The technique disclosed herein belongs to a technical field related to a lower body structure of a vehicle.
In the case of a hybrid vehicle or an electric vehicle, a battery is generally disposed below a floor panel. In such a vehicle, a body structure for absorbing collision energy so that a collision load during a side collision is not transmitted to the battery has been studied.
JP2022-531463A discloses a side sill component including: a first profile component that is located on a relatively outer side in a vehicle width direction and has first breakability; and a second profile component that is located on a relatively inner side in the vehicle width direction and has second breakability lower than the first breakability. In JP2022-531463A, a first profile member and a second profile member are crushed during a side collision so as to absorb the collision energy.
In the configuration of JP2022-531463A, there is a possibility that the collision load that cannot be sufficiently absorbed by crushing of the first profile member is transmitted to the battery via the second profile member without crushing the second profile member. Therefore, there is room for improvement from a viewpoint of preventing the transmission of the collision load to the battery.
A technique disclosed herein has been made in view of the above point, to prevent a collision load during a side collision from being transmitted to a battery.
In order to solve the above problem, a first aspect of the technique disclosed herein is directed to a vehicle lower body structure, and includes: a pair of left and right side sills, each of which has a closed cross-sectional structure extending in a vehicle front-rear direction; a floor panel that is fixed to the side sills and constitutes a floor surface of a cabin; a battery that is disposed below the floor panel; and a cross member that extends in a vehicle width direction, and each end portion in the vehicle width direction of which is fixed to one of the side sills at a position above the floor panel.
Each side sill has: an outer wall portion that is a wall surface located on an outer side in the vehicle width direction and extending in an up-down direction and the vehicle front-rear direction; an inner wall portion that is a wall surface located on an inner side in the vehicle width direction and extending in the up-down direction and the vehicle front-rear direction; an upper wall portion that extends in the vehicle width direction from an upper end portion of the outer wall portion and an upper end portion of the inner wall portion; a lower wall portion that extends in the vehicle width direction from a lower end portion of the outer wall portion and a lower end portion of the inner wall portion; an outer reinforcement that is fixed to the outer wall portion in the closed cross-sectional structure; and an inner reinforcement that is fixed to the upper wall portion and the inner wall portion in the closed cross-sectional structure. The cross member is fixed to the upper wall portion, the battery is supported by the lower wall portion, the outer reinforcement has an overlapping portion that is located on the inside of other portions of the outer reinforcement in the vehicle width direction, and a position of which overlaps that of the inner reinforcement in the up-down direction, and the inner reinforcement is spaced apart from the lower wall portion in the up-down direction.
In the first aspect, when the outer wall portion is displaced inward in the vehicle width direction due to a side collision, the overlapping portion of the outer reinforcement abuts the inner reinforcement. Since the inner reinforcement is fixed to the upper wall portion and the inner wall portion of the side sill, a load transmitted from the outer reinforcement to the inner reinforcement is transmitted inward in the vehicle width direction and upward. Since the cross member is fixed to the upper wall portion, a collision load is transmitted from the inner reinforcement to the cross member. Meanwhile, since the inner reinforcement is spaced apart from the lower wall portion, to which the battery is supported, in the up-down direction, the collision load is hardly transmitted from the inner reinforcement to the battery. As described above, it is possible to prevent transmission of the collision load during the side collision to the battery.
According to a second aspect, in the first aspect, a center of the inner reinforcement in the up-down direction is located above a center of the overlapping portion in the up-down direction.
In the second aspect, even in the case where the inner reinforcement is rotationally displaced due to the collision load when the overlapping portion of the outer reinforcement abuts the inner reinforcement, the inner reinforcement is rotationally displaced inward in the vehicle width direction and upward. Therefore, a transmission path of the collision load from the outer reinforcement to the cross member is easily maintained. Accordingly, it is possible to prevent the transmission of the collision load during the side collision to the battery.
According to a third aspect, in the first aspect, a fixed portion between the inner reinforcement and the inner wall portion is located above a center of the inner wall portion in the up-down direction.
