Injector having swirl structure downstream of valve seat
09638080 ยท 2017-05-02
Assignee
Inventors
Cpc classification
F01N2610/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2610/1453
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02A50/20
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
F01N3/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/163
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05B1/3436
PERFORMING OPERATIONS; TRANSPORTING
B05B1/3447
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/12
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
International classification
B05B1/34
PERFORMING OPERATIONS; TRANSPORTING
F02M61/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An atomizing injector comprises a body having a central bore with a valve situated in the bore, leading to a chamber. An actuator moves the valve between closed condition and open conditions, selectively exposing the chamber to a flow of pressurized liquid. A discharge port extends from the chamber to a discharge orifice. A swirl element is situated in the chamber, while leaving a free space in the chamber immediately above the discharge port. When the valve is opened, liquid flows into the chamber, through the swirl element into the space, forming a whirl in the space before passing through the discharge port and exiting the discharge orifice as an atomized whirling spray.
Claims
1. An injector comprising: a longitudinal body; a central bore in the body, having upper and lower ends and a source volume for receiving pressurized fluid to be injected; a valve situated in the bore, having a moveable sealing face selectively seated against a stationary sealing face; a chamber in selective fluid communication with the source volume through said valve; a control system that selectively moves the valve member into a closed condition whereby said moveable face seals against said stationary face and into an open condition whereby the moveable face lifts from said stationary face; a discharge port from the chamber to a discharge orifice; a swirl element situated in the chamber, while leaving a free space in the chamber immediately above the discharge port; whereby when the valve is in said closed condition, no fluid can enter said chamber from the source volume and when the valve is in said open condition, pressurized fluid flows into said chamber, through said swirl element into said space, forming a whirl in said space before passing through said discharge port and exiting said discharge orifice as an atomized whirling spray; further comprising a generally cup shaped insert (518A, 618A) having a side wall and a bottom wall, located at and fixed with respect to the bottom of the bore, defining a cylindrical (514, 614) chamber below the valve seat and a single discharge orifice (516, 616) from the chamber at the bottom wall, coaxial with the bore; a generally cylindrical plug (528, 628) coaxially situated within the insert, having a side wall spaced radially from the sidewall of the insert and defining a flow passage (514, 614) between the insert and the plug, and a bottom adjacent the bottom of the insert; at least two radially oriented slots (522, 622) between the bottom of the plug and the bottom of the insert, each slot having an outer portion in fluid communication with said flow passage (514, 614) between the insert and the plug and narrowing toward the axis of the plug; and a cylindrical space (520, 620) between the bottom of the plug and the bottom of the insert in direct fluid communication with the discharge orifice (516, 616), wherein the slots and cylindrical space are formed in the bottom of the plug.
2. An injector comprising: a longitudinal body; a central bore in the body, having upper and lower ends and a source volume for receiving pressurized fluid to be injected; a valve situated in the bore, having a moveable sealing face selectively seated against a stationary sealing face; a chamber in selective fluid communication with the source volume through said valve; a control system that selectively moves the valve member into a closed condition whereby said moveable face seals against said stationary face and into an open condition whereby the moveable face lifts from said stationary face; a discharge port from the chamber to a discharge orifice; and a swirl element situated in the chamber, while leaving a free space in the chamber immediately above the discharge port; whereby when the valve is in said closed condition, no fluid can enter said chamber from the source volume and when the valve is in said open condition, pressurized fluid flows into said chamber, through said swirl element into said space, forming a whirl in said space before passing through said discharge port and exiting said discharge orifice as an atomized whirling spray; further comprising a generally cup shaped insert (518A, 618A) having a side wall and a bottom wall, located at and fixed with respect to the bottom of the bore, defining a cylindrical (514, 614) chamber below the valve seat and a single discharge orifice (516, 616) from the chamber at the bottom wall, coaxial with the bore; and a generally cylindrical plug (528, 628) coaxially situated within the insert, having a side wall spaced radially from the sidewall of the insert and defining a flow passage (514, 614) between the insert and the plug, and a bottom adjacent the bottom of the insert; wherein the plug has a lower portion spaced from the sidewall of the insert for defining said flow passage, an upper portion extending above the insert, and a flange extending radially over the sidewall of the insert; a spring bearing on the flange to urge the plug toward the bottom of the insert; and flow openings in the flange leading to said flow passage between the plug and the insert.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) Embodiments of the invention will be described with reference to the accompanying drawing, in which:
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DETAILED DESCRIPTION
(13)
(14) A source 20 of treatment liquid is located a sufficient distance from the injector 18 so as not to be unduly influenced by the high heat thrown off by the pipe 12 and present in the ambient air surrounding the pipe. In general, the temperature of the liquid in the source would be in the range of about 10-50 deg. C. depending on the weather conditions in which the vehicle is operated. A source line 20a, b, c including pump 22 supplies treatment liquid to the injector at a predetermined or controlled pressure, preferably in the range of about 5-10 bar. Pressure sensor 24 is optionally provided for this purpose. The pump 22 preferably has a built in pressure regulator to maintain the desired pressure.
