MICRO-SIZED STRUCTURE AND CONSTRUCTION METHOD FOR FLUIDIC OSCILLATOR WASH NOZZLE
20190061702 ยท 2019-02-28
Inventors
- Shridhar Gopalan (Westminster, MD, US)
- Chunling Zhao (Ellicott City, MD, US)
- Zachary Kline (Burtonsville, MD, US)
Cpc classification
B60S1/56
PERFORMING OPERATIONS; TRANSPORTING
B60S1/52
PERFORMING OPERATIONS; TRANSPORTING
B05B1/08
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60S1/52
PERFORMING OPERATIONS; TRANSPORTING
B05B1/14
PERFORMING OPERATIONS; TRANSPORTING
B60S1/56
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A micro-sized structure and construction method for a fluidic oscillator wash or spray nozzle (100 or 250) has a nozzle housing (110 or 252) enclosing an interior cavity (112 or 262) which receives an insert (114 or 254) having internal fluid passages defining first and second power nozzles (120, 122 or 280, 282). The power nozzles receive pressurized fluid (130) flowing through the interior cavity of the housing, where the fluid flows into the cavity at the bottom of the housing and flows upwardly to inlets (140, 142) for the power nozzles so that accelerating first and second fluid flows are aimed by the power nozzles toward one another in an interaction region (154 or 284) which exhausts laterally along a spray axis through a horn-shaped throat defined partly within the insert and partly within the flared spray outlet orifice (160 or 290) defined through the sidewall (162) in the housing.
Claims
1. A micro-sized structure for a fluidic oscillator wash or spray nozzle, comprising: a nozzle housing (e.g., 110 or 252) enclosing an interior cavity (e.g., 112 or 262) having an upper slot (e.g. 178 or 268) with a bottom opening configured to receive an insert (e.g., 114 or 254) having internal fluid passages defining first and second power nozzles (e.g., 120, 122 or 280, 282) and having an interaction region (e.g. 154, or 284); said first and second power nozzles being configured to receive pressurized fluid from the interior cavity of the housing by way of opposing lateral inlets (e.g. 120, 122 or 280, 282) in the insert for the first and second power nozzles, to produce accelerating first and second fluid flows (e.g. 150, 152) aimed by the first and second power nozzles toward one another in the interaction region defined within the insert; said housing having a transverse lumen defined through a sidewall in the nozzle housing to provide a flared throat defined around a spray axis with opposing curved wall segments which define a throat segment in fluid communication with the interaction region (154 or 284) so that the fluidic oscillator's outlet orifice is defined partly by the insert's interaction chamber and partly within the flared throat or spray outlet orifice (160 or 290) defined through the sidewall (162); and wherein said insert in the nozzle housing is configured for insertion by way of said housing interior cavity's bottom opening (e.g. 132 or 266) and forcing the insert upwardly into the upper slot to abut side and top wall surfaces within the housing slot in order minimize the nozzle assembly's thickness during assembly.
2. The micro-sized structure for a fluidic oscillator wash or spray nozzle of claim 1, wherein in order minimize the nozzle assembly's thickness, during assembly of the nozzle assembly, the insert is positioned to permit fluid under pressure to flow into the interior cavity and around two opposite side ends of the insert to the inlets and corresponding power nozzles, the side walls abutting internal surfaces within the housing slot to secure the insert.
3. The micro-sized structure for a fluidic oscillator wash or spray nozzle of claim 1, wherein in order minimize the nozzle assembly's thickness, during assembly of the nozzle assembly, the insert is preferably mounted on a carrier (e.g. 294) and installed in the housing slot via a bottom sealing opening (e.g. 266) and forced upwardly to abut internal surfaces within the housing slot, whereupon the insert carrier and the bottom sealing opening engage one another to seal the housing opening so that fluid flowing into the cavity via a conduit (e.g. 260) all flows into the housing interior cavity and into the power nozzles.
4. The micro-sized structure for a fluidic oscillator wash or spray nozzle of claim 1, wherein the insert carrier is configured with a filter post array (e.g., 302) configured in a manner which permits fluid to flow into the cavity and distally or downstream over the insert carrier and through the filter post array before flowing into the power nozzles.