In the third aspect, the collision load is easily transmitted from the inner reinforcement to an upper portion of the inner wall portion. Accordingly, since the collision load is easily transmitted from the inner reinforcement to the cross member, it is possible to prevent the transmission of the collision load during the side collision to the battery.
According to a fourth aspect, in the first aspect, the overlapping portion has a surface extending in the up-down direction and the vehicle front-rear direction, and a position thereof overlaps a position of the cross member in the vehicle front-rear direction.
In the fourth aspect, since the overlapping portion contacts the inner reinforcement in the widest possible range, the collision load can be distributed and applied to the inner reinforcement. Further, since a position of the overlapping portion overlaps a position of the cross member in the vehicle front-rear direction, the transmission path of the collision load can be shortened as much as possible. Accordingly, since the collision load is efficiently transmitted from the outer reinforcement to the cross member, it is possible to prevent the transmission of the collision load during the side collision to the battery.
According to a fifth aspect of the present disclosure, in one of the first to fourth aspects, the inner reinforcement has a vertical surface portion fixed to the upper wall portion and the inner wall portion and extending in the up-down direction and the vehicle width direction.
In the fifth aspect, the collision load is efficiently transmitted from the outer reinforcement to the cross member via the vertical surface portion. Accordingly, it is possible to prevent the transmission of the collision load during the side collision to the battery.
According to a sixth aspect, in the fifth aspect, a position of the vertical surface portion overlaps a position of the cross member in the vehicle front-rear direction.
In the sixth aspect, since the transmission path of the collision load is shortened as much as possible, the collision load is efficiently transmitted from the outer reinforcement to the cross member. Accordingly, it is possible to prevent the transmission of the collision load during the side collision to the battery.
According to a seventh aspect of the present disclosure, in one of the fifth aspect, the inner reinforcement has a horizontal surface portion, a position of which overlaps a position of an area where the battery is disposed in the vehicle front-rear direction, which extends in the vehicle front-rear direction and the vehicle width direction, and which is fixed to the inner wall portion, and the horizontal surface portion is located below the vertical surface portion and is spaced apart from the lower wall portion in the up-down direction.
In the seventh aspect, even in the case where the vertical surface portion is rotationally displaced due to the collision load when the overlapping portion of the outer reinforcement abuts the inner reinforcement, it is possible to prevent the vertical surface portion from being displaced downward by the horizontal surface portion. Accordingly, it is possible to prevent the direct transmission of the collision load to the support portion of the battery.
According to an eighth aspect, in the fifth aspect, the vertical surface portion has a bead that is inclined upward to the inner side in the vehicle width direction from the outer side in the vehicle width direction.
In the eighth aspect, the collision load is efficiently transmitted inward in the vehicle width direction and upward by the bead. Accordingly, since the collision load is transmitted to the cross member, it is possible to prevent the transmission of the collision load during the side collision to the battery.
According to a ninth aspect, in the fifth aspect, the cross member is further superimposed on and fixed to a fixed portion between the vertical surface portion and the upper wall portion.
In the ninth aspect, the fixed portion between the vertical surface portion and the upper wall portion has high rigidity. Accordingly, the collision load is efficiently transmitted from the outer reinforcement to the cross member via the vertical surface portion. As a result, it is possible to prevent the transmission of the collision load during the side collision to the battery.
According to a tenth aspect, in the seventh aspect, the vertical surface portion is fixed to the horizontal surface portion.
In the tenth aspect, even when a position of the side collision is a position other than the position of the vertical surface portion, the collision load is transmitted to the vertical surface portion via the horizontal surface portion. Accordingly, the collision load is efficiently transmitted from the outer reinforcement to the cross member via the horizontal surface portion and the vertical surface portion. As a result, it is possible to prevent the transmission of the collision load during the side collision to the battery.
According to an eleventh aspect, in the seventh aspect, the inner reinforcement has an inner bent portion that is bent upward from an inner end portion of the horizontal surface portion in the vehicle width direction, and the inner bent portion is further superimposed on and fixed to a fixed portion between the vertical surface portion and the inner wall portion.
