Vehicle body structure
By incorporating crossbeams and inclined connecting frames into the vehicle body structure, the vibration and noise problems caused by load transmission are resolved, enhancing the rigidity of the vehicle body and the protection performance of the passenger space.
Patent Information
- Application Number
- CN202211082155.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Priority Date
- 2021-11-10
- Filing Date
- 2022-09-06
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2042-09-06
AI Technical Summary
In the prior art, the load from the rear suspension is transmitted through the channel frame and the rear side frame, which makes the central component prone to bending and deformation, causing vibration and noise problems.
In the car body structure, a crossbeam is set below the load input section, and the load input section is connected to the crossbeam by an inclined connecting frame to reduce compressive load and enhance body rigidity. A separate center frame is set in the center of the passenger space to improve torsional rigidity.
It effectively suppresses vibration and noise caused by loads from the rear suspension system, and improves the torsional rigidity of the vehicle body and the protection performance of the passenger space.
Smart Images

Figure CN115892233B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present disclosure relates to a vehicle body structure of an automobile. BACKGROUND
[0002] In the floor panel of a conventional automobile, a tunnel portion is formed in a manner extending in the vehicle front-rear direction in the center portion in the vehicle left-right direction. The tunnel portion is a portion that accommodates an exhaust pipe extending from an engine room on the vehicle front side to the rear portion, a drive shaft that transmits power of an engine on the vehicle front side to a rear wheel, and the like, and thus is largely bulged upward than the bottom of a seat cushion.
[0003] For example, as disclosed in Patent Literature 1, a tunnel bracket extending in the vehicle front-rear direction is provided on an upper surface portion of the tunnel portion, and a closed cross-sectional structure extending in the vehicle front-rear direction is constituted by the tunnel portion and the tunnel bracket. In the vehicle body structure of Patent Literature 1, a pair of left and right rear side brackets extending in the vehicle front-rear direction are provided at positions on the vehicle rear side than the tunnel portion, and a pair of left and right center members extending from the vehicle rear portion of the tunnel bracket to the left and right rear side brackets are further provided.
[0004] PRIOR ART DOCUMENTS
[0005] PATENT LITERATURE
[0006] Patent Literature 1: Japanese Patent Application Publication No. 2019-123461 SUMMARY
[0007] PROBLEMS TO BE SOLVED BY THE INVENTION
[0008] However, a load input from the rear suspension device is transmitted to the rear side bracket. In Patent Literature 1, the tunnel bracket of the passenger compartment and the left and right rear side brackets of the vehicle rear portion are linked with the left and right center members, and thus the load input from the rear suspension device is transmitted to the tunnel bracket via the rear side brackets and the center members.
[0009] At this time, the tunnel bracket is joined to the upper surface portion of the tunnel portion that is largely bulged upward than the bottom of the seat cushion as described above, and thus is disposed at a position higher than the rear side bracket. Thus, the upward load from the rear suspension device is input to the tunnel bracket via the center members toward the obliquely upward direction once input to the rear side bracket. That is, the load from the rear suspension device applied to the center members acts mainly in the compression direction, and the center members subjected to such a compression load are easily deformed in flexure, and become a cause of generation of vibration and noise caused by the load input from the rear suspension device.
[0010] The present disclosure is made in view of the above circumstances, and aims to suppress vibration and noise caused by a load input from a rear suspension device.
[0011] MEANS FOR SOLVING THE PROBLEMS
[0012] To achieve the foregoing object, a first aspect of the present disclosure provides a vehicle body structure provided in an automobile. The vehicle body structure includes: a floor panel that constitutes a floor of an occupant space in which a seat on which an occupant sits is provided; a left-side rear side member that extends in a vehicle front-rear direction at a position behind the floor panel and on a left side of the vehicle; a right-side rear side member that extends in the vehicle front-rear direction at a position behind the floor panel and on a right side of the vehicle; a left-side load input portion that is fixed to the left-side rear side member and to which a load from a rear suspension device is input; a right-side load input portion that is fixed to the right-side rear side member and to which the load from the rear suspension device is input; a cross member that extends in a vehicle width direction and is provided at a position below the left-side load input portion and the right-side load input portion at a rear portion of the floor panel; a left-side rear link member that links the left-side load input portion and the cross member; and a right-side rear link member that links the right-side load input portion and the cross member.
[0013] According to this configuration, the cross member is positioned below the left-side load input portion, and therefore the left-side rear link member that links the cross member and the left-side load input portion is inclined upward toward the left-side load input portion. Therefore, upward loads from the rear suspension device are input to the left-side rear link member in a tensile direction, and therefore it is difficult to cause the left-side rear link member to be flexibly deformed compared to a case in which loads in a compression direction are input, and thus vibrations and noise caused by input of loads from the rear suspension device are suppressed. The same applies to the right-side rear link member.
[0014] In a second aspect of the present disclosure, a center member that extends in the vehicle front-rear direction is further provided, and the center member is provided so as to be separated upward from the floor panel at a central portion in the vehicle width direction of the occupant space. A rear portion of the center member is linked to the cross member.
[0015] According to this configuration, it is possible to increase the rigidity of the floor panel.
[0016] In a third aspect of the present disclosure, a travel motor that drives rear wheels of the automobile is further provided, and the travel motor is mounted at a position behind the floor panel. The travel motor is provided at a position behind a rear portion of the center member.
[0017] In a fourth aspect of the present disclosure, left and right drive shafts that transmit rotational force of the travel motor to the rear wheels are further provided. The left-side rear link member is provided in front of the left-side drive shaft in the vehicle front-rear direction, and the left-side drive shaft is configured so as to coincide with a portion of the left-side rear link member when viewed in the vehicle front-rear direction. Furthermore, the right-side rear link member is provided in front of the right-side drive shaft in the vehicle front-rear direction, and the right-side drive shaft is configured so as to coincide with a portion of the right-side rear link member when viewed in the vehicle front-rear direction.
[0018] According to this configuration, the rear portion of the center frame separated upward from the floor panel is connected to the floor panel, so the torsional rigidity of the vehicle body can be sufficiently improved even in the case of a floor panel having no floor tunnel.
[0019] That is, for example, when an impact load acts from the rear of the vehicle, there is a case where the left and right drive shafts are intended to move toward the front of the vehicle together with the traveling motor. At this time, since the left and right rear connecting frames are respectively arranged in front of the left and right drive shafts in the vehicle front-rear direction and overlap when viewed in the vehicle front-rear direction, the left and right drive shafts intended to move toward the front of the vehicle are prevented from moving forward by the left and right rear connecting frames, for example, are guided downward. Thereby, the protection performance of the passenger compartment is improved.
[0020] In a fifth aspect of the present disclosure, the left and right rear connecting frames can be respectively arranged to be located outward in the vehicle width direction as they are closer to the rear of the vehicle.
[0021] In a sixth aspect of the present disclosure, a connecting member connecting the left and right load input portions is arranged to extend in the vehicle left-right direction.
[0022] According to this configuration, the strength of the left and right load input portions can be improved.
[0023] Effects of the Invention
[0024] As described above, the beam is arranged at a position lower than the left and right load input portions to which loads from the rear suspension device are input, the beam is connected to the left load input portion with the left rear connecting frame, and the beam is connected to the right load input portion with the right rear connecting frame, so vibrations and noises caused by input of loads from the rear suspension device can be suppressed. BRIEF DESCRIPTION OF DRAWINGS
[0025] Figure 1 is a side view of an automobile having the vehicle body structure of the embodiment of the present invention.
[0026] Figure 2 is a perspective view showing a state in which the automobile is divided into an upper structure and a lower structure.
[0027] Figure 3 is a perspective view of a portion of the vehicle body structure viewed from above.
[0028] Figure 4 is a plan view of a portion of the vehicle body structure.
[0029] Figure 5 is a cross-sectional view of line V-V in Figure 4 .
[0030] Figure 6 is a cross-sectional view of the VI-VI line in Figure 4
[0031] Figure 7 is a cross-sectional view of the VII-VII line in Figure 4
[0032] Figure 8 is an enlarged perspective view showing a passenger room side floor panel and its vicinity.
[0033] Figure 9 is an enlarged cross-sectional view showing a seat rail and its vicinity.
[0034] Figure 10 is an enlarged plan view showing a part of the seat rail and its vicinity.
[0035] Figure 11 is an enlarged perspective view showing a mounting portion of the seat rail and its vicinity.
[0036] Figure 12 is a cross-sectional view of a bending portion of the center frame and its vicinity.
[0037] Figure 13 is a cross-sectional view of a front portion of a rear frame member constituting the center frame and its vicinity.
[0038] Figure 14 is a perspective view of the connecting member.
[0039] Figure 15 is a perspective view of the connecting member, viewed from another direction.
[0040] Figure 16 is a side view of the connecting member.
[0041] Figure 17 is a cross-sectional view of the air conditioning device and its vicinity.
[0042] Figure 18 is an enlarged perspective view showing a rear portion of the center frame and its vicinity.
[0043] Figure 19 is an enlarged perspective view of the cowl panel and its vicinity, viewed from the rear side of the vehicle.
[0044] Figure 20 is a schematic view of the cooling path.
[0045] Figure 21 is a view of the layout of the supply and discharge pipes of the cooling water, viewed from the rear.
[0046] Figure 22 is a view of the layout of the supply and discharge pipes of the cooling water, viewed from the left side.
[0047] Symbol Explanation
[0048] 1 automobile
[0049] 41 passenger space side floor panel
[0050] 43 connecting panel
[0051] 44E rear cross member
[0052] 50 front bulkhead
[0053] 80 center pillar
[0054] 110a left side load input portion
[0055] 111A left side rear pillar (left side rear connecting pillar)
[0056] 112A left side rear side pillar
[0057] A vehicle body structure
[0058] R1 passenger space
[0059] R3 trunk space DETAILED DESCRIPTION
[0060] Embodiments of the present application are described in detail below based on the drawings. Note that the following description of preferred embodiments is merely an illustration in nature and does not limit the present application and its applicability or use.
[0061] Figure 1 is a side view of an automobile 1 provided with a vehicle body structure A of an embodiment of the present application, as viewed from the left side. In the description of this embodiment, the vehicle front-rear direction is simply referred to as the "front-rear direction", the front side of the vehicle is simply referred to as the "front side", and the "rear side" of the vehicle is simply referred to as the rear. Furthermore, the vehicle width direction is the left-right direction of the vehicle, the left side of the vehicle is simply referred to as the "left side", and the right side of the vehicle is simply referred to as the "right side".
[0062] (Overall configuration of automobile)
[0063] The automobile 1 is a passenger car, and in the middle portion in the front-rear direction of the automobile 1, a passenger space R1 for passengers to ride in is provided. In the passenger space R1, a front seat (front-seat seat) FS that constitutes a front seat and a rear seat (rear-seat seat) RS that constitutes a rear seat are provided. The front seat FS includes a driver's seat disposed on the right side (or left side) of the passenger space R1 and a front passenger's seat disposed on the left side (or right side) of the passenger space R1. The rear seat RS is also disposed on the right side and left side of the passenger space R1, respectively. Although not shown, a third seat can also be disposed behind the rear seat RS. Furthermore, the rear seat RS is not essential and can be omitted.
