Fuel storage container

The innovative design of the engaging portion positioned radially outward and flexible deformation of the coupling mechanism in the fuel storage container ensures stable engagement during insertion and removal, enhancing the filter's diameter and filtration area.

JP7735232B2Active Publication Date: 2025-09-08AISAN IND CO LTD
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Patent Information

Application Number
JP2022111608
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-07-12
Publication Date
2025-09-08
Estimated Expiration
2042-07-12

AI Technical Summary

Technical Problem

The existing fuel storage container coupling mechanism is prone to disengagement when inserted into or removed from a fuel tank due to the leading edge of the engaging portion contacting and getting caught on the tank's opening edge.

Method used

The engaging portion of the lower member is disposed radially outward of the engaged portion of the upper member, allowing it to engage from the radially outward direction, and is flexible to deform radially outward during axial movement, ensuring engagement stability during insertion and removal.

Benefits of technology

Prevents coupling mechanism disengagement during insertion and removal from the fuel tank, maximizing the filter member's diameter and filtration area within the constrained dimensions.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

To prevent decoupling of a coupling mechanism caused by a fuel storage container abutting against or getting caught on a part of a fuel tank when the fuel storage container is inserted into the fuel tank through an opening of the fuel tank.SOLUTION: A fuel storage container 300 includes: an upper member 310 having an opening 313; a lower member 350 covering the opening 313; a filter member 340 covering the opening 313 and sandwiched between the upper member 310 and the lower member 350; and a coupling mechanism 370 coupling the upper member 310 to the lower member 350. The coupling mechanism 370 has: engaged parts 370u provided at an outer peripheral edge of the upper member 310; and engaging parts 370k provided at an outer peripheral edge of the lower member 350. Each engaging part 370k of the lower member 350 is disposed at the radial outer side relative to the engaged part 370u of the upper member 310 and configured to engage with the engaged part 370u from the radially outer side.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] The present invention relates to a fuel storage container that includes a filter member sandwiched between an upper member and a lower member, and a connecting mechanism that connects the upper member and the lower member, and that can store fuel in an area surrounded by the upper member and the filter member. [Background technology]

[0002] A technology relating to the above-mentioned fuel storage container is described in Patent Document 1. The fuel storage container 103 described in Patent Document 1 is used in a vehicle fuel supply device 100. As shown in Fig. 8, the fuel supply device 100 is installed in a fuel tank 110 of the vehicle, and is configured so that fuel stored in the fuel tank 110 can be pressure-fed to an engine (not shown) of the vehicle by a fuel pump (not shown).

[0003] 9, fuel storage container 103 includes container-shaped upper member 104 having bottom opening 104h, lid-shaped lower member 105 that covers bottom opening 104h of upper member 104, and disk-shaped filter member 107 that is sandwiched between upper member 104 and lower member 105. Upper member 104 and lower member 105 are joined at multiple points in the circumferential direction by joining mechanism 120 with the outer circumferential edge of filter member 107 sandwiched between them.

[0004] 9, the coupling mechanism 120 includes an engaged portion 126 provided to protrude upward from the outer peripheral edge of the lower member 105, and an engaging portion 123 provided to protrude downward from the outer peripheral edge of the upper member 104, configured to be flexible and capable of engaging with the engaged portion 126 of the lower member 105. The engaging portion 123 of the upper member 104 is disposed radially outward from the engaged portion 126 of the lower member 105. When the upper member 104 and the lower member 105 move relative to each other in the axial direction (up and down direction), the engaging portion 123 of the upper member 104 flexibly deforms radially outward and engages with the engaged portion 126 of the lower member 105 from the radially outer side. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Patent Publication No. 2021-011852 Summary of the Invention [Problem to be solved by the invention]

[0006] In the coupling mechanism 120 of the fuel storage container 103 disclosed in Patent Document 1, as shown in Fig. 9, the flexible engaging portion 123 that protrudes downward from the outer peripheral edge of the upper member 104 is disposed radially outward of the engaged portion 126 of the lower member 105. Therefore, when the engaging portion 123 of the upper member 104 and the engaged portion 126 of the lower member 105 are engaged with each other, the leading edge portion (lower edge portion) of the engaging portion 123 of the upper member 104 is exposed and faces downward. Therefore, for example, when the fuel supply device 100 is inserted into the fuel tank 110 through the opening 113 of the fuel tank 110 (see Fig. 8), the leading edge portion of the engaging portion 123 of the upper member 104 of the fuel storage container 103 may come into contact with and get caught on the edge of the opening 113 of the fuel tank 110. 9, engaging portion 123 of upper member 104 may spread radially outward, and the engagement with engaged portion 126 of lower member 105 may be released.

