Mold for molding glass and molding method for glass product
By designing the thermally insulated part of the honeycomb structure in the glass mold, the problem of excessive thermal dissipation during the high-temperature glass forming process is solved, which reduces the residual stress and deformation of the glass forming products, and improves the shape accuracy and quality of the molded products.
Patent Information
- Application Number
- JP2023545106
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-09-02
- Filing Date
- 2022-06-17
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2042-06-17
AI Technical Summary
Existing glass molds are difficult to effectively suppress heat dissipation during high-temperature glass molding, resulting in residual stress and deformation problems of glass molded products.
A glass mold is designed, which includes a molding surface corresponding to the glass molding product and a thermally insulated portion of a plurality of cavity structures formed in the back region of the molding surface. These cavity structures form a honeycomb structure that effectively reduces thermal dissipation and provides sufficient pressure resistance during the molding process.
By reducing thermal dissipation, the residual stress and deformation of glass molded products during cooling is reduced, and the shape accuracy and quality of molded products are improved.
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Abstract
Description
[Technical field]
[0001] The present invention relates to a mold for molding glass and a method for molding a molded glass product. [Background technology]
[0002] Known methods for processing glass molded products such as optical elements using glass include the melt molding method, in which high-temperature glass close to a molten state is poured into a mold to mold, and the press molding method, in which a solid preform is heated and softened and press molded in a mold. In the melt molding method, glass in a molten state at a high temperature of 800-900°C is handled, so the glass molded product immediately dissipates heat into the mold when it comes into contact with the mold and cools down, leaving large residual stresses or distortions inside the molded product due to cooling shrinkage, and an annealing process to remove them and a post-process to improve molding accuracy are required. In the press molding method, heating and cooling are performed using a heater, which can reduce residual stresses and distortions, but there are problems with the long heating and cooling times and low energy efficiency.
[0003] In response to this, for example, Patent Document 1 discloses a resin molding device that includes a movable mold for moving forward relative to a fixed mold to close the mold, an insulating layer formed on the bottom surface of the movable mold, and a transfer plate provided on the insulating layer. The cavity defined by the fixed mold and the movable mold is filled with resin, and the mold is closed to transfer the pattern of the transfer plate to the resin. Here, the insulating layer provided between the transfer plate and the movable mold includes a honeycomb structure, which suppresses the heat of the molded resin from dissipating to the movable mold, thereby preventing the occurrence of residual stress and distortion due to cooling and shrinkage of the molded product. Patent Document 1: International Publication No. 2007 / 123210 Problem to be solved
[0004] However, in the case of resin molding, since the molding temperature of the resin is about 300°C, a resin-based adhesive or brazing material can be used to fix the transfer plate and the heat insulating layer to the movable mold, but in the case of glass molding, since the molding temperature of the glass reaches about 900°C as mentioned above, adhesives etc. no longer work, and it is difficult for a mold for resin molding such as that disclosed in Patent Document 1 to have sufficient pressure resistance and heat resistance for glass molding. General Disclosure
[0005] (Item 1) The glass molding die may have a molding surface having a surface shape corresponding to the shape of one side of the glass molded product. The glass molding die may include a heat insulating portion that is formed integrally with the molding surface and includes at least one cavity in at least a partial area on the rear side of the molding surface. The glass molding die may include a base that supports the heat insulating portion. (Item 2) The heat insulating portion may include a plurality of cavities arranged two-dimensionally in a plane intersecting a direction in which the molding surface is pressed. (Item 3) An area ratio of the plurality of cavities to walls that define the plurality of cavities within the intersecting plane may be larger on a peripheral side than at a center within the intersecting plane. (Item 4) An area ratio of the plurality of cavities to the walls partitioning the plurality of cavities within the intersecting plane may be larger in a region where a thin portion of the glass molded article is pressed than in a region where a thick portion of the glass molded article is pressed. (Item 5) At least one of the plurality of cavities may extend in a direction pressing against the molding surface. (Item 6) At least one other cavity of the plurality of cavities may extend in a direction normal to a rear surface of the molding surface. (Item 7) The plurality of cavities may form a honeycomb structure. (Item 8) The heat insulating portion may have a constant thickness in the pressing direction. (Item 9) The thickness of the heat insulating portion in the pressing direction may be greater in a region where a thin portion of the glass molded product is pressed than in a region where a thick portion of the glass molded product is pressed. (Item 10) The base may be formed integrally with the heat insulating portion and may include a plurality of holes each communicating with the plurality of cavities.