[0064] A front door FD and a rear door RD are provided on the left and right sides of the passenger space Rl, respectively. In the case of the vehicle 1 without the rear seat RS, the rear door RD can be omitted.
[0065] A front side space R2 is provided in front of the passenger space Rl in the vehicle 1. In the front side space R2, a powertrain PT can be mounted as needed. In the case where the powertrain PT is mounted in the front side space R2, the front side space R2 can be referred to as, for example, a powertrain housing chamber, a motor compartment, an engine compartment, or the like. A bonnet hood BF is provided in the upper portion of the front side space R2.
[0066] A trunk space R3 capable of accommodating luggage and the like is provided in the rear of the passenger space Rl in the vehicle 1. The trunk space R3 is openable and closable by a trunk lid TR. A rear side space R4 is provided in the rear of the passenger space Rl and below the trunk space R3 in the vehicle 1. In the rear side space R4, a powertrain PT that generates power for the vehicle 1 can be mounted as needed. In the case where the powertrain PT is mounted in the rear side space R4, the rear side space R4 can be referred to as, for example, a powertrain housing chamber, a motor compartment, an engine compartment, or the like.
[0067] The powertrain PT can be mounted in both the front side space R2 and the rear side space R4, or can be mounted in only one of them. In the case where the powertrain PT is mounted in only the front side space R2, it is a front-wheel drive vehicle in which the powertrain PT drives only the front wheels FT. In the case where the powertrain PT is mounted in only the rear side space R4, it is a rear-wheel drive vehicle in which the powertrain PT drives only the rear wheels RT. Further, in the case where the powertrain PT is mounted in both the front side space R2 and the rear side space R4 to drive both the front wheels FT and the rear wheels RT, it is a four-wheel drive vehicle.
[0068] The powertrain PT includes at least a traveling motor M (shown in Figure 2 ) for driving the drive wheels, and can include a reducer, a transmission, or the like as needed. Thus, the vehicle 1 is an electric vehicle. The traveling motor M is provided so that its center of rotation extends in the left-right direction. The powertrain PT can include, in addition to the traveling motor M, a control unit, or the like. The powertrain PT can also include an internal combustion engine. A battery unit Y (also shown in Figure 1 ) for supplying power to the traveling motor M is mounted in the lower portion of the vehicle 1. For example, charging of the battery unit Y can be performed using power generated by the internal combustion engine, or at least one of the front wheels FT and the rear wheels RT can be driven by power generated by the internal combustion engine.
[0069] The type of the vehicle 1 can also be Figure 1The example shown is a four-door vehicle, such as a car without a rear door RD. Furthermore, although not shown, the invention can also be applied to vehicles like hatchbacks where the rear side space R4 can be opened and closed via the tailgate.
[0070] like Figure 2 As shown, automobile 1 has a lower structure 2 and an upper structure 3, and the lower structure 2 and the upper structure 3 constitute the vehicle body structure A. Figure 2 The image shows the upper structure 3 after the original doors (FD), RD, hood (BF), fenders, windows, roof, center pillars, rear pillars, bumpers, front and rear lights, dashboard, and front and rear seats have been removed. Furthermore, in... Figure 2 The image shows the lower structure 2 after its original front wheel FT, rear wheel RT, suspension system, and other components have been removed.
[0071] The lower structure 2 includes a battery unit Y. The battery unit Y has a front battery FB and a rear battery RB, and a frame 10 surrounding the front battery FB and the rear battery RB. In addition, the lower structure 2 includes a front support frame 20 extending forward from the front of the frame 10 and a rear support frame 30 extending rearward from the rear of the frame 10.
[0072] Although not illustrated, in the case of a typical automobile, the battery unit is usually installed under the floor as a separate component from the vehicle body so that it can be installed and removed. However, in this embodiment, not only the batteries FB and RB, but also the front support frame 20 and the rear support frame 30 are integrated into the frame 10 surrounding the batteries FB and RB. The front support frame 20 and the rear support frame 30 can also be installed and removed from the upper structure 3 together with the batteries FB and RB.
[0073] Specifically, the vehicle 1 of this embodiment is configured to be divisible into a lower structure 2 containing batteries FB and RB, and an upper structure 3 forming a passenger compartment R1 and a trunk space R3. The ability to be divisible means that the lower structure 2 is integrated with the upper structure 3 using bolts, nuts, screws, and other fastening components without welding or bonding. Therefore, after the vehicle 1 is delivered to the user, the lower structure 2 can be separated from the upper structure 3 as needed for maintenance and repair, resulting in good maintainability.
[0074] Here, as a vehicle body structure of an automobile, a ladder frame type vehicle body structure is known. In the case of the ladder frame type vehicle body structure, it is possible to divide into a ladder and a cabin upward and downward, but since the ladder extends continuously in the front-rear direction, it mainly receives a collision load at the time of a front collision and at the time of a rear collision. At the time of a side collision, the ladder only receives a collision load assistively, and the cabin mainly receives a collision load. In this way, in the ladder frame type vehicle body structure, members that receive a collision load at the time of a front collision and at the time of a rear collision are distinguished from members that receive a collision load at the time of a side collision.
[0075] In the case of the automobile 1 of the present embodiment, although the lower structure 2 and the upper structure 3 having the front support frame 20 and the rear support frame 30 are dividable, a collision load is received by the lower structure 2 and the upper structure 3 in both cases of the time of a front collision and the time of a rear collision and the time of a side collision, so that it is possible to disperse and absorb the collision load to the two structures 2, 3, which is greatly different from the technical idea of the conventional ladder frame type vehicle body structure. The structures of the lower structure 2 and the upper structure 3 will be described in turn.
[0076] (Lower structure)
[0077] First, the lower structure 2 will be described. The lower structure 2 has, in addition to the batteries FB, RB, the frame-shaped frame 10, the front support frame 20, and the rear support frame 30, a powertrain PT, front wheels FT, rear wheels RT, Figure 4 front side suspension devices SP1, SP2 and rear side suspension devices SP3, SP4 are indicated by broken lines. The forms of the front side suspension devices SP1, SP2 and the rear side suspension devices SP3, SP4 are not particularly limited, and the vehicle body structure can be changed depending on the forms of the front side suspension devices SP1, SP2 and the rear side suspension devices SP3, SP4.
[0078] As shown in FIG. 1, the frame-shaped frame 10 is a member for protecting the front side battery FB and the rear side battery RB, wire harnesses, and the like by surrounding them. The frame-shaped frame 10 is formed as a large member from the vicinity of the left end portion of the passenger space side floor panel 41 to the vicinity of the right end portion thereof and from the vicinity of the front end portion of the passenger space side floor panel 41 to the vicinity of the rear end portion thereof on the lower side of the passenger space side floor panel 41 as described later. By providing the frame-shaped frame 10 in a wide range of the lower area of the passenger space side floor panel 41 in this way, it is possible to mount large-capacity batteries FB, RB on the automobile 1. The batteries FB, RB can be, for example, lithium ion batteries, all-solid-state batteries, or other secondary batteries. In addition, the batteries FB, RB can be so-called battery cells or battery packs in which a plurality of battery cells are housed. Figure 2 As shown in FIG. 1, the frame-shaped frame 10 is a member for protecting the front side battery FB and the rear side battery RB, wire harnesses, and the like by surrounding them. The frame-shaped frame 10 is formed as a large member from the vicinity of the left end portion of the passenger space side floor panel 41 to the vicinity of the right end portion thereof and from the vicinity of the front end portion of the passenger space side floor panel 41 to the vicinity of the rear end portion thereof on the lower side of the passenger space side floor panel 41 as described later. By providing the frame-shaped frame 10 in a wide range of the lower area of the passenger space side floor panel 41 in this way, it is possible to mount large-capacity batteries FB, RB on the automobile 1. The batteries FB, RB can be, for example, lithium ion batteries, all-solid-state batteries, or other secondary batteries. In addition, the batteries FB, RB can be so-called battery cells or battery packs in which a plurality of battery cells are housed.
[0079] The frame 10 has a left side member 11, a right side member 12, a front side member 13, and a rear side member 14. The left side member 11, the right side member 12, the front side member 13, and the rear side member 14 are formed of, for example, extruded members made of aluminum alloy, but can be formed of press-formed members made of aluminum alloy sheet or steel sheet. In the following description, the case where referred to as "extruded member" is an extruded member made of aluminum alloy, and the case where referred to as "press-formed member" is a press-formed member made of aluminum alloy sheet or steel sheet. Further, each member can be formed of, for example, a casting or a die casting.
[0080] The cross-sectional shape of each of the left side member 11, the right side member 12, the front side member 13, and the rear side member 14 in a direction orthogonal to the longitudinal direction is rectangular. Further, the left side member 11, the right side member 12, the front side member 13, and the rear side member 14 are all arranged at the same height and extend substantially horizontally. Further, when the upper structure 3 is coupled to the lower structure 2, the front side member 13 is fastened and fixed to the lower portion of the front wall 50 by a fastening member, and the left side member 11 and the right side member 12 are fastened and fixed to the left and right side sills 60, respectively, by fastening members. Further, the rear side member 14 is fastened and fixed to the connection panel 43 described later by a fastening member.
[0081] The left side member 11 is provided at the left end portion of the lower structure 2 and extends in the front-rear direction. The right side member 12 is provided at the right end portion of the lower structure 2 and extends in the front-rear direction. The left side member 11 and the right side member 12 are arranged inward in the vehicle width direction of the left and right side sills 60 described later, respectively. Further, the front side member 13 is provided at the front portion of the battery unit Y and extends in the left-right direction from the front end portion of the left side member 11 to the front end portion of the right side member 12. The left end portion of the front side member 13 is connected to the front end portion of the left side member 11, and the right end portion of the front side member 13 is connected to the front end portion of the right side member 12. The rear side member 14 is provided at the rear portion of the battery unit Y and extends in the left-right direction from the rear end portion of the left side member 11 to the rear end portion of the right side member 12. The left end portion of the rear side member 14 is connected to the rear end portion of the left side member 11, and the right end portion of the rear side member 14 is connected to the rear end portion of the right side member 12.
[0082] A cover member 15 that becomes a floor panel is installed to a lower portion of the frame 10. The frame 10 is closed from below by the cover member 15. The cover member 15 extends substantially horizontally, is fixed to lower surfaces of the left side member 11, the right side member 12, the front side member 13, and the rear side member 14, and is also fixed to the sill 60 as described later. In addition, an upper portion of the frame 10 can be closed by a cover not shown or by a passenger space side floor panel 41 described later. In addition, electric power of the batteries FB, RB housed in the frame 10 is supplied to the traveling motor M via a traveling control circuit not shown. Further, charging of the batteries FB, RB can be achieved via a charging socket not shown.
[0083] Figure 5 A cross section that indicates a central portion in the left-right direction of the vehicle body structure A. As shown in this Figure 5 On the inside of the frame 10, as a reinforcing member that extends in the left-right direction, first to third battery side cross members 10A, 10B, 10C are provided. The heights of the first to third battery side cross members 10A, 10B, 10C are all the same, and are the same as the heights of the front side member 13 and the rear side member 14. The first to third battery side cross members 10A, 10B, 10C can be composed of extruded members or can be composed of press-formed members. In this embodiment, although three battery side cross members 10A, 10B, 10C are provided, the number of battery side cross members 10A, 10B, 10C can be increased or decreased according to the size in the front-rear direction of the frame 10.
