Metering Data Collection Unit with Battery Energy Calculator, and Ultrasonic Meter and Remote Data Collection System Having the Same
20230122033 · 2023-04-20
Inventors
Cpc classification
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
H04L67/12
ELECTRICITY
International classification
H04L67/12
ELECTRICITY
Abstract
Disclosed is remote meter-reading technology that can be used for remote meter-reading of gas, electricity, tap water, etc. Technology and an apparatus or system capable effectively measuring a battery level with low power consumption is provided. A remote meter-reading terminal unit calculates the level of a battery while obtaining power consumption in an operation mode of an MCU using current output from the battery and obtaining power consumption in a sleep mode using a predetermined current value.
Claims
1. A remote meter-reading terminal unit that periodically receives flow-rate information from a metering unit and transmits the flow-rate information to an outside through a communication network, the remote meter-reading terminal unit comprising: a memory configured to store the flow-rate information; a communication module configured to perform data transmission to the outside; and an MCU having an operation mode in which at least one processor is operated and a sleep mode in which all processors are dormant, the MCU comprising a battery level processor configured to calculate a level of the battery, the battery level processor using current output from the battery to obtain power consumption in the operation mode and using a predetermined current value to obtain power consumption in the sleep mode, wherein the MCU further comprises: a flow-rate reception processor configured to receive the flow-rate information from the metering unit in a first cycle and to store the flow-rate information in the memory; and an outward transmission processor configured to transmit the flow-rate information to the outside in a second cycle greater than the first cycle, the sleep mode is set to be temporally longer than the operation mode, and the outward transmission processor is operated during operation of the flow-rate reception processor while the battery level processor is operated during operation of the flow-rate reception processor or the outward transmission processor.
2. The remote meter-reading terminal unit according to claim 1, wherein the current output from the battery is converted by an ADC in the MCU and then used for obtaining the power consumption in the operation mode.
3. The remote meter-reading terminal unit according to claim 1, wherein the predetermined current value comprises a current value stored in the memory.
4. The remote meter-reading terminal unit according to claim 1, wherein the first cycle is 1 hour while the second cycle is 24 hours, and the outward transmission processor transmits all flow-rate information received after outward transmission during a previous cycle.
5. The remote meter-reading terminal unit according to claim 1, further comprising: a current measurement circuit configured to measure the current output from the battery, wherein the current measurement circuit comprises: a resistor connected to a positive terminal and a negative terminal of the battery therebetween; a first current distributer having a positive side connected to a positive side of the resistor and a negative side connected to an input side of the MCU; and a second current distributer having a negative side connected to a negative side of the resistor and a positive side connected to the negative side of the first current distributer.
6. An ultrasonic meter comprising the remote meter-reading terminal unit according to claim 1.
7. A remote meter-reading system comprising: an ultrasonic metering unit installed in a flow-rate measurement target pipe; the remote meter-reading terminal unit according to claim 1; and a server configured to receive flow-rate information from the remote meter-reading terminal unit through an external communication network.
8. An ultrasonic meter comprising the remote meter-reading terminal unit according to claim 2.
9. An ultrasonic meter comprising the remote meter-reading terminal unit according to claim 3.
10. An ultrasonic meter comprising the remote meter-reading terminal unit according to claim 4.
11. An ultrasonic meter comprising the remote meter-reading terminal unit according to claim 5.
12. A remote meter-reading system comprising: an ultrasonic metering unit installed in a flow-rate measurement target pipe; the remote meter-reading terminal unit according to claim 2; and a server configured to receive flow-rate information from the remote meter-reading terminal unit through an external communication network.
13. A remote meter-reading system comprising: an ultrasonic metering unit installed in a flow-rate measurement target pipe; the remote meter-reading terminal unit according to claim 3; and a server configured to receive flow-rate information from the remote meter-reading terminal unit through an external communication network.
14. A remote meter-reading system comprising: an ultrasonic metering unit installed in a flow-rate measurement target pipe; the remote meter-reading terminal unit according to claim 4; and a server configured to receive flow-rate information from the remote meter-reading terminal unit through an external communication network.
15. A remote meter-reading system comprising: an ultrasonic metering unit installed in a flow-rate measurement target pipe; the remote meter-reading terminal unit according to claim 5; and a server configured to receive flow-rate information from the remote meter-reading terminal unit through an external communication network.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The accompanying drawings, which are included to provide a further understanding of the invention and are incorporated in and constitute a part of this application, illustrate embodiment(s) of the invention and together with the description serve to explain the principle of the invention. In the drawings:
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF THE INVENTION
[0026] Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings. In the following description of the present invention, a detailed description of known functions and configurations incorporated herein will be omitted when it may make the subject matter of the present invention rather unclear.
