The present application claims priority to Japanese Patent Application No. 2022-087500, filed on May 30, 2022, the entire contents of which are incorporated herein by reference.
The present disclosure relates to a vehicle fuel tank structure and, more specifically, to a vehicle fuel tank structure including a fuel tank provided below a floor panel and a fuel pump unit which is provided inside the fuel tank and which is fixed by being pressed against a tank bottom surface of the fuel tank.
Generally, a fuel pump unit is provided inside a fuel tank mounted to a vehicle. Since a tank bottom surface of the fuel tank against which the fuel pump unit is pressed has a planar shape, there is a problem in that, depending on vibration characteristics of the fuel pump unit, a vibration of the tank bottom surface is transmitted to a vehicle body.
As means for suppressing the transmission of the vibration to the vehicle body, a structure disclosed in Patent Literature 1 is known.
Specifically, the structure disclosed in Patent Literature 1 described above is a structure in which a flange portion which protrudes outward is provided on an outer circumference of a fuel tank and the fuel tank is fixed to a vehicle body by interposing anti-vibration rubber between the flange portion and the vehicle body, and a so-called rubber mount structure is adopted.
However, when a center tank layout is adopted in which a battery unit is mounted in a rear part of the vehicle body and a fuel tank is mounted in front of the battery unit at center in a vehicle width direction, since the fuel tank is fixed to a feet position of a rear seat occupant, a vibration from the fuel tank is transmitted to the vehicle body, and a vibration perceived by the rear seat occupant becomes prominent, there is a need to suppress the transmission of the vibration from the fuel tank to the vehicle body.
In consideration thereof, an object of the present disclosure is to provide a vehicle fuel tank structure capable of suppressing transmission of a vibration of a fuel pump unit to a vehicle body without depending on a rubber mount.
The present disclosure describes a vehicle fuel tank structure including: a fuel tank provided below a floor panel; a fuel pump unit which is provided inside the fuel tank and which is fixed by being pressed against a tank bottom surface of the fuel tank; and a reinforcement member fixed to a vehicle-exterior side of the tank bottom surface against which the fuel pump unit of the fuel tank is pressed, the vehicle fuel tank structure characterized in that the reinforcement member includes: a first fixation portion which is fixed to the fuel tank at a position overlapping with a section against which the fuel pump unit is pressed in a plan view; and a second fixation portion which is fixed to the fuel tank at a position not overlapping with the section against which the fuel pump unit is pressed in a plan view.
According to the present disclosure, although vibration from a fuel pump of the fuel pump unit is transmitted to the tank bottom surface, since the reinforcement member is fixed by the first fixation portion to be a vibration generation position and the second fixation portion at a position spaced from the vibration generation position, rigidity of the tank bottom surface in a periphery of a vibration source is improved and vibration of the fuel tank can be suppressed.
Therefore, the transmission of the vibration of the fuel pump unit to the vehicle body can be suppressed without depending on a rubber mount.
As an aspect of the present disclosure, the second fixation portion may include a plurality of fixation portions, and the first fixation portion may be disposed on an imaginary line connecting the plurality of second fixation portions to each other.
According to the present disclosure, since the first fixation portion is pressed via the reinforcement member at the second fixation portions which are positioned on the imaginary line, a vibration of the first fixation portion to be a vibration generation position can be suppressed in an efficient manner.
In addition, as an aspect of the present disclosure, a tank band for supporting the fuel tank may be disposed between the first fixation portion and the second fixation portion on a rear side.
According to the present disclosure, by causing the reinforcement member to press against the tank bottom surface including the tank band, the vibration of the tank bottom surface can be further suppressed.
Furthermore, as an aspect of the present disclosure, the reinforcement member may include a ridge portion which protrudes upward and which houses the tank band.
According to the present disclosure, suppression of the vibration of the tank bottom surface can be achieved by suppressing a bending deformation of the reinforcement member due to input of vibration in an up-down direction with the ridge portion and the tank band which is housed in the ridge portion.
Moreover, as an aspect of the present disclosure, the tank bottom surface of the fuel tank and the reinforcement member may be disposed spaced from each other in the up-down direction.
