Structural components

The structural component design with a top plate and bulging side walls in a curved region enhances rigidity and reaction force against loads, addressing rusting and cost issues in open cross-section structures.

JP7846438B2Active Publication Date: 2026-04-15NIPPON STEEL CORPORATION
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-03-27
Publication Date
2026-04-15

AI Technical Summary

Technical Problem

Structural components with open cross-section structures face challenges in maintaining high rigidity and reaction force against input loads due to potential rusting at arc welding points and increased manufacturing costs associated with closed cross-section structures.

Method used

A structural component design featuring a top plate and two side walls with a curved region, where the top plate has a maximum width greater than the ends and the side walls bulge outward, allowing for compressive deformation to maintain a high reaction force despite an open cross-section structure.

Benefits of technology

The design achieves a high reaction force against applied loads by suppressing the decrease in force during deformation, even in open cross-section structures, while reducing manufacturing costs and rusting issues.

✦ Generated by Eureka AI based on patent content.

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Abstract

A structural component (100, 200, 300, 400) is provided with a top plate (10) and side walls (21, 22). The structural component (100, 200, 300, 400) includes a curved area (30). When viewed from the side walls (21, 22), the curved area (30) is curved with the top plate (10) side as the inner side of the curve, and the reverse side of the top plate (10) as the outer side of the curve. In the curved area (30), the side walls (21, 22) are connected by the top plate (10) at the inner side of the curve. The curved area (30) opens at the outer side of the curve. In the curved area (30), the top plate (10) has a maximum width (W max ) which is greater than the width (W 0 ) of the top plate (10) on both ends of the structural component (100, 200, 300, 400). When the curved area (30) is viewed in the transverse cross section, the total length of the two side walls (21, 22) is greater than the width of the top plate (10).
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Description

Technical Field

[0001] The present disclosure relates to structural components.

Background Art

[0002] Structures such as the body of an automobile, for example, are formed using structural components. The structural components are required to have durability against the applied load.

[0003] For example, Patent Document 1 discloses a suspension arm for an automobile. The suspension arm of Patent Document 1 includes a plate-shaped main body portion and pipe-shaped reinforcing portions provided on both side edges of the main body portion. Patent Document 1 describes that with this structure, the second moment of area about an axis passing through the centroid of the main body portion and perpendicular to the main body portion is increased, so that the suspension arm can have sufficient rigidity to withstand bending loads.

[0004] For example, Patent Document 2 discloses a cross member for an automobile. The cross member of Patent Document 2 includes a web bent in a saddle shape, a pair of side walls provided on both side edges of the web, and flange portions provided at the tips of each side wall. In this cross member, the width of the web gradually increases from both ends in the longitudinal direction of the web toward the bending portions. Patent Document 2 describes that by making the tips of the flange sides of the pair of side walls open more than the base ends on the web side at both ends in the longitudinal direction of the web, the side impact strength when connecting the cross member to a side member for use can be improved.

Prior Art Documents

Patent Documents

[0005]

Patent Document 1

Patent Document 2

Summary of the Invention

Problems to be Solved by the Invention

[0006] By the way, among structural parts, there are some, such as a rear upper arm which is one of the suspension arms for automobiles, that include a curved region in a side view. Such structural parts often have a closed cross-section structure. For example, by facing concave members to each other and joining them by arc welding, a structural part with a closed cross-section structure called a monaka structure is formed. However, since rust is likely to occur at the arc welding part, measures for preventing rust are necessary. Also, performing arc welding in the manufacturing process of structural parts may increase the manufacturing cost of the structural parts.

[0007] When the structural part has an open cross-section structure without an arc welding part, rusting at the arc welding part can be avoided and the manufacturing cost of the structural part can be reduced. However, if the structural part is simply made into an open cross-section structure, there is a problem that the rigidity of the structural part becomes low and the reaction force of the structural part against the input load becomes small.

[0008] An object of the present disclosure is to provide a structural part that can exhibit a high reaction force against an input load despite having an open cross-section structure.

Means for Solving the Problems

[0009] The structural component according to this disclosure comprises a top plate and two side walls. The two side walls are arranged to face each other. Each of the two side walls is continuous with the top plate. The structural component includes a curved region. When viewed from the side wall side, the curved region is curved with the top plate side being the inside of the curve and the opposite side of the top plate being the outside of the curve. In the curved region, the two side walls are connected by the top plate on the inside of the curve. The curved region opens on the outside of the curve. In the curved region, the top plate has a maximum width greater than the width of the top plate at both ends of the structural component. The width of the top plate is the length of the straight line connecting the boundary between one of the two side walls and the top plate and the boundary between the other side wall and the top plate when viewed in cross-section of the curved region. When viewed in cross-section of the curved region, the sum of the lengths of the two side walls is greater than the width of the top plate. [Effects of the Invention]

[0010] The structural component relating to this disclosure can exert a high reaction force against an applied load, despite having an open cross-section structure. [Brief explanation of the drawing]