(15) The injector is controlled from controller 28, which may be dedicated (as shown) or optionally integrated with an engine control unit (ECU) or the like, whereby the rate of injection into the exhaust stream is commensurate with the rate of exhaust generated by the engine and other measured variables. Those skilled in the art are familiar with techniques for measuring engine variables such as fuel quantity at 30 and exhaust variables such as temperature at 32, and optionally residual NO.sub.x, concentration at sensor 34, to determine the volumetric flow rate of treatment liquid to be injected at any given moment. This rate is associated with a first or normal mode of operation of both the injector 18 and the SCR unit 16. Other sensors may be provided for urea level and tank temperature at 36.
(16) The preferred injector 18 of
(17) The upper end of the fitting 116 provides the inlet port 130 for receiving pressurized fluid from segment 20c of the urea source line. This pressurized fluid passes through the central bore 132, including through the space surrounding the return spring 124, into the passage 112 at the upper end of the valve 108 and through the ports 114 and into the annulus 105 surrounding the lower portion of the needle valve 108. Preferably, one or two enlarged regions 151 on the needle valve 108, provide guidance through the bore 104.
(18) The injector 100 is mounted to the exterior wall of the exhaust pipe 12, such that the discharge orifice 128 is at the surface elevation or within the pipe 12. The pipe 12 may include an externally threaded rim or the like (not shown), and the injector may have an internally threaded coupling or fitting (not shown) for engaging the rim.
(19) A swirl element is provided in the lower portion of the injector body, below the valve seating surface, for inducing a swirling flow to the treatment liquid before it passes through the discharge orifice 128, thereby delivering a swirling atomized spray into the exhaust pipe. An effective swirling, atomized discharge is achieved from a static initial condition of the treatment liquid in the annulus above the seating surface.
(20) As shown in
(21) The control system selectively moves the valve 108 downwardly into a closed condition whereby the nose 152 seals against the seat 126 on the face 162 and upwardly into an open condition whereby the nose lifts from the seat. A swirl element 154 extends, preferably entirely, from the nose 152 below the seal line 159 and seat 126. A passage, in this case the annulus 105, supplies treatment fluid to the surface 162 upstream of the seat, whereby when the valve nose 152 is seated in the closed condition, no fluid can enter the chamber 164 and when the valve nose is lifted off the face, fluid flows through the helical grooves 160 of swirl element 154 into a space 172 at the bottom of the chamber 164, forming a whirl in the space before exiting through discharge orifice 128 as an atomized whirling spray.
(22) Preferably, as shown in
(23) With the swirl element 154 having an outer diameter substantially equal to the inner diameter of the chamber 164, substantially all the pressurized treatment liquid can be discharged only after passing through the single or multiple helical groove patterns of the external grooves 160. The swirl element extends only part way into the chamber, leaving a whirl space 172 immediately above a narrow bore or the discharge port 166. This swirl is maintained in the whirl space 172 and is likewise maintained as the liquid passes through the discharge port 166. The insulating ring 136 is situated at the discharge end of the body and has an outwardly tapered central passage 168 coaxial with the discharge orifice 128. The narrow port 166 produces a high pressure in the liquid such that upon discharge at the orifice 128, a broad, substantially conically whirling, atomized spray is delivered through the ring to the exhaust.
