Vehicle Structure
The vehicle structure addresses the challenge of balancing support rigidity and collision absorption by using a support member with independent first and second members and a breaking joint, allowing for controlled buckling of the front side members during frontal collisions.
Patent Information
- Application Number
- JP2023074859
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-04-28
- Publication Date
- 2025-05-21
- Estimated Expiration
- 2043-04-28
AI Technical Summary
Existing vehicle structures face challenges in ensuring support rigidity during normal driving while effectively absorbing collision loads during frontal collisions, as they either compromise support rigidity for better collision absorption or hinder buckling of front side members.
A vehicle structure featuring a support member with independent first and second members, where the first member is fastened to the front of the front side members and the second member is fastened to the rear, with a joint that breaks during a frontal collision, allowing for controlled buckling of the front side members.
This configuration ensures support rigidity during normal driving and allows for effective absorption of collision loads during frontal collisions by controlling the buckling of the front side members, thereby balancing both requirements with a simple and cost-effective design.
Smart Images

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Abstract
Description
[Technical field]
[0001] The present invention relates to a vehicle structure including front side members arranged on the left and right sides of a vehicle, and a support member that bridges the front side members and to which electrical equipment is attached. [Background technology]
[0002] In an electric vehicle, electrical equipment including a motor that is a power source for the electric vehicle is disposed forward of the dash panel. The electrical equipment is usually attached to a support member that bridges the left and right front side members. The left and right front side members are disposed so as to extend in the front-to-rear direction. The support member is a criss-cross shaped member that is formed in series from a front member, a rear member, and left and right connecting members. The front member and the rear member are disposed so as to extend left and right in the front and rear of the vehicle. The left and right connecting members connect the front member and rear member on the left and right sides of the vehicle.
[0003] In the electric vehicle of Patent Document 1, the left and right ends of the front member and the rear member are fastened to the left and right front side members.
[0004] In the electric vehicle of Patent Document 2, the left and right ends of the front member and the rear member are connected to the left and right front side members by brackets. The bracket is a member configured to have a U-shape when viewed from above the vehicle. The bracket has a front fastening portion, a rear fastening portion, and a connecting portion. The front fastening portion, the rear fastening portion, and the connecting portion are configured as a continuous unit. The front fastening portion is arranged so as to overlap both the front side member and the end of the front member, and has an outer region fastened to the front side member and an inner region fastened to the end of the front member. The rear fastening portion is arranged so as to overlap both the front side member and the end of the rear member, and has an outer region fastened to the front side member and an inner region fastened to the end of the rear member. The connecting portion connects the inner region of the front fastening portion and the inner region of the rear fastening portion. A space is provided between the outer region of the front fastening portion and the outer region of the rear fastening portion. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] JP 2011-20602 A [Patent Document 2] JP 2019-51914 A Summary of the Invention [Problem to be solved by the invention]
[0006] Vehicles are designed to absorb most of the collision load during a frontal collision through deformation of the left and right front side members. From the viewpoint of effectively absorbing the collision load, it is desirable to appropriately control the buckling of the left and right front side members. When a collision load is input from the tips of the left and right front side members, the left and right front side members buckle in a bellows-like manner, thereby effectively absorbing the collision load.
[0007] In the electric vehicle of Patent Document 1, the front member, the rear member, and the left and right connecting members are configured as a single unit, and the left and right ends of the front member and the rear member are directly fastened to the left and right front side members. Therefore, the left and right front side members and the support member are firmly fixed. Therefore, in the electric vehicle of Patent Document 1, the support rigidity of the electrical equipment is easily ensured during driving. However, in the electric vehicle of Patent Document 1, the left and right connecting members are easily pushed out during a frontal collision, which may hinder the buckling of the front side members. If the buckling of the front side members is hindered, it becomes difficult to effectively absorb the collision load.