[0011] [Figure 1] Figure 1 is a perspective view of a structural component according to the first embodiment. [Figure 2] Figure 2 is a plan view of a structural component according to the first embodiment. [Figure 3] Figure 3 is a side view of a structural component according to the first embodiment. [Figure 4] Figure 4 is a cross-sectional view of a structural component according to the first embodiment. [Figure 5] Figure 5 is another cross-sectional view of the structural component according to the first embodiment. [Figure 6] Figure 6 is a perspective view of a structural component according to the second embodiment. [Figure 7] Figure 7 is a perspective view of a structural component according to the third embodiment. [Figure 8] Figure 8 is a plan view of a structural component according to the third embodiment. [Figure 9] Figure 9 is a cross-sectional view of a structural component according to the third embodiment. [Figure 10] Figure 10 is a perspective view of a structural component according to a modified example of the third embodiment. [Figure 11] Figure 11 is a cross-sectional view of a structural component relating to another variation of the third embodiment. [Figure 12] Figure 12 is a graph showing the relationship between the increase in width of the structural component's top plate and the reaction force during a 20mm stroke. [Figure 13] Figure 13 is a graph showing the relationship between the increase in width of the structural component's top plate and the maximum reaction force. [Modes for carrying out the invention]

[0012] The structural component according to this embodiment comprises a top plate and two side walls. The two side walls are arranged to face each other. Each of the two side walls is continuous with the top plate. The structural component includes a curved region. When viewed from the side wall side, the curved region is curved with the top plate side being the inside of the curve and the opposite side of the top plate being the outside of the curve. In the curved region, the two side walls are connected by the top plate on the inside of the curve. The curved region opens on the outside of the curve. In the curved region, the top plate has a maximum width greater than the width of the top plate at both ends of the structural component. The width of the top plate is the length of the straight line connecting the boundary between one of the two side walls and the top plate, and the boundary between the other side wall and the top plate, when the curved region is viewed in cross-section. When the curved region is viewed in cross-section, the sum of the lengths of the two side walls is greater than the width of the top plate (first configuration).

[0013] The structural component of the first configuration includes a curved region that curves when viewed from the side wall side of the structural component. When a compressive load is applied to a structural component having such a curved region, the load is mainly transmitted to the inside of the curved region. Therefore, in the structural component of the first configuration, the top plate is positioned on the inside of the curved region. The curved region has an open cross-section structure in which the two side walls are connected by the top plate on the inside of the curve, while it is open on the outside of the curve. In the curved region, the top plate has a larger width (maximum width) compared to both ends of the structural component, so the side walls continuous with the top plate also bulge outward in the width direction compared to both ends of the structural component. Here, when a compressive load compressing the space between both ends is applied to the structural component of the first configuration, compressive deformation occurs in the top plate on the inside of the curve, and tensile deformation occurs at the ends of the side walls on the outside of the curve. Specifically, the ends of the side walls, which were bulging outward in the width direction of the top plate, are pulled in the longitudinal direction of the structural component, and as a result move inward in the width direction of the top plate. When the ends of both side walls move inward in the width direction, for example, the ends of the side walls come into contact with each other, and a pushing force acts on both side walls in the curved region of the structural component. In this case, even after the reaction force of the structural component reaches its peak in response to the input compressive load, the decrease in the reaction force is more easily suppressed. Therefore, the structural component can exert a high reaction force even in the later stages of deformation.

[0014] Thus, the structural component relating to the first configuration can exert a high reaction force against the applied load, even though it has an open cross-section structure.

[0015] In the structural component relating to the first configuration, the top plate may be positioned on both ends of the structural component and may include a section having a certain width (second configuration).

[0016] In the structural components relating to the first or second configuration, the maximum width of the top plate is preferably 110% or more and 220% or less of the minimum width of the top plate (third configuration).

[0017] According to the third configuration, the maximum width of the tabletop is between 110% and 220% of the minimum width. In this case, when a compressive load is applied to the structural components, the reaction force in the later stages of deformation tends to be higher.

[0018] A structural component relating to any of the first to third configurations may further include a flange. The flange is continuous with at least one of the two side walls on the opposite side of the top plate. The flange protrudes from at least one side wall in a direction intersecting that side wall. Preferably, the flange is on the outside of the curve, passing through the bottom of the curved region and extending along the curved region (fourth configuration).

[0019] In the structural component relating to the fourth configuration, flanges are provided at one or both ends of the two side walls at least at the bottom of the curved region. This increases the rigidity of the curved region of the structural component, thereby increasing the peak of the reaction force against compressive load.

[0020] In the structural component relating to the fourth configuration, the flange may be provided on each of the two side walls (fifth configuration).

[0021] In the structural components relating to the fifth configuration, the maximum width of the top plate may be 154% or less of the minimum width of the top plate (sixth configuration).

[0022] In the fifth configuration, flanges are continuously provided on each of the two side walls, and the maximum width of the top plate is 154% or less of the minimum width of the top plate. This allows for a higher peak reaction force of the structural components against compressive loads.

[0023] In a structural component relating to any of the first to sixth configurations, when the curved region is viewed in cross-section, the two side walls may be arranged symmetrically with respect to the center of the top plate (seventh configuration).

[0024] In the seventh configuration, two side walls are symmetrically positioned with respect to the center of the top plate in the cross-section of the curved region of the structural component. In this case, when a compressive load is applied to the structural component, torsional deformation is less likely to occur in the curved region.

