DK2630372T3 - Device for monitoring pump - Google Patents

Device for monitoring pump Download PDF

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Publication number
DK2630372T3
DK2630372T3 DK11758208.0T DK11758208T DK2630372T3 DK 2630372 T3 DK2630372 T3 DK 2630372T3 DK 11758208 T DK11758208 T DK 11758208T DK 2630372 T3 DK2630372 T3 DK 2630372T3
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DK
Denmark
Prior art keywords
unit
sensor
signal
component
monitoring
Prior art date
Application number
DK11758208.0T
Other languages
Danish (da)
Inventor
Alexander Böhm
Joachim Schullerer
Georg Herzing
Bernd Schramm
Gerd Ebelt
Stefan Laue
Ursula Kronfeld
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Ksb Ag
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Publication of DK2630372T3 publication Critical patent/DK2630372T3/en

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D15/00Control, e.g. regulation, of pumps, pumping installations or systems
    • F04D15/0088Testing machines
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D29/00Details, component parts, or accessories
    • F04D29/18Rotors

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Control Of Non-Positive-Displacement Pumps (AREA)
  • Structures Of Non-Positive Displacement Pumps (AREA)

Description

Device for monitoring a pump
The invention relates to a device and a method for monitoring rotating components in centrifugal pumps or systems which comprise centrifugal pumps.
Centrifugal pumps are used in a multiplicity of systems where they are subjected to very rough conditions from time to time. The state of a centrifugal pump, in particular of the impeller wheel, must therefore be monitored precisely as a function of the application in order to avoid damage to the centrifugal pump or to the entire system. DE 40 055 03 A1 presents a device for monitoring an impeller wheel by means of a light transmitter and an optical probe. This form of monitoring requires stationary centering of the light transmitter and sensor on the front edges of the vanes. However, this monitoring method is suitable only for a centrifugal pump which delivers a visually transparent medium. DE 10 2008 019 472 A1 discloses a vacuum pump with a pump stator and a pump rotor, wherein the pump rotor contains a transponder. In addition, sensors, a microcontroller and a memory which are connected to the transponder are arranged in the rotor. A reader which is arranged in the stator reads the sensor data of the rotor from the transponder. This type of monitoring makes very stringent demands of the electromagnetic compatibility of the vacuum pump.
The object of the invention is to provide a device for monitoring rotating components in centrifugal pumps or systems which comprise centrifugal pumps, which device can be used for any liquid delivery media or delivery media which are laden with solids, and is independent of electromagnetic peripheral conditions.
The solution provides a device for monitoring rotating components in centrifugal pumps or systems which comprise centrifugal pumps, wherein the transmission of signals takes place acoustically by means of sound waves. This permits simple and reliable transmission of signals of a monitored rotating component.
In one refinement of the invention, liquid and solid sound-conducting media are provided on the transmission link between a first unit, the transmitting unit, and a second unit, the receiver unit. It is advantageous here that the sound can be conducted along a path and the properties of the path can be clearly determined. The phase transitions of the sound between solid and liquid media can be taken into account in the transmission. Corresponding encoding of the signal takes into account losses at the phase transitions. A further advantage is obtained if the first unit has a setpoint value memory in which comparison values for the measured sensor signals are stored. Threshold values which are compared with the measured values can be stored in this setpoint value memory. If a threshold value is reached, a corresponding signal is transmitted to the receiver unit.
Degradation of the transmitted signal is prevented by selecting a different frequency for the transmission of information from frequencies of system noise. The term system noise is to be understood as meaning all acoustic emissions of the centrifugal pump and of the components connected thereto. In particular, the combination of different components gives rise to natural frequencies of the system which depend specifically on the individual configuration of the system. As a result of this measure, incorrect interpretations during the analysis of the received signals are prevented. In the case of selective adaptation of the signal, the transmission becomes insensitive with respect to interference as a result of the abovementioned system noise.
In order to be able to differentiate ambient noise, that is to say acoustic influences on the centrifugal pump or the system, which is input from the outside from the acoustically transmitted signals, in the second unit a soundwave sensor for determining ambient noise is provided. By means of a suitable filter it is possible to separate the ambient noise from the transmitted signal, as a result of which the signal information is improved. The use of a transmitting device, which is permanently connected to the centrifugal pump impeller wheel, occurs frequently in a very rough environment for electronic components. It is therefore advantageous if the first unit is integrated into a component, in particular if it is cast into the component. The surface of the component therefore at the same time protects the transmitting device. Owing to the acoustic transmission it is possible to integrate the first unit into a metallic component since the acoustic transmission of signals functions outstandingly in metals. Likewise it is possible to integrate the second unit, which comprises the receiver, into a metallic housing or to fit it onto the housing from the outside.
