Fuel injector with variable spray
09739246 · 2017-08-22
Assignee
Inventors
Cpc classification
F02M45/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/161
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/1806
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/703
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M51/0603
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M45/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M61/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M51/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M45/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M45/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fuel injector is provided that creates variable spray characteristics to effectively reduce emissions, such as NOx emissions and particulate matter. The injector includes a nozzle valve element of the outwardly opening type including a fuel delivery passage and spray holes. The nozzle valve element is operable to move to a low lift position to cause fuel flowing from the spray holes to impinge on the injector body and to deflect toward the combustion chamber, and to move to a high lift position to cause fuel flowing from the spray holes to avoid impingement on injector body and flow in an obstructed manner directly into the combustion chamber. An annular chamber may be formed in the nozzle valve element adjacent the spray holes to receive fuel.
Claims
1. A fuel injector for injecting high pressure fuel into a combustion chamber of an internal combustion engine, comprising: an injector body containing an injector cavity and including a valve seat; a nozzle valve element positioned in said injector cavity, said nozzle valve element including a valve surface positioned adjacent said valve seat, a fuel delivery passage, and a plurality of spray holes fluidically connected to said fuel delivery passage, said nozzle valve element operable to move between a closed position with said valve surface positioned in sealing abutment with said valve seat to block fuel flow from said plurality of spray holes and an open position permitting flow from said spray holes, said nozzle valve element operable to move outwardly away from said injector body when moving from said closed position toward said open position, said open position including a first lift position defining a first fuel spray pattern and a second lift position defining a second fuel spray pattern and having a greater lift than said first lift position, and said spray holes emitting fuel in said first fuel spray pattern are said spray holes emitting fuel in said second fuel spray pattern, and said nozzle valve element further comprising an annular groove formed adjacent said plurality of spray holes to receive fuel from said plurality of spray holes when said nozzle valve element is in said closed position; and a nozzle valve actuator assembly adapted to move said nozzle valve element toward said open position.
2. The injector of claim 1, wherein each of said spray holes is adjacent another of said spray holes in a circumferential direction of said fuel delivery passage.
3. The injector of claim 2, wherein said nozzle valve element includes a nozzle housing, and said first fuel spray pattern defines a first angle relative to an end surface of said nozzle housing and said second fuel spray pattern defines a second angle relative to said end surface of said nozzle housing, the second angle being less than the first angle.
4. The injector of claim 1, wherein said nozzle valve actuator assembly includes a piezoelectric actuator.
5. The injector of claim 4, wherein said nozzle valve actuator assembly further includes a drive plunger positioned axially between said piezoelectric actuator and said nozzle valve element.
6. The injector of claim 5, wherein said nozzle valve actuator assembly further includes a hydraulic chamber to transfer motion from said drive plunger to said nozzle valve element.
7. The injector of claim 6, wherein said nozzle valve actuator assembly further includes a bias spring positioned in said hydraulic chamber to bias said nozzle valve element toward said closed position.
8. A fuel injector for injecting high pressure fuel into a combustion chamber of an internal combustion engine, comprising: an injector body containing an injector cavity and including a valve seat; a nozzle valve element positioned in said injector cavity, said nozzle valve element including a valve surface positioned adjacent said valve seat, said nozzle valve element operable to move between a closed position with said valve surface positioned in sealing abutment with said valve seat to block fuel flow and an open position permitting fuel flow, said nozzle valve element operable to move outwardly away from said injector body when moving from said closed position toward said open position; means for delivering a fuel to said combustion chamber in a first spray pattern and a second spray pattern when said nozzle valve element is in said open position, where said means for delivering the fuel includes a plurality of spray holes; an annular groove formed adjacent said plurality of spray holes to receive fuel from said plurality of spray holes when said nozzle valve element is in said closed position; and a nozzle valve actuator assembly adapted to move said nozzle valve element toward said open position.
9. The injector of claim 8, wherein said open position includes a first lift position and a second lift position having a greater lift than said first lift position, and said means for delivering the fuel being configured to cause fuel flowing in the said first spray pattern to impinge on said injector body when said nozzle valve element is in said first lift position, and said means for delivering the fuel being configured to cause fuel flowing in said second spray pattern to avoid impingement on said injector body when said nozzle valve element is in said second lift position.