[0025] Embodiments of this disclosure will be described below with reference to the drawings. In each drawing, the same or equivalent components are denoted by the same reference numerals, and the same description will not be repeated.

[0026] [First Embodiment] (Structural component composition) Figure 1 is a schematic perspective view showing a structural component 100 according to the first embodiment. The structural component 100 is used, for example, in the body of an automobile. The structural component 100 may also be a chassis component such as a suspension arm. In this embodiment, an example in which the structural component 100 is an upper arm, which is a type of suspension arm, will be described.

[0027] Referring to Figure 1, the structural component 100 comprises a top plate 10 and side walls 21 and 22.

[0028] The top plate 10 extends substantially or generally in the left-right direction of the vehicle when the structural component 100, which is the upper arm, is attached to the vehicle. Hereinafter, the direction in which the top plate 10 extends will be referred to as the longitudinal direction of the structural component 100.

[0029] The side walls 21 and 22 are positioned opposite each other. Side wall 21 is continuous with the top plate 10. Side wall 22 is continuous with the top plate 10 on the opposite side of side wall 21. The side walls 21 and 22 extend along the top plate 10 in the longitudinal direction of the structural component 100.

[0030] The structural component 100 includes a curved region 30. When viewed from the side wall 21, the curved region 30 is curved with the top plate 10 side as the inner side of the curve and the opposite side of the top plate 10 as the outer side of the curve. When viewed from the side wall 22 opposite to the side wall 21, the curved region 30 is also curved with the top plate 10 side as the inner side of the curve and the opposite side of the top plate 10 as the outer side of the curve. In the curved region 30, the side walls 21 and 22 are connected by the top plate 10 on the inner side of the curve. On the other hand, the curved region 30 is open on the outer side of the curve. That is, on the outer side of the curve of the curved region 30, the structural component 100 is separated, and the side wall 21 and the side wall 22 are separated.

[0031] When the structural component 100 is used in the body of an automobile, as in this embodiment, the curved region 30 curves such that it becomes concave downwards when the structural component 100 is attached to the automobile. The curved region 30 includes a bottom portion 31. The curved region 30 extends in the longitudinal direction of the structural component 100 with a radius of curvature of 400 mm or less. The curved region 30 may extend in the longitudinal direction of the structural component 100 with a radius of curvature of 200 mm or less. It is preferable that the curved region 30 extends in the longitudinal direction of the structural component 100 with a radius of curvature of 150 mm or less. The radius of curvature of the curved region 30 is, for example, 20 mm or more, and preferably 50 mm or more. The radius of curvature in this case is the radius of curvature on the inside of the curve of the curved region 30.

[0032] Mounting portions 41 and 42 are provided at both longitudinal ends of the structural component 100. Mounting portions 41 and 42 are for attaching the structural component 100 to other components. The top plate 10 extends from the vicinity of one mounting portion 41 to the vicinity of the other mounting portion 42. Mounting portions 41 and 42 may be, for example, burring portions formed in the side walls 21 and 22. In this case, bushings 51 and 52 are press-fitted into the mounting portions 41 and 42, respectively. However, the form of the mounting portions 41 and 42 is not limited to this.

[0033] Figure 2 is a plan view of the structural component 100 as seen from the top plate 10 side. Referring to Figure 2, the width of the top plate 10 changes along the longitudinal direction of the structural component 100. That is, the width of the top plate 10 is not constant throughout the entire structural component 100. The width of the top plate 10 is the distance from the intersection of a straight line perpendicular to the width center line CL1, which is located exactly halfway between the boundary line L1 between the top plate 10 and the side wall 21 (Figure 1) and the boundary line L2 between the top plate 10 and the side wall 22 (Figure 1), when viewed in plan from the structural component 100. The direction in which this straight line extends is called the width direction of the structural component 100 or the top plate 10. In the example shown in Figure 2, the boundary lines L1, L2 and the width center line CL1 are straight lines when viewed in plan from the structural component 100. However, the boundary lines L1, L2 and the width center line CL1 may be curved in some respects when viewed from above from the structural component 100.

[0034] The top plate 10 includes sections S1 and S2. Sections S1 and S2 are located on both ends of the structural component 100 in the longitudinal direction. Section S1 is located adjacent to one mounting section 41. Section S2 is located adjacent to the other mounting section 42. The top plate 10 has a width W0 in sections S1 and S2. In this embodiment, the width W0 of the top plate 10 is substantially constant in each of sections S1 and S2. The width W0 of the top plate 10 in section S1 may be equal to or different from the width W0 of the top plate 10 in section S2.

