APPARATUS FOR PREVENTING FUEL OVERFLOW OF A VEHICLE FUEL TANK
20230087533 · 2023-03-23
Assignee
Inventors
Cpc classification
B60K15/077
PERFORMING OPERATIONS; TRANSPORTING
B60K15/03519
PERFORMING OPERATIONS; TRANSPORTING
F16K31/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K2015/03514
PERFORMING OPERATIONS; TRANSPORTING
B60K2015/03289
PERFORMING OPERATIONS; TRANSPORTING
B60K2015/03256
PERFORMING OPERATIONS; TRANSPORTING
B60K2015/03328
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60K15/077
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An apparatus for preventing fuel overflow of a vehicle fuel tank includes: a valve unit including a valve body, a housing configured to cover a lower part of the valve body, a float mounted on the valve body and configured to slide up and down, a vapor line opened and closed according to a movement of the float, and a fuel inlet hole; a cover unit coupled to and enveloping the housing, the cover unit having a plurality of windows along an outer circumferential surface at a height corresponding to the fuel inlet hole, thereby being formed to allow the fuel to be introduced into the valve unit; and a shielding unit mounted on the cover unit to shield open windows, the shielding unit able to rotate along a turning direction of the vehicle to form an inflow path of the fuel flowing into the fuel inlet hole.
Claims
1. An apparatus for preventing fuel overflow of a vehicle fuel tank, the apparatus comprising: a valve unit comprising a valve body, a housing configured to cover a lower part of the valve body, a float mounted on the valve body and configured to slide up and down, and a vapor line selectively connected to a canister side by being opened and closed according to a movement of the float, wherein a fuel inlet hole is provided on a side surface of the housing; a cover unit coupled to the housing to envelop the housing, and comprising a plurality of windows along an outer circumferential surface thereof at a height corresponding to the fuel inlet hole, thereby being configured to allow fuel to be introduced into the valve unit; and a shielding unit mounted on the outer circumferential surface of the cover unit to shield open windows and configured such that, when mounted on the cover unit, the shielding unit rotates along a turning direction of a vehicle to form an inflow path of the fuel flowing into the fuel inlet hole.
2. The apparatus of claim 1, wherein, when rotated to face the fuel inlet hole by the turning direction, the shielding unit shields the windows, thereby blocking the fuel from being directly introduced through the fuel inlet hole.
3. The apparatus of claim 1, wherein, when rotated in an opposite direction to the fuel inlet hole by the turning direction, the shielding unit shields the windows, thereby allowing the fuel to be introduced into the fuel inlet hole by passing between an inner circumferential surface of the cover unit and an outer circumferential surface of the housing while being decelerated.
4. The apparatus of claim 1, wherein the shielding unit comprises: a body portion mounted on a mounting area of the cover unit having the windows; and coupling protrusion parts protruding from an upper portion and a lower portion of the body portion, respectively, and configured to be inserted into latching grooves of the mounting area, respectively.
5. The apparatus of claim 4, wherein the body portion mounted on the mounting area of the cover unit has a length shorter than a circumferential length of the cover unit when opposite end parts thereof are spaced apart from each other.
6. The apparatus of claim 4, wherein each of the coupling protrusion parts has a width shorter than a width of an interior of associated one of the latching grooves, thereby allowing the body portion to be rotatable in the mounting area by gravity and acceleration acting thereon in the turning direction.
7. The apparatus of claim 1, wherein the cover unit has a shape corresponding to a diameter of the housing, and latching members protruding from the housing are positioned to be hooked to guide grooves provided on an outer circumferential surface of the cover unit, respectively, thereby allowing fixing of the cover unit to the housing at coupling positions.
8. The apparatus of claim 7, wherein the cover unit has a diameter larger than the diameter of the housing such that an inner circumferential surface thereof is spaced apart from an outer circumferential surface of the housing when the latching members are hooked on the guide grooves, respectively.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The above and other objectives, features, and other advantages of the present disclosure should be more clearly understood from the following detailed description when taken in conjunction with the accompanying drawings, in which:
[0022]
[0023]
[0024]
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[0027]
[0028]
[0029]
[0030]
DETAILED DESCRIPTION OF THE DISCLOSURE
[0031] Hereinafter, an embodiment of the present disclosure is described in detail with reference to the accompanying drawings.
