The present invention relates to a fuel delivery module of a vehicle, and more particularly to a fuel delivery module installed in a saddle type fuel tank.
Generally, a fuel delivery module associated with a fuel pump and a fuel level sensor is mounted in the fuel tanks of vehicles. The fuel delivery module delivers fuel to the engine of the vehicle and measures the level of fuel in the tank.
Saddle type fuel tanks are tanks which are configured to fit in the space left in an area of the vehicle where other parts are present like a motor shaft and an exhaust pipe for instance, and they are especially used in rear-wheel or four-wheel driving vehicles. Saddle tanks are typically divided into two pockets. The fuel delivery module is then generally configured to deliver fuel from and measure the fuel level in each pocket.
The saddle type fuel tank and the conventional fuel delivery module will be explained with reference to
The main module 11 contains a fuel pump and delivers fuel from the main pocket 20a and the sub pocket 20b to the engine of the vehicle. The main module 11 has a fuel level sensor 11b for measuring a fuel level in the main pocket 20a by a rotating float.
The fuel in the sub pocket 20b is transferred via the sender 12 to the main pocket 20a (particularly to the main module 11) using a transfer tube. Both ends of the transfer tube 14 are coupled to the main module 11 and the sender 12 respectively by a quick connector 14a.
Further, the sender 12 has a fuel level sensor 12b for measuring the fuel level in the sub pocket 20b by a rotating float. A resistance value of the fuel level by the sensor 12b of the sender 12 is transferred via a wire harness 13 to the main module 11. The fuel delivery module 10 generally transfers the fuel level measured at the main module 11 and the sender 12 (resistance value outputted by the fuel level sensors) to an instrument cluster of the vehicle. The driver can hence be informed of the total residual amount of fuel in the tank by said instrument cluster.
In the fuel delivery module 10, the main module 11 and the sender 12 are interconnected with the wire harness 13 and the transfer tube 14. Generally, the main module 11 and the sender 12 are assembled in the fuel tank 20 using mounting flanges 11a and 12a which are mounted at an upper side 21 of the fuel tank 20 and lower portions of the main module 11 and the sender 12 contact the bottom 22 of the fuel tank 20. As to the wire harness 13 and the transfer tube 14, they may each be assembled on the main module 11 and the sender 12 outside of the fuel tank 20 or inside of the fuel tank 20. For instance, as shown in
When the wire harness 13 and the transfer tube 14 are outside of the fuel tank 20, it is easy to check visually whether or not they are correctly assembled. However, such an assembly is disadvantageous in view of the emission of the fuel tank 20. On the contrary, an assembly inside of the fuel tank 20 is advantageous in view of the emission of the fuel tank 20. Thus, such an assembly is generally preferred although more difficult to realize in practice. Further, such a connecting process involves a significant amount of time and money.
Besides, when the wire harness 13 and the transfer tube 14 are positioned at the inside of the fuel tank 20, the correct assembling of the wire harness 13 can easily be confirmed by checking the resistance value outputted from the fuel level sensors 11b and 12b. However, the correct assembling of the transfer tube 14 cannot easily be checked at the outside of the fuel tank 20.
The present invention aims at solving such problems. An object of the present invention is to provide a fuel delivery module configured such that a wire harness and a transfer tube are simultaneously connected to a sender. Hence, the time for assembly is reduced and it becomes easy to check the completion of the assembly.
In order to achieve such an object and other objects, the invention relates to a transfer tube assembly of a fuel pump module of a vehicle, comprising:
Preferably the transfer tube assembly, also called fuel delivery module, comprises a main module, said module having a fuel pump and a first fuel level sensor; a sender having a second fuel level sensor and a first contact terminal electrically connected to the second fuel level sensor; a wire harness electrically connecting the main module and the second fuel level sensor; a transfer tube fluid-connecting the main module and the sender; and a connection unit having a fluid passage connected with the transfer tube and a second contact terminal connected with the wire harness wherein the connection unit is removably coupled to the sender such that the second contact terminal contacts the first contact terminal.
Generally, the main module comprises a reservoir on which the first level sensor is fixed and in which the pump is located. As to the sender, it generally acts as a support for the second fuel level sensor and for the transfer tube through which fuel is sucked by the pump into the part of the tank where said sender is located. In a saddle tank, main module and sender are generally located in different pockets.