[0008] In the electric vehicle of Patent Document 2, the left and right ends of the front member and rear member are connected to the left and right front side members by brackets, and the brackets are provided with the above-mentioned space. Therefore, in the electric vehicle of Patent Document 2, the above-mentioned tension is unlikely to occur during a frontal collision, and buckling of the front side members is likely to be appropriately controlled. However, in the electric vehicle of Patent Document 2, because the brackets are provided with the above-mentioned space, it is difficult to ensure the support rigidity of the electrical equipment during driving.
[0009] An object of the present invention is to provide a vehicle structure that can ensure support rigidity while the vehicle is running and can effectively absorb a collision load during a frontal collision. [Means for solving the problem]
[0010] (1) A vehicle structure according to one aspect of the present invention includes: Front side members arranged on the left and right sides of the vehicle; A vehicle structure including a support member that is bridged across the front side member and to which an electrical device is attached, The support member is a first member fastened to a front of each of the front side members by a first fastening member; and a second member fastened to the rear of each of the front side members by a second fastening member, The first member and the second member have a joint portion joined to each other between the first fastening member and the second fastening member, In the event of a frontal collision of the vehicle, at least a portion of the joint is broken as the first fastening member is displaced rearward.
[0011] (2) In the vehicle structure described in (1) above, The support member further includes a plate member joined to the first member, The first member is configured in a cylindrical shape, The plate material is disposed so as to face the front of the joint, The second member may have a front end configured to move away from the plate member toward the front. Effect of the Invention
[0012] In the vehicle structure of (1) above, the support member has a first member and a second member that are configured independently of each other, and the first member and the second member are fastened to the front and rear of the left and right front side members, and the first member and the second member are joined to each other. Therefore, the vehicle structure of (1) above can ensure the support rigidity of the electrical equipment when the vehicle is traveling. In addition, the vehicle structure of (1) above is configured so that at least a part of the joint breaks in the event of a frontal collision of the vehicle. The buckling of the left and right front side members is unlikely to be hindered by the detachment of at least a part of the joint. Therefore, the vehicle structure of (1) above can appropriately control the buckling of the left and right front side members in the event of a frontal collision of the vehicle. Therefore, the vehicle structure of (1) above can effectively absorb the collision load in the event of a frontal collision of the vehicle. In the vehicle structure of (1) above, the support rigidity during normal traveling and the appropriate buckling of the left and right front side members in the event of a frontal collision can be achieved with a simple configuration, and therefore the cost can be easily reduced.
[0013] In the vehicle structure of (2) above, the support member is provided with a plate material, so that the plate material is displaced rearward in response to rearward displacement of the first fastening member during a frontal collision. In the vehicle structure of (2) above, the front end of the second member is configured to move away from the plate material as it moves forward, so that the plate material displaced rearward is easily inserted between the second member and the first member. Therefore, in the vehicle structure of (2) above, the joint is easily broken by the plate material. Therefore, in the vehicle structure of (2) above, buckling of the left and right front side members is even less likely to be hindered, and buckling of the left and right front side members can be even more appropriately controlled. [Brief description of the drawings]
[0014] [Figure 1] FIG. 1 is a perspective view showing an outline of a vehicle structure according to an embodiment. [Diagram 2] FIG. 2 is an enlarged perspective view showing a first member and a second member of the vehicle structure according to the embodiment. [Diagram 3] FIG. 3 is an enlarged top view showing a first member and a second member of the vehicle structure according to the embodiment. [Figure 4] FIG. 4 is a right side view showing a first member and a second member of the vehicle structure of the embodiment. [Diagram 5] FIG. 5 is a right side view showing a first member and a second member of the vehicle structure according to the modified example. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0015] An embodiment and a modified example of the vehicle structure of the present invention will be described below with reference to Figs. 1 to 5. The same reference numerals in the figures indicate the same or equivalent parts. The size of the members shown in each drawing is expressed for the purpose of clarifying the description and does not necessarily indicate the actual dimensions. In the drawings, "UP" indicates the upper side of the vehicle equipped with the vehicle structure 1 of the embodiment, "LWR" indicates the lower side, "FR" indicates the front side, "RR" indicates the rear side, "RH" indicates the right side, and "LH" indicates the left side. In the following description, "upper", "lower", "front", "rear", "right" and "left" respectively correspond to "upper", "lower", "front", "rear", "right side" and "left side" of the vehicle.
