Method for linking a second remote control unit to a first remote control unit

Information

  • Patent Grant
  • 10482760
  • Patent Number
    10,482,760
  • Date Filed
    Friday, November 30, 2018
    6 years ago
  • Date Issued
    Tuesday, November 19, 2019
    5 years ago
Abstract
A method for linking a second remote control unit of an industrial truck to a first remote control unit of the industrial truck comprises linking the first remote control unit to a transceiver unit using a bidirectional radio connection. The unique address of the second remote control unit is transmitted to the transceiver unit by near field communication. The unique address of the second remote control unit is transmitted by the transceiver unit to the first remote control unit via the bidirectional radio connection. The first remote control unit is linked to the second remote control unit using the unique address of the second remote control unit. A command is transmitted from the second remote control unit to the first remote control unit and the first remote control unit transmits the command by radio to the transceiver unit.
Description
CROSS REFERENCE TO RELATED INVENTION

This application is based upon and claims priority to, under relevant sections of 35 U.S.C. ยง 119, German Patent Application No. 10 2017 128 623.3, filed Dec. 1, 2017, the entire contents of which are hereby incorporated by reference.


BACKGROUND

The method is preferably used in conjunction with industrial trucks where particularly high demands are placed on the availability of the remote control units.


In controlling industrial trucks remotely, a 1:1 connection is provided between the remote control unit and the industrial truck. This unambiguousness ensures that only one single remote control unit can issue commands remotely to just one industrial truck. In this context, it is conventional to use battery-operated control units for the remote control units that must be charged to use the industrial truck. It can be technically involved to change the assignment of the remote control units to a transceiver unit of an industrial truck.


The object of the invention is to provide a method that can be easily and flexibly used to link a second remote control.


BRIEF SUMMARY OF THE INVENTION

In an embodiment, a method according to the invention comprises linking a second remote control unit to a first remote control unit. In this case, the first remote control unit is configured for a radio connection with a transceiver unit as for example can be provided in an industrial truck. The method according to the invention provides a link of the first remote control unit to the transceiver unit for a radio connection. After linking the first remote control unit, signals, data, and information can be exchanged between the first remote control unit and the transceiver unit by radio. In an additional method step, a unique address of the second remote control unit is transmitted to the transceiver unit via near field communication. With the assistance of the unique address of the second remote control unit, all of the information on the two remote control units are present in the transceiver unit. In another step, the transceiver unit sends the unique address of the second remote control unit to the first remote control unit. The first remote control unit is then linked to the second remote control unit by the sent unique address of the second remote control unit. The second remote control unit therefore transmits its unique address to the transceiver unit, which sends the unique address of the second remote control unit to the first remote control unit so that the first remote control unit is linked to the second remote control unit. Corresponding to this link between the first and second remote control unit, a command is sent by the second remote control unit to the transceiver unit of the industrial truck, wherein the command is sent by the second remote control unit to the first remote control unit that forwards the command by radio to the transceiver unit.


The particular advantage of the method according to the invention consists of the 1:1 connection remaining between the industrial truck, and its transceiver unit, with the first remote control unit. The second remote control unit is linked by the first remote control unit to the transceiver unit of the industrial truck.


In an embodiment, the first remote control unit is supplied by a battery or accumulator. The first remote control unit can be supplied for the intended operation by means of its own energy supply.


In another embodiment, the second remote control unit is equipped with a control element that generates sufficient power for sending the command when it is actuated. Due to its design as an energy store without a battery or an accumulator, the second remote control unit is not configured to continuously maintain a radio connection with the transceiver unit in the industrial truck. The power needed for sending a signal or a command from the second remote control unit to the first remote control unit is generated by actuating the control element.


In an embodiment, the first and second remote control unit each have a module for near field communication with the transceiver unit. The module for near field communication can be configured to be active with its own power supply, or passive. In a passive configuration, the energy of the transceiver unit is transmitted to the module for near field communication.


In an embodiment, the first remote control unit can be linked to the transceiver unit by means of near field communication, wherein the first remote control unit sends its unique address to the transceiver unit. According to another embodiment, the transceiver unit can assign the two unique addresses of the radio remote control units to each other for permitting the signals to be forwarded from the first remote control unit to the second remote control unit, wherein the unique address of the second remote control unit is sent to the first remote control unit for this.


In an embodiment, the first remote control unit disconnects the link to the second remote control unit when the first remote control unit did not have a radio connection with the transceiver unit for a predetermined duration, or the transceiver unit has been turned off. The first remote control unit deletes the unique address of the second remote control unit in its memory so that communication is no longer possible in which commands are forwarded from the second remote control unit via the first remote control unit to the transceiver unit of the industrial truck.





