Heat transfer calculation method between mold and green tire

By discretizing and simplifying the mold and tire models, the method addresses the long calculation times in existing methods, enabling efficient heat transfer calculations between a mold and a green tire.

JP7764751B2Active Publication Date: 2025-11-06SUMITOMO RUBBER INDUSTRIES LTD
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Patent Information

Application Number
JP2021200328
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-12-09
Publication Date
2025-11-06
Estimated Expiration
2041-12-09

AI Technical Summary

Technical Problem

Existing methods for calculating heat transfer between a mold and a green tire require long calculation times due to the need for repeated simulations with and without a second portion in the tire model, which complicates the setting of thermal conductivity.

Method used

A method that discretizes the mold and tire models into elements, defines thermal conductivities based on the mold's protrusions and tire's groove-like portions, and simplifies the tire model by omitting certain portions to reduce calculation complexity.

Benefits of technology

This approach allows for faster calculation of heat transfer between the mold and tire, considering the ease of heat transfer through protrusions and grooves, thereby reducing overall calculation time.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a method enabling calculation of heat transmission between a metal mold and a green tire in a short time.SOLUTION: The invention provides a method for conducting calculation of heat transmission between a metal mold having a projection for forming a groove-like part comprising a groove or a sipe and a green tire having a tread rubber which is in contact with the metal mold and provided with a groove-like part with a projection. This method includes: step S1 of defining a metal mold model of a metal mold discretized by a plurality of elements; step S2 of defining a green tire model including at least a tread rubber model; step S5 of defining a heat transfer coefficient to an element of the tread rubber model; and step S5 of calculation of a heat transmission between the tread rubber model and the metal mold model. The metal mold model includes a first omission part where a projection is omitted, and the tread rubber model includes a second omission part in which the groove-like part corresponding to the first omission part is formed to be a non-groove-like part. The step of defining the heat transfer coefficient includes a step of specifying a heat transfer coefficient of a tread rubber model based on a heat transfer coefficient of a projection and a heat transfer coefficient of a tread rubber.SELECTED DRAWING: Figure 5
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Description

[Technical Field]

[0001] The present disclosure relates to a method for calculating heat transfer between a mold and a green tire. [Background technology]

[0002] Patent Document 1 listed below describes a method for calculating heat transfer between a mold and a green tire. In this method, a step of calculating heat transfer at the contact surface between a green tire model and a mold model is carried out using a computer. This green tire model includes a second portion that fills the groove portion, and the thermal conductivity of the elements of this second portion is defined to be greater than the thermal conductivity of the corresponding region of the green tire. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Patent No. 6871528 Summary of the Invention [Problem to be solved by the invention]

[0004] In the above method, in order to set the thermal conductivity of the second portion, simulations are repeatedly performed using a raw tire model including the second portion and a second tire model not including the second portion, which results in the method of Patent Document 1 requiring a long calculation time.

[0005] The present disclosure has been devised in view of the above circumstances, and has as its main object to provide a method that can calculate heat transfer between a mold and a green tire in a short period of time. [Means for solving the problem]

[0006] The present disclosure provides a method for using a computer to perform heat transfer calculations between a mold having protrusions for forming groove-like portions consisting of grooves or sipes, and a raw tire having tread rubber that is in contact with the mold and in which the groove-like portions are formed by the protrusions, the method comprising the steps of: defining, on the computer, a mold model in which the mold is discretized into a plurality of elements; discretizing the raw tire into a plurality of elements and defining, on the computer, a raw tire model including at least a tread rubber model; and assigning predetermined thermal conductivities to the elements of the tread rubber model. and a step of calculating, by the computer, heat transfer at the contact surface between the tread rubber model and the mold model based on the thermal conductivity, wherein the mold model includes a first omitted portion in which at least a part of the protrusion is omitted, and the tread rubber model includes a second omitted portion in which a groove-shaped portion corresponding to the first omitted portion is made a non-groove-shaped portion, and the step of defining the thermal conductivity includes a step of specifying the thermal conductivity of the tread rubber model based on the thermal conductivity of the protrusion and the thermal conductivity of the tread rubber. [Effects of the Invention]

[0007] The method of calculating heat transfer between a mold and a green tire according to the present disclosure employs the above steps, making it possible to calculate heat transfer between the mold and the green tire in a short time. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 1 is a perspective view showing a computer for executing the method for calculating heat transfer between a mold and a green tire according to the present embodiment. [Figure 2] FIG. 1 is a cross-sectional view showing a tire to be evaluated. [Figure 3] FIG. 2 is a partial cross-sectional view of a mold, a bladder, and a green tire during the vulcanization process. [Figure 4] 4 is a cross-sectional view of the mold and green tire shown in FIG. 3 along the line AA. [Figure 5] 1 is a flowchart showing the processing steps of a method for calculating heat transfer between a mold and a raw tire according to the present embodiment. [Figure 6] 1A and 1B are diagrams illustrating a mold model, a raw tire model, and a bladder model used in the heat transfer calculation method of the present embodiment. [Figure 7] 7 is a BB cross-sectional view of the mold model and the raw tire model (tread rubber model) of FIG. 6. [Figure 8] 10 is a flowchart illustrating an example of a processing procedure of a thermal conductivity defining step. [Figure 9] 3 is a flowchart showing a processing procedure of a method for vulcanizing a raw tire according to the present embodiment. [Figure 10] Graph (a) shows the relationship between the temperature of the tread rubber and the vulcanization time for the examples and experimental examples, and graph (b) shows the relationship between the temperature at the outer end position of the outer belt and the vulcanization time for the examples and experimental examples. [Figure 11] (a) is a graph showing the relationship between the temperature of the tread rubber and the vulcanization time for the comparative example and the experimental example, and (b) is a graph showing the relationship between the temperature at the outer end position of the outer belt and the vulcanization time for the comparative example and the experimental example. DETAILED DESCRIPTION OF THE INVENTION

[0009] Hereinafter, embodiments of the present disclosure will be described with reference to the drawings. It should be understood that the drawings include exaggerated representations and representations that differ from the dimensional ratios of actual structures in order to facilitate understanding of the contents of the disclosure. Furthermore, identical or common elements are designated by the same reference numerals throughout the embodiments, and redundant explanations will be omitted. Furthermore, the specific configurations shown in the embodiments and drawings are intended to facilitate understanding of the contents of the present disclosure, and the present disclosure is not limited to the specific configurations shown in the drawings.

[0010] In the method for calculating heat transfer between a mold and a raw tire according to this embodiment (hereinafter sometimes simply referred to as the "heat transfer calculation method"), calculations of heat transfer between the mold and the raw tire are performed using a computer.

[0011] [computer] 1 is a perspective view showing a computer for executing the method for calculating heat transfer between a mold and a green tire according to this embodiment. The computer 1 according to this embodiment includes, for example, a main body 1a, a keyboard 1b, a mouse 1c, and a display device 1d. The main body 1a is provided with, for example, a central processing unit (CPU), a read-only memory (ROM), a storage device such as a magnetic disk, and disk drive devices 1a1 and 1a2. The storage device also stores in advance software and the like for executing the heat transfer calculation method according to this embodiment.

