Steering support structure

The steering support structure addresses the need for gradual energy absorption by incorporating a connecting member with specific deformation portions, ensuring rapid initial and prolonged gradual energy absorption for enhanced occupant safety.

JP7765725B2Active Publication Date: 2025-11-07SUZUKI MOTOR CORP
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Patent Information

Application Number
JP2021156754
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-09-27
Publication Date
2025-11-07
Estimated Expiration
2041-09-27

AI Technical Summary

Technical Problem

Existing steering support structures do not effectively absorb the energy of an impact load from the front of a vehicle in a gradual manner, necessitating improved protection for vehicle occupants.

Method used

A steering support structure with a connecting member featuring a rigidity retaining portion, overall deformation portion, and front deformation portion, designed to absorb impact energy in stages through controlled deformation mechanisms.

Benefits of technology

The structure efficiently absorbs impact energy by initiating simultaneous front and overall deformations, allowing for rapid initial absorption followed by prolonged gradual absorption, enhancing occupant protection.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To absorb energy of an impact load input from the vehicle front gradually.SOLUTION: In a steering support structure 100, a connection member 20 which connects a lateral strength member 10 with a vehicle body panel 1 includes: a rigidity holding part 21 located above a steering column support hanger 30; an entire body deformation part 22; and a front deformation part 23. The entire body deformation part 22 forms a structure which goes around via a front connection part 221, a first rear connection part 22a, and a second rear connection part 22b and is open in a vehicle width direction. The front deformation part 23 forms a structure which is open in the vehicle width direction by a main vertical member 231 and a portion, which is located at the vehicle front relative to a main vertical member 231, of the entire deformation part 22. A portion at the vehicle lower side of the entire deformation part 22 bends at the first rear connection part 22a. The front deformation part 23 has a fragile part 232 at an extension part 222c linearly extending in a vehicle fore and aft direction between the front connection part 221 and an upper end of the main vertical member 231.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a steering support structure that is provided in the upper front portion of a vehicle interior and that supports a steering column and the like. [Background technology]

[0002] Conventionally, a cylindrical lateral strength member for supporting a steering column or the like has extended in the vehicle width direction behind a body panel such as a dash panel at the front of the vehicle. In a steering support structure (also called a steering support member) including the lateral strength member, a steering column support hanger extends from the lateral strength member toward the front of the vehicle, and the steering column is supported via the steering column support hanger. A connecting member is provided between the lateral strength member and the body panel, and the lateral strength member and the body panel are connected via the connecting member.

[0003] One example of a steering support structure is the rigid support structure disclosed in Patent Document 1. The rigid support structure includes a vehicle body strength member extending in the vehicle width direction behind the vehicle front wall of the vehicle cabin, and a rigid support member connecting the vehicle front wall and the vehicle body strength member, and a deformation starting point formed by a notch is provided in an upper reinforcing flange portion of the rigid support member. When an impact load is input from the front of the vehicle, the rigid support member bends and deforms starting from the deformation starting point, thereby absorbing the energy of the impact load. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2014-125140 Summary of the Invention [Problem to be solved by the invention]

[0005] In order to improve the protection performance for occupants in the vehicle cabin, it may be necessary to absorb the energy of an impact load input from the front of the vehicle gradually (i.e., in stages). At least in this respect, there is room for improvement in the rigid support structure of Patent Document 1.

[0006] SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide a steering support structure that can gradually absorb the energy of an impact load input from the front of the vehicle. [Means for solving the problem]

[0007] To achieve the above object, one aspect of the present invention provides a steering support structure including a lateral strength member extending in the vehicle width direction behind a body panel on the front side of the vehicle, a connecting member connecting the lateral strength member to the body panel, and a steering column support hanger extending from the lateral strength member to the front of the vehicle below the connecting member. In this steering support structure, the connecting member includes a rigidity retaining portion, an overall deformation portion, and a front deformation portion. The rigidity retaining portion extends from the lateral strength member to the front of the vehicle and is located above the steering column support hanger. The overall deformation portion has a front connection portion connected to the body panel, a first rear connection portion connected to the steering column support hanger, and a second rear connection portion connected to the rigidity retaining portion, and forms a structure that runs around via the front connection portion, the first rear connection portion, and the second rear connection portion and is open in the vehicle width direction. The front deformation portion has a main vertical member extending in the vehicle vertical direction inside the overall deformation portion, and the main vertical member and a portion of the overall deformation portion forward of the main vertical member form a structure that is open in the vehicle width direction. The portion of the overall deformation portion that is upper than the vehicle and that constitutes part of the front deformation portion extends linearly in the vehicle longitudinal direction, and the portion of the overall deformation portion that is lower than the vehicle extends in a bent shape at the first rear connection portion, and the main vertical member extends upward from a predetermined position between the front connection portion and the first rear connection portion at the overall deformation portion. The front deformation portion has a weakened portion in an extension that extends linearly in the vehicle longitudinal direction between the front connection portion and an upper end of the main vertical member. [Effects of the Invention]

