Fuel injector
09822744 · 2017-11-21
Assignee
Inventors
- Bruno Bimbenet (Saint Claude de Diray, FR)
- Richard Denis Jacques Alain Enters (Vineuil, FR)
- Eric Lecluse (Pezou, FR)
- Jean-Christophe Oge (Neuvy, FR)
- Thierry Thibault (Saint Ouen les Vignes, FR)
Cpc classification
F02M55/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M55/004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/8376
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F02M51/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M53/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M51/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M55/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electrical module for use within a fuel injector for delivering fuel to an internal combustion engine is described. The electrical module has a variable length. The electrical module comprises electrical contacts for operatively connecting the electrical module to a power plug of a fuel injector. The electrical module also comprises an actuator for operatively controlling a control valve disposed within the fuel injector. The electrical module also comprises electrical conductors arranged within a protective housing. These electrical conductors provide an electrical connection between the electrical contacts and the actuator in order to provide electrical power to the actuator when the electrical contacts are operatively connected to the power plug of the fuel injector. The body of the electrical module is comprised of a compressible elastic element, such that the length of the module is variable by compressing the elastic element. Injectors including such electrical modules are also described.
Claims
1. A fuel injector for use in delivering fuel to an internal combustion engine, the fuel injector comprising: an injector body, the injector body comprising a first conduit through which fuel flows; an electrical module arranged within the first conduit, the electrical module being of variable length and comprising electrical contacts for operatively connecting the electrical module to a power plug of the fuel injector, an actuator for operatively controlling a control valve disposed within the fuel injector, and electrical conductors arranged within a protective housing, the electrical conductors providing an electrical connection between the electrical contacts and the actuator, to provide electrical power to the actuator when the electrical contacts are operatively connected to the power plug of the fuel injector, wherein the body of the electrical module is comprised of a compressible elastic element, such that the length of the electrical module is variable by compressing the elastic element; and a power plug for providing electrical power to the fuel injector; wherein the injector body is disposed within the fuel injector such that a back leak channel from the fuel injector passes through at least a part of the first conduit; and wherein the injector body is provided with a second conduit, the second conduit being arranged in use to provide an input passage through the injector body for a second fuel flow, the second fuel flow being for use in mixing with a back leak fuel flow to form a back leak fuel flow mixture; and wherein the back leak fuel flow mixture is directed through at least a part of the first conduit.
2. The fuel injector of claim 1, wherein the width of the first conduit is selected such that a clearance is formed between the walls of the first conduit and the electrical module to allow the passage of a back leaked fuel flow through the formed clearance.
3. The fuel injector of claim 1, wherein the back leak fuel mixture comprises a back leak fuel flow generated within the fuel injector by opening of a control valve; and the input second fuel flow provided by a fuel source located external to the fuel injector.
4. The fuel injector of claim 1, wherein the back leak fuel flow mixture is for use in cooling one or more of the following: a) the electrical module; b) the actuator; c) the injector body.
5. The fuel injector of claim 1, wherein a back leak fuel flow outlet from the back leak channel is positioned on the power plug, the power plug having a hermetic seal to prevent contact between the back leaked fuel flow and any electrical connections within the power plug.
6. The fuel injector of claim 1, wherein a back leak fuel flow outlet from the back leak channel is positioned on the injector body, and the injector body is disposed with a third conduit joined to the first conduit, the back leak channel extending from the first conduit via the third conduit; wherein the first conduit is disposed with a hermetic seal to prevent the passage of back leaked fuel from the first conduit to the power plug.
7. A fuel injector as claimed in claim 1 wherein the elastic element is a coil spring.
8. A fuel injector as claimed in claim 1 wherein the elastic element is a spring washer.
9. A fuel injector as claimed in claim 1, wherein the width of the first conduit is selected such that a clearance is formed between the walls of the first conduit and the electrical module to allow the passage of a back leaked fuel flow through the formed clearance, wherein the injector body is provided with a second conduit, the second conduit being arranged in use to provide an input passage through the injector body for a second fuel flow, the second fuel flow being for use in mixing with a back leak fuel flow to form a back leak fuel flow mixture; and wherein the back leak fuel flow mixture is directed through at least a part of the first conduit.
