Variable orientation fluid level sensor with optional slosh guard
RE046944 ยท 2018-07-10
Assignee
Inventors
Cpc classification
G01F23/32
PHYSICS
Y10T137/7358
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
G01F23/00
PHYSICS
F16K31/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01F23/32
PHYSICS
G01F23/56
PHYSICS
Abstract
A fluid level sensor assembly comprises a sensor mounted to a sensor housing. A carrier extends from the sensor housing in an angled orientation. A float is located within the carrier such that the float may move along a longitudinal axis of the carrier. A fragment is secured to the float, and the sensor detects a location of the fragment as the float moves within the carrier.
Claims
1. A fluid level sensor assembly comprising: a sensor .[.mounted.]. .Iadd.coupled .Iaddend.to a sensor housing; a carrier extending from the sensor housing in an angled orientation; a float located within the carrier such that the float may move along a longitudinal axis of the carrier; a fragment secured to .Iadd.one end of .Iaddend.the float, wherein the sensor .[.detects a location of.]. .Iadd.is activated by the presence of .Iaddend.the fragment .Iadd.within a field of the sensor.Iaddend.; and wherein the float has .[.a barrel.]. .Iadd.an oblong .Iaddend.shape and .[.the fragment is secured to one end of the float, and.]. wherein the float is assembled within the carrier such that the fragment end is closest to the sensor, and wherein the width of the carrier prevents the float from rotating traverse to the longitudinal axis of the carrier.
2. The fluid level sensor assembly of claim 1, wherein the carrier further comprises a plurality of fingers extending from the sensor housing and parallel to the longitudinal axis of the carrier, and wherein the fingers are spaced from one another sufficiently to allow the float to be assembled within the carrier such that the longer axis of the .[.barrel shaped.]. float is parallel to the longitudinal axis of the carrier.
3. The fluid level sensor assembly of claim 2, wherein the float further comprises a plurality of grooves spaced about the circumference of the float and extending parallel to the longer axis of the float, and when the float is assembled within the carrier the plurality of grooves may be aligned with the plurality of fingers, such that the finger will prevent the float from spinning about the longitudinal axis of the carrier.
4. The fluid level sensor assembly of claim 1, wherein the float has a .[.round.]. .Iadd.barrel .Iaddend.shape with one of a magnetic core and a ferrous core.
5. The fluid level sensor assembly of claim 1, wherein the carrier has a 45 degree orientation with respect to the sensor housing.
6. The fluid level sensor assembly of claim 1, further comprising a connector secured to the sensor housing on an opposing side from the carrier, wherein the connector has a connector pin electrically connected to the sensor, and a flanged backing to secure the connector to the sensor housing.
7. The fluid level sensor assembly of claim 1, wherein fluid level sensor assembly is mountable to one of: a reservoir having a side mounting location orientation and a reservoir having a bottom mounting location orientation.
8. The fluid level sensor assembly of claim 1, wherein the sensor, carrier and float are secured to a washer reservoir for a vehicle washer system.
9. The fluid level sensor assembly of claim 1, wherein the fragment is a magnetic material and the sensor is a reed switch in perpendicular orientation to the fragment.
10. The fluid level sensor assembly of claim 1, wherein the fragment is one of a magnetic material and a ferrous material.
11. The fluid level sensor assembly of claim 1, further comprising a slosh guard secured to the carrier in a universal manner for the fluid level sensor.