[0008] In the steering support structure according to the above aspect, both the overall deformation portion and the front deformation portion are structures that open in the vehicle width direction. Therefore, each deformation portion can be easily formed so that (1) it has sufficient rigidity under normal conditions, and (2) it has strength that allows deformation in the direction of the impact load when the impact load is applied to the front connection portion from the front of the vehicle toward the rear of the vehicle. Furthermore, the upper portion of the overall deformation portion that constitutes part of the front deformation portion extends linearly in the vehicle fore-and-aft direction, while the lower portion of the overall deformation portion extends in a bent shape at the first rear connection portion, so that the portion between the front connection portion and the first rear connection portion slopes downward toward the rear of the vehicle. Therefore, when an impact load is applied to the front connection portion, bending deformation is induced in the overall deformation portion, mainly originating from the first rear connection portion, while the overall deformation portion is firmly supported from the rear of the vehicle by the steering column support hanger and the rigidity retaining portion. As a result, the overall deformation portion is structured to be deformable overall so that the front connection portion moves upward and rearward of the vehicle when an impact load is input. On the other hand, in the front deformation portion, the weak portion is provided in the extension portion that extends linearly in the fore-and-aft direction of the vehicle to which the impact load is easily transmitted, so that deformation originating mainly from the weak portion is induced more actively than bending deformation of the first rear connection portion.

[0009] Here, the impact load input to the front connection portion is transmitted to the weak portion and the first rear connection portion, respectively. As a result, in the initial stage after the impact load is input, deformation of the front deformation portion (hereinafter referred to as front deformation) originating from the weak portion and overall deformation of the overall deformation portion (hereinafter referred to as overall deformation) originating from the first rear connection portion occur simultaneously, and the front deformation and overall deformation occur in a superimposed manner in the front deformation portion. However, due to a mechanical characteristic in which force flows all at once to a weak point where deformation has progressed (i.e., concentrated load occurs), once the front deformation progresses to a certain extent, the force inducing the overall deformation also flows to the weak portion, and most of the impact load input to the front connection portion flows all at once to the weak portion. As a result, overall deformation is suppressed and almost does not occur, and front deformation becomes dominant. Because the connecting member deforms through the above-described deformation process, in the early stage after the impact load is input, part of the energy of the input impact load is consumed as energy for both the front deformation and the overall deformation and is rapidly absorbed, and thereafter, when the front deformation has progressed to a certain extent, most of the remaining energy of the impact load is consumed as energy for the front deformation and is slowly absorbed. In this way, the deformation of the front deformation portion (front deformation) continues longer than the deformation of the overall deformation portion (overall deformation), and due to the difference in the duration of each deformation, the energy of the input impact load is absorbed gradually over time, i.e., in stages.

[0010] In this way, the present invention can provide a steering support structure that can gradually absorb the energy of an impact load input from the front of the vehicle. [Brief explanation of the drawings]

[0011] [Figure 1] 1 is a side view of a main part including a connecting member of a steering support structure according to an embodiment of the present invention, viewed from the vehicle width direction. [Figure 2] FIG. 4 is a perspective view of the main part as viewed from another angle. [Figure 3] FIG. 4 is a perspective view of the main part as viewed from another angle. [Figure 4] FIG. [Figure 5] 5A to 5C are conceptual diagrams for explaining a deformation process of the connecting member. [Figure 6] 5A and 5B are conceptual diagrams for explaining a process of absorbing energy of an impact load input to the connecting member. DETAILED DESCRIPTION OF THE INVENTION

[0012] Hereinafter, an embodiment of the present invention will be described with reference to the accompanying drawings. Fig. 1 to Fig. 4 are diagrams for explaining a steering support structure 100 according to one embodiment of the present invention, in which Fig. 1 is a side view of the main parts as seen from the vehicle width direction, Fig. 2 is a top view of the main parts as seen from above the vehicle, Fig. 3 is a perspective view of the main parts as seen from the front of the vehicle, and Fig. 4 is a perspective view of the main parts as seen from a different angle. Note that Fig. 1 is also a cross-sectional view taken along line AA shown in Fig. 3. In the drawings, the arrow Fr direction indicates the front of the vehicle in the vehicle longitudinal direction, the arrow O direction indicates the outside of the vehicle in the vehicle width direction, and the arrow U direction indicates the top of the vehicle in the vehicle vertical direction.

[0013] [Outline of steering support structure] As shown in Figures 1 and 2, the cabin of a vehicle such as an automobile is partitioned by a body panel 1 such as a dash panel at the front side of the vehicle. A steering support structure 100 is provided behind the body panel 1 at the front side of the vehicle. The steering support structure 100 is disposed inside an instrument panel (not shown) and supports the instrument panel, as well as a steering column (not shown) on the driver's seat side.

[0014] 1 to 4, the steering support structure 100 includes a lateral strength member 10, a connecting member 20, and a steering column support hanger 30. The connecting member 20 and the steering column support hanger 30 are provided on the driver's seat side. The steering support structure 100 is also called a steering support member.