[0032] Advantages and features of the present disclosure and a method of achieving same should become apparent with reference to the embodiments described below in detail in conjunction with the accompanying drawings.
[0033] However, the present disclosure is not limited by the embodiments disclosed below but may be implemented in a variety of different forms, only the present embodiments are provided to complete the inventive concept of the present disclosure and to completely inform the scope of the disclosure to those of ordinary skill in the art to which the present disclosure belongs, and the present disclosure will only be defined by the scope of the claims.
[0034] In addition, in the description of the present disclosure, when it is determined that related known techniques may obfuscate the gist of the present disclosure, a detailed description thereof is omitted.
[0035]
[0036] In addition,
[0037] In addition,
[0038] With reference to
[0039] The valve unit 100 includes a valve body 110, a housing 120 configured to cover a lower part of the valve body 110, a float 130 mounted on the valve body 110 and configured to slide up and down, and a vapor line 140 selectively connected to a canister side by being opened and closed according to a movement of the float 130. The valve unit 100 further includes a fuel inlet hole 121 provided on a side surface of the housing 120 (refer to
[0040] The valve unit 100 further includes a valve cap 150 configured to cover and protect an upper end of the valve body 110. The valve cap 150 is connected to the vapor line 140 and may be fixed to a position such that a fastening groove 152a of a coupling member 152 thereof extending toward the housing 120 is positioned by being hooked on a latching piece 124 protruding from an outer circumferential surface of the housing 120.
[0041] In one example structure of the valve unit 100 including the above configuration, the float 130 may slide up and down due to buoyancy according to the height of the fuel introduced into the fuel inlet hole 121 as shown in
[0042] In other words, when the fuel inside the fuel tank T rises to a preset height, the fuel flows into the window 210 and passes between an inner circumferential surface of the cover unit 200 and the housing 120 and flows into a fuel inlet hole 121 (refer to the direction of the arrow in
[0043] When the fuel inside the fuel tank T is filled with an amount less than a preset amount, the float 130 moves to a lower side (i.e., downward), and the vapor line 140 is opened. In the case of a vent valve of a conventional tank T, fuel flows into the open vapor line 140 as flow of the fuel becomes abrupt, such as when the vehicle is suddenly braked or stopped, turned in the left or right direction, or the like, thereby causing the fuel to flow into the open vapor line 140 to cause fuel leakage.
[0044] In other words, as shown in
[0045] In order to prevent such a problem in advance, the cover unit 200 is coupled to the housing 120 in such a way to envelop the housing 120. The cover unit 200 is provided with a plurality of windows 210 at equal intervals along an outer circumferential surface at a height corresponding to the fuel inlet hole 121, thereby being formed to allow the fuel to be selectively introduced into the valve unit 100 while sequentially passing through a predetermined inflow path, i.e., the window 210 and the fuel inlet hole 121.
[0046] As shown in
[0047] Each of the latching members 122 may have an upper surface protruding with a predetermined length to support the inside of an associated one of the guide grooves 220 (see an enlarged drawing in
[0048] In addition, the cover unit 200 may be formed with a diameter larger than the diameter of the housing 120 such that the inner circumferential surface thereof is spaced apart from the outer circumferential surface of the housing 120 at a level of the gap “a” when the latching members 122 are hooked on the guide grooves 220, respectively.
[0049] The cover unit 200 is coupled with, by being hooked on, the housing 120 in a state in which the gap “a” is formed, so even when the windows 210 of the cover unit 200 are shielded through the shielding unit 300, ventilation to the inside of the valve unit 100 is made through the gap “a”. Accordingly, this is to relieve the pressure inside the fuel tank T by allowing the fuel boil-off gas generated in the fuel tank T to be discharged.
[0050] As shown in
[0051] To this end, the shielding unit 300 includes a body portion 310 and coupling protrusion parts 320.
[0052] The body portion 310 is mounted on a mounting area 200a of the cover unit 200 provided with the windows 210.
[0053] In addition, the body portion 310 is provided with a length shorter than a circumferential length of the cover unit 200 when opposite end parts are spaced apart from each other, thereby being mounted on the mounting area 200a and is formed to be able to shield some of the windows 210 including at least one of the plurality of windows 210 when rotating on the mounting area 200a.