[0016] <<Embodiment>> [Vehicle structure] A vehicle structure 1 according to an embodiment will be described with reference to Fig. 1 to Fig. 4. As shown in Fig. 1, the vehicle structure 1 according to the embodiment includes front side members 2 arranged on the left and right sides of the vehicle and a support member 3 connecting the front side members 2. Electrical equipment 4 is attached to the support member 3. The vehicle including the vehicle structure 1 is an electrically-driven vehicle such as an electric vehicle or a hybrid vehicle. One of the features of the vehicle structure 1 according to the embodiment is that it satisfies the following requirements (A) and (B).
[0017] (A) The support member 3 has specific first and second members 31 and 35 which are independent of each other, as shown in Fig. 2. The first member 31 is fastened to the front of each of the left and right front side members 2 by first fastening members 51, as shown in Fig. 1. The second member 35 is fastened to the rear of each of the left and right front side members 2 by second fastening members 52. The first member 31 and the second member 35 have a joint 55 joined to each other between the first fastening member 51 and the second fastening member 52, as shown in Figs. 3 and 4. (B) In the event of a frontal collision of the vehicle, at least a part of the joint 55 is configured to break in association with rearward displacement of the first fastening member 51. "At least a part of the joint 55" means at least a partial area of one joint 55 when there is one joint 55, and means at least one joint 55 of the multiple joints 55 when there are multiple joints 55.
[0018] [Front side member] The left and right front side members 2 are members that form the framework of the front part of the vehicle. The left and right front side members 2 extend in the front-rear direction. The left and right front side members 2 are configured generally symmetrically. FIGS. 2 to 4 show the right front side member 2. This point is also the same as in FIG. 5 which will be referred to in a modified example described later.
[0019] Each front side member 2 is provided so as to extend forward from below a dash panel 91. The dash panel 91 is a member that separates a motor room from a vehicle interior. The dash panel 91 is disposed along the left and right sides. In front of the dash panel 91, an apron member 92 and a suspension tower 93 are connected to the upper part of each front side member 2 in this order from the front to the rear.
[0020] Each front side member 2 in this example has a recess 21 as shown in Fig. 3. The recess 21 prevents the front wheels (not shown) from interfering with the front side member 2 during steering. The recess 21 is provided so as to be recessed toward the vehicle interior. The recess 21 in this example is provided in an area of each front side member 2 corresponding to a location where the apron member 92 is connected, in an area between the first fastening member 51 and the second fastening member 52.
[0021] [Support Members] As shown in Fig. 1, the support member 3 is provided with an electrical device 4. The electrical device 4 is, for example, at least one of a motor, a charger, an inverter, a converter, a power distributor, and an ECU (Electronic Control Unit). The electrical device 4 may be an aggregate unit that combines functions such as charging, power conversion, and power distribution. The aggregate unit is, for example, an ESU (Electricity Supply Unit). The electrical device 4 has an aggregate unit 41 and a motor 42.
[0022] 2, the support member 3 of this example has a main body member 30, a first member 31, a second member 35, and a plate material 39. In this example, the main body member 30, the first member 31, the second member 35, and the plate material 39 are configured as members independent of each other. Unlike this example, the main body member 30 and the first member 31 may be configured as a series of members, and this series of members, the second member 35, and the plate material 39 may be configured as members independent of each other.
[0023] (Main body material) 1, the main body member 30 supports the electrical equipment 4. The main body member 30 has a front member 30a, a rear member 30b, and left and right connecting members 30c. In this example, the front member 30a, the rear member 30b, and the left and right connecting members 30c are configured as members independent of each other.
