Method of manufacturing tire product
10800118 ยท 2020-10-13
Assignee
Inventors
Cpc classification
B29D30/0016
PERFORMING OPERATIONS; TRANSPORTING
B29D30/005
PERFORMING OPERATIONS; TRANSPORTING
B29D2030/0022
PERFORMING OPERATIONS; TRANSPORTING
B29D30/02
PERFORMING OPERATIONS; TRANSPORTING
B29D30/10
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A method of manufacturing a tire product comprising: a step of preparing a core-assembly 4 of a rigid core 2 and a rubber member 3 formed on the rigid core 2, wherein the rigid core 2 is attached to a spindle device 7, and the rubber member 3 is to be vulcanization-molded, and constitutes all or a portion of a green tire, a step of conveying the core-assembly 4 from the spindle device 7 into a mold 50, and a step of vulcanization-molding the rubber member 3 on the rigid core 2 in the mold 50. The conveying of the core-assembly includes obtaining the weight of the rubber member 3 included in the core-assembly 4.
Claims
1. A method of manufacturing a tire product comprising the steps of: attaching a rigid core to a spindle device, preparing a core-assembly of a rigid core and a rubber member formed on the rigid core, wherein the rubber member is to be vulcanization-molded and constitutes all or a portion of a green tire, and wherein the rubber member is wound on an outer surface of the rigid core, while rotating the rigid core with the spindle device, transferring the prepared core-assembly from the spindle device to a carriage, wherein the carriage is constructed to run on rails, conveying the core-assembly from the spindle device to a mold by using the carriage running on the rails, obtaining a weight of the rubber member on the carriage, transferring the core-assembly from the carriage to the mold and placing the rigid core in the mold together with the rubber member, and vulcanization-molding the rubber member on the rigid core in the mold, wherein the obtaining of the weight of the rubber member includes: using a weighing system, wherein the weighing system comprises a balancing device and a weighing device, and wherein the weighing device is disposed on the carriage together with a display device indicating a weight measured thereby, and the weighing device is provided with a holder supporting the conveyed core-assembly, and the balancing device comprises a balance rod having a first end on which the core-assembly is loaded, and a second end to which a counterweight balancing with the rigid core is attached so that the weighing device receives a part of the weight of the core-assembly which part corresponds to the weight of the rubber member, and loading substantially only the weight of the rubber member on the weighing device by using the balancing device in advance of measuring, and measuring the weight of the rubber member.
2. The method of manufacturing the tire product according to claim 1, wherein the conveying of the core-assembly further includes determining whether the obtained weight of the rubber member is within a predetermined allowable range or not, and adjusting the weight, when the obtained weight is outside the allowable range, by adding rubber to the rubber member when the weight is under the allowable range, rand by removing rubber from the rubber member when the weight is over the allowable range whereas when the obtained weight is within the allowable range, the adjusting of the weight is not made.
3. The method of manufacturing the tire product according to claim 2, wherein the outer surface of the rigid core extends circumferentially around the rotational axis of the rigid core, the rigid core is provided on each side in the axial direction with a coupling portion which protrudes axially outwardly, the holder supports the coupling portions which protrude horizontally, from the underside thereof, and the carriage is movable on the rails between the spindle device and the mold.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DESCRIPTION OF THE PREFERRED EMBODIMENTS
(6) Embodiments of the present invention will now be described with reference to the accompanying drawings.
(7) According to the present invention, the method of manufacturing a tire product is carried out by the use of a manufacturing apparatus.
(8)
(9) In the following method as an embodiment of present invention, a step of preparing a core-assembly, a step of conveying the core-assembly, and a step of vulcanization-molding the rubber member in the core-assembly, are carried out by the manufacturing apparatus 1.
(10) In the step of preparing a core-assembly, a rubber member 3 to be vulcanization-molded is built up on the outside of the rigid core 2, and the core-assembly 4 of the rigid core 2 and the rubber member 3 thereon is prepared as shown in
(11) In this embodiment, the rubber member 3 to be vulcanization-molded is a ring-shaped tread ring used for an airless tire.
(12) However, according to the present invention, the rubber member 3 to be vulcanization-molded can be a green tire itself as well as a component of an airless tire other than the tread ring. The manufacturing method according to the present invention is directed to a tire itself (regardless of pneumatic or non-pneumatic) and a tire component constituting a portion of such tire. Thus, the product to be manufactured is generally referred to as tire product.
(13) The rigid core 2 has an outer surface for molding an inner surface of the rubber member 3 to be vulcanization-molded. The rigid core 2 has a circumferentially continuous outer peripheral surface corresponding to an inner peripheral surface of the tread ring.
(14) The rigid core 2 is composed of a plurality of segmented members made of a metallic material and circumferentially arranged into an annular shape.
(15) After the rubber member 3 has been vulcanization-molded on the rigid core 2, the segmented members are disassembled and the rubber member is removed therefrom.
(16) The rigid core 2 is provided on each side in the axial direction with a coupling portion 5 which protrudes axially outwardly. The axially outer end of the coupling portion 5 has a recess, and the coupling portion 5 is formed as a female connector of a male-and-female type one-touch joint for connecting two devices.
