TIRE BUILDING DRUM AND A METHOD FOR USING IT
20180207894 ยท 2018-07-26
Inventors
Cpc classification
B29D30/32
PERFORMING OPERATIONS; TRANSPORTING
B29D2030/3214
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Provided is a tire building drum and a method for shaping tire components on the tire building drum, wherein the tire building drum has an annular sleeve that extends over turn-up arms in the longitudinal direction of the turn-up arms. The sleeve is elastic in the circumferential direction and fits elastically around the turn-up arms. The sleeve is provided with inelastic reinforcement elements extending in at least a part of the sleeve in a reinforcement direction transverse to the circumferential direction of the tire building drum, and has a fixed end that is retained in the axial direction and a movable end that is movable over the turn-up arms in their respective longitudinal directions.
Claims
1-36. (canceled)
37. A tire building drum comprising a rotational axis that defines an axial direction of the tire building drum, wherein the tire building drum further comprises a bead holder extending in a circumferential direction around the rotational axis at a first axial position for holding a bead at said first axial position and an axially movable arm drive member extending circumferentially around the rotational axis at a second axial position spaced apart from the first axial position, wherein the tire building drum is provided with turn-up arms which are distributed circumferentially about the rotational axis and which together form a circumferential surface for supporting tire components between the first axial position and the second axial position, wherein each one of the turn-up arms extends in a longitudinal direction from the arm drive member towards the bead holder and is hingably coupled to the arm drive member about a respective turn-up axis for turning up the tire components supported thereon around the bead at the bead holder as the arm drive member moves towards the bead holder, wherein the tire building drum comprises an annular sleeve that extends over the turn-up arms in their respective longitudinal directions, wherein the sleeve is elastic in the circumferential direction and fits elastically around the turn-up arms, wherein the sleeve is provided with inelastic reinforcement elements extending in a reinforcement direction parallel to the longitudinal direction of the turn-up arms at least in the part where the sleeve is supported on the turn-up arm, wherein the sleeve is provided with a fixed end that is retained in the axial direction at or near the first axial position and a movable end that is movable over the turn-up arms in their respective longitudinal directions.
38. The tire building drum according to claim 37, wherein the movable end of the sleeve is slidably movable in the respective longitudinal directions of the turn-up arms over the turn-up arms.
39. Tire building drum according to claim 37, wherein the movable end of the sleeve is a free end, which is arranged to freely and/or passively move in the longitudinal direction over the turn-arms in response to contraction and/or expansion of the turn-up arms.
40. The tire building drum according to claim 37, wherein the tire building drum is provided with a biasing element for biasing the movable end of the sleeve to move in the respective longitudinal directions of the turn-up arms over the turn-up arms towards the second axial position.
41. The tire building drum according to claim 40, wherein the biasing element is an elastic annular biasing element that is arranged to be elastically fitted in the circumferential direction around the sleeve at or near the free end.
42. The tire building drum according to claim 41, wherein the elastic annular biasing element is an annular spring.
43. The tire building drum according to claim 40, wherein the biasing elements comprise elastic biasing elements, each of which is on a first side attached to the movable end, and on a second side facing away from the first side, attached to a turn-up arm at or near and end thereof which faces away from the bead holder.
44. The tire building drum according to claim 43, wherein the biasing elements comprise a series of springs.
45. The tire building drum according to claim 37, wherein the sleeve comprises an elastomeric material or rubber.
46. The tire building drum according to claim 45, wherein the sleeve comprises a rubber layer having an internal surface that faces radially inwards and an external surface that faces radially outwards, wherein the sleeve comprises one or more coatings or surface layers that are applied to the internal surface, the external surface or both.
47. The tire building drum according to claim 46, wherein reinforcement elements are embedded in the rubber layer.
48. The tire building drum according to claim 46, wherein reinforcement elements are embedded in or formed by the one or more coatings or surface layers.
49. The tire building drum according to claim 46, wherein the one or more coatings or surface layers comprises a low-friction material on the internal surface of the rubber layer.
50. The tire building drum according to claim 46, wherein the one or more coatings or surface layers comprises a low-friction material on the external surface of the rubber layer.
51. The tire building drum according to claim 37, wherein each of the turn-up aims is provided with a sliding surface that faces radially outwards and that abuts the sleeve, wherein the sliding surface is coated with a low-friction material.
52. The tire building drum according to claim 49, wherein the low-friction material comprises a plasma coating, a polytetrafluoroethylene or a combination thereof.
