WATER SOFTENER SALT MONITORING SYSTEM
20220113178 · 2022-04-14
Inventors
- Bill LATHOURIS (Arlington Heights, IL, US)
- Eugene BOGLIO (Glendale Heights, IL, US)
- Doug ANDERSON (St. Charles, IL, US)
- Tedd SCHNEIDEWEND (Glen Ellyn, IL, US)
Cpc classification
C02F2303/14
CHEMISTRY; METALLURGY
C02F2209/005
CHEMISTRY; METALLURGY
B01J49/85
PERFORMING OPERATIONS; TRANSPORTING
C02F2209/008
CHEMISTRY; METALLURGY
G08B21/182
PHYSICS
C02F2209/006
CHEMISTRY; METALLURGY
C02F5/00
CHEMISTRY; METALLURGY
International classification
Abstract
A water softener salt monitoring system includes a brine tank configured for retaining a quantity of salt, a quantity of water and having a bottom, a sensor secured to the brine tank and constructed and arranged for sending a signal to the bottom, the sensor including a receiver configured for receiving a reflected signal off of at least one of the quantity of salt, the quantity of water and the bottom, and a controller connected to the sensor and programmed to compare the reflected signals with preset values, and for generating an alarm signal upon receipt of deviations from the preset values.
Claims
1. A water softener salt monitoring system, comprising: a brine tank configured for retaining a quantity of salt, a quantity of water and having a bottom; a sensor secured to the brine tank and constructed and arranged for sending a signal to said bottom, said sensor including a receiver configured for receiving a reflected signal off of at least one of the quantity of salt, the quantity of water and the bottom; and a controller connected to said sensor and programmed to compare said reflected signals with preset values, and for generating an alarm signal upon receipt of deviations from said preset values.
2. The salt monitoring system of claim 1, wherein said brine tank includes a brine well disposed within said tank, said sensor being attached to said brine well.
3. The salt monitoring system of claim 2, wherein said sensor is mounted approximately 0.5-5 inches from said brine well.
4. The salt monitoring system of claim 2, wherein said sensor generates a beam focused on a central region of said bottom.
5. The salt monitoring system of claim 1, wherein said sensor is a Time of Flight sensor.
6. The salt monitoring system of claim 1, wherein said sensor is enclosed in a protective case including a lens cap covering a signal transmitter of said sensor.
7. The salt monitoring system of claim 1, wherein said controller includes a programmable processor, a user display, at least one user input, and at least one speaker.
8. The salt monitoring system of claim 1, further including a brine plate disposed above said bottom of said brine tank.
9. The salt monitoring system of claim 1, wherein said sensor is configured for generating a signal each time brine draw ends or some time or before brine fill, and said controller is configured so that upon multiple signals are received indicating the same salt level, an alarm signal is generated.
10. The salt monitoring system of claim 1, wherein said sensor is configured for generating a signal at a regular interval, and said controller is configured so that upon said received signal depicting a slower than average decline of salt level, indicating low brine dosage, an alarm signal is generated.
11. The salt monitoring system of claim 1, wherein said sensor is configured for generating a signal at a regular interval, and said controller is configured so that upon said received signals depicting an increased salt or water level, an alarm signal is generated.
12. The salt monitoring system of claim 1, wherein said sensor is configured for generating a signal at a regular interval, and said controller is configured so that upon said received signals depicting an increased rate of salt usage, reflecting high brine dosage, a leak to the brine tank or overfilling of the brine tank, an alarm signal is generated.
13. The salt monitoring system of claim 1, wherein said sensor is configured for generating a signal at a regular interval, and said controller is configured to that upon said received signals indicating a first phase of regular salt consumption, followed by a second phase of rising water consumption, indicating a leak to said brine tank, an alarm signal is generated.
14. A water softener salt monitoring system, comprising: a brine tank configured for retaining a quantity of salt, a quantity of water and having a bottom; a sensor secured to the brine tank and constructed and arranged for sending a signal to said bottom, said sensor including a receiver configured for receiving a reflected signal off of at least one of the quantity of salt, the quantity of water and the bottom; a controller connected to said sensor and programmed to compare said reflected signals with preset values, and for generating an alarm signal upon receipt of deviations from said preset values; said brine tank includes a brine well disposed within said tank, said sensor being attached to said brine well at an angular orientation so that said sensor generates a beam focused on a central region of said bottom.
15. The salt monitoring system of claim 14, wherein said sensor is configured for generating a signal at a regular interval, and said controller is configured to that upon said received signals indicating that a measured salt level varies from an expected value by more than a threshold amount, corrective procedures are initiated.
16. The salt monitoring system of claim 14 wherein said brine tank includes a brine well disposed within said tank, said sensor being attached to said brine well.