10. A fuel injector as claimed in claim 9, wherein the back leak fuel mixture comprises a back leak fuel flow generated within the fuel injector by opening of a control valve; and the input second fuel flow provided by a fuel source located external to the fuel injector.
11. A fuel injector as claimed in claim 3, wherein the back leak fuel flow mixture is for use in cooling one or more of the following: a) the electrical module; b) the actuator; c) the injector body.
12. A fuel injector as claimed in claim 1, wherein a back leak fuel flow outlet from the back leak channel is positioned on the power plug, the power plug having a hermetic seal to prevent contact between the back leaked fuel flow and any electrical connections within the power plug.
13. A fuel injector as claimed in claim 1, wherein a back leak fuel flow outlet from the back leak channel is positioned on the injector body, and the injector body is disposed with a third conduit joined to the first conduit, the back leak channel extending from the first conduit via the third conduit; wherein the first conduit is disposed with a hermetic seal to prevent the passage of back leaked fuel from the first conduit to the power plug.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In order that the invention may be more readily understood, specific embodiments of the invention will be described below, by way of example, with reference to the accompanying drawings in which:
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DETAILED DESCRIPTION
(11) In accordance with the convention adopted in the ensuing description, a fuel injector is considered as comprising a nozzle module attached to an injector body. Where the majority of the herein described embodiments are described in relation to the injector body, a short description of the nozzle module function and the injector body function ensues. This brief summary is provided for illustrative purposes only, to help the reader better appreciate the present invention. For a complete description of how the nozzle module functions, the interested reader is referred to any textbook on motor vehicle technology, such as V. A. W. Hillier & Peter Coombes' “Hillier's Fundamentals of Motor Vehicle Technology”, Nelson Thornes, ISBN 0748780823, or alternatively patent publication EP1988276 (corresponding to U.S. Patent Application Publication 2008/0272214).
(12)
(13) For completeness, it should be appreciated that although a piezo-electric actuator is described in the present description, the control valve may also be controlled by other means, such as by an electromagnetic actuator or a magnetorestrictive actuator. Accordingly, the present invention may be used in conjunction with fuel injectors using any type of actuator—the specific type of actuator used does not have any bearing on the present invention.
(14) The control valve 4 is used to control the pressure within both the control chamber 10 and the nozzle chamber 12. When the control valve is closed the input of fuel via the fuel input conduit 14, which runs through the injector body 8 and into the nozzle module 1, creates a build up of pressurised fuel within both the nozzle chamber 12 and the control chamber 10, which in turn ensures the nozzle needle 16 remains in a closed position, thereby preventing the injection of fuel into the combustion chamber 18.
(15) Fuel is injected into the combustion chamber 18 by opening the control valve 4, which is achieved by activating the actuator 6—commonly achieved by supplying electrical power to the actuator 6. The opening of the control valve 4 creates a decompression in the control chamber 10, due to the pressure difference between the nozzle chamber 12 and control chamber 10, as fuel flows from the control chamber 10 through the back leak flow conduit 20. This pressure difference results in a net force in the direction of the decompression, thereby moving the nozzle needle 16 to an open position. In the open position, the nozzle needle 16 does not obstruct the outlet openings 22, thereby allowing fuel to be injected into the combustion chamber 18.
(16) Whilst the description of the present invention refers to a single back leak flow conduit, it is to be appreciated that the fuel injector may comprise one or more back leak flow conduits, and the herein described embodiments of the present invention are compatible with fuel injectors having several back leak flow conduits. The number of back leak flow conduits present in the fuel injector is immaterial for the purposes of the present invention.
(17) The initiation and termination of fuel injection into the combustion chamber 18 is controlled by controlling the fuel pressure within the control chamber 10. As described above, this is achieved by selectively opening and shutting the control valve 4, by activation and deactivation of the actuator 6.
(18) It is to be appreciated that the required decompression is generated by a volume of fuel, referred to as the back leak fuel flow, being ejected from the control chamber 10 and directed to the back leak flow conduit 20, when the control valve 4 is in an open state.
(19) Additionally, it should be appreciated that the terms “control chamber” and “nozzle chamber” are designations used to refer to different regions of the cavity surrounding the nozzle needle, and that different topologies may be used in different fuel injectors.