[0035] The curved region 30 is located between section S1 and section S2. The top plate 10 has a maximum width W in the curved region 30. max In other words, within the boundary lines L1 and L2 between the top plate 10 and the side walls 21 and 22 (Figure 1), in the range where the center of curvature is located on the top plate 10 side, and within the range from the inflection point on one end of the structural component 100 in the longitudinal direction to the inflection point on the other end, the width of the top plate 10 is the maximum width W. max There is a portion where this occurs. The top plate 10 has a maximum width W at least at the bottom 31 (Figure 1) of the curved region 30. max It is preferable that it has

[0036] The maximum width W of the top plate 10 max is, for example, 101% or more of the minimum width W of the top plate 10 min . The maximum width W max is preferably 105% or more of the minimum width W min , and more preferably 110% or more of the minimum width W min . Even more preferably, the maximum width W max is 113% or more of the minimum width W min . The maximum width W max may be 220% or less of the minimum width W min , and is preferably 217% or less of the minimum width W min . The maximum width W of the top plate 10 in the curved region 30 max is, of course, larger than the width W0 of the top plate 10 in the sections S1 and S2. The width W0 of the top plate 10 in the section S1 and / or the section S2 is typically the minimum width W min of the top plate 10. However, the top plate 10 may have the minimum width W min in a portion other than the sections S1 and S2. The top plate 10 may have the minimum width W min at the longitudinal end side of the structural component 100 with respect to the curved region 30.

[0037] In the example of the present embodiment, a section S3 having the maximum width W max of the top plate 10 extends in the longitudinal direction of the structural component 100. The section S3 having the maximum width W max may be arranged within the curved region 30 or may extend beyond the curved region 30.

[0038] <Figure 3 is a side view of the structural component 100 as seen from the side wall 21. In this embodiment, the wider section S3 of the top plate 10 extends in the longitudinal direction of the structural component 100 between the narrower sections S1 and S2 (Figure 2). Therefore, steps 23 and 24 are formed in the side wall 21 at the boundary between the portion continuous with section S3 and the portion continuous with sections S1 and S2, respectively. The steps 23 and 24 may be formed in the side wall 21 so that they are horizontal when the structural component 100 is in use, or they may be formed in the side wall 21 so that they are at an angle to the horizontal when the structural component 100 is in use. Although not shown, steps 23 and 24 are also formed in the opposite side wall 22 in the same way as in the side wall 21.

[0039] Figures 4 and 5 show the cross-sections (transverse planes) of the structural component 100 when it is cut by a plane perpendicular to its longitudinal direction. Figure 4 shows the cross-section of the structural component 100 at the IV-IV section of Figure 3, more specifically at the position of the bottom 31 of the curved region 30. Figure 5 shows the cross-section of the structural component 100 at the VV section of Figure 3, that is, at a position near one of the mounting portions 41, 42 provided at both ends of the structural component 100 in the longitudinal direction.

[0040] Referring to Figure 4, the top plate 10 includes a top plate body 11 and ridge portions 121 and 122. The top plate body 11 has a substantially flat shape when viewed in cross-section of the structural component 100. The ridge portions 121 and 122 are provided continuously on both side edges of the top plate body 11. Ridge portion 121 is a corner portion between the top plate body 11 and one side wall 21. Ridge portion 122 is a corner portion between the top plate body 11 and the other side wall 22. The ridge portions 121 and 122 have a substantially arc shape when viewed in cross-section of the structural component 100, for example.

[0041] The side walls 21 and 22 are provided continuously with the ridges 121 and 122 of the top plate 10, respectively. In the curved region 30, the ends 211 and 221 of the side walls 21 and 22 located on the opposite side of the top plate 10 are open ends. That is, the structural component 100 has an open section structure at least within the curved region 30. The structural component 100 may also have an open section structure over its entire or substantially entire longitudinal direction. An open section structure means that the end 211 of the side wall 21 and the end 221 of the side wall 22 are separated, and the structural component 100 itself does not have a continuous structure on the end 211 and 221 sides.

[0042] In a cross-sectional view of the curved region 30, the maximum width W of the top plate 10 is shown. max This is the length of the straight line connecting the boundary 212 between the top plate 10 and the side wall 21, and the boundary 222 between the top plate 10 and the side wall 22. Boundary 212 is the end of the R-shaped curve on the side wall 21 side of the ridge 121 of the top plate 10. Boundary 222 is the end of the R-shaped curve on the side wall 22 side of the ridge 122 of the top plate 10. Connecting boundary 212 along the longitudinal direction of the structural component 100 results in boundary line L1 (Figure 2) between the top plate 10 and the side wall 21. Connecting boundary 222 along the longitudinal direction of the structural component 100 results in boundary line L2 (Figure 2) between the top plate 10 and the side wall 22.

[0043] In the cross-section of the curved region 30, the sum of the lengths (heights) H1 and H2 of the side walls 21 and 22: H1 + H2 equals the maximum width W of the top plate 10. max It is greater than. The height H1 of the side wall 21 is the straight-line distance from the boundary 212 between the side wall 21 and the top plate 10 to the end 211 in the cross-section of the curved region 30. The height H2 of the side wall 22 is the straight-line distance from the boundary 222 between the side wall 22 and the top plate 10 to the end 221 in the cross-section of the curved region 30. The sum of the heights H1 and H2 of the side walls 21 and 22 is the maximum width W of the top plate 10. max It is acceptable if it is more than 100% of the maximum width W. max It is 200% or more, and more preferably 400% or more. The sum of the heights H1 and H2 of the side walls 21 and 22 is such that the top plate 10 has a maximum width W max In section S3 (Figure 2) having the maximum width W max It has become larger than that.