[0007] The present invention has been made to solve the above problems, and the problem that the present invention aims to solve is to prevent the coupling mechanism from being released due to abutment or getting caught when inserting a fuel storage container into a fuel tank through the opening of the fuel tank. [Means for solving the problem]

[0008] The above-mentioned problems are solved by the following inventions. A first invention is a fuel storage container that includes a container-shaped upper member having an opening on a lower side, a lower member that covers the opening of the upper member, a filter member that covers the opening and is sandwiched between the upper member and the lower member, and a coupling mechanism that couples the upper member and the lower member, and that can store fuel in a region surrounded by the upper member and the filter member, wherein the coupling mechanism has a plurality of engaged portions provided on an outer circumferential edge of the upper member and a plurality of engaging portions provided on the outer circumferential edge of the lower member and configured to be engageable with the plurality of engaged portions of the upper member, respectively, and the engaging portions of the lower member are disposed radially outward of the engaged portions of the upper member and are configured to be engageable with the engaged portions from the radially outward.

[0009] According to the present invention, the engaging portion of the lower member is disposed radially outward from the engaged portion of the upper member. The engaging portion is configured to be engageable with the engaged portion from the radially outward direction. That is, the engaging portion of the lower member engages with the engaged portion of the upper member while covering it from below and from the radially outward direction. Therefore, the leading edge of the engaging portion of the lower member is exposed and facing upward. As a result, for example, when inserting a fuel storage container into the fuel tank through the opening of the fuel tank, even if the lower end of the engaging portion of the lower member abuts against the edge of the opening of the fuel tank, the engagement between the engaging portion of the lower member and the engaged portion of the upper member is not affected, and there is no problem in which the engagement between them is released.

[0010] According to the second invention, the engaging portion of the lower member is configured to be flexible and deformable, and the engaging portion is configured to be able to engage with the engaged portion while being flexible and deformed radially outward as the upper member and the lower member move relative to each other in the axial direction.

[0011] According to the third invention, the engaging portion of the lower member has a plate portion that protrudes axially from the outer peripheral edge of the lower member and a claw portion that protrudes radially inward at the tip of the plate portion, and the engaged portion of the upper member is composed of a receiving portion formed so that the plate portion of the engaging portion of the lower member overlaps from the radial outside, and a claw opening formed in the receiving portion so that the claw portion of the engaging portion of the lower member can engage with it.

[0012] That is, the plate portion of the engaging portion of the lower member is disposed radially outward of the receiving portion of the engaged portion of the upper member, and the claw portion of the engaging portion of the lower member is formed so as to protrude radially inward at the tip of the plate portion. Therefore, the position of the plate portion of the engaging portion of the lower member, together with the outer peripheral edge of the lower member, defines the maximum outer diameter portion of the fuel storage container. Here, the outer diameter dimension of the maximum outer diameter portion of the fuel storage container is generally set to the maximum dimension that allows it to pass through the opening of the fuel tank. A filter member is set inside the plate portions of the multiple engaging portions of the lower member. Therefore, the outer diameter dimension of the filter member is set to a value approximately equal to the inner diameter dimension of the multiple plate portions. In this way, the outer diameter dimension of the filter member can be maximized within the constraints of the dimensions, and as a result, the filtration area of ​​the filter member can also be maximized.

[0013] According to a fourth aspect of the present invention, the filter member includes a filter main body portion that filters fuel, a clamped portion that is formed in an annular shape surrounding the filter main body portion and is clamped between an upper member and a lower member, and a filter outer peripheral edge that is located radially outward of the clamped portion, and the engagement portion between the claw portion of the engagement portion of the lower member and the claw opening of the engagement portion of the upper member is misaligned in the axial direction with respect to the filter member, and further, the engagement portion is located at a position that overlaps with the filter outer peripheral edge of the filter member in a plan view.

[0014] According to the fifth aspect of the present invention, the inner diameter of the plate portions of the plurality of engaging portions in the lower member is set to a value substantially equal to the outer diameter of the filter member.

