Flow or Level Sensor/Switch System
20180348028 ยท 2018-12-06
Inventors
Cpc classification
H01H35/18
ELECTRICITY
H01H35/2671
ELECTRICITY
H01H35/40
ELECTRICITY
International classification
Abstract
A flow or level switch comprises a sensor/switch assembly which is adapted for mounting in connection with either a fitting having an offset defining a channel to detect fluid flow through an orifice into the channel or a tank having a ball float to detect the level of the ball float in the tank. A switch module comprises a control rod which reciprocates and activates a switch unit having a bi-positionable contact member. A follower, which may be in the form of an axle with an angularly fixed projection, engages the control rod to cause the contact member to move.
Claims
1. A sensor/switch assembly comprising: a fitting having an inlet and an outlet with an offset defining a channel and interiorly having a structure forming an annular orifice so that fluid can communicate from said inlet to said outlet through said orifice and channel; a switch module comprising: a controller partially received in said channel and having a shuttle engageable with said structure and displaceable therefrom and an intermediate collar; a mount assembly mountable to said offset and slidably receiving said controller for reciprocal movement therein; a spring assembly comprising a first spring exerting a first force between said shuttle and said collar and a second spring exerting a second force between said mount assembly and said collar, said first force being greater than said second force; a contact module defining a bi-positionable contact member contactable against a first contact or a second contact and having an actuator which is actuatable by a lever to move said contact member; a pivotal follower which engages said controller and is pivoted by the position of said controller to displace said lever; so that when fluid flows from said inlet through said orifice above a flow set point dynamic pressure, said contact member moves to a changed contact position and maintains said changed contact position until said flow pressure is reduced below said set point pressure.
2. The sensor/switch assembly of claim 1 wherein said depressible actuator is a pin.
3. The sensor/switch assembly of claim 1 wherein said lever engages a leaf member.
4. The sensor/switch assembly of claim 1 wherein said shuttle comprises a flange engageable with said structure and liftable therefrom.
5. The sensor/switch assembly of claim 1 wherein is a threaded cap secures said mount assembly to said offset.
6. The sensor/switch assembly of claim 1 wherein said controller is a control rod having a slot which receives said follower.
7. The sensor/switch assembly of claim 1 further comprising a base which seals against said offset and slidably receives said controller and further comprising a wiper seal disposed between said controller and mount assembly.
8. The sensor/switch assembly of claim 1 wherein said pivotal follower comprises an axle and a lever-like projection which is angularly fixed to said axle and received in a slot of said controller, said projection angularly fixed relative to said lever.
9. The sensor/switch assembly of claim 1 wherein said contact module generates an electrical output.
10. A sensor/switch assembly comprising: a tank having a ball float; a fitting mounted to said tank and defining a central bore with a base; a switch module comprising: a bracket assembly mounted to said base and engageable against said float; a control member slidably received in said bore and connectable to said bracket assembly; a mount assembly extending from said fitting slidably receiving said control member for reciprocal movement therein so that said control member extends therethrough; a switch unit sealingly mounted to said mount assembly comprising a bi-positionable contact member contactable against a first contact or a second contact and having an actuator which is actuatable to move said contact member from the first contact position to the second contact position; a pivotal follower which engages said control member and is pivoted by the position of said control member to displace said actuator; so that when the ball float changes position, said contact member moves from the first contact position to the second contact position.
11. The sensor/switch assembly of claim 10 wherein said bracket assembly is pivotal.
12. The sensor/switch assembly of claim 10 wherein said control member comprises an elongated rod which defines a slot which receives said follower.
13. The sensor/switch assembly of claim 10 wherein said actuator is a depressible pin.
14. The sensor/switch assembly of claim 10 wherein said actuator is actuated by a lever.
15. The sensor/switch assembly of claim 14 wherein said lever is pivoted by said follower and engages a leaf.
16. The sensor/switch assembly of claim 10 wherein said follower comprises an axle having a projection which is angularly fixed and is received in a slot of said control member and engages said control member.
17. The sensor/switch assembly of claim 10 wherein said switch unit generates an electrical output.
18. A sensor/switch assembly comprising: a fitting having an inlet and an outlet with an offset defining a channel and interiorly having a structure forming an annular orifice so that fluid can communicate from said inlet to said outlet through said orifice and channel; a switch module comprising: a controller partially received in said channel and having a shuttle which is displaceable from flow pressure through said orifice and a first and a second intermediate position; a mount assembly mountable to said offset and slidably receiving said controller for reciprocal movement therein; a spring assembly comprising a strong spring exerting a force between said shuttle and said first intermediate position and a weak spring exerting a force between said mount assembly and said second intermediate position wherein the strong spring force is greater than the weak spring force; a contact module defining a bi-positionable contact member contactable against a first contact or a second contact and having an actuator which is actuatable to move said contact member; a pivotal follower which engages said controller and is transformable by the position of said controller to actuate said actuator; so that when fluid flows from said inlet through said orifice above a flow set point dynamic pressure, said contact member moves to a changed contact position and an electrical output is transmitted.
