EP4078552A1 - Dispositif de capteur et module d'expansion - Google Patents

Dispositif de capteur et module d'expansion

Info

Publication number
EP4078552A1
EP4078552A1 EP19831732.3A EP19831732A EP4078552A1 EP 4078552 A1 EP4078552 A1 EP 4078552A1 EP 19831732 A EP19831732 A EP 19831732A EP 4078552 A1 EP4078552 A1 EP 4078552A1
Authority
EP
European Patent Office
Prior art keywords
sensor
expansion module
module
expansion
sensor device
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
EP19831732.3A
Other languages
German (de)
English (en)
Inventor
Karl Griessbaum
Roland Welle
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Vega Grieshaber KG
Original Assignee
Vega Grieshaber KG
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Vega Grieshaber KG filed Critical Vega Grieshaber KG
Publication of EP4078552A1 publication Critical patent/EP4078552A1/fr
Pending legal-status Critical Current

Links

Classifications

    • GPHYSICS
    • G08SIGNALLING
    • G08CTRANSMISSION SYSTEMS FOR MEASURED VALUES, CONTROL OR SIMILAR SIGNALS
    • G08C19/00Electric signal transmission systems
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01DMEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
    • G01D21/00Measuring or testing not otherwise provided for
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01DMEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
    • G01D21/00Measuring or testing not otherwise provided for
    • G01D21/02Measuring two or more variables by means not covered by a single other subclass
    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05BCONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
    • G05B19/00Programme-control systems
    • G05B19/02Programme-control systems electric
    • G05B19/04Programme control other than numerical control, i.e. in sequence controllers or logic controllers
    • G05B19/042Programme control other than numerical control, i.e. in sequence controllers or logic controllers using digital processors
    • G05B19/0428Safety, monitoring
    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05BCONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
    • G05B2219/00Program-control systems
    • G05B2219/20Pc systems
    • G05B2219/25Pc structure of the system
    • G05B2219/25428Field device
    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05BCONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
    • G05B2219/00Program-control systems
    • G05B2219/30Nc systems
    • G05B2219/50Machine tool, machine tool null till machine tool work handling
    • G05B2219/50193Safety in general

