FUEL CELL VEHICLE
20170240039 · 2017-08-24
Assignee
Inventors
Cpc classification
B60K2015/0633
PERFORMING OPERATIONS; TRANSPORTING
B60K1/00
PERFORMING OPERATIONS; TRANSPORTING
B60K2015/03296
PERFORMING OPERATIONS; TRANSPORTING
B60K2015/0634
PERFORMING OPERATIONS; TRANSPORTING
B60K2001/001
PERFORMING OPERATIONS; TRANSPORTING
B60K2015/03328
PERFORMING OPERATIONS; TRANSPORTING
B60K2015/03144
PERFORMING OPERATIONS; TRANSPORTING
Y02T90/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60K2015/0635
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A fuel cell vehicle includes a first tank, a second tank, first and second valves for releasing gas, a gas passage for supplying gas to a fuel cell via the first and second valves, a pressure-reducing valve for decompressing the gas, side members disposed on the respective sides of the vehicle, and a motor disposed rearward of the second tank and configured to drive wheels. The first tank is not disposed downstream of the second tank, on the gas passage. The pressure-reducing valve is disposed in a region located rearward of a rear end of the second tank in a vehicle front-rear direction, forward of a rear end of the motor in the vehicle front-rear direction, and between one of the side members and an extended line extended in the vehicle front-rear direction from a side wall of the motor. The pressure-reducing valve is disposed on the second valve side.
Claims
1. A fuel cell vehicle comprising: a first tank disposed such that a longitudinal direction of the first tank coincides with a vehicle front-rear direction, the first tank being configured to be filled with gas; a second tank disposed at a position rearward of the first tank in the vehicle front-rear direction such that a longitudinal direction of the second tank coincides with a vehicle transverse direction, the second tank being configured to be filled with the gas; a first valve configured to release the gas from the first tank, the first valve being provided on the first tank; a second valve configured to release the gas from the second tank, the second valve being provided on the second tank; a gas passage through which the gas is supplied to a fuel cell via the first valve and the second valve; a pressure-reducing valve configured to decompress the gas; side members one of which is disposed on one side of the fuel cell vehicle, and the other one of which is disposed on the other side of the fuel cell vehicle; and a motor disposed at a position rearward of the second tank, the motor being configured to drive wheels, wherein the first tank is not disposed downstream of the second tank, on the gas passage, and the pressure-reducing valve is disposed in a region that is located rearward of a rear end of the second tank in the vehicle front-rear direction, forward of a rear end of the motor in the vehicle front-rear direction, and between one of the side members and an extended line extended in the vehicle front-rear direction from a side wall of the motor in the vehicle transverse direction, and the pressure-reducing valve is disposed on a side on which the second valve of the second tank is disposed.
2. The fuel cell vehicle according to claim 1, wherein the pressure-reducing valve is secured to the one of the side members.
3. The fuel cell vehicle according to claim 2, wherein the pressure-reducing valve is secured to the one of the side members via a securing member.
4. The fuel cell vehicle according to claim 3, wherein the pressure-reducing valve is secured at a position inwardly apart from the side member by the securing member.
5. The fuel cell vehicle according to claim 1, wherein the first tank is disposed in a center tunnel.
6. The fuel cell vehicle according to claim 1, wherein the second tank is disposed under a rear seat.
7. The fuel cell vehicle according to claim 1, wherein rear wheels are driven by the motor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Features, advantages, and technical and industrial significance of exemplary embodiments of the disclosure will be described below with reference to the accompanying drawings, in which like numerals denote like elements, and wherein:
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
DETAILED DESCRIPTION OF EMBODIMENTS
[0031] Hereinafter, the configuration of a fuel cell vehicle according to an example embodiment of the disclosure will be described in detail with reference to the accompanying drawings.
[0032] A fuel cell vehicle 100 according to the present embodiment is a rear-wheel drive vehicle. The fuel cell vehicle 100 includes a front tank 1, a rear tank 2, a pressure-reducing valve 3, side members 4, a motor 5, wheels (front wheels 6F and rear wheels 6R), a fuel cell 10, and so forth.