[0012] [tire] FIG. 2 is a cross-sectional view showing a tire 2 to be evaluated. The tire 2 of this embodiment is configured as, for example, a pneumatic tire for a passenger car. However, the tire 2 is not limited to this form and may be configured as, for example, a pneumatic tire for heavy loads or a tire for a motorcycle. The tire 2 of this embodiment is configured to include a rubber member 3 and a fibrous member 4.

[0013] The rubber members 3 of this embodiment include, for example, a tread rubber 3a, a sidewall rubber 3b, a clinch rubber 3c, a bead apex rubber 3d, and an inner liner rubber 3e. The tread rubber 3a is disposed on the radially outer side of the outer belt 4c in the tread portion 2a. The sidewall rubber 3b is disposed on the axially outer side of the carcass 4a in the sidewall portion 2b. The clinch rubber 3c is fixed to the radially inner side of the sidewall rubber 3b. The bead apex rubber 3d extends radially outward from the bead core 5. The inner liner rubber 3e is disposed on the inner surface of the carcass 4a.

[0014] The fibrous member 4 of this embodiment includes, for example, a carcass 4a, an inner belt 4b, and an outer belt 4c. The carcass 4a extends from the tread portion 2a through the sidewall portion 2b to the bead cores 5 of the bead portions 2c. The inner belt 4b and the outer belt 4c are disposed outside the carcass 4a in the tire radial direction and inside the tread rubber 3a.

[0015] In this embodiment, groove-like portions 6 are formed on the outer surface 2o of the tread rubber 3a (tread portion 2a). The groove-like portions 6 are configured as grooves 7 or sipes 8.

[0016] The grooves 7 of this embodiment include at least one circumferential groove 7A that extends continuously in the tire circumferential direction in the tread portion 2a. As a result, the tread portion 2a of this embodiment is formed with a plurality of land portions 9 that are separated by the circumferential groove 7A. The land portion 9 of this embodiment is provided with at least one sipe 8, and in this embodiment, a plurality of sipes 8. The land portion 9 may also be provided with a plurality of lateral grooves (not shown) that extend in a direction that intersects with the circumferential groove 7A.

[0017] [Vulcanization molding] The tire (vulcanized tire) 2 of this embodiment is manufactured, according to convention, by vulcanizing and molding an unvulcanized tire (shown in FIG. 3) including an unvulcanized rubber member 3. Here, "unvulcanized" includes all states that have not yet reached complete vulcanization, and the so-called semi-vulcanized state is included in this "unvulcanized" state. FIG. 3 is a partial cross-sectional view of the mold 11, bladder 12, and green tire 2L during the vulcanization process. FIG. 4 is a cross-sectional view taken along the line AA of the mold 11 and green tire 2L of FIG. 3.

[0018] In the vulcanization process of this embodiment, for example, a mold 11 for shaping the outer surface 2o of the tire 2 (raw tire 2L) and a bladder 12 that expands within the cavity of the raw tire 2L set in the mold 11 are used.

[0019] The mold 11 of this embodiment is configured to include, for example, a pair of sidewall molding dies 13, 13 having sidewall molding surfaces 13s, and a tread molding die 14 having a tread molding surface 14s. The tread molding die 14 is divided in the tire circumferential direction. The sidewall molding die 13 and the tread molding die 14 are fitted together to form a molding surface 11s that can mold the outer surface 2o of the tire 2. A heating means (not shown), such as an electric heater, is arranged in the mold 11.

[0020] The mold of this embodiment has protrusions 18. The protrusions 18 are for forming groove-like portions 6 consisting of grooves 7 or sipes 8 in the tread rubber 3a of the raw tire 2L. The protrusions 18 of this embodiment include first protrusions 18A for forming the circumferential grooves 7A (grooves 7) and second protrusions 18B (blades in this example) for forming the sipes 8.

[0021] The bladder 12 of this embodiment is made of, for example, an expandable rubber-like elastic body. A high-pressure fluid (not shown) is supplied to the internal space 12s of the bladder 12 from, for example, a supply means (not shown). The high-pressure fluid may be, for example, a mixture of water vapor and at least one inert gas, such as nitrogen, or a plurality of inert gases. The temperature of the high-pressure fluid is set to, for example, approximately 140 to 220°C.

[0022] In the vulcanization process, the green tire 2L is heated and pressurized between the mold 11 and the bladder 12 to produce a vulcanized and molded tire 2 (shown in FIG. 2). The outer surface 2o of the tread rubber 3a of the green tire 2L comes into contact with the mold 11, and protrusions 18 provided on the mold 11 form groove-like portions 6 (in this example, circumferential grooves 7A and sipes 8).

[0023] During the vulcanization process, the protrusions 18 of the mold 11 penetrate into the portions of the raw tire 2L where the grooves 6 are formed, and so the heat from the mold 11 is more easily transferred to these portions than to portions where the grooves 6 are not formed, making the temperature more likely to rise. Therefore, when calculating the heat transfer between the mold 11 and the raw tire 2L using a computer 1 (shown in FIG. 1), it is important to consider the ease of heat transfer through the protrusions 18 of the mold 11 and the grooves 6 of the raw tire 2L.

[0024] [Method for calculating heat transfer between a mold and a raw tire (first embodiment)] Next, the heat transfer calculation method of this embodiment will be described. Fig. 5 is a flowchart showing the processing steps of the heat transfer calculation method between the mold and the green tire of this embodiment.

[0025] In the heat transfer calculation method of this embodiment, first, a mold model in which the mold 11 (shown in FIG. 3) is discretized into a plurality of elements is defined in the computer 1 (shown in FIG. 1) (step S1). Figure 6 is a diagram showing the mold model 21, raw tire model 32, and bladder model 22 used in the heat transfer calculation method of this embodiment. In Figure 6, the raw tire model 32 is colored to make it easy to distinguish from the mold model 21 and bladder model 22.

[0026] In step S1 of this embodiment, as shown in FIG. 6, based on design data (e.g., CAD data) of the mold 11 (shown in FIG. 3), the mold 11 is discretized (modeled) with a plurality (a finite number) of elements F(i) (i=1, 2, ...) that can be handled by a numerical analysis method. In this way, a mold model 21 is set. An internal space 21i for arranging a raw tire model 32 is formed in the mold model 21. The mold model 21 of this embodiment is set as a three-dimensional model. Note that the mold model 21 may also be set as a two-dimensional model.

[0027] As the numerical analysis method, for example, the finite element method, the finite volume method, the difference method, or the boundary element method can be appropriately adopted. In this embodiment, the finite element method is adopted. As each element F(i), for example, a tetrahedral solid element can be adopted. In the case of a two-dimensional model, a quadrilateral element can be adopted.

[0028] Each element F(i) has a plurality of nodes 34. Numerical data such as an element number, a node number, a node coordinate value, and material properties (rigidity, Young's modulus, thermal conductivity, density, specific heat, thermal expansion coefficient, etc.) of the mold 11 (shown in FIG. 3) are defined for each element F(i). Such a mold model 21 can be easily set (modeled) by using, for example, commercially available meshing software.

