Mold and method for vulcanizing tires
09731462 · 2017-08-15
Assignee
- Compagnie Generale Des Etablissements Michelin (Clermont-Ferrand, FR)
- Michelin Recherche Et Technique S.A. (Granges-Paccot, CH)
Inventors
- Denis Marchadier (Clermont-Ferrand, FR)
- Tom Petrina (Greenville, SC, US)
- David Stringer (Greenville, SC, US)
- Marvin Owen (Greenville, SC, US)
Cpc classification
B29D2030/0631
PERFORMING OPERATIONS; TRANSPORTING
B29D30/0606
PERFORMING OPERATIONS; TRANSPORTING
B29D30/0629
PERFORMING OPERATIONS; TRANSPORTING
B29D2030/0618
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Tire vulcanizing mold able to cooperate with a curing press, said mold comprising two shells each one molding a sidewall of the tire and a ring of sectors for molding the tread of the tire, each sector comprising a support and a molding lining situated radially on the inside of the support, in which ring the sectors, when the mold is in the closed position, are all in circumferential contact one with the next via the molding linings and in radial contact on the shells via the front ends of the linings each of which forms a face for contact with the shell, said supports and linings being produced in such a way that each support is able to take up the clamping force applied to the lining coming into contact with the shell when the mold is in the closed position when said clamping force at said contact face exceeds a given threshold that is lower than the plastic threshold of the lining. A predetermined clearance (j) is provided between the lower front face of the shell and the lower front end of the support, and in that this clearance (j) is cancelled out when the mold is in the closed position.
Claims
1. A tire vulcanizing mold adapted to cooperate with a curing press, said mold comprising: two shells, each one molding a sidewall of the tire, and a ring of sectors for molding the tread of the tire, wherein each sector comprises: a support, and a molding lining situated radially on the inside of the support, and having a plastic threshold wherein the sectors of the ring, when the mold is in the closed position, are all in circumferential contact one with the next via the molding linings and in radial contact on the shells via front ends of the molding linings, each of which forms a face for contact with the shell, wherein said supports and linings are produced in such a way that each support is able to take up a clamping force applied to the lining coming into contact with the shell when the mold is in the closed position when said clamping force at said contact face exceeds a given threshold that is lower than the plastic threshold of the lining, wherein a predetermined clearance (j) is provided between a lower front face of the shell and a lower front end of the support, and wherein this clearance (j) is cancelled out when the mold is in the closed position.
2. The mold according to claim 1, wherein said support comprises a lower front end situated in an extension of the front end of the lining, said lower front end being produced in such a way that it comes into contact with the lower front face of the shell when the clamping force at said contact face exceeds a given threshold.
3. The mold according to claim 1, wherein the support is produced from a material with a compression strength greater than that of the material of the lining.
4. The mold according to claim 1, wherein each support comprises a segment and means for affixing said segment to said support.
5. The mold according to claim 4, wherein each segment has a lower front face produced in such a manner as to come into contact with the lower front face of the shell when the clamping force at said contact face exceeds a given threshold.
6. The mold according to claim 1, wherein a radial clearance “j” is provided between the shell and the lower front end of the support, or between the shell and the lower front face of the segment, which clearance is between 0.05 and 0.1 mm.
7. A tire vulcanizing method using a mold according to claim 1, said mold comprising two shells each one molding a sidewall of the tire and a ring of sectors for molding the tread of the tire, each sector comprising a support and a molding lining situated radially on the inside of the support, in which ring the sectors, when the mold is in the closed position, are all in circumferential contact one with the next in the circumferential direction via the molding linings and in contact on the shells via their front ends, said mold being able to collaborate with a curing press in order to move from a position in which the mold is open, in which the sectors are separated from one another and separated from the shells, to said position in which the mold is closed, characterized in that closure of the mold is achieved in two steps: a first step of placing the front face of the lining in contact with the front face of the shell; a second step of applying the clamping force, in which the lining is elastically compressed and allows the force to be taken up by the support, a predetermined clearance (j) being provided between the lower front face of the shell and the lower front end of the support, this clearance (j) being cancelled out when the mold is in the closed position.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) The invention will be better understood by virtue of the remainder of the description, supported by the following figures:
(2)
(3)
(4)
DETAILED DESCRIPTION OF SPECIFIC EMBODIMENTS
(5) In the various figures, identical or similar elements have the same reference number. Their description is thus not systematically repeated.
(6)
(7)
(8) According to an embodiment of the invention, said supports 1 and linings 3 are produced in such a manner that each support 1 is able to take up the clamping force applied to the lining 3 coming into contact with the shell 5 when the mold is in the closed position, when the clamping force F.sub.i at the contact face of the front end 7 of the lining on the shell 5 exceeds a given threshold. This threshold of the force is lower than the plastic threshold of the lining in order to prevent the appearance of residual deformations thereon. After laboratory testing, for a lining 3 produced from an aluminium alloy operating in temperature ranges of between 150 and 180° C., it has been agreed to reduce the elastic limit Re by 45% and to reduce the elasticity modulus E by 20%, thereby obtaining a threshold value for the elastic limit Re of 44 MPa and a threshold value for the modulus E of 58 000 MPa.
(9)
(10) After having calculated the strength of the materials and defined the necessary ranges of measurements (taking account of manufacturing tolerances of the components and differential expansions between the components of the mold in the case of a lining 3 produced from an aluminium alloy and a support 2 produced from steel), it was established that for a clearance j=0.07 mm the deformation of the lining 3 remains in the elastic domain and the support 2 takes up the clamping forces at the interface. Laboratory testing confirmed that the proposed solution was capable of taking up the different values of the clamping force applied to vulcanizing molds for passenger vehicle and van tires. Thus, in operation, the lining comes first into contact with the shell, and is compressed, but the deformations thereof remain in the elastic domain upon the application of the clamping force originating from the curing press. Elastic crushing of the lining 3 at the interface with the shell 5 successfully cancels out the clearance “j”, allowing the support 2 to take up the clamping force via a radial loop.
(11)
(12) In the embodiments described herein, the linings 3 are produced from aluminium using a casting technique, and all the other mold components (supports 2, shells 5, rings 4, segments 15) are produced from steel or cast iron. In a variant, the support 2 may be produced from an aluminium alloy having a compression strength in excess of that of the material of the lining 3.
(13) Other variants and embodiments of the invention may be envisaged without departing from the scope of the claims.
(14) Thus, it is possible to use different solutions in combination within the context of a single vulcanizing mold. It is thus possible to produce a mold comprising a radial clearance between the shell and the lining support and a circumferential clearance between the lateral faces of the two adjacent sectors, the two clearances being calculated in such a manner that, when the mold is in the closed position, the lining is deformed elastically and the clamping forces are taken up at the supports of the linings.