12. A fluid level sensor assembly comprising: a reservoir for a vehicle washer system; a reed switch .[.mounted.]. .Iadd.coupled .Iaddend.to a sensor housing .[.and secured to the reservoir.].; a carrier extending from the sensor housing in an angled orientation wherein the reservoir has one of a side mounting location and a bottom mounting location for the carrier; a float with .[.a barrel.]. .Iadd.an oblong .Iaddend.shape located within the carrier such that the float may move along a longitudinal axis of the carrier and is prevented from rotating transverse to the longitudinal axis of the carrier; a magnetic fragment secured at one .Iadd.end .Iaddend.of the float, wherein the float is assembled within the carrier such that the magnetic fragment is closest to the reed switch wherein the reed switch .[.detects a location.]. .Iadd.is activated by the presence .Iaddend.of the magnetic .Iadd.fragment within a magnetic field of the reed switch.Iaddend.; and wherein the carrier further comprises a plurality of fingers extending from the sensor housing and parallel to the longitudinal axis of the carrier, and wherein the fingers are spaced from one another sufficiently to allow the float to be assembled within the carrier such that the longer axis of the .[.barrel shaped.]. float is parallel to the longitudinal axis of the carrier, such that the finger prevents the float from rotating traverse to the longitudinal axis of the carrier.
13. The fluid level sensor assembly of claim 12, wherein the float further comprises a plurality of grooves spaced about the circumference of the float and extending parallel to the longer axis of the float, and when the float is assembled within the carrier the plurality of grooves may be aligned with the plurality of fingers, such that the finger will prevent the float from spinning about the longitudinal axis of the carrier.
14. The fluid level sensor assembly of claim 12, wherein the carrier has a 45 degree orientation with respect to the sensor housing.
15. The fluid level sensor assembly of claim 12, further comprising a connector secured to the sensor housing on an opposing side from the carrier, wherein the connector has a connector pin electrically connected to the sensor, and a flanged backing to secure the connector to the sensor housing.
16. The fluid level sensor assembly of claim 12, wherein fluid level sensor assembly is mountable to one of: a reservoir having a side mounting location orientation and a reservoir having a bottom mounting location orientation.
17. The fluid level sensor assembly of claim 12, further comprising a slosh guard secured to the carrier in a universal manner for the fluid level sensor.
18. A washer reservoir and fluid level sensor assembly comprising: a fluid level sensor comprising; a sensor .[.mounted.]. .Iadd.coupled .Iaddend.to a sensor housing; a carrier extending from the sensor housing in an angled orientation; a float located within the carrier such that the float may move along a longitudinal axis of the carrier; a fragment secured to .Iadd.one end of .Iaddend.the float, wherein the sensor .[.detects a location of.]. .Iadd.is activated by the presence .Iaddend.of the fragment .Iadd.within a field of the sensor.Iaddend., wherein the float has .[.a barrel.]. .Iadd.an oblong .Iaddend.shape .[.and the fragment is secured to the one end of the float,.]. and wherein the float is assembled within the carrier such that the fragment end is closest to the sensor, and wherein the width of the carrier prevents the float from rotating traverse to the longitudinal axis of the carrier; a connector secured to the sensor housing on an opposing side from the carrier, wherein the connector has a connector pin electrically connected to the sensor, and a flanged backing to secure the connector to the sensor housing; and a grommet assembled on the exterior of the sensor housing; and a reservoir for a vehicle washer system having one of a side mounting location and a bottom mounting location, wherein the fluid level sensor is assembled at the mounting location such that the grommet fluidly seals the fluid level sensor within the reservoir and the connector is accessible to the exterior of the washer reservoir.
19. The washer reservoir and fluid level sensor assembly of claim 18, wherein the carrier further comprises a plurality of fingers extending from the sensor housing and parallel to the longitudinal axis of the carrier, and wherein the fingers are spaced from one another sufficiently to allow the float to be assembled within the carrier such that the longer axis of the .[.barrel shaped.]. float is parallel to the longitudinal axis of the carrier.
20. The washer reservoir and fluid level sensor assembly of claim 19, wherein the float further comprises a plurality of grooves spaced about the circumference of the float and extending parallel to the longer axis of the float, and when the float is assembled within the carrier the plurality of grooves may be aligned with the plurality of fingers, such that the finger will prevent the float from spinning about the longitudinal axis of the carrier.
