Orifice Module for Flow Switch System
20170276251 ยท 2017-09-28
Inventors
Cpc classification
F15D1/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01P13/00
PHYSICS
H01H35/24
ELECTRICITY
F16K37/0033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15D1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15D1/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17D3/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An orifice module for a flow switch system has a cylindrical body which is symmetric about a central axis which defines a metering orifice. An axial central hub holds the stem. The hub connects to the cylindrical body by at least three support spokes which forms a plurality of flow channels angularly disposed about the central axis. The module interacts with the flow switch to enhance the function of the flow switch and also reduces turbulence in the fluid flow system.
Claims
1. A flow switch system comprising: a generally T-shaped housing defining a fluid flow path from an inlet to an outlet and having an extension; a flow switch assembly mounted in said extension and comprising a shuttle displaceable on a stem and exposed to flow from said inlet toward said outlet, and generating an electrical signal in response to fluid flow pressure; and an orifice module disposed in said housing comprising a cylindrical body symmetric about a central axis defining a metering orifice and mounting an axial central hub receiving said stem, said hub connecting to said cylindrical body by at least three support spokes extending radially from said hub and defining a plurality of flow channels angularly disposed about said central axis.
2. The flow switch system of claim 1 wherein there are three spokes.
3. The flow switch system of claim 1 wherein the spokes are equiangularly spaced.
4. The flow switch system of claim 1 wherein the cylindrical body has a collar.
5. The flow switch system of claim 1 wherein the spokes have generally V-shaped diverter structure.
6. A flow module for a flow switch system comprising: a generally outer cylindrical sleeve defining a central axis; an inner hub defining a cylindrical opening coaxial with said outer sleeve; and a plurality of spokes connecting said hub and outer sleeve and defining a plurality of flow channels angularly disposed about said axis and defined between segments of said inner hub and outer sleeve.
7. The flow module of claim 6 wherein there are three spokes.
8. The flow module of claim 6 wherein said outer sleeve is threaded.
9. The flow module of claim 6 wherein said outer sleeve has a hex surface.
10. The flow module of claim 6 wherein said outer sleeve has opposed threaded portions at ends thereof, said threaded portions having threads selected from the group consisting of NTP threads, straight threads and SAE threads.
11. The flow module of claim 6 wherein the spokes are equiangularly spaced about the central axis.
12. A flow switch system comprising: a generally T-shaped housing defining a fluid flow path from an inlet to an outlet and having an extension; a flow switch assembly mounted in said extension and comprising a shuttle displaceable on a stem and exposed to flow from said inlet toward said outlet, and generating an electrical signal in response to fluid flow pressure; and an orifice module disposed in said housing comprising a cylindrical body symmetric about a central axis defining a metering orifice and defining a central axial sleeve, said hub connecting to said central body, said hub connecting to said cylindrical body by at least three support spokes extending radially from said hub and defining a plurality of flow channels angularly disposed about said central axis.
13. The flow switch system of claim 12 wherein there are three spokes.
14. The flow switch system of claim 12 wherein each of the spokes has a generally V-shaped diverter structure.
15. The flow switch system of claim 12 wherein said spokes are equiangularly spaced.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0017] With reference to the drawings wherein like numerals represent like parts throughout, the principal portion of a representative fuel switch system, for which the orifice module of the present disclosure has particular applicability, is generally designated by the numeral 10 in
[0018] With reference to
[0019] The spokes 80 separate the interior of the cylindrical body into three arcuate shaped axial channels 90. The channels 90 function to improve the flow through the module, as best illustrated in
[0020] With reference to
[0021] The flow switch assembly 12 is mounted by a bonnet assembly 28 and sealed with the receiver 26 of the housing 20. The flow switch includes a stem 30 which mounts a displaceable shuttle 32 which axially reciprocates in and out of a metering orifice 68 in response to fluid pressure. The stem 30 also mounts an annular magnet 34 which is axially biased by a spring 36 and is carried by the shuttle 32. The shuttle 32 is thus also axially biased by the spring 36. A reed switch 40 fixedly positioned on the stem 30 interacts with the displaceable magnet 34 to generate electrical signals which are transmitted via electrical leads 46 extending through the top of the bonnet assembly. The signals typically actuate a stable electrical outlet to operate a pump (not illustrated).
[0022] The module 50 is inserted into the housing and retained in a fixed position against an interior shoulder. The upper inner cylindrical portion of the module interiorly defines the metering orifice 68 of the switch shuttle 32. The central hub 70 of the module functions as a central holder for receiving the end of the stem 30. The hub 70 functions to essentially align and hold the stem 30 generally axially (concentrically) to thereby prevent the shuttle 32 from engaging against the sides of the metering orifice.
[0023] In addition, the spokes 80, which connect the hub 70 to the cylindrical wall of the module, define three metering channels 90. The distributor flow channels 90 function to distribute the flow which is received in the inflow inlet end 22 of the housing. In the event that, for example, the inlet flow end is disposed adjacent an elbow connection which ordinarily may produce a somewhat turbulent flow, the spokes 80 and distributor channels 90 function to distribute the flow and eliminate a significant portion of the turbulence to provide a substantially uniform laminar flow which impinges the flow switch and in particular the shuttle 32. The fluid flow characteristics provided by module 30 are illustrated in
[0024] The module 50 may be secured in place by adhesive, fasteners, a threaded engagement, a force fit engagement or other securement means.
[0025] The frontal (upstream) configuration of the spokes may present a V-shaped fluid diverting structure 82 to the fluid, a flat interface with the fluid or other geometric configurations.
[0026] The module 50 may be formed from PVC material, metals, brass, steel and other rigid materials.
[0027] For a fluid switch installation which involves metal, steel or brass fittings, a module 150 may be formed from brass or other metals which are threaded into the housing and fluid conduits, as best illustrated in
[0028] As best illustrated in the end view of
[0029] It will be appreciated that the module functions to transform a turbulent flow into a more uniform laminar flow such as, for example, may be required without a significant linear pipe upstream from the flow switch. In addition, for some embodiments, the module ensures the concentric position of the stem which may result from creep of the materials over time.
[0030] While preferred embodiments of the foregoing have been set forth for purposes of illustration, the foregoing description should not be deemed a limitation of the invention herein. Accordingly, various modifications, adaptations and alternatives may occur to one skilled in the art without departing from the spirit and the scope of the present invention.