SWITCHER NOZZLE HIGH EFFICIENCY FLOW INSERT
20220062923 ยท 2022-03-03
Inventors
Cpc classification
B05B1/169
PERFORMING OPERATIONS; TRANSPORTING
F16L55/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05B13/0627
PERFORMING OPERATIONS; TRANSPORTING
B05B1/02
PERFORMING OPERATIONS; TRANSPORTING
B05B1/1636
PERFORMING OPERATIONS; TRANSPORTING
B05B1/1609
PERFORMING OPERATIONS; TRANSPORTING
F16L2101/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L2101/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05B1/3006
PERFORMING OPERATIONS; TRANSPORTING
B08B9/0495
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B1/16
PERFORMING OPERATIONS; TRANSPORTING
B05B1/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A nozzle assembly includes a hollow nozzle body having a central bore and a plurality of ports extending through the body from the central bore; a switching valve assembly disposed in the central bore that directs fluid flow to ports upon application of fluid flow above a predetermined threshold to the inlet and direct fluid flow to different ports upon fluid flow having subsequently dropped below the predetermined threshold and then exceeding the predetermined threshold; and a flow insert configured to replace the switching valve assembly for directing flow through all of the ports when switching functionality is not needed. This flow insert may be made of a low pressure material such as a polymer.
Claims
1. A nozzle comprising: an inlet nut fastenable to a distal end of one of a rotatable nozzle shaft or a high pressure hose; a hollow nozzle body having a front end portion, a cylindrical rear inlet portion configured to engage the inlet nut, a central bore through at least the cylindrical rear inlet portion of the nozzle body, and a plurality of ports extending through the body from the central bore, wherein the nozzle body is configured to withstand an operating pressure of greater than 5 k psi; and a generally cylindrical removable flow insert disposed in the central bore between the inlet nut and at least the rear inlet portion of the nozzle body, the insert having a plurality of through passages configured to communicate with the ports, wherein the flow insert is configured to maximize jet coherence through the ports exiting the nozzle body.
2. The nozzle assembly according to claim 1 wherein the removable flow insert cannot withstand nozzle operating pressure when not installed within the central bore of the nozzle body.
3. The nozzle assembly according to claim 1 wherein the insert is made of plastic.
4. The nozzle assembly according to claim 2 wherein the insert is made of nylon.
5. The nozzle assembly according to claim 1 wherein the nozzle body is configured to receive a removable switching valve assembly in the central bore, the switching valve assembly including a movable poppet captured in the nozzle body by the inlet nut, the switching valve assembly including a guide member within the bore and a bias member in the bore between the nozzle body and the poppet resiliently biasing the poppet toward the inlet nut at a rear end of the central bore, wherein the insert has a peripheral groove engaging the guide member when the switchable valve assembly is replaced by the generally cylindrical flow insert.
6. A nozzle assembly comprising: an inlet nut fastenable to a hollow shaft or a high pressure hose; a hollow nozzle body having a front end portion, a cylindrical rear inlet portion configured to engage the inlet nut, a central bore through at least the cylindrical rear inlet portion of the nozzle body, and a plurality of ports extending through the body from the central bore, wherein the nozzle body is configured to withstand an operating pressure of at least 5 k psi; a switching valve assembly removably captured within at least a rear portion of the central bore of the nozzle body by the inlet nut; and a generally cylindrical flow insert configured to be removably disposed within the central bore in place of the switching valve assembly when switching functionality of the switching valve assembly is not needed, wherein the flow insert has a plurality of through passages each configured to communicate with at least one of the ports and wherein the flow insert cannot withstand the operating pressure of at least 5 k psi when the flow insert is not installed and captured within the central bore of the hollow nozzle body.
7. The nozzle assembly according to claim 6 wherein a plurality of the ports exit the front end portion of the nozzle body from the central bore and a plurality of the ports exit laterally from the nozzle body.
8. The nozzle assembly according to claim 6 wherein the nozzle body has one or more guide pins protruding into the central bore to orient the switching valve assembly therein and orient the flow insert when the flow insert is installed within the central bore.
9. The nozzle assembly according to claim 8 wherein the flow insert has one or more axial grooves each for engaging each one of the one or more guide pins.
10. The nozzle assembly according to claim 7 wherein the flow insert has two axial through passages configured to align with the plurality of ports exiting the front end portion of the nozzle body from the central bore.
11. The nozzle assembly according to claim 7 wherein the flow insert has two axial through passages configured to align with the ports exiting laterally from the nozzle body.
12. A flow insert for use in a switcher valve nozzle assembly including an inlet nut, a hollow nozzle body having a front portion, a rear inlet portion configured to engage the inlet nut, a central bore through at least the rear inlet portion of the nozzle body, and a plurality of ports extending through the body from the central bore, wherein the nozzle body is configured to withstand an operating pressure of at least 5 k psi, and a switching valve assembly removably captured within at least a rear portion of the central bore of the nozzle body by the inlet nut, the polymer flow insert comprising: a generally cylindrical body configured to be disposed within the central bore in place of the switching valve assembly when switching functionality of the switching valve assembly is not needed, wherein the flow insert has a plurality of through passages each configured to communicate with at least one of the ports and wherein the flow insert cannot withstand the operating pressure when not installed and captured within the central bore of the hollow nozzle body.