According to the invention, a single connection unit allows the fixation of the transfer tube and of the wire harness to the sender. In a preferred embodiment, both connections are made at different locations (by different parts) of the connecting unit. Such a solution is more robust and cheaper than a solution where both connections (electrical and fluid) are made at a single location of the connecting unit, and it only requires one additional connecting step. In that embodiment, the connecting unit is preferably first assembled with the transfer tube and the wire harness and then, the hole is connected to the sender through said connecting unit. Preferably as well, the tube and the harness are integrated to each other (for instance: the latter may be wound around the former) but both have a free length at their end so that said free ends can effectively be connected to different parts (at different locations) of the connecting unit.
In a preferred embodiment of the invention, the connecting unit integrates a filter which is in fluid contact with the fluid passage in a way such that the pump is able to suck fuel through said filter inside the fluid passage and then, through the transfer line.
In another preferred embodiment of the invention, the fuel delivery module further includes a female coupling element, which is disposed at one of the connection unit and the sender. The fuel delivery module of that embodiment also includes a male coupling element, which is disposed at the other of the connection unit and the sender and fitted into the female coupling element by rotation in a way such that the first contact terminal is positioned to contact the second contact terminal when said rotation is finished. The female coupling element may include a groove or slot. Moreover, the male coupling element may include a projection fitted into the groove or slot.
In a more preferred embodiment, the sender further includes a mounting flange for being mounted on the fuel tank and a support retained (preferably resiliently) in/on the mounting flange. The first contact terminal is then preferably disposed in/on the support and the connection unit is then preferably removably coupled to the support.
In such a case, the female coupling element may include a pair of grooves. The grooves are formed in the support symmetrical to each other and have an open end and a close end. The male coupling element may include a pair of projections. The projections are formed in the connection unit and fitted into the grooves via the open end. The first contact terminal is positioned between the grooves in order to contact the second contact terminal when the projection contacts the close end of the groove.
The invention also relates to a transfer tube assembly of a fuel pump module for an internal combustion engine, comprising
The main module of the fuel delivery module may be mounted in any one of the pockets of a fuel tank having two or more pockets (saddle tank) and the sender may be mounted in another pocket. Hence, the present invention also concerns such a saddle tank.
The present invention also relates to a single piece connector acting as the connection unit described above and hence, having a fluid connecting part and an electrical connecting part (contact terminal), said parts being at different locations of the connector. By single piece is meant that the connector is a single object. Preferably, the fluid connecting part is molded in one piece with said connector while the contact terminal is fixed on the connector on such a location that the fluid connecting part and the electrical connecting part are not located co-axially, or in other words, the electrical connecting part is not located around the fluid connecting part but is fixed on a part of the connector which is different from the fluid connecting part.
Such a connector is preferably used in a saddle tank to allow fluid and electrical connection between a main module located in one pocket and a sender located in the other pocket (main module and sender being as defined above).
Finally, the present invention also relates a method for mounting a fuel delivery module as described above into a saddle tank comprising a main pocket and a sub pocket, said method comprising the steps of:
According to the present invention, since the wire harness and the transfer tube can be simultaneously assembled on the sender by using the connection unit, a rapid and easy assembling is possible.
Further, since the transfer tube and the wire harness are connected to the connection unit, a sender with a constitution simpler than the prior art can be provided.
Finally, the effective assembly of the wire harness and the transfer tube can be checked easily by measuring a resistance value of the fuel level sensors after the assembly is completed.
Referring to
The fuel delivery module of this embodiment is intended to deliver fuel to an engine of a vehicle, to recover unused fuel and to detect the fuel level in the fuel tank as a resistance value. It may be used for the saddle tank shown in
The main module 110 has a mounting flange 111 intended to be coupled to the upper side 21 of the fuel tank 20. A fuel outlet fitting 111a, a fuel inlet fitting 111b and a connector 111c are attached to an upper surface of the mounting flange 121. The fuel outlet fitting 111a enables communication with the engine of the vehicle via a fuel feed line. The fuel inlet fitting 111b enables communication with the engine of the vehicle via a fuel return line. Another wire harness 115C is provided to send the information on the global fuel level in the tank to an instrument cluster of the vehicle through the connector 111c.
The main module 110 has a reservoir 113 for storing the fuel and accommodating a fuel pump 112. The fuel pump 112 is disposed within the reservoir 113 and communicated with the fuel outlet fitting 110a via a conduit 112a. A cover 113a is mounted on an open end of the reservoir 113.