[0024] In this example, the main body member 30 has a rectangular frame shape when viewed from above. The front member 30a is disposed so as to extend left and right in front of the vehicle. The rear member 30b is disposed so as to extend left and right behind the front member 30a. In this example, an aggregation unit 41 is attached to the upper surface of the front member 30a and the upper surface of the rear member 30b by brackets not shown, and a motor 42 is attached to the lower surface of the front member 30a and the lower surface of the rear member 30b by brackets not shown. The left connecting member 30c connects the left end of the front member 30a to the left end of the rear member 30b, and the right connecting member 30c connects the right end of the front member 30a to the right end of the rear member 30b.
[0025] Unlike this example, the left and right connecting members 30c may connect the middle of the front member 30a and the middle of the rear member 30b so that the shape of the main body member 30 viewed from above is a lattice shape. Unlike this example, the front member 30a, the rear member 30b, and the connecting member 30c may be configured as a single member.
[0026] (First member) The first member 31 is fastened to the front of each of the left and right front side members 2 by a first fastening member 51. The number of first fastening members 51 may be one or more. In this example, the number of first fastening members 51 is one. The first member 31 is fastened to an end of the main body member 30 by a third fastening member 53. That is, the first member 31 is connected to the upper surface of the front side member 2 and the upper surface of the main body member 30. The number of third fastening members 53 may be one or more. In this example, the number of third fastening members 53 is three. One third fastening member 53 fastens the first member 31 to the front member 30a, and two third fastening members 53 fasten the first member 31 to the connecting member 30c.
[0027] As shown in FIG. 4, the first member 31 of this example has a first upper plate 32 and a first lower plate 33. When viewed from the right side, the first member 31 of this example has a rectangular tubular shape. The first upper plate 32 is configured in a U-shape that opens downward. The first upper plate 32 has a first ceiling portion 321, a first front wall portion 322, and a first rear wall portion 323. The first ceiling portion 321, the first front wall portion 322, and the first rear wall portion 323 are configured in a continuous manner. The first lower plate 33 is configured in a U-shape that opens upward. The first lower plate 33 has a first bottom portion 331, a first front wall portion 332, and a first rear wall portion 333. The first bottom portion 331, the first front wall portion 332, and the first rear wall portion 333 are configured in a continuous manner. The first ceiling portion 321 and the first bottom portion 331 face each other with a gap therebetween. The first front wall portion 322 and the first front wall portion 332 are overlapped in the front-rear direction, and the overlapping area is joined. The first rear wall portion 323 and the first rear wall portion 333 are overlapped in the front-rear direction, and the overlapping area is joined. The first fastening member 51 penetrates the first ceiling portion 321 and the first bottom portion 331 to fasten the first member 31 and the front side member 2.
[0028] The first upper plate 32 of this example has a notch 321a and an upper curved portion 321b. As shown in FIG. 3, the notch 321a is provided at the rear of the vehicle exterior. The edge of the first ceiling portion 321 formed by the notch 321a is configured in an L-shape. The upper curved portion 321b is provided between the notch 321a and the first fastening member 51 as shown in FIG. 4. The upper curved portion 321b of this example is configured to be convex upward. In this example, the length of the upper curved portion 321b along the vehicle width is longer than the length of the plate material 39 joined to the lower surface of the first ceiling portion 321 along the vehicle width. The first lower plate 33 has a notch 331a and a lower curved portion 331b. The notch 331a is provided at the rear of the vehicle exterior. The edge of the first bottom portion 331 formed by the notch 331a is configured in an L-shape. The lower curved portion 331b is provided between the cutout portion 331a and the first fastening member 51. In this example, the lower curved portion 331b is configured to be convex downward. In this example, the length of the lower curved portion 331b along the vehicle width is longer than the length of the plate material 39 joined to the upper surface of the first bottom portion 331 along the vehicle width.
