This application claims the benefit of priority to Japanese Patent Application No. 2019-182871 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.
A vehicle substructure is disclosed in Japanese Patent Application Publication No. 2016-52863 (hereinafter, referred to as Patent Document 1), for example, that includes a side sill (rocker) disposed on an outer side in a vehicle width direction of a floor panel and extending in a vehicle front-rear direction, and a floor cross member disposed on the floor panel and extending in the vehicle width direction.
The vehicle substructure disclosed in Patent Document 1 further includes a sub side sill (sub rocker) to couple the side sill with an end in the vehicle width direction of the floor cross member. Patent Document 1 describes that the sub side sill (sub rocker) is provided to effectively prevent the side sill (rocker), when a load of lateral collision has been inputted to the side sill, from collapsing inward in the vehicle width direction.
Incidentally, when the vehicle substructure disclosed in Patent Document 1 is applied to a battery case, the invention of Patent Document 1 has difficulty in efficiently transmitting a load transmitted from a front subframe or a front suspension to the battery case.
The present invention has been made in view of the above-identified problem and is intended to provide a vehicle substructure capable of efficiently transmitting a load inputted from a front subframe or a front suspension mechanism.
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 is partly formed of a cast member which is arranged at a front end of the case cover and coupled to a rear end of a front subframe.
The present invention provides a vehicle substructure capable of efficiently transmitting a load inputted from a front subframe or a front suspension mechanism.
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 pan 26 has a plurality of reinforcing members 27 attached, in parallel with one another, to a lower surface thereof at the bottom (see
The cast member 34a is disposed at a front end of the case cover 32, and is coupled to a rear end of the front subframe 14, 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
As shown in
As shown in
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.
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.
In the present embodiment, the case cover 32 is a plate in a flat plate shape formed with extrusion molding, and thus, 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 high strength (see
In addition, in the present embodiment, a collision load (such as a front-collision load, a lateral collision load, and an offset load) inputted via the front suspension mechanism 22, the front subframe 14, or the right or left front wheel, for example, is transmitted to the cast member 34a (as a front end of the case pan 26) at the front end 36 of the battery case 12. The collision load transmitted to the cast member 34a is then transmitted rearward along the case cover 32 having high rigidity and high strength, and the case pan 26. The case cover 32 has a sandwich structure having the top plate 58a connected with the bottom plate 58b by the partitions 58c, to have high rigidity and high strength. Additionally, the case pan 26 is provided at the bottom thereof with reinforcing members 27 cross-sectionally in a hat shape in parallel in the vehicle front-rear direction. That is, in the present embodiment, a collision load is transmitted rearward so as to be dispersed by the cast member 34a. As a result, in the present embodiment, a collision load inputted from the front subframe 14, the front suspension mechanism 22, the right or left front wheel, or the like is efficiently directed to the battery case 12 and then absorbed. This allows for effective use of the battery case 12 as a structural member.
As shown in
In contrast, in the related art as shown in
In addition, the cast member 34a of the present embodiment is coupled to the rear end of the front subframe 14. This allows for transmitting a collision load (including a front collision load, a lateral collision load, and an offset load) inputted via the front suspension mechanism 22, the front subframe 14, or the right or left front wheel, for example, in particular a collision load transmitted from the front subframe 14, to the battery case 12 via the cast member 34a at the front end 36 of the battery case 12 (as the front end of the case pan 26), to suitably absorb the collision load.
Further, the cast member 34a of the present embodiment protrudes frontward to have a pair of the right and left protrusions 40 to be coupled to the front suspension mechanism 22. This allows for transmitting a collision load (including a front collision load, a lateral collision load, and an offset load) inputted via the front suspension mechanism 22, the front subframe 14, or the right or left front wheel, for example, in particular a collision load transmitted from the front suspension mechanism 22, to the battery case 12 via the protrusions 40 at the front end 36 of the battery case 12, to suitably absorb the collision load.
Still further, the cast member 34a of the present embodiment has the skew portions 42 extending outward in the vehicle width direction and rearward in the vehicle front-rear direction from the outer end in the vehicle width direction of the front edge of the protrusions 40. This allows for transmitting a collision load (including a front collision load, a lateral collision load, and an offset load) inputted via the front suspension mechanism 22, the front subframe 14, or the right or left front wheel, for example, in particular a lateral collision load or an offset load, to the battery case 12 via the skew portions 42 of the cast member 34a, to efficiently absorb the collision load.
Still further, the battery case 12 of the present embodiment is coupled at both ends in the vehicle width direction thereof to the pair of right and left side sills 20, respectively. The cast member 34a extends in the vehicle width direction across both ends in the vehicle width direction of the battery case 12. This allows the cast member 34a provided so as to extend in the vehicle width direction between the pair of right and left side sills 20 to suitably reinforce rigidity and strength of vehicle body members.
Still further, the case pan 26 of the present embodiment is provided at the bottom thereof with the reinforcing members 27 cross-sectionally in a hat shape as viewed from the front and extending in the vehicle front-rear direction. This allows for improving rigidity and strength in the vehicle front-rear direction of the case pan 26 to suitably absorb a load in the vehicle front-rear direction transmitted via the cast member 34a.
Still further, the case cover 32 of the present embodiment has, in the up-down direction, the top plate 58a located at the top thereof, the bottom plate 58b located at the bottom thereof, and the partitions 58c disposed between the top plate 58a and the bottom plate 58b to couple the top plate 58a with the bottom plate 58b. The case cover 32 of the present embodiment has a sandwich structure including the top plate 58a, the bottom plate 58bf, and the partitions 58c, to improve rigidity and strength of the case cover 32 against a horizontal load to suitably absorb a load in the vehicle front-rear direction transmitted via the cast member 34a.
Still further, the case cover 32 of the present embodiment has larger thicknesses at the front and rear ends of the top plate 58a and bottom plate 58b than those at the center in the vehicle front-rear direction thereof. In the present embodiment, the case cover 32 having larger thicknesses at the front and rear ends of the top plate 58a and bottom plate 58b than a thickness at the center in the vehicle front-rear direction thereof allows for improving rigidity and strength of the case cover 32 at the front and rear ends thereof to let a collision load inputted from in front of, or behind, the battery case 12 efficiently transmitted to the battery case 12 for absorption. As a result, the battery case 12 of the present embodiment is effectively utilized as a structural member.
Still further, the cast member 34a of the battery case 12 also serves as a member to reinforce rigidity and strength of vehicle body members, in the present embodiment. This allows the cast member 34a to reinforce rigidity and strength of vehicle body members of the vehicle substructure, disposed behind the front subframe 14 in the vehicle front-rear direction. In other words, a frame of the vehicle body, which requires higher rigidity and strength than other members, is partly compensated with the cast member 34a of the battery case 12.
Still further, the load F1 inputted from a front portion or a lateral portion of the vehicle is transmitted in the present embodiment to the case cover 32 via the cast member 34a, to suitably absorb the load F1.
10: vehicle, 12: battery case, 14: front subframe, 22: front suspension mechanism, 26: case pan, 27: reinforcing member, 28: opening, 30: chamber, 32: case cover, 34a: cast member, 40: protrusion, 42: skew portion, 58a: top plate, 58b: bottom plate, 58c: partition, and F1, F2: load.
Number | Date | Country | Kind |
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2019-182871 | Oct 2019 | JP | national |