According to the present disclosure, due to the reinforcement member being spaced from the tank bottom surface in the up-down direction, the reinforcement member can be made a structure capable of increasing a moment of inertia of area and, accordingly, an improvement in rigidity can be achieved.
In addition, as an aspect of the present disclosure, the tank bottom surface of the fuel tank may include a raised wall which protrudes toward an inside of the tank from the tank bottom surface and which covers a circumference of the fuel pump unit, and the reinforcement member may be disposed at a position which opposes an inside area of the raised wall.
According to the present disclosure, the inside area of the raised wall with low rigidity can be reinforced in an efficient manner by the reinforcement member while eliminating a deficiency in fuel intake of the fuel pump during rolling of the vehicle with the raised wall.
Furthermore, as an aspect of the present disclosure, the tank bottom surface against which the fuel pump unit is pressed may be constructed as a flat surface.
According to the present disclosure, although the tank bottom surface constructed by a flat surface readily deforms, the tank bottom surface can be reliably reinforced by the reinforcement member which is fixed by the first fixation portion and the second fixation portion.
According to the present disclosure, the transmission of the vibration of the fuel pump unit to the vehicle body can be suppressed without depending on a rubber mount.
Suppressing transmission of a vibration of a fuel pump unit to a vehicle body without depending on a rubber mount is realized by a configuration including: a fuel tank provided below a floor panel; a fuel pump unit which is provided inside the fuel tank and which is fixed by being pressed against a tank bottom surface of the fuel tank; and a reinforcement member fixed to a vehicle-exterior side of the tank bottom surface against which the fuel pump unit of the fuel tank is pressed, wherein the reinforcement member includes: a first fixation portion which is fixed to the fuel tank at a position overlapping with a section against which the fuel pump unit is pressed in a plan view; and a second fixation portion which is fixed to the fuel tank at a position not overlapping with the section against which the fuel pump unit is pressed in a plan view.
Hereinafter, the present disclosure will be described in detail with reference to the drawings.
The drawings show a vehicle fuel tank structure, in which
In addition,
Prior to a description of the vehicle fuel tank structure, first, a lower vehicle-body structure of the vehicle will be described with reference to
As shown in
In addition, a trunk floor 3 as a floor panel which forms a floor surface of a trunk is connected further to the rear of the rear seat pan 2 described above. A trunk recess which is formed by lowering the trunk floor 3 described above by a step is provided in an intermediate portion in a vehicle width direction of the trunk floor 3.
As shown in
In addition, as shown in
The cross member lower portion 8 described above integrates, so as to extend in the vehicle width direction, three members formed in a divided manner including an intermediate member 8A which extends in the vehicle width direction and a left-side member 8B and a right-side member 8C which are positioned on both left and right end portions of the intermediate member 8A.
As shown in
In addition, as shown in
In this case, a front portion of the rear side frame lower portion 14 described above is positioned on a vehicle-width-direction inner side with respect to a rear portion of the side sill inner portion 11 and, at the same time, the front portion of the rear side frame lower portion 14 and a rear portion of the side sill inner portion 11 are provided so as to overlap with each other in a length range in the vehicle front-rear direction of the rear seat pan 2.
Furthermore, as shown in
In addition, as shown in
In a similar manner, as shown in
As shown in
Next, the vehicle fuel tank structure will be described with reference to
As shown in
The fuel tank 20 is constructed by integrating two divided parts (an upper part and a lower part) being a fuel tank upper portion made of synthetic resin and a fuel tank lower portion 21 made of synthetic resin in order to store fuel therein.
A lower surface of the fuel tank lower portion 21 is covered from below the fuel tank lower portion 21 by an insulator and a protector, both not illustrated.
As shown in
A tank band 25 is provided which extends linearly from the rear right-side tank fixation portion 23 among the plurality of tank fixation portions 22, 23, and 24 toward front of the vehicle and toward outside on the left side in the vehicle width direction in a vehicle bottom view.
The tank band 25 includes a belt-like tank band body 26, a tank band holder 27 which extends along approximately an entire length in a longitudinal direction of the tank band body 26 and which holds the tank band body 26, a tank band fixation portion 28 on the rear side which is integrally provided in a rear end portion of the tank band body 26 being lead out from a right-side rear portion of the tank band holder 27, and a front-side tank band fixation portion 29 which is integrally provided in a front end portion of the tank band body 26 being lead out from a left-side front portion of the tank band holder 27.