[0084] The first to third battery side cross members 10A, 10B, 10C are arranged at intervals from each other in the front-rear direction, with the first battery side cross member 10A being located at the frontmost and the third battery side cross member 10C being located at the rearmost. Lower portions of the respective battery side cross members 10A, 10B, 10C are fixed to an upper surface of the cover member 15. In addition, left end portions of the respective battery side cross members 10A, 10B, 10C are fixed to inner surfaces (right side surfaces) of the left side member 11, and right end portions of the respective battery side cross members 10A, 10B, 10C are fixed to inner surfaces (left side surfaces) of the right side member 12. That is, the battery side cross members 10A, 10B, 10C are members that connect the left side member 11 and the right side member 12.
[0085] On the inside of the frame 10, as a reinforcing member that extends in the front-rear direction, a front central member 16 and first to third rear central members 17 to 19 are provided. The front central member 16 and the first to third rear central members 17 to 19 can also be referred to as battery racks that extend in the front-rear direction, and the battery cells Y are configured to have battery racks composed of the front central member 16, the first to third rear central members 17 to 19, and the like. The battery racks can also include the left side member 11, the right side member 12, the front side member 13, and the rear side member 14.
[0086] The front central member 16 and the first to third rear central members 17 to 19 are arranged at substantially the same height and are disposed in the central portion in the left-right direction of the frame-shaped frame 10. The lower end portions of the front central member 16 and the first to third rear central members 17 to 19 are attached to the upper surface of the cover member 15. The front central member 16 and the first to third rear central members 17 to 19 extend from the front side member 13 to the rear side member 14.
[0087] The front central member 16 is arranged between the front side member 13 and the first battery side beam 10A, and the front end portion of the front central member 16 is fixed to the central portion in the left-right direction of the front side member 13, and the rear end portion of the front central member 16 is fixed to the central portion in the left-right direction of the first battery side beam 10A. Therefore, the front side member 13 is a member that extends in such a manner that the front end portions of the left side member 11 and the right side member 12 are connected to the front end portion of the front central member 16.
[0088] The first rear central member 17 is arranged between the first battery side beam 10A and the second battery side beam 10B, and the front end portion of the first rear central member 17 is fixed to the central portion in the left-right direction of the first battery side beam 10A, and the rear end portion of the first rear central member 17 is fixed to the central portion in the left-right direction of the second battery side beam 10B. Further, the second rear central member 18 is arranged between the second battery side beam 10B and the third battery side beam 10C, and the front end portion of the second rear central member 18 is fixed to the central portion in the left-right direction of the second battery side beam 10B, and the rear end portion of the second rear central member 18 is fixed to the central portion in the left-right direction of the third battery side beam 10C. Further, the third rear central member 19 is arranged between the third battery side beam 10C and the rear side member 14, and the front end portion of the third rear central member 19 is fixed to the central portion in the left-right direction of the third battery side beam 10C, and the rear end portion of the third rear central member 19 is fixed to the central portion in the left-right direction of the rear side member 14. Therefore, the first to third battery side beams 10A, 10B, 10C and the front central member 16 and the first to third rear central members 17 to 19 are arranged in a lattice shape on the inner side of the frame-shaped frame 10 and are connected to each other, and thus the reinforcing effect of the frame-shaped frame 10 and the reinforcing effect of the lower structure 2 are further improved.
[0089] When a virtual straight line extending in the front-rear direction in plan view is assumed, the front central member 16 and the first to third rear central members 17 to 19 are each set in the left-right direction so as to be arranged on the virtual straight line. That is, the first to third rear central members 17 to 19 are arranged in such a manner that there are virtual extension lines of the front central member 16 toward the rear. In addition, the front central member 16 and the first to third rear central members 17 to 19 can also be constituted by one member that is continuous in the front-rear direction. In this case, one member extends from the front side member 13 to the rear side member 14.
[0090] As Figure 2As shown, there is a pair of front support frames 20, extending horizontally in a straight line below the upper structure 3. Each front support frame 20 can be made of, for example, an extruded part or a pressed part. In this embodiment, each front support frame 20 is made of an extruded part, so the cross-sectional shape in the direction orthogonal to the front-rear direction is approximately equal from the front end to the rear end.
[0091] The left front support frame 20 is connected to the front side member 13, which forms the front part of the frame 10, at a position slightly to the left of the center in the left-right direction. This connection point is located to the right of the left side member 11 of the frame 10. Similarly, the right front support frame 20 is connected to the front side member 13, which is slightly to the right of the center in the left-right direction. This connection point is located to the left of the right side member 12 of the frame 10. The left and right front support frames 20 are approximately the same height.
[0092] The front powertrain PT is mounted to the front support frame 20 via a mounting member not shown. In this case, the front support frame 20 becomes a front motor support frame that supports the driving motor M in front of the battery unit Y. On the lower structure 2, drive shafts S1 that transmit the output of the powertrain PT (the rotational force of the driving motor M) to the left and right front wheels FT are respectively provided on the left and right sides.
[0093] In addition, constituting Figure 4 The left and right suspension arms of a portion of the front suspension devices SP1 and SP2, indicated by dashed lines, are supported in a vertically swaying manner relative to the left and right front support frames 20. The front support frame 20 may also be a component used to support the suspension arms without supporting the powertrain PT.
[0094] like Figure 2 As shown, the rear support frame 30, like the front support frame 20, is provided in a pair on the left and right, extending rearward in a generally horizontal, straight line. Each rear support frame 30 can be constructed, for example, from an extruded part or a pressed molded part. In this embodiment, each rear support frame 30 is constructed from an extruded part.
[0095] The left rear support bracket 30 is connected to the rear side member 14, which forms the rear part of the frame 10, at a position slightly to the left of the center in the left-right direction. This connection point is located to the right of the left side member 11 of the frame 10. Similarly, the right rear support bracket 30 is connected to the rear side member 14, which is slightly to the right of the center in the left-right direction. This connection point is located to the left of the right side member 12 of the frame 10.
[0096] The powertrain PT on the rear side is attached to the rear support frame 30 via an unillustrated attachment member. In this case, the rear support frame 30 becomes a rear motor support frame that supports the travel motor M on the rear side of the battery unit Y. On the lower structure body 2, a drive shaft S2 that transmits the output (rotational force of the travel motor M) of the powertrain PT to the left and right rear wheels RT is provided.
[0097] Further, the left and right suspension arms that constitute Figure 4 part of the rear suspension devices SP3, SP4 indicated by broken lines are respectively supported swingably in the up-down direction with respect to the left and right rear support frames 30. The rear support frames 30 can also be members for supporting the suspension arms without supporting the powertrain PT.
[0098] (Upper structure body)
[0099] Next, the upper structure body 3 will be described. The upper structure body 3 is provided with a floor constituting member 40, a dash panel 50, and a pair of side sills 60. The floor constituting member 40 is a member that is disposed above the frame-type frame 10 and the rear support frame 30 of the lower structure body 2. This floor constituting member 40 is provided with a passenger space side floor panel (first floor panel) 41 that constitutes a floor of a passenger space R1 in which a front seat FS and a rear seat RS (indicated in Figure 1 ) are provided, a trunk space side floor panel (second floor panel) 42 that constitutes a floor of a trunk space R3, and a connecting panel 43 that connects a rear portion of the passenger space side floor panel 41 and a front portion of the trunk space side floor panel 42. The connecting panel 43 constitutes a kick-up portion.
[0100] The floor constituting member 40 can be constituted, for example, by a member that is press-formed from a steel sheet or the like. The passenger space side floor panel 41, the trunk space side floor panel 42, and the connecting panel 43 can be integrally formed, or can be formed as members that are connected after they are formed. Further, in the present embodiment, although the case is described in which the floor constituting member 40 is divided into the passenger space side floor panel 41, the trunk space side floor panel 42, and the connecting panel 43, the floor constituting member 40 including these panels 41 to 43 can also be referred to as a floor panel. Further, only the passenger space side floor panel 41 can also be referred to as a floor panel.
[0101] The occupant-space-side floor panel 41 extends from the front portion to the rear portion of the occupant space Rl and extends from the left side portion to the right side portion of the occupant space Rl. The occupant-space-side floor panel 41 of the present embodiment is a floor panel of a no-tunnel configuration that does not have a tunnel portion. That is, in the floor panel of a conventional automobile, a tunnel portion that greatly bulges upward and extends in the front-rear direction is generally provided in the central portion in the vehicle width direction. This tunnel portion is a portion through which, for example, an exhaust pipe that extends rearward from an engine mounted in an engine compartment at the front portion of the vehicle or a propeller shaft that transmits the output of the engine mounted in the engine room at the front portion of the vehicle to the rear wheels passes. In many cases, the diameter of the exhaust pipe or the propeller shaft is, for example, 10 cm or more, and in order to prevent interference between the exhaust pipe or the propeller shaft and the floor panel in advance, a gap of at least several cm or more is required between the exhaust pipe or the propeller shaft and the floor panel. Further, there are cases in which an insulator or the like is provided to the inner surface of the tunnel portion. For these reasons, the bulging height of the tunnel portion from the floor panel is, for example, 15 cm or more or 20 cm or more, and in terms of the positional relationship with the seat, the upper end of the tunnel portion is higher than the lower end of the seat cushion on the seat rail or the central portion in the up-down direction of the seat cushion. A configuration in which the tunnel portion does not greatly bulge upward in this way is a no-tunnel configuration.
[0102] The occupant-space-side floor panel 41, although it does not have a tunnel portion that has a height of 15 cm or more or 20 cm or more from the upper surface of the occupant-space-side floor panel 41 as described above, can have, for example, a low bulging portion that has a height of 5 cm or less or 10 cm or less from the upper surface of the occupant-space-side floor panel 41. In the case of such a low bulging portion, since the exhaust pipe and the propeller shaft cannot pass through the inside thereof, it does not function as a tunnel portion. Therefore, even if a low bulging portion that has a height of 5 cm or less or 10 cm or less from the upper surface of the occupant-space-side floor panel 41 is provided, the floor panel is a floor panel of a no-tunnel configuration. Further, the occupant-space-side floor panel 41 can be provided with a rib or the like that protrudes upward and extends in the front-rear direction. The height of such a rib is several cm or so, and therefore even if a rib is provided, the floor panel is a floor panel of a no-tunnel configuration.
[0103] In the present embodiment, since the powertrain PT includes the travel motor M, it is not necessary to mount an internal combustion engine in the front-side space R2, and therefore it is not necessary to guide the exhaust pipe to the rear of the vehicle. Further, if the powertrain PT is mounted in the rear-side space R4, it is also possible to drive the rear wheels RT by the powertrain PT, and it is possible to omit the propeller shaft. Therefore, it is possible to provide the occupant-space-side floor panel 41 as a floor panel of a no-tunnel configuration.
