Press molded product and method for manufacturing molded product

By integrating a reinforcing member with enhanced thickness and strength in the flange to parallel the ridgeline, the method addresses crease formation in press molded products, ensuring reduced crease generation in the corner portion.

US20260008091A1Pending Publication Date: 2026-01-08FUTABA IND CO LTD
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Patent Information

Application Number
US19/243086
Authority / Receiving Office
US · United States
Patent Type
Applications(United States)
Current Assignee / Owner
Priority Date
2024-07-08
Filing Date
2025-06-19
Publication Date
2026-01-08

AI Technical Summary

Technical Problem

Existing methods for manufacturing press molded products with a top plate, vertical wall, and flange are prone to crease generation, particularly in the corner portion close to the flange, due to inadequate reinforcement.

Method used

Incorporating a reinforcing member with a greater plate thickness and strength than the top plate in the flange, positioned to extend roughly parallel to the ridgeline between the vertical wall and flange, inhibits material flow during press working, reducing crease formation.

Benefits of technology

The reinforcing member effectively prevents excessive material flow into the corner portion, thereby minimizing crease generation in the press molded product.

✦ Generated by Eureka AI based on patent content.

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Abstract

A press molded product is provided. The press molded product includes a top plate, a vertical wall, and a flange. The flange is a plate-like portion that extends from the vertical wall in a direction intersecting the vertical wall and is situated to surround the top plate in a plan view perpendicular to the top plate. The flange includes a reinforcing member that has a plate thickness greater than a plate thickness of the top plate and / or has a strength greater than a strength of the top plate and that has a length. An edge of the reinforcing member on a side of the top plate extends roughly parallel to a ridgeline between the vertical wall and the flange.
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Description

CROSS-REFERENCE TO RELATED APPLICATIONS

[0001] This application claims the benefit of Japanese Patent Application No. 2024-109879 filed on Jul. 8, 2024 with the Japan Patent Office, the entire disclosure of which is incorporated herein by reference.TECHNICAL FIELD

[0002] The present disclosure relates to a press molded product and a method for manufacturing a molded product.BACKGROUND

[0003] Japanese Unexamined Patent Application Publication No. 2006-095596 discloses a method for manufacturing a press molded product which is for obtaining a press molded product including a top plate having a roughly rectangular shape in a plan view, a vertical wall, and a flange. The vertical wall is a wall that stands from an end of the top plate so as to surround the top plate and includes a corner portion that curves in a roughly L-shape in a plan view. The flange is a portion that extends from the vertical wall in a direction intersecting the vertical wall. In the method for manufacturing the press molded product, it is attempted to reduce generation of a crease in the vertical wall and the flange at the time of pressing by disposing a bead in the flange to apply tension to the flange.SUMMARY

[0004] However, in this method for manufacturing a press molded product, the bead is disposed only in a part of the flange. Thus, a crease may be generated in the vertical wall or the flange in which no bead is disposed. Particularly, a crease may be generated in a region of the corner portion that is close to the flange.

[0005] One aspect of the present disclosure provides a technique to reduce generation of a crease in a region of the corner portion of the press molded product that is close to the flange.

[0006] One mode of the present disclosure is a press molded product that includes a top plate, a vertical wall, and a flange. The vertical wall is a plate-like portion that stands from an end of the top plate so as to surround the top plate. The flange is a plate-like portion that extends from the vertical wall in a direction intersecting the vertical wall and is situated to surround the top plate in a plan view perpendicular to the top plate. The flange includes a reinforcing member that has a plate thickness greater than a plate thickness of the top plate and / or has a strength greater than a strength of the top plate and that has a length. An edge of the reinforcing member on a side of the top plate extends roughly parallel to a ridgeline between the vertical wall and the flange.

[0007] According to such a configuration, since the reinforcing member, which has a plate thickness greater than the plate thickness of the top plate and / or has a strength greater than the strength of the top plate, is disposed in the flange, it is possible to inhibit a material from excessively flowing from the flange towards the top plate during press working. As a result, generation of a crease can be reduced even in a region of the corner portion of the press molded product that is close to the flange where a crease is easily generated.

[0008] In one mode of the present disclosure, the plate thickness of the reinforcing member may be greater than the plate thickness of the top plate. According to such a configuration, since plane deformation of the flange is inhibited by increasing the plate thickness of the reinforcing member, it is possible to inhibit the material from excessively flowing from the flange towards the top plate during the press working.

[0009] In one mode of the present disclosure, the strength of the reinforcing member may be greater than the strength of the top plate. According to such a configuration, since the plane deformation of the flange is inhibited by increasing the strength of the reinforcing member, it is possible to inhibit the material from excessively flowing from the flange towards the top plate during the press working.

[0010] One mode of the present disclosure may be a method for manufacturing a molded product by which the molded product is obtained by pressing a blank. The blank is a steel plate that includes a first steel plate, and the reinforcing member having a plate thickness greater than a plate thickness of the first steel plate and / or having a strength greater than a strength of the first steel plate. The molded product includes a top plate, a vertical wall, and a flange. The vertical wall is a plate-like portion that stands from an end of the top plate so as to surround the top plate. The flange is a plate-like portion that extends from the vertical wall in a direction intersecting the vertical wall and is situated to surround the top plate in a plan view perpendicular to the top plate. The blank includes a top plate corresponding portion that represents a portion corresponding to the top plate, a vertical wall corresponding portion that represents a portion corresponding to the vertical wall, and a flange corresponding portion that represents a portion corresponding to the flange. The top plate corresponding portion is situated in the first steel plate. The reinforcing member is a portion having a length and is situated in the flange corresponding portion.

[0011] The method includes situating the blank between a first metallic mold and a second metallic mold arranged apart from each other; and forming the top plate, the vertical wall, and the flange by pressing the blank with the first metallic mold and the second metallic mold by bringing the first metallic mold and the second metallic mold close to each other. In the molded product, an edge of the reinforcing member on a side of the top plate extends roughly parallel to the ridgeline between the vertical wall and the flange. An angle formed by the edge of the reinforcing member on the side of the top plate and the ridgeline in the molded product is smaller than an angle formed by an edge of the reinforcing member on a side of the top plate corresponding portion and a boundary between the vertical wall corresponding portion and the flange corresponding portion in the blank.

[0012] If the material linearly flows from the flange towards the top plate when pressing the blank, the material may excessively flow into the region of the corner portion of the press molded product that is close to the flange. However, according to the configuration mentioned above, the edge of the reinforcing member on the side of the top plate is displaced so as to rotate towards the top plate. Accordingly, it is possible to inhibit the material from intensively flowing into the corner portion of the press molded product. Thus, generation of a crease can be reduced in a region of the corner portion of the press molded product that is close to the flange.

[0013] In one mode of the present disclosure, in a plan view perpendicular to a direction of the plate thickness of the blank, the top plate corresponding portion may include an end portion of the blank on a first side. The top plate corresponding portion may be situated in a part of the blank on the first side. The edge of the reinforcing member on the side of the top plate corresponding portion may extend from an end portion of the blank on a second side, which is opposite to the end portion of the blank on the first side, towards the first side so as to avoid the top plate corresponding portion.