[0006] (Item 11) The method for forming a glass molded product may include a step of forming a glass molded product using the glass molding die according to any one of items 1 to 10 on at least one side.
[0007] The above summary of the invention does not list all of the features of the present invention. Also, subcombinations of these features may also be inventions. [Brief description of the drawings]
[0008] [Figure 1] 1 shows the external and internal structures of a glass molding die according to this embodiment. [Diagram 2] 1 shows a flow chart of a method for molding a glass product using a glass molding die. [Diagram 3] 4 shows the results of an analysis of the cooling rate of a glass molded product in a glass molding die. [Figure 4] The conditions for press molding of the glass molded product are shown below. [Diagram 5] FIG. 4 shows the evaluation results of the shape accuracy of the glass molded products press-molded under the molding conditions. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0009] The present invention will be described below through embodiments of the invention, but the following embodiments do not limit the scope of the invention according to the claims. Furthermore, not all of the combinations of features described in the embodiments are necessarily essential to the solution of the invention.
[0010] 1 shows the external structure and the internal structure of a glass molding die 10 according to this embodiment, with a part cut away. The glass molding die 10 is a die for glass molding that can withstand high temperatures (about 900°C) of a glass molded product (also simply called a molded product) in glass molding by a melt molding method, a press molding method, or the like, and has sufficient thermal insulation to suppress cooling of the molded product, thereby preventing the occurrence of residual stress and distortion due to cooling shrinkage of the molded product, and includes a molding surface 1, a thermal insulation part 2, a base 3, and a flange 4. The direction in which the glass material is clamped between the glass molding die 10 and a mating die (i.e., the direction in which the glass material is pressed by the molding surface 1) is the Z-axis direction, and two axial directions perpendicular to each other in a plane perpendicular to this are the X-axis and Y-axis directions.
[0011] The forming surface 1 is a plate-like member that presses the high-temperature glass material in a molten or softened state. The forming surface 1 is solid, for example, with a thickness of about 1 mm, and is formed in a dish-like curved concave shape in the present embodiment so as to have a surface shape corresponding to the shape of one side of the glass molded product. The forming surface 1 includes an annular edge portion 1b on its outer edge. The forming surface 1 can be integrally formed using a highly insulating metal material, for example, SUS400 series stainless steel, SUS300 series stainless steel, nickel-cobalt alloy, etc. The forming surface of the mold used in combination with the glass molding mold 10 when pressing the glass material to mold the glass molded product is configured to have a surface shape corresponding to the shape of the other side of the glass molded product, for example, a curved convex surface complementary to the concave surface of the forming surface 1.
[0012] The heat insulating section 2 is a section that supports the molding surface 1 and suppresses the heat of the high-temperature glass material from dissipating through the molding surface 1, thereby suppressing the cooling of the glass molded product and uniformly cooling the entire molded product, and includes at least one cavity 2a in at least a partial area on the back side of the molding surface 1. In this embodiment, the heat insulating section 2 includes a plurality of cavities 2a that are partitioned by walls 2b and arranged two-dimensionally in the XY plane below the molding surface 1 (-Z side). Here, the heat insulating section 2 forms a honeycomb structure (i.e., a hexagonal lattice) with the plurality of cavities 2a, so that the glass molding die 10 can withstand the molding pressure applied to the molding surface 1 during glass molding. Note that the portion of the heat insulating section 2 located below the edge portion 1b (-Z side) does not include a cavity and is formed solid.
[0013] The cavities 2a, i.e., the walls 2b dividing them, may be formed to extend in the direction of the molding pressure applied to the molding surface 1 during glass molding. For example, at least one of the cavities 2a and the walls dividing it extend in the Z-axis direction. In this embodiment, all of the cavities 2a and the walls 2b extend in the Z-axis direction. This allows the heat insulating section 2 to withstand the pressure applied through the molding surface 1 during molding. In addition, at least one of the cavities 2a and the walls dividing it extend in the normal direction to the back surface of the molding surface 1. This allows the heat insulating section 2 to withstand the normal component of the molding pressure applied to the heat insulating section 2 through the molding surface 1 during molding.