[0015] The lateral strength member 10 is a member that extends in the vehicle width direction behind the body panel 1. The lateral strength member 10 is made of, for example, a cylindrical metal pipe that extends across the entire vehicle width direction. Both ends of the lateral strength member 10 in the vehicle width direction are fixed to dash side panels that constitute the vehicle body sides (not shown).

[0016] A reinforcing member 12 made of a rectangular tubular metal pipe shorter than the lateral strength member 10 extends in the vehicle width direction at the rear of the driver's seat side (i.e., the steering column side, not shown) of the lateral strength member 10. Both ends of the reinforcing member 12 in the vehicle width direction are fixed to rear brackets 13 (see FIG. 3) that protrude from the lateral strength member 10 toward the rear of the vehicle. In FIG. 3, one rear bracket 13 is shown, while the other rear bracket 13 is located outside the illustrated range and is not shown. The rear bracket 13 extends in an upwardly sloping direction toward the rear of the vehicle. The rectangular tubular reinforcing member 12 is inclined to match the rear bracket 13, as shown in FIG. 3. Two lower brackets 14, 14 are arranged below the lateral strength member 10 and the reinforcing member 12, spaced apart from each other in the vehicle width direction, and each lower bracket 14 connects the lateral strength member 10 and the reinforcing member 12.

[0017] The connecting member 20 is a member that connects the transverse strength member 10 to the vehicle body panel 1 and is made of steel plate. The connecting member 20 is a member formed, for example, by welding a plurality of press-molded parts together. The connecting member 20 protrudes from the upper part of the transverse strength member 10 toward the front of the vehicle. Specifically, the rear end of the connecting member 20 in the vehicle longitudinal direction is fixed (connected) to the transverse strength member 10 and the reinforcing member 12 by welding, and the front end of the connecting member 20 in the vehicle longitudinal direction is fastened to the vehicle body panel 1 by appropriate fasteners 15 (here, bolts). In this way, the connecting member 20 connects the transverse strength member 10 and the reinforcing member 12 to the vehicle body panel 1. The connecting member 20 is also fixed (connected) to a steering column support hanger 30 by welding, as described below. The detailed structure of the connecting member 20 will be described later.

[0018] The steering column support hanger 30 is a member that extends from the transverse strength member 10 toward the front of the vehicle below the connecting member 20. The steering column is disposed below the steering column support hanger 30. The steering column support hanger 30 is a highly rigid member that mainly supports (holds) the steering column from above, and is formed so that it can firmly hold members including the steering column and has sufficient rigidity to withstand collision loads that may be input from the front of the vehicle.

[0019] The steering column support hanger 30 is made of, for example, a steel plate and has a hanger main body 31 with a U-shaped cross section that opens toward the bottom of the vehicle, and a hanger front wall 32 that closes the opening of the hanger main body 31 at the front of the vehicle. The hanger front wall 32 has an inclined surface 32a that connects to a lower rear corner of the connecting member 20 (a first rear connection portion 22a described below) and supports the rear corner. In other words, the steering column support hanger 30 also supports the connecting member 20. The rear end of the steering column support hanger 30 in the vehicle fore-and-aft direction is welded to the transverse strength member 10, and the front end of the steering column support hanger 30 in the vehicle fore-and-aft direction (hanger front wall 32) is welded to the lower rear corner (first rear connection portion 22a) of the connecting member 20. The steering column support hanger 30 extends in a direction that slopes downward from the front of the transverse strength member 10 toward the front of the vehicle. When viewed in the vehicle width direction, the lateral strength member 10 is located between the reinforcing member 12 and the rear bracket 13 and the steering column support hanger 30.

[0020] [Details of the rear body structure] Here, in order to improve the protection performance for occupants in the vehicle cabin, when absorbing the energy of an impact load that may be input from the front of the vehicle, it may be necessary to absorb this energy gradually over time (i.e., in stages). In response to this, the steering support structure 100 according to this embodiment has the following structure.

[0021] As shown in Fig. 1, the connecting member 20 has a rigidity-retaining portion 21, an overall deformation portion 22, and a front deformation portion 23, mainly from the perspective of deformation due to an impact load. In Fig. 1, the extent of the overall deformation portion 22 is indicated by a two-dot chain line, and the extent of the front deformation portion 23 is indicated by a one-dot chain line. The connecting member 20 is formed by welding a plurality of molded parts together, and, when categorized by the perspective of the units of the molded parts before joining, is a member comprising a tip patch 20A to which an impact load directed from the front of the vehicle (body panel 1) toward the rear of the vehicle is input, an upper reinforcement 20B that constitutes the upper portion of the connecting member 20 and extends from the tip patch 20A to the lateral strength member 10 and the reinforcing member 12, and a lower reinforcement 20C that constitutes the lower portion of the connecting member 20. The following mainly describes the elements classified from the perspective of deformation.

[0022] The rigidity retaining portion 21 extends from the transverse strength member 10 toward the front of the vehicle and is located above the steering column support hanger 30. The rigidity retaining portion 21 is formed to have sufficient rigidity against a collision load that may be input from the front of the vehicle, and constitutes the rear end portion of the connecting member 20 that is welded to the transverse strength member 10 and the reinforcing member 12.