[0029] (Second member) As shown in FIG. 1, the second member 35 is fastened to the rear of each of the left and right front side members 2 by the second fastening member 52. The number of the second fastening member 52 may be one or more. The number of the second fastening member 52 in this example is one. The second member 35 is disposed rearward of the first fastening member 51. The second member 35 in this example is disposed so as to be exposed from the cutouts 321a and 331a as shown in FIG. 3 and FIG. 4. Unlike the first member 31, the second member 35 is not fastened to the main body member 30. As shown in FIG. 3, the shape of the second member 35 in this example seen from above is a square shape. In FIG. 3, the vertical dashed line along the vehicle width located on the right side of the paper and the horizontal dashed line extending to the right side of the paper from the lower end of the vertical dashed line indicate the edge of the second member 35. The second member 35 is joined to the first member 31 between the first fastening member 51 and the second fastening member 52.
[0030] As shown in FIG. 4, the second member 35 of this example has a second upper plate 36 and a second lower plate 37. The shape of the second member 35 seen from the right side is C-shaped. The second upper plate 36 is configured in an L-shape. The second upper plate 36 has a second ceiling portion 361 and a second rear wall portion 362. The second ceiling portion 361 and the second rear wall portion 362 are configured in a continuous manner. The second lower plate 37 is configured in an L-shape. The second lower plate 37 has a second bottom portion 371 and a second rear wall portion 372. The second bottom portion 371 and the second rear wall portion 372 are configured in a continuous manner. The second ceiling portion 361 and the second bottom portion 371 face each other with a gap therebetween. The second rear wall portion 362 and the second rear wall portion 372 are overlapped in the front-rear direction, and the overlapped areas are joined together.
[0031] As shown in FIG. 3 and FIG. 4, the second ceiling portion 361 of this example is joined by a joint portion 55 around the cutout portion 321a on the lower surface of the first ceiling portion 321. In FIG. 3, the joint portion 55 is indicated by an X mark. In this example, as shown in FIG. 3, the number of joint portions 55 between the second ceiling portion 361 and the first ceiling portion 321 is three. Two joint portions 55 are provided forward of the second fastening member 52, and one joint portion 55 is provided on the vehicle inner side of the second fastening member 52. The number of joint portions 55 between the second ceiling portion 361 and the first ceiling portion 321 is not limited to three. As shown in FIG. 4, the second bottom portion 371 of this example is joined by a joint portion 55 around the cutout portion 331a on the upper surface of the first bottom portion 331. In this example, the number of joints 55 between the second bottom 371 and the first bottom 331 is the same as the number of joints 55 between the second ceiling 361 and the first ceiling 321, but may be different. The location where the joints 55 between the second bottom 371 and the first bottom 331 are provided is the same as the location where the joints 55 between the second ceiling 361 and the first ceiling 321 are provided, but may be different. The joints 55 can be formed by welding such as burnt plug welding (SPW) or spot welding. The second rear wall 362 and the second rear wall 372 are joined to the front surfaces of the first rear wall 323 and the first rear wall 333. The second fastening member 52 fastens the second member 35 and the front side member 2 by penetrating a portion of the second ceiling 361 exposed from the notch 321a and a portion of the second bottom 371 exposed from the notch 331a.
[0032] As shown in FIG. 4, the second ceiling portion 361 of this example has a front end portion 361a configured to move away from the first ceiling portion 321 as it moves forward. The front end portion 361a is provided forward of the joint portion 55. The front end portion 361a of this example is inclined. Unlike this example, the front end portion 361a may be curved. The second bottom portion 371 of this example has a front end portion 371a configured to move away from the first bottom portion 331 as it moves forward. The front end portion 371a is provided forward of the joint portion 55. The front end portion 371a of this example is inclined. Unlike this example, the front end portion 371a may be curved.
[0033] (plate material) At least a part of the joint 55 of the plate material 39 breaks during a frontal collision. The plate material 39 is joined to the first member 31. The number of the plate materials 39 may be one or more. The number of the plate materials 39 in this example is two.
