METHOD AND DEVICE FOR OPERATING A BATTERY-OPERATED SMART METERING METER
20200053437 ยท 2020-02-13
Inventors
- Hristo Petkov (Nuernberg, DE)
- Thomas Lautenbacher (Erlangen, DE)
- Thomas Kauppert (Nuernberg, DE)
- Klaus Gottschalk (Winkelhaid, DE)
Cpc classification
H04W52/0219
ELECTRICITY
H04Q9/00
ELECTRICITY
H04W52/0216
ELECTRICITY
H04Q2209/883
ELECTRICITY
Y02D30/70
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
H04Q2209/60
ELECTRICITY
H04Q2209/823
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
H04W52/0261
ELECTRICITY
International classification
Abstract
A method and a device are used during battery operation of a smart metering meter equipped with a consumption sensor and a transmit clock generator for a radio module for transmitting consumption data packets, in the event of a decreased residual capacity of the battery, to determine if the data packets can be transmitted as previously with the residual capacity over the residual time period until a scheduled battery exchange at the end of a specified operating time period. If not, the transmit power, for example, of the data packets is reduced and/or their transmit clock is extended over the residual period. This determination, along with a control specification, are preferably performed in a concentrator and are transmitted to the meter by using bidirectionally operating radio modules so that computer capacities required therefor need not be retained in each individual meter of a supply area.
Claims
1. A method for operating a smart metering meter having a consumption sensor and a transmit clock generator, the method comprising the following steps: transmitting consumption data packets by radio over a specified operating time period by using a battery; and in an event of a decreased capacity of the battery after a certain operating period, modifying radio transmission parameters to extend an operating time period depending on a residual capacity.
2. The method according to claim 1, which further comprises defining a number of still transmittable consumption data packets, and transmitting the number of still transmittable consumption data packets in modified form during a residual time period until an end of the operating time period.
3. The method according to claim 1, which further comprises reducing at least one of a transmit clock or a transmit power of the transmission of the consumption data packets as the radio transmission parameter modification.
4. The method according to claim 1, which further comprises obtaining information relating to the battery capacity from a battery voltage and from a battery internal resistance.
5. The method according to claim 4, which further comprises obtaining the information relating to the battery capacity under full load.
6. The method according to claim 1, which further comprises transmitting information relating to the battery capacity from the meter to a concentrator by radio.
7. The method according to claim 6, which further comprises if necessary, transmitting the information relating to the battery capacity from the concentrator to a higher-level control center, and transmitting specifications for at least one parameter to be modified from the higher-level control center by radio transmission back to the meter.
8. The method according to claim 1, which further comprises selecting the parameter to be reduced for future data packet transmission as at least one of a transmit clock or a transmit power, a data rate or a waveform modifying a range.
9. The method according to claim 1, which further comprises transmitting information relating to the battery capacity with the consumption data packets or as an attachment to the consumption data packets.
10. A device for operating a smart metering meter having a consumption sensor, a transmit clock generator and a radio module transmitting consumption data packets by using a battery, the device comprising: a battery state detector for controlling at least one of the clock generator or a transmitter of the radio module if a capacity of the battery has a critically reduced residual operating time period, by providing an operating extension as a result of a possibly reduced frequency of a transmit clock or a reduced transmit power.
11. The device according to claim 10, wherein said battery state detector is a voltage-measuring or an impedance-measuring detector.
12. The device according to claim 9, which further comprises: a concentrator having a comparator, a computing circuit and a radio module; said radio module of the meter being a bidirectionally operating radio module; and said radio module of said concentrator being in radio contact with said radio module of the meter for modifying at least one transmit parameter.
13. The device according to claim 12, wherein said at least one transmit parameter is at least one of the transmit clock or a transmit power of the transmission of the consumption data packets from the meter to said concentrator.
Description
BRIEF DESCRIPTION OF THE SINGLE VIEW OF THE DRAWING
[0015] The single FIGURE of the drawing is a block diagram reduced to the functionally important features of a device for battery management according to the invention of a smart metering meter.