[0023] The rigidity retaining portion 21 has, for example, a flat plate portion 21a and flange portions 21b extending downward from both ends of the plate portion 21a in the vehicle width direction. The plate portion 21a is formed to be wider in the vehicle width direction toward the rear of the vehicle, and the flange portions 21b are formed to be wider in the vehicle up-down direction toward the rear of the vehicle. The plate portion 21a extends from the upper surface of the reinforcing member 12 toward the front of the vehicle, sloping upward.

[0024] The overall deformation portion 22 has a front connection portion 221 connected to the vehicle body panel 1, a first rear connection portion 22a connected to the steering column support hanger 30, and a second rear connection portion 22b connected to the rigidity retaining portion 21. The overall deformation portion 22 forms a structure that runs around via the front connection portion 221, the first rear connection portion 22a, and the second rear connection portion 22b and is open in the vehicle width direction. The overall deformation portion 22 constitutes the majority of the connecting member 20 between the vehicle body panel 1, the rigidity retaining portion 21, and the steering column support hanger 30. The rigidity retaining portion 21 and the steering column support hanger 30, which are capable of withstanding impact loads, are located behind the overall deformation portion 22, and the rear end of the overall deformation portion 20 is supported by the rigidity retaining portion 21 and the steering column support hanger 30.

[0025] The front deformation section 23 has a main vertical member 231 that extends in the vehicle up-down direction inside the overall deformation section 22, and forms a structure that is open in the vehicle width direction by the main vertical member 231 and a portion of the overall deformation section 22 that is further forward of the main vertical member 231. In other words, the front deformation section 23 forms a front portion of the connecting member 20 that includes the front connection section 221, and is formed by a front portion of the overall deformation section 22 and the main vertical member 231.

[0026] Thus, in the steering support structure 100, the front connection portion 221, the rigidity retaining portion 21, and the steering column support hanger 30 are formed with relatively high rigidity as deformation suppression portions (non-deformation portions). Between the rigidity retaining portion 21 and the steering column support hanger 30 and the front connection portion 221, there is disposed a deformation portion (the entire deformation portion 22 including the front deformation portion 23) which has sufficient rigidity under normal circumstances but is prone to deformation when an impact load is input.

[0027] Here, the portion of the overall deformation portion 22 that is above the vehicle (222) and that constitutes part of the front deformation portion 23 extends linearly in the longitudinal direction of the vehicle, and the portion (223) below the vehicle of the overall deformation portion 22 extends in a shape that is bent convexly downward of the vehicle at the first rear connection portion 22a. Hereinafter, the portion above the vehicle of the overall deformation portion 22 will be referred to as the upper reinforcement body 222 as appropriate, and the portion below the vehicle of the overall deformation portion 22 will be referred to as the lower reinforcement body 223 as appropriate.

[0028] In the overall deformation portion 22, the front connection portion 221 is formed, for example, in a box shape that opens toward the rear of the vehicle, and constitutes the tip patch 20A into which an impact load is input. The front connection portion 221 has a flat contact surface 221a that contacts the vehicle body panel 1. The contact surface 221a extends in the vehicle vertical direction and the vehicle width direction, and when a collision load is input from the front of the vehicle toward the rear of the vehicle, the collision load is input approximately perpendicular to the contact surface 221a of the front connection portion 221. A threaded portion into which a fastener 15 made of a bolt is threaded is formed in the contact surface 221a of the front connection portion 221, and the vehicle body panel 1 has an opening through which the fastener 15 is inserted. With the fastener 15 threaded into the front connection portion 221, the body panel 1 is clamped between the head of the fastener 15 and the abutment surface 221a of the front connection portion 221, and the front connection portion 221 is fastened and fixed (connected) to the body panel 1 by the fastener 15.

[0029] The upper reinforcement body 222 extends from the front connection portion 221 to the front end of the rigidity retention portion 21, and constitutes the upper reinforcement 20B together with the rigidity retention portion 21. The portion of the upper reinforcement body 222 that constitutes a part of the front deformation portion 23 extends linearly in the longitudinal direction of the vehicle. The second rear connection portion 22b that is connected to the rigidity retention portion 21 in the entire deformation portion 22 is the rear end portion of the upper reinforcement body 222.

[0030] The upper reinforcement body 222 is formed by press molding integrally with the rigidity retaining portion 21, and extends continuously from the rigidity retaining portion 21 in the vehicle longitudinal direction. The front end of the upper reinforcement body 222 is welded to the inner surface of the upper wall of the front connecting portion 221 while being incorporated into the front connecting portion 221. The upper reinforcement body 222 has, for example, a flat upper plate portion 222a and upper flange portions 222b extending downward from both ends of the upper plate portion 222a in the vehicle width direction. The upper plate portion 222a is formed with a predetermined width that is smaller in the vehicle width direction than the plate portion 21a of the rigidity retaining portion 21, and extends continuously from the plate portion 21a, and the upper flange portion 222b extends continuously from the flange portion 21b of the rigidity retaining portion 21.