[0015] According to the sixth aspect of the present invention, the engaged portion of the upper member is provided with a protrusion that axially covers the tip of the plate portion of the engaging portion of the lower member when the claw portion of the engaging portion of the lower member is engaged with the claw opening of the engaged portion of the upper member. Therefore, for example, when removing the fuel storage container from the fuel tank through the opening, the protrusion prevents the tip edge of the engaging portion of the lower member, which is exposed in an upward position, from directly contacting the edge of the opening of the fuel tank. Therefore, there is no problem in that the coupling mechanism becomes disengaged when the fuel storage container is removed from the fuel tank through the opening. [Effects of the Invention]

[0016] According to the present invention, when the fuel storage container is inserted into the fuel tank through the opening of the fuel tank, the coupling mechanism is not released from coupling due to contact or the like. [Brief explanation of the drawings]

[0017] [Figure 1] 1 is a rear view of a fuel supply device including a fuel storage container (sub-tank) according to a first embodiment of the present invention. [Figure 2] FIG. 2 is a vertical cross-sectional view of a pump unit of the fuel supply device. [Figure 3] FIG. 3 is an enlarged view of part III in FIG. 2. [Figure 4] FIG. 2 is an exploded perspective view showing the sub-tank. [Figure 5] FIG. 4 is a perspective view illustrating a coupling mechanism of the sub-tank. [Figure 6] 6 is a vertical cross-sectional view of the sub-tank coupling mechanism (a vertical cross-sectional view taken along the arrow VI in FIG. 2). [Figure 7] FIG. 2 is a piping diagram showing the relationship between the fuel supply device and a fuel injection device of an engine. [Figure 8] FIG. 1 is a rear view of a conventional fuel supply device. [Figure 9] FIG. 10 is a vertical cross-sectional view showing a conventional coupling mechanism for a fuel storage container (sub-tank). DETAILED DESCRIPTION OF THE INVENTION

[0018] [Embodiment 1] A fuel storage container according to a first embodiment of the present invention will be described below with reference to Figures 1 to 7. The fuel storage container according to this embodiment is used in a fuel supply device 10 that is installed in a fuel tank T of a vehicle. Here, up, down, left, and right shown in Figure 1 correspond to up, down, left, and right of the fuel tank T.

[0019] <Overview of the fuel supply device 10> As shown in the piping diagram of Fig. 7, the fuel supply device 10 is a device that pressure-feeds fuel in a fuel tank T to a fuel injection device 18 of an engine. The fuel supply device 10 and the engine fuel injection device 18 are connected by a fuel supply pipe 13. As shown in Fig. 1, the fuel supply device 10 is made up of a cover member 20 that closes an upper opening Th of the fuel tank T, and a pump unit 30 that is installed at the bottom of the fuel tank T. The housing of the pump unit 30 serves as a fuel storage container 300 (hereinafter referred to as a sub-tank 300) that can store fuel.

[0020] <Regarding the lid member 20 of the fuel supply device 10> 1, the cover member 20 has a disk-shaped cover plate 22, and a fuel discharge port 23 is provided on the upper surface of the cover plate 22. One end of the fuel supply pipe 13 shown in FIG. 7 is connected to the fuel discharge port 23. Also provided on the upper surface of the cover plate 22 are an electrical connector 24, a pipe connection port 25 for a canister (evaporative fuel treatment device), a breather pipe (not shown) for air venting, and the like.

[0021] As shown in Fig. 1, a stand-off portion 28 is provided on the underside of cover plate 22 of cover member 20. The stand-off portion 28 presses pump unit 30 downward by spring force, thereby holding pump unit 30 in a predetermined position in contact with the bottom surface of fuel tank T. Stand-off portion 28 includes a vertically extending downward cylindrical portion 28t (see dotted line in Fig. 1) and a substantially triangular plate-shaped curved wall portion 28w that covers and reinforces downward cylindrical portion 28t from the side. A cylindrical pillar portion 31 provided on pump unit 30 is inserted into downward cylindrical portion 28t of stand-off portion 28 in a state in which it is movable relative to the downward cylindrical portion 28t in the vertical direction.