DETAILED DESCRIPTION OF THE INVENTION
[0016] Referring now in detail to the single FIGURE of the drawing, there is seen a meter 11 which is one of many that communicate with at least one concentrator 13 in a supply area through, in this case bidirectional, radio links 12. Consumption data 15, in particular a flow of a fluid, are recorded by using an e.g. incrementally operating sensor 14 in or on a tap line of an energy source. The data are processed and, if necessary, digitized and accumulated in a signal processing unit 16 until they are transmitted from time to time, controlled through a clock generator 17, by using a transmitter 18 of a radio module 19 as a consumption data packet 20 to a receiver 25 of the radio module 19 in at least one of the concentrators 13 accessible in the supply area.
[0017] The meter 11 is equipped with a primary battery 21 for the operating energy of its functional components, i.e., in particular for the signal processing unit 16, the clock generator 17 and the radio module 19 and, if necessary, also the sensor 14. Battery information 26 relating to the present state of charge of the battery 21 is supplied by a detector 22 which, in this example embodiment, is constructed to measure the current battery voltage under full load. This information 26 is transmitted in any case from time to time, e.g. as an attachment to the data packet 20, to the receiver 25 in the concentrator 13. If it is established there in a voltage comparator 23 that, for example in this battery 21, the discharge curve is falling significantly more steeply than is typical for the battery, the residual battery capacity will not be sufficient to operate this meter 11 until the scheduled end of the operating time period. The number of present data packets 20 transmitted by the meter 11 by radio for which this residual capacity is still sufficient and a reduced transmit clock 27 acting through the signal processing unit 16 or directly on the meter transmitter 18 by which this number of data packets 20 can be evenly distributed over the current residual time period of the operating time period are therefore established in a table memory or in a computing circuit 24 for the residual battery capacity. This clock frequency specification, reduced compared with the normal operation, is transmitted through the receiver 25 of the radio module 19, operating bidirectionally in any event for that purpose, to the clock generator 17.
[0018] In a comparable manner (not shown in the drawing), the transmit power of the transmitter 18 can alternatively or additionally be reduced in the meter 11 through the computing circuit 24 in order to continue transmitting data packets 20 to the concentrator 13 despite dwindling battery capacity without a premature battery exchange over the residual time period until the end of the specified operating time period. For this type of transmission with transmit power reduced during the residual time period, other original transmit parameters such as the clock can be retained or, particularly in the case of a critical power budget for the residual time period, similarly reduced.
[0019] During the battery operation of a smart metering meter 11 which is equipped with a consumption sensor 14 and a transmit clock generator 17 for a radio module 19 for the transmission of consumption data packets 20, it is therefore determined according to the invention, in the event of a conspicuously decreased residual capacity of the battery 21, whether this residual capacity is sufficient for the intended data transmission. If it is not sufficient, the data packets 20 must be transmitted with at least one modified transmit parameter to a concentrator 13 over an extended time period until the scheduled battery exchange at the end of the specified operating time period. In order to do this, the data rate, for example, or the transmit level of the data packets 20 can be reduced over the residual time period and/or their transmit clock 27 can be extended. This determination, along with the control specification for the future operation of the transmitter 18, are performed in a control center, but preferably in a concentrator 13, and are transmitted by using directionally operating modules 19 to the meter 11 so that the computer capacities required for this purpose do not have to be retained in each of the numerous meters 11 of the supply area.
REFERENCE NUMBER LIST
[0020] 11 Meter (with 14 and 19) [0021] 12 Radio link (between 11 and 13) [0022] 13 Concentrator [0023] 14 Sensor (from 11) [0024] 15 Consumption data (from 14, in 20) [0025] 16 Signal processing (between 14 and 18) [0026] 17 Clock generator (for 16/18 in 11) [0027] 18 Transmitter (from 19) [0028] 19 Radio module (from 11 or from 13) [0029] 20 Data packet (from 11 to 13) [0030] 21 Battery (in 11) [0031] 22 Detector (at 21) [0032] 23 Comparator (for 26) [0033] 24 Computing circuit (for 27 from 23) [0034] 25 Receiver (from 19) [0035] 26 Battery information (from 22, transmitted with 20) [0036] 27 Transmit clock (from 17, for 18/20)