Method for molding a green tire into a heating press

By controlling the differential pressure between the vacuum chamber and bladder pressure, the method prevents tire growth and mold contamination, achieving high-quality tire vulcanization efficiently.

DE102023213274A1Pending Publication Date: 2025-06-26CONTINENTAL REIFEN DEUTSCHLAND GMBH
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
DE102023213274
Authority / Receiving Office
DE · DE
Patent Type
Applications
Current Assignee / Owner
Filing Date
2023-12-22
Publication Date
2025-06-26

AI Technical Summary

Technical Problem

The existing method for vulcanizing green tires in a heating press results in undesired growth of the tire due to internal bladder pressure during the vacuum generation phase, leading to contamination of the vulcanization mold and impaired tire quality.

Method used

Simultaneously generate a vacuum in the vacuum chamber and reduce the pressure inside the bladder to maintain a differential pressure of 0.1 to 0.7 bar, with a deviation of ±0.2 bar, ensuring the pressure inside the bladder is below atmospheric pressure, and adjust the pressure to maintain a balanced differential pressure throughout the process.

Benefits of technology

Prevents tire growth during critical vacuum phases, maintains mold cleanliness, and ensures a high-quality vulcanized tire without visible air bubbles or rubber burrs, completing the process in a short time frame of 30 seconds to 120 seconds.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 00000000_0000_ABST
    Figure 00000000_0000_ABST
Patent Text Reader

Abstract

Method for molding a green tire (8) into a heating press (1) with a hood comprising at least two hood parts and with a container (7) arranged in one of the hood parts, which contains a vulcanization mold (6) having molded parts forming the outer side of the tire, comprising the following steps: - Positioning a heating bladder inside the green tire (8), - Introducing a gas into the interior of the bladder and setting an internal pressure in the bladder of 0.10 bar to 0.70 bar, - Closing the heating press (1) via several partial strokes of the hood parts (3, 4), - wherein in the first partial stroke the hood parts (3, 4) are closed to form a vacuum chamber (13) in the interior of the hood which can be placed under vacuum. Simultaneously with the creation of the vacuum, the differential pressure (P B ) between the pressure (Pv) in the vacuum chamber (13) and the pressure (P B) inside the bladder is set to 0.1 bar to 0.7 and maintained with a deviation of up to ± 0.2 bar, where the absolute pressure (P B ) in the heating bladder at least for the duration of reaching the minimum absolute pressure (Pv) in the vacuum chamber (13).
Need to check novelty before this filing date? Find Prior Art

Description

[0001] The invention relates to a method for molding a green tire in a heating press with a hood consisting of at least two hood parts and with a container arranged in one of the hood parts, which contains a vulcanization mold having molded parts that form the outer side of the tire, with the following successive steps: - Loading the opened heating press by placing the green tire to be vulcanized into the container, - Positioning a heating bladder inside the green tire, - Introducing a gas into the interior of the bladder and setting an internal pressure in the bladder of 0.10 bar to 0.70 bar, - Closing the heating press over several partial strokes of the hood parts, whereby the hood parts are moved towards each other, - in the first partial stroke, the hood parts are closed, forming a vacuum chamber in the interior of the hood that can be placed under vacuum, - Removing the air inside the vacuum chamber using a vacuum system to create a vacuum with 0.10 mbar to 950 mbar absolute pressure in the vacuum chamber.

[0002] Such a method is known, for example, from WO 2021 / 223822 A1. In the method known from this document and with the heating press known from this document, the vulcanization of a green tire takes place under vacuum. The heating press comprises a container containing a segmented vulcanization mold comprising the segments, side shells, and bead rings that shape the green tire. Heating chambers are provided for tempering the shaping parts in order to form an external heating system. During vulcanization, the container is surrounded by a two-part, closed hood, which serves to insulate the temperature during vulcanization. A heating bladder inserted into the interior of the green tire forms an internal heating system by introducing a heating medium, for example, hot steam, under pressure into the interior of the heating bladder.Vacuum vulcanization allows a tire to be vulcanized without the need for vent valves in the vulcanization mold. The vacuum inside the hood reduces the atmospheric pressure outside the tire, creating a pressure differential between the interior of the hood and the pressure outside the hood of more than 1 bar.