[0104] As described above, in the present embodiment, the occupant-space-side floor panel 41 is a floor panel of a no-tunnel configuration that does not have a tunnel portion that greatly bulges upward and extends in the front-rear direction. Therefore, the occupant-space-side floor panel 41 does not interfere with the exhaust pipe or the propeller shaft, and the exhaust pipe or the propeller shaft can pass through the inside of the occupant-space-side floor panel 41. Further, the occupant-space-side floor panel 41 is a floor panel of a no-tunnel configuration, and therefore the occupant-space-side floor panel 41 does not have a tunnel portion that protrudes upward and extends in the front-rear direction. Therefore, the occupant-space-side floor panel 41 does not interfere with the seat cushion on the seat rail or the central portion in the up-down direction of the seat cushion, and the seat cushion on the seat rail or the central portion in the up-down direction of the seat cushion can pass through the inside of the occupant-space-side floor panel 41. Figure 3As shown in the diagram, a recessed portion 41a, bulging downwards, is formed in the middle of the front-rear direction of the passenger compartment side floor panel 41. The recessed portion 41a has a bottom portion 41b capable of supporting the feet of the rear passenger seat RS. The bottom portion 41b is formed approximately horizontally. The front portion of the recessed portion 41a is formed to gradually deepen towards the rear. The recessed portion 41a is continuously formed from the left side to the right side of the passenger compartment side floor panel 41.
[0105] The bottom portion 41b of the recess 41a is set to approximately the same height as the lower part of the side beam 60 (described later), thereby sufficiently reducing the height of the bottom portion 41b. The positional relationship between the recess 41a and the seat cushion of the rear seat RS in the fore-and-aft direction is set such that when a rear passenger seated on the rear seat RS places their feet directly beneath it, their feet are naturally resting on the bottom portion 41b. The position of the front portion of the recess 41a is set such that when a rear passenger seated on the rear seat RS moves their feet diagonally forward, their feet are resting on the bottom portion 41b. In other words, the position and fore-and-aft dimensions of the recess 41a are set such that even if the rear passenger moves their feet slightly forward or backward, their feet can still rest on the bottom portion 41b. This increases the legroom for the rear passenger, improving comfort. Furthermore, the depth of the recess 41a can be, for example, 5 cm or more, or 10 cm or more.
[0106] A floor frame 41c extending in the front-rear direction is provided at the center of the recessed portion 41a in the left-right direction. The lower part of the floor frame 41c is fixed to the bottom part 41b of the recessed portion 41a. By providing the floor frame 41c, the portion of the passenger compartment side floor panel 41 where the recessed portion 41a is formed can be strengthened.
[0107] The trunk space side floor panel 42 is positioned higher than the passenger space side floor panel 41. The rear side space R4 is located below the trunk space side floor panel 42. That is, the trunk space side floor panel 42 is arranged to separate the trunk space R3 and the rear side space R4. The front-rear dimension of the trunk space side floor panel 42 is set to be shorter than the front-rear dimension of the passenger space side floor panel 41.
[0108] Because the trunk-side floor panel 42 is positioned higher than the passenger-side floor panel 41, the connecting panel 43 extends vertically. The connecting panel 43 can be vertical or tilted towards the rear as it moves higher.
[0109] like Figure 7 As shown in the diagram, the front bulkhead 50 is a component that serves as a partition between the front side space R2 and the passenger space R1. It extends upward from the front of the passenger space side floor panel 41 and also extends in the left and right directions, dividing the front of the passenger space R1.
[0110] like Figure 4 As shown, the left and right side beams 60 are arranged to extend in the front-rear direction from the left and right ends of the passenger compartment side floor panel 41, respectively. The left side beam 60 is connected to the left end of the passenger compartment side floor panel 41 at its midpoint in the vertical direction. The upper portion of the side beam 60 protrudes upward from the connection point of the passenger compartment side floor panel 41, and the lower portion of the side beam 60 protrudes downward from the connection point of the passenger compartment side floor panel 41. Since the battery unit Y, including batteries FB and RB, is arranged below the passenger compartment side floor panel 41, when viewing the vehicle from the side, the lower portion of the side beam 60 is configured to overlap with the batteries FB and RB. Similarly, the right side beam 60 is also connected to the right end of the passenger compartment side floor panel 41.
[0111] like Figure 3 As shown, the upper structure 3 has a pair of hinge pillars 70 on the left and right sides. The right hinge pillar 70 extends upward from the front end of the right side beam 60. Similarly, the left hinge pillar 70 extends upward from the front end of the left side beam 60. Left and right front doors FD (front doors) are rotatably mounted on the left and right hinge pillars 70, respectively. Figure 1 (As shown). The left edge of the front bulkhead 50 is connected to the right side of the left hinge pillar 70. Furthermore, the right edge of the front bulkhead 50 is connected to the left side of the right hinge pillar 70. Additionally, although not shown, a center pillar and a rear pillar are also provided on the upper structure 3.
[0112] On the left side of the upper structure 3, which is further forward than the front bulkhead 50, there is a suspension device (front suspension device) SP1 for the left front wheel FT. Figure 4 The left front wheel suspension support member 51A is supported by a dashed line. Furthermore, on the right side of the upper structure 3, further forward of the front bulkhead 50, a suspension device (front suspension device) SP2 for the right front wheel FT is provided. Figure 4 The front wheel suspension support member 51B on the right side (shown as a dashed line) is supported. The form of the suspension devices SP1 and SP2 is not particularly limited; for example, they may include suspension arms, shock absorbers, springs, etc., that freely support the front wheel FT in the vertical direction. The front wheel suspension support members 51A and 51B are fitted with the vehicle body-side ends of the suspension arms and the upper ends of the shock absorbers. The front wheel suspension support members 51A and 51B may be made of, for example, die-cast aluminum, but are not limited to this; they may also be constructed by combining steel plates, etc.
[0113] like Figure 6As shown in FIG. 1, three left-side brackets 52A for fixing the left-side front-wheel suspension support member 51A are provided on the left side of the front side of the cowl 50. The three left-side brackets 52A are arranged at intervals from each other in the vertical direction, and the front portions of the three left-side brackets 52A are fixed to the left-side front-wheel suspension support member 51A. On the other hand, the rear portions of the left-side brackets 52A arranged at the uppermost position and the intermediate position in the vertical direction are fixed to the left-side hinge pillar 70 and the left side of the cowl 50. Further, the rear portions of the left-side brackets 52A arranged at the lowermost position are fixed to the left-side rocker 60.
[0114] As shown in FIG. 1, three left-side brackets 52A for fixing the left-side front-wheel suspension support member 51A are provided on the left side of the front side of the cowl 50. The three left-side brackets 52A are arranged at intervals from each other in the vertical direction, and the front portions of the three left-side brackets 52A are fixed to the left-side front-wheel suspension support member 51A. On the other hand, the rear portions of the left-side brackets 52A arranged at the uppermost position and the intermediate position in the vertical direction are fixed to the left-side hinge pillar 70 and the left side of the cowl 50. Further, the rear portions of the left-side brackets 52A arranged at the lowermost position are fixed to the left-side rocker 60. Figure 3 As shown in FIG. 1, three left-side brackets 52A for fixing the left-side front-wheel suspension support member 51A are provided on the left side of the front side of the cowl 50. The three left-side brackets 52A are arranged at intervals from each other in the vertical direction, and the front portions of the three left-side brackets 52A are fixed to the left-side front-wheel suspension support member 51A. On the other hand, the rear portions of the left-side brackets 52A arranged at the uppermost position and the intermediate position in the vertical direction are fixed to the left-side hinge pillar 70 and the left side of the cowl 50. Further, the rear portions of the left-side brackets 52A arranged at the lowermost position are fixed to the left-side rocker 60.
[0115] Figure 2 As shown in FIG. 1, three left-side brackets 52A for fixing the left-side front-wheel suspension support member 51A are provided on the left side of the front side of the cowl 50. The three left-side brackets 52A are arranged at intervals from each other in the vertical direction, and the front portions of the three left-side brackets 52A are fixed to the left-side front-wheel suspension support member 51A. On the other hand, the rear portions of the left-side brackets 52A arranged at the uppermost position and the intermediate position in the vertical direction are fixed to the left-side hinge pillar 70 and the left side of the cowl 50. Further, the rear portions of the left-side brackets 52A arranged at the lowermost position are fixed to the left-side rocker 60.
[0116] As shown in FIG. 1, three left-side brackets 52A for fixing the left-side front-wheel suspension support member 51A are provided on the left side of the front side of the cowl 50. The three left-side brackets 52A are arranged at intervals from each other in the vertical direction, and the front portions of the three left-side brackets 52A are fixed to the left-side front-wheel suspension support member 51A. On the other hand, the rear portions of the left-side brackets 52A arranged at the uppermost position and the intermediate position in the vertical direction are fixed to the left-side hinge pillar 70 and the left side of the cowl 50. Further, the rear portions of the left-side brackets 52A arranged at the lowermost position are fixed to the left-side rocker 60. Figure 4 As shown in FIG. 1, three left-side brackets 52A for fixing the left-side front-wheel suspension support member 51A are provided on the left side of the front side of the cowl 50. The three left-side brackets 52A are arranged at intervals from each other in the vertical direction, and the front portions of the three left-side brackets 52A are fixed to the left-side front-wheel suspension support member 51A. On the other hand, the rear portions of the left-side brackets 52A arranged at the uppermost position and the intermediate position in the vertical direction are fixed to the left-side hinge pillar 70 and the left side of the cowl 50. Further, the rear portions of the left-side brackets 52A arranged at the lowermost position are fixed to the left-side rocker 60.
[0117] The upper structure 3 includes a left rear side frame 112A extending in the front-rear direction from the rear of the passenger compartment side floor panel 41, and a right rear side frame 112B extending in the front-rear direction from the rear of the passenger compartment side floor panel 41. The front part of the left rear side frame 112A is connected to the rear part of the left side beam 60. The front part of the right rear side frame 112B is connected to the rear part of the right side beam 60. Furthermore, the middle part of the left rear side frame 112A and the middle part of the right rear side frame 112B in the front-rear direction are connected by a trunk side crossbeam (connector) 105 extending in the left-right direction.
[0118] On the left side of the upper structure 3, behind the connecting panel 43, there is a suspension device (rear suspension device) SP3 for the left rear wheel RT. Figure 4 The rear wheel suspension support member 110A on the left side (shown as a dashed line) is supported by a suspension member 110A. The rear wheel suspension support member 110A is fixed to the left rear side frame 112A. Furthermore, on the right side of the upper structure 3, further rear of the connecting panel 43, a suspension device (rear suspension device) SP4 for the right rear wheel RT is provided. Figure 4 The rear wheel suspension support member 110B on the right side (shown as a dashed line) is supported. The rear wheel suspension support member 110B is fixed to the right rear side frame 112B. The form of the suspension devices SP3 and SP4 is not particularly limited, and may include, for example, suspension arms, shock absorbers, springs, etc., that can freely support the rear wheel RT in the vertical direction.
[0119] The upper part of the rear wheel suspension support member 110A is connected to the upper part of the spring and shock absorber of the left suspension device SP3. For example... Figure 3 As shown, the upper part of the rear wheel suspension support member 110A is the left load input section 110a, which receives loads from the springs and shock absorbers. Furthermore, the upper part of the springs and shock absorbers of the right-side suspension device SP4 is connected to the upper part of the rear wheel suspension support member 110B. The upper part of the rear wheel suspension support member 110B is the right load input section 110b, which receives loads from the springs and shock absorbers. The left load input section 110a and the right load input section 110b are also fixed to the left and right sides of the trunk space side floor panel 42. Further, the left load input section 110a and the right load input section 110b are connected by a trunk side crossbeam 105. The trunk side crossbeam 105 is joined to the upper surface of the trunk space side floor panel 42, and the trunk space side floor panel 42 and the trunk side crossbeam 105 form a closed cross-section structure extending in the vehicle width direction.