[0031] The lower reinforcement body 223 is located below the upper reinforcement body 222, extends from the front connection portion 221 via the first rear connection portion 22a to the second rear connection portion 22b, and constitutes a part of the lower reinforcement 20C. The lower reinforcement body 223 extends in a shape that is bent convexly downward of the vehicle at the first rear connection portion 22a. In other words, the first rear connection portion 22a, which is connected to the steering column support hanger 30 in the overall deformation portion 22, is a corner portion of the lower reinforcement body 223 that is bent convexly downward of the vehicle.

[0032] The front end of the lower reinforcement body 223 is welded to the inner surface of the lower wall of the front connection portion 221 while it is incorporated into the front connection portion 221. The rear end of the lower reinforcement body 223 is welded to the rear end portion (second rear connection portion 22b) of the upper reinforcement body 222. The lower reinforcement body 223 has, for example, a flat lower plate portion 223a and lower flange portions 223b extending upward from both ends of the lower plate portion 223a in the vehicle width direction. The portion of the lower flange portion 223b that is closer to the second rear connection portion 22b than the first rear connection portion 22a is formed to become wider in the vehicle up-down direction as it approaches the second rear connection portion 22b.

[0033] In the front deformation portion 23, the main vertical member 231 extends upward from a predetermined position between the front connection portion 221 and the first rear connection portion 22a in the entire deformation portion 22. Specifically, the main vertical member 231 is formed integrally with the lower reinforcement body 223. The main vertical members 231 extend upward from predetermined positions on the front side of the first rear connection portion 22a of each of the lower flange portions 223b on both sides in the vehicle width direction of the lower reinforcement body 223, and are welded to the upper flange portions 222b of the upper reinforcement body 222.

[0034] The front deformation portion 23 has a weakened portion 232 in an extension portion 222c that extends linearly in the vehicle front-rear direction between the front connection portion 221 and the upper end of the main vertical member 231. The extension portion 222c is a front portion of the upper reinforcement body 222 (in other words, a front portion of a portion of the overall deformation portion 22 that is above the vehicle).

[0035] In this embodiment, the fragile portion 232 is formed in an arc shape by curving a middle portion of the extension portion 222c into an arc shape recessed downward of the vehicle. That is, the fragile portion 232 is formed by smoothly curving the upper plate portion 222a downward into an arc shape at a predetermined position of the extension portion 222c in the vehicle front-rear direction when viewed in the vehicle width direction.

[0036] In this embodiment, the connecting member 20 has at least one sub-vertical member 233 extending in the vehicle up-down direction on the inside of the overall deformation portion 22 and rearward of the main vertical member 231. Here, one sub-vertical member 233 is provided on each side in the vehicle width direction. Each sub-vertical member 233 is integrally formed with the lower reinforcement body 223. Each sub-vertical member 233 extends upward from a predetermined position on the lower flange portion 223b between the lower end of the main vertical member 231 and the first rear connection portion 22a, and is welded to the upper flange portion 222b. The upper end of the sub-vertical member 233 is connected to the upper end of the main vertical member 231. By providing the main vertical member 231 and the sub-vertical member 233 so as to extend on the inside of the overall deformation portion 22 as viewed in the vehicle width direction, a first opening V1, a second opening V2, and a third opening V3 are formed in this order from the front side of the vehicle as viewed in the vehicle width direction. In the connecting member 20 configured as above, the lower reinforcement 20C is configured by the lower reinforcement body 223, the main vertical member 231, and the sub-vertical member 233. Furthermore, a through hole 223c is opened in at least a portion below the first opening V1 in the lower plate portion 223a (see FIG. 4).

[0037] The opening area of ​​the opening (first opening V1) formed by providing the main vertical member 231 in the front deformation section 23 is set larger than the opening area of ​​each of the openings (second opening V2 and third opening V3) formed further rearward of the vehicle than the opening (first opening V1) in the front deformation section 23 by providing the secondary vertical member 233 in the overall deformation section 22.

[0038] In this embodiment, the first angle θ1, which is the angle between the main longitudinal member 231 and the extension portion 222c, is set to an acute angle. Specifically, the first angle θ1 is the angle between the main longitudinal member 231 and the upper plate portion 222a of the extension portion 222c when viewed from the vehicle width direction. A connection point (joint point) P between the main longitudinal member 231 and the extension portion 222c is set near the rear end of the fragile portion 232. The connection point P has a width in the vehicle front-rear direction.

[0039] In the present embodiment, the lower reinforcement body 223, which is the portion of the overall deformation portion 22 that is located below the vehicle, is bent at an obtuse angle at the first rear connection portion 22a. Specifically, the lower plate portion 223a of the lower reinforcement body 223 is bent at an obtuse angle at the first rear connection portion 22a when viewed from the vehicle width direction, and a second angle θ2, which is the angle formed between a portion of the lower plate portion 223a that is further forward of the vehicle than the first rear connection portion 22a and a portion of the lower plate portion 223a that is further rearward of the vehicle than the first rear connection portion 22a, is set to an obtuse angle.