13. The flow insert according to claim 12 wherein a plurality of the ports exit the front end portion of the nozzle body from the central bore and a plurality of the ports exit laterally from the nozzle body.
14. The flow insert according to claim 12 wherein the nozzle body has one or more guide pins protruding into the central bore to orient the switching valve assembly therein and orient the flow insert when installed within the central bore.
15. The flow insert according to claim 14 wherein the flow insert has one or more axial grooves each for engaging each one of the one or more guide pins.
16. The flow insert according to claim 13 wherein the flow insert has two axial through passages configured to align with the plurality of ports exiting the front end portion of the nozzle body from the central bore.
17. The flow insert according to claim 12 further comprising two axial through passages configured to align with ports exiting the front end portion of the nozzle body and two axial through passages configured to align with ports exiting laterally from the nozzle body.
18. The flow insert according to claim 12 further comprising at least one groove axially extending along an exterior of the generally cylindrical flow insert body for receiving a guide pin projecting from the nozzle body into the central bore to orient the flow insert in the central bore.
19. The flow insert according to claim 17 further comprising at least one groove axially extending along an exterior of the generally cylindrical flow insert body for receiving a guide pin projecting from the nozzle body into the central bore to orient the flow insert in the central bore.
20. The flow insert according to claim 12 wherein the insert is made of a polymer material.
Description
DESCRIPTION OF THE DRAWINGS
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[0018]
DETAILED DESCRIPTION
[0019] An exemplary first embodiment of a nozzle assembly 200 incorporating a switching valve assembly is shown in
[0020] Captured in the central bore 210 between the front portion 204 and the inlet nut 208 in this embodiment is a switching valve assembly 216. This switching valve assembly 216 includes a cylindrical poppet 220 slidably disposed in the central bore 210, a bias member 222 compressed between the poppet 220 and the front portion 204, and a guide 224 between the poppet 220 and the nozzle body 202.
[0021] In this embodiment of the nozzle assembly 200, the guide 224 comprises a groove in the poppet 220 that engages a plurality of guide pins 226 that are threaded into the body 202 and extend into the central bore 210. The groove 224 is a peripheral zig-zag groove formed in the outer cylindrical surface of the poppet 220. There are four guide pins 226 spaced at 90 degrees apart around the central bore 210. When fluid flow is applied to the assembled nozzle 200, the poppet 220 slides within the bore 210 forward toward the front portion 204 of the nozzle body 202, being rotated as it moves via the guide 224 until its front end face 238 abuts against the rear face of the front portion 204 at the end of the central bore 210.
[0022] The poppet 220 is a short cylindrical body that has four axially extending bores 230 symmetrically arranged around its central axis. Two oppositely arranged bores 230 carry floating valve pins 232. These valve pins 232 are used to close corresponding aligned passages 228 through the front portion 204 of the nozzle body 202. Each valve pin 232 has a stem 234 and an enlarged plug portion 236 extend from a front face 238 of the poppet 220 giving the valve pin an external shape like an Erlenmeyer flask. The valve pins 232 are each captured within its bore 230 via a snap ring 240 fastened to the stem 234 of the valve pin 232 such that the valve pin 232 floats within its bore through the poppet 220. This floating configuration with an enlarged plug or lug end portion 236 accommodates for tolerance stacking of the nozzle switching valve 216 components. Further, an O-ring seal (not shown) may be installed between the chamfer of the enlarged plug portion 236 and the front portion 204 of the nozzle body 202 to provide a positive seal.
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[0027] The flow insert 500 may be made from a metal or a polymeric material or a composite, and may be 3D printed, as this component does not have to withstand or contain the applied fluid pressure exerted on the nozzle 200. That function is carried out by the nozzle head 202 itself into which the insert 500 is installed. Typically nozzles 200 are designed to handle fluid pressures in ranges of 10 k psi, 20 k psi and 40 k psi and more. The advantage of the flow insert 500 in accordance with the present disclosure is that it does not need to withstand such pressures. It can be made of a much softer, more pliable or even brittle material that is easy to manufacture, since it is constrained in the nozzle body 202.
[0028] Other arrangements of the insert 500 may be made. For example, the convergent portion 504 may be reduced or enlarged, depending on the flow characteristics desired. Similarly, the passages 506 and 508 may be shaped other than with straight as shown. Also, the passages 506 may be smaller in cross section than the passages 508. All such changes, alternatives and equivalents in accordance with the features and benefits described herein, are within the scope of the present disclosure. Such changes and alternatives may be introduced without departing from the spirit and broad scope of my invention as defined by the claims below and their equivalents.