Fuel Injector
20170089312 ยท 2017-03-30
Inventors
Cpc classification
F02M47/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/165
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/27
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M61/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A nozzle assembly of a fuel injector extends along a main axis and includes a nozzle body provided with an inner space divided in upstream chamber and downstream chamber and also with, a valve needle including a main elongated shaft slidably guided in said inner space and extending through-out both upstream and downstream chambers. The nozzle body and the valve needle cooperate to define throttle fluid communication means between upstream and downstream chambers inducing, in use, a pressure drop when fuel flows through. The nozzle assembly is further provided with a tubular sleeve arranged between the upstream chamber and the downstream chamber in abutment against a face of the body and being radially self-centred guided by a cylindrical face of the needle, the throttle means being arranged in said sleeve.
Claims
1-16. (canceled)
17. A nozzle assembly of a fuel injector, the nozzle assembly extending along a main axis from upstream end to downstream end, in reference to the fuel flow direction in the fuel injector, said nozzle assembly comprising: a nozzle body provided with an inner space divided in an upstream chamber and a downstream chamber, a valve needle comprising a main elongated shaft slidably guided in said inner space and extending through-out both the upstream chamber and the downstream chamber, the nozzle body and the valve needle cooperating to define a throttle fluid communication means between the upstream chamber and the downstream chamber inducing, in use, a pressure drop when fuel flows through said throttle fluid communication means, a tubular sleeve having a central hole through which extends the valve needle, the tubular sleeve being arranged between the upstream chamber and the downstream chamber in abutment against a face of the nozzle body, respectively of the valve needle, and being radially self-centred guided by a cylindrical face of the valve needle, respectively the nozzle body, the throttle fluid communication means being arranged in said tubular sleeve.
18. A nozzle assembly as set in claim 17 wherein said the valve needle is provided with a collar radially outwardly extending from the main elongated shaft to a peripheral edge, the tubular sleeve being radially self-centred guided by said peripheral edge, the throttle fluid communication means being an orifice drilled through the tubular sleeve and extending from an upstream orifice opening in the upstream chamber to a downstream orifice opening in the downstream chamber.
19. A nozzle assembly as set in claim 18 wherein the tubular sleeve is axially elongated, the throttle being drilled through a lateral wall of the tubular sleeve, the upstream orifice being arranged in an outer cylindrical face of the tubular sleeve and, the downstream orifice being arranged in an inner cylindrical face of the tubular sleeve.
20. A nozzle assembly as set in claim 19 wherein the collar is guided toward an upstream end of the tubular sleeve, the downstream opening of the throttle being toward a downstream end of the tubular sleeve, downstream the collar.
21. A nozzle assembly as set in claim 18 wherein, the tubular sleeve is provided with a multitude of fine through holes so that, the tubular sleeve provides, in use, pressure drop and, is also a fuel filter retaining foreign matters and particles flowing in the fuel.
22. A nozzle assembly as set in claim 18 wherein a downstream end of the tubular sleeve is bevelled so that an abutting portion of the tubular sleeve against the face of the nozzle body is reduced.
23. A nozzle assembly as set in claim 18 wherein the tubular sleeve is a thick disc-plate radially extending from the central hole, the throttle being drilled through the thickness of the tubular sleeve, its upstream orifice being arranged in an upper face of the tubular sleeve and, its downstream orifice being arranged in a lower face of the tubular sleeve.
24. A nozzle assembly as set in claim 23 wherein the lower face of the tubular sleeve is provided with a recess defining a circular bevelled protrusion, so that an abutting portion of the tubular sleeve is reduced.
25. A nozzle assembly as set in claim 23 wherein a face of the nozzle body against which abuts the tubular sleeve is provided with a circular bevelled protrusion so that an abutting portion of the tubular sleeve is reduced.
26. A nozzle assembly as set in claim 18 wherein the upstream orifice of the orifice has a larger section that the downstream orifice.
27. A nozzle assembly as set in claim 17 wherein the tubular sleeve is a thick disc-plate where the central hole larger than the main elongated shaft of the valve needle, the tubular sleeve radially extending from said hole to an outer peripheral face slidably guided and self-centred by an inner cylindrical face of the nozzle and wherein, the valve needle is provided with a radially extending face which outer edge is larger than the central hole of the tubular sleeve so that, the tubular sleeve is received in axial abutment against said radially extending face of the valve needle, the throttle fluid communication means comprising an orifice drilled through the thickness of said tubular sleeve and extending from an upper face to a lower face of the tubular sleeve.
28. A nozzle assembly as set in any claim 17 further comprising a biasing means arranged to axially bias the tubular sleeve downstream against the face of the nozzle body, or of the valve needle.
29. A nozzle assembly as set in claim 28 wherein said biasing means is a compression spring coiled around the main elongated shaft and compressed between the tubular sleeve and an upper radial face of the valve needle.
30. A nozzle assembly as set in claim 28 wherein the biasing mean is a spring compressed between the tubular sleeve and an inner face of the upstream chamber, the spring having a larger section upstream, where it is stuck against said inner face, than downstream, where it is in contact with the tubular sleeve.
31. A nozzle assembly as set in claim 17 wherein the throttle fluid communication means comprises a plurality of orifices provided through the tubular sleeve.
32. A fuel injector provided with a nozzle assembly as set in claim 17.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The present invention is now described by way of example with reference to the accompanying drawings in which:
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0029] To ease and clarify the following description the top-down orientation of the figures is arbitrarily chosen and, words and expressions such as above, under, over, below . . . may be utilized without any intention to limit the invention. Also, similar features full filling similar functions in different embodiments may be identified with same reference numbers.