[0014] According to such a configuration, the distance from the top plate corresponding portion to the reinforcing member is different between the first side, where an amount of deformation of the blank is relatively large, and the second side, where the amount of deformation of the blank is relatively small. In other words, the reinforcing member is situated in the blank in view of the amount of displacement of the reinforcing member during the press working. Accordingly, when the press molded product is finished, the reinforcing member can be situated at a desired position. Specifically, it is possible to obtain a press molded product in which the edge of the reinforcing member on the side of the top plate corresponding portion extends roughly parallel to the ridgeline between the vertical wall and the flange.

[0015] In one mode of the present disclosure, the blank may be a tailored blank that is obtained by joining the first steel plate and the second steel plate, which has a plate thickness greater than a plate thickness of the first steel plate and / or has a strength greater than a strength of the first steel plate, by welding. The reinforcing member may be the second steel plate. On the edge of the reinforcing member on the side of the top plate corresponding portion, a welding line may be formed. The welding line is a portion in which an end surface of the first steel plate and an end surface of the reinforcing member are welded to each other.

[0016] According to such a configuration, steel plates having different plate thicknesses or different materials can be easily situated at any positions. Thus, the position of each steel plate can be determined in view of the place where the amount of displacement of the material needs to be controlled during the press working.BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Example embodiments of the present disclosure will be described hereinafter with reference to the accompanying drawings, in which:

[0018] FIG. 1 is a schematic partial perspective view of a press molded product;

[0019] FIG. 2A is a schematic plan view of the press molded product;

[0020] FIG. 2B is a schematic plan view of a tailored blank;

[0021] FIG. 3A is a cross-sectional view taken along a line IIIA-IIIA of FIG. 2A;

[0022] FIG. 3B is a cross-sectional view taken along a line IIIB-IIIB of FIG. 2A;

[0023] FIG. 4A is a schematic cross-sectional view of a weld bead that rises upward and downward;

[0024] FIG. 4B is a schematic cross-sectional view of a weld bead that rises downward;

[0025] FIG. 5A is a schematic partial cross-sectional view of a press molding device;

[0026] FIG. 5B is an enlarged view of the schematic partial cross-sectional view of the press molding device in a vicinity of a first welded portion;

[0027] FIG. 6A is a cross-sectional view taken along a line VIA-VIA of FIG. 6B;

[0028] FIG. 6B is a plan view of the press molding device in a holding step;

[0029] FIG. 6C is a cross-sectional view taken along a line VIC-VIC of FIG. 6D;

[0030] FIG. 6D is a plan view of the press molding device during pressing;

[0031] FIG. 6E is a cross-sectional view taken along a line VIE-VIE of FIG. 6F;

[0032] FIG. 6F is a plan view of the press molding device when the pressing is completed;

[0033] FIG. 7 is a flowchart for explaining a method for manufacturing the press molded product;

[0034] FIG. 8 is a schematic diagram for explaining a displacement area;

[0035] FIG. 9 is a schematic cross-sectional view of a press molding device in a modified example;

[0036] FIG. 10 is a schematic plan view of the press molding device;

[0037] FIG. 11A is a schematic cross-sectional view of the press molding device in which a blank holder includes a recess;

[0038] FIG. 11B is a schematic cross-sectional view of the press molding device in which a die includes a recess;

[0039] FIG. 11C is a schematic cross-sectional view of the press molding device in which a shape of the recess is in conformity with a plate thickness of the tailored blank;

[0040] FIG. 12A is a schematic diagram for explaining displacement of a material of the tailored blank during a press working;

[0041] FIG. 12B is a schematic diagram for explaining displacement of a material of a blank during a press working in a reference example;

[0042] FIG. 13A is a schematic plan view of a blank used in a modified example 1;

[0043] FIG. 13B is a cross-sectional view taken along a line XIIIB-XIIIB of FIG. 13A;

[0044] FIG. 14A is a schematic plan view of a blank used in a modified example 2; and

[0045] FIG. 14B is a cross-sectional view taken along a line XIVB-XIVB of FIG. 14A.DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS1. First Embodiment[1-1. Press Molded Product]

[0046] A press molded product 1 shown in FIG. 1 and FIG. 2A is formed by press molding a tailored blank 10 shown in FIG. 2B. Hereinafter, in explanations of the press molded product 1 and the tailored blank 10, plate thickness directions of the press molded product 1 and the tailored blank 10 are referred to as upward-downward directions. Directions in which a second steel plate 12, which will be mentioned below, is situated with respect to a first steel plate 11, which will also be mentioned below, are referred to as right-left directions. Longitudinal directions of the second steel plate 12 are referred to as front-rear directions. A direction from the second steel plate 12 towards the first steel plate 11 may be referred to as an inner direction (a direction towards inner side). A direction from the first steel plate 11 towards the second steel plate 12 may be referred to as an outer direction (a direction towards outer side). These directions are defined for convenience of explanation and do not limit modes of use of the press molded product 1.

[0047] The press molded product 1 is used as a rear floor pan mounted to a vehicle, as an example. FIG. 1 is a diagram showing the right half of the press molded product 1. The left half of the press molded product 1, which is not shown in the drawing, is designed to be right-left symmetric with the right half of the press molded product 1. The press molded product 1 may be a component of a vehicle other than the rear floor pan, such as a rocker outer panel and other floor pans. The press molded product 1 may be a component for something other than a vehicle.

[0048] The press molded product 1 includes a top plate 2, a vertical wall 3, and a flange 4. The top plate 2 is a plate-like portion spreading on a single plane. Specifically, the top plate 2 has a roughly rectangular shape in a plan view. The top plate 2 may include any unevenness. For example, the top plate 2 may include a recess which forms an upward projection when looking at the top plate 2 from below or may include a recess which forms a downward projection when looking at the top plate 2 from above.

[0049] The vertical wall 3 is a plate-like portion standing from an end of the top plate 2 so as to surround the top plate 2. Specifically, the vertical wall 3 is a wall that extends downward from a front edge, a left edge, and a right edge of the top plate 2. In other words, the vertical wall 3 is a wall surrounding the top plate 2 in three directions. That is, the top plate 2 and the vertical wall 3 of the press molded product 1 have a bag-like outer shape. The bag-like shape is a shape that allows an object to be housed in its inner space and that has an opening for the object to be housed and removed. In the press molded product 1, an object can be housed in the inner space surrounded by the top plate 2 and the vertical wall 3. In addition, an object can be housed and removed from an opening formed on a side opposite from the top plate 2 across the vertical wall 3. In the present embodiment, the vertical wall 3 extends from the bottom towards the top so as to slightly slant towards the top plate 2. In other words, as shown in FIG. 3A, a cross-section of the top plate 2 and the vertical wall 3 perpendicular to the front-rear directions is trapezoidal. In addition, a cross-section of the vertical wall 3 perpendicular to the upward-downward directions is roughly U-shaped.

[0050] The flange 4 is a plate-like portion extending from the vertical wall 3 in a direction intersecting the vertical wall 3 and is a portion situated so as to surround the top plate 2 in a plan view perpendicular to the top plate 2. Specifically, the flange 4 is a plate extending roughly parallel to the top plate 2 from an edge of the vertical wall 3 opposite from an edge contacting the top plate 2 in a direction away from the top plate 2. In other words, the flange 4 is a plate surrounding the top plate 2 from three directions in a plan view.

[0051] For example, the size of the press molded product 1 is as follows: the width in the right-left directions is about 1500 mm; the length in the front-rear directions is about 700 mm; and the depth in the upward-downward directions is about 180 mm. For example, the size of the bag-like portion of the press molded product 1 is as follows: the width in the right-left directions is about 600 mm; the length in the front-rear directions is about 200 mm; and the depth in the upward-downward directions is about 180 mm.