[0003] To mold the green tire, the heating press closes the hood sections in two partial strokes. During the first partial stroke, the open end of the upper hood section is moved axially by a specific stroke in order to insert it into the open end of the stationary lower hood section without any play. The hood sections overlap and are vacuum-sealed. The container and vulcanization mold remain open during this process. Before the first partial stroke, the heating bladder located in the green tire is pressurized with hot steam. This internal pressure remains unchanged or increased until the tire is molded. After the first partial stroke, the interior of the hood is placed under vacuum. During the second partial stroke, the hood is completely closed, along with the container and vulcanization mold.The internal pressure in the bladder causes the green tire to grow in the not yet closed vulcanization mold during and after the vacuum is set, so that flowable rubber material of the green tire can penetrate into the spaces between the mold parts of the vulcanization mold, the vulcanization mold is contaminated and the quality of the subsequently vulcanized tire is impaired.

[0004] The invention is based on the object of optimising the method for moulding a green tyre mentioned at the outset in such a way that undesired growth of the green tyre is prevented and contamination of the vulcanisation mould is avoided.

[0005] The stated object is achieved according to the invention in that, at the same time as the vacuum is generated in the vacuum chamber, the pressure inside the bladder is reduced in such a way that the differential pressure between the pressure in the vacuum chamber and the pressure inside the bladder is set to 0.1 bar to 0.7 and is maintained with a deviation of up to ± 0.2 bar, wherein the absolute pressure set in the bladder thus is maintained at least for the duration of the minimum absolute pressure in the vacuum chamber being reached.

[0006] The method according to the invention thus prevents the green tire from growing due to the internal bladder pressure during the critical vacuum generation phase. The internal bladder pressure is reduced and brought to a level below atmospheric pressure, thus equalizing the pressure differences. The difference between the negative pressure in the vacuum chamber and the negative pressure in the heating bladder is essentially at the level before the first partial stroke. This also ensures that the heating bladder continues to hold or fix the green tire, but without the green tire experiencing undesirable growth.

[0007] In a particularly advantageous embodiment of the invention, in a next, second partial stroke, the hood parts, the container and the vulcanization mold are closed to such an extent that the distance between the green tire and the mold parts of the vulcanization mold is reduced to approximately 1.00 mm to 2.00 mm, wherein the absolute pressure in the vacuum chamber is maintained at the minimum absolute pressure and the pressure in the bladder is adjusted such that the differential pressure between the pressure in the vacuum chamber and the pressure inside the bladder is still balanced to within + / - 0.20 bar relative to the initially set pressure. If the container and the vulcanization mold were completely closed, there is a possibility that the residual pressure in the hood would not create a sufficient vacuum and that air bubbles would remain between the tire and the mold, which would be visible on the surface of the fully vulcanized tire after vulcanization has been completed.The vulcanization mold, which is still slightly open, now allows the last remaining air to be removed without causing the tire to grow unevenly and without flowable rubber material causing rubber burrs to form by penetrating between the still existing narrow gaps between the molded parts.

[0008] It is particularly advantageous if, upon stopping the second partial stroke, the pressure inside the bladder is increased to an overpressure of 0.10 bar to 1.50 bar above atmospheric pressure, while maintaining the absolute pressure in the vacuum chamber at the minimum absolute pressure. The increase in pressure inside the bladder causes the tire to expand slightly, reducing the volume within the vulcanization mold between the tire and the mold without causing undesirably strong compression of the green tire into the vulcanization mold. The reduced volume also results in an absolute reduction in the remaining air volume.

