Apparatus and methods for remotely monitoring water utilization
10506307 · 2019-12-10
Assignee
Inventors
- Eric Ryan Adler (Sisters, OR, US)
- Jeffrey Ryan Hufford (Santa Rosa, CA, US)
- James Joseph Fazio (Carpinteria, CA, US)
Cpc classification
H04Q2209/43
ELECTRICITY
H04Q2209/60
ELECTRICITY
H04Q9/00
ELECTRICITY
Y04S20/30
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
H04Q2209/80
ELECTRICITY
Y02B90/20
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
H04Q9/00
ELECTRICITY
Abstract
An apparatus and method for remotely monitoring water usage in real time utilizes a sensor attached to a water meter. The sensor monitors water flowing through the meter by analyzing the water meter's magnetic coupling and processes the data to correlate it to real time flow rates. Data is transmitted through a base unit to remote storage and consumers may access the data with application software installed on electronics such as smartphones and tablets. Four components are combined to allow the real time monitoring of water utilization.
Claims
1. A method of monitoring water utilization through a water meter in real time comprising steps of: a. obtaining identification data for a water meter that will be monitored, the identification data comprising manufacturer and model of the water meter; b. installing, on the water meter, a sensor capable of detecting a gradient in a magnetic field as water flows through the water meter; c. providing a database containing water meter characterizing data for the water meter that is being monitored; d. installing, in a residence associated with the water meter, a base unit having a 915 MHz antenna adapted for receiving water utilization data from the sensor; e. pairing the base unit to a wireless access point in the residence to establish a WiFi connection between the base unit and the wireless access point; f. initiating a flow of water through the water meter to thereby cause the sensor to generate water utilization data and transmitting the water utilization data using RF signals at about 915 MHz from the sensor to the base unit; g. transmitting the water utilization data from the base unit to the wireless access point using the WiFi connection; h. transmitting the water utilization data from the wireless access point to the database and correlating the identification data for the water meter with the water meter characterizing data in the database to calculate, without calibration, a volume of water flowing through the water meter.
2. The method according 1 in which the water meter characterizing data comprises nutations of the water meter that is being monitored.
3. The method according to claim 2 including conditioning the water utilization data so that it correlates to volumetric flow, accessing the water utilization data with an electronic device and presenting the water utilization data in a format correlating to real time water flow through the water meter being monitored.
4. The method according to claim 3 wherein the water utilization data is characterized by the water meter characterizing data for the water meter that is being monitored.
5. The method according to claim 4 including characterizing the water utilization data based on a threshold value.
6. The method according to claim 1 including detecting the gradient in the magnetic field and determining high and low values of the magnetic field to determine a threshold value.
7. The method according to claim 6 including determining the threshold value as a percentage of the high and low values of the magnetic field.
8. The method according to claim 3, wherein presenting the water utilization data includes displaying the water utilization data on the electronic device as a function of water utilization over time.
9. The method according to claim 3 wherein presenting the water utilization data includes detecting and displaying unexpected water utilization data as a function of time.
10. The method according to claim 9 including providing alerts in response to detection of unexpected water utilization data.
11. A method of monitoring water utilization through a water meter in real time comprising steps of: a. obtaining identification data for a water meter, the identification data including at least manufacturer and model of the water meter; b. installing, on the water meter, a sensor capable of detecting a gradient in a magnetic field as water flows through the water meter; c. providing a database containing water meter characterizing data for the water meter; d. installing, in a residence associated with the water meter, a base unit having an antenna adapted for receiving water utilization data from the sensor via radio frequency (RF) transmission; e. pairing the base unit to a wireless access point in the residence to establish a WiFi connection between the base unit and the wireless access point; f. initiating a flow of water through the water meter to thereby cause the sensor to generate water utilization data and transmitting the water utilization data using RF signals transmitted from the sensor to the base unit; g. transmitting the water utilization data from the base unit to the wireless access point using the WiFi connection; h. transmitting the water utilization data from the wireless access point to the database and correlating the identification data for the water meter with the water meter characterizing data in the database to calculate, without calibration, a volume of water flowing through the water meter.