[0014] The width of the multiple cavities 2a and the thickness of the wall 2b dividing them can be designed arbitrarily. For example, for a mold for forming a glass molded product that is thick in the center and thin at the periphery, the area ratio of the multiple cavities 2a to the wall 2b dividing the multiple cavities 2a in the XY plane may be designed to be larger on the periphery side than on the center of the heat insulating part 2. This improves the heat insulating property on the periphery side of the molding surface 1 that presses the thin periphery of the glass molded product, and the cooling of the periphery that is easy to cool can be suppressed. This makes it possible to keep the cooling of the entire glass molded product constant. More generally, the heat insulating part 2 may be designed so that the area ratio of the multiple cavities 2a to the wall 2b dividing the multiple cavities 2a in the XY plane is larger in the region that presses the thin part of the glass molded product than in the region that presses the thick part of the glass molded product. This improves the heat insulating property for the thin part of the glass molded product that is easy to cool, and the cooling of the thin part can be suppressed, making it possible to keep the cooling of the entire glass molded product constant.
[0015] The thickness d of the heat insulating part 2 in the Z-axis direction must be thick enough to obtain the required heat insulating property. If it is equal to or greater than that thickness, the thickness d may be constant in the XY plane. In such a case, both the upper and lower surfaces of the heat insulating part 2 will match the surface shape of the molding surface 1. This will result in uniform heat insulating property in the XY plane, that is, the distribution of the cooling rate in the XY plane will be constant. The heat insulating part 2 may also be designed so that the thickness d of the heat insulating part 2 is larger in the region where the thin part of the glass molded product is pressed than in the region where the thick part of the glass molded product is pressed. This improves the heat insulating property for the thin part of the glass molded product that is easy to cool, and the cooling of the thin part can be suppressed, making the cooling of the entire glass molded product constant.
[0016] The base 3 is a part that supports the heat insulating part 2. In this embodiment, the base 3 is formed integrally with the heat insulating part 2, has a cylindrical shape with a concave upper surface according to the shape of the heat insulating part 2, and includes a plurality of holes 3a that communicate with the plurality of cavities 2a of the heat insulating part 2 and reach the bottom surface of the base 3. The plurality of holes 3a are used to remove metal powder from the plurality of cavities 2a of the heat insulating part 2 when integrally molding the glass molding die 10 using a metal 3D printer, as described later. Therefore, the plurality of holes 3a have a width that is sufficient to remove the metal powder and is smaller than the plurality of cavities 2a. The bottom of the base 3 protrudes in the -Z direction from the bottom surface of the flange 4 described later.
[0017] The flange 4 is a portion that protrudes from the side surface of the base 3 in the outer periphery direction, and in this embodiment, has a substantially square shape when viewed from above. Circular holes 4a penetrate the four corners of the flange 4 in the Z-axis direction. When molding glass using the glass molding die 10, the bottom of the base 3 is fitted into a hole in a movable table (or fixed table) of a molding device, the flange 4 is placed on the movable table (or fixed table), and a screw is passed through the hole 4a in the flange 4 to fix the glass molding die 10 to the movable table (or fixed table).
[0018] The glass molding die 10 can be integrally formed by a powder sintering method using, for example, a 3D printer. The glass molding die 10 is designed by designing the molding surface 1 based on the product shape of the glass molded product, arranging a heat insulating part 2 with a certain thickness d below the molding surface 1, and further arranging a base 3 and a flange 4. Furthermore, by an analysis method such as the finite element method, it is confirmed that the expected press pressure can be withstood and that the required heat insulating property (low thermal conductivity) can be obtained. Then, a powder metal layer is provided on a stage using a 3D printer, the powder metal is sintered and hardened by laser irradiation, and the stage is lowered to provide a next powder metal layer on the hardened metal layer, and the laser irradiation is repeated to build up the metal layers, thereby forming the glass molding die 10. Note that as the powder metal, a powder of a highly heat insulating metal material, such as SUS400 series stainless steel, SUS300 series stainless steel, nickel-cobalt alloy, etc. may be used. Next, the molding surface 1 of the glass molding die 10 is precisely machined. For example, the surface is cut with a super-precision machining device using a cutting tool made of cemented carbide or cBN (cubic boron nitride), and processed to a high precision of several μm or less than 1 μ. Furthermore, the surface roughness is then reduced to an average surface roughness of about 100 nm or less by polishing with a grindstone or free abrasive grains, making it possible to obtain a molding surface suitable for molding a glass lens having a transparent surface. Finally, glass molding is performed.
[0019] FIG. 2 shows a flow of a molding method for a glass product using the glass molding die 10.
[0020] In step S1, two glass molding dies 10 each having a pair of molding surfaces 1 are fixed to a movable table and a fixed table of a molding device, respectively. Then, the movable table to which one of the glass molding dies 10 is fixed is moved away from the fixed table to provide a gap between the two glass molding dies 10.