As shown in
In addition, as shown in
Furthermore, as shown in
In other words, the fuel tank 20 described above is fixed to the vehicle body using the single tank band 25 and the plurality of fastening members 31, 32, 33, and 34 at a total of four fastening points which are spaced from each other in the vehicle front-rear direction and the vehicle width direction.
Accordingly, the fuel tank 20 is disposed below the floor panel via the tank band 25. In addition, a part of the tank band 25 is housed in a protruding portion 35 which is formed in a left portion in the vehicle width direction of the fuel tank lower portion 21 and which protrudes upward. As shown in
As shown in
The fuel pump provided in the fuel pump unit upper portion 41 described above is a fuel supply device which sucks in and discharges fuel inside the fuel tank 20 and which supplies the fuel to an internal combustion engine, and the fuel pump unit upper portion 41 described above is pressed against the fuel pump unit lower portion 42 by an urging force of a spring for the purpose of eliminating a deficiency in fuel supply.
As shown in
As shown in
As shown in
Among the plurality of second fixation portions 52LE, 52RI, and 52R, the second fixation portion 52LE (a left-side second fixation portion) is positioned on the left side in the vehicle width direction with respect to the first fixation portion 51, the second fixation portion 52RI (a right-side second fixation portion) is positioned on the right side in the vehicle width direction with respect to the first fixation portion 51, and the second fixation portion 52R (a rear-side second fixation portion) is positioned on the rear side in the vehicle front-rear direction with respect to the first fixation portion 51.
The first fixation portion 51 described above is fixed to the tank bottom surface 21a of the fuel tank lower portion 21 at a section against which the fuel pump unit 40 is pressed in a plan view or, in other words, at a position overlapping with the fuel pump unit lower portion 42.
In addition, the respective second fixation portions 52LE, 52RI, and 52R described above are fixed to the tank bottom surface 21a of the fuel tank lower portion 21 at sections against which the fuel pump unit 40 is pressed in a plan view or, in other words, at positions not overlapping with the fuel pump unit lower portion 42.
In simple terms, the first fixation portion 51 described above is provided at a vibration transmission section to which vibration from the fuel pump of the fuel pump unit 40 is transmitted, and the plurality of second fixation portions 52LE, 52RI, and 52R are provided at peripheral positions which are spaced from a vibration generation position.
As shown in
As shown in
In a similar manner, the second fixation portion 52RI described above includes a retainer 57 provided on the tank bottom surface 21a and a rivet 58 for fixing the reinforcement plate 50 to the tank bottom surface 21a via the retainer 57.
In addition, the second fixation portion 52R described above also includes a retainer provided on the tank bottom surface 21a and a rivet for fixing the reinforcement plate 50 to the tank bottom surface 21a via the retainer.
In this case, the respective retainers 53, 55, and 57 described above are formed of a same synthetic resin as the fuel tank 20 while the respective rivets 54, 56, and 58 described above are formed of, for example, polyamide 66 (so-called nylon 66).
Note that the first fixation portion 51 and the second fixation portions 52LE, 52RI, and 52R are not limited to being fixed by rivets and may be fastened using nuts and bolts.
As described above, the reinforcement plate 50 includes the first fixation portion 51 which is fixed to the tank bottom surface 21a of the fuel tank lower portion 21 at a position overlapping with a section against which the fuel pump unit 40 is pressed in a plan view and the plurality of second fixation portions 52LE, 52RI, and 52R which are fixed to the tank bottom surface 21a of the fuel tank lower portion 21 at positions not overlapping with a section against which the fuel pump unit 40 is pressed in a plan view.
Although vibration from the fuel pump of the fuel pump unit 40 is transmitted to the tank bottom surface 21a described above, since the reinforcement plate 50 is fixed by the first fixation portion 51 to be a vibration generation position and the second fixation portions 52LE, 52RI, and 52R at positions spaced from the vibration generation position, rigidity of the tank bottom surface 21a in a periphery of a vibration source is improved and vibration of the fuel tank 20 is suppressed.