[0029] The mold model 21 of this embodiment includes a pair of first mold models 23, 23 that model a pair of sidewall molds 13, 13 (shown in FIG. 3), and a second mold model 24 that model a tread mold 14 (shown in FIG. 3). The first mold model 23 and the second mold model 24 are combined together to form a molding surface 21s for molding the outer surface 32o of the raw tire model 32.

[0030] In the mold model 21 of this embodiment, a protruding portion 28 that is a model of the protrusion 18 (shown in FIG. 3) is defined. The protruding portion 28 is a model of the first protrusion 18A for forming the circumferential groove 7A of the raw tire 2L shown in FIG. 3. This protruding portion 28 is defined on the molding surface 21s of the second molding mold model 24.

[0031] Fig. 7 is a BB cross-sectional view of the mold model 21 and the raw tire model 32 (tread rubber model 33) in Fig. 6. In Fig. 7, the mold model 21 and the raw tire model 32 are shown exploded, and the elements F(i) and G(i) shown in Fig. 6 are omitted.

[0032] The mold model 21 of this embodiment is defined to include a first omitted portion 31 in which at least a portion of the protrusion 18 (shown in FIG. 3) is omitted. The first omitted portion 31 of this embodiment is obtained by removing the second protrusion 18B for forming the sipe 8 of the raw tire 2L shown in FIG. 3. This first omitted portion 31 is defined on the molding surface 21s of the second molding mold model 24 (in this example, it is set to be a surface continuous with the molding surface 21s).

[0033] As described above, in step S1 of this embodiment, the mold model 21 can be defined in a simplified manner by using the first omitted portion 31 obtained by removing a part of the protrusion 18 shown in FIG. 3 (in this embodiment, the second protrusion 18B, which has a more complex shape than the first protrusion 18A). Therefore, in this embodiment, the mold model 21 can be defined in a short time. The mold model 21 is stored in the computer 1 (shown in FIG. 1).

[0034] [Define raw tire model (tread rubber model)] Next, in the heat transfer calculation method of this embodiment, as shown in Fig. 6, a raw tire model 32 (tread rubber model 33) in which the raw tire 2L (shown in Fig. 3) is discretized into a plurality of elements is defined in the computer 1 (shown in Fig. 1) (step S2). As long as the raw tire model 32 of this embodiment includes at least the tread rubber model 33, other models (for example, a sidewall rubber model 39, etc.) may be omitted. The raw tire model 32 of this embodiment includes not only the tread rubber model 33 but also other models.

[0035] In this embodiment, for example, based on design data (e.g., CAD data) of the mold 11 (shown in FIG. 3), the raw tire 2L (shown in FIG. 3) is discretized (modeled) into a plurality (a finite number) of elements G(i) (i=1, 2, ...) that can be handled by a numerical analysis method. In this way, a raw tire model 32 including a tread rubber model 33 is set.

[0036] The raw tire model 32 of this embodiment is set as a three-dimensional model. Note that, if the mold model 21 is defined as a two-dimensional model, the raw tire model 32 may be set as a two-dimensional model.

[0037] The elements G(i) used are the same as the elements F(i) of the mold model 21. Each element G(i) is configured to include a plurality of nodes 37. Numerical data such as an element number, a node number, node coordinate values, and material properties (rigidity, Young's modulus, thermal conductivity, density, specific heat, thermal expansion coefficient, etc.) of the raw tire 2L (shown in FIG. 3) are defined for each element F(i).

[0038] The raw tire model 32 of this embodiment includes a tread rubber model 33 that models the tread rubber 3a (shown in FIG. 3) of the raw tire 2L. The tread rubber model 33 of this embodiment defines a groove portion 35 that models the groove-shaped portion 6 (shown in FIG. 3) of the raw tire 2L. The groove portion 35 of this embodiment is a model of the circumferential groove 7A (shown in FIG. 3).

[0039] As shown in Fig. 7, the tread rubber model 33 of this embodiment includes a second omitted portion 36 in which the groove portion 6 corresponding to the first omitted portion 31 is made non-groove. The second omitted portion 36 of this embodiment is a filled-in sipe 8 (shown in Figs. 3 and 4) corresponding to the second protrusion 18B of the mold 11 (non-groove portion). The second omitted portion 36 of this embodiment is defined on the outer surface 32o of the tread rubber model 33 (in this example, set to be a surface continuous with the outer surface 32o). Such second omitted portion 36 allows the raw tire model 32 to be defined in a simplified manner, so that the raw tire model 32 can be defined in a short time.

[0040] As shown in Fig. 6, in this embodiment, the contour of the outer surface 32o of the raw tire model 32 coincides with the contour of the molding surface 21s of the mold model 21. Between the outer surface 32o of the raw tire model 32 and the molding surface 21s of the mold model 21, the element G(i) of the raw tire model 32 and the element F(i) of the mold model 21 do not share nodes 34, 37. This makes it possible to set any boundary condition between the outer surface 32o of the raw tire model 32 and the molding surface 21s of the mold model 21. The raw tire model 32 is stored in the computer 1 (shown in Fig. 1).

[0041] [Enter bladder model] Next, in the heat transfer calculation method of this embodiment, a bladder model 22 is defined in the computer 1 (shown in FIG. 1) (step S3). In this embodiment, for example, based on design data (e.g., CAD data) of the mold 11 and bladder 12 shown in FIG. 3, the bladder 12 is modeled (discretized) with a plurality (a finite number) of elements H(i) (i = 1, 2, ...) that can be handled by a numerical analysis method. In this way, the bladder model 22 is set. The bladder model 22 of this embodiment is set as a three-dimensional model. Note that when the mold model 21 and the raw tire model 32 are defined as two-dimensional models, the bladder model 22 may be set as a two-dimensional model.

[0042] The elements H(i) are similar to the elements F(i) of the mold model 21 and the elements G(i) of the raw tire model 32. Each element H(i) is configured to include a plurality of nodes 38. Numerical data such as an element number, node numbers, node coordinate values, and material properties (rigidity, Young's modulus, thermal conductivity, density, specific heat, thermal expansion coefficient, etc.) of the bladder 12 (shown in FIG. 3) are defined for each element H(i). The bladder model 22 is stored in the computer 1 (shown in FIG. 1).

[0043] [Layout of unvulcanized tire model and bladder model] Next, in the heat transfer calculation method of this embodiment, the computer 1 (shown in FIG. 1) arranges the green tire model 32 and the bladder model 22 in the internal space 21i of the mold model 21 (step S4). In step S4 of this embodiment, the green tire model 32 and the bladder model 22 can be arranged in the internal space 21i of the mold model 21 based on, for example, a procedure similar to the arrangement step of Patent Document 1.

[0044] [Define thermal conductivity of tread rubber model] Next, in the heat transfer calculation method of this embodiment, a predetermined thermal conductivity is defined for the element G(i) of the tread rubber model 33 (thermal conductivity definition step S5). The thermal conductivity of this embodiment is used to calculate heat transfer at the contact surface between the tread rubber model 33 and the mold model 21 in the heat transfer calculation step S7 described below. Fig. 8 is a flowchart showing an example of the processing procedure of the thermal conductivity definition step S5.