(17) In the step of preparing a core-assembly, the rigid core 2 is attached to a spindle device 7.
(18) The spindle device 7 comprises a frame 8 installed on a floor, and a support shaft 9 projecting horizontally from the frame 8. The support shaft 9 is provided at the end with a male connector of the above-mentioned male-and-female type one-touch joint. Namely, an insertion portion 10 for connecting with one of the coupling portions 5 of the rigid core 2 is provided at the end of the support shaft 9. By inserting the insertion portion 10 into the recess of the coupling portion 5 of the rigid core 2, the rigid core 2 is connected to the support shaft 9. When the rigid core 2 is attached to the spindle device 7 as above, the other coupling portion 5 is exposed and the recess is opened.
(19) The spindle device 7 further comprises an electric motor (not shown) for rotating the support shaft 9. Thus, the rigid core 2 can be rotated around its axis of rotation while keeping the axis horizontal.
(20) In the step of preparing a core-assembly in this embodiment, an end portion of a belt-shaped unvulcanized rubber member (not shown) is applied and fixed to the outer peripheral surface of the rigid core 2 in a stopped state. Then, the rigid core 2 is rotated by the spindle device 7. And, the belt-shaped unvulcanized rubber member having a predetermined length is circumferentially continuously wound or applied around the outer peripheral surface of the rigid core 2.
(21) During the rigid core 2 is being rotated, the belt-shaped unvulcanized rubber member which is supplied to be wound, may be moved in the axial direction so that it is wound helically and/or wound into a plurality of plies or layers based on the cross sectional shape of the belt-shaped unvulcanized rubber member and/or the shape of the rubber member 3 to be vulcanization-molded.
Further, a textile member for reinforcement may be wound on or in the wound belt-shaped unvulcanized rubber member.
(22) Thus, in the step of preparing core-assembly, there is prepared a core-assembly 4 of the rigid core 2 and the rubber member 3 for the tread ring formed thereon.
(23) In the step of conveying the core-assembly, the core-assembly 4 is removed from the spindle device 7 as shown in
(24) The conveying of the core-assembly 4 can be carried out in various ways. For example, using a crane or a carriage, the rigid core 2 is conveyed to the mold 50 in a state of being hanged from the crane, or a state of being placed on the carriage.
(25) In this embodiment, as shown in
(26) The carriage 30 can reciprocate between the spindle device 7 and the mold 50. Preferably, the carriage 30 is constructed to run on rails R laid on the floor. As another example, the carriage 30 may be configured, like an automated guided vehicle, to be able to autonomously travel along a guiding line which is for example buried in the floor.
(27) The carriage 30 is provided with a holder for the rigid core 2, for example, a jig 32 for supporting the horizontally protruding coupling portions 5 from the under side.
(28) The jig 32 supports the rigid core 2 or core-assembly 4 so that the rubber member 3 is spaced apart from the top surface of the carriage 30 so as not to be deformed. The structure of the jig 32 is not essential. For example, a pair of Y-shaped frames 32a can be used.
(29) Further, the transfer of the core-assembly 4 from the spindle device 7 to the carriage 30 may be carried out by the use of a transfer device (not shown).
(30) The carriage 30 is provided with a weighing system for measuring the weight of the core-assembly 4 to obtain the weight of the rubber member 3 to be vulcanization-molded which is included in the core-assembly 4.
(31) The weighing system includes a display device 35 which can numerically indicates the weight of the core-assembly 4 and/or the weight of the rubber member 3. Therefore, it is possible to control the volume of the rubber member 3 during conveying the core-assembly 4 since the volume is associated with the weight of the rubber member 3.
(32) The weighing system comprises a weighing device 34, and a control unit 36 for performing a predetermined operation by using the information obtained by the weighing device 34.
(33) The measuring part (e.g. weighing platform) of the weighing device 34 is disposed on the top of the carriage 30. In this embodiment, the jig 32 is disposed on the measuring part, therefore, by placing the core-assembly 4 to the jig 32, the weight of the core-assembly 4 is measured by the weighing device 34. Preferably, the jig 32 is configured so that the measuring part of the weighing device 34 may undergo the weight of the core-assembly 4 in the vertical direction.
(34) Meanwhile, the weight of the rigid core 2 is usually more than 100 kilograms, whereas the weight of the rubber member 3 to be vulcanization-molded is considerably small. For example, in the case of airless tires for passenger cars, the weight of a tread ring is on the order of several kilograms.
(35) Therefore, in order to accurately obtain a small difference of the weight of the rubber member 3 from its target weight, it is possible to use a balancing device 60 in combination with the weighing device 34 in order to reduce the weight to be measured by the weighing device 34.
(36)
(37) Nevertheless, the weighing system may be constructed without the balancing device 60. In this case, the weighing device 34 is measures the weight of the core-assembly 4. The measured weight 4 is input to the control unit 36. The control unit 36 subtracts the known weight of the rigid core 2 from the measured weight of the core-assembly 4 to obtain the weight of the rubber member 3.