[0034] As shown in FIG. 3, one plate material 39 is joined to the lower surface of the first ceiling portion 321 by joints 56. In this example, the number of joints 56 is four. The four joints 56 are provided between the first fastening member 51 and the upper curved portion 321b, two in the front and two in the rear, and two on the left and right. The number of joints 56 is not limited to four. In this example, the length along the vehicle width of the plate material 39 joined to the lower surface of the first ceiling portion 321 is substantially equal to the length along the vehicle width of the second ceiling portion 361, but may be longer or shorter than the length along the vehicle width of the second ceiling portion 361. The length along the vehicle width of the plate material 39 joined to the lower surface of the first ceiling portion 321 may be equal to or longer than the outer width of the two left and right joints 55. The outer width of the two left and right joints 55 is the length along the vehicle width between the left end of the left joint 55 and the right end of the right joint 55. As shown in FIG. 4, one plate material 39 is joined to the upper surface of the first bottom portion 331 by joints 56. In this example, the number of joints 56 between the plate material 39 and the first bottom portion 331 is the same as the number of joints 56 between the plate material 39 and the first ceiling portion 321, but may be different. In this example, the location where the joints 56 between the plate material 39 and the first bottom portion 331 are provided is the same as the location where the joints 56 between the plate material 39 and the first ceiling portion 321 are provided, but may be different. In this example, the length along the vehicle width of the plate material 39 joined to the upper surface of the first bottom portion 331 is the same as the length along the vehicle width of the plate material 39 joined to the lower surface of the first ceiling portion 321, but may be different.
[0035] (Positional relationship between the front end and the plate material) 4, the front ends 361a, 371a and the rear ends of the plates 39 are disposed rearward of the upper curved portion 321b and the lower curved portion 331b. That is, a portion of each plate 39 overlaps with the upper curved portion 321b and the lower curved portion 331b.
[0036] (Behavior during a frontal collision) During a frontal collision of the vehicle, the load acting on the left and right front side members 2 causes the recesses 21 of the left and right front side members 2 to deform so as to be convex toward the vehicle interior side. The deformation of the recesses 21 toward the vehicle interior side displaces the first fastening member 51 rearward. The rearward displacement of the first fastening member 51 displaces each plate member 39 rearward. The rearwardly displaced plate members 39 break at least a part of the joint portion 55 between the second ceiling portion 361 and the first ceiling portion 321, and break at least a part of the joint portion 55 between the second bottom portion 371 and the first bottom portion 331. As a result, the joint strength between the first member 31 and the second member 35 is weakened, and the vicinity of the second fastening member 52 is deformed so as to be convex toward the vehicle exterior side. These deformations cause the left and right front side members 2 to buckle in an accordion-like manner. In this way, the vehicle structure 1 can appropriately control the buckling of the left and right front side members 2, and can effectively absorb the collision load.
[0037] Since the first ceiling portion 321 has the upper curved portion 321b and the first bottom portion 331 has the lower curved portion 331b, the first ceiling portion 321 and the first bottom portion 331 are easily deformed in accordance with the rearward displacement of the first fastening member 51 as described above during a frontal collision. Therefore, each plate material 39 is easily displaced rearward. In particular, since the length of the upper curved portion 321b and the lower curved portion 331b along the vehicle width is longer than the length of each plate material 39 along the vehicle width, each plate material 39 is easily displaced rearward. Since the length of each plate material 39 along the vehicle width is equal to or greater than the outer width of the two joint portions 55 on the left and right, at least a part of the joint portion 55 is easily broken by each plate material 39.
[0038] In the example of Fig. 4, the rear end of each plate material 39 is closer to the joint 55 between the second ceiling portion 361 and the first ceiling portion 321 and the joint 55 between the second bottom portion 371 and the first bottom portion 331 than in the modified example shown in Fig. 5 described later. Therefore, in the example of Fig. 4, when each plate material 39 is displaced rearward as described above during a frontal collision, each plate material 39 is more likely to break at least a part of the joint 55 between the second ceiling portion 361 and the first ceiling portion 321 and the joint 55 between the second bottom portion 371 and the first bottom portion 331 than in the example of Fig. 5.