19. The sensor/switch assembly of claim 1 wherein said actuator is a depressible pin which is displaced by a lever pivoted by said follower.
20. The sensor/switch assembly of claim 19 wherein a lever engages a leaf member to control the position of said pin.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0027] With reference to the drawings wherein like numerals represent like parts throughout the several figures, a flow sensor/switch assembly is generally designated by the numeral 10. The switch functions to change state and generate an electric signal in response to fluid flow. The flow sensor/switch assembly 10 has a compact form which is preferably on the order of a one inch by inch package and is adaptable for a wide variety of applications.
[0028] The flow sensor/switch assembly 10 is preferably employed in liquid level sensing applications for sending a signal by closing or opening a set of contacts when the sensor assembly is mounted at the point of indication at the side of a tank. Alternatively, the micro switch assembly can be modified slightly so the sensor is mounted at the top or bottom of the tank or sump, etc. or is mounted to partially extend into the tank.
[0029] The flow sensor/switch assembly 10 is illustrated in conjunction with a globe-style fitting 20 which may be manufactured of metal, although other non-metallic material such as plastic, glass and other materials are possible. The fitting 20 has an inlet and an outlet 22 and 24, respectively, and defines a generally linear flow path 25 therethrough with a transverse inner annular orifice 26. An upper perpendicular offset branch 28 receives the flow sensor/switch assembly 10 which is secured by a threaded cap 30.
[0030] The flow sensor/switch assembly 10 comprises an annular base 40 which defines an annular recess 42. The recess receives an O-ring 44 which seals against the interior of the offset branch. A support bonnet 46 of enlarged diameter has a stepped configuration. The base and the stepped disk define a central bore 48 for receiving an axially displaceable control rod 50. The control rod fixedly mounts an intermediate collar 52. A light duty spring 54 engages the underside of the annular base 40 and the collar 52.
[0031] The lower end of the control rod 50 mounts a shuttle 60. The shuttle may be secured by a grip ring 61. The shuttle 60 comprises a head 62 of enlarged diameter which forms an optional lip or flange stop against upper edges of the annular orifice 26. The shuttle essentially senses the fluid flow. A heavy duty spring 64 is disposed between the collar 52 and the top 66 of the shuttle. In the
[0032] In a modified embodiment illustrated in
[0033] With reference to
[0034] With reference to
[0035] As best illustrated in
[0036] When flow continues to increase and dynamic pressure continues to increase above the set point, such as illustrated in
[0037] Upon further increase of flow, control rod 50 has made positive contact with end of blind hole 80 (
[0038] It will be appreciated that the operation of the flow sensor/switch assembly 10 is essentially mechanical in nature and requires neither magnetic components nor a magnetic flux for operation. When the flow descends to a set point or below for operation or the no-flow state, the control rod 50 descends (or moves inwardly) so that the switch lever 78 and leaf 79 resume the
[0039] It should be appreciated that the contacts and circuitry may be configured so that either a signal may be transmitted when there is no flow or a signal may be transmitted when there is flow at the set point or above.
[0040] A second embodiment of a level sensor/switch assembly is generally designated by the numeral 100 as illustrated in
[0041] The control rod 150 reciprocates in accordance with the level in the tank as indicated by the position of the ball float 104. A pivotable pin control axle or axle 170 which is substantially identical in function and form to control axle 70 is disposed in a head 172 and secured by screws 173. The lower end of the head is sealed against the end of the fitting by a sealing ring 175. The pin control axle 170 includes an angularly fixed lever 176 which is engaged into a slot on top of the control rod 150 and an angularly fixed offset lever 178.
[0042] A switch assembly 180 is disposed on the head and includes a bi-positional contact member 181 which engages against contact 182 or contact 183 and functions in a similar manner to switch assembly 80 (
[0043] As best illustrated in
[0044] With reference to
[0045] It may be that the change of level in the tank produces waves or ripples which cause the switch assembly 100 to cycle on and off and produce a hysteresis effect between the contacts of the micro switch. To remedy such a situation, it is possible to install an open ended tube (not illustrated) which is placed to extend past the top and the bottom of the float to minimize any waves or ripples surrounding the float. The tube has a slot for the rod 156. It should be appreciated that the switch assembly 100 may also be mounted at the top or bottom or at either side of the tank as required.
[0046] Alternate embodiments of the housing for the fitting may be formed from blocks or other configurations and of various materials for receiving the micro switch. The contact logic may also assume various forms and configurations and is preferably spaced above the offset branch end or the exterior tank and secured by a threaded retainer cap.
[0047] 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.