[0052] As shown in FIG. 2A, the press molded product 1 includes a first steel plate 11, a second steel plate 12, a third steel plate 13, a first welded portion 14, and a second welded portion 15. Each of these will be explained below in detail.[1-2. Tailored Blank]

[0053] The tailored blank 10 shown in FIG. 2B is a steel plate formed by joining the first steel plate 11, two second steel plates 12, and two third steel plates 13 to each other by welding. In other words, the tailored blank 10 is a blank prepared by integrating the first steel plate 11, the two second steel plates 12, and the two third steel plates 13 into one plate by joining them by welding. The two second steel plates 12 are separately situated on the right side and the left side of the first steel plate 11 so as to interpose the first steel plate 11 between the two second steel plates 12. The two third steel plates 13 are situated to interpose the first steel plate 11 and the second steel plates 12. The tailored blank 10 is right-left symmetric.

[0054] The first steel plate 11 is a roughly trapezoidal plate-like member. Specifically, the first steel plate 11 is a steel plate formed such that its rear end portion is longer than its front end portion and such that its width in the right-left directions decreases from the rear side towards the front side. As one example, the plate thickness of the first steel plate 11 is 0.6 mm, and the tensile strength of the first steel plate 11 is 270 MPa.

[0055] The second steel plate 12 is a plate-like member having a length. Specifically, the second steel plate 12 has a roughly rectangular outline with a longer side disposed in the front-rear directions. The second steel plate 12 is a steel plate having a plate thickness greater than the plate thickness of the first steel plate 11 and / or having a strength greater than the strength of the first steel plate 11. In the present embodiment, the second steel plate 12 has a plate thickness that is greater than the plate thickness of the first steel plate 11, and a tensile strength that is greater than the tensile strength of the first steel plate 11. The second steel plate 12 is a high tensile steel material. As an example, the plate thickness of the second steel plate 12 is 1.0 mm, and the tensile strength of the second steel plate 12 is 780 MPa. The ratio of strength between the first steel plate 11 and the second steel plate 12 is 4.8. This ratio of strength is calculated by dividing the value obtained by multiplying the tensile strength and the plate thickness of the second steel plate 12 by the value obtained by multiplying the tensile strength and the plate thickness of the first steel plate 11.

[0056] The third steel plate 13 is a plate-like member having an outline with a longer side disposed in the front-rear directions. A central area of the third steel plate 13 in the front-rear directions slightly expands in the outer direction. The third steel plate 13 has a plate thickness and / or a strength different from those of the first steel plate 11 and the second steel plate 12. In the present embodiment, the third steel plate 13 has a plate thickness greater than the plate thickness of the first steel plate 11. In addition, the third steel plate 13 has a plate thickness smaller than the plate thickness of the second steel plate 12 and has a tensile strength smaller than the tensile strength of the second steel plate 12. As one example, the plate thickness of the third steel plate 13 is 0.65 mm, and the tensile strength of the third steel plate 13 is 270 MPa.

[0057] The tailored blank 10 includes the first welded portion 14 formed therein. The first welded portion 14 is where an end surface of the first steel plate 11 and an end surface of the second steel plate 12 are welded together. Specifically, the first welded portion 14 is a weld bead formed by welding between and along an edge of the first steel plate 11 on a side of the second steel plate 12 and an edge of the second steel plate 12 on a side of the first steel plate 11. In other words, the tailored blank 10 includes a welding line formed along the edge of the first steel plate 11 on the side of the second steel plate 12 and the edge of the second steel plate 12 on the side of the first steel plate 11.

[0058] The tailored blank 10 also includes the second welded portion 15 formed therein. The second welded portion 15 is where an end surface of the second steel plate 12 and an end surface of the third steel plate 13 are welded to each other. Specifically, the second welded portion 15 is a weld bead formed by welding between and along an edge of the second steel plate 12 on a side of the third steel plate 13 and an edge of the third steel plate 13 on a side of the second steel plate 12. In other words, the tailored blank 10 includes a welding line formed along the edge of the second steel plate 12 on the side of the third steel plate 13 and the edge of the third steel plate 13 on the side of the second steel plate 12.

[0059] The tailored blank 10 is formed by joining the first steel plate 11, the second steel plates 12, and the third steel plates 13, each of which has a different plate thickness. In the present embodiment, the first steel plate 11, the second steel plates 12, and the third steel plates 13 are joined such that top surfaces of these plates are disposed on the same plane. The first steel plate 11, the second steel plates 12, and the third steel plates 13 may be joined such that bottom surfaces of these plates are disposed on the same plane. The surface of each of these steel plates has some unevenness due to the nature of the material. The said same plane is not limited to be a smooth plane.

[0060] As shown in FIG. 4A, the first welded portion 14 and the second welded portion 15 (in other words, the weld beads) may be formed to rise higher than the top surface of the tailored blank 10 in the upward direction or may be formed to rise higher than the bottom surface of the tailored blank 10 in the downward direction. The first welded portion 14 and the second welded portion 15 may be formed with its lower side recessed and its upper side risen in the upward direction, or as shown in FIG. 4B, with its upper side recessed and its lower side risen in the downward direction. FIG. 4A and FIG. 4B show the first welded portion 14. In FIG. 4A and FIG. 4B, the difference in plate thickness between the first steel plate 11 and the second steel plate 12 is omitted.

[0061] As shown in FIG. 5B, in the present embodiment, the first welded portion 14 is formed to rise towards the die 101 more than surfaces of the first steel plate 11 and the second steel plate 12 on a side of the die 101. In other words, a weld bead that is risen upward is formed in the first welded portion 14.

[0062] As shown in FIG. 2B, the tailored blank 10 includes a top plate corresponding portion 2A, a vertical wall corresponding portion 3A, and a flange corresponding portion 4A.

[0063] The top plate corresponding portion 2A represents a portion corresponding to the top plate 2 of the press molded product 1. In other words, the top plate corresponding portion 2A is an area in the tailored blank 10 where the top plate 2 is formed when the press molded product 1 is molded. The top plate corresponding portion 2A is a roughly rectangular area.

[0064] The vertical wall corresponding portion 3A represents a portion corresponding to the vertical wall 3 of the press molded product 1. In other words, the vertical wall corresponding portion 3A is an area in the tailored blank 10 where the vertical wall 3 is formed when the press molded product 1 is molded. The vertical wall corresponding portion 3A is a roughly U-shaped area surrounding the top plate corresponding portion 2A in three directions.

[0065] The flange corresponding portion 4A represents a portion corresponding to the flange 4 of the press molded product 1. In other words, the flange corresponding portion 4A is an area in the tailored blank 10 where the flange 4 is formed when the press molded product 1 is molded. The flange 4 is an area in the tailored blank 10 other than the top plate corresponding portion 2A and the vertical wall corresponding portion 3A.

[0066] The top plate corresponding portion 2A and the vertical wall corresponding portion 3A are situated in the first steel plate 11. Specifically, in a plan view, the top plate corresponding portion 2A is situated in a rear portion of the tailored blank 10 including the rear end portion of the tailored blank 10. More specifically, the top plate corresponding portion 2A and the vertical wall corresponding portion 3A are situated in a roughly central area of the tailored blank 10 in the right-left directions which is a rear area of the tailored blank 10 in the front-rear directions.