Accordingly, a configuration is adopted in order to suppress the transmission of the vibration of the fuel pump unit 40 to the vehicle body without depending on a rubber mount.
The second fixation portions 52LE, 52RI, and 52R described above include a plurality of fixation portions, and the first fixation portion 51 described above is disposed on an imaginary line α (refer to
Specifically, as shown in
Accordingly, a configuration is adopted in which the first fixation portion 51 is pressed via the reinforcement plate 50 at the second fixation portions 52LE and 52RI which are positioned on the imaginary line α described above and, as a result, a vibration of the first fixation portion 51 to be a vibration generation position can be suppressed in an efficient manner.
As shown in
Accordingly, a configuration is adopted which causes the reinforcement plate 50 to press against the tank bottom surface 21a including the tank band 25 to further suppress the vibration of the tank bottom surface 21a.
As shown in
Accordingly, suppression of the vibration of the tank bottom surface 21a can be achieved by suppressing a bending deformation of the reinforcement plate 50 due to input of vibration in an up-down direction with the ridge portion 59 and the tank band 25 which is housed in the ridge portion 59.
Specifically, due to the formation of the ridge portion 59 described above, a ridge X1 in a front-side lower portion, a ridge X2 in a front-side upper portion, a ridge X3 in a rear-side upper portion, and a ridge X4 in a rear-side lower portion are formed in the reinforcement plate 50 described above as shown in
As shown in
As described above, due to the reinforcement plate 50 described above being spaced from the tank bottom surface 21a in the up-down direction, the reinforcement plate 50 can be made a structure capable of increasing a moment of inertia of area and, accordingly, a configuration is adopted which improves rigidity of the reinforcement plate 50.
As shown in
In addition, the reinforcement plate 50 described above is disposed at a position opposing an inside area of the raised wall 60 described above. While the raised wall 60 described above is integrally formed with the tank bottom surface 21a in the present example, alternatively, a structure provided with a raised wall which is separate from the fuel tank 20 may be adopted.
By providing the raised wall 60 which covers the circumference of the fuel pump unit lower portion 42 as described above, the inside area of the raised wall 60 with low rigidity can be reinforced in an efficient manner by the reinforcement plate 50 while eliminating a deficiency in fuel intake of the fuel pump during rolling of the vehicle and the like with the raised wall 60.
As shown in
A wall height of the front right wall 65 described above gradually decreases from a front end portion toward a rear end portion, and a height of a rear end of the front right wall 65 matches a height of the tank bottom surface 21a.
In addition, as shown in
Although the tank bottom surface 21a constructed by a flat surface as described above readily deforms, a configuration is adopted in which the tank bottom surface 21a is reliably reinforced by the reinforcement plate 50 which is fixed by the first fixation portion 51 and the second fixation portions 52LE, 52RI, and 52R.
In the drawings, an arrow F indicates the front of the vehicle, an arrow R indicates the rear of the vehicle, an arrow UP indicates above the vehicle, an arrow LE indicates left outward in the vehicle width direction, and an arrow RI indicates right outward in the vehicle width direction.
As described above, the vehicle fuel tank structure according to the present example includes: the fuel tank 20 provided below the floor panel (refer to the front floor panel 1 and the rear seat pan 2); the fuel pump unit 40 which is provided inside the fuel tank 20 and which is fixed by being pressed against the tank bottom surface 21a of the fuel tank 20; and the reinforcement member (the reinforcement plate 50) fixed to a vehicle-exterior side of the tank bottom surface 21a against which the fuel pump unit 40 of the fuel tank 20 is pressed, the vehicle fuel tank structure characterized in that the reinforcement member (the reinforcement plate 50) includes: the first fixation portion 51 which is fixed to the fuel tank 20 at a position overlapping with a section against which the fuel pump unit 40 described above is pressed in a plan view; and the second fixation portions 52LE, 52RI, and 52R which are fixed to the fuel tank 20 at positions not overlapping with the section against which the fuel pump unit 40 is pressed in a plan view (refer to
According to the vehicle fuel tank structure described above, although vibration from the fuel pump of the fuel pump unit 40 is transmitted to the tank bottom surface 21a, since the reinforcement member (the reinforcement plate 50) is fixed by the first fixation portion 51 to be a vibration generation position and the second fixation portions 52LE, 52RI, and 52R at positions spaced from the vibration generation position, rigidity of the tank bottom surface 21a in a periphery of a vibration source can be improved and vibration of the fuel tank 20 can be suppressed.