In the eleventh aspect, the fixed portion between the vertical surface portion and the inner wall portion has high rigidity. Accordingly, the collision load is efficiently transmitted from the outer reinforcement to the cross member via the vertical surface portion. As a result, it is possible to prevent the transmission of the collision load during the side collision to the battery.
As it has been described so far, according to the technique disclosed herein, it is possible to prevent the collision load during the side collision from being transmitted to the battery.
Exemplary embodiments will now be described in detail with reference to the drawings. In the following description, the front, rear, left, right, up, and down of a vehicle 1 are simply referred to as the front, rear, left, right, up, and down, respectively. A left-right direction corresponds to a vehicle width direction.
The vehicle 1 includes a pair of left and right side sills 2. Each of the side sills 2 extends straight in a front-rear direction. As will be described in detail below, each of the side sills 2 has a closed cross-sectional structure, and the closed cross section extends straight in the front-rear direction.
The vehicle 1 includes a floor panel 3 that constitutes a floor surface of a cabin. A pair of the left and right floor panels 3 is provided. Each of the floor panels 3 has: a floor panel main body 3a (see
At a rear end of the floor panel 3, a kick-up portion 5 that rises upward is disposed. A rear floor panel 6 extends rearward from the kick-up portion 5. The rear floor panel 6 mainly constitutes a floor surface of a baggage compartment. A pair of left and right rear wheel houses 7 is respectively arranged on both left and right sides of the rear floor panel 6.
Two cross members 60 extending along the left-right direction are disposed on the upper side of the floor panel 3. The two cross members 60 are aligned in the front-rear direction. A position of the rear cross member 60 in the front-rear direction is the same as a position of a center pillar 9 (see
The cross member 60 includes a cross member body 61 and brackets 62. The brackets 62 are respectively fixed to both sides of the cross member body 61 in the left-right direction. The brackets 62 are fixed to the cross member body 61. The left bracket 62 is fixed to the left side sill 2 by welding, and the right bracket 62 is fixed to the right side sill 2 by welding. As a result, end portions of the cross member 60 in the left-right direction are fixed to the side sills 2. A lower end of the cross member body 61 is fixed to an upper surface of the floor panel 3 and an upper surface of the tunnel panel 4.
A pair of left and right floor frames 8 is arranged in front of the front cross member 60. The floor frames 8 each extend in the front-rear direction.
As illustrated in
The battery B is supported by a lower wall portion (an inner lower wall portion 22 described below) of the side sill 2 together with the battery case 70 via a support portion 80. More specifically, a bracket 71 extending outward in the vehicle width direction is fixed to an outer portion (a right portion in
Hereinafter, a configuration of the side sill 2 will be described in detail. As described above, since the body structure of the vehicle 1 is bilaterally symmetrical, the configuration of the right side sill 2 will be described in detail below, and the detailed description of the left side sill 2 will be omitted. In the description of the right side sill 2, the right side corresponds to the outer side in the vehicle width direction, and the left side corresponds to the inner side in the vehicle width direction.
As illustrated in
The outer panel 10 has a hat-shaped cross-sectional shape that opens to the left. The outer panel 10 has: an outer upper wall portion 11 extending in the left-right direction and the front-rear direction; an outer lower wall portion 12 located below the outer upper wall portion 11 to oppose the outer upper wall portion 11 in an up-down direction and extending in the left-right direction and the front-rear direction; and an outer wall portion 13 connecting a right end portion of the outer upper wall portion 11 and a right end portion of the outer lower wall portion 12 in the up-down direction and extending in the up-down direction and the front-rear direction. An outer flange 14 extends in the up-down direction from a left end portion of the outer upper wall portion 11 and a left end portion of the outer lower wall portion 12. The outer upper wall portion 11 is inclined downward to the right. The outer lower wall portion 12 is inclined upward to the right. At a position of the center pillar 9 in the front-rear direction, a lower end portion of the center pillar 9 is located on the right side of the outer panel 10. The lower end portion of the center pillar 9 is fixed to the outer panel 10 by welding.