10. The injector of claim 8, wherein said nozzle valve element includes an annular groove to receive fuel when said nozzle valve element is in said closed position.
11. The injector of claim 10, wherein said injector body further includes a fuel supply port to receive high pressure fuel, said nozzle valve element including a transfer passage extending transverse, and fluidically connected, to a fuel delivery passage of said nozzle valve element to receive high pressure fuel from said fuel supply port.
12. The injector of claim 8, wherein said nozzle valve actuator assembly includes a piezoelectric actuator.
13. The injector of claim 12, wherein said nozzle valve actuator assembly further includes a drive plunger positioned axially between said piezoelectric actuator and said nozzle valve element.
14. The injector of claim 13, wherein said nozzle valve actuator assembly further includes a hydraulic chamber to transfer motion from said drive plunger to said nozzle valve element.
15. The injector of claim 14, wherein said nozzle valve actuator assembly further includes a bias spring positioned in said hydraulic chamber to bias said nozzle valve element toward said closed position.
16. The injector of claim 8, said nozzle valve element includes a nozzle housing, and said first fuel spray pattern defines a first angle relative to an end surface of said nozzle housing and said second fuel spray pattern defines a second angle relative to said end surface of said nozzle housing, the second angle being less than the first angle.
17. The injector of claim 8, wherein the plurality of spray holes fluidically connected to a fuel delivery passage.
18. The injector of claim 17, wherein each of said spray holes is adjacent another of said spray holes in a circumferential direction of said fuel delivery passage.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(4) Referring to
(5) Closed nozzle assembly 16 also includes a nozzle housing 15 including a bore 17 sized to form a close sliding fit with nozzle valve element 18 to permit reciprocal sliding movement of nozzle valve element 18 in bore 17 while creating a substantial fluid seal along the interface. Nozzle housing 15 includes an annular valve seat 23 for sealing abutment by nozzle valve element 18 when in the closed position. Injector body 12 also includes one or more additional housings, such as an actuator housing connected to nozzle housing 15 in any appropriate manner, such as being positioned in compressive abutting relationship using for example an outer retainer such as shown in U.S. Pat. No. 5,979,803, the entire contents of which is hereby incorporated by reference.
(6) Fuel injector 10 further includes a nozzle valve actuator assembly 22 adapted to move nozzle valve element 18 toward the open position. Nozzle valve actuator assembly 22 includes a piezoelectric actuator 24 positioned in the upper portion of injector cavity 14 and a drive plunger 26 operatively connected to the inner end of piezoelectric actuator 24. Piezoelectric actuator 24 may comprise a columnar laminated body of thin disk-shaped elements each having a piezoelectric effect. When a voltage, i.e. +150 volts, is applied to each element, the element expands along the axial direction of the column. Conversely, when a voltage of −150 volts is applied to each element, the element contracts so that the inner end of piezoelectric actuator 24 moves away from closed nozzle assembly 16. Piezoelectric actuator 24 may include any type or design of piezoelectric actuator capable of actuating nozzle valve element 18 as described hereinbelow. The expansion/contraction of piezoelectric actuator 24 is directly transmitted to drive plunger 26, thereby causing plunger 26 to reciprocate. In other embodiments, the movement of piezoelectric actuator 24 may be indirectly transmitted to drive plunger 26 using an intermediate element.
(7) Nozzle valve actuator assembly 22 also includes a hydraulic chamber 31 formed in injector cavity 14 adjacent the inner end of drive plunger 26. Plunger 26 slidably reciprocates within injector cavity 14 so as to expand and contract the volume of hydraulic chamber 31 thereby forming a hydraulic link 21 operatively connecting drive plunger 26 and nozzle valve element 18. Preferably piezoelectric actuator 24 is directly connected to drive plunger 26 which in turn is directly connected to nozzle valve element 18 via the hydraulic lint 21. Therefore expansion of the piezoelectric actuator 24 causes movement of nozzle valve element 18 outwardly toward an open position, and contraction of piezoelectric actuator 24 causes inward movement of nozzle valve element 18 toward a closed position. Drive plunger 26 is preferably sized with a larger diameter than nozzle valve element 18 to provide stroke amplification, while hydraulic link 21 provides both wear compensation and thermal compensation by being variable in length.