[0009] In a further particularly advantageous process step for completing the forming of the tubular tire, the hood parts and, together with them, the container and the vulcanization mold are completely closed in a third partial stroke, whereby the absolute pressure in the vacuum chamber continues to be maintained at the minimum absolute pressure and the pressure inside the bladder continues to be maintained at the set overpressure of 0.10 bar to 1.50 bar above atmospheric pressure.

[0010] Overall, the invention ensures a gentle molding of the green tire into the heating press without damaging the green tire, whereby the process takes only a short time, in particular in the range of 30 seconds to 120 seconds.

[0011] The aforementioned reduction of the internal pressure in the bladder can be easily achieved by means of a second vacuum system.

[0012] In particular, from the beginning of the molding process up to and including the execution of the first partial stroke, it is advantageous if the pressure inside the bladder is applied or adjusted in a pulsating manner, with fluctuations of up to 0.10 bar, in order to support the escape of air between the green tire and the bladder.

[0013] Further features, advantages and details of the invention will now be described in more detail with reference to the drawings, which illustrate exemplary embodiments. Fig. 1 a heating press from the prior art in the open state, Fig. 2 the heating press Fig. 1 in a closing phase after a first partial stroke, Fig. 3 the heating press Fig. 1 and Fig. 2 in closed position after a second partial stroke, Fig. 4 is a diagram in which successive process phases in the inventive molding of a green tire in a heating press, which is produced according to Fig. 1 to 3 are illustrated.

[0014] The Fig. The heating press 1 shown in Figures 1 to 3 belongs to the prior art and is a heating press as shown and described in WO 2021 / 223822 A1 and is intended for vulcanizing a green tire 8, in particular a green tire of a vehicle tire, preferably a pneumatic vehicle tire. The main components of this heating press 1 are described below, and their basic function is summarized. The heating press 1 comprises an upper press part 2, which is connected to a hood upper part 3, and a lower press part 5, which is connected to a hood lower part 4, and has the associated mechanisms for positioning the green tire 8 to be vulcanized, actuating the components of a vulcanization mold 6, introducing the heating media, and demolding the fully vulcanized tire.The vulcanization mold 6 is located in a container 7, which is enclosed during the vulcanization process by the hood consisting of the upper hood part 3 and the lower hood part 4. The container 7 is a conventional, state-of-the-art container that contains the vulcanization mold 6, here a segmented mold with a segmented ring 6a with profile elements and segmented shoes 6b as well as side shells 6c, and has a closing ring 7a. A heating bladder, which is not shown, is arranged in a known manner and, before the heating press 1 is closed, is introduced into the interior of the green tire 8 positioned in the vulcanization mold 6, and filled with a gas, such as a heating medium, in particular superheated steam, under pressure in order to center the green tire 8 in the mold from the inside.

[0015] The hood upper part 3 and the hood lower part 4 are airtight or vacuum-tight ( Fig. 2, Fig. 3), enclose a vacuum chamber 13 when closed and have seals 9 between the hood parts 3, 4 and a central mechanism 10. In order to make the closed hood made up of the two hood parts 3 and 4 vacuum-tight, one of the seals 9 is a ring seal in the hood lower part 4.

[0016] By means of a vacuum system with a pump 11 and a vacuum tank 12, a vacuum can be generated within the closed hood, so that the otherwise usual venting valves contained in the mold surfaces of the vulcanization mold 6 can be dispensed with.

[0017] Fig. Figure 2 shows the heating press 1 during a closing phase after a first partial stroke, with the open end of the hood upper part 3 being moved axially by a specific stroke in order to engage the open end of the stationary hood lower part 4 without play, with the hood parts 3 and 4 overlapping each other. The vulcanization mold 6 is open, and the hood is vacuum-sealed by the ring seal 9. To create a vacuum in the vacuum chamber 13, the connection between the vacuum tank 12 and the hood is opened.