The inner panel 20 has a hat-shaped cross-sectional shape that opens to the right. The inner panel 20 has: an inner upper wall portion 21 extending in the left-right direction and the front-rear direction; the inner lower wall portion 22 located below the inner upper wall portion 21 to oppose the inner upper wall portion 21 in the up-down direction and extending in the left-right direction and the front-rear direction; and an inner wall portion 23 connecting a left end portion of the inner upper wall portion 21 and a left end portion of the inner lower wall portion 22 in the up-down direction and extending in the up-down direction and the front-rear direction. An inner flange 24 extends in the up-down direction from a right end portion of the inner upper wall portion 21 and a right end portion of the inner lower wall portion 22. The inner upper wall portion 21 is inclined downward to the left. The inner lower wall portion 22 extends straight in the left-right direction. The inner lower wall portion 22 has a hole 22a through which the bolt 81 is inserted.
In a state where the openings of the outer panel 10 and the inner panel 20 face each other in the left-right direction, the outer flange 14 and the inner flange 24 are superimposed in the left-right direction. The outer flange 14 and the inner flange 24 are joined by welding. Accordingly, the side sill 2 has a rectangular closed cross-sectional structure including the outer upper wall portion 11, the outer lower wall portion 12, the outer wall portion 13, the inner upper wall portion 21, the inner lower wall portion 22, and the inner wall portion 23.
The floor panel 3 and the cross member 60 are fixed to the inner panel 20. More specifically, as illustrated in
As illustrated in
The outer reinforcement 30 has a hat-shaped cross-sectional shape that opens to the right. The outer reinforcement 30 has: an upper surface portion 31 extending in the left-right direction and the front-rear direction; a lower surface portion 32 located below the upper surface portion 31 to oppose the upper surface portion 31 and extending in the left-right direction and the front-rear direction; and a connection surface portion 33 connecting a left end portion of the upper surface portion 31 and a left end portion of the lower surface portion 32 in the up-down direction and extending in the up-down direction and the front-rear direction. The outer reinforcement 30 also has: an upper flange 34 that extends upward from a right end portion of the upper surface portion 31 along the outer wall portion 13 and is fixed to the outer wall portion 13 by welding; and a lower flange 35 that extends downward from a right end portion of the lower surface portion 32 along the outer wall portion 13 and is fixed to the outer wall portion 13 by welding. When the upper flange 34 and the lower flange 35 are fixed to the outer wall portion 13, the outer wall portion 13, the upper surface portion 31, the lower surface portion 32, and the connection surface portion 33 form a rectangular closed cross section.
The upper surface portion 31 is inclined upward to the right from an upper end portion of the connection surface portion 33. The lower surface portion 32 is inclined downward to the left from a lower end portion of the connection surface portion 33. The connection surface portion 33 is a vertical surface extending straight in the up-down direction and the front-rear direction. The upper surface portion 31 is located at the same position as the floor panel main body 3a in the up-down direction. The connection surface portion 33 is spaced apart from the outer wall portion 13 in the left-right direction and is located on the left side of other portions of the outer reinforcement 30. A lower end of the connection surface portion 33 is located above the outer lower wall portion 12 and the inner lower wall portion 22. The lower end of the connection surface portion 33 is located above a tip of the bolt 81 of the support portion 80. The connection surface portion 33 corresponds to an overlapping portion, a position of which overlaps a position of an inner reinforcement 40 described below in the up-down direction.
As illustrated in
As illustrated in
In the closed cross section of the side sill 2, the inner reinforcement 40 is fixed to the inner panel 20. As illustrated in
The inner reinforcement 40 has a first inner reinforcement 41 and the second inner reinforcement 42.
As illustrated in
As illustrated in
As illustrated in
A length of the inner bent portion 41b in the up-down direction is longer than a length of the outer bent portion 41c in the up-down direction. A position of the inner bent portion 41b overlaps the position of the connection surface portion 33 in the up-down direction. The inner bent portion 41b is fixed to a right side surface of the inner wall portion 23 by welding. Thus, the horizontal surface portion 41a is fixed to the inner wall portion 23. The fixed portion between the inner bent portion 41b and the inner wall portion 23 is located above a center of the inner wall portion in the up-down direction.