Definitions

  • the invention relates to a sensor device for determining process variables in an industrial environment, an expansion module for a sensor device and the use of the expansion module for a sensor device. Background of the invention
  • Sensors such as level measuring devices, record process parameters that are transmitted, for example, via a fieldbus or wirelessly to a server or to a data network.
  • a power cable connected to the sensor is used to provide energy.
  • they contain a battery so that the sensor can work independently.
  • there is no display or control unit on the sensor there is no display or control unit on the sensor.
  • some sensors have the option of installing such a display and control unit at a later date. The energy supply required for this unit as well as the data exchange with the sensor takes place, for example, by means of a wire interface between the sensor and the display and control unit.
  • the object of the invention is to provide a solution to provide a sensor with additional functions in a customer-specific configuration in a cost-effective manner and with little effort.
  • a sensor device for determining process variables in the industrial Elmfeld.
  • the sensor device has a sensor base unit and a first expansion module.
  • the sensor base unit has a process variable determination unit for determining the process variable, a first mechanical interface for mechanically receiving a first expansion module and a first
  • the first expansion module has a second mechanical interface to the sensor base unit and a third mechanical interface for mechanically accommodating a second expansion module, a second communication interface to the sensor base unit for transmitting measurement and / or control data and a third communication interface to the second expansion module for transmitting Measurement and / or control data.
  • process automation in an industrial environment can be understood as a sub-area of technology that includes all measures for operating machines and systems without human involvement.
  • One goal of process automation is to improve the interaction between individual components of a plant in the fields of chemistry, food, pharmaceuticals, crude oil, paper,
  • Logistics automation With the help of distance and angle sensors, processes within a building or within a single logistics system are automated in the field of logistics automation.
  • Typical applications are, for example, systems for logistics automation in the area of baggage and freight handling at airports, in the area of traffic monitoring (toll systems), in trade, parcel distribution or in the area of building security (access control).
  • ToF time of flight principle
  • Another sub-area of process automation in the industrial environment concerns factory / production automation. Use cases for this can be found in A wide variety of industries such as automobile manufacturing, food manufacturing, the pharmaceutical industry or in general in the field of packaging.
  • the aim of factory automation is to automate the production of goods using machines, production lines and / or robots, ie to let them run without human involvement.
  • the sensors used here and specific requirements with regard to the measurement accuracy when recording the position and size of an object are comparable to those in the previous example of logistics automation.
  • “Sensor” is understood to mean a device that has a measuring sensor, in particular in a housing, for determining the process variables, as well as the components that may be present within the housing, such as electronic components, connections and mechanical elements.
  • the sensor device of the first aspect contains such a sensor as a sensor base unit and a first expansion module, which is a mechanical
  • the first expansion module can be attached to the sensor base unit through the mechanical interface.
  • measurement data and control data can be exchanged between the sensor base unit and the expansion module via the data interface, referred to here as the "second communication interface”. Both the measurement and the control data can be transmitted digitally or analog.
  • the first expansion module has a further interface, referred to here as “third mechanical interface” and “third communication interface”, with which a second expansion module can be connected to the first expansion module mechanically and with regard to data exchange.
  • the second and third interfaces can be arranged, for example, in such a way that the second expansion module is placed on top of the first.
  • the first expansion module is attached to one side of the sensor base unit and is set up to receive the second expansion module as a final expansion module or further expansion modules forming a stack.
  • the first expansion module is attached to the top of the sensor base unit and the second expansion module to the top of the first expansion module, so that a stack of expansion modules is built up that extends perpendicular to the surface of the sensor base unit.
  • the communication interfaces of the first expansion module are on opposite sides, for example above and below. If the expansion modules are cylindrical, stacking the expansion modules creates a cylindrical one
  • a final expansion module does not necessarily have to have two mechanical or communication interfaces. If the final expansion module is, for example, a display and operating unit, a further expansion module would possibly hinder or prevent the reading of the display or the operation of the sensor device.
  • the first mechanical interface has a thread or a snap device.
  • the thread can, for example, be an internal or external thread of the housing, or a central screw thread.
  • the second mechanical interface that is to say the mechanical interface of the first expansion module to be accommodated on the sensor base unit, is the counterpart to the first mechanical interface of the sensor base unit and is therefore designed accordingly.
  • the first communication interface is designed optically, for example by means of an optocoupler, electrically via a wire connection, electromagnetic, ie wireless, or inductively, for example by means of NFC (Near Field Communication).
  • Communication via the communication interfaces can take place unidirectionally in one of the two directions or bidirectionally.
  • the second expansion module requests data from the first expansion module.
  • the first expansion module forwards the request to the sensor base unit and then receives measurement data, which the first expansion module in turn forwards to the requesting second expansion module.