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(21) The electrical module 26 comprises the actuator 6, along with electrical power provisioning means 30. The electrical power provisioning means 30 may relate to conducting wires, or other electrical current conducting means. Electrical power is provided to the electrical module 26 via the electrical power plug 32, which abuts the injector body 8. The electrical module 26 is operatively connected to the power plug 32 by electrical contacts 34. The electrical plug 32 is commonly provided with a hermetic seal 36, to prevent any contact between electrical contacts 34 and leaking fuel.
(22) Input fuel from the fuel tank for injection into the combustion chamber is input within the fuel injector body 8 via an input fuel inlet 38. The input fuel inlet 38 is connected to an input fuel conduit 14, which is not illustrated in
(23) Operation of a fuel injector of slightly different design is shown in
(24) The remaining description will focus on describing the different embodiments of the present invention and of inventive principles set out in this specification—such description is provided for illustrative purposes only. Embodiments of the invention may be provided according to the principles set out below suitable for use in the arrangements shown in
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(26) During the decompression of the control chamber 10 the back leak fuel flow is directed into the first conduit 40, and is ejected from the injector body 8 through a back leak fuel outlet 44. The back leak fuel flow is subsequently recycled for use in a subsequent injection cycle by the combustion engine's fuel management system.
(27) To facilitate the back leak fuel flow through the first conduit 40, the dimensions of the first conduit 40 are selected such that a clearance is formed between the walls of the conduit 40 and the electrical module 26. The pressure of the back leak fuel flow through the first conduit 40 will at least be partly dependent on the dimensions of this clearance. The larger the clearance, the lower the pressure of the back leak fuel flow will be, and similarly the smaller the clearance, the higher the pressure of the back leak fuel flow.
(28) Out of safety considerations, the electrical power components including the electrical contacts 34 in the electrical module 26 are coated in an insulating material, to prevent any contact with the back leak fuel. Equally, the electrical power components may be housed in a protective housing, insulating the components from any accidental contact with the back leak fuel flow.
(29) The injector body is provided with one or more hermetic seals to prevent accidental seepage of the back leak fuel into the abutted power plug, and into the electrical circuitry of the ECU.
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(32) A hermetic seal 66 is arranged within the first conduit 40, placed after the junction formed by the outlet conduit 48 and the first conduit 40. The hermetic seal 66 prevents the flow of the back leak fuel into the electrical plug 32. As in the previously described embodiment, the electrical power components of the electrical module 26 are coated by an insulating material, or alternatively, are placed within a protective housing to prevent contact between the electrical power components and the back leak fuel during operation of the fuel injector.
(33) Although the aforementioned embodiments only disclose two different examples of where the back leak fuel outlet 44 may be positioned, in practice the location of the back leak fuel outlet 44 is likely to be dictated by the topology of the engine in which the fuel injector is to be used. Accordingly, further alternative arrangements of the back leak fuel outlet 44 are envisaged. Additionally, the location of the hermetic seal 46, 66, which is required to prevent any seepage of the back leak fuel into the electrical components of the electrical plug 32, is determined on the basis of the location of the back leak fuel outlet 44.
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(35) A second conduit 50 is machined into the injector body 8 to provide a passage through which the second fuel flow may be input into the injector body 8 for mixing with the back leak fuel flow ejected from the control chamber 10 during activation of the control valve 4. The objective of introducing the second fuel flow is to use the back leak fuel flow to cool the material surrounding the first conduit 40, in addition to cooling the electrical module 26, which includes the actuator 6. This requires that the temperature of the input second fuel flow is lower than the temperature of the back leak fuel flow. Following the creation of the back leak fuel flow mixture, the mixture is subsequently directed through the first conduit 40.
(36) The back leak fuel flow and the input second fuel flow may be mixed within any low pressure area of the fuel injector. For example, depending on the topology of the fuel injector, the low pressure area may be located external to both the nozzle chamber and the control chamber, and is arranged in such a way that the input second fuel flow is mixed with the back leak fuel flow ejected during depressurisation of the control chamber when the actuator is in the open position. The exact location where the two fuel mixtures are mixed is selected to ensure that the pressure of the input second fuel flow is greater than the pressure of the back leak fuel flow mixture at the mixing point. This ensures that the back leak fuel flow mixture does not escape via the second fuel flow conduit 50.