BRIEF DESCRIPTION OF THE DRAWINGS

The present invention is explained in the following in more detail using an exemplary embodiment. In the following:



FIG. 1 illustrates an embodiment of an industrial truck with a first and a second remote control unit, and



FIG. 2 illustrates a schematic diagram of an embodiment of the communication between the remote control units and the industrial truck.





DETAILED DESCRIPTION OF THE INVENTION


FIG. 1 shows an industrial truck 10 that is configured as a tagalong pedestrian controlled pallet truck. The industrial truck 10 includes a transceiver unit 12 that on the one hand is configured to communicate by radio across distances of a few meters, and on the other hand is configured to read out a unique address with the assistance of near field communication. The transceiver unit 12 is also configured to record and save at least two unique addresses and assign them to each other. The unique addresses are for example so-called MAC addresses, wherein MAC stands for media access control and specifies unique identification for a device in a network.


A first remote control unit 14 is provided. During operation, the first remote control unit 14 sends and receives signals and commands by radio 17 from the transceiver unit 12. The remote control unit 14 communicates with a second remote control unit 16 that for example is configured as a battery-free remote control unit 16. The remote control unit 16 includes a control unit 18, which, when activated, generates power for sending a signal 20 to the first remote control unit 14.


The communication structure from FIG. 1 is portrayed in a schematic view in FIG. 2. The first remote control unit 14 is equipped for a bidirectional radio connection, for example by Bluetooth with the transceiver unit 12 of the industrial truck. The second remote control unit 16 that is not equipped with an energy store includes a unique address MAC 2 and communicates in a direct way 20 with the first remote control unit 14. In order to establish direct communication 20 between the first remote control unit 14 and the second remote control unit 16, a link to the remote control units 14, 16 is initiated in the transceiver unit 12 by means of near field communication 24, 22. For a first linking process, the first remote control unit 14 is brought close to the transceiver unit 12. In so doing, the transceiver unit 12 receives the unique address (MAC 1) from the first remote control unit 14, and this address (MAC 1) is used to establish a Bluetooth radio connection 17.


The transceiver unit 12 is configured as a transceiver unit of an industrial truck for a 1:1 connection. So that signals can also be sent to the transceiver unit via the second remote control unit 16 in addition to the first remote control unit 14, the second remote control unit 16 is linked to the first remote control unit 14, and not directly to the transceiver unit. For this, the second remote control unit 16 is connected by near field communication 22 to the transceiver unit 12. The unique address of the second remote control unit 16 is saved in the transceiver unit 12. The transceiver unit 12 sends the unique address (MAC 2) of the second remote control unit 16 to the first remote control unit 14 so that it can initiate a linking process between the first and the second remote control unit. Once the first and the second remote control units 14, 16 are linked, signals from the second remote control unit 16 can be forwarded via the first remote control unit 14 to the transceiver unit 12.


The second remote control unit 16 can be configured as a unit that is attachable to the hand or the fingers and can also be operated by fingers from the same hand One embodiment provides for example that the second remote control unit 16 is worn on the index and middle finger like a ring and operated by being pressed by the thumb.


This method generates particular advantages with a construction where the first remote control unit 14 is configured with an accumulator, and the second remote control unit 16 is configured without an energy source. The first remote control unit 14 assumes wireless communication with the transceiver unit 12 of the vehicle, for example in the form of radio commands or regular radio signals, so-called heartbeats. The second remote control unit 16 serves to transmit operator commands to the first remote control unit 14 so that it can then send the commands to the vehicle. The second remote control unit 16 is connected to the first remote control unit 14 by one of the following radio techniques such as zigbee, Bluetooth, 868 MHz for Europe, 902 MHz for the USA/Canada or 928 MHz for Japan. The second remote control unit 16 cannot directly send radio commands to the vehicle since it is only designed for a 1:1 connection to a remote control unit. The second remote control unit 16 possesses an NFC module for exchanging the unique address (MAC 2) with the transceiver unit 12.


This is achieved in that the vehicle only accepts operator commands from the second remote control unit 16 that is assigned to the vehicle by previously being paired to the first remote control unit 14. If the second battery-free remote control unit 16 is in a temporarily powerless state, the assignment must also be ensured after power is restored.