12. The method according 11 in which the water meter characterizing data comprises nutations of the water meter.
13. The method according to claim 12 including conditioning the water utilization data so that it correlates to volumetric flow, accessing the water utilization data with an electronic device and presenting the water utilization data in a format correlating to real time water flow through the water meter being monitored.
14. The method according to claim 13 wherein the water utilization data is characterized by the water meter characterizing data for the water meter that is being monitored.
15. A method of monitoring water utilization through a water meter in real time comprising steps of: a. installing, on a water meter, a sensor capable of detecting a gradient in magnetic field as water flows through the meter and with the sensor, generating water utilization data as water flows through the water meter by detecting the gradient in the magnetic field; b. installing, in a residence associated with the water meter, a base unit having a 915 MHz antenna adapted for receiving water utilization data from the sensor; c. pairing the base unit to a wireless access point in the residence to establish a WFi connection between the base unit and the wireless access point; d. obtaining identification data for the water meter comprising manufacturer and model data for the water meter and providing a remote database containing water meter characterizing data for the water meter; e. initiating a flow of water through the water meter to thereby cause the sensor to generate water utilization data and transmitting the water utilization data from the sensor to the base unit using RF signals at about 915 MHz; f. transmitting the water utilization data from the base unit to the wireless access point using the WiFi connection f. transmitting the water utilization data from the wireless access point to the remote database; g. correlating the identification data for the water meter with the water meter characterizing data for the water meter to calculate, without calibration a volume of water flowing through the water meter.
16. The method according to claim 15 in which the water utilization data is characterized by the water meter characterizing data for the water meter that is being monitored.
17. The method according to claim 15 in which the water meter characterizing data is derived from nutations per unit volume for the water meter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be better understood and its numerous objects and advantages will be apparent by reference to the following detailed description of the invention when taken in conjunction with the following drawings.
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DETAILED DESCRIPTION OF PREFERRED AND ILLUSTRATED EMBODIMENTS
(16) The invention will now be described in detail with reference to the drawings. With reference to
(17) As shown generally in
(18) For background purposes, approximately 90 percent of residential water meters are Dry Dial water meters that incorporate an internal magnet to measure volumetric flow, and about 5 percent of water meters used in residential installations are electromagnetic type meters that have no moving parts. Both of these meters measure the volumetric flow rate of water flowing through them and the apparatus and method of the present invention is adapted for use with both of these types of meters. The remaining approximately 5 percent of consumer water meters are the wet dial type meters, which the present invention cannot monitor.
(19) Explained in simple terms, a Dry Dial Meter (DDM) 20 is a device that records water consumption by transferring motion from inside the meter to a register via a magnetic coupling. This coupling constantly records usage as water passes through the meter. A magnet 220 is attached to the disc or turbine inside of the meter that nutates or spins, see
(20) In contrast, an Electromagnetic Meter (EM) contains no moving parts, has a digital register and most importantly has a digital out port that is an available connection by third party devices such as the present invention. Within the meter a magnetic field is applied to a metering tube and this results in a potential difference proportional to the flow velocity perpendicular to the flux lines of the field. The physical principle at work is electromagnetic induction. The magnetic flow meter requires a conducting fluid, for example water that contains ions, and an electrical insulating pipe surface, for example, a rubber-lined steel tube. A microprocessor in the meter determines flow rate and usage from the gathered information and records it on a digital register.
(21) With a Dry Dial meter, the flow of fluid through a metering tube and the resulting difference in magnetic field strength generates a sinusoidal wave that may be monitored and which may be correlated to the volume of water flowing through the meter.