As illustrated in
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As illustrated in
The second inner reinforcement 42 has: a pair of vertical surface portions 43 opposing each other in the front-rear direction and extending in the up-down direction and the left-right direction; and the lateral surface portion 44 extending in the front-rear direction and the up-down direction so as to connect right end portions of the paired vertical surface portions 43. The lateral surface portion 44 is provided at a center of the right end portion of the vertical surface portion 43. In the right end portion of the vertical surface portion 43, the lateral surface portion 44 is not connected to an upper end portion and a lower end portion thereof. A distance between the paired vertical surface portions 43 in the front-rear direction is shorter than a width of the cross member 60 in the front-rear direction. In the second inner reinforcement 42 whose position overlaps the position of the cross member 60 in the front-rear direction, positions of both of the paired vertical surface portions 43 overlap the position of the cross member 60 in the vehicle front-rear direction.
As illustrated in
The vertical surface portion 43 has a bead 43a that extends while being inclined upward to the left from the right side. As illustrated in
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As illustrated in
As illustrated in
As described above, the vertical surface portion 43 is joined and fixed to the horizontal surface portion 41a, the inner bent portion 41b, the inner upper wall portion 21, and the inner wall portion 23. Since three sides of the upper end portion, the left end portion, and the lower end portion of the vertical surface portion 43 are fixed, it is easy to maintain a shape thereof even when a load is applied thereto from the right side.
As illustrated in
Here, in the structure in which the battery B is disposed under the floor panel 3, it is required to prevent application of a collision load during a side collision to the battery B as much as possible. Therefore, in the present embodiment, as described above, the outer reinforcement 30 and the inner reinforcement 40 are arranged so that the collision load during the side collision is transmitted to the floor panel 3 and the cross member 60. Hereinafter, operation of the side sill during the side collision will be described with reference to
As illustrated in
When the connection surface portion 33 and the second inner reinforcement 42 abut each other, the collision load is transmitted from the outer reinforcement 30 to the second inner reinforcement 42. Since the second inner reinforcement 42 is fixed to the inner upper wall portion 21 and the inner wall portion 23, the load transmitted from the outer reinforcement 30 to the second inner reinforcement 42 is transmitted leftward and upward. Since the floor panel 3 and the cross member 60 are fixed to the left and upper portions of the side sill 2, the collision load is transmitted from the second inner reinforcement 42 to the floor panel 3 and the cross member 60. Since the second inner reinforcement 42 includes the vertical surface portion 43 having the bead 43a, the collision load is efficiently transmitted from the outer reinforcement 30 to the floor panel 3 and the cross member 60 via the bead 43a.
From the state in
Further, the inner reinforcement 40 is rotationally displaced by the collision load. Since the center of the inner reinforcement 40 in the up-down direction is located above the center C1 of the connection surface portion 33 in the up-down direction, the inner reinforcement 40 is rotationally displaced upward to the left. Therefore, even when the inner reinforcement 40 is rotationally displaced, the collision load is efficiently transmitted from the outer reinforcement 30 to the floor panel 3 and the cross member 60.