[0067] The flange corresponding portion 4A is situated in a portion of the first steel plate 11, in the second steel plates 12, and in the third steel plates 13. Specifically, in a plan view, the flange corresponding portion 4A is situated in the entire front portion of the tailored blank 10 including the front end portion of the tailored blank 10 and in the entire right-left portions of the tailored blank 10 including the end portions on the right side and the left side.

[0068] The first welded portion 14 and the second welded portion 15 are situated in the flange corresponding portion 4A. Specifically, the first welded portion 14 extends from the front end portion of the tailored blank 10 towards the rear side so as to avoid the top plate corresponding portion 2A. More specifically, the first welded portion 14 extends slantwise away from a boundary between the vertical wall corresponding portion 3A and the flange corresponding portion 4A, which extends in the front-rear directions, from the front side to the rear side. The first welded portion 14 is situated in a vicinity of the vertical wall corresponding portion 3A. Specifically, in the right half of the tailored blank 10, the first welded portion 14 is situated at a position which is less than about one-third of the distance from the boundary between the vertical wall corresponding portion 3A and the flange corresponding portion 4A, which extends in the front-rear directions, to a right edge of the flange corresponding portion 4A. The second welded portion 15 extends roughly parallel to the first welded portion 14.[1-3. Press Molding Device]

[0069] A press molding device 100 shown in FIG. 5A is a device for pressing the tailored blank 10 to obtain the press molded product 1. FIG. 5A and FIG. 6A to 6F are diagrams showing the right half of the press molding device 100. The left half of the press molding device 100 which is not illustrated is right-left symmetric with the right half. Recesses 31a and 31b are omitted in FIG. 5A, FIG. 6A, FIG. 6C, and FIG. 6E. The metallic molds and the tailored blank are transparently shown in FIG. 6B, FIG. 6D, FIG. 6F, and FIG. 10.

[0070] The press molding device 100 includes a die 101, a punch 102, and a blank holder 103. The die 101 and the punch 102 are metallic molds arranged to face each other in the upward-downward directions. In the present embodiment, the die 101 is situated above the punch 102, and the punch 102 is situated below the die 101. Press working using the die 101 and the punch 102 is performed by moving the die 101 in the upward-downward directions. The die 101 and the blank holder 103 are configured to be displaceable in the upward-downward directions by an unillustrated drive mechanism.

[0071] The die 101 is situated above the tailored blank 10 so as to cover the entirety of the tailored blank 10. The punch 102 is situated below the tailored blank 10.

[0072] The die 101 and the punch 102 are each shaped after the shape of the press molded product 1. Specifically, the die 101 includes a top plate forming portion 2C and a vertical wall forming portion 3C, and the punch 102 includes a top plate forming portion 2D and a vertical wall forming portion 3D. The top plate forming portions 2C and 2D are portions for forming the top plate 2. The vertical wall forming portions 3C and 3D are portions for forming the vertical wall 3. The die 101 has a shape with its central portion in the right-left directions recessed upward. The punch 102 has a shape with an upward projection.

[0073] The blank holder 103 is a member situated to face the die 101, and is a member that can hold the flange corresponding portion 4A in coordination with the die 101. As shown in FIG. 9, the blank holder 103 is situated between the die 101 and a pedestal of the punch 102. The area of the blank holder 103 is greater than the area of the flange corresponding portion 4A so that the blank holder 103 can hold the entirety of the bottom surface of the flange corresponding portion 4A. A part of the first steel plate 11, the second steel plates 12, and the third steel plates 13 can be mounted on the blank holder 103. In other words, the blank holder 103 is a member that spreads from the boundary between the vertical wall corresponding portion 3A and the flange corresponding portion 4A to the front, to the right, and to the left.

[0074] As shown in FIG. 5B, the die 101 includes the recess 31a and the blank holder 103 includes the recess 31b, and the recess 31a and the recess 31b are each formed towards a side opposite from the tailored blank 10 in a portion facing a displacement area which will be mentioned below in a held state which will be mentioned below. Hereinafter, the recesses 31a and 31b, each of which are disposed in a portion facing an area in which the first welded portion 14 is displaced, will be explained. The recesses 31a and 31b, each of which are disposed in a portion facing an area in which the second welded portion 15 is displaced, have the same configuration.

[0075] The depths of the recesses 31a, 31b are set so that surfaces of the recesses 31a, 31b facing the tailored blank 10 do not contact the first welded portion 14. Specifically, in the recess 31a formed in the die 101, the distance from the top surface of the tailored blank 10 to the ceiling of the recess 31a is set to be greater than the height of the weld bead that is risen upward. In a case where the weld bead is formed to rise downward, the recess 31b formed in the blank holder 103 is designed such that the distance from the bottom surface of the tailored blank 10 to the bottom surface of the recess 31b is greater than the height of the weld bead that is risen downward.

[0076] In a plan view, the recesses 31a, 31b have a shape that is approximately the same as the displacement area, however, right-left widths of the recesses 31a, 31b are designed to be slightly greater than the right-left width of the displacement area. An area surrounded by broken lines 5A and 5B shown in FIG. 10 corresponds to the recess 31b that corresponds to the first welded portion 14. The area surrounded by broken lines 5C and 5D shown in FIG. 10 corresponds to the recess 31b that corresponds to the second welded portion 15. Specifically, in a plan view, the recess 31b has a shape the right-left width of which expands towards a rear end of the blank holder 103 from a position of the height of a vicinity of a front end portion of the vertical wall forming portion 3D of the punch 102. The recess 31a formed in the die 101 has the same shape.[1-4. Method for Manufacturing Press Molded Product]

[0077] A method for manufacturing the press molded product 1 through which the press molded product 1 is obtained by pressing the tailored blank 10 will be explained with reference to the flowchart in FIG. 7. The method for manufacturing the press molded product 1 includes a blank producing step S1, a first molding step S2, a trimming step S3, and a second molding step S4. The method for manufacturing the press molded product 1 is performed in the following order: the blank producing step S1; the first molding step S2; the trimming step S3; and the second molding step S4.

[0078] In the blank producing step S1, the tailored blank 10 is produced. Specifically, the first steel plate 11, the second steel plates 12, and the third steel plates 13 are joined by welding to produce the tailored blank 10. The shape of the tailored blank 10 is determined based on an amount of deformation of the tailored blank 10 in a pressing step which will be mentioned below. The amount of deformation of the tailored blank 10 can be alternatively referred to as an amount of displacement of the material of the tailored blank 10. For example, the amount of displacement of the material of the tailored blank 10 is calculated by a simulator, assuming a case in which the die 101 and the blank holder 103 that include no recesses 31a and 31b are used. In other words, the amount of displacement of the first welded portion 14 and the second welded portion 15 towards the top plate corresponding portion 2A in the pressing step is pre-designed. That is, the first welded portion 14 and the second welded portion 15 are displaced in the displacement area, which is a pre-designed area, in the tailored blank 10 towards the top plate corresponding portion 2A. More specifically, it is predicted that the amount of displacement of the first welded portion 14 and the second welded portion 15 increases in a portion where the amount of deformation is relatively large as shown in FIG. 3A compared to a portion where the amount of deformation is relatively small as shown in FIG. 3B. Specifically, when the top plate 2 is formed, it is predicted that the amount of displacement of the first welded portion 14 and the second welded portion 15 is relatively large at a location where the amount of the material of the tailored blank 10 that flows towards the top plate 2 is relatively large. Accordingly, in the blank producing step S1, the steel plates are each welded at predicted locations of the first welded portion 14 and the second welded portion 15 in the tailored blank 10 obtained by calculating backwards from the locations of the first welded portion 14 and the second welded portion 15 of the press molded product 1 considering the amount of deformation of the tailored blank 10. The displacement of the first welded portion 14 and the second welded portion 15 will be explained below in detail.