  • the sensor base unit also has a first electrical interface to the first expansion module for providing energy.
  • the first expansion module also has a second electrical interface to the base unit for providing energy and a third electrical interface to the second expansion module for providing energy.
  • the provision of energy can also include the absorption of energy. It can also be provided that only energy is taken up at the interfaces of the expansion modules.
  • the electrical interface is inductive or wired and receives the energy from the first expansion module or delivers the energy to it.
  • the energy can be made available, for example, to the first expansion module by the second expansion module, and from the first to the sensor base unit.
  • a middle expansion module of an expansion module stack can provide energy for the further expansion modules.
  • the expansion module can be a Have energy buffer that absorbs energy from the sensor base unit over a certain period of time and stores it until enough energy is available to send a radio packet.
  • the first expansion module is set up as a wired power connection module, ie via a cable that can be connected to an external direct voltage or alternating voltage source, or as a battery module to provide energy for the sensor base unit.
  • the sensor device has an uppermost expansion module of a stack of expansion modules as the final module, a photovoltaic unit, an operating device and / or a display device.
  • This final module can be designed in such a way that no further expansion modules can be stacked on this module.
  • this can be done in the case of a module that contains an operating device and / or a display device or a photovoltaic unit with photocells.
  • the first expansion module is set up to accommodate a contactless sensor module as an expansion adapter.
  • a contactless sensor module as an expansion adapter.
  • an existing expansion module that works without contact can simply be pushed into the expansion adapter, for example.
  • the contactless sensor module can also be used if the sensor base unit has no contactless interfaces.
  • the first expansion module has a data memory and / or a communication unit for an external one Communication link on. Measured values can therefore only be recorded and collected in the data memory and transferred to a network or a smartphone via the communication link.
  • the data memory and the communication unit can be accommodated on independent expansion modules or on a common expansion module. External communication can take place, for example, according to one or more of the standards WLAN, Bluetooth, Zigbee, NB-IOT, GSM, CAT-M, LoRa, Sigfox or other protocols for data transmission.
  • the communication unit can also support a wired connection, for example a fieldbus connection, and the expansion module can provide the appropriate hardware and software, such as, for example, a corresponding plug connection or other connection.
  • the first expansion module has an acceleration sensor, a pressure sensor, a geomagnetic field sensor, a gas sensor, a distance sensor, a brightness sensor and / or a temperature sensor.
  • Distance sensors such as lidar, radar and ultrasound as well as motion sensors and brightness sensors are particularly suitable for use in the final expansion modules.
  • a stack of expansion modules has a cover.
  • the cover is attached to the sensor base unit and thus covers all expansion modules.
  • the cover can be fastened to the sensor base unit by means of a thread or a snap device, for example, and can have a sealing device, such as a sealing ring.
  • the mechanical interfaces of the expansion modules of a stack of expansion modules are sealed.
  • they are mechanically and materially designed to be waterproof, dustproof and / or airtight.
  • the expansion modules can also have a housing with the corresponding mechanical interfaces.
  • the process variable determination unit is set up to determine a pressure, a fill level, a limit level or a density.
  • an expansion module with the properties set out above is provided for the sensor device described.
  • the expansion module is used for a sensor device as described above.
  • a sensor device for determining process variables is provided with a sensor base unit and a process variable determining unit, the sensor device being modularly expandable by a plurality of stackable expansion modules.
  • FIG. 1 shows a diagram of a sensor base unit and a display and operating unit
  • FIG. 2 shows a diagram of a sensor base unit with an inserted display and operating unit
  • FIG. 3 shows a diagram of a sensor device with an expansion module for autonomous operation
  • FIG. 8 shows a generic block diagram of a sensor device with an expansion module.
  • FIG. 1 shows a sensor or a sensor base unit 101 which is supplied with energy via a field bus interface 102.
  • the measuring device 101 determines a process-relevant measured variable, for example a pressure, a fill level, a limit level or also a density.
  • the measured value is then made available to the outside in analog form, e.g. via a 4 ... 20 mA interface, and / or in digital form via the fieldbus interface 102.
  • An on-site display of the measured value determined or also an on-site operation of the sensor 101 is initially not provided in the basic configuration of a sensor unit 101.
  • the sensor 101 has sliding contacts 106 which are embodied in the form of a wire and which are set up to exchange energies and / or data with extension electronics introduced into the opening 105.
  • Fig. 2 shows the sensor base unit 101 with the expansion electronics introduced in the form of an expansion module 104, e.g. the aforementioned display and operating module 104.
  • an expansion module 104 e.g. the aforementioned display and operating module 104.
  • the sensor 101 is hermetically sealed by screwing on a cover 201.
  • a cover 201 By means of specially attached sealing rings 204 in the area 202 between the cover and the sensor housing, it can be ensured that no moisture and no dust can penetrate into the interior of the sensor during the subsequent operating phase.
  • the sensor 301 is designed with regard to its expansion interface 304, depending on the connected expansion module, to use an energy flow flowing in via interface 304 to supply its own electronic components.
  • an energy module 303 equipped with batteries 305 is inserted into the expansion slot 105 and can supply the sensor 301 with energy via the interface 304.
  • the introduction of wired supply power via the fieldbus interface 306 can thus be dispensed with.
  • the formerly wired sensor 101 can thus be easily converted into an autarkic measuring sensor.
