This application claims the benefit of priority to Japanese Patent Application No. 2019-182869 filed on 3 Oct. 2019, the disclosures of all of which are hereby incorporated by reference in their entireties.
The present invention relates to a substructure of a vehicle such as an electric vehicle.
Japanese Patent No. 5541100 (hereinafter, referred to as Patent Document 1), for example, discloses a battery pack tray substructure including a battery house to house batteries and having an opening to be closed by a battery pack cover.
However, the battery pack tray substructure disclosed in Patent Document 1 has a risk of a side sill being turned, when a lateral collision load has been inputted to a vehicle, for example, due to the lateral collision load given to the side sill.
The present invention has been made in view of the above-identified problem and is intended to provide a vehicle substructure capable of preventing a side sill, when a load is inputted, from being turned.
In order to achieve the above-described objective, the present invention provides a vehicle substructure including a battery case having a battery housed therein, wherein the battery case includes a bottomed case pan having an opening at a top thereof, and a case cover to close the opening of the case pan, wherein the case cover vertically has a top plate located at a top thereof, a bottom plate located at a bottom thereof, and partitions disposed between the top plate and the bottom plate to couple the top plate with the bottom plate and linearly extending in a vehicle width direction so as to be substantially in parallel to each other, and both ends in the vehicle width direction thereof are connected to a pair of right and left side sills disposed on both a right side and a left side in the vehicle width direction of a vehicle and extending in a vehicle front-rear direction.
The present invention provides a vehicle substructure capable of preventing a side sill, when a load is inputted, from being turned.
Hereinafter, an embodiment of the present invention is described in detail, with reference to the drawings as required.
Note that “front-rear” indicates the vehicle front-rear direction, “right-left” indicates the vehicle width direction (right-left direction), and “up-down” indicates a vehicle up-down direction (vertically up-down direction), respectively.
A vehicle substructure according to the embodiment of the present invention is applied to a vehicle 10 such as an electric vehicle, a hybrid vehicle, a fuel battery vehicle. The vehicle 10 includes a high-voltage battery (not shown), an electric motor (motor for travelling), and electric equipment such as a PDU (Power Drive Unit) to control and supply power from the battery to the electric motor.
The vehicle 10 includes a battery case 12 as an energy source for driving the electric motor, as shown in
In addition, as shown in
The battery case 12 includes a bottomed case pan 26 having an opening 28 at a top thereof, and a case cover 32 to close and seal the opening 28 of the case pan 26 to define a chamber 30, as shown in
As shown in
The case cover 32 is made of a plate in a flat plate shape formed with extrusion molding by an extruder (not shown), to have a substantially rectangular shape (see
As shown in
A rear end 42 of the case cover 32 has fixed points 44 to be fixed to the rear vehicle body 18 as a vehicle body member, as shown in
The rear end 42 of the case cover 32 includes a pair of right and left inward-curved portions 50, a pair of right and left protruding portions 52, a pair of right and left skewing portions 54, and a straight portion 56. The inward-curved portions 50 are located on both the right and left sides in the vehicle width direction on the rear side of the vehicle so as to be recessed inward in the vehicle width direction, in a planar view, to have a substantially arc shape. The protruding portions 52 are arranged to continue to rear regions of the inward-curved portions 50 and obliquely protrude outward in the vehicle width direction. The pair of protruding portions are joined to each other via the skewing portions 54 by the straight portion 56 extending in the vehicle width direction.
As shown in
Additionally, the top surface of the case cover 32 is coupled, on both ends in the vehicle width direction thereof, with the undersurfaces of the pair of right and left side sills 20 disposed on both the right and left sides in the vehicle width direction, respectively, and extending in the vehicle front-rear direction.
A mold (ferrule) for extrusion molding, not shown, has a shape fitted to a vertical cross section of the case cover 32 (see
Note that a distance between the adjacent partitions 58c of the case cover 32 vanes in the vehicle front-rear direction. This is described in detail below.
In addition, a top surface of the case cover 32 has no such frames, that bulge upward, provided at front and rear edges and right and left edges thereof, to have a flat surface as with the rest thereof. That is, the top surface of the case cover 32 is flat at the front and rear edges and the right and left edges thereof.
As shown in
Further, the case cover 32 has a floor panel 70 disposed on the top surface thereof, as shown in
The vehicle 10 further includes the pair of right and left side sills 20, right and left seat frames 74, and the vehicle body cross members 76 to connect the pair of right and left side sills with each other, as shown in
The side sills 20 are disposed on both the right and left sides in the vehicle width direction, and extend in the vehicle front-rear direction. As shown in
The seat frame 74 is disposed between the side sill 20 and the center tunnel 78, and extends in the vehicle front-rear direction across the vehicle body cross member 76, as shown in
A vertical cross section of the seat frame 74 has a substantially L-shape (see
The vehicle 10 having the vehicle substructure of the present embodiment is basically configured as described above, and advantageous effects thereof are described next.