21. The washer reservoir and fluid level sensor assembly of claim 18, wherein the carrier has a 45 degree orientation with respect to the sensor housing.
22. The washer reservoir and fluid level sensor assembly of claim 18, wherein the connector further comprises a socket extending from the flanged backing and surrounding the connecting pin, and wherein the socket and connector pin each have a specific shape based upon the model of vehicle the washer system is for.
23. The washer reservoir and fluid level sensor assembly of claim 18, wherein the float has a .[.round.]. .Iadd.barrel .Iaddend.shape with one of a magnetic core and a ferrous core.
24. The washer reservoir and fluid level sensor assembly of claim 18, wherein the fragment is a magnetic material and the sensor is a reed switch in perpendicular orientation to the fragment.
25. The washer reservoir and fluid level sensor assembly of claim 18, wherein the fragment is one of a magnetic material and a ferrous material.
26. The washer reservoir and fluid level sensor assembly of claim 18, further comprising a slosh guard secured to the carrier in a universal manner for the fluid level sensor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present disclosure will become more fully understood from the detailed description and the accompanying drawings, wherein:
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DETAILED DESCRIPTION
(11) The following description is merely exemplary in nature and is in no way intended to limit the disclosure, its application, or uses. For purposes of clarity, the same reference numbers will be used in the drawings to identify similar elements.
(12) A connector 20 extends from the sensor housing 14 on an opposing side as the carrier 16. The connector 20 is used to electrically connect the sensor 12 to an external electronic control unit (ECU) to provide a warning indication in the case of low fluid level detected by the sensor 12. For example, when the fluid level sensor assembly 10 is used in a washer reservoir for a vehicle a warning indicator may be alerted with the sensor 12 detects a low fluid level. A grommet 22 (shown in
(13) The sensor 12 may be a hall effect sensor or a reed switch and the float 18 includes a fragment 26 that is magnetic. The reed switch sensor 12 is mounted to have a perpendicular orientation to the magnetic fragment 26 when the fluid level sensor 10 is assembled. The sensor 12 detects vertical movement of the magnetic fragment 26 relative to the stationary position of the sensor 12 at the sensor housing 14. The carrier 16 has an angled orientation with respect to the sensor 12. In the embodiment shown, the carrier 16 has a 45 degree angle with respect to the sensor 12 and the sensor housing 14. The angled orientation between the carrier 16 and the sensor 12 allows for multiple mounting orientations of the fluid level sensor assembly 10 without requiring use of a different sensor 12, as will described in further detail below. The float 18 must be of sufficient size to maintain buoyancy in the fluid while carrying the weight of the fragment 26.
(14) Referring to
(15) Therefore, the float 18 has a generally barrel shape with the fragment 26 located near one end. In addition to preventing transverse rotation of the float 18 about the longitudinal axis 19 of the carrier 16 it may also be desirable to prevent the float 18 from spinning about the longitudinal axis 19 within the carrier 16. The barrel float 18 may define grooves 34 spaced about the circumference of the float 18 running along the longer axis 30. When the float 18 is assembled within the carrier 16 the grooves 34 may be aligned with the fingers 32. Thus, the fingers 32 will prevent the float 18 from spinning about the longitudinal axis 19 of the carrier. Sloshing fluid within the reservoir 24, 124 (shown in
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(18) The type and style of the connector pins 42 and socket 40 may be formed to provide the specific style of connection required for connecting the fluid level sensor assembly 10 to the plug and ECU (not shown) style that are being used. The connector pin 42 illustrated is a two-prong connector pin 42 and may be formed in the desired shape and number of prongs, e.g. by die stamping. However, the flanged backing 38 allows for a common manner of coupling the connector pin 42 to the sensor 12 for the fluid level sensor assembly 10. In this manner only the style of connector pin 42 and socket 40 are required to be manufactured for a specific use, such as a specific vehicle model, and the remaining components of the fluid level sensor assembly 10 can be interchangeably manufactured.