[0018] Fig. 3 shows the heating press 1 in the closed state after a second partial stroke. After the closed hood according to Fig. 2 a vacuum is created, the airless vulcanization mold 6 is completely closed by the execution of the second partial stroke and the connection between the vacuum tank 12 and the hood is closed.

[0019] After the tire has been vulcanized, the interior of the hood is opened via a valve and the heating press 1 is opened to unload the fully vulcanized tire from the vulcanization mold 6.

[0020] Based on the Fig. 4 now shows the process according to the invention of forming a green tire 8 until the complete closing of a heating press 1, which basically contains the components of the Fig. 1 to 3. In the following description, therefore, for a better understanding of the invention, components of the heating press 1 shown in Fig. 1 to 3 and the reference numerals assigned to them are used.

[0021] The forming process is described using successive phases 1 to 7. In Fig. 4 The time axis runs along the abscissa with time in [sec], along the left ordinate the pressure is plotted in [bar], along the right the distance between the upper and lower press part in [mm] for an exemplary heating press 1. The solid line in Fig. 4 is the status line ST which has no reference to pressure but reference to the time axis H of the heating press 1 and symbolizes the respective status of the heating press 1, the dash-dotted line shows the course of the pressure Pv between the hood parts 3, 4 or in the vacuum chamber 13 and the dotted line follows the course of the pressure P B inside the heating bladder.

[0022] In phase 1, the heating press 1 is open, line section a) of the status line ST H, the two hood parts 3, 4 are moved apart, the green tire 8 is inserted into the open vulcanization mold 6 in a known manner, the heating bladder is located inside the green tire 8 and is pressurized from the inside by means of a gas, for example hot steam or nitrogen, with an internal pressure of 0.10 bar to 0.70 bar (absolute), line section c), in order to fix the green tire 8. A slight pulsation of the pressure in the range of approximately 0.10 bar, symbolized by a zigzag line, supports the escape of the air between the green tire 8 and the heating bladder. Outside the green tire 8 and outside the container 7 and the heating press 1, there is an atmospheric overpressure of the order of 1.00 bar, see line section b) of the dash-dotted line in phase 1.

[0023] After the loader (not shown) that has been inserted into the vulcanization mold 6 for the green tire 8 has been swung out of the heating press 1, phase 2 begins. The heating press 1 is moved over a first partial stroke (analogous to Fig. 2) closed, see course of line section d) of the status line ST H by closing the hood parts 3, 4 so that the vacuum chamber 13 is also closed, see line section g) of the course of the status line ST H . There is still atmospheric overpressure around the tire, see line segment e) of line Pv. The pressure P B inside the bladder remains at the same level as before, see line section f).

[0024] In the next phase, phase 3, the air is removed from the vacuum chamber 13 by means of the vacuum system. The previously existing overpressure around the green tire 8 is reduced to almost 0 bar, see line segment h) of the pressure Pv line. At the same time, the pressure P B inside the bladder is reduced, see line section j). In order to keep the relative overpressure inside the bladder largely constant, the pressure P B to a negative pressure relative to atmospheric pressure and reduced until the pressure difference between the pressure Pv and the pressure P B a pressure P R according to the dotted line in Fig. 4 (see line segment i), the gas within the heating bladder is removed using another vacuum system. The heating press 1 is stationary during phase 3; it is not closed any further (see horizontal line segment k) of the status line ST).H .

[0025] In phases 1 to 3, the pressure P pulsates B inside the bladder by up to 0.1 bar to assist the escape of air between the green tire 8 and the bladder, see jagged curve of the pressure P B .