The main module 110 has a guide rod 114a for connecting the mounting flange 111 and the reservoir 113, a guide pipe 114b extended from the fuel inlet fitting 110b into the reservoir 113, and a compression coil spring 114c disposed around the guide pipe 114b between a lower surface of the mounting flange 111 and the cover 113a. When the main module 110 is mounted on the fuel tank 20, the reservoir 113 contacts the bottom 22 of the fuel tank 20 by an operation of the compression coil spring 114c.
The cover 113a is provided with a conduit 113b. One end of the conduit 113b is extended to the outside of the cover 113a while the other end is extended into the reservoir 113. The transfer tube 140 is coupled to one end of the conduit 113b via the connector 141. Thus, the fuel in the sub pocket 20b can be introduced via the transfer tube 140 into the reservoir 113 of the main module 110.
The main module 110 has a first fuel level sensor 115 for measuring a level of the fuel in the main pocket 20a. The first fuel level sensor 115 is attached to a side surface of the reservoir 113. The first fuel level sensor 115 has a rotatable float 115a and a detecting portion 115b for measuring the fuel level by a resistance value varying depending on a rotation of the float 115a. A proximal end of the float 115a is rotatably coupled to the detecting portion 115b.
One end of the wire harness 130 is connected to the detecting portion 115b of the first fuel level sensor 115 while the other end is connected to the connection unit 150. One end of the transfer tube 140 is connected with the conduit 113b by the connector 141 while the other end is fitted on a fluid outlet 153 of the connection unit 150.
The sender 120 has a mounting flange 121 intended to be coupled to the upper side 21 of the fuel tank 20. Further, the sender 120 has a support 122 for resiliently supporting the connection unit 150. The support 122 is retained against the mounting flange 121 by guide rods 123a and 123b, which are extended from the mounting flange 121 through the support 122, and a compression coil spring 123c disposed around the guide rod 123b between a lower surface of the mounting flange 121 and the support 122. The sender 120 has a mounting shaft 125 for mounting the connection unit 150. The mounting shaft 125 is integrally formed at a lower surface of the support 122.
The sender 120 has a second fuel level sensor 124 for measuring the fuel level in the sub pocket 20b. The second fuel level sensor 124, which is similar to the first fuel level sensor 115, has a rotatable float 124a and a detecting portion 124b. The detecting portion 124b is attached to the support 122. Two wires 124c extending from the detecting portion 124b are connected to a first contact terminal 125c in the mounting shaft 125.
In order to couple the connection unit 150 and the sender 120, the fuel delivery module 100 has a male coupling element and a female coupling element, which are connectable through fitting by rotation. The male coupling element and the female coupling element are disposed on the connection unit 150 and the sender 120, respectively. In this embodiment, the male coupling element is disposed on the connection unit 150 and the female coupling element is disposed on the sender 120. The connection unit 150 is fixed in the mounting shaft 125 of the sender 120 by such male and female coupling elements through fitting by rotation.
Further, the fuel delivery module 100 includes a second contact terminal and a first contact terminal, which are inter-contactable with each other at the time of coupling the connection unit 150 and the sender 120.
The second contact terminal 154 is disposed in the connection unit 150 and connected to the wire harness 130. The first contact terminal 125c is disposed in or around an element where the sender 120 and the connection unit 150 are coupled. It is also connected with the wires 124c extended from the detecting portion 124b of the second fuel level sensor 124. Thus, the electric connection is accomplished at the same time of coupling the connection unit 150 with the sender 120.
Referring to
The connection unit 150 has a cylindrical body 151, a suction pipe 155 coaxially extended from the cylindrical body 151 and the fluid outlet 153 projected on a peripheral surface of the cylindrical body 151. Further, as shown in
The connection unit 150 has fitting projections 152a and 152b as the male coupling element, which are diametrically opposite to an upper end edge of the cylindrical body 151. The fitting projections 152a and 152b can be inserted and fitted into a fitting groove 125b of the mounting shaft 125, as shown in
The second contact terminal 154 is made up of a pair of conductors which are positioned around an upper end edge of the cylindrical body 151. Each wire 131 and 132 of the wire harness 130 is bonded to each conductor of the second contact terminal 154.