[0120] In addition, such as Figure 2As shown, a rear cross member 44E is provided below the left and right load input portions 110a and 110b, and is positioned lower than the left and right load input portions 110a and 110b. This rear cross member 44E is joined to the rear portion of the passenger space side floor panel 41.
[0121] The upper structure 3 can be divided into a front vehicle body structure and a rear vehicle body structure, for example. As shown, Figure 4 As shown, the rearward side of the upper structure 3 than the passenger space side floor panel 41 can be provided as a rear vehicle body structure. In the rearward side of the connection panel 43 of the upper structure 3, a left rear frame 111A that links the rear portion of the center frame 80 and the left rear wheel suspension support member 110A, and a right rear frame 111B that links the rear portion of the center frame 80 and the right rear wheel suspension support member 110B are provided. By linking the left and right rear wheel suspension support members 110A and 110B to the rear portion of the center frame 80, respectively, the rigidity of the rear wheel suspension support members 110A and 110B can be improved, and the handling stability of the vehicle is improved. In addition, the rigidity of the rear side of the vehicle including the periphery of the connection panel 43 can also be improved.
[0122] The left and right rear frames 111A and 111B are disposed below the trunk space side floor panel 42. As shown, Figure 6 As shown, the rear portion of the left rear frame 111A is fixed to the upper portion of the rear wheel suspension support member 110A, i.e., the left load input portion 110a. The left rear frame 111A is inclined in such a manner that the farther forward it is, the lower it is positioned, from the upper portion of the rear wheel suspension support member 110A toward the front in side view, and is inclined in such a manner that the farther forward it is, the closer it is to the center portion in the vehicle width direction in plan view, as shown. Figure 4 As shown, the rear portion of the right rear frame 111B is fixed to the upper portion of the rear wheel suspension support member 110B, i.e., the right load input portion 110b. The right rear frame 111B is inclined in such a manner that the farther forward it is, the lower it is positioned, from the upper portion of the rear wheel suspension support member 110B toward the front in side view, and is inclined in such a manner that the farther forward it is, the closer it is to the center portion in the vehicle width direction in plan view, as shown. Figure 4 Therefore, the left and right rear frames 111A and 111B are disposed in such a manner that the farther rearward they are, the farther outward they are positioned in the vehicle width direction, respectively, and the spacing between the left and right rear frames 111A and 111B is narrower the farther forward they are.
[0123] Further, the rear portion of the left side rear bracket 111A is also connected to the front-rear direction middle portion of the left side rear side bracket 112A. Thus, the left side rear bracket 111A becomes a left side connecting bracket that extends from the rear portion of the center bracket 80 to the left side rear side bracket 112A and links the rear portion of the center bracket 80 and the left side rear side bracket 112A. The left side rear bracket 111A is a left side rear connecting bracket that also links the left side load input portion 110a and the rear portion cross member 44E. That is, the rear portion of the left side rear bracket 111A is also fixed to the left side load input portion 110a, and further, the front portion of the left side rear bracket 111A is also fixed to the rear portion cross member 44E.
[0124] Further, the rear portion of the right side rear bracket 111B is also connected to the front-rear direction middle portion of the right side rear side bracket 112B. Thus, the right side rear bracket 111B becomes a right side connecting bracket that extends from the rear portion of the center bracket 80 to the right side rear side bracket 112B and links the rear portion of the center bracket 80 and the right side rear side bracket 112B. The right side rear bracket 111B is a right side rear connecting bracket that also links the right side load input portion 110b and the rear portion cross member 44E. That is, the rear portion of the right side rear bracket 111B is also fixed to the right side load input portion 110b, and further, the front portion of the right side rear bracket 111B is also fixed to the rear portion cross member 44E.
[0125] The left side rear bracket 111A is disposed upwardly inclined toward the left side load input portion 110a. Therefore, an upward load from the rear suspension device SP3 is inputted to the left side rear bracket 111A in a tensile direction, and thus, compared to a case where a load in a compression direction is inputted, it is difficult to cause a flexural deformation of the left side rear bracket 111A, and thus, vibration and noise caused by the load input from the rear suspension device SP3 are suppressed. The same applies to the right side rear bracket 111B.
[0126] In front of the left side rear propeller shaft S2, the left side rear bracket 111A is disposed. The left side rear propeller shaft S2 is disposed so as to coincide with a portion of the left side rear bracket 111A when viewed from the front-rear direction. Specifically, the height of the leftward-rightward direction middle portion of the left side rear propeller shaft S2 is substantially identical to the height of the portion between the front portion and the rear portion of the left side rear bracket 111A.
[0127] Further, in front of the right side rear propeller shaft S2, the right side rear bracket 111B is disposed. The right side rear propeller shaft S2 is disposed so as to coincide with a portion of the right side rear bracket 111B when viewed from the front-rear direction. Specifically, the height of the leftward-rightward direction middle portion of the right side rear propeller shaft S2 is substantially identical to the height of the portion between the front portion and the rear portion of the right side rear bracket 111B.
[0128] As Figure 3 and Figure 6As shown, the passenger compartment side floor panel 41 has a front crossbeam 44A, a middle crossbeam 44B, a front side crossbeam 44C of the recess, a rear side crossbeam 44D of the recess, and a rear crossbeam 44E. The front crossbeam 44A, the middle crossbeam 44B, the front side crossbeam 44C of the recess, the rear side crossbeam 44D of the recess, and the rear crossbeam 44E extend in the left-right direction and are fixed to the upper surface of the passenger compartment side floor panel 41. Therefore, the front crossbeam 44A, the middle crossbeam 44B, the front side crossbeam 44C of the recess, the rear side crossbeam 44D of the recess, and the rear crossbeam 44E are arranged in the passenger compartment R1 to intersect with the center frame 80 (described later) when viewed from above.
[0129] A front crossbeam 44A is mounted on the front of the passenger compartment side floor panel 41. The front of the front crossbeam 44A also connects to the lower part of the front bulkhead 50. A middle crossbeam 44B is mounted behind the front crossbeam 44A and forward of the recess 41a, forming a closed section with the middle crossbeam 44B and the passenger compartment side floor panel 41. A rear crossbeam 44E is mounted on the rear of the passenger compartment side floor panel 41. The rear crossbeam 44E is also fixed to the connecting panel 43.
[0130] A front crossbeam 44C of the recessed portion extends laterally along the front of the recessed portion 41a, behind the intermediate crossbeam 44B. A rear crossbeam 44D of the recessed portion extends laterally along the rear of the recessed portion 41a, behind the front crossbeam 44C. The front crossbeam 44C and the passenger compartment-side floor panel 41 form a closed section, as do the rear crossbeam 44D and the passenger compartment-side floor panel 41. By providing the front crossbeam 44C and the rear crossbeam 44D, the portion where the recessed portion 41a is formed can be strengthened. The front of the floor frame 41c, located inside the recessed portion 41a, is connected to the center of the front crossbeam 44C in the left-right direction, and the rear of the floor frame 41c is connected to the center of the rear crossbeam 44D in the left-right direction.
[0131] like Figure 8 As shown, the upper structure 3 includes a pair of left-side seat rails 90 supporting the left front seat FS and a pair of right-side seat rails 91 supporting the right front seat FS. The left-side seat rails 90 are used to adjust the fore-and-aft position of the left front seat FS and are disposed on the left side of the passenger compartment side floor panel 41, extending in the fore-and-aft direction. Similarly, the right-side seat rails 91 are used to adjust the fore-and-aft position of the right front seat FS and are disposed on the right side of the passenger compartment side floor panel 41, extending in the fore-and-aft direction.
[0132] The left seat rail 90 is located above the middle crossbeam 44B and the front crossbeam 44C of the recess, and is mounted on the middle crossbeam 44B and the front crossbeam 44C of the recess. That is, asFigure 9 As shown in FIG. 1, the left side seat rail 90 extends from the intermediate cross member 44B to the recess front side cross member 44C. The front portion of the left side seat rail 90 is attached to the intermediate cross member 44B, and the rear portion of the left side seat rail 90 is attached to the recess front side cross member 44C.
[0133] The right side seat rail 91 also extends from the intermediate cross member 44B to the recess front side cross member 44C. The front portion of the right side seat rail 91 is attached to the intermediate cross member 44B, and the rear portion of the right side seat rail 91 is attached to the recess front side cross member 44C.
[0134] As shown in FIG. 1, the intermediate cross member 44B has a front portion common bracket 45 to which the front portions of the left side seat rail 90 and the right side seat rail 91 are attached so as to be separated from each other in the left-right direction. In addition, in FIG. 1, the center bracket 80 is omitted. Figure 10 As shown in FIG. 1, the intermediate cross member 44B has a front portion common bracket 45 to which the front portions of the left side seat rail 90 and the right side seat rail 91 are attached so as to be separated from each other in the left-right direction. In addition, in FIG. 1, the center bracket 80 is omitted. Figure 10 As shown in FIG. 1, the intermediate cross member 44B has a front portion common bracket 45 to which the front portions of the left side seat rail 90 and the right side seat rail 91 are attached so as to be separated from each other in the left-right direction. In addition, in FIG. 1, the center bracket 80 is omitted. Figure 11 As shown in FIG. 1, the intermediate cross member 44B has a front portion common bracket 45 to which the front portions of the left side seat rail 90 and the right side seat rail 91 are attached so as to be separated from each other in the left-right direction. In addition, in FIG. 1, the center bracket 80 is omitted. Figure 10 Figure 11 As shown in FIG. 1, the intermediate cross member 44B has a front portion common bracket 45 to which the front portions of the left side seat rail 90 and the right side seat rail 91 are attached so as to be separated from each other in the left-right direction. In addition, in FIG. 1, the center bracket 80 is omitted. Figure 4 Figure 11 As shown in FIG. 1, the intermediate cross member 44B has a front portion common bracket 45 to which the front portions of the left side seat rail 90 and the right side seat rail 91 are attached so as to be separated from each other in the left-right direction. In addition, in FIG. 1, the center bracket 80 is omitted. Figure 4 Figure 11 As shown in FIG. 1, the intermediate cross member 44B has a front portion common bracket 45 to which the front portions of the left side seat rail 90 and the right side seat rail 91 are attached so as to be separated from each other in the left-right direction. In addition, in FIG. 1, the center bracket 80 is omitted. Figures 3 to 5 Figure 11 As shown in FIG. 1, the intermediate cross member 44B has a front portion common bracket 45 to which the front portions of the left side seat rail 90 and the right side seat rail 91 are attached so as to be separated from each other in the left-right direction. In addition, in FIG. 1, the center bracket 80 is omitted.