[0030] In reference to
[0031] The inner volume V of the nozzle body 16 comprises an upstream chamber 38, represented on the upper side of the figure, having an upstream diameter D38 and, a downstream chamber 40, on the lower side of the figure, having a downstream diameter D40, smaller than the upstream diameter D38. The bottom face of the upstream chamber 38 is a disc-face 42 wherein centrally opens the downstream chamber 40.
[0032] Further means to delimit the upstream chamber 38 from the downstream chamber 40 is provided by a collar 36 integral, or independent and fixed, to the valve needle 14, said collar 36 cooperating with a tubular cylindrical sleeve 44. As shown on
[0033] In an alternative and symmetrical design, not represented, the bevelled portion of the sleeve is provided on the lower-inner face of said sleeve, while on
[0034] Sliding of the outer face 34 of the collar 36 against the inner face 48 of the sleeve 46 still manages a minor functional clearance between the two cylindrical surfaces. Said functional clearance is so much smaller than the throttle orifice 56 then no fuel is able to flow through said clearance. All fuel flowing from the upstream chamber 38 to the downstream chamber 40 flows through the throttle orifice 56.
[0035] In use, pressurized fuel fills the upstream chamber 38 then flows through the throttle orifice 56 to enter the downstream chamber 40 where from it exits via injection holes 30. The valve needle 14 axially slides between open and closed position of the injection holes 30 and so, the collar 36 slides inside the sleeve 44.
[0036] The throttle 56 induces a pressure drop so the pressure in the downstream chamber 40 is lower than it is in the upstream chamber 38. Consequently the higher pressure of the upstream chamber 38 induces on the upper face 52 of the sleeve 44 downwardly oriented forces biasing the sleeve 44 in abutment against the bottom disc-face 42. For securing the axial abutment of the sleeve 44 against the bottom disc-face 42, one can add biasing means 64 inducing further downward forces on the sleeve 44. Examples are illustrated on
[0037] In an alternative embodiment illustrated on the right side of
[0038] In an alternative embodiment, not represented, the few throttle orifices described above are replaced by a large number of very fine holes arranged through the wall of the sleeve. Said multitude of holes provides a similar pressure drop as the few orifices described above. As an additional combined function, said multitude of fine holes create a filter stopping foreign matters, particles and other contaminants that may be in the fuel and prevent said foreign matters to flow toward the injection holes.
[0039] A second embodiment of the invention is now described in reference to
[0040] In use, the operation of this second embodiment is similar to the operation of the previously described first embodiment. The downwardly oriented forces induced by the pressure in the upstream chamber 38 maintain the sleeve 68 in place. Here again, should it be felt necessary to secure said position, biasing means 64 such as the compression springs of
[0041] An alternative to the second embodiment is represented on
[0042] A third embodiment is now described in reference to
[0043] Also, in this embodiment again, biasing means such as the springs of
[0044] In use, the higher pressure of the upstream chamber 38 induces on the sleeve 68 downwardly oriented forces that bias said sleeve 68 on the radial face 80 of the needle 14. As the needle 14 slides up and down between the open and closed position the sleeve 68 follows said motion.
[0045] Furthermore, in an alternative embodiment, instead of having a throttle orifice drilled through the sleeve 44, a throttle passage can be defined in providing the collar 36 with at least one flat portion axially extending on the outer surface of the collar 36, a throttle passage being defined between said flat portion and the cylindrical inner face 48 of the sleeve 44. Alternatively to a flat portion, the outer surface of the collar 36 could be provided with an under-cut, a slot or a hole intersecting said outer surface of the collar 36, such as a semi-circular or triangular hole, defining the throttle passage 56. Alternatively, said slots can be arranged on the inner face of the sleeve.
[0046] The following references have been utilized in this description:
[0047] A main axis
[0048] V inner volume of the nozzle body
[0049] d34 edge diameter
[0050] D38 diameter of the upstream chamber
[0051] D40 diameter of the downstream chamber
[0052] 10 fuel injector
[0053] 12 nozzle assembly
[0054] 14 valve needle
[0055] 16 nozzle body
[0056] 18 upstream face of the needle
[0057] 20 upstream face of the collar
[0058] 22 downstream face of the collar
[0059] 24 downstream face of the needle
[0060] 26 control chamber
[0061] 28 throttle
[0062] 30 injection holes
[0063] 32 inner face of the body
[0064] 34 outer edge of a collar
[0065] 36 collar
[0066] 38 upstream chamber
[0067] 40 downstream chamber
[0068] 42 bottom face of the upstream chamber
[0069] 44 tubular sleeve
[0070] 46 wall of the sleeve
[0071] 48 inner cylindrical face of the sleeve
[0072] 50 outer cylindrical face of the sleeve
[0073] 52 upper face of the sleeve
[0074] 54 lower face of the sleeve
[0075] 56 throttle orifice
[0076] 58 upstream opening of the throttle
[0077] 60 downstream opening of the throttle
[0078] 62 bevelled shape of the sleeve
[0079] 64 biasing means
[0080] 66 downwardly oriented radial face
[0081] 68 disc-plate thick sleeve
[0082] 70 V-shaped protrusion
[0083] 72 recess in the lower face of the sleeve
[0084] 74 peripheral lip
[0085] 76 inner cylindrical face of the body axially guiding the sleeve
[0086] 78 central hole of the sleeve
[0087] 80 radial abutting face