[0079] The first molding step S2 is a step to obtain an intermediate molded product by drawing the tailored blank 10 using the press molding device 100. The first molding step S2 includes a positioning step S21, a holding step S22, and a pressing step S23.

[0080] In the positioning step S21, the tailored blank 10 is situated between the die 101 and the punch 102 disposed away from each other. Specifically, the flange corresponding portion 4A of the tailored blank 10 is mounted on a top surface of the blank holder 103.

[0081] In the holding step S22, as the die 101 descends, the die 101 and the blank holder 103 move relatively closer to each other, and the tailored blank 10 is fixed while being held between the die 101 and the blank holder 103. Specifically, the state of the tailored blank 10 is transitioned to the held state where the flange corresponding portion 4A is held between the die 101 and the blank holder 103. In the held state, the die 101 and the blank holder 103 hold the flange corresponding portion 4A therebetween such that the first welded portion 14 and the second welded portion 15 can be displaced towards the top plate corresponding portion 2A.

[0082] In the pressing step S23, the tailored blank 10 is pressed by the die 101 and the punch 102 by moving the die 101 and the punch 102 close to each other in the held state to form the top plate 2, the vertical wall 3, and the flange 4. Specifically, the die 101 and the blank holder 103 are descended in the held state. When the die 101 and the blank holder 103 reach a bottom dead center, the top plate 2 is formed in a portion of the tailored blank 10 held between the top plate forming portions 2C and 2D, and the vertical wall 3 is formed in a portion of the tailored blank 10 held between the vertical wall forming portions 3C and 3D. The flange 4 is formed in a portion of the tailored blank 10 held between the die 101 and the blank holder 103.

[0083] The trimming step S3 is a step for trimming the intermediate molded product formed in the first molding step S2. In the trimming step S3, an unnecessary part is removed from the intermediate molded product.

[0084] The second molding step S4 is a step for performing optional processing on the intermediate molded product processed in the trimming step S3. For example, processing such as bending and creating a hole is performed.

[0085] The press molded product 1 is formed through the aforementioned steps S1 to S4.[1-5. Displacement of First Welded Portion and Second Welded Portion]

[0086] Since the transition to the held state until the completion of the press working, the first welded portion 14 and the second welded portion 15 are held between the die 101 and the blank holder 103 so as to be displaced in the pre-designed displacement area towards the top plate corresponding portion 2A.

[0087] As shown in FIG. 2B, in the tailored blank 10, the first welded portion 14 and the second welded portion 15 extends at an angle with respect to the boundary between the vertical wall corresponding portion 3A and the flange corresponding portion 4A which extends in the front-rear directions. Here, “at an angle” means that the angle between the welding line and an imaginary straight line extended from the boundary in the front-rear directions is about 5 degrees or more.

[0088] Meanwhile, as shown in FIG. 2A, the first welded portion 14 and the second welded portion 15 extend roughly parallel to the ridgeline between the vertical wall 3 and the flange 4 in the press molded product 1. Specifically, the first welded portion 14 and the second welded portion 15 extend roughly parallel to the ridgeline between the vertical wall 3 and the flange 4 that extends in the front-rear directions. More specifically, the first welded portion 14 and the second welded portion 15 extend at an angle with respect to the ridgeline from the front end portion to a corner portion where a wall of the vertical wall 3 that spreads in the upward-downward directions and the front-rear directions intersects with a wall of the vertical wall 3 that spreads in the upward-downward directions and the right-left directions. The first welded portion 14 and the second welded portion 15 extend roughly parallel to the ridgeline from the corner portion to the rear end portion.

[0089] In other words, as shown in FIG. 12A, the material of the tailored blank 10 is displaced so as to rotate about the corner portion towards the top plate corresponding portion 2A during the press working. In the area where the amount of deformation is relatively large, in other words, in the area on the rear side of the corner portion, the material of the tailored blank 10 is displaced so as to rotate largely compared to the rotation in the area where the amount of deformation is relatively small, in other words, in the area on the front side of the corner portion.

[0090] The first welded portion 14 and the second welded portion 15 are also displaced so as to rotate about the corner portion towards the top plate corresponding portion 2A. In other words, the angle formed by the first welded portion 14 and the ridgeline between the vertical wall 3 and the flange 4 in the press molded product 1 is smaller than the angle formed by the first welded portion 14 and the boundary between the vertical wall corresponding portion 3A and the flange corresponding portion 4A in the tailored blank 10. As a consequence, the first welded portion 14 and the ridgeline are roughly parallel to each other. Specifically, the angle formed by the first welded portion 14 and the ridgeline between the vertical wall 3 and the flange 4 in the press molded product 1 is approximately less than 5 degrees. As shown in FIG. 8, an area surrounded by a broken line 14A (that is, the first welded portion 14 before the press working) and a broken line 14B (that is, the first welded portion 14 after the press working) is the displacement area of the first welded portion 14. An area surrounded by a broken line 15A (that is, the second welded portion 15 before the press working) and a broken line 15B (that is, the second welded portion 15 after the press working) is the displacement area of the second welded portion 15. The displacement area has a roughly triangular shape with a position at the height of the corner portion in the front-rear directions being the apex, and with the width in the right-left directions increasing towards the rear side.[1-6. Effects]

[0091] According to the first embodiment that has been explained in detail above, the following effects can be obtained.

[0092] (1a) In the aforementioned embodiment, the first welded portion 14 extends roughly parallel to the ridgeline between the vertical wall 3 and the flange 4. In other words, the edge of the second steel plate 12 on the side of the top plate 2 extends roughly parallel to the ridgeline between the vertical wall 3 and the flange 4.

[0093] Now, a reference example shown in FIG. 12B is considered in a case where the press molded product 1 is formed by pressing a blank 20 that does not include the second steel plates 12 and the third steel plates 13. As the blank 20 is pressed, the material of the blank 20 flows towards the top plate corresponding portion 2A. At this time, the material linearly flows towards the top plate corresponding portion 2A from a large area of the flange corresponding portion 4A. Accordingly, an excessive flow of material even towards an area of the corner portion of the press molded product 1 close to the flange 4 easily occurs, and therefore a crease is easily generated.

[0094] However, according to the configuration mentioned above, the second steel plate 12, which has a plate thickness greater than the first steel plate 11 and has a strength greater than the first steel plate 11, is disposed in a vicinity of the ridgeline between the vertical wall 3 and the flange 4, and the flange 4 is situated in the second steel plates 12. In other words, since the second steel plate 12 is difficult to be deformed compared to the first steel plate 11, it is considered that an excessive flow of material from the flange corresponding portion 4A towards the top plate corresponding portion 2A during the press working can be inhibited compared to a configuration where the flange corresponding portion 4A is situated in the first steel plate 11 as in the reference example. Furthermore, during the press working, since the material flows from the flange corresponding portion 4A towards the top plate corresponding portion 2A according to the amount of deformation of the tailored blank 10 so as to rotate about the corner portion, it is considered that an excessive flow of the material into the corner portion is also inhibited. Accordingly, it is possible to reduce generation of a crease in an area of the corner portion of the press molded product 1 that is close to the flange 4. Thus, it is possible to obtain the press molded product 1 in which generation of a crease is reduced.