  • the battery module 401 has a plurality of energy reservoirs 408, for example
  • the wireless communication module 402 has at least one wireless communication chip 411 and an antenna 412, which exchange measured values and / or control commands in wireless form with an external location, for example a radio mast or a smartphone.
  • Various prior art wireless communication standards can be used for this, for example WLAN, Bluetooth, Zigbee, NB-IOT, GSM, CAT-M, LoRa, Sigfox or other known standards.
  • provision can be made for the module 402 to be equipped with additional energy reservoirs 410. Provision can also be made to initially draw energy from the sensor base unit 301 during the operating phase and to accumulate it in an energy store 409 until sufficient energy is available to send a radio packet.
  • the expansion adapter 403 makes it possible to use contactless expansion modules 413, as they can be used in self-sufficient filling level sensors, on sensors with wired expansion interfaces 304.
  • the expansion adapter 403 has a wireless energy transmission interface 414, for example an induction coil, and a wireless communication interface 415, for example an NFC interface.
  • the photovoltaic module 404 can be used to increase the measurement repetition rate of wired sensors by additionally introducing energy from a solar cell 416, or to provide the entire supply power of a sensor 301. In the latter case, an originally wired sensor 101 is further developed into an autonomously operating sensor 301.
  • the display and operating module 405 has an input unit 418, for example a pushbutton 418, and, after being inserted into a sensor 301, enables on-site operation directly at the measuring point without adding further operating elements such as smartphone or PC.
  • the service module 406 can be used for long-term diagnosis of problematic measuring points. It contains a long-term data memory 419, for example an SD card 419, which is used to record the diagnostic data supplied by the sensor 301 over longer periods of time. The data can then facilitate diagnosis and troubleshooting by trained service employees.
  • a long-term data memory 419 for example an SD card 419, which is used to record the diagnostic data supplied by the sensor 301 over longer periods of time. The data can then facilitate diagnosis and troubleshooting by trained service employees.
  • the cable module 407 or power connection module 407 can always be used if a sensor base unit 301 is subsequently included additional power is to be supplied in a wired manner, or if faster, wired communication interfaces are to be added.
  • the cable module 407 provides at least one interface 421 for connecting a cable 420, which can transmit additional energy to the sensor base unit 301 and / or read out information from the sensor base unit 301 or bring it into it from outside, such as measured values or a software update. Provision can be made to implement further wired fieldbus standards in the cable module 407 by installing hardware and software components, and thus to design the sensor so that it can be retrofitted for future standards.
  • the sensor base unit 301 is mechanically designed in the area of its extension slot 105 in such a way that it enables a mechanical fixation of an extension module, for example with a snap mechanism 504, 505 or a thread receptacle or other known designs for fixation two components.
  • Expansion module 502 has the same fixing contour 504 on its upper side as the base sensor 301, and moreover also offers the interface 505, which is functionally identical to the contacting point 304, on its upper side.
  • the combination of these two features makes it possible according to the invention to use the system with further expansion modules, which are arranged in a manner stacked on top of one another, expandable, for example with a module 503. It is obvious that not all modules 401 to 407 are suitable for all positions in a stack.
  • intermediate modules 502 however, all modules can be used which do not have to be freely accessible on their upper side, i.e. in particular the battery module 401, the radio module 402, the expansion adapter 403, the service module 406 and the cable module 407 404 as well as the display and operating module 405.
  • each expansion module can also be designed as a finalization module.
  • the sensor base unit 301 supplemented with several modules 402, 503 is closed by a correspondingly high cover 501, which closes the complete arrangement from the outside and thus protects it from dust and moisture.
  • Figure 6 shows a further development of a sensor device according to the invention with the sensor base unit 601, intermediate modules 603, 604 and finalization module 602.
  • the intermediate modules 603, 604 are designed according to the invention to directly supplement and continue the housing of the sensor 601 through mechanical design and material selection on their respective outer surface .
  • the finalization module 602 is designed both on its outer surface and on its upper side by means of mechanical design and choice of material to supplement the housing of the sensor and thus completely close it off.
  • the attachment of a cover the size of which depends on the number of added modules 502, 503, can be dispensed with.
  • a snap mechanism 605, 606 is provided in the example in FIG. 6 in order to ensure the mechanical stability of the complete arrangement.
  • FIG. 7 shows a further embodiment of the sensor device.
  • the intermediate module 702 and the finalization module 703 are implemented here by circumferential sealing rings 704, 705 to separate the cavity 706, 707 in the area of the contacting 708, 709 hermetically in relation to the ambient atmosphere.
  • This design can enable safe operation of the complete arrangement, particularly in areas at risk of explosion.
  • a circumferential thread 710, 711 is provided in the example in FIG. 7 in order to ensure the mechanical stability of the complete arrangement.
  • FIG. 8 shows, in summary, a generic block diagram of a sensor device (100) for determining process variables in an industrial environment with a sensor base unit (101) and an expansion module (120).
  • the sensor base unit (101) has the following components:
  • the first expansion module (120) has a second mechanical interface (121) to the sensor base unit (101), a third mechanical interface (131) for mechanically accommodating a second expansion module, a second communication interface (122) to the
  • Sensor base unit (101) for transmitting measurement and / or control data and a third communication interface (132) to the second expansion module for transmitting measurement and / or control data.