[0135] As shown in FIG. 1, the intermediate cross member 44B has a front portion common bracket 45 to which the front portions of the left side seat rail 90 and the right side seat rail 91 are attached so as to be separated from each other in the left-right direction. In addition, in FIG. 1, the center bracket 80 is omitted. Figure 11 As shown in FIG. 1, the intermediate cross member 44B has a front portion common bracket 45 to which the front portions of the left side seat rail 90 and the right side seat rail 91 are attached so as to be separated from each other in the left-right direction. In addition, in FIG. 1, the center bracket 80 is omitted. Figure 10 Figure 11 As shown in FIG. 1, the intermediate cross member 44B has a front portion common bracket 45 to which the front portions of the left side seat rail 90 and the right side seat rail 91 are attached so as to be separated from each other in the left-right direction. In addition, in FIG. 1, the center bracket 80 is omitted.The rear common bracket 46 is located to the left of the central fixing part 46a, and has a left fixing part 46b (shown only) for the rear of the left seat rail 90 to be fixed by a fastening member (not shown). Figure 4 and Figure 11 ). On the right side of the rear common bracket 46, which is located above the central fixing part 46a, there is a right fixing part 46c (shown only in the figure) for the rear of the right seat rail 91 to be fixed by a fastening member (not shown). Figure 4 and Figure 11 ).
[0136] like Figure 5 As shown, the upper structure 3 has a continuous central frame 80 extending from the front bulkhead 50 to the connecting panel 43. This central frame 80 is located at the center in the left-right direction, and the front central member 16 and the first to third rear central members 17 to 19 of the battery unit Y are also located at the center in the left-right direction. That is, the positions of the front central member 16 and the first to third rear central members 17 to 19, and the central frame 80 are configured such that, when viewed from above, the front central member 16 and the first to third rear central members 17 to 19 overlap with the central frame 80.
[0137] Furthermore, the center frame 80 is disposed at the center of the passenger compartment R1, separating upwards from the passenger compartment side floor panel 41, and extends in the front-rear direction. The distance between the lower surface of the center frame 80 and the upper surface of the passenger compartment side floor panel 41 at its furthest point can be set to, for example, 10cm or more or 20cm or more. On the left side of the center frame 80, the left front seat FS and the rear seat RS are disposed; on the right side of the center frame 80, the right front seat FS and the rear seat RS are disposed.
[0138] By separating at least the front portion of the center frame 80 from the passenger compartment side floor panel 41 and arranging it upwards, components, for example, can be disposed between the lower surface of at least the front portion of the center frame 80 and the upper surface of the passenger compartment side floor panel 41. Furthermore, the area between the lower surface of the center frame 80 and the upper surface of the passenger compartment side floor panel 41 can be used as an item storage area. Figure 5 and Figure 6 As shown, the central frame 80 of this embodiment has a bent portion 80A in the middle part in the front-rear direction, which bends in the vertical direction, but this bent portion 80A can also be omitted. If the bent portion 80A is omitted, the central frame 80 becomes a straight-extending shape.
[0139] By providing the bent portion 80A in the center rack 80, for example, the rear side portion of the center rack 80 can be made lower than the front side portion of the center rack 80, and thus the ride comfort of the rear seat occupant can be improved. Also, since the front side portion of the center rack 80 can be made higher than the rear side portion of the center rack 80, a large component or article, a plurality of components, or the like can be arranged below the front side portion of the center rack 80. The bent portion 80A is formed at a position in front of the central portion in the front-rear direction of the center rack 80. The position where the bent portion 80A is formed is not limited to the illustrated position, and for example, can be the central portion in the front-rear direction of the center rack 80 or a position in rear of the central portion in the front-rear direction of the center rack 80.
[0140] That is, the center rack 80 has a front side rack member 81 extending in the front-rear direction, a rear side rack member 82 provided rearward of the front side rack member 81 and extending rearward, and a connection member 83 connecting a rear portion of the front side rack member 81 and a front portion of the rear side rack member 82. The front side rack member 81 and the rear side rack member 82 are hollow, i.e., have a cylindrical shape extending in the front-rear direction, and for example, can be composed of extruded members. By making the front side rack member 81 and the rear side rack member 82 hollow, a lightweight and highly rigid member can be obtained. In the case where the center rack 80 is used as a blowout mechanism of air-conditioning air to be described later, the rear portion of the rear side rack member 82 can also be closed to prevent leakage of the air-conditioning air.
[0141] The vertical cross section of the front side rack member 81 and the rear side rack member 82 in the vehicle width direction is rectangular, and thus the front side rack member 81 and the rear side rack member 82 have upper and lower wall portions extending in the left-right direction and left and right side wall portions extending in the up-down direction. Also, the cross-sectional shape of the front side rack member 81 and the rear side rack member 82 is not limited to a rectangular shape, and can be a polygonal shape of five sides or more, or a circular or elliptical shape.
[0142] The lengthwise dimension of the rear side rack member 82 is set to be longer than the lengthwise dimension of the front side rack member 81. Thus, the connection portion of the front side rack member 81 and the rear side rack member 82 is located at a position in front of the central portion in the front-rear direction of the occupant space R1. Also, the center rack 80 is not limited to a two-part configuration of the front side rack member 81 and the rear side rack member 82, and can be composed of one member from the front portion to the rear portion, or can be a three-part configuration.
[0143] The front structural member 81 is inclined at a first angle relative to the horizontal plane and extends in a straight line. On the other hand, the rear structural member 82 is inclined at a second angle relative to the horizontal plane, smaller than the first angle, and also extends in a straight line. That is, the rear structural member 82 is inclined at a different angle than the front structural member 81, thereby forming a downwardly buckling portion 80A at the connection between the front structural member 81 and the rear structural member 82. In this embodiment, the rear structural member 82 is configured to tilt downwards towards the rear. Alternatively, the front structural member 81 and the rear structural member 82 may also be set to the same angle and tilt downwards towards the rear. In this case, the buckling portion 80A is not formed.
[0144] like Figure 12 and Figure 13 As shown, inside the rear frame member 82, a first partition wall 82a is provided, extending in both the width and front-rear directions, to divide the internal space into an upper passage and a lower passage. Further, inside the rear frame member 82, a second partition wall 82b is provided, extending in both the vertical and front-rear directions, to divide the space into a left passage (left side in the width direction) and a right passage (right side in the width direction). The first partition wall 82a and the second partition wall 82b are integrally formed. Through the first partition wall 82a and the second partition wall 82b, four passages are formed inside the rear frame member 82: an upper left passage T11, an upper right passage T12, a lower left passage T13, and a lower right passage T14. The first partition wall 82a and the second partition wall 82b function as ribs provided inside the center frame 80. Furthermore, the first partition wall 82a and the second partition wall 82b can be provided as needed, and one or both can be omitted. In addition, more than three partition walls can be provided.
[0145] Furthermore, similarly to the rear structure member 82, a first partition wall 81a is provided inside the front structure member 81, extending in both the vehicle width and longitudinal directions. This first partition wall 81a divides the interior space of the front structure member 81 into an upper passage and a lower passage. Additionally, a second partition wall 81b is also provided inside the front structure member 81, dividing the space into a left passage (left side in the vehicle width direction) and a right passage (right side in the vehicle width direction). Through the first partition wall 81a and the second partition wall 81b, the front structure member 81, like the rear structure member 82, forms an upper left passage T11, an upper right passage T12, a lower left passage T13, and a lower right passage T14.
[0146] like Figures 14 to 16As shown, the connection member 83 is a cylinder that connects the rear portion of the front side member 81 and the front portion of the rear side member 82 so as to be communicable with each other, and the rear portion of the front side member 81 and the front portion of the rear side member 82 are connected in a state of being inserted in the connection member 83. Specifically, the connection member 83 has an upper wall portion 83a and a lower wall portion 83b that extend in the left-right direction, and a left wall portion 83c and a right wall portion 83d that extend in the up-down direction. The upper wall portion 83a extends from the upper portion of the left wall portion 83c to the upper portion of the right wall portion 83d, and the lower wall portion 83b extends from the lower portion of the left wall portion 83c to the lower portion of the right wall portion 83d. The front-rear direction dimension of the lower wall portion 83b of the connection member 83 is set to be longer than the front-rear direction dimension of the upper wall portion 83a. In correspondence with the difference in the front-rear direction dimension of the upper wall portion 83a and the lower wall portion 83b, the front-rear direction dimension of the left wall portion 83c and the right wall portion 83d is longer toward the lower side.
[0147] In the inside of the connection member 83, a first link wall portion 83e that extends in the left-right direction from the up-down direction intermediate portion of the left wall portion 83c to the up-down direction intermediate portion of the right wall portion 83d, and a second link wall portion 83f that extends from the left-right direction intermediate portion of the upper wall portion 83a to the left-right direction intermediate portion of the lower wall portion 83b are provided. The first link wall portion 83e and the second link wall portion 83f are integrally formed with the upper wall portion 83a, the lower wall portion 83b, the left wall portion 83c, and the right wall portion 83d.
[0148] On the front side of the second link wall portion 83f, a front side notch portion 83g into which the rear portion of the front side member 81 is inserted is formed. Further, on the rear side of the second link wall portion 83f, a rear side notch portion 83h into which the front portion of the rear side member 82 is inserted is formed. If the front side member 81 and the rear side member 82 are connected by the connection member 83, the left upper passage T11, the right upper passage T12, the left lower passage T13, and the right lower passage T14 of the front side member 81 are respectively communicated with the left upper passage T11, the right upper passage T12, the left lower passage T13, and the right lower passage T14 of the rear side member 82.
[0149] The bending portion 80A can also be provided without the connection member 83. In this case, the bending portion 80A of the center member 80 is formed by bending the center member 80. For example, bending can be performed at the same time as extrusion processing of the center member 80, or bending can be performed after extrusion processing.
[0150] As shown in Figure 17 The upper structure body 3 is provided with an air conditioning device 120 that generates air conditioning air that is blown to the passenger compartment R1. The air conditioning device 120 is disposed at a position that is further forward than the front portion of the front side member 81, and is located in front of the center member 80. Details of the air conditioning device 120 will be described later.
[0151] Further, asFigure 19 As shown, the center frame 80 has a left-side structural member 84A and a right-side structural member 84B constituting the front portion of the center frame 80, thereby making the front portion of the center frame 80 branch out to the left and right. The left-side structural member 84A and the right-side structural member 84B are spaced apart from each other in the left-right direction. The rear portion of the left-side structural member 84A is fixed to the left side of the middle portion of the front side structural member 81 in the front-rear direction. When viewed from above, the left-side structural member 84A is inclined in such a way that it is located further forward and to the left as it moves towards the front side of the fixed portion on the front side structural member 81. The front portion of the left-side structural member 84A is connected to the portion of the front bulkhead 50 that separates upward from the passenger compartment side floor panel 41. The rear portion of the left-side front frame 54A is connected to the front portion of the left-side structural member 84A. Specifically, as Figure 19 As shown, the rear of the left front frame 54A has a left connecting portion 54a. The left connecting portion 54a is a component for connecting the left front frame 54A to the front of the left frame assembly 84A and is fixed to the front bulkhead 50. The front of the left front frame 54A extends to the left front wheel suspension support member 51A and is fixed to the left front wheel suspension support member 51A.