[0044] Referring to Figure 5, the width W0 of the top plate 10 at the longitudinal end of the structural component 100 is smaller than the width of the top plate 10 in the curved region 30. When the structural component 100 is viewed in cross-section in sections S1 and S2 (Figure 2), the width W0 is the length of the straight line connecting the boundary 212 between the top plate 10 and the side wall 21 and the boundary 222 between the top plate 10 and the side wall 22. In sections S1 and S2, the sum of the heights H1 and H2 of the side walls 21 and 22: H1 + H2 may be greater than the width W0 of the top plate 10, but may also be less than or equal to the width W0. In this embodiment, the heights H1 and H2 of the side walls 21 and 22 are smaller than the curved region 30 at both longitudinal ends of the structural component 100. That is, the heights H1 and H2 of the side walls 21 and 22 change along the longitudinal direction of the structural component 100. However, the heights H1 and H2 of the side walls 21 and 22 may be constant along the entire length of the structural component 100.

[0045] In this embodiment, when the curved region 30 is viewed in cross-section, the side walls 21 and 22 are provided symmetrically with respect to the center of the top plate 10. More specifically, in the cross-section of the curved region 30, the side walls 21 and 22 are provided symmetrically with respect to the center line CL2 of the width of the top plate 10, which passes through the midpoint of the line connecting the boundary portion 212 of the side wall 21 with respect to the top plate 10 and the boundary portion 222 of the side wall 22 with respect to the top plate 10, and is perpendicular to the said line. Preferably, the side walls 21 and 22 are symmetrical with respect to the center of the top plate 10 over at least the entire length of the curved region 30. The side walls 21 and 22 may also be symmetrical with respect to the center of the top plate 10 over the entire length of the structural component 100.

[0046] (effect) The structural component 100 according to this embodiment includes a curved region 30 that curves when viewed from the side walls 21 and 22. The curved region 30 has an open cross-sectional structure that opens on the outside of the curve. In other words, in the curved region 30, the ends 211 and 221 of the side walls 21 and 22 are spaced apart. In the curved region 30, the top plate 10 has a larger width (maximum width) W compared to both ends in the longitudinal direction of the structural component 100. maxBecause of this, the side walls 21 and 22 that are continuous with the top plate also bulge outward in the width direction compared to the ends of the structural component 100. When a compressive load is applied to the structural component 100 that compresses the space between the mounting parts 41 and 42, compressive deformation occurs in the top plate 10 on the inside of the curve, and in the boundary parts 212 and 222 between the top plate 10 and the side walls 21 and 22, while tensile deformation occurs in the ends 211 and 221 of the side walls 21 and 22 on the outside of the curve. In other words, when the structural component 100 is subjected to a compressive load, the ends 211 and 221 of the side walls 21 and 22 are pulled in the longitudinal direction of the structural component 100, and are stretched from their bulging outward in the width direction to moving inward in the width direction. As a result, if there is no intervening material between the ends 211 and 221, the end 211 of the side wall 21 and the end 221 of the side wall 22 come into direct contact, and the cross-section of the curved region 30 becomes a pseudo-closed cross-section, causing a pushing force to act between the side walls 21 and 22. If there is an intervening material between the ends 211 and 221, the ends 211 and 221 come into contact with the intervening material from both sides, causing a pushing force to act between the side walls 21 and 22. Therefore, even after the reaction force of the structural component 100 reaches its peak in response to the compressive load, the decrease in the reaction force is suppressed. Thus, the structural component 100 can exert a high reaction force even in the later stages of deformation.

[0047] Thus, the structural component 100 according to this embodiment can exert a high reaction force against an applied compressive load, even though it has an open cross-sectional structure in which the end 211 of the side wall 21 and the end 221 of the side wall 22 are separated in the width direction. In the structural component 100 of this embodiment, the opening between the side wall 21 and the side wall 22 is not closed. However, the opening between the side wall 21 and the side wall 22 may be closed if a force can be applied to the side wall 21 and 22 pushing against each other when a compressive load is applied to the structural component 100. For example, the side wall 21 and the side wall 22 may be connected by a component separate from the structural component 100.

[0048] In the structural component 100 according to this embodiment, the maximum width W of the top plate 10 max Preferably, the minimum width W of the top plate 10. minIt is between 110% and 220%. In this case, when a compressive load is applied to the structural component 100, the reaction force in the later stages of deformation tends to be higher.

[0049] In this embodiment, when the curved region 30 is viewed in cross-section, the side walls 21 and 22 are arranged symmetrically with respect to the center of the top plate 10. This suppresses the occurrence of torsional deformation in the curved region 30 when a compressive load is applied to the structural component 100. However, in the cross-section of the curved region 30, the side walls 21 and 22 do not necessarily have to be symmetrical with respect to the center of the top plate 10.

[0050] [Second Embodiment] Figure 6 is a schematic perspective view showing the structural component 200 according to the second embodiment. The structural component 200 according to this embodiment has basically the same configuration as the structural component 100 (Figures 1 to 5) according to the first embodiment. However, in the first embodiment, the maximum width W of the top plate 10 is... max In the case where the section S3 (Figure 2) having the curved region 30 extended in the longitudinal direction of the structural component 100, in this embodiment the top plate 10 has a maximum width W at one point within the curved region 30. max It has.