The case cover 32 of the present embodiment has a sandwich structure formed of the top plate 58a, the bottom plate 58b, and the partitions 58c, to improve rigidity and strength in the vehicle width direction of the case cover 32. When a lateral collision load F is inputted to the side sill 20, for example, the lateral collision load F is efficiently transmitted inward in the vehicle width direction along the case cover 32 having high rigidity and strength (see
In addition, the case cover 32 of the present embodiment has a sandwich structure formed of the top plate 58a, the bottom plate 58b, and the partitions 58c, to have high rigidity and strength, even against a bending load about an axis in the vehicle front-rear direction. Additionally, the pair of right and left side sills 20, respectively disposed on both the right and left sides in the vehicle width direction and extending in the vehicle front-rear direction, is coupled on the undersurface thereof with the case cover 32. This allows, in the present embodiment, for preventing the side sill 20 and the case cover 32 from being vertically displaced, even against the lateral collision load F transmitted from the side sill 20 downward to the case cover 32. As a result, in the present embodiment, the side sill 20 is prevented from being turned at the time of a lateral collision load having been inputted. This allows, in the present embodiment, for retaining soundness of opening/closing doors, not shown, even when the lateral collision load F is inputted to the side sill 20.
Further, the case cover 32 of the present embodiment is formed by extrusion molding. This allows, in the present embodiment, for integrally forming the top plate 58a, bottom plate 58b, and partitions 58c of the case cover 32, to further improve rigidity and strength of the case cover 32. The present embodiment thus further prevents the side sill 20 from being turned at the time of a lateral collision load having been inputted.
Still further, in the present embodiment, the floor panel 70 is arranged on the case cover 32 and the floor panel 70 is provided with the panel openings 72 (see
Still further, the pair of right and left seat frames 74, adjacent to the side sills 20 and extending in the vehicle front-rear direction, is provided in the present embodiment, to transmit the lateral collision load F inputted from the side sill 20 via the frame seats 74 to the case cover 32. This allows, in the present embodiment, for improving efficiency of absorbing a lateral collision load.
Still further, the seat frame 74 of the present embodiment has a vertical cross section in a substantially L-shape to include the horizontal plate 74a extending substantially horizontally, and the vertical wall 74b curved at an inner end in the vehicle width direction of the horizontal plate 74a and extending downward, and an outer end in the vehicle width direction of the horizontal plate 74a is joined to the side sill 20 while a lower end of the vertical wall 74b is joined to a top surface of the floor panel 70. This allows, in the present embodiment, for connecting the side sill 20 with the floor panel 70 by the seat frame 74 having a vertical cross section in a substantially L-shape, to transmit the lateral collision load F given in the vehicle width direction onto the side sill 20 (a load given in a direction of turning the side sill 20) via the floor panel 70 to the case cover 32. As a result, in the present embodiment, the side sill 20 is further prevented from being turned at the time of a lateral collision load having been inputted.
In the present embodiment, a distance between the partitions 58c adjacent in the vehicle front-rear direction to each other varies in the vehicle front-rear direction.
That is, a distance between the adjacent partitions 58c is varied in the vehicle front-rear direction to allow the case cover 32 of the present embodiment to have different strength between regions thereof. The case cover 32 may have a protected region having high rigidity and strength and a collapsed region having lower rigidity and strength than the protected region, for example, based on this strength difference. As a result, a mode is controllable in the present embodiment when a collision load is inputted to the case cover 32.
Still further, the top surface of the case cover 32 of the present embodiment is flat at the edges in the vehicle front-rear direction and the edges in the vehicle width direction, to have no need for a frame 102 (see
Still further, the case cover 32 of the present embodiment, having higher rigidity and strength by itself, as compared with that of a related art, to allow for providing the suspending structure 60 on the undersurface of the case cover 32 to suspend and support the battery B. The suspending structure 60 includes the cross bars 64 extending in the vehicle width direction and fixed to the undersurface of the case cover 32 at predetermined intervals in the vehicle front-rear direction. The cross bars 64 are provided therein with thread holes, and the battery B is provided at a top thereof with the mounting portions 68 protruding in the vehicle front-rear direction and having the bolt insertion holes 67.
In the present embodiment, the battery B is suspended and supported on the undersurface of the case cover 32 having high rigidity and strength, to have no need of any supporting member under the battery B. In a prior art, a bracket (not shown) to support the battery B from under the battery is used, for example, but such a bracket is unnecessary in the present embodiment to allow for reducing parts in number and weight, to have a lower cost.
Still further, the case cover 32 of the present embodiment is provided at the rear end thereof with the fixed points 44 to be fixed to the rear vehicle body 18 as a vehicle body member. The fixed points 44 include the embracing fixed points 48 arranged so as to embrace the input points 46a, 46b of a rear collision load (see
With such a structure, the input point 46a having a rear collision load inputted from the suspension mechanism 24 and the input point 46b having a rear collision load inputted from the rear subframe 16 are embraced in the present embodiment by the embracing fixed points 48, to improve rigidity and strength of the rear vehicle body. Additionally, a load inputted from the suspension mechanism 24 and a load inputted from the rear subframe 16 are efficiently transmitted via the rear end 42 to the case cover 32.
10: vehicle, 12: battery case, 20: side sill, 26: case pan, 28: opening, 30: chamber, 32: case cover, 42: rear end, 44: fixed point, 46a, 46b: input point, 48: embracing fixed point, 58a: top plate, 58b: bottom plate, 58c: partition, 64: cross bar, 67: bolt insertion hole, 68: mounting portion, 70: floor panel, 72: panel opening, 74: seat frame, 74a: horizontal plate, 74b: vertical wall, F: lateral collision load, and B: battery.
Number | Date | Country | Kind |
---|---|---|---|
2019-182869 | Oct 2019 | JP | national |