Landscapes

  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Engineering & Computer Science (AREA)
  • Automation & Control Theory (AREA)
  • Arrangements For Transmission Of Measured Signals (AREA)
  • Testing Or Calibration Of Command Recording Devices (AREA)

Abstract

La présente invention concerne un dispositif de capteur (100) pour la détermination de grandeurs de processus dans le domaine industriel, comprenant une unité de base de capteur (101) et un premier module d'expansion (120). L'unité de base de capteur (101) présente les composants suivants : une unité de détermination de grandeur de processus (103) pour la détermination de la grandeur de processus, une première interface mécanique (111) pour recevoir mécaniquement un premier module d'expansion (120), et une première interface de communication (112) pour assurer l'interface avec le premier module d'expansion (120) afin de transmettre des données de mesure et/ou de commande. Le premier module d'expansion (120) présente une deuxième interface mécanique (121) pour assurer l'interface avec l'unité de base de capteur (101), une troisième interface mécanique (131) pour recevoir mécaniquement un second module d'expansion (140), une deuxième interface de communication (122) pour assurer l'interface avec l'unité de base de capteur (101) pour transmettre des données de mesure et/ou de commande, et une troisième interface de communication (132) pour assurer l'interface avec le second module d'expansion (140) afin de transmettre des données de mesure et/ou de commande.
EP19831732.3A 2019-12-20 2019-12-20 Dispositif de capteur et module d'expansion Pending EP4078552A1 (fr)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/EP2019/086707 WO2021121626A1 (fr) 2019-12-20 2019-12-20 Dispositif de capteur et module d'expansion

Publications (1)

Publication Number Publication Date
EP4078552A1 true EP4078552A1 (fr) 2022-10-26

Family

ID=69104439

Family Applications (1)

Application Number Title Priority Date Filing Date
EP19831732.3A Pending EP4078552A1 (fr) 2019-12-20 2019-12-20 Dispositif de capteur et module d'expansion

Country Status (4)

Country Link
US (1) US20230024136A1 (fr)
EP (1) EP4078552A1 (fr)
CN (1) CN114981851A (fr)
WO (1) WO2021121626A1 (fr)

Family Cites Families (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE102004020393A1 (de) * 2004-04-23 2005-11-10 Endress + Hauser Gmbh + Co. Kg Funkmodul für Feldgeräte der Automatisierungstechnik
DE102005008627A1 (de) * 2005-02-25 2006-08-31 Raumedic Ag Sensorsystem zur Messung, Übertragung, Verarbeitung und Darstellung von physiologischen Parametern
DE202005015791U1 (de) * 2005-10-07 2005-12-08 Bürkert Werke GmbH & Co. KG Modulsystem aus anreihbaren Einzelmodulen
DE202012100385U1 (de) * 2012-02-06 2013-01-28 Softing Ag Erweiterungsmodul für eine Recheneinrichtung zur Bereitstellung einer industriellen Kommunikations-Schnittstelle
EP2950939A4 (fr) * 2013-01-29 2016-08-24 Meggitt Orange County Inc Capteurs à encapsulation filetée modulaire
CN105283822B (zh) * 2013-03-15 2018-11-30 狄夫斯高公司 探头通信模块和计算设备
US9674323B1 (en) * 2013-08-29 2017-06-06 Variable, Inc. Modular multi-functional device, method, and system
US20170316683A1 (en) * 2015-02-13 2017-11-02 Ideation Systems Llc Modular Sensor Systems
WO2016131025A1 (fr) * 2015-02-13 2016-08-18 Ideation Systems Llc Système modulaire comprenant plusieurs capteurs amovibles
US11226215B2 (en) * 2016-11-03 2022-01-18 Vega Grieshaber Kg Modular field device kit and method of assembly
US10352972B1 (en) * 2018-08-27 2019-07-16 Siemens Industry, Inc. Programmable multi-sensor measurement and control system addressing expandable modules
BR102021003753A2 (pt) * 2021-02-26 2022-09-06 Novus Produtos Eletrônicos Ltda Controlador de processos industriais e método de detecção automática de módulos de expansão acoplado em dito controlador de processos

Also Published As

Publication number Publication date
WO2021121626A1 (fr) 2021-06-24
US20230024136A1 (en) 2023-01-26
CN114981851A (zh) 2022-08-30

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