A cylindrical mounting socket 125a is formed at a lower end of the mounting shaft 125. The mounting socket 125a is opened downwardly. The mounting socket 125a has an inner diameter sized to be capable of accommodating an upper portion of the cylindrical body 151. A pair of fitting grooves 125b is formed as the female coupling element at a peripheral surface of the mounting socket 125a. The fitting grooves 125b are diametrically opposite and symmetrical to each other. The fitting grooves 125b are sized so as to be capable of receiving and fitting the fitting projections 152a and 152b of the connection unit 150 therein. An open end of the fitting groove 125b is positioned at a lower surface of the mounting shaft 125 such that the open end of the fitting groove 125b contacts a lower side edge of the mounting socket 125a. The fitting groove 125b is extended from the peripheral surface of the mounting socket 125a along a circumferential direction while being spaced apart in a predetermined distance from the open end. The pair of the first contact terminals 125c is projected on the internal peripheral surface of the mounting socket 125a between the fitting grooves 125b at a height approximately the same as that of the fitting groove 125b. When the cylindrical body 151 is inserted into the mounting socket 125 and then rotated, the first contact terminal 125c and the second contact terminal 154 contact each other to thereby form the electrical connection between the second fuel level sensor 124 and the first fuel level sensor 115.
Referring to
As shown in
More specifically, the fitting projections 152a and 152b are aligned with the open end of the fitting grooves 125b and the upper portion of the cylindrical body 151 is inserted into the mounting socket 125a. When an upper surface of the cylindrical body 151 contacts an upper surface of the mounting socket 125a, the cylindrical body 151 is rotated against the mounting shaft 125. By doing so, the fitting projections 152a and 152b are inserted into the fitting grooves 125b while sliding within the fitting grooves 125b. When the fitting projections 152a and 152b contact the close end of the fitting groove 125b, the rotation is stopped. At this time, the second contact terminal 154 of the connection unit 150 contacts the first contact terminal 125c of the mounting shaft 125. To this end, the first contact terminal 125c of the mounting shaft 125 is positioned to contact the second contact terminal 154 of the connection unit 150 when the rotation on the peripheral surface of the mounting socket 125a against the mounting socket 125a of the cylindrical body 151 is stopped.
After the connection unit 150 is assembled with the sender 120, the sender 120 is mounted in the sub pocket 20b via the opening 21b. When the mounting is completed, the mesh filter 157 contacts the bottom 22 of the fuel tank 20.
After the assembling of the fuel delivery module 100 is completed, if the fuel tank 20 is inverted (turned upside down), the floats 115a and 124a of the first and second fuel level sensors 115 and 124 will be turned toward an upper portion of the fuel tank 20, so that the first and second fuel level sensors 115 and 124 should output the resistance value corresponding to the full level of the tank. Hence, the effective assembly of the wire harness 130 and of the transfer tube 140 can be easily checked only by measuring such a resistance value.
To ensure the coupling between the female coupling element and the male coupling element and the contact between the second contact terminal and the first contact terminal, an element for snap-engaging the female coupling element and the male coupling element to each other may be provided. For example, the fitting grooves 125b may be provided with an elastically flexible member of a hook-like or pawl-like shape, while the fitting projection 125a may be provided with a groove or a recess adapted to complementarily contact or engage said elastically flexible member.
Further, in order to facilitate the coupling of the connection unit 150 and the mounting shaft 125, a cylindrical pin downwardly projected from the mounting socket 125a may be formed and the cylindrical body 151 may be provided with a bore sized to be capable of inserting the pin therein. In such a case, while the pin is inserted into the bore, the cylindrical body 151 can be fitted into the mounting socket 125a.
Further, although the connection unit 150 is coupled to the mounting shaft 125 formed in the support 122, the connection unit 150 may be directly formed at a lower surface of the support 122 without the mounting shaft 125. That is, a pair of fin members may be formed at the lower surface of the support 122 and a slot similar to the shape of the fitting groove 125b may be formed in the fin members. The fin members are downwardly projected and symmetrical each other. In such a case, the first contact terminal 125c may be disposed to contact the second contact terminal 154 when the coupling of the connection unit 150 on another support member is completed.
In another embodiment, the connection unit 150 may be integrated to the transfer tube 140.
Referring now to
So as to prevent problems of corrosion of terminals 125c and 154, both connecting plugs 160, 162 are isolated from the fuel present in the tank.
In this embodiment, the filter (or strainer) 157 is fixed to the support 124 in such a manner that fluid can be sucked through the filter, onto the nipple 161 and directly into the transfer tube 140 via the connecting unit 150.
While the preferred embodiments of the present invention are described above, the present invention may include other embodiments and modifications without deviating from the subject matter or scope of the present invention.
Number | Date | Country | Kind |
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10-2007-0123241 | Nov 2007 | KR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2008/066564 | 12/1/2008 | WO | 00 | 5/19/2010 |