From the state in
As it has been described so far, in the present embodiment, the side sill 2 has: the outer wall portion 13 that is the wall surface located on the outer side in the vehicle width direction and extending in the up-down direction and the front-rear direction; the inner wall portion 23 that is the wall surface located on the inner side in the vehicle width direction and extending in the up-down direction and the front-rear direction; the outer upper wall portion 11 that extends in the vehicle width direction from the upper end portion of the outer wall portion 13; the inner upper wall portion 21 that extends in the vehicle width direction from the upper end portion of the inner wall portion 23; the outer lower wall portion 12 that extends in the vehicle width direction from the lower end portion of the outer wall portion 13; the inner lower wall portion 22 that extends in the vehicle width direction from the lower end portion of the inner wall portion 23; the outer reinforcement 30 that is fixed to the outer wall portion 13 in the closed cross-sectional structure; and the inner reinforcement 40 that is fixed to the inner upper wall portion 21 and the inner wall portion 23 in the closed cross-sectional structure. The cross member 60 is fixed to the inner upper wall portion 21, the battery B is supported by the inner lower wall portion 22, the outer reinforcement 30 has the connection surface portion 33 that is located on the inside of the other portions of the outer reinforcement 30 in the vehicle width direction and the position of which overlaps the position of the inner reinforcement 40 in the up-down direction, and the inner reinforcement 40 is spaced apart from the inner lower wall portion 22 in the up-down direction. When the connection surface portion 33 of the outer reinforcement 30 abuts the inner reinforcement 40, the collision load is transmitted inward in the vehicle width direction and upward via the inner reinforcement 40. Since the cross member 60 is fixed to the inner upper wall portion 21, the collision load is transmitted from the inner reinforcement 40 to the cross member 60. Meanwhile, since the inner reinforcement 40 is spaced apart from the inner lower wall portion 22, to which the battery B is supported, in the up-down direction, the collision load is hardly transmitted from the inner reinforcement 40 to the battery B. As described above, it is possible to prevent the collision load during the side collision from being transmitted to the battery B.
In the present embodiment, the center C2 of the inner reinforcement 40 in the up-down direction is located above the center C1 of the connection surface portion 33 in the up-down direction. Accordingly, even in the case where the inner reinforcement 40 is rotationally displaced by the collision load when the connection surface portion 33 abuts the inner reinforcement 40, the inner reinforcement 40 is rotationally displaced inward in the vehicle width direction and upward. Therefore, the transmission path of the collision load from the inner reinforcement 40 to the floor panel 3 and the cross member 60 is easily maintained. As a result, it is possible to prevent the transmission of the collision load during the side collision to the battery B.
In the present embodiment, the fixed portion between the inner reinforcement 40 and the inner wall portion 23 is located above the center of the inner wall portion 23 in the up-down direction. Accordingly, the collision load is easily transmitted from the inner reinforcement 40 to the upper portion of the inner wall portion 23. As a result, since the collision load is easily transmitted from the inner reinforcement 40 to the cross member 60, it is possible to prevent the transmission of the collision load during the side collision to the battery B.
In the present embodiment, the connection surface portion 33 has the surface extending in the up-down direction and the front-rear direction, and the position thereof overlaps the position of the cross member 60 in the front-rear direction. Since the connection surface portion 33 contacts the inner reinforcement 40 in the widest possible range, the collision load can be distributed and applied to the inner reinforcement 40. Further, since the position of the connection surface portion 33 overlaps the position of the cross member 60 in the front-rear direction, the transmission path of the collision load can be shortened as much as possible. Accordingly, since the collision load is efficiently transmitted from the outer reinforcement 30 to the cross member 60, it is possible to prevent the transmission of the collision load during the side collision to the battery B.
In the present embodiment, the inner reinforcement 40 has the vertical surface portion 43 fixed to the inner upper wall portion 21 and the inner wall portion 23 and extending in the up-down direction and the vehicle width direction. Accordingly, the collision load is efficiently transmitted from the outer reinforcement 30 to the cross member 60 via the vertical surface portion 43. As a result, it is possible to prevent the transmission of the collision load during the side collision to the battery B.
In the present embodiment, the position of the vertical surface portion 43 overlaps the position of the cross member 60 in the vehicle front-rear direction. Accordingly, since the transmission path of the collision load is shortened as much as possible, the collision load is efficiently transmitted from the outer reinforcement 30 to the cross member 60. As a result, it is possible to prevent the transmission of the collision load during the side collision to the battery B.