[0022] <Regarding the pump unit 30 of the fuel supply device 10> The pump unit 30 is a part that pumps fuel, and as shown in FIG. 2 etc., includes a sub-tank 300 that forms the housing of the pump unit 30, a fuel pump 32 housed in the sub-tank 300, a pressure regulating valve 40, and a fuel filter 340. Furthermore, a fuel level gauge (not shown) that detects the fuel level in the fuel tank T is provided on the outside of the sub-tank 300. As shown in FIG. 2, the fuel pump 32 includes a motor section 32m and a pump section 32p, and is configured to be able to discharge fuel drawn from a fuel inlet (not shown) of the pump section 32p from a discharge port 32z at the upper end of the motor section 32m. The pressure regulating valve 40 is configured to be able to adjust the pressure of the fuel discharged from the discharge port 32z of the fuel pump 32.

[0023] <Regarding the sub-tank 300 of the pump unit 30> The subtank 300 is a fuel storage container, and as shown in FIGS. 2 to 4, includes a subtank body 310 having an opening 313 on its lower side, and a lower cover 350 configured to cover the opening 313 of the subtank body 310. As shown in FIG. 2, with the fuel filter 340 covering the opening 313 of the subtank body 310, the outer periphery of the fuel filter 340 is sandwiched between the subtank body 310 and the lower cover 350. In other words, fuel is stored in the area surrounded by the subtank body 310 and the fuel filter 340. The subtank 300 also has four sets of coupling mechanisms 370 arranged at equal intervals around the periphery, which couple the outer periphery of the subtank body 310 and the outer periphery of the lower cover 350 when the fuel filter 340 is sandwiched between them.

[0024] <About the subtank body 310> As shown in FIG. 2, the subtank body 310 includes a tank forming portion 312, a pump case portion 322, a regulator case portion 324, and a fuel supply passage 230. The tank forming portion 312 is formed in a cylindrical shape with a top. A flange portion 314 that protrudes radially outward is provided on the periphery of a lower opening 313 of the tank forming portion 312, and as shown in FIGS. 3 and 4, the flange portion 314 is formed into an inverted L-shaped cross section by a stepped portion 314y and a leg wall portion 314w. The inner diameter of the leg wall portion 314w of the flange portion 314 is set to a value approximately equal to the outer diameter of the fuel filter 340, as shown in FIG. 2 and other figures. The outer diameter of the flange portion 314 (leg wall portion 314w) of the tank forming portion 312 is set to the maximum diameter that can pass through the upper opening Th of the fuel tank T. 3 and 4, a filter holding wall portion 315 is formed in an annular shape around the periphery of the lower opening 313 of the tank forming portion 312, protruding downward from the radially inner end of the flange portion 314. Furthermore, as shown in FIG. 4, four engaged portions 370u (described later) of the coupling mechanism 370 are provided at equal intervals in the circumferential direction around the periphery of the lower opening 313 of the tank forming portion 312.

[0025] As shown in Fig. 2, the pump case 322 of the subtank body 310 is a portion that houses the motor section 32m of the fuel pump 32, and is formed in a cylindrical shape with a top. The upper portion of the pump case 322 protrudes upward from the tank forming section 312, and the lower end opening (figure number omitted) of the pump case 322 is located within the internal space of the tank forming section 312. The motor section 32m of the fuel pump 32 is inserted into the pump case 322 from below, and the pump section 32p of the fuel pump 32 protrudes downward from the pump case 322. The pump section 32p of the fuel pump 32 is connected to the filter main body 341 of the bag-shaped fuel filter 340 via a central connecting member 342 of the fuel filter 340 (see Fig. 4).

[0026] 2, the regulator case portion 324 of the subtank body 310 is arranged side by side with the pump case portion 322. The regulator case portion 324 is formed in a substantially cylindrical shape, and the pressure adjustment valve 40 is housed in the regulator case portion 324.

[0027] As shown in FIG. 2, a fuel supply passage 230 is formed in the upper part of the sub-tank body 310. An inlet 231 of the fuel supply passage 230 is bent downward and provided at the upper end of the pump case 322. A discharge port 32z formed at the upper end of the fuel pump 32 (motor 32m) is connected to the inlet 231 of the fuel supply passage 230. A backflow prevention member 231v is provided on the downstream side (upper side) of the inlet 231 of the fuel supply passage 230. The downstream side of the backflow prevention member 231v of the fuel supply passage 230 is formed into a substantially inverted L-shape by a horizontal passage and a vertical passage. A communication passage 233 communicating with the regulator case 324 is connected to the vertical passage portion of the fuel supply passage 230. An outlet 232 is formed laterally on the side of the vertical passage of the fuel supply passage 230. One end of a connecting tube (not shown, see the two-dot chain line in FIG. 1) is connected to the outlet 232 of the fuel supply passage 230 , and the other end of the connecting tube is connected to the fuel discharge port 23 of the cover member 20 .