[0021] In step S2, a plate-shaped glass material in a heated and softened state is inserted between the two glass forming dies 10, and the movable table is driven toward the fixed table using, for example, an electric servo motor, and the glass material is sandwiched between the forming surfaces 1 of the two glass forming dies 10 at a pressing pressure of, for example, 1 to 2 MPa. Since the multiple cavities in the heat insulating section 2 are formed in a honeycomb structure, the glass forming dies 10 can withstand the large pressing pressure.
[0022] In step S3, the glass material is cooled while being kept pressed between the two glass forming dies 10. Here, the glass forming die 10 includes a heat insulating section 2 below the forming surface 1, which can prevent heat from the glass molded product from dissipating through the forming surface 1, and the glass molded product is cooled uniformly overall, which can prevent the occurrence of residual stress and distortion associated with cooling shrinkage of the molded product.
[0023] In step S4, the movable table is separated from the fixed table, and the molded glass article is removed from between the two glass molding dies 10. After the molded glass article is removed, steps S1 to S5 may be repeated to prepare another molded glass article.
[0024] In glass molding, it is known that the cooling rate from the melting temperature or softening temperature (molding temperature) of the glass material to approximately the glass transition point has a large effect on the magnitude of internal residual stress and distortion. This is because the thermal expansion coefficient of the glass material changes rapidly at temperatures above the glass transition point. When cooling, the glass material cools from the periphery, hardening from the periphery (strictly speaking, the viscosity increases), and then the inside hardens and shrinks. As a result, tensile stress remains inside, and distortion (i.e., shape error) occurs due to the influence of thermal shrinkage. In order to suppress such residual stress and distortion, it is important to cool slowly to near the glass transition point, but for an appropriate amount of time so as not to reduce production efficiency.
[0025] FIG. 3 shows the analysis results of the cooling rate of the glass molded product in the glass molding die 10. The temperature of the two glass molding dies 10 is 465°C, the initial temperature of the glass material sandwiched between them is 965°C, and the thermal conductivity of the heat insulating part 2 (area ratio of the wall 2b in the XY cross section of the heat insulating part 2) is 25%, and the cooling rate of the glass material for the glass molding die 10 (with heat insulating layer) is analyzed by the finite element method. As a comparative example, the cooling rate of the glass material for the glass molding die (without heat insulating layer) in which the heat insulating part 2 is solidly formed is also analyzed in the same way. The cooling curve in the comparative example (without heat insulating layer) rapidly drops to the glass transition point (490°C) in about 80 seconds, whereas the cooling rate for the glass molding die 10 (with heat insulating layer) drops to the glass transition temperature relatively slowly in about 120 seconds. By providing the heat insulating part 2 to the glass molding die 10, heat insulation is obtained, and in this example, the cooling time could be extended by about 40 seconds.
[0026] 4 and 5 show the press molding conditions of the glass molded product and the evaluation results of the shape error of the glass molded product press molded under these molding conditions using a glass molding die 10 (with heat insulating layer). The shape error is given by the PV (Peak-to-valley) value. As a comparative example, a similar evaluation result is also shown for the case where a glass molding die (without heat insulating layer) in which the heat insulating section 2 is solidly formed is used. In the comparative example (without heat insulating layer), the shape error becomes smaller as the pressing force is larger from (1) 1.2 MPa to (2) and (3) 2 MPa, and as the pressing time is longer from (1) and (2) 15 seconds to (3) 20 seconds, i.e., by pressing the glass material with a larger pressing force and a longer time. In contrast, in the case of the glass molding die 10 (with heat insulating layer) according to this embodiment, (3) the shape error is reduced by pressing the glass material with a large pressure of 2 MPa for a long time of 20 seconds, but the shape error is sufficiently small even when the pressure is (1) as low as 1.2 MPa and (2) the pressing time is as short as 15 seconds. Therefore, it is understood that by using the glass molding die 10 provided with the heat insulating part 2, the glass molded product is cooled uniformly overall, preventing the occurrence of residual stress and distortion due to cooling shrinkage of the molded product, and improving the shape precision of the glass molded product.