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(21) Alternatively the sensor 12 may be a hall effect, Magnasphere or similar sensor to detect a ferrous material in the float 18. That is, the fragment 26 may be made of ferrous material and the sensor 12 may be able to detect ferrous material, such as a Magnasphere sensor. This will allow for a reduction in the size of the float 18 and a robust design of the sensor 12.
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(23) A connector 120 extends from the sensor housing 114 on an opposing side as the carrier 116. The connector 20 is used to electrically connect the sensor 112 to an external electronic control unit (ECU) to provide a warning indication in the case of low fluid level detected by the sensor 112. A grommet 122 (shown in
(24) The sensor 112 is a hall effect or a reed switch and the float 118 includes a fragment 126 that has magnetic material. The sensor 112 detects vertical movement of the fragment 126 relative to the stationary position of the sensor 112 at the sensor housing 114. The carrier 116 has an angled orientation with respect to the sensor 112. In the embodiment shown, the carrier 116 has a 45 degree angle with respect to the sensor 112 and the sensor housing 114. The angled orientation between the carrier 116 and the sensor 112 allows for multiple mounting orientations of the fluid level sensor assembly 110 within a reservoir 24, 124, without requiring use of a different sensor 112, as will described in further detail below.
(25) The float 118 is a round ball shape, having the fragment 126 (shown in phantom) located at the core of the float 118. The float 118 moves along the longitudinal axis 119 of the carrier 116 and is retained by a number of fingers 132. The fingers 132 are parallel to the longitudinal axis 119 of the carrier 116 and spaced apart from one another sufficiently to accommodate the float 118. This arrangement allows the float 18 to slide freely along the longitudinal axis 119 of the carrier 116. The float 118 may spin and rotate within the carrier 16. Thus, the fragment 126 is at the core of the float 118, such that the spinning and rotating of the float 118 within the carrier 116 does not affect the sensor 112 reading. The float 118 should remain free to move up and down with the fluid level in the reservoir 24, 124 to provide accurate fluid level sensing.
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(28) The type and style of the connector pins 142 and socket 140 may be formed to provide the specific style of connection required for connecting the fluid level sensor assembly 110 to the plug and ECU (not shown) style that are being used. The connector pin 42 illustrated is a two-prong connector pin 142 may be formed in the desired shape and number of prongs, e.g. by die stamping. However, the flanged backing 138 allows for a common manner of coupling the connector pin 142 to the sensor 112 for the fluid level sensor assembly 110. In this manner only the style of connector pin 142 and socket 140 are required to be manufactured for a specific use and the remaining components of the fluid level sensor assembly 110 can be interchangeably manufactured.
(29) Referring back to
(30) The fluid level sensor assembly 110 operates in the same manner as described above when in a bottom oriented mounting location 46. Thus, the fluid level sensor assembly 110 operates in the same manner whether the reservoir 24, 124 has a side oriented mounting location 44 or a bottom oriented mounting location 46.
(31) Alternatively the sensor 112 may be a hall effect, Magnasphere or similar sensor to detect a ferrous material in the float 118. That is the fragment 26 at the core may be of ferrous material and the sensor 112 is the type that may detect the ferrous material, such as a Magnasphere sensor. This will allow for a reduction in the size of the float 118 and a robust design of the sensor 112.
(32) The fluid level sensor assembly 10, 110 may be used in a number of applications. It would be useful in windshield washer bottles, antifreeze overflow containers, brake fluid bottles, transmission fluid bottles, gas tank level, and many more. It could also have many non-automotive applications where fluid level must be read. The above description is related to fluid level sensor and reservoir assembly 43, 44 for a washer bottle fluid level detection for a vehicle but is not limited to this usage.
(33) While the best modes for carrying out the invention have been described in detail the true scope of the disclosure should not be so limited, since those familiar with the art to which this invention relates will recognize various alternative designs and embodiments for practicing the invention within the scope of the appended claims.