Tire vulcanization chamber
12570060 ยท 2026-03-10
Assignee
Inventors
Cpc classification
B29D30/0606
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A chamber for vulcanizing a tire comprises filamentary load-bearing elements arranged within the internal cavity, the chamber being delimited by an operating upper plate and a lower plate, the two beads of the tire being fastened to the circumference of the plates, the interior of the chamber having a vertical axis XX and horizontal axis YY passing through the center, and comprising at least one heater, a circulation blower for circulating a heat-transfer fluid, and a deflecting first portion and a second portion for directing the flow of heat-transfer fluid.
Claims
1. A chamber for vulcanizing a tire that comprises filamentary load-bearing elements arranged within an internal cavity, the chamber being delimited by an upper plate and a lower plate, two beads of the tire being fastened to a circumference of the upper plate and the lower plate, an interior of the chamber having a vertical axis XX and horizontal axis YY passing through a center of the chamber, and comprising at least one heating means, a circulation blower for circulating a heat-transfer fluid, and a directing means for directing a flow of the heat-transfer fluid, wherein the circulation blower is arranged at the center of the chamber, at an intersection of the vertical axis XX and the horizontal axis YY, so as to direct the flow of heat-transfer fluid along the horizontal axis YY, wherein the directing means for directing the flow of the heat-transfer fluid is arranged at an outlet of the circulation blower, the directing means comprising a first portion comprising deflectors, each having an inlet end and an outlet end, each of the deflectors deflecting the flow of the heat-transfer fluid by an angle , the angle being a result of a tangency of an axis VV passing through the inlet end of a deflector and through the center of the chamber and of an axis DD tangential to the inlet end of the same deflector, and a second portion separating the flow, after being deflected, into two substantially equal half-flows by an angle , the angle being a result of a tangency of an axis ZZ passing through the outlet end of a deflector and the center of the chamber, and of an axis CC passing through the outlet end of the same deflector, wherein the heat-transfer fluid is nitrogen or air, and wherein the chamber does not comprise an elastic bladder.
2. The chamber according to claim 1, wherein the first portion of the directing means comprises between 10 and 20 deflectors deflecting the flow of heat-transfer fluid.
3. The chamber according to claim 1, wherein the angle is between 45 and 90 degrees, and the angle is between 5 and 45 degrees.
4. The chamber according to claim 1, wherein the second portion of the directing means has, with respect to a circumferential direction of the chamber, a circular shape having a circular first end diameter D1 that is between approximately 200 and 360 mm, and a circular second end diameter D2 that is between approximately 300 and 470 mm.
5. The chamber according to claim 1, wherein the second portion of the directing means has, with respect to a circumferential direction of the chamber, a substantially circular shape having a substantially circular first end with a diameter D1 equal to 220 mm, and a substantially circular second end with a diameter D2 equal to 360 mm.
6. The chamber according to claim 1, wherein the flow of heat-transfer fluid has a speed of 20 m/s at the outlet of the circulation blower.
7. The chamber according to claim 1, wherein the flow of heat-transfer fluid has a speed of between 6 and 7 m/s in the internal cavity of the tire.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) The invention will be described with the aid of the following figures, which are schematic and not necessarily to scale, and in which:
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DETAILED DESCRIPTION
(6) As shown in
(7) This chamber according to the prior art further comprises heating means and a circulation blower 40 for circulating heat-transfer fluid, which are arranged internally. This chamber is delimited by the curing bladder 10 when it is expanded using the pressurized heat-transfer fluid, and by the internal portions of an upper plate 51 and of an operating plate 52. In this prior-art depiction, the chamber comprises a directing means 60 for directing the heat-transfer fluid, said directing means being arranged directly at the outlet of the circulation blower 40.
(8) The chamber illustrated in
(9) The outlet of the blower 40 comprises a directing means 60 for directing the nitrogen, consisting of a first portion 70 intended to deflect the flow of nitrogen at the outlet of the blower 40 by an angle of approximately 30 degrees. This first deflection of the flow of nitrogen facilitates projecting the flow towards the two shoulders of the tyre. Furthermore, the directing means 60 comprises a second portion 80 intended to separate the deflected flow of nitrogen into two substantially equal flows such that each half-flow of nitrogen has an optimized passage through the lines of filamentary load-bearing elements and consequently heats the tyre correctly. Such an arrangement of the first 70 and second 80 portions of the directing means 60 allows vulcanization times to be achieved that are very similar to those obtained for conventional tyres.
(10) This distribution of the heat-transfer fluid into two equivalent flows allows for an optimum distribution of heat and consequently for correct vulcanization.
(11) The optimum diffusion of the flow of nitrogen is thus achieved by virtue of a directing means 60 arranged directly at the outlet of the circulation blower in order to allow the flow of heat-transfer fluid to correctly and efficiently gain access to the space delimited by the radially internal surface of the carcass ply and the radially external surface of the filamentary elements, and consequently prevents the filamentary elements of the tyre from being damaged during vulcanization.
(12) As shown in
(13) The second portion 80 has a circular shape, with a substantially frustoconical cross section. The second portion 80 comprises a substantially circular first end 11 with a diameter D1 approximately equal to 360 mm, and a substantially circular second end 12 with a diameter D2 approximately equal to 470 mm. The second portion 80 consists of a material selected in particular from steel or any other suitable material.
(14) The second portion 80 is a solid or hollow structure. The flow of the heat-transfer fluid has a propagation speed of approximately 20 m/s at the outlet of the blower 40, and a propagation speed of each of the two deflected flows of approximately 6 m/s in the internal cavity of a tyre of size 245/45 R18. The curing time for such a tyre is approximately 10 minutes.
(15) This directing means 60 of the chamber according to the invention allows the heat-transfer fluid to be separated into two flows such that the heat optimally reaches the internal wall of the tyre and therefore allows for vulcanization within the curing period required for the size of tyre selected, without any degradation caused by an excessively high temperature and/or an excessively long curing time.
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