[0045] [Determine the thermal conductivity of the tread rubber model] In the thermal conductivity definition step S5 of this embodiment, first, the thermal conductivity of the tread rubber model 33 shown in FIGS. 6 and 7 is specified (step S51).

[0046] The heat transfer calculation of this embodiment uses a mold model 21 including a first omitted portion 31 in which the protrusions 18 (second protrusions 18B) shown in Fig. 7 are omitted, and a tread rubber model 33 including a second omitted portion 36 in which the groove-shaped portions 6 (sipes 8) corresponding to the first omitted portion 31 are made non-groove-shaped portions. For this reason, for example, when heat transfer between the mold model 21 and the tread rubber model 33 is calculated based on the thermal conductivity of the tread rubber 3a shown in Fig. 3, it is difficult to take into account the ease of heat transfer due to the protrusions 18 of the mold 11 and the groove-shaped portions 6 of the raw tire 2L.

[0047] In step S51 of this embodiment, the thermal conductivity of the tread rubber model 33 (shown in FIGS. 6 and 7) is determined based on the thermal conductivity of the protrusions 18 (shown in FIG. 3) and the thermal conductivity of the tread rubber 3a (shown in FIG. 3). This makes it possible to take into account the ease of heat transfer through the protrusions 18 and the groove portions 6 in the heat transfer calculation described below in step S51 of this embodiment. The thermal conductivities of the protrusions 18 and the tread rubber 3a, etc., can be obtained as appropriate based on, for example, conventional procedures.

[0048] The thermal conductivity of the tread rubber model 33 is not particularly limited as long as it is determined based on the thermal conductivity of the protrusions 18 (shown in FIG. 3) and the thermal conductivity of the tread rubber 3a (shown in FIG. 3). In this embodiment, a calculation formula is used that can determine the thermal conductivity of the tread rubber model 33. The process of deriving the calculation formula will be described below.

[0049] Generally, the thermal resistance of an object can be calculated by dividing the thickness of the object by the thermal conductivity of the object. Therefore, the thermal resistance R of the tread rubber 3a can be calculated as follows: new can be determined by the following formula (3). new For example, the thermal resistance per pitch is a predetermined value. One pitch is not particularly limited, and can be determined based on a plurality of pattern constituent units that make up the tread pattern (for example, any pattern constituent unit is defined as one pitch).

[0050]

number

[0051] In the above formula (3), the thermal conductivity λ new is multiplied by the circumferential length p of one pitch (shown in Figure 4) to obtain the thermal conductivity λ new p is calculated. Then, the depth B of the tread rubber 3a is calculated as the thermal conductivity per pitch λ new The thermal resistance R of the tread rubber 3a (shown in Figure 4) per pitch is calculated by dividing by p. new is calculated.

[0052] As in this embodiment, when the groove-shaped portion 6 (sipe 8) is formed by the protrusion 18 (second protrusion 18B) of the mold 11 shown in FIG. 4, the thermal conductivity λ of the tread rubber 3a of the above formula (3) new In this embodiment, the thermal conductivity λ of the protrusions 18 and the thermal conductivity of the tread rubber 3a must be taken into consideration. new is identified.

[0053] Here, the tread rubber 3a can be divided into a first region 51 from the outer surface (tread surface) 2o of the tread rubber 3a to the inner end 6i of the groove-like portion 6 in the tire radial direction, and a second region 52 from the inner end 6i of the groove-like portion 6 to the inner end 20 of the tread rubber 3a. Therefore, the thermal resistance R new is the thermal resistance Rd of the first region 51 and the thermal resistance R of the second region 52, as shown in the following formula (4): d~B The thermal resistance Rd and the thermal resistance R d~B is the thermal resistance R new Similarly, for example, a case where the thermal resistance is a predetermined value per pitch is exemplified.

[0054]

number

[0055] The thermal resistance Rd of the first region 51 can be expressed by the following formula (5).

[0056]

number

[0057] In the above formula (5), the thickness (length) t of the protrusion 18 (in this example, the second protrusion 18B) in the tire circumferential direction is multiplied by the total number N of the protrusions 18 per pitch to obtain the total value Nt of the thickness (length) of the protrusions 18 per pitch. This total value Nt is multiplied by the thermal conductivity λ of the protrusions 18. M The thermal conductivity of the protrusions 18 per pitch (i.e., λ M Nt) is required.

[0058] In the above formula (4), the total thickness (length) of the protrusions 18 per pitch (Nt) is subtracted from the tire circumferential length per pitch (p) to obtain the total length (p-Nt) of the tread rubber 3a per pitch in the tire circumferential direction. This total (1-Nt) is multiplied by the thermal conductivity λ of the tread rubber 3a. R is multiplied to obtain the thermal conductivity of the tread rubber 3a per pitch (i.e., λ R (1-Nt)) is obtained.

[0059] These thermal conductivities λ M Nt and λ RAdding up (1-Nt) gives the thermal conductivity per pitch of the first region 51. Dividing the radial depth d of the groove portion 6 (the radial depth of the protrusions 18) by this thermal conductivity gives the thermal resistance Rd per pitch of the first region 51.

[0060] Next, the thermal resistance R of the second region 52 d~B can be expressed by, for example, the following equation (6).

[0061]

number

[0062] In the above formula (6), the depth B of the tread rubber 3a in the tire radial direction is subtracted by the depth d of the protrusion 18 (in this example, the second protrusion 18B) in the tire radial direction to obtain the depth Bd of the second region 52 (from the inner end 6i of the groove-shaped portion 6 to the inner end 20 of the tread rubber 3a). R is multiplied by the length p of one pitch in the tire circumferential direction to obtain the thermal conductivity λ of the tread rubber 3a per pitch of the second region 52. R p is calculated. This thermal conductivity λ R By dividing the depth Bd by p, the thermal resistance R per pitch of the second region 52 is calculated. d~B is calculated.

[0063] The thermal resistance R of the tread rubber model 33 in the above formula (3) new , the thermal resistance Rd of the first region 51 in the above formula (5), and the thermal resistance R of the second region 52 in the above formula (6) d~B is substituted into the above equation (4). Then, the thermal conductivity λ new By solving the above, the following equation (1) can be obtained.

[0064]

number

[0065] In the above formula (1), the thermal conductivity λ of the tread rubber 3a R and the thermal conductivity λ of the protrusion 18 M The ratio λ R / λ M The ratio Nt / p of the protrusions 18 per pitch in the tire circumferential direction and the ratio (1-Nt / p) of the tread rubber 3a per pitch in the tire circumferential direction are used. Furthermore, the ratio d / B of the depth d of the first region 51 (depth of the protrusions 18) to the depth B of the tread rubber 3a and the ratio (1-d / B) of the depth Bd of the second region 52 to the depth B of the tread rubber 3a are used.

[0066] In the above formula (1), the thermal conductivity λ of the protrusion 18 M and the thermal conductivity λ of the tread rubber 3a R By substituting the above parameters, the thermal conductivity λ of the tread rubber model 33 can be calculated, which allows for consideration of the ease of heat transfer through the protrusions 18 and the grooves 6. new The thermal conductivity λ of the tread rubber model 33 can be easily determined. new is stored in computer 1 (shown in FIG. 1).