[0027] The glass molding die 10 according to this embodiment includes a molding surface 1 having a surface shape corresponding to the shape of one side of a molded glass product, a heat insulating section 2 formed integrally with the molding surface 1 and including at least one cavity 2a in at least a partial region on the back side of the molding surface 1, and a base 3 supporting the heat insulating section 2. According to this, the heat insulating section 2 formed integrally with the molding surface 1 includes at least one cavity 2a in at least a partial region on the back side of the molding surface 1, thereby providing heat insulating properties (lowering thermal conductivity), and thus when the molded glass product is pressed by the molding surface 1 to mold it, the heat of the molded glass product is prevented from dissipating through the molding surface 1 and the molded glass product is cooled, and the heat insulating section 2 is formed integrally with the molding surface, thereby allowing the molded glass product to withstand the large molding pressure and high temperature during molding.
[0028] A molded glass product can be molded using at least one glass molding die according to this embodiment on one side, or a molded glass product can be molded using two glass molding dies 10 according to this embodiment, each having a pair of molding surfaces.
[0029] In the glass molding die 10 according to this embodiment, the heat insulating section 2 is provided below the molding surface 1, but heat insulating sections 2 may also be provided on the sides. This makes it possible to suppress the heat of the molded glass from dissipating through the side surface of the molding surface 1.
[0030] The glass molding die 10 according to this embodiment is configured to mold a glass product by clamping a glass material between two mating dies, but instead, the two dies may form a cavity, and the molding surface 1 may be formed so that the molten glass material is trapped inside the cavity to mold the glass product.
[0031] Although the present invention has been described above using the embodiments, the technical scope of the present invention is not limited to the scope described in the above embodiments. It is clear to those skilled in the art that various modifications and improvements can be made to the above embodiments. It is clear from the claims that such modifications and improvements can also be included in the technical scope of the present invention.
[0032] It should be noted that the order of execution of each process, such as operations, procedures, steps, and stages, in the devices, systems, programs, and methods shown in the claims, specifications, and drawings is not specifically indicated as "before," "prior to," etc., and may be realized in any order unless the output of a previous process is used in a later process. Even if the operational flow in the claims, specifications, and drawings is explained using "first," "next," etc. for convenience, it does not mean that it is essential to perform the process in this order. [Explanation of symbols]
[0033] 1...molding surface, 1b...edge, 2...insulating portion, 2a...cavity, 2b...wall, 3...base, 3a...hole portion, 4...flange, 4a...hole portion, 10...glass molding mold.
Claims
1. a molding surface having a surface shape corresponding to the shape of one side of the glass molded product; a heat insulating portion formed integrally with the molding surface, the heat insulating portion including a plurality of cavities arranged two-dimensionally in a plane intersecting a direction in which the molding surface is pressed, in at least a portion of a back surface of the molding surface; A base supporting the heat insulating portion; A glass molding mold comprising:
2. 2. The glass molding die according to claim 1, wherein an area ratio of the cavities to the walls that define the cavities in the intersecting plane is larger on the peripheral side than on the center in the intersecting plane.
3. 2. The mold for molding glass according to claim 1, wherein the area ratio of the plurality of cavities to the walls that define the plurality of cavities in the intersecting plane is larger in an area where a thin portion of the glass molding is pressed than in an area where a thick portion of the glass molding is pressed.
4. The glass molding die according to claim 1 , wherein at least one of the plurality of cavities extends in a direction in which the molding surface is pressed.
5. The glass molding die according to claim 1 , wherein at least another cavity of the plurality of cavities extends in a normal direction to a rear surface of the molding surface.
6. The glass molding mold of claim 1 , wherein the plurality of cavities form a honeycomb structure.
7. The glass molding die according to claim 1 , wherein the heat insulating portion has a constant thickness in the pressing direction.
8. 2. The mold for molding glass according to claim 1, wherein a thickness of said heat insulating portion in said pressing direction is greater in an area where a thin portion of said molded glass is pressed than in an area where a thick portion of said molded glass is pressed.
9. The glass molding die according to claim 1 , wherein the base is formed integrally with the heat insulating portion and includes a plurality of holes each communicating with the plurality of cavities.
10. A method for molding a molded glass product, comprising molding the glass product using the glass molding die according to any one of claims 1 to 9 on at least one side.
11. A molding surface having a surface shape corresponding to the shape of one side of a glass molding; A heat insulating portion formed integrally with the molding surface and including at least one cavity in at least a portion of a back surface of the molding surface; A base supporting the heat insulating portion, The heat insulating portion includes a plurality of cavities that are two-dimensionally arranged in a plane intersecting a direction in which the molding surface is pressed, an area ratio of the plurality of cavities to the walls partitioning the plurality of cavities in the intersecting plane is larger in a region where a thin portion of the glass molding is pressed than in a region where a thick portion of the glass molding is pressed; Molds for forming glass.
Citation Information
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