[0152] Furthermore, the rear of the right-side structural member 84B is fixed to the right side of the middle portion of the front structural member 81 in the longitudinal direction. When viewed from above, the right-side structural member 84B is tilted such that it is positioned further forward and to the right as it moves towards the front from the fixed portion on the front structural member 81. The front of the right-side structural member 84B is connected to the portion of the front bulkhead 50 that separates upward from the passenger compartment side floor panel 41. A right-side front frame 54B is connected to the front of the right-side structural member 84B. Figure 4 The rear of the front frame (as shown). Specifically, the rear of the right front frame 54B is as shown. Figure 19 The diagram shows a right-side connecting portion 54b. The right-side connecting portion 54b is a component for connecting the right-side front frame 54B to the front portion of the right-side structural member 84B, and is fixed to the front bulkhead 50. The front portion of the right-side front frame 54B extends to the right-side front wheel suspension support member 51B, and is fixed to this right-side front wheel suspension support member 51B.
[0153] The upper structure 3 includes multiple connecting members 101 to 103. Connecting members 101 to 103 extend upwards from the passenger compartment side floor panel 41, are fixed at their upper parts to the central frame 80, and are components used to connect the central frame 80 to the passenger compartment side floor panel 41. Connecting members 101 to 103 include a first connecting member 101, a second connecting member 102, and a third connecting member 103, which are constructed, for example, by extrusion parts. The number of connecting members 101 to 103 is not limited to multiple; it can also be a single member.
[0154] Of the first to third structural members 101 to 103, the first structural member 101 is located at the foremost position in the passenger compartment R1, and it separates from the front bulkhead 50 rearward. The lower part of the first structural member 101 is fixed to the rearward-separating portion of the passenger compartment side floor panel 41, and the upper part of the first structural member 101 is fixed to the rearward-separating portion of the central frame 80. Thus, the central frame 80, the first structural member 101, the passenger compartment side floor panel 41, and the front bulkhead 50 form a closed cross-section structure when viewed from the side. That is, the central frame 80, the first structural member 101, the passenger compartment side floor panel 41, and the front bulkhead 50 are connected to form a ring-shaped structure.
[0155] In addition, such as Figure 3 As shown, the second structural member 102 is arranged rearwardly separate from the first structural member 101. The lower parts of the first structural member 101 and the lower parts of the second structural member 102 are respectively fixed to portions that are separated from each other in the front-rear direction of the passenger compartment side floor panel 41. Furthermore, the upper parts of the first structural member 101 and the upper parts of the second structural member 102 are respectively fixed to portions that are separated from each other in the front-rear direction of the central frame 80. Thus, the central frame 80, the first structural member 101, the passenger compartment side floor panel 41, and the second structural member 102 form a closed cross-section structure when viewed from the side. Furthermore, the third structural member 103 is arranged rearwardly separate from the second structural member 102.
[0156] like Figure 19 As shown, the first connecting structural member 101 has a left-side member (left-side connecting structural member) 101A and a right-side member (right-side connecting structural member) 101B. The lower parts of the left-side member 101A and the right-side member 101B are fixed to the front crossbeam 44A, but they can also be directly fixed to the main body of the passenger compartment side floor panel 41. In the front view, the left-side member 101A extends obliquely upward from the front crossbeam 44A, and the further upward it goes, the more it is located on the left side. The upper part of the left-side member 101A is fixed to the front part of the left-side structural member 84A of the center frame 80. The upper part of the left-side member 101A can also be fixed to the left-side connecting portion 54a. In this case, the left-side member 101A connects the left-side connecting portion 54a to the passenger compartment side floor panel 41.
[0157] Further, the right member 101B is obliquely extended in such a manner that the right side thereof is located more upward as it goes upward from the front portion of the upper side of the front cross member 44A when viewed from the front. The upper portion of the right member 101B is fixed to the front portion of the right side frame forming member 84B of the center frame 80. The upper portion of the right member 101B can also be fixed to the right side connecting portion 54b. In this case, the right member 101B links the right side connecting portion 54b and the passenger room side floor panel 41. Further, since the front portion of the left side frame forming member 84A and the front portion of the right side frame forming member 84B are separated in the left-right direction, most of the left member 101A and the right member 101B are separated in the left-right direction except for the lower portions thereof, and the interval between the left member 101A and the right member 101B in the left-right direction is wider as it goes upward.
[0158] Although not shown, the first link member 101 can also link the rear portion of the left side front frame 54A to the passenger room side floor panel 41. In this case, the upper portion of the left member 101A of the first link member 101 is fixed to the rear portion of the left side front frame 54A, and the lower portion of the left member 101A is fixed to the passenger room side floor panel 41. Further, the first link member 101 can also link the rear portion of the right side front frame 54B to the passenger room side floor panel 41. In this case, the upper portion of the right member 101B of the first link member 101 is fixed to the rear portion of the right side front frame 54B, and the lower portion of the right member 101B is fixed to the passenger room side floor panel 41.
[0159] The left-right direction dimension of the second link member 102 is set to be longer than the front-rear direction dimension, but is below the left-right direction dimension of the center frame 80. Thus, the left and right sides of the second link member 102 do not protrude in the left-right direction from the center frame 80. Further, the cross section of the second link member 102 is set to be larger than the cross section of the left member 101A or the right member 101B.
[0160] The lower part of the second connecting structural member 102 is fixed between the left seat rail 90 and the right seat rail 91 on the front common bracket 45 of the intermediate crossbeam 44B. Specifically, the lower part of the second connecting structural member 102 is fixed in a state where it is inserted into the central fixing part 45a provided at the center of the left-right direction of the front common bracket 45. That is, the common bracket 45 for mounting the left seat rail 90 and the right seat rail 91 is a high-strength component, and its dimension in the vehicle width direction is lengthened to a certain extent, thus ensuring a larger fixing range on the main body of the crossbeam 44B and improving the fixing strength. By fixing the lower part of the second connecting structural member 102 to such a high-strength and high-fixing-strength common bracket 45, the connection strength of the second connecting structural member 102 to the center frame 80 can be further improved. In addition, the lower part of the second connecting structural member 102 can be directly fixed to the main body of the passenger compartment side floor panel 41 or directly fixed to the intermediate crossbeam 44B.
[0161] The upper part of the second connecting structural member 102 is fixed to the buckled portion 80A of the central frame 80. Specifically, the upper part of the second connecting structural member 102 is fixed to the lower wall portion 83b of the connecting member 83. Thus, the second connecting structural member 102 extends from the buckled portion 80A of the central frame 80 toward the passenger compartment side floor panel 41. Since the longitudinal dimension of the lower wall portion 83b of the connecting member 83 is longer than the longitudinal dimension of the upper wall portion 83a, a larger engagement area with the second connecting structural member 102 can be ensured. If the connecting member 83 is omitted, the upper part of the second connecting structural member 102 can be directly fixed to the central frame 80.
[0162] The third structural member 103, like the second structural member 102, has a cross-section that is elongated in the left-right direction. The lower part of the third structural member 103 is fixed to the front crossbeam 44C of the recess. The upper part of the third structural member 103 is fixed to the lower wall of the rear structural member 82 of the central frame 80. (As...) Figure 8 As shown in the diagram, the third connecting structural member 103 is also fixed to the front of the floor frame 41c.
[0163] like Figure 4 As shown, the rear of the center frame 80 is connected to the connecting panel 43 and the rear crossbeam 44E. Specifically, a rear connecting member 104 is fixed to the rear of the center frame 80, and the center portion of the rear crossbeam 44E in the left-right direction is fixed to the lower part of the rear connecting member 104. The rear of the center frame 80 is connected to the rear crossbeam 44E through the rear connecting member 104.
[0164] The rear of the rear connecting member 104 is fixed to the connecting panel 43. Thus, the rear of the center frame 80 is also connected to the connecting panel 43 via the rear connecting member 104. The lower part of the rear connecting member 104 is also fixed to the rear of the passenger compartment side floor panel 41. That is, the front bulkhead 50 and the connecting panel 43 are connected via the center frame 80. At this time, since the center frame 80 separates upwards from the passenger compartment side floor panel 41, the passenger compartment side floor panel 41, the front bulkhead 50, the connecting panel 43, and the center frame 80 are integrated and form a closed section structure when viewed from the side. Therefore, although the passenger compartment side floor panel 41 has a floor-passage-less structure, the torsional rigidity of the vehicle body can be significantly improved.
[0165] Furthermore, the front parts of the left rear frame 111A and the right rear frame 111B are fixed to the lower part of the rear connecting member 104. Thus, the rear part of the center frame 80 is connected to the left rear wheel suspension support member 110A via the left rear frame 111A, and the rear part of the center frame 80 is connected to the right rear wheel suspension support member 110B via the right rear frame 111B. Therefore, the rigidity of the rear wheel suspension support members 110A and 110B can be improved, enhancing the vehicle's handling stability. In addition, the rigidity of the rear side of the vehicle, including the connecting panel 43 and its surrounding area, can also be improved.
[0166] like Figure 5 As shown, the drive motor M of the rear powertrain PT is supported on the rear support frame 30 via mounting members (not shown), and is positioned at the rear of the vehicle, behind the center frame 80. The height of the rear drive motor M can be arbitrarily set according to the mounting height of the rear support frame 30. In this embodiment, the height of the rear drive motor M is set such that at least a portion of the height from the upper to the lower part of the rear drive motor M is the same as the height of the rear part of the center frame 80. Furthermore, the height of the rotation center of the rear drive motor M, i.e., the height of the center portion of the drive motor M in the vertical direction, is set lower than the rear part of the center frame 80. By configuring the rear powertrain PT in this way, for example, if an impact load acting from the rear of the vehicle is input to the drive motor M, causing the drive motor M to move forward of the vehicle, the load toward the front of the vehicle acts on the rear part of the center frame 80. At this time, since the rear of the center frame 80 is integrated with the passenger compartment side floor panel 41 by connecting the rear crossbeam 44E, connecting panel 43, etc., the forward movement of the travel motor M is prevented by the center frame 80. The forward movement of the travel motor M is also prevented by the passenger compartment side floor panel 41 and the rear crossbeam 44E.
[0167] The air conditioning unit 120 includes a cooler (heat exchanger) 121 through which air for air conditioning passes, and an air conditioning housing 122 that houses the cooler 121. The cooler 121 is a cooling heat exchanger consisting of an evaporator or the like for cooling the air conditioning air. However, it is not limited to this; instead of the cooler 121, a heating heat exchanger consisting of a heating element for heating the air conditioning air, a condenser, or the like may be used, with the cooler installed in other parts. In this embodiment, the cooler 121 is located further forward than the front panel 50. In addition, although not shown, a compressor for compressing refrigerant, an expansion valve for reducing the pressure of refrigerant, and the like are also part of the air conditioning unit 120.
[0168] For example, if a car 1 collides from the front and applies a rearward impact load to the powertrain PT, the powertrain PT will begin to move backward depending on the magnitude of the impact load. Since the front powertrain PT is configured as described above, a center frame 80 extending in the longitudinal direction behind the powertrain PT is configured to be connected to the passenger compartment side floor panel 41 via connecting members 101-103. Therefore, the backward movement of the powertrain PT is suppressed by the center frame 80 and the connecting members 101-103. Furthermore, since the passenger compartment side floor panel 41 is located behind the powertrain PT, there is a possibility that the backward movement of the powertrain PT is also suppressed by the passenger compartment side floor panel 41.