[0028] <About the Lower Cover 350> As shown in FIGS. 2 to 4, the lower cover 350 is a lid-like member that supports the fuel filter 340 from below, and is formed in the shape of a circular shallow dish with a lattice-like bottom plate portion 351. As shown in FIGS. 3 and 4, an annular filter sandwiching wall portion 353 is formed on the peripheral edge of the bottom plate portion 351 of the lower cover 350 so as to protrude upward at a position corresponding to the filter sandwiching wall portion 315 of the subtank main body 310 (tank forming portion 312). Furthermore, a tapered portion 355 is provided on the radially outer side of the filter sandwiching wall portion 353 of the lower cover 350 so as to widen upward. The tapered portion 355 covers the filter outer peripheral edge 346 of the fuel filter 340 from below, and the outer peripheral edge of the tapered portion 355 is fitted from below to the leg wall portion 314w of the flange portion 314 of the subtank main body 310. That is, the outer diameter of the tapered portion 355 of the lower cover 350 is set to a value equal to the outer diameter of the flange portion 314 of the subtank body 310. In addition, on the periphery of the lower cover 350, four engaging portions 370k (described later) of the coupling mechanism 370 are provided at equal intervals in the circumferential direction at positions corresponding to the engaged portions 370u of the subtank body 310 (tank forming portion 312).

[0029] <About the fuel filter 340> 4, the fuel filter 340 has a generally disc-shaped outer shape and is composed of a filter main body 341 that filters fuel, a clamped portion 344 located radially outward from the filter main body 341, and a filter outer circumferential edge 346 located radially outward from the clamped portion 344. The outer diameter of the fuel filter 340 is set to a value substantially equal to the inner diameter of the leg wall portion 314w of the flange portion 314 of the subtank main body 310 and the outer circumferential edge of the tapered portion 355 of the lower cover 350, as shown in FIG.

[0030] The filter body 341 of the fuel filter 340 is formed in a hollow bag shape, and a central connecting member 342 to which the pump section 32p of the fuel pump 32 is connected is provided on the upper surface side of the filter body 341. That is, by connecting the pump section 32p of the fuel pump 32 to the central connecting member 342 of the filter body 341, the fuel inlet of the pump section 32p comes into communication with the space within the bag of the filter body 341. This allows the pump section 32p of the fuel pump 32 to suck in the fuel in the fuel tank T that has passed through the fuel filter 340 and the fuel in the sub-tank 300.

[0031] 2 and 3, the clamped portion 344 of the fuel filter 340 is a portion that is clamped from above and below between the filter clamping wall portion 315 of the subtank main body 310 (tank forming portion 312) and the filter clamping wall portion 353 of the lower cover 350. The clamped portion 344 is formed in a ring shape that surrounds the filter main body portion 341. A filter outer peripheral edge 346 of the fuel filter 340 is supported horizontally by the subtank main body 310 and the lower cover 350, thereby ensuring stable clamping of the clamped portion 344.

[0032] <About the coupling mechanism 370> As described above, the coupling mechanism 370 couples the subtank body 310 and the lower cover 350 with the fuel filter 340 sandwiched between them. The coupling mechanism 370 is composed of an engaged portion 370u on the subtank body 310 side and an engaging portion 370k on the lower cover 350 side. As shown in Figures 4 and 5, the flange portion 314 of the subtank body 310 is formed with four cutout recesses 314c in the circumferential direction, each cutout being a fixed dimension. The engaged portions 370u of the coupling mechanism 370 are formed at positions corresponding to the cutout recesses 314c.

[0033] 4, 5, etc., the engaged portion 370u of the subtank body 310 has a box-shaped block-shaped receiving portion 372 that protrudes radially outward from the outer peripheral surface of the subtank body 310 (tank forming portion 312) at a position slightly higher than the notched recess 314c. As shown in Fig. 6, the receiving portion 372 is disposed directly above the filter outer peripheral edge 346 of the fuel filter 340. The outer peripheral surface of the receiving portion 372 forms a receiving surface 372f with which the engaging portion 370k on the lower cover 350 side overlaps, and the outer diameter of the receiving surface 372f is set to a value substantially equal to the outer diameter of the fuel filter 340.