REFERENCE NUMBER LIST




  • 10 Industrial truck


  • 12 Transceiver unit


  • 14 First remote control unit


  • 16 Second remote control unit


  • 17 Radio connection


  • 18 Control element


  • 20 Signal


  • 22 Near field communication


  • 24 Near field communication


Claims
  • 1. A method for linking a second remote control unit of an industrial truck to a first remote control unit of the industrial truck comprising: linking the first remote control unit to a transceiver unit using a bidirectional radio connection;transmitting a unique address of the second remote control unit to the transceiver unit by near field communication;transmitting the unique address of the second remote control unit by the transceiver unit to the first remote control unit via the bidirectional radio connection;linking the first remote control unit to the second remote control unit using the unique address of the second remote control unit; andtransmitting a command from the second remote control unit to the first remote control unit, wherein the first remote control unit transmits the command by radio to the transceiver unit.
  • 2. The method according to claim 1, wherein the first remote control unit comprises one of a battery and an accumulator.
  • 3. The method according to claim 2, wherein the second remote control unit comprises a control element configured to generate power for transmitting the command when actuated.
  • 4. The method according to claim 1, wherein the first and second remote control units each comprise a module for near field communication with the transceiver unit.
  • 5. The method according to claim 1, wherein the first remote control unit is linked to the transceiver unit by near field communication, and wherein the first remote control unit is configured to send a unique address to the transceiver unit.
  • 6. The method according to claim 5, wherein the transceiver unit assigns unique addresses to the first and second remote control units.
  • 7. The method according to claim 1, wherein the first remote control unit is configured to disconnect the link to the second remote control unit when the first remote control unit does not have a radio contact with the transceiver unit for a predetermined duration of time.
  • 8. The method according to claim 1, wherein the first remote control unit is configured to disconnect the link to the second remote control unit when the transceiver has been turned off.
  • 9. The method according to claim 1, wherein the first remote control unit communicates by long-distance radio with the transceiver unit.
Priority Claims (1)
Number Date Country Kind
10 2017 128 623 Dec 2017 DE national
US Referenced Citations (47)
Number Name Date Kind
3575305 Burch Apr 1971 A
3670905 Burch Jun 1972 A
3746189 Burch Jul 1973 A
3814026 Maloney Jun 1974 A
3826349 Stevenson, III Jul 1974 A
3984019 Brudi Oct 1976 A
4543031 Luebrecht Sep 1985 A
5370492 Gleyze Dec 1994 A
5938710 Lanza Aug 1999 A
8072309 Kraimer et al. Dec 2011 B2
8193903 Kraimer et al. Jun 2012 B2
8239251 Wellman Aug 2012 B2
8249910 Wellman et al. Aug 2012 B2
8452464 Castaneda et al. May 2013 B2
8725317 Elston et al. May 2014 B2
8725362 Elston et al. May 2014 B2
8725363 Elston et al. May 2014 B2
8731777 Castaneda et al. May 2014 B2
8963704 Adami Feb 2015 B2
8970363 Kraimer et al. Mar 2015 B2
9002581 Castaneda et al. Apr 2015 B2
9082293 Wellman et al. Jul 2015 B2
9122276 Kraimer et al. Sep 2015 B2
9152933 Wellman Oct 2015 B2
9202186 Wellman et al. Dec 2015 B2
9207673 Pulskamp et al. Dec 2015 B2
9493184 Castaneda et al. Nov 2016 B2
9522817 Castaneda et al. Dec 2016 B2
9645968 Elston et al. May 2017 B2
9908527 Elston et al. Mar 2018 B2
20030044047 Kelly et al. Mar 2003 A1
20090198371 Emanuel Aug 2009 A1
20090281676 Beavis Nov 2009 A1
20110166721 Castaneda Jul 2011 A1
20120078471 Siefring Mar 2012 A1
20120245765 Medwin et al. Sep 2012 A1
20130234827 Tomita et al. Sep 2013 A1
20140042873 Shen et al. Feb 2014 A1
20140195121 Castaneda Jul 2014 A1
20150057843 Kraimer et al. Feb 2015 A1
20170057798 Dues et al. Mar 2017 A1
20170249792 Gennermann Aug 2017 A1
20180057331 Goepner et al. Mar 2018 A1
20180060764 Hance Mar 2018 A1
20180068255 Hance Mar 2018 A1
20180079633 Kraimer et al. Mar 2018 A1
20180157263 Goepner Jun 2018 A1
Foreign Referenced Citations (10)
Number Date Country
10028023 Dec 2001 DE
102007054836 May 2009 DE
102012016783 Mar 2013 DE
102012018427 May 2014 DE
102013110456 Mar 2015 DE
102016102638 Aug 2017 DE
2392538 Dec 2011 EP
2468678 Nov 2015 EP
2851331 Feb 2016 EP
3162754 May 2017 EP
Non-Patent Literature Citations (4)
Entry
EP 17187252.6; Aug. 22, 2017; European Search Report dated Jan. 31, 2018; 9 pages.
EP 17205166.6; Dec. 4, 2017; European Search Report dated Apr. 16, 2018; 3 pages.
EP 17205166.6; Dec. 4, 2017 2017; European Search Report dated Apr. 16, 2018 (3 pages).
EP 18207744.6; Nov. 22, 2018; European Search Report dated May 6, 2019; 7 pages.
Related Publications (1)
Number Date Country
20190172340 A1 Jun 2019 US