53. The tire building drum according to claim 37, wherein each of the turn-up arms is provided with a plurality of rollers distributed along the longitudinal direction of said arm and arranged for contacting and facilitating the movement of said sleeve over the turn-up arms.
54. The tire building drum according to claim 37, wherein the reinforcement elements extend in planes intersecting with and parallel to the axial direction.
55. The tire building drum according to claim 37, wherein the reinforcement elements extend in the path of the sleeve between the fixed end and the movable end, at least in the part of the sleeve that is arranged to receive the tire components.
56. The tire building drum according to claim 37, wherein the reinforcement elements extend in the full length of the sleeve between the fixed end and the movable end.
57. The tire building drum according to claim 37, wherein the reinforcement direction has at least a directional component parallel to the axial direction.
58. The tire building drum according to claim 37, wherein the reinforcement elements are reinforcement cords or composite fiber reinforcement cords comprising Polyethylene terephthalate (PET), Aramid and/or Rayon fibers.
59. The tire building drum according to claim 37, wherein each turn-up arm comprises a proximal end that is hingably coupled to the arm drive member, a distal end that faces the bead holder and an elongate arm body extending between the proximal end and the distal end, wherein the arm body is provided with a sliding surface that faces radially outwards and that abuts the sleeve, wherein the sliding surface comprises a conical part that extends under a more oblique angle with respect to the axial direction than the rest of the sliding surface.
60. The tire building drum according to claim 59, wherein the conical part of the sliding surface is nearest to the proximal end with respect to the rest of the sliding surface.
61. The tire building drum according to claim 37, wherein the sleeve extends in the axial direction to the opposite side of the bead holder with respect to the arm drive member, wherein the tire building drum is provided with a fixing member that is coupled to the fixed end of the sleeve to retain said fixed end in the axial direction.
62. The tire building drum according to claim 37, wherein the bead holder comprises a bead lock mechanism that is expandable in the radial direction for clamping the bead in a radially outward direction, wherein part of the sleeve near the fixed end of the sleeve extends in the axial direction over the bead lock mechanism and, in use, is arranged to be retained in the axial direction between the bead and said bead lock mechanism.
63. The tire building drum according to claim 62, wherein the bead lock mechanism comprises a guiding member which is arranged between the bead lock and the fixed end of the sleeve, which guiding member is arranged to push the sleeve upwards against at least the lower part of a bead arranged on said bead lock, at a side of said bead facing the fixed end of the sleeve.
64. The tire building drum according to claim 37, wherein the turn-up arms are hingable with respect to their respective hinge axes between a level orientation in which the turn-up arms extend parallel to the axial direction and a turned-up orientation in which the turn-up arms extend under an oblique angle with respect to the axial direction from the first radius at the arm drive member towards a second, larger radius radially outside the bead holder, wherein the reinforcement elements extend parallel to the axial direction in the level orientation of the arms.
65. The tire building drum according to claim 64, wherein the reinforcement elements extend mutually parallel in the level orientation of the arms.
66. A method for shaping tire components on a tire building drum according to claim 37, wherein the method comprises the steps of: applying a carcass around the tire building drum, wherein a lateral part of the carcass extends over the bead holder in the axial direction and around the sleeve from the first axial position towards the second axial position; applying a bead around the carcass at the bead holder; moving the arm drive member in the axial direction towards the bead holder to cause the turn-up arms to turn-up the lateral part of the carcass supported thereon around the bead at the bead holder; and retaining the fixed end in the axial direction at or near the first axial position while allowing the movable end to move in the respective longitudinal directions of the turn-up arms over the turn-up arms towards the first axial position.
67. The method according to claim 66, wherein the method further comprises the steps of: moving the arm drive member in the axial direction away from the bead holder to cause the turn-up arms to return to a level orientation; and retaining the fixed end in the axial direction at or near the first axial position while allowing the movable end to move in the respective longitudinal directions of the turn-up arms over the turn-up arms towards the second axial position.
68. The method according to claim 67, wherein the sleeve is biased to move towards the second axial position, wherein the step of allowing the movable end to move the respective longitudinal directions of the turn-up arms over the turn-up arms towards the second axial position occurs automatically with the return of the turn-up arms to their level orientation.
69. The method according to claim 68, wherein the bias is generated by the elasticity of the sleeve in the circumferential direction.
70. The method according to claim 68, wherein the method comprises the step of providing a biasing element for exerting a biasing force on the sleeve to cause the sleeve to move in the respective longitudinal directions of the turn-up arms over the turn-up arms towards the second axial position.