5. A method for assembling a micro-sized fluidic oscillator wash or spray nozzle assembly, comprising: (a) defining within a nozzle housing (e.g., 110 or 252) an interior cavity (e.g., 112 or 262) having an upper slot (e.g. 178 or 268) in fluid communication with a bottom opening which is configured to receive and retain an insert (e.g., 114 or 254) having internal fluid passages defining first and second power nozzles (e.g., 120, 122 or 280, 282) and having an interaction region (e.g. 154, or 284); (b) providing, in said insert, first and second power nozzles configured to receive pressurized fluid from the interior cavity of the housing by way of opposing lateral inlets (e.g. 120, 122 or 280, 282) in the insert for the first and second power nozzles, to produce accelerating first and second fluid flows (e.g. 150, 152) aimed by the first and second power nozzles toward one another in the interaction region defined within the insert; (c) defining, within said housing a transverse lumen aligned along a spray axis through a sidewall in the housing to form a throat or spray outlet orifice (e.g., 160 or 284), where the cross sectional shape of that throat or outlet orifice is defined by the housing's sidewall and the axially aligned insert, when said insert is inserted in said housing's interior cavity; and (d) inserting said insert into said nozzle housing through said housing interior cavity's bottom opening (e.g. 132 or 266) and forcing the insert upwardly into the upper slot to abut side and top wall surfaces within the housing slot.
6. A micro-sized fluidic nozzle assembly, comprising: a housing (110, 252) having an internal fluid cavity (112, 262) for receiving fluid under pressure, said cavity having an open bottom (132, 266) and an upwardly extending slot (178, 268); said housing including an upper portion having front (180), back (182) and top (186) walls surrounding and defining said slot, and having a forwardly-extending throat (160, 290) through said front wall and terminating in a spray orifice (164, 292); an insert (114, 284) mountable within said slot in contact with and secured by interior surfaces of said front, back and top walls, said insert incorporating an interaction region (154, 284) aligned with said spray axis and said throat when said insert is secured in said slot; first (120, 280) and second (122, 282) power nozzles in said insert in fluid communication with said fluid cavity at an inlet end at with said interaction region at an outlet end for accelerating and directing fluid from said fluid cavity into said interaction region in opposition to each other to produce fluidic oscillating vortices in said interaction region and ejecting said fluid through said throat and said orifice to generate a patterned spray (102).
7. The nozzle assembly of claim 6, wherein said insert is positioned in said slot through the open bottom of said fluid cavity so that said interaction region (154 or 284) comprises a volume defined partly within the insert and partly within the tapering throat or spray outlet orifice (160 or 290) defined through the sidewall (162) in the housing.
8. The nozzle assembly of claim 7, further including an insert carrier (294) for positioning said insert in said slot and for sealing the open bottom of the fluid cavity.
9. The nozzle assembly of claim 7, wherein said open bottom of said fluid cavity is connectable to a pressurized fluid source.
10. The nozzle assembly of claim 6, wherein said throat is formed by inwardly and forwardly curving walls (166, 168) formed in said housing front wall.
11. The nozzle assembly of claim 10, wherein said insert interaction region cooperates with said curving walls to form said throat.
12. The nozzle assembly of claim 6, wherein said upper portion of said housing has exterior dimensions of 7 mm in width, 3 mm in depth and 9 mm in height, and wherein said insert is 0.85 mm thick.
13. The nozzle assembly of claim 6, wherein said patterned spray is a uniform spray fan having a spray angle of 15-80, when supplied from a fluid source at a flow rate of 50-350 ml/min at 15-22 psi, and wherein the spray fan may have a selected thickness of 6 to 25.
14. The nozzle assembly of claim 13, wherein said patterned spray is generated when supplied with a cold fluid having a viscosity of up to 25 cP.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENT
[0030] As illustrated in
[0031] Turning now to a detailed description of the nozzle assembly and compact spray nozzle member of the present invention,
[0032] A first embodiment of the invention is illustrated in
[0033] Applicants have discovered, through testing of prototypes of the illustrated embodiments, that for certain camera wash applications, with flow rates lower than 150 mL/min, and in some tests even as low as 50 mL/min, the nozzle assemblies of the invention function well. Since these nozzle configurations and methods are also suitable for incorporation in automotive applications other than camera wash, CHMSL-mount rear wash nozzles and wiper-arm nozzle mounts are illustrated (see, e.g.,
[0034] Referring now to the illustrated micro package size washer nozzle assembly 100 in greater detail, and with particular reference to
[0035] The nozzle assembly 100 incorporates a throat or spray outlet orifice 160, which is a transverse lumen symmetrically defined around central spray axis SA through front sidewall 162 of the nozzle housing 110. Spray outlet orifice 160 and spray axis SA are aligned with the approximate center of the interaction region 154 of the insert 114 when the insert is seated in the housing. As best illustrated in
[0036] In order provide the micro dimensions of the assembly of the present invention and to minimize the nozzle assembly's thickness, assembly of the nozzle structure, or assembly 100, is carried out by providing the housing 110 with an interior cavity 112 that is shaped to tightly receive the generally rectangular insert 114. This cavity includes the downwardly-opening lumen 132 at its bottom, with the lumen extending upwardly as a narrow internal slot 178 having front and rear interior walls 180 and 182 spaced apart far enough to receive the insert and to contact the corresponding front and rear walls 170 and 184 of the insert 114. The insert is installed in the housing through the open bottom of lumen 132 and is forced upwardly into slot 178 to engage the front and rear side walls of the housing and to abut a top wall interior surface 186 within the housing. The narrow slot 178 is enlarged at its opposite sides to provide the fluid channels 116 and 118 to allow fluid flow into the insert power nozzles, as described above.