[0034] 4 and 6, a claw opening 372h configured to be engageable with the claw portion 377 of the engagement portion 370k of the lower cover 350 is formed in the center of the receiving surface 372f of the receiving portion 372. Furthermore, a claw receiving protrusion 373 that receives the claw portion 377 of the engagement portion 370k from below is formed in the lower side position of the claw opening 372h of the receiving portion 372. Furthermore, a pair of protrusions 374 that cover the upper end (front end) of the engagement portion 370k from above are formed in the upper end position of the receiving surface 372f of the receiving portion 372, as shown in FIG.

[0035] 4 to 6, the engaging portion 370k of the lower cover 350 includes a plate portion 375 that protrudes in the axial direction (upward) from the outer peripheral edge of the tapered portion 355 of the lower cover 350, and a claw portion 377 that protrudes radially inward at the tip of the plate portion 375. Because the plate portion 375 of the engaging portion 370k protrudes in the axial direction (upward) from the outer peripheral edge of the tapered portion 355 of the lower cover 350, the outer diameter dimension of the plate portion 375 of the engaging portion 370k is equal to the outer diameter dimension of the tapered portion 355 of the lower cover 350. The engaging portion 370k of the lower cover 350 is disposed radially outward from the engaged portion 370u of the subtank body 310, and is configured to engage with the corresponding engaged portion 370u from the radially outer side. When the engaging portion 370k of the lower cover 350 engages with the engaged portion 370u of the subtank main body 310, as shown in FIG. 6, the plate portion 375 of the engaging portion 370k overlaps the receiving surface 372f of the receiving portion 372 of the engaged portion 370u from the radially outer side.

[0036] The plate portion 375 of the engaging portion 370k of the lower cover 350 is formed in a flexible band-like shape, and has a rectangular opening 375h at its center into which the claw receiving protrusion 373 of the engaged portion 370u of the subtank body 310 can be inserted. The inner diameter of the plate portion 375 of the engaging portion 370k of the lower cover 350 is set to be approximately equal to the outer diameter of the receiving surface 372f of the engaged portion 370u and the outer diameter of the fuel filter 340. Therefore, when the engaging portion 370k of the lower cover 350 and the engaged portion 370u of the subtank body 310 are engaged, the claw portion 377 and the claw receiving protrusion 373 of the claw opening 372h are positioned above the filter outer peripheral edge 346 of the fuel filter 340. The engaging portion between the claw portion 377 and the claw receiving protrusion 373 of the claw opening 372h overlaps with the filter outer peripheral edge 346 of the fuel filter 340 in plan view.

[0037] <Assembling the subtank 300> When assembling the subtank 300, the central connecting member 342 of the fuel filter 340 is connected to the pump portion 32p of the fuel pump 32 housed in the pump case portion 322 of the subtank body 310. In this state, the filter outer peripheral edge 346 of the fuel filter 340 is housed in the flange portion 314 of the subtank body 310, and the opening 313 of the subtank body 310 is covered by the fuel filter 340. Next, the lower cover 350 is arranged coaxially with the subtank body 310 etc. so as to cover the opening 313 of the subtank body 310 and the fuel filter 340, and the engaged portion 370u of the subtank body 310 and the engaging portion 370k of the lower cover 350 are positioned at the same position in the circumferential direction. In this state, the subtank body 310 and the lower cover 350 are moved relative to each other in the axial direction (up and down direction) to engage the engaging portion 370k of the lower cover 350 with the engaged portion 370u of the subtank body 310.

[0038] That is, by moving the subtank body 310 and the lower cover 350 relative to each other in the axial direction (up and down), the upper inclined surfaces 377s (see FIG. 6) of the claw portions 377 of the engaging portions 370k (plate portions 375) abut from below against the lower inclined surfaces 373s of the claw receiving protrusions 373 of the engaged portions 370u (receiving portions 372) and slide upward. As a result, the plate portions 375 supporting the claw portions 377 elastically deform radially outward, and the claw portions 377 move upward, climbing over the claw receiving protrusions 373 of the receiving portions 372. Then, as shown in FIG. 6, the elastic force of the plate portions 375 causes the claw portions 377 to engage with the claw openings 372h of the receiving portions 372. In this state, the engaging portions 370k of the lower cover 350 engage with the engaged portions 370u of the subtank body 310, and the lower cover 350 is joined to the subtank body 310. That is, the assembly of the sub-tank 300 is completed.