[0026] In the subsequent phase 4, there is no pulsation of the pressure P B in the bladder, this measure is not necessary in this phase, whereby the absolute pressure in the bladder is kept constant at the final pressure from phase 3, see line section n). Due to the decreasing absolute overpressure in the vacuum chamber 13 around the green tire 8, the absolute pressure in the vacuum chamber 13 (see line section m) continues to decrease slightly, and a constant relative overpressure is created, see line section I) along the course of the line P R. Phase 4 lasts until the minimum absolute pressure around the green tire 8 or in the vacuum chamber 13 specified by the vacuum system is reached. During this step, the heating press 1 remains stationary and does not close further, as indicated by the line section o) of the status line ST H symbolized by the heating press 1.

[0027] In phase 5, the heating press 1 is further closed by means of a second partial stroke, see line section s) of the status line ST H. As a result, the container 7 and the molded parts in the vulcanization mold 6 are also set in a closing movement and pushed towards the green tire 8, but only up to a distance of a few millimeters, in particular 1.00 mm to 2.00 mm, between the molded parts of the vulcanization mold 6 and the green tire 8. The absolute pressure in the vacuum chamber 13 around the green tire 8 continues to be maintained at the minimum level, see line section q) in the line of the pressure Pv. As the volume in the vacuum chamber 13 decreases, the absolute proportion of residual air in the vacuum chamber 13 also decreases. The pressure P B in the bladder, see corresponding line section r), and the pressure P R are kept at the level from phase 4 and constant (see line section p).

[0028] In the next phase, phase 6, the heating press 1 stops the closing process from phase 5, see the horizontal line section w) of the status line ST H the heating press 1. At the same time, the pressure P B inside the bladder, see line section u) in the pressure P curve B . The pressure inside the bladder is set to a pressure between 0.10 bar and 1.50 bar above atmospheric pressure, which allows a higher relative overpressure between the pressure P Bin the bladder and the pressure Pv in the vacuum chamber 13 or the space around the green tire 8 in the range of 1.10 bar to 2.50 bar (see line section t). The absolute pressure in the vacuum chamber 13 is still kept at a minimum level (see line section v) in the line of the pressure Pv. In this phase, the green tire 8 begins to grow slightly due to the greater relative pressure inside, whereby the already very small volume in the vacuum chamber 13, which may still contain traces of air, becomes increasingly smaller. The vulcanization mold 6, which is still minimally open (see phase 5), allows the last traces of air to be removed without causing the tire to grow unevenly, since the vulcanization mold 6 limits the maximum growth.

[0029] In the last phase of forming or closing the heating press 1, phase 7, the heating press 1 is completely closed via a third partial stroke and the closing pressure is applied to the container 7 and to hold and bring together the molded parts of the vulcanization mold 6. The heating press 1 including container 7 and vulcanization mold 6 is now completely closed, as shown in Fig. 3. The area around the green tire 8 is still at the minimum possible pressure level and therefore almost zero (see line section z). The pressure inside the bladder is still maintained at the final level from phase 6 (see line section x) of the pressure P curve. B . The line section zz) in the status line ST H symbolizes the third partial stroke, the line section y) shows the pressure P R .

[0030] The duration of the phases in [sec] 3 to 7 is, according to a preferred embodiment, as follows: Phase 3: 10 to 30 Phase 4: 20 to 50 Phase 5: 5 to 15 Phase 6: 5 to 15 Phase 7: up to 5

[0031] Once the container 7 has been locked, the heating process begins, typically by activating the internal heating system by further filling the bladder with the high-pressure medium, which also provides the energy for vulcanization via the internal heating system. This also presses the green tire 8 into the molding parts of the almost airless vulcanization mold 6, leaving no visible air bubbles on the tire surface.

[0032] After the vulcanization process is completed, the vacuum chamber 13 is vented, the heating press 1 and the container 7, including the vulcanization mold 6, are opened. The vulcanized tire is released and can be unloaded.