[0067] [Define thermal conductivity of tread rubber model] Next, in the thermal conductivity definition step S5 of this embodiment, the thermal conductivity λ of the specified tread rubber model 33 is new is defined for each element G(i) of the tread rubber model 33 shown in Fig. 6 (step S52). In step S52, the thermal conductivity set for all elements G(i) of the tread rubber model 33 is calculated based on the thermal conductivity λ new The updated thermal conductivity λ new is stored in computer 1 (shown in FIG. 1).

[0068] Boundary Condition Definition Next, in the heat transfer calculation method of this embodiment, boundary conditions for calculating heat transfer of the raw tire model 32, mold model 21, and bladder model 22 are defined in computer 1 (shown in FIG. 1) (step S6). The boundary conditions of this embodiment include, for example, the initial temperatures of mold model 21, raw tire model 32, and bladder model 22, as well as the temperature conditions of mold model 21 and bladder model 22 during the vulcanization process. The temperature conditions of this embodiment include the time-series temperatures of mold 11 and bladder 12 shown in FIG. 3 during the heating and cooling processes. These boundary conditions can be defined, for example, based on a procedure similar to the boundary condition definition step of Patent Document 1. These boundary conditions are input into computer 1 (shown in FIG. 1).

[0069] Calculate heat transfer Next, in the heat transfer calculation method of this embodiment, the computer 1 (shown in FIG. 1) calculates heat transfer at the contact surface 40 between the tread rubber model 33 and the mold model 21 (step S7). In step S7 of this embodiment, the mold model 21 with an increased temperature is calculated based on the initial temperature and temperature conditions of the mold model 21. As a result, in step S7, heat transfer at the contact surface 40 between the raw tire model 32 (tread rubber model 33) and the mold model 21 is calculated.

[0070] Furthermore, in step S7 of the present embodiment, the bladder model 22 with an increased temperature is calculated based on the initial temperature and temperature conditions of the bladder model 22. As a result, in step S7, heat transfer at the contact surface 42 between the raw tire model 32 and the bladder model 22 is calculated.

[0071] In this way, in step S7 of the present embodiment, the temperature of the raw tire model 32 can be calculated based on the temperatures of the mold model 21 and the bladder model 22. As a result, in step S7 of the present embodiment, it is possible to calculate the temperature of the rubber member 3 (tread rubber model 33) which changes from moment to moment during vulcanization molding (in this example, the heating process and the cooling process), similar to the actual vulcanization process shown in Fig. 3 .

[0072] In step S7 of this embodiment, thermal analysis (heat transfer calculation) is performed for each unit step of the simulation until a predetermined heat transfer calculation time has elapsed, as in Patent Document 1. The thermal analysis can be performed using commercially available finite element analysis application software such as Abaqus manufactured by Dassault Systèmes, LS-DYNA manufactured by LSTC, or NASTRAN manufactured by MSC.

[0073] 7, the present embodiment uses a mold model 21 including a first omitted portion 31 and a tread rubber model 33 including a second omitted portion 36. Therefore, compared to when, for example, a mold model (not shown) that does not include the first omitted portion 31 and a tread rubber model (not shown) that does not include the second omitted portion 36 are used, it is possible to simplify the heat transfer calculation at the contact surface 40 between the mold model 21 and the tread rubber model 33. Therefore, in the present embodiment, it is possible to shorten the calculation time.

[0074] Furthermore, the thermal conductivity of the tread rubber model 33 in this embodiment is defined based on the thermal conductivity of the protrusions 18 (shown in FIG. 3) and the thermal conductivity of the tread rubber 3a (shown in FIG. 3). Therefore, in this embodiment, it is possible to perform heat transfer calculations that take into account the ease of heat transfer through the protrusions 18 and the groove portions 6. As a result, in this embodiment, unlike Patent Document 1, for example, it is not necessary to repeatedly perform simulations using a raw tire model that includes the second omitted portion 36 and a second tire model (not shown) that does not include the second omitted portion 36 in order to set the thermal conductivity of the second omitted portion 36. Therefore, in this embodiment, it is possible to calculate the heat transfer between the mold 11 and the raw tire 2L in a short time.

[0075] Furthermore, in this embodiment, the thermal conductivity of the tread rubber model 33 is defined based on the above formula (1) using parameters including the dimensions of the protrusions 18 and the groove portions 6. Therefore, in this embodiment, it is possible to easily and accurately perform heat transfer calculations that take into account the ease of heat transfer through the protrusions 18 and the groove portions 6.

[0076] It is believed that heat from the mold 11 (shown in FIG. 3) is transferred from the outside to the inside in the thickness direction of the tread rubber 3a (shown in FIG. 3). For this reason, in step S7, only heat transfer in the thickness direction of the tread rubber model 33 may be calculated. This omits heat transfer calculations in directions other than the thickness direction, thereby shortening the calculation time. Note that the thickness direction is specified as the direction (tire radial direction) perpendicular to the outer surface 32o of the tread rubber model 33 at any position on the outer surface 32o.

[0077] In step S7 of this embodiment, it is desirable to calculate physical quantities related to the vulcanization state of the raw tire 2L (shown in FIG. 3). Such physical quantities are used to evaluate the vulcanization state of the raw tire 2L. The physical quantities are not particularly limited as long as they relate to the vulcanization state of the raw tire 2L. The physical quantities of this embodiment include at least one of the temperature of the raw tire 2L, the equivalent vulcanization amount, and the degree of vulcanization.

[0078] The temperature of the raw tire is calculated for each unit step of the simulation at the node 37 of the element G(i) that constitutes the tread rubber model 33 (raw tire model 32). As a result, in step S7 of this embodiment, time-series temperature data of the tread rubber model 33 (raw tire model 32) is acquired.

[0079] The equivalent vulcanization amount ECU can be calculated, for example, based on the temperature (time-series temperature data) of the raw tire model 32 and equation (2) of Patent Document 1. The degree of vulcanization indicates the rate at which vulcanization has progressed from an unvulcanized state, and can be calculated, for example, using equation (3) of Patent Document 1. These physical quantities are stored in a computer 1 (shown in FIG. 1).

[0080] [Output physical quantities] Next, in the heat transfer calculation method of this embodiment, the computer 1 (shown in FIG. 1) outputs physical quantities related to the vulcanization state of the raw tire 2L (shown in FIG. 3) (step S8). The output format of the physical quantities is not particularly limited. The physical quantities of this embodiment are output to a display device 1d of the computer 1 or an output device such as a printer. In this embodiment, the temperature, equivalent vulcanization amount, and degree of vulcanization of the raw tire 2L are output, but any one of them may be output.

[0081] [Evaluate physical quantities] Next, in the heat transfer calculation method of this embodiment, the vulcanization state of the raw tire 2L (shown in FIG. 3) is evaluated based on physical quantities related to the vulcanization state of the raw tire 2L (step S9). The evaluation of this embodiment is performed by the computer 1 (shown in FIG. 1), but may also be performed by an operator.