[0054] The coupling protrusion parts 320 are formed to protrude from an upper portion and a lower portion of the body portion 310, respectively, and are provided to be inserted into latching grooves 202 of the mounting area 200a, respectively.
[0055] In addition, each of the coupling protrusion parts 320 is formed with a width c shorter than a width b of an interior of associated one of the latching groove parts 202 (see
[0056] When the vehicle is biased in the turning direction, the fuel level also rises along the corresponding direction. Accordingly, the body portion 310 rotates along the mounting area 200a by the structural features of the coupling protrusion parts 320 to shield the fuel inlet hole 121, thereby preventing the fuel from being rapidly introduced by the raised fuel level in advance and reducing the possibility that the fuel may be introduced into the vapor line 140 and guided to the canister.
[0057] The fuel inlet hole 121 is typically formed to be biased toward one side of the housing 120, and the fuel tank T is tilted by the turning direction of the vehicle, thereby rotating the body portion 310 to face the fuel inlet hole 121. Accordingly, the windows 120 may be shielded through the shielding unit 300 so that the fuel may be blocked from being directly introduced through the fuel inlet hole 121.
[0058] In addition, when the fuel inlet hole 121 is formed to be biased toward one side of the housing 120 in the same direction as above, as the fuel tank T is tilted by the turning direction, the body portion 310 rotates in an opposite direction to the fuel inlet hole 121. Accordingly, the windows 120 positioned opposite to the fuel inlet hole 121 may be shielded through the shielding unit 300 so that the fuel may be introduced into the fuel inlet hole 121 by passing (by being decelerated) between the inner circumferential surface of the cover unit 200 and the outer circumferential surface of the housing 120.
[0059] For example, as shown in
[0060] On the contrary, as shown in
[0061] In addition, even when the fuel tank T is tilted backward or forward due to a sudden start or sudden stop of the vehicle, thereby causing the fuel level to rise, the shielding unit 300 rotates on the cover unit 200 by gravity and acceleration acting on the body part 310. As a result, the windows 120 may be shielded through the shielding unit 300 so that the fuel may be introduced into the fuel inlet hole 121, by being decelerated, by passing between the inner circumferential surface of the cover unit 200 and the outer circumferential surface of the housing 120.
[0062] Therefore, in the present embodiment, the shielding unit 300 is selectively rotated on the cover unit 200 by gravity and acceleration acting on the body part 310 according to the vehicle turning, so that the window 120 is shielded. Accordingly, it is possible to prevent the fuel from rapidly flowing into the inside of the valve unit 100.
[0063] In addition, the cover unit 200 and the shielding unit 300 as described above may be commonly applied to the inside of the fuel tank T in which the valve unit 100 having the same diameter as the cover unit 200 and the shielding unit 300 is mounted, thereby realizing ease of manufacture and also reducing costs at the same time.
[0064] The present disclosure is provided with a valve unit capable of being fixed to a valve body and a shielding unit mounted and capable of being rotated in the valve unit to complicate an overflowing flow path of fuel. This results in reducing a possibility for the fuel introduced into the valve unit to be guided and overflowed to the canister.
[0065] In addition, according to the present disclosure, when the vehicle turns along different turning directions, the shielding unit rotates by gravity and acceleration to block a fuel inlet hole provided in the valve unit. Accordingly, when the fuel level in the fuel tank rises in a turning direction, there is an effect of preventing in advance the problem of the fuel from flowing into the inside of the valve unit and the canister, through the fuel inlet hole.
[0066] In addition, the present disclosure may apply a configuration including a cover unit and the shielding unit to the inside of the fuel tank in which the valve unit having the same diameter as the cover unit and the shielding unit is mounted, so there is an effect of realizing ease of manufacture and also reducing costs, at the same time.
[0067] Although the present disclosure has been described with reference to the embodiment(s) shown in the drawings, this is only for example, and it should be understood by those having ordinary skill in the art that various modifications may be made therefrom, and all or parts of the embodiment(s) may optionally be combined. Accordingly, the true technical protection scope of the present disclosure should be defined by the technical spirit of the appended claims.