[0169] Next, a specific configuration example of the air conditioning unit 120 will be described. Inside the air conditioning housing 122 of the air conditioning unit 120, in addition to the aforementioned cooler 121, a heater (not shown), an air mixing damper 122a for changing the mixing ratio of cold air from the cooler 121 and warm air from the heater to generate air conditioning air at the desired temperature, and a blowing direction switching damper 122b for distributing the generated air conditioning air at the desired temperature to various parts of the vehicle compartment. By operating the blowing direction switching damper 122b, the air conditioning air can be directed towards the front window FG (…). Figure 1 The airflow is supplied to the inner surface of the occupant (as shown), or to the upper body of the occupant, or to the vicinity of the occupant's feet. The operation of the airflow direction switching damper 122b is well known.
[0170] The front portion of the air conditioning housing 122 houses the cooler 121 and the air mixing damper 122a, and is positioned forward of the front bulkhead 50. Conversely, the rear portion of the air conditioning housing 122 houses the airflow direction switching damper 122b, extending through the front bulkhead 50 and located in the passenger compartment R1. Therefore, the cooler 121 and air mixing damper 122a are closer to the powertrain PT than the airflow direction switching damper 122b. Alternatively, the front portion of the air conditioning housing 122 can be positioned rearward of the front bulkhead 50.
[0171] The rear side portion of the air conditioning case 122 has a blow-out portion 122c that is a pipe shape through which air-conditioned air generated in the interior of the air conditioning case 122 is blown out. The air conditioning case 122 also has a duct 122d that communicates the blow-out portion 122c with the interior of the center console 80, and guides the air-conditioned air blown out from the blow-out portion 122c to the interior of the center console 80. The duct 122d is disposed above the control device 130 described later, and extends in the front-rear direction. The front portion of the duct 122d is connected to the blow-out portion 122c, and the rear portion of the duct 122d is connected to the front portion of the front side console member 81 of the center console 80. Thus, the air-conditioned air generated by the air conditioning device 120 is guided to the interior of the center console 80 via the duct 122d. The duct 122d can also be a member that constitutes a part of the center console 80.
[0172] Since the center console 80 extends in the front-rear direction, the air-conditioned air can be guided to a desired portion in the front-rear direction of the passenger compartment Rl. In this case, since the duct 122d is disposed above the control device 130, and has a prescribed width in the left-right direction, direct sunlight is also blocked by the duct 122d, and it is more difficult for the direct sunlight to reach the control device 130. Further, by utilizing the center console 80 as an air conditioning duct, it is not necessary to separately provide an air conditioning duct, and the passenger compartment Rl can be enlarged compared to the case where an air conditioning duct is separately provided. Although not shown, air supply ports or the like for blowing the air-conditioned air in the passages Tll to Tl4 upward and downward are provided in the upper wall portion and the lower wall portion of the center console 80. In addition, the air supply ports or the like can also be omitted in the case where the center console 80 is not utilized as an air conditioning duct.
[0173] Further, since the center console 80 has a large cross section that can improve the torsional rigidity of the vehicle body to a high degree, the air supply sound is suppressed to be low even if the amount of air-conditioned air flowing in the interior is increased. In particular, since the center console 80 extends in a shape close to a straight line, the passage in the interior is also in a shape close to a straight line, and thus the air supply sound can also be suppressed to be low. Further, in the case where no thermal insulating material or the like is provided on the center console 80, the heat of the air-conditioned air flowing in the interior of the center console 80 is transferred to the wall portion of the center console 80, and is radiated from the outer surface of the wall portion to the passenger compartment Rl. Thus, a comfortable air conditioning using radiated heat can be achieved. In addition, a thermal insulating material can also be provided on the center console 80.
[0174] (LAYOUT OF CONTROL DEVICE)
[0175] The vehicle body structure A is provided with a control device 130 that controls a controlled portion mounted on the automobile 1 Figure 9 and Figure 17 , Figure 22The controlled parts can include, for example, the powertrain PT, the brake device, the electronically controlled suspension device, the interior light device, the navigation device, the head-up display device, the audio device, the in-vehicle monitor, the television, and the like. In the control device 130, a water jacket or the like through which cooling water flows is provided as a countermeasure against heat generation. In addition, there are cases where an entertainment function (video playback function, music playback function) or the like is mounted in the vehicle interior, and in such cases, the control device 130 is also large-sized.
[0176] The control device 130 according to the present embodiment is disposed below the front portion of the center floor 80 in the passenger compartment Rl. As described above, since the height of the front portion of the center floor 80 is higher than that of the rear portion of the center floor 80, even a large-sized control device 130 can be disposed. As shown in FIG. 1, the control device 130 is disposed below the center console 80. As shown in FIG. 1, the control device 130 is disposed below the center console 80. Figure 17 As shown by a dashed line, above the front portion of the center floor 80, the instrument panel IP is disposed.
[0177] In addition, if, for example, a case where an impact load acts from the front is assumed, since the center floor 80 extends in the front-rear direction, at least a part of the impact load is absorbed by the center floor 80, and the deformation of the vehicle body in the vicinity thereof is suppressed. That is, the control device 130 disposed below the center floor 80 is protected from the impact load from the front. The same applies to the impact load from the rear. In particular, by the left side member 101A and the right side member 101B, at least two portions of the center floor 80 can be firmly linked to the passenger compartment side floor panel 41, and thus the protection performance of the control device 130 can be improved.
[0178] (Cooling path)
[0179] Next, the cooling path will be described. Figure 20 is a diagram showing a schematic configuration of a cooling path provided in the vehicle 1. In the cooler 121, a passage of cooling water as a heat exchange medium is formed, and the cooling water flowing through the passage is cooled by heat exchange with low-temperature refrigerant in the interior of the cooler 121. The vehicle body structure A is provided with a supply pipe 131 for supplying the cooling water cooled by the cooler 121 to a water jacket (not shown) provided in the control device 130, and a discharge pipe 132 for discharging the cooling water supplied to the control device 130. A pump P for delivering the cooling water to the control device 130 is provided on the supply pipe 131. The cooling water discharged from the discharge pipe 132 is drawn in by the pump P after being cooled by the cooler 121. By circulating the cooling water in this way, the control device 130 is cooled. The cooling water that has cooled the control device 130 is used for cooling of the batteries FB, RB, and then used for cooling of the travel motor M, and then returned to the cooler 121. Alternatively, refrigerant can be used instead of the cooling water.
[0180] In addition, as shown in FIG. 1, the control device 130 is disposed below the center console 80. Figure 21As shown, the supply pipe 131 and the discharge pipe 132 extend through the front panel 50 and are disposed between the left side member 101A and the right side member 101B. The supply pipe 131 and the discharge pipe 132 extend in the front-rear direction below the air conditioning device 120.
[0181] (EFFECTS OF THE EMBODIMENTS)
[0182] As described above, according to this embodiment, the rear cross member 44E is positioned lower than the left load input portion 110a, and therefore the left rear bracket 111A that links the rear cross member 44E and the left load input portion 110a is inclined upward toward the left load input portion 110a. Therefore, upward loads from the rear suspension device SP3 are input to the left rear bracket 111A in the tensile direction, and therefore, compared to when loads in the compressive direction are input, it is difficult to cause the left rear bracket 111A to be flexibly deformed, and therefore vibrations and noise caused by the input of loads from the rear suspension device SP3 are suppressed. The same applies to the right side of the rear portion of the vehicle body.
[0183] Further, the left rear bracket 111A is disposed in front of the left rear propeller shaft S2, and when viewed in the front-rear direction, the left rear bracket 111A is disposed so as to at least partially overlap the left rear propeller shaft S2. Further, the right rear bracket 111B is disposed in front of the right rear propeller shaft S2, and when viewed in the front-rear direction, the right rear bracket 111B is disposed so as to at least partially overlap the right rear propeller shaft S2. Thus, for example, when impact loads act from the rear and the left and right propeller shafts S2 attempt to move forward together with the travel motor M, since the left and right rear brackets 111A and 111B are disposed in front of the left and right propeller shafts S2, respectively, and at least partially overlap the left and right propeller shafts S2 when viewed in the front-rear direction, the left and right propeller shafts S2 that attempt to move forward are prevented from moving forward by the left and right rear brackets 111A and 111B, and are guided, for example, downward. Thus, the protection performance of the passenger compartment is improved.
[0184] The foregoing embodiments are merely examples in all aspects and should not be construed as limiting. Further, modifications and changes within the scope of equivalents of the claims are included in the scope of the present application.
[0185] INDUSTRIAL APPLICABILITY
[0186] As described above, the present application can be utilized, for example, as a vehicle body structure for an electric vehicle.
Claims
1. A vehicle body structure provided in an automobile, characterized by comprising: Possess: floor panel, constitute the floor of the passenger space provided with seats for passengers to sit; left side rear side frame, in the position of the floor panel behind the vehicle and in the vehicle left side in the vehicle front and rear direction extension; Right side rear side frame, in the position of the floor panel behind the vehicle and in the vehicle right side in the vehicle front and rear direction extension; Left side load input part, fixed to the left side rear side frame, input from the rear suspension device load; Right side load input part, fixed to the right side rear side frame, input from the rear suspension device load; cross beam extending in the vehicle width direction, provided at the rear of the floor panel below the left side load input part and the right side load input part; left side rear connecting frame, connecting the left side load input part and the cross beam, upwardly inclined to the left side load input part; right side rear connecting frame, connecting the right side load input part and the cross beam, upwardly inclined to the right side load input part; and running motor, mounted at the position behind the floor panel of the vehicle, driving the rear wheel of the car, the car body structure is provided with left and right transmission shafts, which transmit the rotating force of the running motor to the rear wheel, the left side transmission shaft is provided in front of the vehicle of the left side transmission shaft The left side rear connecting frame is configured to coincide with part of the left side rear connecting frame when viewed from the vehicle front and rear direction, the right side transmission shaft is provided in front of the vehicle of the right side transmission shaft The right side rear connecting frame is configured to coincide with part of the right side rear connecting frame when viewed from the vehicle front and rear direction, a connecting piece connecting the left side load input part and the right side load input part is provided extending in the vehicle left and right direction, the left side rear connecting frame and the right side rear connecting frame are in the V-shaped structure opening to the rear side when viewed from above, and inclined upward from the front end to the rear end when viewed from the side, so that the upward load of the rear suspension device from the left side load input part and the right side load input part is input to the left side rear connecting frame and the right side rear connecting frame in the stretching direction.
2. The vehicle body structure according to claim 1, characterized by Possess: center frame extending in the vehicle front and rear direction, which is separated from the floor panel upwardly in the vehicle width direction central part of the passenger space, the rear part of the center frame is connected to the cross beam.
3. The vehicle body structure according to claim 2, characterized by The running motor is provided at the position behind the rear part of the center frame of the vehicle.
4. The vehicle body structure according to claim 1 or 2, characterized by The left side rear connecting frame and the right side rear connecting frame are respectively configured to be located outward in the vehicle width direction as closer to the rear side of the vehicle.
Citation Information
Patent Citations
Rear part vehicle body structure of vehicle
JP2019123461A
Electric vehicle loaded with internal combustion engine
JP2009279990A
Load path geometry for vehicle structure
US20210016840A1
Rear vehicle-body structure of vehicle
US20210221445A1