[0033] The front tank 1 and the rear tank 2 are containers to be filled with hydrogen gas used as fuel. In the fuel cell vehicle 100 according to the present embodiment, the front tank 1 is disposed longitudinally at a position in a center tunnel CT under a floor panel FP such that the longitudinal direction of the front tank 1 coincides with the vehicle front-rear direction (the forward-backward traveling direction) (refer to
[0034] The front tank 1 is provided with a valve 1V configured to release the gas from the front tank 1, and the rear tank 2 is provided with a valve 2V configured to release the gas from the rear tank 2 (refer to, for example,
[0035] The pressure-reducing valve 3 decompresses the hydrogen gas to be supplied to the fuel cell 10 from the front tank 1 via the valve 1V, and decompresses the hydrogen gas to be supplied to the fuel cell 10 from the rear tank 2 via the valve 2V. The decompressed hydrogen gas is supplied to the fuel cell 10 through a medium-pressure pipe 8M (refer to
[0036] One of the side members 4 is provided on one side of the fuel cell vehicle 100, and the other one of the side members 4 is provided on the other side of the fuel cell vehicle 100. The side members 4 extend in the vehicle front-rear direction (refer to
[0037] The motor 5 is a drive source for driving the wheels. The fuel cell vehicle 100 in the present embodiment is a rear-wheel drive vehicle in which the rear wheels 6R are driven by the motor 5 (refer to, for example,
[0038] The pressure-reducing valve 3 in the present embodiment is disposed in a prescribed region, that is, a region A that is located rearward of a rear end 2r of the rear tank 2, forward of a rear end 5r of the motor 5, and between an extended line E extended from a side wall 5s of the motor 5 in the vehicle front-rear direction and the side member 4 (refer to
[0039] Furthermore, in the present embodiment, the pressure-reducing valve 3 is disposed rearward of the rear tank 2 as described above. Thus, it is easy to obtain a space at a position forward of the rear tank 2. The space allows occupants to more smoothly get on and off the vehicle and improves the occupant comfort. The space is used as, for example, a foot space for occupant getting on the vehicle.
[0040] In addition, the pressure-reducing valve 3 in the present embodiment is secured to the side member 4, and is located in a region between the extended line E extended from the side wall 5s of the motor 5 in the vehicle front-rear direction and the side member 4 (refer to, for example,
[0041] The method or manner for securing the pressure-reducing valve 3 to the side member 4 is not limited to any particular method or manner. For example, in the present embodiment, the pressure-reducing valve 3 is secured to the side member 4 via a bracket 7 (an example of “securing member”) (refer to
[0042] it is also preferable to secure the pressure-reducing valve 3 at a position further inwardly apart from the side member 4 by employing a long bracket as the bracket 7. In this case, in the event of, for example, a side collision, the pressure-reducing valve 3 is further reliably restrained from coming into contact with another member, such as a side collision object.
[0043] The pressure-reducing valve 3 may be disposed on any one of the right side and the left side in the right-left direction (the width direction) of the fuel cell vehicle 100. However, the pressure-reducing valve 3 is preferably disposed on the side on which the valve 2V of the rear tank 2 is disposed. In this case, the lengths of the pipes for hydrogen gas, such as the second high-pressure pipe 8H2, can be shortened, depending on how the pipes are routed. In addition, it is also preferable to dispose the pressure-reducing valve 3 at such a position that the passage length (total length) of the pipes (the first high-pressure pipe 8H1, the second high-pressure pipe 8H2, and the medium-pressure pipe 8M) becomes shortest, in the case of the structure in which the passage reaches the fuel cell 10 from the valve 1V (or the valve 2V) through the pressure-reducing valve 3.
[0044] Although detailed description will not be provided, a three-way valve 9 may be disposed at a position downstream of the rear tank 2 (refer to
[0045] As described so far, with the configuration of the fuel cell vehicle 100 according to the present embodiment, when a frontal collision or a rear-end collision occurs, the pressure-reducing valve 3 is less likely to he sandwiched between the motor 5 and the rear tank 2. Thus, it is possible to prevent the pressure-reducing valve 3 from directly receiving an impact. As a result, the possibility that the pressure-reducing valve 3 will be damaged is reduced.
[0046] While the foregoing embodiment is an example embodiment of the disclosure, the disclosure is not limited to the foregoing embodiment and various modifications may be made to the foregoing embodiment within the scope of the disclosure. For example, in the foregoing embodiment, the fuel cell vehicle 100 provided with the rear wheels driven by the motor 5 is described, as just an example of a vehicle to which the disclosure is applied. Needless to say, the disclosure may be applied to, for example, a front-wheel drive (FWD) vehicle.
[0047] In the foregoing embodiment, the fuel cell vehicle 100 in which the two tanks (the front tank 1 and the rear tank 2) are arranged in a T-shape is described. However, this arrangement is just an example of the arrangement for efficiently using the space in the vehicle. That is, in the fuel cell vehicle 100 described above, the front tank 1 is disposed longitudinally at a position under the floor in order to more efficiently use the space in the vehicle, and the rear tank 2 is disposed transversely at a position under the rear seat to obtain more space in a rear portion of the vehicle (refer to, for example,
[0048] In the foregoing embodiment, the arrangement in which the front tank 1 is longitudinally disposed in the vehicle front-rear direction and the rear tank 2 is transversely disposed in the vehicle transverse direction is described. Needless to say, the disclosure may be applied also to a case where the vehicle front-rear direction is a direction that is slightly tilted in the right-left direction due to, for example, design, in addition to a case where the vehicle front-rear direction is a vehicle front-rear direction in a strict sense. Therefore, the arrangement of the front tank 1 is not limited to an arrangement in which the longitudinal direction of the front tank 1 coincides with the vehicle front-rear direction in a strict sense. Similarly, the arrangement of the rear tank 2 is not limited to an arrangement in which the longitudinal direction of the rear tank 2 coincides with the vehicle transverse direction in a strict sense.
[0049] The disclosure is preferably applied to a fuel cell vehicle including a fuel cell.