(22) With reference to
(23) Node Unit 30
(24) As detailed below, the optimal placement location for node unit 30 is determined during installation wherein the software determines the average intensity of the magnetic field at the peaks and the troughs. The software then sets thresholds for peak and trough detection at some percentage of the difference between the peak and trough values. These thresholds are represented graphically by the dashed lines in
(25) As best illustrated in
(26) A sensor 38 is contained within the node unit 30 and is thereby retained closely next to the water meter when the bracket is attached to the meter as shown in
(27) Referring back to
(28) Base Unit 50
(29) Base unit 50 preferably and typically incorporates a transceiver and a 915 MHz antenna for communication with node unit 30 and a WiFi antenna 70 operating as an internet connected gateway or data bridge between a node unit 30 and the house 40 wireless Access Point (AP) 80. An exemplary circuit diagram for base unit 50 is shown in
(30) The customer AP 80 utilizes WiFi communication to the base unit 50, which is paired during the installation process. Data is relayed through the AP to data storage installation 100, which preferably is a cloud server 110.
(31) Data Storage Installation 100
(32) As noted, data storage installation 100 is preferably a cloud-based server 110. Other data storage facilities may be used in the alternative.
(33) With reference to
(34) In some embodiments, the microcontroller 35 within the node unit 30 may be setup to provide water utilization data after a set number of readings, period of time, upon a special event. Special events may be indicated with an alert and may include: utilization exceeding a set threshold, leak detection, unexpected usage or low battery condition.
(35) Application Software 130
(36) The software 130 used in accordance with the invention provides a data rich platform that allows the consumer to visualize water consumption data in many different formats. For example, the software is capable of presenting water utilization in a variety of visually useful formats, in real time, including charts of various types with variable data criteria.
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(44) The bridge unit 50 is then cabled and powered on to pair the bridge unit with AP 80 and its associated password if implemented at step 908.
(45) At step 912 the water flow is turned on in preparation for node setup.
(46) Next, at step 910, the node unit 30 is located on the meter 20 in an optimal location. The optimal location for placement of the node unit 30 relative to water meter 20 is determined by moving the node unit 30 around the water meter while observing a visible LED that becomes illuminated when the note unit 30 is located optimally.
(47) Optionally an optimal location may be provided using a picture for a particular meter model instead of using an LED to indicated optimal placement as described above. An inquiry may be made at step 906 to a database 950 that is stored in cloud server 100 to obtain location information specific to the commercial model and type of water meter 20.
(48) And as another option, as part of the node setup process 910 an inquiry is made at step 906 to a database 950 that is stored in cloud server 100 to obtain volume information that is specific to the commercial model and type of water meter 20, as detailed below.
(49) No calibration of apparatus and method 5 is required. The working capacities of all commercially water meters 20, including volumetric flow rates, is provided by the manufacturers of the water meters and is available. A database 950, preferably stored in cloud server 906, contains characterizing information for commercially available water meters with which the present invention may be used. More specifically, the database 950 includes for each type of commercially available water meter information on the nutations/ft.sup.3 (revolutions per cubic foot of water) and this information is correlated in the database with the water meter manufacturer name and model number.
(50) As such, by knowing what specific water meter is installed in any particular installationthe manufacturer and model numberthe characterizing date of the water meter, flow rates, capacity, etc. is known. During the node setup step 910 the installer may optionally enter water meter identifying data 916 relating that identifies specific model number and serial number of the water meter 20 that is in any particular installation. This water meter identifying information 916 may also be entered by scanning, for example, a QR code on the water meter. An inquiry is made of database 950 to obtain characterizing data for the specific model and type of water meter and that data is entered into the user account associated with node unit 30. The node module sends a count of magnetic pulses to the server and the server performs a database lookup of the meter type that is configured in the node setup step 910 to calculate volume.
(51) To verify the system 5, step 914 a Welcome to the Flume Water Monitoring Solution may be displayed indicating real-time water monitoring is being performed by the system 5.
(52) While the present invention has been described in terms of preferred and illustrated embodiments, it will be appreciated by those of ordinary skill that the spirit and scope of the invention is not limited to those embodiments, but extend to the various modifications and equivalents as defined in the appended claims.