[0051] Referring to Figure 6, in this embodiment as well, the top plate 10 has a maximum width W in the curved region 30 that is greater than the width W0 (Figure 2) at both ends in the longitudinal direction of the structural component 200. max The width of the top plate 10, unlike in the first embodiment, gradually increases as it moves away from both ends in the longitudinal direction of the structural component 200, and reaches a maximum width W at one point within the curved region 30. max The top plate 10 has a maximum width W at or near the bottom 31 of the curved region 30. max It is preferable that it has the following. The top plate 10 has a minimum width W at the longitudinal end of the structural component 200. min It can have the same effects as the structural component 100 according to the first embodiment.

[0052] [Third Embodiment] Figure 7 is a schematic perspective view showing the structural component 300 according to the third embodiment. The structural component 300 according to this embodiment has basically the same configuration as the structural component 100 (Figures 1 to 5) according to the first embodiment. However, the structural component 300 differs from the structural component 100 according to the first embodiment in that it includes flanges 61 and 62.

[0053] In the structural component 300, the flanges 61 and 62 are continuous with the side walls 21 and 22 on the opposite side of the top plate 10. One flange 61 is provided continuously with the side wall 21. The other flange 62 is provided continuously with the side wall 22. In this embodiment, the flanges 61 and 62 protrude outward from the side walls 21 and 22.

[0054] The flanges 61 and 62 are preferably located outside the curve of the curved region 30, passing through the bottom 31 and extending along the curved region 30. The flanges 61 and 62 may extend along the entire longitudinal direction of the structural component 300, or they may be provided on only a portion of the structural component 300. In this embodiment, the flanges 61 and 62 extend to near both ends of the structural component 300 in the longitudinal direction. The portions of the flanges 61 and 62 on the ends of the structural component 300 may gradually disappear as they move towards both ends of the structural component 100.

[0055] Figure 8 is a view (plan view) of the structural component 300 from the side of the top plate 10. Referring to Figure 8, the maximum width W of the top plate 10. max Similar to the first embodiment, for example, the minimum width W of the top plate 10 min It is 101% or more. When flanges 61 and 62 are provided on the structural component 300 as in this embodiment, the maximum width W max The minimum width is W min It is preferable that it be 154% or less, and more preferably 148% or less. Maximum width W max The minimum width is W min It is even more preferable that it be between 107% and 141%.

[0056] Figure 9 shows a cross-section (transverse plane) of the structural component 300 when it is cut by a plane perpendicular to its longitudinal direction. Figure 9 shows a transverse plane of the structural component 300 at the bottom 31 of the curved region 30. Referring to Figure 9, the flange 61 is continuous with one side wall 21 on the opposite side of the top plate 10. That is, the flange 61 is provided continuously with the end 211 of the side wall 21. The flange 61 protrudes from the side wall 21 in a direction intersecting the side wall 21. In this embodiment, the flange 61 protrudes outward from the end 211 of the side wall 21 toward the outside of the structural component 300.

[0057] The flange 62 is continuous with the other side wall 22 on the opposite side of the top plate 10. That is, the flange 62 is provided continuously with the end 221 of the side wall 22. The flange 62 protrudes from the side wall 22 in a direction intersecting the side wall 22. In this embodiment, the flange 62 protrudes from the end 221 of the side wall 22 toward the outside of the structural component 300. The flange 62 protrudes toward the opposite side from the flange 61.

[0058] The flanges 61 and 62 extend along the ends 211 and 221 of the side walls 21 and 22 in a range that includes at least the bottom 31 of the curved region 30 (Figure 7). The flanges 61 and 62 may extend along the ends 211 and 221 of the side walls 21 and 22 along the entire length of the curved region 30. The flanges 61 and 62 may extend along the ends 211 and 221 of the side walls 21 and 22 to, for example, the vicinity of the mounting portions 41 and 42 (Figure 7).

[0059] In the cross-section of the curved region 30, the flanges 61 and 62 are preferably symmetrical with respect to the center of the top plate 10. That is, when the curved region 30 is viewed in cross-section, the flanges 61 and 62 are preferably provided symmetrically with respect to the width center line CL2 of the top plate 10. The flanges 61 and 62 are preferably symmetrical with respect to the center of the top plate 10 over at least the entire length of the curved region 30. The flanges 61 and 62 may also be symmetrical with respect to the center of the top plate 10 over the entire length of the structural component 300.

[0060] In the example shown in Figure 9, the flanges 61 and 62 are substantially parallel to the tabletop body 11 in a cross-sectional view of the curved region 30. However, the flanges 61 and 62 may be inclined with respect to the tabletop body 11 in a cross-sectional view of the curved region 30.

[0061] The length (width) of the flanges 61 and 62 in the width direction of the structural component 300 may be constant along the entire length of the flanges 61 and 62, but may also vary along the direction of extension of the flanges 61 and 62. For example, at the bottom 31 of the curved region 30 (Figure 7), the width of the flanges 61 and 62 may be larger compared to both ends in the longitudinal direction of the structural component 300. In this case, it is preferable that the width of the flanges 61 and 62 is maximum at the bottom 31 of the curved region 30. Furthermore, it is preferable that the width of the flanges 61 and 62 gradually decreases towards both ends in the longitudinal direction of the structural component 300 and disappears gradually. However, the width of the flanges 61 and 62 may change abruptly at both ends in the longitudinal direction of the structural component 300.