71. The method according to claim 66, wherein the movement of the sleeve over the turn-up arms in the respective longitudinal directions of the turn-up aims is a sliding movement.
72. The method according to claim 66, wherein the movement of the sleeve in the respective longitudinal directions of the turn-up arms over the turn-up arms is a free and/or passive movement over the turn-arms in response to contraction and/or expansion of the turn-up arms.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0046] The invention will be elucidated on the basis of an exemplary embodiment shown in the attached schematic drawings, in which:
[0047]
[0048]
[0049]
[0050]
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DETAILED DESCRIPTION OF THE INVENTION
[0055]
[0056] The carcass C typically comprises a pre-assembly PA of an inner-liner and a side wall SW. Typically, one sidewall SW is applied on each of the drum halves 10 near the lateral side of the carcass C at said respective drum half 10. Typically, one or more body plies of substantially the same dimensions as the inner-liner are arranged on top of the inner-liner PA. Beads B are provided onto the carcass C at both sides of the center deck 11 to seal of a part of the carcass C at the center deck 11. Said part of the carcass C is subsequently shaped by the center deck 11, e.g. by inflation, in a manner known per se. The carcass C, together with the sidewalls SW are turned-up by the two drum halves 11 around the respective beads B against the already shaped part of the carcass C at the center deck 11 to reinforce the radial sides of the green tire.
[0057] As shown in
[0058]
[0059] The bead holder 3, as shown in
[0060] The bead holder 3 comprises a bead lock mechanism 30, known per se, that is expandable and contractible in the radial direction R of the tire building drum 1 to lock or clamp the bead B supported thereon against the carcass C, as shown in
[0061] As best seen in
[0062] As shown in
[0063] The sliding surface 45 according to the present invention is preferably coated with a non-sticking, non-tacky or low-friction material, for example a plasma coating, Teflon or a combination thereof.
[0064] The tire building drum 1 is optionally provided with cover plates 47 extending in the circumferential direction E between each pair of directly adjacent turn-up arms 4 to substantially close gaps or slits between the turn-up arms 4 in the circumferential direction E.
[0065] As shown in
[0066] The sleeve 6 has a first end 61 at or near the first axial position P1 and a second end 62 that is circumferentially fitted around the plurality of the turn-up arms 4 at the sliding surfaces 45 thereof. The first end 61 is fixed or retained in the axial direction A at or near the first axial position P1 and is hereafter referred to as the fixed end 61. The second end 62 is movable and/or slidable over the sliding surfaces 45 of the plurality of turn-up arms 4 in the respective longitudinal directions L of said turn-up arms 4 and is hereafter referred to as the movable end 62. It is noted that in this first example as shown in
[0067] In this exemplary embodiment, the tire building drum 1 is provided with a fixing member 8 for fixedly attaching the fixed end 61 to the drum half. The fixing member 8 is arranged at a side of the bead holder 3 in the axial direction A opposite to the arm drive member 5, and is preferably located as close as possible to or directly adjacent to the bead holder 3 in the axial direction A. Preferably, the fixing member 8 is slidable in the axial direction A over a short distance towards and away from the bead holder 2 to compensate for the expansion of the bead lock mechanism 30 prior to the turning-up of the turn-up arms 4, as shown in
[0068] As shown in detail in
[0069] Alternatively, the internal surface 64 and/or external surface 65 is provided with a fabric layer, preferably a bi-elastic fabric. Such a fabric provides excellent elongation properties in both longitudinal and transversal directions, which allow a very smooth deformation of the sleeve during the turn-up action.
[0070] The layer 63 comprises an elastomeric material, preferably rubber. The rubber layer 63 is elastic in at least the circumferential direction E of the tire building drum 1. As such, the sleeve 6 is fitted tightly and elastically around the plurality of turn-up arms 4. Specifically, the radially outwardly facing sliding surface 45 of the turn-up arms 4 are in direct contact or abutment with the internal surface 64 of the sleeve 6. Although the elastomeric material of the rubber layer 63 may be a bi-directional elastomeric material that is elastic in a direction transverse to the circumferential direction E, the elasticity of the rubber layer 63 in said transverse direction is reduced by embedding a plurality of inelastic or substantially inelastic reinforcement elements 7 into the rubber layer 63 in a reinforcement direction transverse or perpendicular to the circumferential direction E.