(8) Closed nozzle valve assembly 16 is of the outwardly opening type wherein the end of nozzle valve element 18 moves outwardly away from the injector body 12 out of bore 17 toward an open position (
(9) The opposite end of nozzle valve element 18 extends into hydraulic chamber 31 for receiving a drive force applied by hydraulic link 21, drive plunger 26, and piezoelectric actuator 24 of nozzle valve actuator assembly 21 A bias spring 25, positioned in hydraulic chamber 31, acts on the outer end of nozzle valve element 18 to bias nozzle valve element 18 toward the closed position. Nozzle valve element 18 further includes a transverse passage 38 extending transversely through nozzle valve element 18 to fluidically connect an outer end of fuel delivery passage 34 with a high pressure fuel supply. Injector body 12, and in the exemplary embodiment, nozzle housing 15, includes a fuel supply port 40 positioned to communicate with bore 17 at one end and a high pressure fuel supply at an opposite end. Fuel supply port 40 connects with bore 17 at a point along the length of bore 17 such that transverse passage 38 is in constant communication with fuel supply port 40 throughout reciprocal movement of nozzle valve element 18 between open and closed positions. Fuel supply port 40 is supplied with high pressure fuel from any conventional fuel system capable of delivering a supply of fuel pressurized to a desired level for injection, i.e. such as a conventional high pressure common rail system or a system capable of cyclically delivering high pressure fuel to supply circuit 52. Also, it should be noted that the inner portion of fuel injector body 12 is shown as only one exemplary embodiment. A practical form, and other forms, of the injector would necessarily require the inner portion of the injector body 12 to be formed in at least two separate pieces held together in a compressive relationship by, for example, a retainer such as disclosed in U.S. Pat. No. 4,022,166, the contents of which is hereby incorporated by reference. Specifically, it is desirable to form bore 17 in one injector housing structure and hydraulic chamber 31 in a separate structure as shown but additional injector body structures may be used.
(10) The injector of the present inventions effectively provides variable spray characteristics to effectively reduce emissions, such as NOx emissions and particulate matter. Specifically, injector 10 effectively creates a first fuel spray downstream of valve seat 23, i.e., into a combustion chamber of an engine, when nozzle valve element 18 is in a first or low lift position (
(11) The low lift spray profile is achieved by positioning the outlets of the spray holes 20 relative to the injector body upstream of the valve seat 23, and providing annular groove 36 to receive the flow from spray holes 20, such that the fuel fills annular groove 36 between injection events when nozzle valve element 18 is in a closed position. As such, when nozzle valve element 18 moves from the closed position toward a low lift position, the fuel flows from annular groove 36 through the gap 50 formed at valve seat 23 circumferentially around the entire gap to form a hollow cone. Moreover, preferably, the valve seat 23 is formed with an angle sufficient to direct the fuel away from the cylinder walls into the cone shape at the deep angle A and more toward the centerline of the combustion chamber. As the initial volume of fuel in the annular groove 36 is passing out of the groove, the fuel flowing from the outlets of the spray holes 20 will impinge on the injector body forming bore 17 and/or valve seat 23 and be deflected/directed toward downwardly toward the combustion chamber into a deep angle hollow cone or possibly deep angle individual or overlapping plumes, depending on the extent of opening of nozzle valve element 18, and the number and/or size of spray holes positioned around nozzle valve element 18. In the exemplary embodiment, the entire flow of fuel from each spray hole 20 impinges injector body 12, i.e. nozzle housing 15, causing the entire flow, not a portion of the flow, to be deflected into a deep angle.
(12) During other engine operating conditions, such as high load, when injection may occur closer to top dead center of an engine piston's movement when cylinder pressure is high, nozzle valve element 18 may move into a second or high lift position (
(13) During operation, prior to an injection event, piezoelectric actuator 24 is deactuated, i.e., a voltage of −150 volts is applied, as shown in
(14) While various embodiments in accordance with the present invention have been shown and described, it is understood that the invention is not limited thereto. The present invention may be changed, modified and further applied by those skilled in the art. Therefore, this invention is not limited to the detail shown and described previously, but also includes all such changes and modifications.