[0062] Similar to the first embodiment, the structural component 300 according to this embodiment can exert a pushing force on the side walls 21 and 22 when a compressive load is applied between the mounting portions 41 and 42, with the ends 211 and 221 of the side walls 21 and 22 directly or indirectly contacting each other, allowing it to exhibit a high reaction force even in the later stages of deformation. Furthermore, the presence of flanges 61 and 62 on the structural component 300 increases its rigidity against compressive loads. Therefore, despite having an open cross-section structure, the structural component 300 can exhibit a high peak reaction force when a compressive load is applied.

[0063] In the structural component 300 of this embodiment, as in other embodiments, the top plate 10 has a maximum width W in the curved region 30. max It has the following characteristics. When flanges 61 and 62 are continuously provided on the side walls 21 and 22, the maximum width W of the top plate 10 max The minimum width is W min It is preferable that it be 154% or less of the above. This makes it possible to further increase the peak reaction force of the structural component 300 against compressive load.

[0064] In this embodiment, the maximum width W of the top plate 10 max The minimum width is W min It is more preferable that the minimum width W is between 101% and 148%. min It is even more preferable that it be between 107% and 141%. This allows the structural component 300 to exhibit an even higher peak reaction force against compressive load.

[0065] The structural component 300 according to this embodiment is the structural component 100 according to the first embodiment with flanges 61 and 62 provided. Similarly, the structural component 200 according to the second embodiment can also be provided with flanges 61 and 62, as shown in the structural component 400 in Figure 10. In the structural component 400 as well, it is preferable that the flanges 61 and 62 extend along at least a portion of the curved region 30.

[0066] In structural component 400, the maximum width W of the top plate 10. max Similar to the structural component 300 according to the third embodiment, the minimum width W min It is preferable that it is 154% or less of the maximum width W. max For example, the minimum width W min It is more than 101% of the maximum width W. max The minimum width is W min Preferably, the minimum width W is between 101% and 148%. min It is more preferable that it be between 107% and 141%. This makes it possible to further increase the peak reaction force of the structural component 300 against compressive load, similar to the third embodiment.

[0067] In the structural component 300 according to this embodiment, when the curved region 30 is viewed in cross-section, the flanges 61 and 62 are provided symmetrically with respect to the center of the top plate 10. This makes it less likely for torsional deformation to occur in the curved region 30 when a compressive load is applied to the structural component 300. However, the flanges 61 and 62 do not necessarily have to be provided symmetrically with respect to the center of the top plate 10. Similarly, in the structural component 400 shown in Figure 10, when the curved region 30 is viewed in cross-section, the flanges 61 and 62 may or may not be provided symmetrically with respect to the center of the top plate 10.

[0068] The structural component 300 and the structural component 400 shown in Figure 10 according to this embodiment are each provided with flanges 61 and 62 that are continuous with the side walls 21 and 22 on the opposite side of the top plate 10. However, the structural components 300 and 400 do not necessarily have to be provided with either flange 61 or 62.

[0069] In this embodiment, the flanges 61 and 62 protrude outward from the side walls 21 and 22 of the structural component 300. However, as shown in Figure 11, the flanges 61 and 62 can also protrude inward from the side walls 21 and 22 of the structural component 300. Alternatively, one of the flanges 61 and 62 may protrude outward from the structural component 300, and the other flange 61 and 62 may protrude inward from the structural component 300. If the structural component 300 comprises only one of the flanges 61 and 62, this flange may protrude outward from the structural component 300 or inward from the structural component 300.

[0070] Similarly, in the structural component 400 shown in Figure 10, the flanges 61 and 62 may project inward from the side walls 21 and 22. Alternatively, one of the flanges 61 and 62 may project outward from the side walls 21 and 22, while the other flange 61 and 62 projects inward from the side walls 21 and 22. If the structural component 400 has only one of the flanges 61 and 62, this flange may project outward from the structural component 400 or inward from the structural component 400.

[0071] While embodiments relating to this disclosure have been described above, this disclosure is not limited to the embodiments described above, and various modifications are possible as long as they do not deviate from its spirit. [Examples]

[0072] The present disclosure will be further described below with reference to examples. However, the present disclosure is not limited to the following examples.

[0073] [First Embodiment] To confirm the effects of this disclosure, numerical analysis was performed on a structural component having the same shape as the structural component 100 (Figures 1 to 5) according to the first embodiment, using commercially available structural analysis software (Abaqus, manufactured by Dassault Systèmes). In this analysis, the reaction force when a compressive load compressing the mounting parts (between fastening points) was input to the structural component, more specifically, the reaction force in the later stages of deformation, was evaluated when the displacement stroke in the load direction was 20 mm (20 mm stroke). For comparison, a similar analysis was performed on a structural component having a normal open cross-section structure, that is, a structural component in which the width of the top plate does not change along its entire length.