[0039] When the lower cover 350 is joined to the subtank body 310, as shown in FIGS. 3 and 6, the sandwiched portion 344 of the fuel filter 340 is sandwiched from above and below by the filter sandwiching wall portion 315 of the subtank body 310 and the filter sandwiching wall portion 353 of the lower cover 350. This seals the outer periphery of the filter main body portion 341 of the fuel filter 340. The filter outer periphery 346 of the fuel filter 340 is held within the space formed by the flange portion 314 of the subtank body 310 and the tapered portion 355 of the lower cover 350, as shown in FIG. 3. The outer diameters of the flange portion 314 of the subtank body 310, the tapered portion 355 of the lower cover 350, and the plate portion 375 of the engaging portion 370k, which are the maximum outer diameter portions of the subtank 300, are set to the maximum diameters that can pass through the upper opening Th of the fuel tank T. Therefore, the outer diameter of the fuel filter 340 held in the space formed by the flange portion 314 of the subtank body 310, the tapered portion 355 of the lower cover 350, and the plate portion 375 of the engaging portion 370k can be made as large as possible within the restricted dimensions, thereby efficiently increasing the filtering area of ​​the fuel filter 340.

[0040] <Correspondence between terms related to embodiment 1 and terms related to the present invention> The subtank 300 according to this embodiment corresponds to the fuel storage container of the present invention. The subtank body 310 according to this embodiment corresponds to the upper member of the present invention, the lower cover 350 corresponds to the lower member of the present invention, and the fuel filter 340 corresponds to the filter member of the present invention.

[0041] <Advantages of the subtank 300 according to this embodiment> In the subtank 300 (fuel storage container) according to this embodiment, the engaging portion 370k of the lower cover 350 (lower member) is disposed radially outward of the engaged portion 370u of the subtank body 310 (upper member). The engaging portion 370k is configured to be engageable with the engaged portion 370u from the radially outer side. That is, the engaging portion 370k of the lower cover 350 engages with the engaged portion 370u of the subtank body 310 while covering it from below and from the radially outer side. Therefore, the leading edge of the engaging portion 370k of the lower cover 350 is exposed and facing upward. As a result, for example, when the sub-tank 300 is inserted into the fuel tank T through the upper opening Th of the fuel tank T, even if the lower end of the engaging portion 370k of the lower cover 350 abuts against the opening edge of the fuel tank T, the engagement state between the engaging portion 370k of the lower cover 350 and the engaged portion 370u of the sub-tank main body 310 is not affected, and there is no problem such as the engagement between the two being released.

[0042] Furthermore, the plate portions 375 of the engaging portions 370k of the lower cover 350 are disposed radially outward of the receiving portions 372 of the engaged portions 370u of the subtank body 310, and the claw portions 377 of the engaging portions 370k of the lower cover 350 are formed to protrude radially inward at the tips of the plate portions 375. Therefore, the position of the plate portions 375 of the engaging portions 370k of the lower cover 350, together with the outer peripheral edge of the lower cover 350, becomes the maximum outer diameter portion of the subtank 300. Here, the outer diameter dimension of the maximum outer diameter portion of the subtank 300 is set to the maximum dimension that allows it to pass through the upper opening Th of the fuel tank T. Then, a fuel filter 340 (filter member) is set inside the plate portions 375 of the multiple engaging portions 370k of the lower cover 350. Therefore, the outer diameter dimension of the fuel filter 340 is set to a value substantially equal to the inner diameter dimension of the multiple plate portions 375. In this way, the outer diameter of the fuel filter 340 can be made as large as possible within the restricted dimensions, and as a result, the filtering area of ​​the fuel filter 340 can also be made as large as possible.

[0043] Furthermore, the engaged portion 370u of the subtank body 310 is provided with a protrusion 374 that covers from above (in the axial direction) the tip of the plate portion 375 of the engaging portion 370k of the lower cover 350 when the claw portions 377 of the engaging portion 370k of the lower cover 350 are engaged with the claw openings 372h of the engaged portion 370u. Therefore, for example, when the subtank 300 is removed from the top opening Th of the fuel tank T, the protrusion 374 prevents the tip edge of the plate portion 375 of the engaging portion 370k, which is exposed in an upward position, from directly contacting the edge of the opening of the fuel tank T. Therefore, when the subtank 300 is removed from the top opening Th of the fuel tank T, there is no problem such as the coupling of the coupling mechanism 370 being released.