(38) In either case, the weight of the rubber member 3 may be indicated numerically by the display device 35, alone or together with the weight of the core-assembly 4.
(39) Further, the control unit 36 is configured to judge whether the weight of the rubber member 3 is within a predetermined allowable range or not.
(40) If the weight is outside the allowable range, the control unit 36 calculates a difference of the weight of the rubber member 3 from the target weight within the allowable range.
(41) The calculated difference is indicated by the display device 35 in real time, alone or together with the weight of the rubber member 3 and/or the weight of the core-assembly 4.
(42) Thus, according to the excess or deficiency of the weight displayed on the display device 35, a worker can remove a portion of the rubber of the rubber member 3, or add rubber to the rubber member 3a step of adjusting the weight.
(43) Thus, prior to vulcanization-molding, it is possible to properly manage the weight (i.e., volume) of the rubber member 3 to be vulcanization-molded and thus the rubber member 3 can be manufactured with high accuracy by preventing molding defects.
(44) It is preferable that a working station 40 for performing the step of adjusting the weight is provided in the middle of the pathway for the carriage 30.
(45) In the working station 40, additional unvulcanized rubber pieces 42 having different weights are prepared in advance so that the worker can select one or more rubber pieces 42 whose total weight becomes equal or close to the deficiency of the weight displayed on the display device 35.
(46) The additional unvulcanized rubber pieces 42 are preferably made of a material same as the material which forms an outer surface of the rubber member 3 to which the additional rubber piece 42 is applied in order to adjust the weight. The additional rubber piece 42 is preferably in the form of a sheet having a thickness of about 0.5 to 2.0 mm.
(47) In the tire axial direction, the width of the additional rubber piece 42 is less than the width of the rubber member 3 and more than 5 mm for example.
(48) If the weight of the rubber member 3 is under the allowable range, the weight of the rubber member 3 is increased by applying the rubber piece(s) 42 to the outer surface of the rubber member 3.
(49) If the weight of the rubber member 3 is over the allowable range, the weight of the rubber member 3 is decreased by removing a portion of the unvulcanized rubber of the rubber member 3. In either case, again the weight of the rubber member 3 is measured by the weighing device 34, and the control unit 36 judges whether the weight of the rubber member 3 is within the predetermined allowable range or not. The result is displaced on the display device 35. Such operation is repeated until the rubber member 3 becomes a proper weight.
(50) As described above, the weight of the rubber member 3 of the core-assembly 4 is obtained during converging the core-assembly 4. As a result, it is possible to remove the core-assembly 4 from the spindle device 7 immediately after the preparing step is completed, and attach another rigid core 2 to the spindle device 7 to prepare another core-assembly 4. Therefore, it is possible to reduce the time when the spindle device 7 is occupied by one rigid core 2, which shorten the cycle time required for manufacturing the products and improves the productivity.
(51) In the step of vulcanization-molding the rubber member 3, as shown in
(52) The mold 50 in this example is a split mold composed of an upper die 52 and lower die 54.
(53) By an actuator (not shown), the upper die 52 can be moved up and down relatively to the lower die 54 so that the mold 50 is opened (
(54) In the closed state, the cavity C for molding the rubber member 3 is formed between the rigid core 2 and the mold 50.
(55) By heating the rigid core 2 and the mold 50 with a heater and/or heat medium (not shown), the rubber member 3 is vulcanization-molded.
(56) Upon completion of the vulcanization-molding, the mold 50 is opened, and the core-assembly 4 (namely, the rigid core 2 and the vulcanized rubber member 3 thereon) is taken out from the mold 50. Then, by disassembling the rigid core 2, the vulcanized rubber member 3 is separated therefrom.
(57) The rubber member 3 which is a tread ring in this embodiment is assembled with spokes and a hub, and an airless tire is manufactured.
(58) While detailed description has been made of preferable embodiments of the present invention, the present invention can be embodied in various forms without being limited to the illustrated embodiments. For example, the tire may be a pneumatic tire instead of an airless tire.
(59) Comparison Test
(60) Based on the method as described above, 100 pieces of a tread ring for an airless tire were manufactured.
(61) Further, as a comparative example, 100 pieces of a tread ring were manufactured without obtaining and adjusting the weight of the rubber member. (corresponding tire size 115/90-13, Target weight 4.8 Kg, Allowable range +/40 g)
(62) As a result, it could be confirmed that the cycle time required for manufacturing the tread rings was reduced by 5% in the method according to the invention when compared with the comparative example.
(63) Further, in the comparative example, the defective occurrence rate was 15%, whereas the defective occurrence rate was 0% in the method according to the invention.
REFERENCE SIGNS LIST
(64) 1 manufacturing apparatus
(65) 2 rigid core
(66) 3 rubber member to be vulcanization-molded
(67) 4 core-assembly
(68) 7 spindle device
(69) 30 carriage
(70) 32 jig
(71) 34 weighing device
(72) 35 display device
(73) 36 control unit
(74) 40 working station
(75) 50 mold
(76) 60 balancing device
(77) 62 balance rod
(78) 64 first end
(79) 66 second end
(80) 68 counterweight