[0095] (1b) In the aforementioned embodiment, the plate thickness of the second steel plate 12 is configured to be greater than the plate thickness of the first steel plate 11. In other words, the plate thickness of the second steel plate 12 is configured to be greater than the plate thickness of the top plate 2. According to such a configuration, since the plane deformation of the flange corresponding portion 4A is inhibited by increasing the plate thickness, it is possible to inhibit the material from excessively flowing from the flange corresponding portion 4 towards the top plate corresponding portion 2A. Thus, it is possible to obtain the press molded product 1 in which generation of a crease is reduced.

[0096] (1c) In the aforementioned embodiment, the tensile strength of the second steel plate 12 is configured to be greater than the tensile strength of the first steel plate 11. In other words, the tensile strength of the second steel plate 12 is configured to be greater than the tensile strength of the top plate 2. According to such a configuration, since the plane deformation of the flange corresponding portion 4A is inhibited by increasing the tensile strength, it is possible to inhibit the material from excessively flowing from the flange corresponding portion 4A towards the top plate corresponding portion 2A. Thus, it is possible to obtain the press molded product 1 in which generation of a crease is reduced.

[0097] (1d) In the aforementioned embodiment, the angle formed by the first welded portion 14 and the ridgeline between the vertical wall 3 and the flange 4 in the press molded product 1 is configured to be smaller than the angle formed by the first welded portion 14 and the boundary between the vertical wall corresponding portion 3A and the flange corresponding portion 4A in the tailored blank 10. In other words, the angle formed by an edge of the second steel plate 12 on the side of the top plate 2 and the ridgeline between the vertical wall 3 and the flange 4 in the press molded product 1 is configured to be smaller than the angle formed by an edge of the second steel plate 12 on the side of the top plate corresponding portion 2A and the boundary between the vertical wall corresponding portion 3A and the flange corresponding portion 4A in the tailored blank 10. According to such a configuration, the first welded portion 14 is displaced towards the top plate corresponding portion 2A so as to rotate.

[0098] Now, if the material linearly flows towards the top plate corresponding portion 2A from a wide area of the flange corresponding portion 4A as in the reference example shown in FIG. 12B which was described in detail in (1a), an excessive flow of the material easily occurs in an area of the corner portion of the press molded product 1 close to the flange 4, whereby a crease is easily generated. Meanwhile, if the flange corresponding portion 4A is held tightly enough to make the angle formed by the first welded portion 14 and the ridgeline between the vertical wall 3 and the flange 4 in the press molded product 1 same as the angle formed by the first welded portion 14 and the boundary between the vertical wall corresponding portion 3A and the flange corresponding portion 4A in the tailored blank 10, a breakage easily occurs in the tailored blank 10.

[0099] However, according to the configuration mentioned above, since the material flows from the flange corresponding portion 4A towards the top plate corresponding portion 2A so as to rotate such that the angle formed by the first welded portion 14 and the ridgeline between the vertical wall 3 and the flange 4 in the press molded product 1 is smaller than the angle formed by the first welded portion 14 and the boundary between the vertical wall corresponding portion 3A and the flange corresponding portion 4A in the tailored blank 10, it is considered that an excessive flow of the material into the corner portion is inhibited. Accordingly, it is possible to reduce generation of a crease in an area of the corner portion of the press molded product 1 that is close to the flange 4. Furthermore, since the material of the tailored blank 10 is displaceable so as to rotate, it is also possible to inhibit a breakage of the tailored blank 10.

[0100] If the tailored blank 10 is pressed without being held by the die 101 and the blank holder 103, a crease is also easily generated on the press molded product 1 due to an excessive flow of the material from the flange corresponding portion 4A towards the top plate corresponding portion 2A. However, according to the configuration mentioned above, such an excessive flow of the material from the flange corresponding portion 4A towards the top plate corresponding portion 2A can be inhibited since the flange corresponding portion 4A is held between the die 101 and the blank holder 103. Thus, it is possible to reduce generation of a crease in the press molded product 1.

[0101] (1e) In the aforementioned embodiment, in a plan view, the top plate corresponding portion 2A is situated in a rear portion of the tailored blank 10 including the rear end portion of the tailored blank 10. The first welded portion 14 extends from the front end portion of the tailored blank 10 towards the rear side so as to avoid the top plate corresponding portion 2A. In other words, an edge of the first steel plate 11 on the side of the top plate corresponding portion 2A extends from the front end portion of the tailored blank 10 towards the rear side so as to avoid the top plate corresponding portion 2A. Due to such a configuration, the distance from the top plate corresponding portion 2A to a portion of the first welded portion 14 where the amount of deformation of the tailored blank 10 is relatively large is different from the distance from the top plate corresponding portion 2A to a portion of the first welded portion 14 where the amount of deformation of the tailored blank 10 is relatively small. In other words, the first welded portion 14 is situated in the tailored blank 10 considering the amount of displacement of the first welded portion 14 during the press working. Accordingly, when the production of the press molded product 1 is finished, the first welded portion 14 can be situated at a desired location. Specifically, it is possible to obtain the press molded product 1 in which the first welded portion 14 extends roughly parallel to the ridgeline between the vertical wall 3 and the flange 4.

[0102] (1f) In the aforementioned embodiment, a configuration in which the press molded product 1 is manufactured using the tailored blank 10 is illustrated. According to such a configuration, steel plates having different plate thicknesses and materials are easily situated at desired locations. Thus, each steel plate can be arranged in view of the location where the amount of displacement of the material is desired to be controlled during the press working.

[0103] (1g) In the aforementioned embodiment, the die 101 and the blank holder 103 respectively include the recess 31a and the recess 31b each of which is formed towards a side opposite from the tailored blank 10 in a portion facing the displacement area in the held state. According to such a configuration, the first welded portion 14 and the second welded portion 15 do not easily contact the die 101 and the blank holder 103, and therefore, the first welded portion 14 and the second welded portion 15 can be displaced smoothly. Thus, it is possible to have the material flow from the flange corresponding portion 4A towards the top plate corresponding portion 2A more smoothly so as to rotate.

[0104] (1h) In the aforementioned embodiment, the depths of the recess 31a and the recess 31b are set so that the surfaces of the recess 31a and the recess 31b facing the tailored blank 10 do not contact the first welded portion 14. According to such a configuration, the first welded portion 14 is less likely to contact the die 101 and the blank holder 103, and therefore, the first welded portion 14 can be displaced more smoothly. Thus, it is possible to have the material flow from the flange corresponding portion 4A towards the top plate corresponding portion 2A more smoothly so as to rotate.[1-7. Correspondence]

[0105] In the aforementioned embodiment, the die 101 corresponds to the first metallic mold; the punch 102 corresponds to the second metallic mold; and the second steel plate 12 corresponds to the reinforcing member. In addition, the rear side corresponds to the first side; and the front side corresponds to the second side.[2. Other Embodiments]

[0106] The embodiment of the present disclosure have been explained above; however, it is needless to say that the present disclosure is not limited to the above-described embodiment and may be implemented in various forms.

