40. A protrusion height (height from the rear surface 20B) D4 of the receiving portion 40 is set larger than the protrusion height D2 of the convex portion 26.
(27) As shown in
(28) When the stencil plate 20 is attached to the attachment recess 22, the stencil plate 20 is mounted on the attachment recess 22, and the shaft portion 34 of the screw 30 is screwed to the attachment hole 36 passing through the through hole 42 while the receiving portion 40 is fitted in the counterbored portion 38 of the attachment hole 36. As a result, as shown in
(29) As shown in
(30) In the present embodiment, the stencil plate 20 is formed such that a gap 44 is formed between the convex portion 26 and the bottom 22A of the attachment recess 22 in a state before tightening with the screw 30. In this example, the depth (the depth relative to the opening peripheral portion 29) D3 of the attachment recess 22 is formed larger than the protrusion height (the protrusion height relative to the peripheral portion 28 overlapping with the opening peripheral portion 29) D2 of the convex portion 26 (D3>D2). As a result, the gap 44 is formed between the convex portion 26 and the bottom 22A of the attachment recess 22 in all of the plurality of convex portions 26 of the stencil plate 20.
(31) Here, the state before the screw 30 is tightened refers to a state in which the stencil plate 20 is fitted to the attachment recess 22 (more specifically, the receiving portions 40 at both end portions are fitted to the counterbored portion 38 of the attachment recess 22) so as to cover the attachment recess 22 and in which the screw 30 is not tightened yet. In this example, as shown in
(32) At the time of manufacturing the pneumatic tire T by using the vulcanization mold 10 configured as described above, a green tire (an unvulcanized tire) is set inside the vulcanization mold 10 and the mold is clamped. Then, a bladder not shown in the drawings disposed inside is expanded, and the green tire is pressed against the inner surface of the mold and kept in a heated state. In this way, the green tire is molded by vulcanizing and the pneumatic tire T is obtained. The molding of the green tire can be performed by a known method.
(33) In the obtained pneumatic tire T, as shown in
(34) In the embodiment, the stencil plate 20 for forming the convex mark T5 is larger than the attachment recess 22 and is mounted so as to cover the attachment recess 22. Therefore, as shown in
(35) In addition, since the gap 44 is formed between the convex portion 26 and the bottom 22A of the attachment recess 22 in a state before the screw 30 is tightened, it is possible to suppress interference between the convex portion 26 and the bottom 22A of the attachment recess 22 when the screw 30 is tightened.
(36) Specifically, the receiving portion 40 of the stencil plate 20 may be drawn downward as the stencil plate 20 is tightened by the screw 30. In that case, particularly the convex portion 26 located near the screw 30 is easily displaced downward. Even in that case, since there is the gap 44 between the convex portion 26 and the bottom 22A of the attachment recess 22, it is possible to suppress the interference between the convex portion 26 and the bottom 22A of the attachment recess 22 when tightening with the screw 30. Therefore, it is possible to suppress the curving of the peripheral portion 28 of the stencil plate 20 and prevent occurrence of rubber burrs. In particular, in this example, since the gap 44 is provided between the convex portion 26 and the bottom 22A of the attachment recess 22 even in a state after tightening with the screw 30, it is possible to more reliably prevent the interference between the convex portion 26 and the attachment recess 22.
Second Embodiment
(37)
(38) As shown in
(39) As a result, the peripheral portion 28 of the stencil plate 20 can be flush with (that is, the same level with) the side molding surface 18A. Therefore, it is possible to eliminate a recess T51 (see
(40) In the second embodiment, the depth (the depth relative to the opening peripheral portion 29, in this example, the depth relative to the hollow 50) D3 of the attachment recess 22 is formed larger than the protrusion height (the protrusion height relative to the peripheral portion 28 overlapping with the hollow 50 which is the opening peripheral portion 29) D2 of the convex portion 26 (D3>D2). As a result, similar to the first embodiment, the stencil plate 20 is formed such that the gap 44 is formed between the convex portion 26 and the bottom 22A of the attachment recess 22 in a state before the screw 30 is tightened. In addition, in this example, as shown in
(41) In the second embodiment, other configurations and effects are the same as those in the first embodiment and the description thereof is omitted.
Third Embodiment
(42)
(43) As shown in
(44) According to the third embodiment, the stepped portion 52 is provided on the peripheral portion 28 of the stencil plate 20 to be fitted in the opening peripheral portion 29 of the attachment recess 22, and thus positioning of the stencil plate 20 with respect to the attachment recess 22 can be performed. As a result, the workability of attachment of the stencil plate 20 can be improved.
(45) In the third embodiment, as shown in
(46) In the third embodiment, other configurations and effects are the same as those in the first embodiment and the description thereof is omitted.
Fourth Embodiment
(47)
(48) As shown in
(49) According to the fourth embodiment, since the peripheral portion 28 of the stencil plate 20 is formed in a shape inclined towards the rear surface 20B side, the tip end 28A of the peripheral portion 28 of the stencil plate 20 is in a line contact with the opening peripheral portion 29 of the attachment recess 22 while being strongly pressed against the opening peripheral portion 29 of the attachment recess 22. As a result, it is possible to suppress curving such as upward deformation of the tip end 28A of the peripheral portion 28 even when it is tightened too strongly during tightening with the screw 30. Therefore, the sealing property of the rubber at the peripheral portion 28 can be further enhanced.
(50) The enlarged view in
(51) In the fourth embodiment, other configurations and effects are the same as those in the first embodiment and the description thereof is omitted.
Fifth Embodiment
(52)
(53) As shown in
(54) According to the fifth embodiment, similar to the fourth embodiment, the tip end 28A of the peripheral portion 28 of the stencil plate 20 is in a line contact with the opening peripheral portion 29 of the attachment recess 22 while being strongly pressed against the opening peripheral portion 29 of the attachment recess 22. As a result, it is possible to suppress curving such as upward deformation of the tip end 28A of the peripheral portion 28 even when it is tightened too strongly during tightening with the screw 30. Therefore, the sealing property of the rubber at the peripheral portion 28 can be further enhanced.
(55) In the fifth embodiment, similar to the fourth embodiment, in the state after tightening with the screw 30, the peripheral portion 28 of the stencil plate 20 and the opening peripheral portion 29 of the attachment recess 22 may be brought into contact in a surface contact state. In the fifth embodiment, other configurations and effects are the same as those in the fourth embodiment and the description thereof is omitted.
Other Embodiments
(56) In the aforementioned embodiments, the gap 44 is formed between the convex portion 26 and the bottom 22A of the attachment recess 22 in a state before the screw 30 is tightened. The gap 44 may disappear after the screw 30 is tightened, and the convex portion 26 and the bottom 22A of the attachment recess 22 may be in contact with each other, as in the third embodiment. In a case where the receiving portion 40 of the stencil plate 20 is not drawn downward when tightening with the screw 30, the convex portion 26 and the bottom 22A of the attachment recess 22 may be in contact with each other without a gap in a state before the screw 30 is tightened. All characteristic configurations in the aforementioned embodiments may be appropriately combined.
(57) Several embodiments have been described above. However, these embodiments have been presented as examples and are not intended to limit the scope of the invention. These novel embodiments can be implemented in various other forms, and various omissions, substitutions, and modifications can be made without departing from the spirit of the invention.