[0044] The present invention is not limited to the above-described embodiment, and modifications are possible within the scope of the present invention. For example, in this embodiment, the plate portion 375 of the engaging portion 370k of the lower cover 350 is configured to be deformable radially outward, and the receiving portion 372 of the engaged portion 370u of the subtank body 310 is formed in a box-shaped block shape. However, it is also possible to configure the plate portion 375 of the engaging portion 370k of the lower cover 350 as non-deformable, and the receiving portion 372 of the engaged portion 370u of the subtank body 310 as elastically deformable radially inward. Furthermore, in this embodiment, the coupling mechanisms 370 for connecting the subtank body 310 and the lower cover 350 are provided at four locations equidistantly in the circumferential direction, but the number of coupling mechanisms 370 can be changed as needed depending on the radial dimension of the subtank 300.

[0045] In addition, in this embodiment, the subtank body 310 and the lower cover 350 move relative to each other in the axial direction (up and down direction), causing the plate portion 375 of the engaging portion 370k to bend and deform radially outward, and the claw portion 377 at the tip of the plate portion 375 to engage with the claw opening 372h of the engaged portion 370u. However, a configuration is also possible in which the engaging portion 370k and the engaged portion 370u engage with each other by rotating the subtank body 310 and the lower cover 350 by a certain angle about their axes. In addition, in this embodiment, the subtank 300 is shown as an example of a fuel storage container, but the present invention can be applied to fuel containers other than the subtank 300. [Explanation of symbols]

[0046] 10...Fuel supply device 300···Subtank (fuel storage container) 310 Subtank body (upper member) 313...Aperture 315 Filter clamping wall 340 Fuel filter (filter member) 341 Filter body 344...Pinched part 346 Filter outer edge 350 Lower cover (lower part) 353 Filter clamping wall 370...Coupling mechanism 370k...Engagement part 370u...Engaged part 372 Receiving part 372h...Claw opening 374···Convex part 375...Plate part 377···Claw part

Claims

1. A fuel storage container comprising: a container-shaped upper member having an opening on a lower side; a lower member covering the opening of the upper member; a filter member covering the opening and sandwiched between the upper member and the lower member; and a joining mechanism joining the upper member and the lower member, wherein the fuel storage container is capable of storing fuel in a region surrounded by the upper member and the filter member, The coupling mechanism comprises: a plurality of engaged portions provided on an outer peripheral edge of the upper member; a plurality of engaging portions provided on an outer peripheral edge of the lower member, the engaging portions being configured to be engageable with the plurality of engaged portions of the upper member, respectively; It has the engaging portion of the lower member is disposed radially outward from the engaged portion of the upper member, is configured to be able to engage with the engaged portion from the radially outward, and includes a plate portion that protrudes in the axial direction from an outer peripheral edge of the lower member, and a claw portion that protrudes radially inward at a tip of the plate portion, A fuel storage container in which the engaged portion of the upper member is composed of a receiving portion formed so that the plate portion of the engaging portion of the lower member overlaps from the radial outside, and a claw opening formed in the receiving portion so that the claw portion of the engaging portion of the lower member can engage.

2. 2. The fuel storage container according to claim 1, The engaging portion of the lower member is configured to be flexible and deformable, The fuel storage container is configured so that the engaging portion can engage with the engaged portion while being flexibly deformed radially outward as the upper member and the lower member move relative to each other in the axial direction.

3. A fuel storage container according to claim 1, the filter member includes a filter main body portion that filters fuel, a clamped portion that is formed in an annular shape surrounding the filter main body portion and is clamped between the upper member and the lower member, and a filter outer peripheral edge that is located radially outward of the clamped portion, A fuel storage container in which an engagement portion between a claw portion of an engagement portion of the lower member and a claw opening of an engaged portion of the upper member is axially misaligned with respect to the filter member, and further, the engagement portion is positioned so as to overlap with the outer peripheral edge of the filter member in a planar view.

4. A fuel storage container according to claim 3, The inner diameter of the plate portions of the plurality of engaging portions in the lower member is set to a value substantially equal to the outer diameter of the filter member.

5. A fuel storage container according to claim 4, A fuel storage container in which the engaged portion of the upper member has a convex portion that covers the tip of the plate portion of the engaging portion of the lower member from the axial direction when the claw portion of the engaging portion of the lower member is engaged with the claw opening of the engaged portion of the upper member.

Citation Information

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