[0039] In the vehicle structure 1, the front ends 361a, 371a and the plate materials 39 of the second member 35 are disposed inside the first member 31. Therefore, in the vehicle structure 1, the front ends 361a, 371a and edges of the plate materials 39 are unlikely to come into contact with the hands of an operator during assembly work. Therefore, the vehicle structure 1 has excellent assembly workability.
[0040] <<Variation>> A modified vehicle structure will be described with reference to Fig. 5. The modified vehicle structure differs from vehicle structure 1 of the embodiment in the positions of front end portions 361a, 371a and rear ends of each plate material 39. As shown in Fig. 5, the front end portions 361a, 371a and rear ends of each plate material 39 may be disposed at positions overlapping upper curved portion 321b and lower curved portion 331b.
[0041] In the example of Fig. 5, the distance between the first ceiling portion 321 and the front end portion 361a and the distance between the first bottom portion 331 and the front end portion 371a are larger than those in the example of Fig. 4. Therefore, in the example of Fig. 5, when each plate material 39 is displaced rearward as described above during a frontal collision, the plate material 39 joined to the first ceiling portion 321 is more likely to be inserted between the second ceiling portion 361 and the first ceiling portion 321, and the plate material 39 joined to the first bottom portion 331 is more likely to be inserted between the second bottom portion 371 and the first bottom portion 331, compared to the example of Fig. 4. Furthermore, in the example of Fig. 5, the contact area between the plate material 39 and the first member 31 and the contact area between the second member 35 and the first member 31 are smaller than those in the example of Fig. 4, so that it is easier to suppress the occurrence of rust and abnormal noise due to vibration during traveling.
[0042] The present invention is not limited to these examples, but is defined by the claims, and is intended to include all modifications within the meaning and scope of the claims.
[0043] The upper curved portion 321b shown in Figures 4 and 5 may be configured to be convex downward, and the lower curved portion 331b may be configured to be convex upward. In this case, the second ceiling portion 361 is joined to the periphery of the notch portion 321a on the upper surface of the first ceiling portion 321 by a joint portion 55. The second bottom portion 371 is joined to the periphery of the notch portion 331a on the lower surface of the first bottom portion 331 by a joint portion 55. One plate material 39 is fixed to the upper surface of the first ceiling portion 321. One plate material 39 is fixed to the lower surface of the first bottom portion 331. [Explanation of symbols]
[0044] 1 Vehicle structure 2 Front side member 21 Recess 3 Support members 30 Main body parts 30a Front member 30b Rear member 30c Consolidated Member 31 First member 32 First Upper Plate 321 First ceiling section 321a Notch 321b Upper curved section 322 First front wall 323 First rear wall section 33 First lower plate 331 First bottom 331a Notch 331b Lower curved part 332 First front wall 333 First rear wall section 35 Second member 36 Second Upper Plate 361 Second ceiling section 361a Front end 362 Second rear wall section 37 Second lower plate 371 Second bottom 371a Front end 372 Second rear wall section 39 Board material 4. Electrical Equipment 41 Aggregation Unit 42 Motor 51 First fastening member 52 Second fastening member 53 Third fastening member 55, 56 joint 91 Dash Panel 92 Apron Member 93 Suspension Tower
Claims
1. Front side members arranged on the left and right sides of the vehicle; A vehicle structure including a support member bridged to the front side member, The support member is a first member fastened to a front of each of the front side members by a first fastening member; a second member fastened to the rear of each of the front side members by a second fastening member; a main body member arranged to connect the first members and to which electrical equipment is attached; A plate member fixed to the first member, The first member and the second member have a joint portion joined to each other between the first fastening member and the second fastening member, The plate material is disposed so as to face the front of the joint, In the event of a frontal collision of the vehicle, at least a part of the joint is broken by the plate member displaced rearward in accordance with the rearward displacement of the first fastening member. Vehicle structure.
2. The first member is configured in a cylindrical shape, The vehicle structure according to claim 1 , wherein the second member has a front end portion configured to move away from the plate member as it extends forward.
Citation Information
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