(37) Alternatively, the second fuel flow conduit 50 may be fitted with a non-return valve (also commonly referred to as a check valve, or a one-way valve) arranged to prevent any back leak fuel flow mixture from escaping via the second fuel flow conduit 50.
(38) The required pressure of the input second fuel flow may be obtained by operatively connecting the second fuel flow conduit 50 to the one or more fuel pumps existing in the fuel management system, conventionally used to input fuel for combustion within the fuel injector.
(39) In operation, the temperatures of the internal components of a fuel injector, and equally the temperatures of the components within the injector body 8, are predominantly determined by the temperature of the high pressure input fuel. The flow of the lower temperature back leak fuel mixture through the first conduit 40 has the desired effect of cooling/decreasing the temperature of the injector's internal components.
(40) The back leak fuel mixture is ejected from the first conduit 40 via a back leak fuel flow outlet 44. The position of the back leak fuel flow outlet 44 will be dependent on the topology of the engine in which the fuel injector is to be used. For example, and as described in the aforementioned embodiments, the back leak fuel flow outlet 44 may be positioned, alternatively on the power plug 32 abutted to the injector body 8, as illustrated in
(41) In one illustrative embodiment, the second fuel flow may be input into the second conduit 50, at a periodic frequency, which may be regulated by the ECU, and will be proportional to the rate at which fuel is input into the fuel injector for combustion, and to the rate at which the back leak fuel flow is generated. Accordingly, in the embodiment illustrated in
(42) In an alternative embodiment, the second fuel flow is input into the second conduit 50, at a constant rate. Such an embodiment does not require any specific monitoring by the ECU.
(43) Alternatively, the rate at which the second fuel flow is input into the second conduit 50 may be regulated and varied depending on whether cooling is required. In such embodiments, it is envisaged that the ECU may feature a control system which monitors the operating temperatures of the fuel injector components, and on the basis of the measured temperature decides if cooling is required. For example, if a pre-established threshold temperature is reached, the ECU may initiate cooling by inputting the second fuel flow into the fuel injector.
(44) The performance of piezo-electric actuators is negatively compromised by high operating temperatures, due to the decreased electrical power being delivered to the actuator, resulting from the increased electrical resistance in the electrical power components operatively connected to the piezo-electric actuator.
(45) In embodiments where the actuator is an electromagnetic solenoid, a decrease in magnetic performance at high operating temperatures is also often observed primarily as a result of the decrease in mechanical robustness of the windings in the actuator with increasing temperature.
(46) Maintaining a lower operating temperature within the fuel injector improves the operation of the injector, by improving the performance of the actuator.
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(48) The maximum length of the electrical module 52 is proportional to the uncompressed coil spring 54 length. The electrically conductive wires are fit to the electrical module 52 when the coil spring 54 is in the uncompressed state. Accordingly, the length of the electrically conductive wires are determined on the basis of the uncompressed coil spring length. In this way regardless of the operational length of the electrical module 52 when inserted within the fuel injector, an electrical connection may always be established.
(49) During manufacture, the coil spring 54 is compressed by at least the amount required to fit the module 52 in the first conduit 40 of the fuel injector—typically, it will be fully compressed on insertion. Use of the coil spring 54 as the body of the electrical module 52 allows production of the electrical module 52 to be streamlined. The same electrical module 52 model may be fit to several different lengths of fuel injector—this may require the electrical leads to vary in lengths between models (to ensure that the electrical connection is not affected by compression and expansion of the coil spring on assembly). This provides a significant advantage to manufacturers—rather than running several different production lines of electrical module, only one production line for the variable-length electrical module 52 is required.
(50) Although
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(53) Equally, the variable-length electrical module embodiment may be used in conventional prior art fuel injectors featuring a back leak fuel conduit, which is separate to the first conduit.
(54) In alternative embodiments, the coil spring 54 may be replaced with any elastic element, such as a variable length spring washer. The operation of such a variable length electrical module is identical to the previously described embodiment.
(55) The herein described embodiments are for illustrative purposes only, it is to be appreciated that any combination of the elements herein described embodiments is envisaged, and falls within the scope of the present invention.