[0071] In this exemplary embodiment of the invention, the reinforcement elements 7 are reinforcement filaments or reinforcement cords, preferably composite fiber reinforcement cords comprising Poly-Ethylene Terephthalate (PET), Aramid and/or Rayon fibers. Alternatively, the reinforcement elements 7 may also be embedded in or formed by the coating or the surface layer on the internal surface 64 and/or the external surface 65 of the rubber layer 63 of the sleeve 6.
[0072] The reinforcement direction of the reinforcement elements 7 has at least a directional component parallel to the axial direction A. The reinforcement direction extends in a radial plane of the tire building drum 1 that intersects with and is parallel to the axial direction A. The reinforcement direction extends from the first axial position P1 or the fixed end 61, in a path of the rubber layer 63 over the bead holder 3 and the turn-up arms 4 in the axial direction A, towards the second axial position P2 or the free end 62. As shown in
[0073] The tire building drum 1 is provided with a first biasing member 91 for biasing the turn-up arms 4 from the turned-up orientation, as shown in
[0074] Since the sleeve 6 also has elastic properties, the sleeve 6 also provides a biasing force on the turn-up arms 4 to push them back towards the level orientation. In case the biasing force provided by the sleeve 6 onto the turn-up arms 4 is large enough, the first and/or second biasing members 91, 92 can be omitted.
[0075] The method for shaping tire components on the aforementioned tire building drum 1 will be elucidated below with reference to
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[0077]
[0078]
[0079] During the turning-up from the level orientation as shown in
[0080]
[0081] The return of the free end 62 towards the second axial position P2 is further aided when the free end 62 reaches the conical section 13 formed by the conical parts 46 of the sliding surfaces 45 of the respective turn-up arms 4. The transition between the substantially cylindrical section 14 and the conical section 13 is schematically indicated in
[0082] However, in case the combined action of elasticity of the sleeve 6, the biasing element 92, the conical section 13 and the anti-friction coatings or surface layers, is not sufficient to ensure a proper returning of the free end 62 to the start position, also in the long term, additional biasing elements can be provided to pull the movable end 62towards the start position, as schematically shown in the second example in
[0083] According to this second example, the movable end 62 of the sleeve 6 is slidably movable in the respective longitudinal directions L of the turn-up arms 4 over the turn-up arms 4, and wherein the tire building drum 1 is provided with biasing elements 95 for biasing the movable end 62 of the sleeve 6 to move in the respective longitudinal directions L of the turn-up arms 4 over the turn-up arms 4 towards the second axial position P2.
[0084] According to the example, the biasing elements 95 comprises a series of springs, each of which is on a first side attached to a first circumferential attachment member 94 which is attached to the movable end 62. On a second side facing away from the first side, each one of said springs is attached to a second circumferential attachment member 93 which is attached to the turn-up arms 4 at or near the proximal end 41 thereof. Alternatively, the biasing elements 95 can also comprise other elastic biasing elements, such as an elastic rubber band. The biasing elements 95 are arranged to pull back the movable end 62 towards the second position P2 when the turn-up arms contract toward the drum 1 after the turning-up of the turn-up arms 4.
[0085] In the example shown in
[0086] Alternatively, the use of the circumferential attachment member 93 allows to position the biasing elements 95 substantially independent from the turn-up arms 4 or in between the turn-up arms 4. Arranging the biasing elements 95 in between the turn-up arms 4 has the advantage that the biasing elements 95 can be arranged at least substantially below the circumferential surface 12 of the tire building drum 1 to provide a circumferential surface 12 which is as flat and/or smooth as possible.
[0087]
[0088] It is to be understood that the above description is included to illustrate the operation of the preferred embodiments and is not meant to limit the scope of the invention. From the above discussion, many variations will be apparent to one skilled in the art that would yet be encompassed by the scope of the present invention.
[0089] In summary, the invention relates to a tire building drum 1 and a method for shaping tire components on said tire building drum 1, wherein the tire building drum 1 comprises an annular sleeve 6 that extends over turn-up arms 4 in the respective longitudinal directions L of the turn-up arms 4, wherein the sleeve 6 is elastic in the circumferential direction E and fits elastically around the turn-up arms 4, wherein the sleeve 6 is provided with inelastic reinforcement elements 7 extending in at least a part of the sleeve 6 in a reinforcement direction transverse to the circumferential direction E of the tire building drum 1, wherein the sleeve 6 is provided with a fixed end 61 that is retained in the axial direction A and a movable end 62 that is movable over the turn-up arms 4 in their respective longitudinal directions L.