[0037] When in use, fluid 130 under pressure flows into and through through the first and second power nozzles 120 and 122 to produce opposed streams 150 and 152 which are aimed to collide within the housing's interaction region 154 to generate oscillating flow vortices in the interaction region (as shown in
[0038] Applicants' optimized nozzle design provides a compact package that allows the nozzle to be located closer to a camera's objective lens surface periphery and possibly even more readily integrated into a camera body or surrounding vehicle trim piece. Being positioned closer to the camera lens(es) creates performance issues with typical nozzle designs as they may not be able to distribute the available fluid flow evenly across the camera lens(es). Further, the deficiencies of prior art nozzles; namely, poor spray velocity profiles and narrow spray angles that prevent effective cleaning, are overcome by the nozzle assembly 100 described herein. Applicants' nozzle 100 is more compact but generates a surprisingly wide, high velocity spray, given its size. Its smaller size will satisfy Industrial Designers' aesthetic demands and will not impair or project into the image sensor's viewing area, even for cameras with large viewing angles while producing a well-defined spray with high viscosity liquids, as is needed for good spray performance in cold environments, more specifically, the spray pattern of nozzle 100 is a uniform spray fan having a spray angle of 15-80, with a low flow rate of 50-350 ml/min at 22 psi, and wherein the spray fan may have a selected thickness of 6 to 25, so the micro nozzle 100 can produce a spray fan which is 15-80 degrees wide along a lateral width axis and 6 to 25 degrees thick in the transverse vertical height axis. Satisfactory spray and cleaning performance are provided with low fluid supply pressures (e.g., 15 psi and lower pressures) and with cold viscous fluids (having viscosities of up to 25 cP). Its smaller size will satisfy Industrial Designers demands but also not impair the viewing area of large viewing angle cameras. These cameras could include, but are not limited to, cameras used in parking assist or other driver assistance or self-driving features such as, but not limited to, lane departure warning, sign recognition, and auto-braking. These cameras could be located in the vehicle grill, the vehicle tailgate or liftgate, the vehicle trunk lid, side-view mirrors, or be roof-mounted.
[0039] As noted above, the nozzle configuration provided by the small package size of the present invention has advantages for spraying applications all over a car, and this will find advantageous applications in spray applications not related to camera washing. For example, as illustrated in
[0040] Another area where the small size of the design would be desirable is for rear window wash nozzles located in a CHMSL assembly 220, as shown in
[0041] Alternative embodiments have also shown promise and allow for integrating the micro-fluidic nozzle of the present invention in different configurations. Such an alternative embodiment is illustrated in
[0042] The illustrated nozzle assembly incorporates a conduit 260 for connecting an interior cavity 262 in the housing 252 to a suitable source of fluid under pressure (not shown). The cavity has a bottom opening 266 and an upper slot 268 for receiving and securing the insert, with the walls of the insert engaging the inner walls of the slot in the manner described above with respect to housing 110. First and second fluid passageways 270 and 272 on opposite sides of the insert 254 direct fluid under pressure from the cavity 262 through corresponding opposed power nozzles 280 and 282, accelerating the fluid into an interaction region 284 to produce opposed pressurized fluid flow in the region 284, causing fluidic oscillation vortices and ejection of the fluid out through a transverse exit throat 290 to outlet orifice 292 as a spray fan along a spray axis (as above). The cross sectional shape of that throat and outlet orifice are defined by the housing sidewall aperture which is axially aligned with a spray axis and the insert's interaction region, as in the embodiments described above.
[0043] The insert 254 may be secured to, or may form the upper portion of, an insert carrier 294 which extends the vertical length of the housing 252 and which is positioned in the cavity 262 by guides 296 and 298. The bottom end 300 of the carrier is enlarged and shaped to engage and fill the bottom end 266 of the cavity 262. In the assembly method for nozzle assembly 250, insert 252 is positioned in the housing by the carrier 294 by way of the bottom opening 266 and is pressed into the upper slot 268 to align with the outlet throat 290 and to abut a top wall of the slot, in the manner discussed with respect to assembly 100, the insert being substantially perpendicular to the direction of spray discharge (not shown in
[0044] In the embodiment illustrated in
[0045] Having described preferred embodiments of a new and improved method, it is believed that other modifications, variations and changes will be suggested to those skilled in the art in view of the teachings set forth herein. It is therefore to be understood that all such variations, modifications and changes are believed to fall within the scope of the present invention as set forth in the claims.