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(26) Another embodiment 200 is shown in
(27) The platform 216 is press fit or otherwise secured in an annular socket 218 at the lower end of the body 202. The platform 216 has a centrally located discharge port 220 and discharge orifice 222 from which the atomized spray exits as a narrow cone of swirling spray. A spray guide or similar enlarged or enlarging surface 224 can immediately follow the discharge orifice 222. In this embodiment, the surface 224 is cylindrically formed in the platform 216, but such surface could be conical and formed as a connection to or extension of the platform.
(28) Seat member 212 and platform 216 are rigidly connected to the lower end 226 of the body 202 and thus functionally equivalent to the lower portion of the unitary body in the embodiment of
(29) Furthermore, the lower portion 226 of the body can be a distinct part that is rigidly connected to an upper body or casing 202, which can have a larger bore diameter to accommodate a larger diameter portion 204 of the valve. This further simplifies manufacture, especially if the valve has a different diameter adjacent the nose 210, than at the upper end. The liquid supply passage 230 to the nose is preferably a longitudinal channel along the inside diameter of the valve with cross-holes, for delivery of pressurized fluid to the conical surface of seat member 212.
(30) Even if the body member 226 is distinct and not unitary with other guide structure 202 for the upper portion 204 of the valve, it along with the rigidly attached seat member 212 and platform 216 can be considered as a longitudinal body having a central bore and upper and lower ends 226a, 226b, the lower end having a substantially conical internal face 212 narrowing to a chamber 212. The swirl element 214 is located in this chamber, below the sealing line where the nose 210 closes flow against the seating face.
(31) The lower portion 226 of the body can have a variety of shapes, and can be quite simple. For use of the injector in exhaust gas treatment systems, a flange, nut, or other fastener means is connected to either the lower end of the body or to the bottom wall of the jacket, for mounting the injector to the exhaust conduit (as shown for example in
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(33) When the valve 306 opens, liquid under pressure in the volume 308 passes around or partially through the plug 318B where it enters the chamber 314, preferably via a tapered annular region 314. The flow passes through the single or multiple helix flow channels 322 formed in this embodiment on the wall of chamber 314, while confined by the outer diameter of the cylindrical portion of plug 318B. As in the previously described embodiments, after passing through the flow channels, the liquid enters free space 320 where a whirl is formed before exiting through port 316.
(34) In the three other embodiments 400, 500, and 600 shown in
(35) With particular reference to the embodiment of
(36) The valve in this embodiment is formed in part by a valve insert 424 fixed with respect to the body 402 and having a central flow passage 426 from the pressurized source volume 408. The moveable valve portion 410 is associated with a spring seat insert 428 having a shoulder 430 which rests on the chamber insert 418A and which provides a seat for spring 434. The spring 434 biases the valve member 410 into the closed position against the seat 412. In this embodiment, when the valve opens, flow passes through passage 426, around the disc 410 into another flow passage 432 in the spring seat insert 428, to enter the transition annulus. All the flow passes the grooves 422 on the outer surface of the plug portion 418B. It can be seen that the plug portion 418B in this embodiment is an integral projection from the spring seat 428 into the swirl chamber 414.
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(38) In the embodiment of
(39) Optionally, the components associated with actuating the valve assemblies 406, 506, and 606 can include a needle type check valve V that seats against a conical transition on insert 424, 524, 624 to prevent leakage when the engine is turned off and which during operation is lifted off the seating surface to open flow into passage 426, 526, 626.
(40) The preferred combination of features of these embodiments includes (1) a swirl element below the valve sealing face; (2) which element produces a helical flow confined in flow channels in a chamber; (3) upon exiting the flow channels the flow consolidates as a swirl in a free space; (4) the liquid leaves the free space through a narrow passage while maintaining a swirl; and (5) the fluid is discharged through the outlet of the passage or similar orifice as a whirling, atomized spray. The swirl element can be a combination of cooperating components and can be defined in part by the wall or floor of the chamber or plug within the chamber. Thus, swirl element should be understood a referring to a feature, not necessarily a distinct component.