[0033] In other versions, the heating press used for vulcanization has more than two hood parts. List of reference symbols 1 heating press 2 Press upper part 3 hood top 4 hood base 5 Press base 6 Vulcanization mold 6a Segmental ring 6b Segment shoe 6c side shell 7 containers 7a locking ring 8 tires 9 Seal 10 Center mechanism 11 Pump 12 Vacuum tank 13 Hood interior a) to zz) line sections P B Pressure in the bladder P R differential pressure P V Pressure around / inside the hood parts ST H Heating press status line QUOTES CONTAINED IN THE DESCRIPTION

[0000] This list of documents submitted by the applicant was generated automatically and is included solely for the convenience of the reader. This list is not part of the German patent or utility model application. The DPMA assumes no liability for any errors or omissions. Cited patent literature

[0000] WO 2021 / 223822 A1 [0002, 0014]

Claims

[1] Method for molding a green tire (8) in a heating press (1) with a hood comprising at least two hood parts and with a container (7) arranged in one of the hood parts, which contains a vulcanization mold (6) having molded parts forming the outer side of the tire, with the following successive steps: - Loading the opened heating press (1) by placing the raw tire (8) to be vulcanized into the container (7), - Positioning a heating bladder inside the green tire (8), - Introducing a gas into the interior of the bladder and setting an internal pressure in the bladder of 0.10 bar to 0.70 bar, - closing the heating press (1) via several partial strokes of the hood parts (3, 4), whereby the hood parts (3, 4) are moved towards each other, - wherein in the first partial stroke the hood parts (3, 4) are closed to form a vacuum chamber (13) in the interior of the hood, which can be placed under vacuum, - removing the air within the vacuum chamber (13) by means of a vacuum system for generating a vacuum with 0.10 mbar to 950 mbar absolute pressure in the vacuum chamber (13), characterized by , that simultaneously with the creation of the vacuum in the vacuum chamber (13), the pressure within the bladder is reduced such that the differential pressure (P B ) between the pressure (Pv) in the vacuum chamber (13) and the pressure (P B ) inside the bladder is set to 0.1 bar to 0.7 and maintained with a deviation of up to ± 0.2 bar, where the absolute pressure (P B ) in the heating bladder at least for the duration of reaching the minimum absolute pressure (Pv) in the vacuum chamber (13). [2] Method according to claim 1, characterized bythat in a next, second partial stroke of the hood parts (3, 4) the container (7) and the vulcanization mold (6) are closed to such an extent that the distance between the green tire (8) and the mold parts of the vulcanization mold (6) is reduced to 1.00 mm to 2.00 mm, wherein the absolute pressure (Pv) in the vacuum chamber (13) is kept at the minimum absolute pressure (P B ) and the pressure inside the bladder is adjusted so that the differential pressure (P B ) between the pressure (Pv) in the vacuum chamber and the pressure (P B ) inside the bladder is still balanced to within ± 0.2 bar relative to the initially set pressure. [3] Method according to claim 2, characterized by that with / after stopping the second partial stroke the pressure (P B) inside the bladder is increased to an overpressure of 0.1 bar to 1.5 bar above atmospheric pressure, while the absolute pressure (Pv) in the vacuum chamber is still maintained at the minimum absolute pressure. [4] Method according to claim 3, characterized by that to complete the molding of the green tire in a third partial stroke, the hood parts (3, 4) and together with them the container (7) and the vulcanization mold (6) are completely closed, wherein the absolute pressure (Pv) in the vacuum chamber (13) remains at the minimum absolute pressure and the pressure (P B ) inside the bladder must continue to be maintained at the set overpressure of 0.1 bar to 1.5 bar above atmospheric pressure. [5] Method according to one of claims 1 to 4, characterized by that the pressure (P B ) inside the bladder is reduced by means of a second vacuum system. [6] Method according to one of claims 1 to 5, that at least before and immediately after the first partial stroke the pressure (P B ) inside the heating bladder is maintained or adjusted by pulsating the pressure by up to 0.1 bar.

Citation Information

Patent Citations

  • Heating press and method for vulcanising a vehicle tyre in said heating press under vacuum

    WO2021223822A1