[0082] The vulcanization state can be evaluated as appropriate based on physical quantities related to the vulcanization state of the raw tire 2L (shown in FIG. 3). In this embodiment, the quality of the vulcanization state is evaluated based on predetermined threshold values ​​set for the temperature, equivalent vulcanization amount, and degree of vulcanization of the raw tire 2L.

[0083] In step S9, if it is determined that the vulcanization state of the raw tire 2L (shown in FIG. 3) is good ("Yes" in step S9), for example, based on the vulcanization conditions and design factors of the raw tire 2L, a tire 2 (shown in FIG. 2) is manufactured (step S10).

[0084] On the other hand, if it is determined in step S9 that the vulcanization state of the raw tire 2L (shown in FIG. 3) is not good ("No" in step S9), the vulcanization conditions and design factors of the raw tire 2L are changed (step S11), and steps S1 to S9 are performed again.

[0085] As described above, the heat transfer calculation method of this embodiment makes it possible to confirm physical quantities related to the vulcanization state of the raw tire 2L (shown in FIG. 3) through simulation using the computer 1 (shown in FIG. 1). Furthermore, the heat transfer calculation method of this embodiment makes it possible to evaluate the vulcanization state of the raw tire 2L based on the output physical quantities. Then, if the heat transfer calculation method of this embodiment determines that the vulcanization state is not good, it makes it possible to change the vulcanization conditions, design factors, and the like of the raw tire 2L based on the output physical quantities. As a result, the heat transfer calculation method of this embodiment makes it possible to design and manufacture a tire 2 obtained by vulcanizing the raw tire 2L in a good state.

[0086] [Method for calculating heat transfer between a mold and a raw tire (second embodiment)] [Determine the thermal conductivity of the tread rubber model] In the embodiments described above, the thermal conductivity specified by the above formula (1) was defined for the element G(i) of the tread rubber model 33 shown in Fig. 6, but this is not limiting. For example, as shown in Fig. 4, when the volume of the tread rubber 3a is larger than the volume of the protrusions 18, a formula that is a simplification of the above formula (1) may be used. In this embodiment, the thermal conductivity is specified based on the following formula (2).

[0087]

number

[0088] The above formula (2) is the thermal conductivity λ of the tread rubber 3a in the above formula (1). R and the thermal conductivity of the protrusion λ M The ratio λ R / λ M is a simplification of the above formula (1) by regarding it as being close to zero. Such formula (2) makes it possible to easily define the thermal conductivity of the tread rubber model 33.

[0089] When the volume of the protrusion 18 is large, the thermal conductivity λ M Since the influence of is large, it becomes difficult to accurately calculate the heat transfer between the mold 11 and the raw tire 2L when the above formula (2) is used. Therefore, in the thermal conductivity definition step S5, it is preferable to specify the thermal conductivity of the tread rubber model 33 based on the above formula (2) when the volume of the tread rubber 3a is 70% or more of the volume of the protrusions 18. This makes it possible to easily define the thermal conductivity of the tread rubber model 33 while maintaining the calculation accuracy of the heat transfer between the mold 11 and the raw tire 2L.

[0090] [Method for calculating heat transfer between a mold and a raw tire (third embodiment)] In the embodiments described above, as shown in Fig. 7, a mold model 21 including a first omitted portion 31 in which the second projections 18B of the mold 11 have been removed, and a raw tire model 32 including a second omitted portion 36 in which the sipes 8 have been filled have been defined. However, the present invention is not limited to this. For example, a mold model (not shown) including a first omitted portion in which both the first projections 18A and the second projections 18B of the mold 11 have been removed, as shown in Fig. 3, or a raw tire model (not shown) including a second omitted portion in which both the circumferential grooves 7A and the sipes 8 have been filled, as shown in Fig. 2, may be defined. In this case, in the thermal conductivity defining step S5, the thermal conductivity of the tread rubber model 33 is specified based on the thermal conductivity of the first projections 18A and the second projections 28B and the thermal conductivity of the tread rubber 3a.

[0091] In this embodiment, the mold model 21 and the raw tire model 32 shown in Figures 6 and 7 can be further simplified, so that the mold model 21 and the raw tire model 32 can be defined in a short time. Furthermore, in this embodiment, the heat transfer calculation at the contact surface 40 (shown in Figure 6) between the mold model 21 and the raw tire model 32 can be further simplified, so that the calculation time can be shortened.

[0092] [Vulcanization method for raw tires] The physical quantities related to the vulcanization state of a raw tire calculated based on the heat transfer calculation methods of the above embodiments may be used in a method for vulcanizing a raw tire (hereinafter, simply referred to as a "vulcanization method"). The vulcanization method of this embodiment uses a computer 1 (shown in FIG. 1).

[0093] In the vulcanization method of this embodiment, physical quantities related to the vulcanization state of a raw tire 2L (shown in FIG. 3) obtained by the heat transfer calculation method of the previous embodiments are used as an objective function, and the vulcanization conditions of the raw tire 2L are used as design factors to find an optimal solution of the design factors that optimizes the objective function. Then, the raw tire 2L is vulcanized based on the optimal solution. The vulcanization conditions include, for example, the set temperature of a mold 11 (shown in FIG. 3) and the vulcanization time for each set temperature.

[0094] The optimal solution for the design factors is found based on an optimization algorithm using a computer 1 (shown in FIG. 1). The optimization algorithm is used to determine optimal design factors (e.g., the above-mentioned parameters) that satisfy an arbitrary objective function under certain constraints. Examples of the optimization algorithm include a genetic algorithm (GA) and particle swarm optimization (PSO). Such optimization algorithms are suitable for searching for a global optimal solution while avoiding falling into a local solution. The calculation method of this embodiment employs particle swarm optimization (PSO), which has a relatively short calculation time, but a genetic algorithm (GA) or the like may also be employed.

[0095] In particle swarm optimization (PSO), optimization is performed by creating multiple initial conditions (first generation), finding the objective function for each condition, and updating each condition (generational change) so that it approaches the most desirable objective function. Random numbers are used to update each condition, allowing a wide search for optimal conditions. Details of particle swarm optimization (PSO) can be found in various documents, such as "Particle Swarm Optimization and Nonlinear Systems," IEICE Fundamentals Review (Institute of Electronics, Information and Communication Engineers), Vol. 5, No. 2, August 2011.

[0096] Enter Constraints FIG. 9 is a flowchart showing the processing steps of the raw tire vulcanization method of this embodiment. In the vulcanization method of this embodiment, first, predetermined constraint conditions are input to the computer 1 (shown in FIG. 1) (step S21). The constraint conditions are conditions (design criteria) that must be met when vulcanizing the raw tire 2L (shown in FIG. 3). The constraint conditions of this embodiment include the range of set temperatures for the mold 11 (shown in FIG. 3) and the range of vulcanization time for each set temperature. Such constraint conditions are set appropriately depending on, for example, the specifications and structure of the raw tire 2L. The constraint conditions are stored in the computer 1 (shown in FIG. 1).