[0040] In this embodiment, the upper reinforcement body 222, which is the portion of the overall deformation portion 22 located above the vehicle, extends linearly in the longitudinal direction of the vehicle from the front connection portion 221 to a midpoint M corresponding to directly above the first rear connection portion 22a, and is inclined downward from the midpoint M to the rigidity retention portion 21 toward the rear of the vehicle. In other words, the portion of the upper reinforcement body 222 rearward of the extension portion 222c extends linearly toward the rear of the vehicle to the midpoint M. This midpoint M is located rearward of the vehicle than the sub-vertical member 233. The portion of the upper plate portion 222a of the upper reinforcement body 222 rearward of the midpoint M is inclined in the same inclination direction as the plate portion 21a of the rigidity retention portion 21.

[0041] Here, in order to hold the steering column and the like and to protect occupants in the vehicle cabin, it is ideal to absorb all of the energy of an impact load that may be input from the front of the vehicle through deformation of parts further forward of the steering support structure 100. However, there are cases where the deformation of the parts further forward of the vehicle is not able to absorb all of the energy of the impact load, and the vehicle body panel 1 (dash panel, etc.) is pushed toward the rear of the vehicle. In this case, as will be described below, the steering support structure 100 suppresses the impact transmitted to the steering column and lateral strength member 10 by deforming the deforming portion (i.e., the entire deforming portion 22 including the front deforming portion 23).

[0042] Next, the deformation process of the connecting member 20 and the process of absorbing the energy of the impact load when a collision load is input to the connecting member 20 of the steering support structure 100 according to this embodiment from the front of the vehicle will be described with reference to Figures 1, 5, 6, etc. Figure 5 is a conceptual diagram for explaining the deformation process of the connecting member 20, and Figure 6 is a conceptual diagram for explaining the process of absorbing the energy of the impact load input to the connecting member 20.

[0043] In Fig. 5, a solid line indicates the contour D1 of the connecting member 20 in a normal state before the impact load is applied, a dashed line indicates the contour D2 of the deformed connecting member 20 in the initial stage after the impact load is applied, and a dashed line indicates the contour D3 of the connecting member 20 that has further deformed after the initial stage. Also in Fig. 6, the horizontal axis indicates the elapsed time t from the time the impact load is applied, and the vertical axis indicates the amount of energy E absorbed (decreased amount) thereafter, with E0 being the input energy at the time the impact load is applied (t=0). In other words, the lower the position on the vertical axis, the greater the amount of impact energy absorbed. Also in Fig. 6, a solid line indicates a curve C showing the energy absorption characteristics of the connecting member 20, and a dashed line indicates a curve C' showing an example of the energy absorption characteristics of a conventional connecting member.

[0044] In the steering support structure 100, the overall deformation portion 22 and the front deformation portion 23 both form structures that are open in the vehicle width direction, so that (1) under normal circumstances, both the overall deformation portion 22 and the front deformation portion 23 ensure sufficient rigidity, while (2) when an impact load is input to the front connection portion 221 of the connecting member 20, both the overall deformation portion 22 and the front deformation portion 23 allow deformation in the input direction of the impact load. Furthermore, a portion of the overall deformation portion 22 above the vehicle that constitutes part of the front deformation portion 23 extends linearly in the fore-and-aft direction of the vehicle, but the portion of the overall deformation portion 22 below the vehicle (the upper reinforcement main body 222) extends in a bent shape at the first rear connection portion 22a, so that the portion of the overall deformation portion 22 (the lower reinforcement main body 223) between the front connection portion 221 and the first rear connection portion 22a is inclined downward toward the rear of the vehicle.

[0045] Therefore, when an impact load is input to the front connection portion 221, as shown by dashed line D1 in Fig. 5, bending deformation is induced in the overall deformation portion 22, mainly originating from the first rear connection portion 22a, while the overall deformation portion 22 is firmly supported from the rear of the vehicle by the steering column support hanger 30 and the rigidity retaining portion 21. As a result, the overall deformation portion 22 is structured to be able to deform overall when an impact load is input, such that the front connection portion 221 moves upward and rearward of the vehicle. On the other hand, in the front deformation portion 23, the weak portion 232 is provided in the extension portion 222c that extends linearly in the fore-and-aft direction of the vehicle, to which the impact load is easily transmitted, and therefore deformation mainly originating from the weak portion 232 is induced more actively than bending deformation in the first rear connection portion 22a.

[0046] Here, the impact load input to the front connection portion 221 is transmitted to the weak portion 232 and the first rear connection portion 22a, respectively. As a result, in the initial stage after the impact load is input (the range of t=0 to t1 in FIG. 6), as shown by contour D2 in FIG. 5, deformation of the front deformation portion 23 originating from the weak portion 232 (hereinafter referred to as front deformation as appropriate) and overall deformation of the overall deformation portion 22 originating from the first rear connection portion 22a (hereinafter referred to as overall deformation as appropriate) occur simultaneously, and in the front deformation portion 23, the front deformation and overall deformation occur in an overlapping manner.