[0027] First, a remote meter-reading system according to an embodiment of the present invention will be described with reference to
[0028] The remote meter-reading system includes a metering unit, a remote meter-reading terminal unit, and a server.
[0029] The metering unit measures the use amount of a measurement target and transmits the same to the remote meter-reading terminal unit.
[0030] Here, the measurement target may be at least one of gas, tap water, electricity, and hot water.
[0031] When the measurement target is tap water, the metering unit may be an ultrasonic meter, which is conventionally well known.
[0032] The metering unit and the remote meter-reading terminal unit may be connected to each other by wire. Alternatively, the metering unit and the remote meter-reading terminal unit may be only communicatively connected to each other through wireless communication in a state of being physically separated from each other.
[0033] Illustratively, the remote meter-reading terminal unit and the metering unit may be integrated to constitute an ultrasonic meter.
[0034] Alternatively, a meter including the metering unit may be installed in a water pipe, and the remote meter-reading terminal unit may be electrically connected to the meter by wire in order to receive information while being spaced apart from the meter.
[0035] In addition, the remote meter-reading terminal unit is communicatively connected to the server through a wired or wireless communication network.
[0036] Illustratively, the server may be a server operated by an organization that charges consumers for consumption. For example, the server may be a server operated by a self-governing body for charging.
[0037]
[0038] As shown in
[0039] Specifically, the current measurement circuit includes a resistor connected to a positive terminal and a negative terminal of the battery therebetween, a first current distributer having a positive side connected to a positive side of the resistor and a negative side connected to an input side of the MCU, and a second current distributer having a negative side connected to a negative side of the resistor and a positive side connected to the negative side of the first current distributer.
[0040] The MCU has an ADC built therein, and the ADC converts current input thereto into a digital signal.
[0041] The MCU has an operation mode in which at least one built-in processor is operated and a sleep mode in which all processors are dormant.
[0042] The processors built in the MCU include a flow-rate reception processor, an outward transmission processor, and a battery level processor.
[0043] The flow-rate reception processor receives flow-rate information from the metering unit in a first cycle and stores the same in a memory.
[0044] The outward transmission processor transmits the flow-rate information stored in the memory to the outside in a second cycle.
[0045] The battery level processor operated during operation of the flow-rate reception processor or the outward transmission processor.
[0046] Preferably, the outward transmission processor is operated when the flow-rate reception processor is operated. That is, the length of the second cycle is an integer multiple of the length of the first cycle.
[0047]
[0048] in
[0049] Referring to
[0050] The battery level processor obtains battery power consumption in the operation mode using current output from the battery and obtains battery power consumption in the sleep mode using a predetermined current value. Here, the sleep mode is set to be temporally longer than the operation mode.
[0051] In the sleep mode, only minimum current flows, whereby battery power consumption is minimized.
[0052] Battery power consumption in the operation mode is calculated when the flow-rate reception processor is operated, and therefore separate power consumption necessary to calculate battery power consumption is also minimized.
[0053] Battery current in the operation mode may be measured as current input to the MCU through the above-described measurement circuit. Preferably, a current value using an ADC value converted by the ADC in the MCU is used to calculate power consumption.
[0054]
[0055] The battery level processor of the MCU calculates power consumption using the measured current value in the operation mode, and calculates power consumption using the predetermined current value without separate measurement.
[0056] At this time, a current value based on the ADC value is used as the current value used to calculate power consumption in the operation mode. That is, power consumption is calculated using an ADC current value for an operation mode time Δta.
[0057] Since the current value based on the ADC value is obtained by sampling battery current—which is analogue—in a predetermined sampling cycle and digitally converting the same, a data amount fluctuates depending on the size of the sampling cycle. Consequently, the amount of calculation necessary to calculate power consumption may be reduced by enlarging the sampling cycle (i.e. by reducing a sampling rate per unit time). Power consumption is reduced in proportion to the reduced amount of calculation.
[0058] In addition, the predetermined current value in the sleep mode may be a value preset by measuring battery current using a separate measurement instrument when the remote meter-reading terminal unit is in the sleep mode. The predetermined current value may be stored in the memory, and may be read by the MCU so as to be used to calculate power consumption for a sleep mode time Δts at the time of calculation of power consumption in the sleep mode.
[0059] The MCU subtracts the calculated power consumption from the battery power to calculate the current battery level.
[0060] As is apparent from the above description, technology according to the present invention is capable of effectively measuring a battery level while minimizing additional power consumption for measurement.
[0061] It will be apparent to those skilled in the art that various modifications and variations can be made in the present invention without departing from the spirit or scope of the invention. Thus, it is intended that the present invention cover the modifications and variations of this invention provided they come within the scope of the appended claims and their equivalents.