[0097] [Enter raw tire vulcanization conditions] Next, in the vulcanization method of this embodiment, predetermined vulcanization conditions (initial values ​​of the vulcanization conditions) of the raw tire 2L (shown in FIG. 3) are input to the computer 1 (shown in FIG. 1) (step S22). The initial values ​​of the vulcanization conditions are input as first-generation design parameters.

[0098] In this embodiment, the initial values ​​of the vulcanization conditions are input as the set temperature of the mold 11 (shown in FIG. 3) and the vulcanization time for each set temperature. These set temperatures and vulcanization times are determined within the ranges of the respective constraints.

[0099] In this embodiment, a plurality of vulcanization conditions are set, including a set temperature of the mold 11 (shown in FIG. 3) and a vulcanization time for each set temperature. These vulcanization conditions differ from each other in at least some of the set temperature and vulcanization time. Initial values ​​of the vulcanization conditions are stored in the computer 1 (shown in FIG. 1).

[0100] [Obtain physical quantities related to the vulcanization state of raw tires] Next, in the design method of this embodiment, the computer 1 (shown in FIG. 1) calculates physical quantities related to the vulcanization state of the raw tire 2L (shown in FIG. 3) based on the vulcanization conditions (step S23). The physical quantities of this embodiment are acquired based on the processing procedures of the heat transfer calculation methods of the previous embodiments.

[0101] In step S23 of this embodiment, first, for each initial value of the vulcanization conditions, heat transfer at the contact surface between the tread rubber model 33 and the mold model 21 shown in Figures 6 and 7 is calculated. The thermal conductivity of the tread rubber model 33 used in the heat transfer calculation is specified based on the thermal conductivity of the protrusions 18 shown in Figure 3 and the thermal conductivity of the tread rubber 3a.

[0102] Next, in step S23 of this embodiment, physical quantities related to the vulcanization state of the raw tire are calculated based on heat transfer calculations at the contact surface between the tread rubber model 33 and the mold model 21 shown in FIG. 6. The physical quantities are not particularly limited as long as they relate to the vulcanization state of the raw tire 2L (shown in FIG. 3). The physical quantities of this embodiment include at least one of the temperature, equivalent vulcanization amount, and degree of vulcanization of the raw tire 2L. These physical quantities can be obtained by the above-mentioned procedure.

[0103] In step S23 of this embodiment, physical quantities (temperature of raw tire 2L, equivalent vulcanization amount, and degree of vulcanization) related to the vulcanization state of raw tire 2L (shown in FIG. 3) are calculated for each of a plurality of vulcanization conditions. These physical quantities are stored in computer 1 (shown in FIG. 1).

[0104] [Determine the objective function] Next, in the vulcanization method of this embodiment, the computer 1 (shown in FIG. 1) determines whether or not the objective function is satisfied (step S24). In the objective function of this embodiment, physical quantities related to the vulcanization state of the raw tire 2L (shown in FIG. 3) are set.

[0105] In step S24 of this embodiment, first, from among a plurality of vulcanization conditions, vulcanization conditions that provide the best physical quantities related to the vulcanization state of the raw tire 2L (shown in FIG. 3) are selected. Then, for the selected vulcanization conditions, if the physical quantities related to the vulcanization state of the raw tire 2L satisfy a predetermined threshold, it is determined that the objective function is satisfied. The threshold is set appropriately based on, for example, the degree of adverse effect on physical properties associated with over-vulcanization.

[0106] If it is determined that the objective function is satisfied ("Yes" in step S24), the selected vulcanization conditions are determined as the optimal solution for the design variables (step S25). Then, based on the vulcanization conditions determined as the optimal solution, raw tire 2L (shown in FIG. 3) is vulcanized (step S26).

[0107] On the other hand, if it is determined that the objective function is not satisfied ("No" in step S24), the design factors (vulcanization conditions) are updated based on the optimization algorithm (step S27), and steps S23 to S24 are performed again.

[0108] Update Design Factors In step S27 of updating the design factors of this embodiment, the computer 1 (shown in FIG. 1) updates the design factors (vulcanization conditions) based on an optimization algorithm. In step S27 of this embodiment, for example, among the multiple vulcanization conditions, the vulcanization conditions selected in step S24 (i.e., those with the best objective function) are excluded, and the other vulcanization conditions are updated (generational change). Such updating (generational change) of the design factors can be appropriately performed based on particle swarm optimization (PSO) with reference to the above-mentioned papers, etc. The updated design factors are stored in the computer 1.

[0109] After the design factors are updated, steps S23 to S24 are performed again based on the vulcanization conditions that provide the best objective function and other vulcanization conditions. Therefore, in the vulcanization method of this embodiment, raw tire 2L (shown in FIG. 3) can be vulcanized based on the optimal solution of the design factors that satisfy the objective function (in this example, the vulcanization conditions).

[0110] In the design method of this embodiment, the heat transfer calculation method of the previous embodiments is used to calculate the physical quantities related to the vulcanization state of the raw tire 2L (shown in FIG. 3), so that the physical quantities for each vulcanization condition can be calculated in a short time. Therefore, the design method of this embodiment makes it possible to find the optimal solution of the design variables that satisfies the objective function in a short time.

[0111] Although particularly preferred embodiments of the present disclosure have been described in detail above, the present disclosure is not limited to the illustrated embodiments and can be modified and implemented in various forms. [Example]

[0112] Heat transfer calculations were performed between the mold and the green tire shown in Figures 2 and 3 (Example, Comparative Example, and Conventional Example). In the Example, Comparative Example, and Conventional Example, a mold model, a green tire model, and a bladder model were defined. The mold model was defined to include a first omitted portion in which protrusions (second protrusions) were omitted. The tread rubber model was defined to include a second omitted portion in which groove-shaped portions (sipes) corresponding to the first omitted portion were made non-groove-shaped portions.

[0113] Next, in the examples, comparative examples, and conventional examples, a raw tire model and a bladder model were placed in the internal space of the mold model, and heat transfer at the contact surface between the tread rubber model and the mold model was calculated. Then, the temperature of the tread rubber and the temperature of the outer belt at the outer end position in the tire axial direction were calculated as physical quantities related to the vulcanization state of the raw tire.

[0114] In the example, the thermal conductivity of the tread rubber model was determined based on the thermal conductivity of the protrusions and the thermal conductivity of the tread rubber, according to the processing procedure shown in Fig. 8. The thermal conductivity was determined using the above formula (1). The determined thermal conductivity was defined for the elements of the tread rubber model.

[0115] In the comparative example, the thermal conductivity of the tread rubber was defined as an element of the tread rubber model. In the conventional example, based on the procedure of Patent Document 1, simulations were repeatedly performed using a raw tire model including the second omitted portion and a second tire model not including the second omitted portion to identify the thermal conductivity of the tread rubber model.