[0047] However, due to the mechanical property that forces flow all at once to weak points where deformation has progressed (i.e., concentrated load occurs), once the front deformation has progressed to a certain extent, the force that had been inducing the overall deformation also flows to the weak part 232, and most of the impact load input to the front connection part 221 flows all at once to the weak part 232. As a result, from this point onward (the range of t=t1 to t2 in FIG. 6), the overall deformation is suppressed and hardly occurs at all, and the front deformation becomes dominant, as shown by the contour D3 in FIG. 5.

[0048] The connecting member 20 deforms through the above-described deformation process. That is, in the initial stage (t=0 to t1) after the impact load is input, part of the energy E0 of the input impact load is consumed (converted) into energy for both the forward deformation and the overall deformation, as shown by the outline D2 in FIG. 5, and is rapidly absorbed as shown in FIG. 6. After that (t>t1), when the forward deformation has progressed to a certain extent, most of the remaining energy of the impact load is consumed (converted) into energy for the forward deformation, as shown by the outline D3 in FIG. 5, and is slowly absorbed as shown in FIG. 6. In this way, the deformation of the forward deformation portion 23 (forward deformation) continues longer than the deformation of the overall deformation portion 22 (overall deformation) (t=0 to t2). Due to the difference in the duration of the forward deformation and the overall deformation, the energy E0 of the input impact load is gradually (stepwise) absorbed over time. 6, in the initial stage (t=0 to t1), curve C, which indicates the energy absorption characteristics, shows a steep downward slope as time t passes, indicating that the connecting member 20 is rapidly absorbing the energy E. After that (t>t1), curve C transitions to a gentle slope as time t passes, and the energy E becomes zero at time t2, indicating that the connecting member 20 is slowly absorbing (gradually reducing) the energy E over time. In other words, compared to the conventional curve C', curve C transitions slowly from the time when the impact load is input (t=0) to the landing point (t=t2) where the energy E becomes zero, and therefore the load on the occupant is reduced in the steering support structure 100.

[0049] In this way, the steering support structure 100 can gradually absorb the energy of the impact load input from the front of the vehicle.

[0050] In this embodiment, the weak portion 232 is formed into an arc shape by curving a middle portion of the extension portion 222c into an arc shape concave downward toward the vehicle. This effectively induces forward deformation in the front deformation portion 23 starting from the weak portion 232, thereby effectively inducing stepwise deformation. Furthermore, by forming the weak portion 232 into an arc shape, significant stress concentration that can occur in a conventional notched weak portion can be avoided. Therefore, cracks can be effectively prevented from occurring in the weak portion 232 due to strong excitation forces that can occur when traveling on rough roads or other road surfaces. Furthermore, for example, if the weak portion were formed by a V-shaped horizontal bead extending in the vehicle width direction, cracks could occur during molding of the flange portion of the upper reinforcement 20B, making molding difficult. In contrast, the arc-shaped weak portion 232 can be molded without concern for cracks. Also, by adjusting the arc diameter of the arc-shaped fragile portion 232, it is easier to control the amount of deformation of the front deformation and the formability compared to, for example, a fragile portion made of a V-shaped horizontal bead. Furthermore, by adjusting the arc diameter of the fragile portion 232, it is also possible to control the duration of deformation of only the front deformation (deformation in the range of t>t1 in FIG. 6).

[0051] In this embodiment, the opening area of ​​the opening (first opening V1) of the front deformation portion 23 is set larger than the opening area of ​​each of the openings (second opening V2 and third opening V3) that are further rearward of the vehicle than the first opening V1 in the overall deformation portion 22. This reduces the rigidity of the front deformation portion 23 compared to the rigidity of the portion of the overall deformation portion 22 rearward of the front deformation portion 23, making it possible to effectively induce forward deformation in the front deformation portion 23.

[0052] In this embodiment, the first angle θ1, which is the angle between the main vertical member 231 and the extension portion 222c, is set to an acute angle, and the connection point (joint point) P between the main vertical member 231 and the extension portion 222c is set near the rear end of the fragile portion 232. This makes it easier for an impact load to act on the fragile portion 232 while effectively suppressing the occurrence of cracks, and can encourage further promotion of front deformation in the front deformation portion 232.

[0053] If the lower reinforcement body 223 of the overall deformation portion 22 were bent at an acute angle at the first rear connection portion 22a, when an impact load was applied from the front of the vehicle, the overall deformation portion 22 would immediately transition to overall deformation due to bending deformation with the first rear connection portion 22a as the starting point (axis of rotation), resulting in a reduced absorption of the energy of the impact load. In contrast, in this embodiment, the lower reinforcement body 223 of the overall deformation portion 22 is bent at an obtuse angle at the first rear connection portion 22a. As a result, when an impact load is applied from the front of the vehicle, the lower reinforcement body 223 is stretched to a certain extent in the front-rear direction to receive the impact load, and then gradually transitions to overall deformation due to bending deformation, thereby increasing the absorption of the energy of the impact load. Furthermore, providing the lower reinforcement 20C with the first rear connection portion 22a that forms an obtuse angle facilitates the molding of the main vertical member 231, the sub-vertical member 233, and the lower flange portion 223b.