17. The salt monitoring system of claim 14, wherein said controller includes a programmable processor, a user display, at least one user input, and at least one speaker.
18. The salt monitoring system of claim 14, wherein said sensor is configured for generating a signal each time brine draw ends or some time or before brine fill, and said controller is configured so that upon multiple signals are received indicating the same salt level, an alarm signal is generated.
19. The salt monitoring system of claim 14, wherein said sensor is configured for generating a signal at a regular interval, and said controller is configured so that upon said received signal depicting one of a slower than average decline of salt level, indicating low brine dosage, an increased salt or water level, and an increased rate of salt usage, reflecting high brine dosage, a leak to the brine tank or overfilling of the brine tank, an alarm signal is generated.
20. The salt monitoring system of claim 14, wherein said sensor is configured for generating a signal at a regular interval, and said controller is configured to that upon said received signals indicating a first phase of regular salt consumption, followed by a second phase of rising water consumption, indicating a leak to said brine tank, an alarm signal is generated.
21. A monitoring system is provided for use in a tank configured to house a volume of material, comprising: a sensor is secured within the tank to avoid contact with the volume of material and is configured to periodically gauge a level of the material within the tank by transmitting a signal to the volume of material; and a receiver associated with said sensor is connected to a controller programmed to measure the received signal, taking the form of a level reading and compare the most recent level reading with at least one previous level reading, and to take corrective action when the most recent level readings differs from an expected value.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0033] Referring now to
[0034] More specifically, also as is well known in the art, a control valve (not shown) on the softener treatment tank is configured for periodically scheduling a regeneration or refreshing of the treatment media to replace calcium and magnesium “hard” ions with salt-derived sodium “soft” ions. The hard ions are flushed to drain. Part of the regeneration phase includes a “brine draw” segment, where brine from the brine tank 12 is drawn into the treatment tank. As described above, one operational problem of water softeners is that the salt stored in the brine tank for forming brine often forms salt “bridges” where an upper layer or portion of the salt crystallizes and hardens, while salt near the bottom 16 of the tank is used to make the brine and creates a cavity. As such, the amount of salt in the brine tank 12 is misleading to the user.
[0035] Included on the brine well is a lower end 22 contacting the bottom 16 or an optional brine plate or floor 24 of the brine tank 12, the floor being suspended from the bottom 16 by feet or standoffs 26. As is customary in the art, the floor 24 is preferably perforated to permit the flow of liquid to and from the brine tank bottom 16 to the rest of the interior space 18, and also into the brine well 20. A supply of salt 28 is maintained upon the floor 24, and the brine tank interior space 18 typically retains a level of water 30 that is mixed with the salt to form brine. Proper operation of the softener requires that the user maintain the level of salt 28 in the brine tank 12.
[0036] Referring now to
[0037] Referring now to
[0038] More specifically, the ToF sensor 40 is constructed and arranged in the brine tank 12 to direct the sensor beam to a central region 46 (
[0039] Referring now to
[0040] Referring now to
[0041] Another feature of the processor 66 is that deviations from the expected rates of decrease of the salt height over time are also programmed for the generation of alarm signals. In the present context, “alarm signals” will be understood to mean visual alarms indicated on a display 68 associated with the controller 62, audible alarms broadcast through a speaker 70 associated with the controller 62, as well as remotely directed signals 72 sent wirelessly or through modems or the like, to a service provider and/or the manufacturer of the system 10. Also included on the controller 62 is at least one user input 74 such as a button, knob, touch pad or the like enabling the user or a service technician to set desired parameters of the system 10 such as the size of the brine tank 12, type of salt to be used, model of softener valve, and other such information that might impact the rate of salt usage in the brine tank. It is contemplated that the controller 62 is optionally attached to, associated with, or remote from, the brine tank 12.
[0042] Referring now to
[0043] Referring now to
[0044] Referring now to
[0045] Referring now to
[0046] Referring now to
[0047] Referring now to
[0048] It is contemplated that the above-described deviations are pre-programmed into the processor 66 so that malfunction-appropriate alarms are shown on the display 68 or transmitted at 72. Also, while a preferred schedule for transmitting signals from the sensor 40 is at or after the brine draw, other intervals are contemplated, including but not limited to clock-based intervals by minute, hour, etc. Further, the rate of salt depletion in some cases is due to the type of salt used, which is a parameter that is optionally entered into the controller by the user input 74 at the beginning of operation. Another indication of erratic salt depletion rates is that the brine tank 12 needs cleaning
[0049] While a particular embodiment of the present water softener salt monitoring system has been described herein, it will be appreciated by those skilled in the art that changes and modifications may be made thereto without departing from the invention in its broader aspects and as set forth in the following claims.