[0116] In addition, a vulcanization process was carried out using the mold and raw tire shown in Figures 2 and 3 (experimental example). Then, the temperature of the tread rubber and the temperature of the outer belt at the outer end position in the tire axial direction were calculated. The common specifications are as follows: Tire size: 205 / 75R17.5 Protrusion depth d: 2.0 mm Tread rubber depth B: 10.5 mm

[0117] Fig. 10(a) is a graph showing the relationship between the temperature of the tread rubber and the vulcanization time for the Examples and Experimental Examples. Fig. 10(b) is a graph showing the relationship between the temperature of the outer end position of the outer belt and the vulcanization time for the Examples and Experimental Examples. Fig. 11(a) is a graph showing the relationship between the temperature of the tread rubber and the vulcanization time for the Comparative Examples and Experimental Examples. Fig. 11(b) is a graph showing the relationship between the temperature of the outer end position of the outer belt and the vulcanization time for the Comparative Examples and Experimental Examples.

[0118] As a result of the test, the Example and Conventional Example were able to calculate temperatures closer to those of the Experimental Example than the Comparative Example. Furthermore, unlike the Conventional Example, the Example did not require repeated simulations using a raw tire model including the second omitted portion and a second tire model not including the second omitted portion, thereby reducing calculation time by 50% compared to the Conventional Example. Therefore, the Example was able to calculate heat transfer between the mold and the raw tire in a short time and with high accuracy.

[0119] [Note] The present disclosure includes the following aspects.

[0120] [Disclosure 1] A method for using a computer to calculate heat transfer between a mold having protrusions for forming groove-like portions consisting of grooves or sipes and a green tire having tread rubber that is in contact with the mold and in which the groove-like portions are formed by the protrusions, comprising: a step of defining a mold model in the computer by discretizing the mold into a plurality of elements; a step of discretizing the raw tire into a plurality of elements and defining a raw tire model including at least a tread rubber model in the computer; Defining a predetermined thermal conductivity for the element of the tread rubber model; a step in which the computer calculates heat transfer at a contact surface between the tread rubber model and the mold model based on the thermal conductivity, the die model includes a first omission portion in which at least a part of the protrusion is omitted, The tread rubber model includes a second omitted portion in which a groove portion corresponding to the first omitted portion is made a non-groove portion, The step of defining the thermal conductivity includes a step of specifying the thermal conductivity of the tread rubber model based on the thermal conductivity of the protrusions and the thermal conductivity of the tread rubber. A method for calculating heat transfer between the mold and the green tire. [Disclosure 2] The method for calculating heat transfer between a mold and a green tire according to Disclosure 1, wherein the step of specifying the thermal conductivity specifies the thermal conductivity based on the following formula (1):

number

number

[0121] S1: Process to define the mold model S2: Process for defining raw tire model S5: The process of defining thermal conductivity for elements in the tread rubber model

Claims

1. A method for using a computer to calculate heat transfer between a mold having protrusions for forming groove-like portions consisting of grooves or sipes and a green tire having tread rubber that is in contact with the mold and in which the groove-like portions are formed by the protrusions, comprising: a step of defining a mold model in the computer by discretizing the mold into a plurality of elements; a step of discretizing the raw tire into a plurality of elements and defining a raw tire model including at least a tread rubber model in the computer; Defining a predetermined thermal conductivity for the element of the tread rubber model; a step in which the computer calculates heat transfer at a contact surface between the tread rubber model and the mold model based on the thermal conductivity, the mold model includes a first omission portion in which at least a part of the protrusion is omitted, the tread rubber model includes a second omitted portion in which a groove portion corresponding to the first omitted portion is made a non-groove portion, The step of defining the thermal conductivity includes a step of specifying the thermal conductivity of the tread rubber model based on the following formula (1): A method for calculating heat transfer between the mold and the green tire. [Equation 1] where: λ new : Thermal conductivity of the tread rubber model λ R : Thermal conductivity of tread rubber λ M : Thermal conductivity of the protrusion p: circumferential length of one pitch N: Total number of protrusions per pitch t: Thickness of the protrusion in the tire circumferential direction d: Depth of the protrusion in the radial direction of the tire B: Depth of tread rubber in the radial direction of the tire

2. A method for using a computer to calculate heat transfer between a mold having protrusions for forming groove-like portions consisting of grooves or sipes, and a raw tire having tread rubber in contact with the mold and in which the groove-like portions are formed by the protrusions, comprising: a step of defining a mold model in the computer by discretizing the mold into a plurality of elements; a step of discretizing the raw tire into a plurality of elements and defining a raw tire model including at least a tread rubber model in the computer; Defining a predetermined thermal conductivity for the element of the tread rubber model; a step in which the computer calculates heat transfer at a contact surface between the tread rubber model and the mold model based on the thermal conductivity, the mold model includes a first omission portion in which at least a part of the protrusion is omitted, the tread rubber model includes a second omitted portion in which a groove portion corresponding to the first omitted portion is made a non-groove portion, The step of defining the thermal conductivity includes a step of specifying the thermal conductivity of the tread rubber model based on the following formula (2) when the volume of the tread rubber is 70% or more of the volume of the protrusions: A method for calculating heat transfer between the mold and the green tire. [Equation 2] where: λ new : Thermal conductivity of the tread rubber model λ R : Thermal conductivity of tread rubber d: Depth of the protrusion in the radial direction of the tire B: Depth of tread rubber in the radial direction of the tire

3. A method for using a computer to calculate heat transfer between a mold having protrusions for forming groove-like portions consisting of grooves or sipes and a raw tire having tread rubber in contact with the mold and in which the groove-like portions are formed by the protrusions, comprising: a step of defining a mold model in the computer by discretizing the mold into a plurality of elements; a step of discretizing the raw tire into a plurality of elements and defining a raw tire model including at least a tread rubber model in the computer; Defining a predetermined thermal conductivity for the element of the tread rubber model; a step in which the computer calculates heat transfer at a contact surface between the tread rubber model and the mold model based on the thermal conductivity, the mold model includes a first omission portion in which at least a part of the protrusion is omitted, the tread rubber model includes a second omitted portion in which a groove portion corresponding to the first omitted portion is made a non-groove portion, the step of defining the thermal conductivity includes a step of specifying the thermal conductivity of the tread rubber model based on the thermal conductivity of the protrusions and the thermal conductivity of the tread rubber, the step of calculating heat transfer calculates heat transfer only in the thickness direction of the raw tire. A method for calculating heat transfer between the mold and the green tire.

4. The step of calculating the heat transfer includes calculating a physical quantity related to the vulcanization state of the raw tire, 4. The method for calculating heat transfer between a mold and a green tire according to claim 1, further comprising the step of outputting the physical quantity by the computer after the step of calculating heat transfer.

5. A method for calculating heat transfer between a mold and a raw tire as described in claim 4, wherein the physical quantity includes at least one of the temperature of the raw tire, the equivalent vulcanization amount, and the degree of vulcanization.

6. A method for vulcanizing a green tire, comprising: inputting predetermined vulcanization conditions for the raw tire into a computer; a step of calculating, by the computer, a physical quantity relating to a vulcanization state of the raw tire based on the vulcanization conditions and the heat transfer calculation method according to any one of claims 1 to 5; a step in which the computer determines an optimal solution of the design factors by using the vulcanization conditions as design factors and the physical quantities as objective functions based on an optimization algorithm under predetermined constraint conditions, thereby optimizing the objective function; and vulcanizing the green tire based on the optimal solution. A method for vulcanizing raw tires.

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