[0054] In this embodiment, the upper reinforcement body 222, which is the portion of the overall deformation portion 22 located above the vehicle, extends linearly in the vehicle longitudinal direction from the front connection portion 221 to a midpoint M corresponding to directly above the first rear connection portion 22a, and is inclined downward from the midpoint M to the rigidity retaining portion 21 toward the rear of the vehicle. As a result, when an impact load is input from the front of the vehicle, the front portion of the upper reinforcement body 222 that extends linearly in the vehicle longitudinal direction braces itself to some extent in the longitudinal direction to receive the impact load, while the inclined portion rearward of the midpoint M effectively induces overall deformation. As a result, for example, it is possible to prevent overall deformation from completely stopping even after the initial stage after the input of the impact load has passed (t>t1), and as a result, the amount of impact energy absorbed is increased.

[0055] Furthermore, since the through-hole 223c is opened in the portion below the first opening V1 in the lower plate portion 223a of the lower reinforcement body 223 (see FIG. 4), it is possible to effectively induce overall deformation and front deformation.

[0056] Although the embodiments of the present invention have been described above, the present invention is not limited to the above-described embodiments, and modifications and changes can be made based on the technical concept of the present invention.

[0057] For example, although only one sub-vertical member 233 is provided on each side in the vehicle width direction, this is not limited to this, and two or more may be provided on each side in the vehicle width direction. Also, although the connecting member 20 is formed by welding together three molded parts, namely the tip patch 20A, the upper reinforcement 20B, and the lower reinforcement 20C, the number of molded parts to be welded together is not limited to this, and the connecting member 20 may be divided into an appropriate number of parts. [Explanation of symbols]

[0058] 1...body panel, 10...lateral strength member, 20...connecting member, 21...rigidity retention portion, 22...overall deformation portion, 22a...first rear connection portion, 22b...second rear connection portion, 221...front connection portion, 222c...extension portion, 23...front deformation portion, 231...main vertical member, 232...weak portion, 233...sub-vertical member, 30...steering column support hanger, 100...steering support structure, M...intermediate point, P...connection point, V1...first opening (opening), V2...second opening (opening), V3...third opening (opening)

Claims

1. A steering support structure comprising: a lateral strength member extending in a vehicle width direction behind a body panel on a front side of the vehicle; a connecting member connecting the lateral strength member to the body panel; and a steering column support hanger extending from the lateral strength member to the front of the vehicle below the connecting member, The connecting member is a rigidity retaining portion extending from the transverse strength member toward the front of the vehicle and positioned above the steering column support hanger; an overall deformation portion having a front connection portion connected to the vehicle body panel, a first rear connection portion connected to the steering column support hanger, and a second rear connection portion connected to the rigidity retaining portion, the overall deformation portion forming a structure that runs around the front connection portion, the first rear connection portion, and the second rear connection portion and is open in the vehicle width direction; a front deformation section having a main vertical member extending in the vehicle up-down direction inside the overall deformation section, the main vertical member and a portion of the overall deformation section forward of the main vertical member forming a structure that is open in the vehicle width direction; Including, a portion of the overall deformation portion located below the vehicle extends in a bent shape at the first rear connection portion, a portion of the entire deformation portion above the vehicle that constitutes at least a part of the front deformation portion extends linearly in the front-rear direction of the vehicle, the main longitudinal member extends upward from a predetermined position between the front connection portion and the first rear connection portion in the overall deformation portion, the front deformation portion has a weakened portion in an extension portion that extends linearly in the vehicle front-rear direction between the front connection portion and an upper end of the main longitudinal member, A steering support structure characterized in that the portion of the overall deformation portion above the vehicle extends linearly in the fore-and-aft direction of the vehicle from the front connection portion to an intermediate point corresponding to directly above the first rear connection portion, and slopes downwardly toward the rear of the vehicle from the intermediate point to the rigidity retaining portion.

2. 2. The steering support structure according to claim 1, wherein the weakened portion is formed in an arc shape by curving a middle portion of the extension portion into an arc shape that is concave downward of the vehicle.

3. the connecting member has at least one sub-vertical member extending in the vehicle up-down direction on the inside of the overall deformation portion and rearward of the main vertical member, A steering support structure as described in claim 1 or 2, wherein the opening area of ​​the opening formed by providing the main vertical member in the front deformation portion is set larger than the opening area of ​​each of the openings formed rearward of the opening in the front deformation portion by providing at least one secondary vertical member in the overall deformation portion.

4. The angle between the main vertical member and the extension portion is set to an acute angle, 4. The steering support structure according to claim 1, wherein a connection point between the main longitudinal member and the extension portion is set near a rear end of the weakened portion.

5. 5. The steering support structure according to claim 1, wherein a portion of the overall deformation portion below the vehicle is bent at an obtuse angle at the first rear connection portion.

Citation Information

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