[0107] (2a) In the aforementioned embodiment, a configuration was illustrated in which the tailored blank 10 is a steel plate formed by joining the first steel plate 11, the second steel plate 12, and the third steel plate 13 by welding. However, the configuration of the tailored blank 10 is not limited thereto. For example, the tailored blank 10 may be a steel plate formed by joining the first steel plate 11 and two second steel plates 12 by welding. The number of the steel plates to be joined can be appropriately determined depending on the shape of the desired press molded product.

[0108] (2b) In the aforementioned embodiment, a configuration was illustrated in which the plate thickness of the second steel plate 12 is greater than the plate thickness of the first steel plate 11, and the tensile strength of the second steel plate 12 is greater than the tensile strength of the first steel plate 11. However, the quality of the material of the second steel plate 12 is not limited thereto. The second steel plate 12 may be any steel plate as long as the value obtained by multiplying the tensile strength of the second steel plate 12 by the plate thickness of the second steel plate 12 is greater than that of the first steel plate 11. Specifically, the second steel plate 12 may be any steel plate as long as the ratio of strength is greater than 1.0. For example, the second steel plate 12 may be a steel plate that has a plate thickness greater than the plate thickness of the first steel plate 11 and has a tensile strength less than or equal to the tensile strength of the first steel plate 11. For example, the second steel plate 12 may be a steel plate that has a plate thickness less than or equal to the plate thickness of the first steel plate 11 and has a tensile strength greater than the tensile strength of the first steel plate 11.

[0109] (2c) In the aforementioned embodiment, a configuration was illustrated in which the first welded portion 14 extends from the front end portion of the tailored blank 10 towards the rear side of the tailored blank 10 so as to avoid the top plate corresponding portion 2A. However, the location of the first welded portion 14 in the tailored blank 10 is not limited thereto. For example, the first welded portion 14 may be situated to extend roughly parallel to the top plate corresponding portion 2A also in the tailored blank 10. The first welded portion 14 and the second welded portion 15 in the tailored blank 10 may vary depending on the shape of the press molded product 1 and, it is only required that the first welded portion 14 and the second welded portion 15 are situated at any locations estimated by calculating backwards from the locations of the first welded portion 14 and the second welded portion 15 in the press molded product 1.

[0110] (2d) In the aforementioned embodiment, a configuration was illustrated in which the die 101 includes the recess 31a and the blank holder 103 includes the recess 31b, and the recess 31a and the recess 31b are each formed towards a side opposite from the tailored blank 10 in a portion facing the displacement area in the held state. However, the recess 31a and the recess 31b do not have to be formed in both of the die 101 and the blank holder 103. For example, as shown in FIG. 11A, only the blank holder 103 may include the recess 31b. According to such a configuration, even if the first welded portion 14 includes a weld bead formed to rise upward, it is possible to inhibit the position of the first welded portion 14 from varying from product to product. In other words, the tailored blank 10 can warp so as to sink downward since the blank holder 103 has the recess 31b despite the die 101 contacting the weld bead formed to rise upward. Thus, it is possible to inhibit the die 101 from making a hard contact only to the weld bead. Accordingly, the die 101 easily contacts the tailored blank 10 uniformly compared to a configuration in which there is no clearance below the tailored blank 10 for the tailored blank 10 to warp downward.

[0111] For example, as shown in FIG. 11B, only the die 101 may include the recess 31a. According to such a configuration, in a case where the first welded portion 14 includes a weld bead formed to rise upward, the weld bead is easily displaced without contacting the die 101. Thus, the first welded portion 14 can be displaced smoothly.

[0112] For example, as shown in FIG. 11C, the depths of the recess 31a and the recess 31b may partially differ. Specifically, in a cross section perpendicular to the front-rear directions, the bottom surface of the recess 31b formed in the blank holder 103 may be shaped along the shape of the bottom surface of the tailored blank 10. In other words, the distance from the bottom surface of the tailored blank 10 to the bottom surface of the recess 31b may be roughly equally designed throughout the recess 31b. According to such a configuration, in a case where the die 101 contacts the weld bead that is formed to rise upward, it is possible to inhibit the tailored blank 10 from warping excessively. In other words, a steel plate having a smaller plate thickness warps more easily than a steel plate having a greater plate thickness. If the recess 31b is formed to have a uniform depth in conformity with the steel plate having a greater plate thickness, there is a possibility that the steel plate having a smaller plate thickness warps excessively. If the steel plate warps excessively, a crease is easily generated in the steel plate. However, according to the modified example mentioned above, it is possible to inhibit the steel plate having a smaller plate thickness from warping excessively. Accordingly, it is possible to reduce generation of a crease in the tailored blank 10.

[0113] (2e) In the aforementioned embodiment, in order for the die 101 and the blank holder 103 to hold the flange corresponding portion 4A therebetween such that the first welded portion 14 and the second welded portion 15 are displaceable towards the top plate corresponding portion 2A in the held state, a pressure applied to the tailored blank 10 by the blank holder 103 in the held state may be set to satisfy the following mathematical formula (Formula 1).X[ton]<Ts[MPa]×0.005×A[mm2]9.8[Formula⁢ 1]

[0114] In Formula 1, X is a pressure applied to the tailored blank 10 by the blank holder 103. Ts is a tensile strength of a steel plate whose value obtained by multiplying its tensile strength and its plate thickness is the smallest (the first steel plate 11 in the present embodiment). A is a contact area of the blank holder 103 and the tailored blank 10 before the tailored blank 10 is pressed by the die 101 and the punch 102. Due to the nature of the material, the surface of the blank of the tailored blank 10 has some unevenness. Thus, the tailored blank 10 does not necessarily adhere to the blank holder 103 over the entire surface. The contact area includes the area where the blank holder 103 and the tailored blank 10 overlap each other in the upward-downward directions in addition to the area where the blank holder 103 and the tailored blank 10 contact each other.

[0115] (2f) In the aforementioned embodiment, in order for the die 101 and the blank holder 103 to hold the flange corresponding portion 4A therebetween such that the first welded portion 14 and the second welded portion 15 are displaceable towards the top plate corresponding portion 2A in the held state, the press molding device 100 may include an adjusting member. The adjusting member is for adjusting the distance between the tailored blank 10 and the die 101 in the held state. As shown in FIG. 9, the press molding device 100 includes a first adjusting member 21 and a second adjusting member 22 as the adjusting member.

[0116] The first adjusting member 21 is a cylindrical metal. As an example, the first adjusting member 21 is a distance block. The shape of the first adjusting member 21 is not limited thereto. For example, the shape of the first adjusting member 21 may be a polygonal prism.

[0117] The second adjusting member 22 is a disk-shaped metal. As an example, the second adjusting member 22 is a shim. The shape of the second adjusting member 22 is not limited thereto. For example, the shape of the second adjusting member 22 may be rectangular. The thickness of the second adjusting member 22 is configured to be less than the thickness of the first adjusting member 21.

[0118] The first adjusting member 21 and the second adjusting member 22 are situated outside of the third steel plate 13. The first adjusting member 21 and the second adjusting member 22 are placed on one another and situated between the blank holder 103 and the die 101. In the present embodiment, the second adjusting member 22 is placed on the top surface of the blank holder 103, and the first adjusting member 21 is placed on the top surface of the second adjusting member 22. Specifically, at least two sets of the first adjusting member 21 and the second adjusting member 22 placed on one another are situated outside of the outer circumference of the tailored blank 10. The at least two sets of the first adjusting member 21 and the second adjusting member 22 are arranged along the outer circumference of the tailored blank 10 at a given interval. In other words, the at least two sets of the first adjusting member 21 and the second adjusting member 22 are situated around the tailored blank 10 and arranged in a way that covers the front, rear, right, and left of the tailored blank 10.