Therefore, the transmission of the vibration of the fuel pump unit 40 to the vehicle body can be suppressed without depending on a rubber mount.
In addition, in the vehicle fuel tank structure, the second fixation portions 52LE, 52RI, and 52R described above include a plurality of fixation portions, and the first fixation portion 51 described above is disposed on the imaginary line α connecting the plurality of second fixation portions (the second fixation portions 52LE and 52RI) to each other (refer to
According to the vehicle fuel tank structure described above, since the first fixation portion 51 is pressed via the reinforcement member (the reinforcement plate 50) at the second fixation portions 52LE and 52RI which are positioned on the imaginary line a, a vibration of the first fixation portion 51 to be a vibration generation position can be suppressed in an efficient manner.
Furthermore, in the vehicle fuel tank structure, the tank band 25 which supports the fuel tank 20 described above is disposed between the first fixation portion 51 described above and the second fixation portion 52R on the rear side described above (refer to
According to the vehicle fuel tank structure described above, by causing the reinforcement member (the reinforcement plate 50) to press against the tank bottom surface 21a including the tank band 25, the vibration of the tank bottom surface 21a can be further suppressed.
Moreover, in the vehicle fuel tank structure, the reinforcement member (the reinforcement plate 50) described above includes the ridge portion 59 which houses the tank band 25 described above and which protrudes upward (refer to
According to the vehicle fuel tank structure described above, suppression of the vibration of the tank bottom surface 21a can be achieved by suppressing a bending deformation of the reinforcement member (the reinforcement plate 50) due to input of vibration in an up-down direction with the ridge portion 59 and the tank band 25 which is housed in the ridge portion 59.
In addition, in the vehicle fuel tank structure, the tank bottom surface 21a of the fuel tank 20 described above and the reinforcement member (the reinforcement plate 50) described above are disposed spaced apart in the up-down direction (refer to
According to the vehicle fuel tank structure described above, due to the reinforcement member (the reinforcement plate 50) described above being spaced from the tank bottom surface 21a in the up-down direction, the reinforcement member (the reinforcement plate 50) can be made a structure capable of increasing a moment of inertia of area and, accordingly, rigidity of the reinforcement member (the reinforcement plate 50) can be improved.
Furthermore, in the vehicle fuel tank structure, the tank bottom surface 21a of the fuel tank 20 includes the raised wall 60 which protrudes toward an inside of the tank from the tank bottom surface 21a and which covers a circumference of the fuel pump unit 40 (specifically, refer to the fuel pump unit lower portion 42), and the reinforcement member (the reinforcement plate 50) is disposed at a position which opposes an inside area of the raised wall 60 described above (refer to
According to the vehicle fuel tank structure described above, the inside area of the raised wall 60 with low rigidity can be reinforced in an efficient manner by the reinforcement member (the reinforcement plate 50) while eliminating a deficiency in fuel intake of the fuel pump during rolling of the vehicle with the raised wall 60.
Moreover, in the vehicle fuel tank structure, the tank bottom surface 21a described above which the fuel pump unit 40 described above is pressed against is constructed as a flat surface (refer to
According to the vehicle fuel tank structure described above, although the tank bottom surface 21a constructed by a flat surface as described above readily deforms, the tank bottom surface 21a is reliably reinforced by the reinforcement member (the reinforcement plate 50) which is fixed by the first fixation portion 51 and the second fixation portions 52LE, 52RI, and 52R.
In a correspondence between the configuration of the present disclosure and the example described above, while the floor panel according to the present disclosure corresponds to the front floor panel 1 and the rear seat pan 2 according to the example, and
As described above, the present disclosure is useful with respect to a vehicle fuel tank structure including a fuel tank which is provided below a floor panel and a fuel pump unit which is provided inside the fuel tank and which is fixed by being pressed against a tank bottom surface of the fuel tank.
Number | Date | Country | Kind |
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2022-087500 | May 2022 | JP | national |