[0074] Figure 12 is a graph showing the results of this analysis. Figure 12 shows the relationship between the percentage increase in tabletop width (%) and the reaction force (kN) at a 20mm stroke. The percentage increase in tabletop width refers to the maximum width of the tabletop increasing by W max , minimum width W min As 100 × {(W max -W min ) / W minThis is the value obtained by}. As can be seen from Figure 12, the width of the tabletop changes, and in the curved region the width of the tabletop is at its maximum width W. max In structural components with a width increase rate > 0%, the reaction force at a 20mm stroke was significantly increased compared to structural components with a normal open cross-section structure (width increase rate = 0%). In this analysis, the width increase rate of the top plate was between 10% and 120% (maximum width of the top plate W). max The minimum width is W min It was confirmed that the reaction force was particularly large during a 20mm stroke within the range of 110% to 220%.

[0075] [Second Example] Numerical analysis was performed on a structural component having the same shape as the structural component 300 (Figures 7-9) according to the third embodiment, using commercially available structural analysis software (Abaqus, manufactured by Dassault Systèmes). In this analysis, the maximum reaction force (peak reaction force) was evaluated when a compressive load compressing the mounting parts (between fastening points) was input to the structural component. For comparison, a similar analysis was performed on a structural component having a normal open section structure, that is, a structural component in which the width of the top plate does not change along its entire length and flanges are not provided on both side walls (Comparative Example 1). A similar analysis was also performed on a structural component in which flanges are provided on both side walls, but the width of the top plate does not change along its entire length (Comparative Example 2).

[0076] Figure 13 is a graph showing the results of this analysis. Figure 13 shows the relationship between the percentage increase in the width of the top plate and the maximum reaction force (kN). As shown in Figure 13, in the case of a structural component with flanges on both side walls, the maximum reaction force increased compared to the structural component in Comparative Example 1 (0% width increase, no flanges) by setting the percentage increase in the width of the top plate to more than 0% and 54% or less. The maximum reaction force in Comparative Example 1 was 35.80 kN, and the maximum reaction force when the percentage increase in the width of the top plate was 54% was 35.94 kN.

[0077] Furthermore, in the case of structural components with flanges on both side walls, increasing the width of the top plate by 1% to 48% resulted in an increase in the maximum reaction force compared to the structural component in Comparative Example 2 (width increase rate 0%, with flanges). The maximum reaction force in Comparative Example 2 was 37.92 kN, the maximum reaction force when the width increase rate of the top plate was 1% was 38.26 kN, and the maximum reaction force when the width increase rate of the top plate was 48% was 37.97 kN.

[0078] Furthermore, when the increase in the width of the tabletop was between 7% and 41%, the maximum reaction force increased by approximately 5kN or more compared to Comparative Example 1.

[0079] This analysis revealed that flanges should be provided on both vertical walls, and the increase in the width of the top plate should be greater than 0% and less than 54% (maximum width W max Minimum width W min It was confirmed that by setting the increase rate of the top plate width to between 100% and 154%, the structural components exhibit a high maximum reaction force against compressive load. Furthermore, it was confirmed that the increase rate of the top plate width should be between 1% and 48% (maximum width W max Minimum width W min By setting it to 101% to 148%, the maximum reaction force is further improved, and the increase rate of the tabletop width is 7% to 41% (maximum width W max Minimum width W min It was confirmed that the maximum reaction force could be further improved by setting it to between 107% and 141% of the original value. [Explanation of symbols]

[0080] 100, 200, 300, 400: Structural components 10: Top plate 21,22: Side wall 212,222: Boundary section 30: Curved region 31: Bottom 61,62: Flange S1, S2: Section

Claims

1. Structural components, The tabletop and They are arranged facing each other, and each has two side walls that are continuous with the top plate, Equipped with, The structural component, when viewed from the side wall, is curved with the top plate side as the inner side of the curve and the opposite side of the top plate as the outer side of the curve, and includes a curved region where the two side walls are connected by the top plate on the inner side of the curve and an opening is formed on the outer side of the curve, When the curved region is viewed in cross-section, and the length of the straight line connecting the boundary between one of the two side walls and the top plate, and the boundary between the other side wall and the top plate, is defined as the width of the top plate, the top plate has a maximum width in the curved region that is greater than the width of the top plate at both ends of the structural component. When the curved region is viewed in cross-section, the sum of the lengths of the two side walls is greater than the width of the top plate. The structural component is a structural component having an open cross-sectional structure in at least the curved region.

2. A structural component according to claim 1, The top plate is a structural component that is positioned on both ends of the structural component and includes a section having a certain width.

3. A structural component according to claim 1, A structural component in which the maximum width is 110% or more and 220% or less of the minimum width of the top plate.

4. A structural component according to claim 1, further, A flange that is continuous with at least one of the two side walls on the opposite side of the top plate and protrudes from at least one of the side walls in a direction intersecting with that side wall, Equipped with, The flange is a structural component that extends along the curved region, passing through the bottom of the curved region and on the outside of the curve.

5. A structural component according to claim 4, The flange is a structural component provided on each of the two side walls.

6. A structural component according to claim 5, A structural component in which the maximum width is 154% or less of the minimum width of the top plate.

7. A structural component according to any one of claims 1 to 6, A structural component in which, when the curved region is viewed in cross-section, the two side walls are provided symmetrically with respect to the center of the top plate.

Citation Information

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