[0119] The first adjusting member 21 and the second adjusting member 22 are arranged in the press molding device 100 such that the distance between the tailored blank 10 and the die 101 in the held state is adjusted to be greater than or equal to 5% and less than 20% of the plate thickness of the thinnest steel plate among the steel plates forming the tailored blank 10. In the present embodiment, the first adjusting member 21 and the second adjusting member 22 are arranged such that the distance between the top surface of the tailored blank 10 and the bottom surface of the die 101 in the held state is adjusted to be greater than or equal to 5% and less than 20% of the plate thickness of the first steel plate 11.

[0120] Such a configuration enables the held state to be maintained in a state where the displacement of the first welded portion 14 and the second welded portion 15 towards the top plate corresponding portion 2A is not easily inhibited. Accordingly, it becomes easier for the material to flow from the flange corresponding portion 4A towards the top plate corresponding portion 2A. In other words, excessive adhesion of the tailored blank 10 to the die 101 and the blank holder 103 in the held state can be avoided by creating a gap between the tailored blank 10 and the die 101. In addition, since the surface of the tailored blank 10 includes some unevenness due to the nature of the material, the die 101 and the blank holder 103 can hold the tailored blank 10 by partially contacting the tailored blank 10 if the gap between the tailored blank 10 and the die 101 is greater than or equal to 5% and less than 20% of the plate thickness of the first steel plate 11.

[0121] Since the adjusting members having different thicknesses are used, it is easier to perform fine adjustments of the distance between the tailored blank 10 and the die 101.

[0122] Although a configuration was illustrated in which the press molding device 100 includes two adjusting members, namely the first adjusting member 21 and the second adjusting member 22 as the adjusting member, the number of the adjusting members included in the press molding device 100 is not limited thereto. For example, the press molding device 100 may include one adjusting member or may use three or more adjusting members placed on one another.

[0123] (2g) In the aforementioned embodiment, a configuration was illustrated in which the press molded product 1 is manufactured using the tailored blank 10. However, the type of the blank used to manufacture the press molded product 1 is not limited thereto. For example, as shown in a modified example 1 of FIG. 13A and FIG. 13B, the blank 110 may be a steel plate including the first steel plate 11 and a fourth steel plate 112. The fourth steel plate 112 has a roughly rectangular shape, and its outline is elongated in the front-rear directions. The fourth steel plate 112 is a steel plate having a plate thickness greater than the plate thickness of the first steel plate 11 and / or having a strength greater than the strength of the first steel plate 11. In the present modified example, the fourth steel plate 112 has a plate thickness greater than the plate thickness of the first steel plate 11 and has a tensile strength greater than the tensile strength of the first steel plate 11. The fourth steel plate 112 is a high tensile steel material. As an example, the plate thickness of the fourth steel plate 112 is 1.0 mm, and the tensile strength of the fourth steel plate 112 is 780 MPa. The ratio of strength between the first steel plate 11 and the fourth steel plate 112 is 4.8. The fourth steel plate 112 is placed on the top surface of the first steel plate 11 and is joined to the first steel plate 11 by spot welding at a desired location 114. The fourth steel plate 112 is situated in the flange corresponding portion 4A.

[0124] In the modified example 1, the fourth steel plate 112 corresponds to the reinforcing member.

[0125] For example, as shown in the modified example 2 illustrated in FIG. 14A and FIG. 14B, a blank 210 may include a hardened portion 212. The hardened portion 212 is a portion of the first steel plate 11 that is hardened by laser. Specifically, the hardened portion 212 is a linear portion formed by linearly radiating a laser on a front surface of the first steel plate 11. The hardened member 212 is situated in the flange corresponding portion 4A.

[0126] In the modified example 2, the hardened member 212 corresponds to the reinforcing member.

[0127] (2h) Functions of one element in the aforementioned embodiments may be distributed to two or more elements. Functions of two or more elements may be integrated into one element. A part of the configuration of the aforementioned embodiments may be omitted. At least a part of the configuration of the aforementioned embodiments may be added to or replaced with other configurations of the aforementioned embodiments.

Claims

1. A press molded product comprising:a top plate;a vertical wall; anda flange,the vertical wall being a plate-like portion that stands from an end of the top plate so as to surround the top plate,the flange being a plate-like portion that extends from the vertical wall in a direction intersecting the vertical wall and being situated to surround the top plate in a plan view perpendicular to the top plate,the flange including a reinforcing member that has a plate thickness greater than a plate thickness of the top plate and / or has a strength greater than a strength of the top plate and that has a length, andan edge of the reinforcing member on a side of the top plate extending roughly parallel to a ridgeline between the vertical wall and the flange.

2. The press molded product according to claim 1,wherein a plate thickness of the reinforcing member is greater than a plate thickness of the top plate.

3. The press molded product according to claim 1,wherein a strength of the reinforcing member is greater than a strength of the top plate.

4. A method for manufacturing a molded product in which a blank is pressed to obtain the molded product, the method comprising:situating the blank between a first metallic mold and a second metallic mold arranged apart from each other; andforming the molded product including a top plate, a vertical wall, and a flange by pressing the blank with the first metallic mold and the second metallic mold by bringing the first metallic mold and the second metallic mold close to each other,the blank being a steel plate that includes a first steel plate, and a reinforcing member having a plate thickness greater than a plate thickness of the first steel plate and / or having a strength greater than a strength of the first steel plate,the vertical wall being a plate-like portion that stands from an end of the top plate so as to surround the top plate;the flange being a plate-like portion that extends from the vertical wall in a direction intersecting the vertical wall and is situated to surround the top plate in a plan view perpendicular to the top plate,the blank including a top plate corresponding portion that represents a portion corresponding to the top plate, a vertical wall corresponding portion that represents a portion corresponding to the vertical wall, and a flange corresponding portion that represents a portion corresponding to the flange,the top plate corresponding portion being situated in the first steel plate,the reinforcing member being a portion having a length and situated in the flange corresponding portion,in the molded product, an edge of the reinforcing member on a side of the top plate extending roughly parallel to the ridgeline between the vertical wall and the flange, andan angle formed by the edge of the reinforcing member on the side of the top plate and the ridgeline in the molded product being smaller than an angle formed by an edge of the reinforcing member on a side of the top plate corresponding portion and a boundary between the vertical wall corresponding portion and the flange corresponding portion in the blank.

5. The method for manufacturing a molded product according to claim 4,wherein, in a plan view perpendicular to a direction of plate thickness of the blank, the top plate corresponding portion is situated in a portion of a first side of the blank including an end portion of the blank on the first side, andwherein the edge of the reinforcing member on the side of the top plate corresponding portion extends from an end portion of the blank on a second side, which is situated opposite from the end portion of the first side, towards the first side so as to avoid the top plate corresponding portion.

6. The method for manufacturing the molded product according to claim 4,wherein the blank is a tailored blank that is obtained by joining the first steel plate and a second steel plate, which has a plate thickness greater than the plate thickness of the first steel plate and / or has a strength greater than the strength of the first steel plate, by welding,wherein the reinforcing member is the second steel plate, andwherein, on the edge of the reinforcing member on the side of the top plate corresponding portion, a welding line is formed, the welding line being a portion in which an end surface of the first steel plate and an end surface of the reinforcing member are welded to each other.