In the present embodiment, the inner reinforcement 40 has the horizontal surface portion 41a, the position of which overlaps the position of the area where the battery B is disposed in the vehicle front-rear direction, which extends in the vehicle front-rear direction and the vehicle width direction, and which is fixed to the inner wall portion, and the horizontal surface portion 41a is located below the vertical surface portion 43 and is spaced apart from the inner lower wall portion 22 in the up-down direction. The collision load is transmitted to the inner wall portion 23 in the widest possible range in the front-rear direction by the horizontal surface portion 41a. Even in the case where the vertical surface portion 43 is rotationally displaced due to the collision load when the connection surface portion 33 abuts the inner reinforcement 40, it is possible to prevent the vertical surface portion 43 from being displaced downward by the horizontal surface portion 41a. Accordingly, it is possible to prevent the direct transmission of the collision load to the support portion of the battery.
In the present embodiment, the vertical surface portion 43 has the bead 43a that is inclined upward to the inner side in the vehicle width direction from the outer side in the vehicle width direction. The collision load is efficiently transmitted inward in the vehicle width direction and upward by the bead 43a. Accordingly, since the collision load is transmitted to the cross member 60, it is possible to prevent the transmission of the collision load during the side collision to the battery B.
In the present embodiment, the cross member 60 is further superimposed on and fixed to the fixed portion between the vertical surface portion 43 and the inner upper wall portion 21. As a result, since the fixed portion between the vertical surface portion 43 and the inner upper wall portion 21 has the high rigidity, the collision load is efficiently transmitted from the outer reinforcement 30 to the cross member 60 via the vertical surface portion 43. As a result, it is possible to prevent the transmission of the collision load during the side collision to the battery B.
In the present embodiment, the vertical surface portion 43 is fixed to the horizontal surface portion 41a. Accordingly, even when a position of the side collision is a position other than the position of the vertical surface portion 43, the collision load is transmitted to the vertical surface portion 43 via the horizontal surface portion 41a. Therefore, the collision load is efficiently transmitted from the outer reinforcement 30 to the cross member 60 via the horizontal surface portion 41a and the vertical surface portion 43. As a result, it is possible to prevent the transmission of the collision load during the side collision to the battery B.
In the present embodiment, the inner reinforcement 40 has the inner bent portion 41b that is bent upward from the inner end portion of the horizontal surface portion 41a in the vehicle width direction, and the inner bent portion 41b is further superimposed on and fixed to the fixed portion between the vertical surface portion 43 and the inner wall portion 23. Since the fixed portion between the vertical surface portion 43 and the inner wall portion 23 has the high rigidity, the collision load is efficiently transmitted from the outer reinforcement 30 to the cross member 60 via the vertical surface portion 43. As a result, it is possible to prevent the transmission of the collision load during the side collision to the battery B.
The technique disclosed herein is not limited to the above-described embodiment, and can be substituted without departing from the spirit of the claims.
In the above embodiment, the center of the inner reinforcement 40 in the up-down direction is located above the center of the connection surface portion 33 in the up-down direction. The present disclosure is not limited thereto, and the center of the inner reinforcement 40 in the up-down direction may be located at the same position as the center of the connection surface portion 33 in the up-down direction.
In the above embodiment, the inner reinforcement 40 includes the first inner reinforcement 41 and the second inner reinforcement. The present disclosure is not limited thereto, and the inner reinforcement 40 may only include the second inner reinforcement.
In the above embodiment, the vertical surface portion 43 is fixed to the horizontal surface portion 41a. The present disclosure is not limited thereto, and the vertical surface portion 43 may not be fixed to the horizontal surface portion 41a.
In the above embodiment, the second inner reinforcement 42 has the lateral surface portion 44, but the lateral surface portion 44 is not an essential component and may be omitted. In the above embodiment, the vertical surface portion 43 has the bead 43a, but the bead 43a is not an essential component and may be omitted.
In the above embodiment, the corner portion between the lower surface portion 32 and the lower flange 35 has the deformation promoting portion 36, but the deformation promoting portion 36 is not an essential component and may be omitted.
The above-described embodiments are merely illustrative, and should not be construed as limiting the scope of the present disclosure. The scope of the present disclosure is defined by the claims, and all changes and modifications that fall within the scope of the claims are intended to be within the scope of the present disclosure.
| Number | Date | Country | Kind |
|---|---|---|---|
| 2024-005809 | Jan 2024 | JP | national |