The first unit is equipped with an energy supply, this being a battery in the simplest case. Generators can also be provided which acquire electrical energy from the movement of the component, from vibrations or from temperature gradients. The autonomous supply of the first unit with energy is significant, in particular, if the latter is embedded in an encapsulated fashion into the component. In this case, the energy supply has to be ensured for the service life of the component.
In one refinement of the invention, the sensor of the first unit is designed to sense component properties of the centrifugal pump or of the system, for example machine temperature, mechanical pressure or stress or component fracture. As a result, selective monitoring of individual components is possible. Particularly component fractures can be detected easily by corresponding fracture sensors which are embodied as wires which run through the component, since an interruption in the wire in the case of a component fracture can be detected through a simple short-circuit of the wire. Furthermore, operating parameters can be sensed by means of a sensor. In the case of the centrifugal pump these are, for example, the rotational speed, power demand or period of use. This permits further monitoring of the components whose state can be heavily dependent on these parameters.
In a further refinement it is possible for the sensor to sense properties of the delivery medium. In this context, it is possible, for example, to detect the viscosity, the temperature or the concentration of the medium, which are then evaluated by the microprocessor. The analysis results thereof are transmitted to the outside.
Furthermore, a method is to be described for monitoring components having a device as mentioned above, in which an interrogation of the at least one sensor takes place at cyclically recurring intervals. The measured sensor data is compared with setpoint values from the setpoint value memory and when a threshold value is exceeded a signal is transmitted to the receiving unit. Alternatively it is possible to transmit a signal continuously, as a result of which the functionality of the transmitting device can be detected. In the event of a threshold value being exceeded, a signal is no longer transmitted, which indicates a fault which requires checking of the centrifugal pump or of the system.
The receiving unit continuously receives noise and selectively filters for possible transmission noise, specifically specifiable frequencies and pulse shapes. If a signal is detected, it is evaluated and either displayed on a display and/or passed on to a superordinate system controller.
In a further refinement of the method, during the evaluation of signals information is used which takes into account the ambient noise of the centrifugal pump or system. As a result errors can be reduced.
The invention also comprises an impeller wheel of a centrifugal pump which is equipped with the device for monitoring components. This simple and cost-effective device permits contactless monitoring of the impeller wheel, wherein during the contactless or wireless transmission of signals neither properties of the delivery medium nor electromagnetic influences from the surroundings of the centrifugal pump have to be taken into account.
For the integration of the device for monitoring components into an impeller wheel it is particularly suitable if the impeller wheel is manufactured from a polymer material, in particular from polymer concrete or mineral casting. These materials are cast cold, with the result that particular protection of the cast-in first unit is not necessary.
Further embodiments arise from the combination of the previously presented embodiments and are therefore not explained further here.
An exemplary embodiment of the invention is illustrated in the drawing and will be described in more detail below.
Figure 1 shows a device for monitoring rotating components in centrifugal pumps or systems which comprise centrifugal pumps, composed of a first unit 1, which is permanently connected to the component to be monitored. In addition to an arrangement in the direct vicinity of the component there is the possibility of integrating the first unit directly into the component. This is suitable, for example, if the component is composed of a cast material which can be cast at low temperatures, for example a polymer material, in particular polymer concrete or mineral casting. For this purpose, the ready-configured, autonomous first unit which is configured without cables is cast, for example, into a centrifugal pump impeller wheel. The component itself is not depicted for the sake of simplified illustration.
The first unit 1 comprises a sensor 2 for sensing component properties, which sensor 2 is connected to the first unit 1 at a sensor connection 3. It is also possible to connect a plurality of sensors 2 to the first unit 1. Possible sensors 2 are, for example, temperature, pressure and/or substance sensors or others. A fracture sensor, which is composed of at least one wire which runs through regions of the component at risk of fracture, is indicated in the figure. If a rupture forms on the component at a location through which the wire runs, the wire will tear as the rupture progresses and the electrical line will be interrupted along this wire. Ruptures in the component can be easily detected in this way. When there is a plurality of wires connected in parallel, progression of the formation of ruptures can also be observed. A microprocessor 4 for analyzing sensor signals directly evaluates the data picked up by the sensor 2 and passes on the analysis result to a transmitting unit 5 for transmission to a receiver which is spatially separate from the monitored component. The frequency of the sensor interrogation depends on the probability of an expected event. Said frequency significantly influences the energy requirement. A low testing frequency gives rise to long battery service lives and is improved further if the system is placed in an energy saving mode or switched off in the intervals between two interrogations.
The inventive monitoring of components by means of the acoustic transmission of data constitutes the variant which is the safest and most cost-effective within the design used. The signal 8 can be embodied as an acoustic message telegram which can contain various frequencies, pulse sequences or combinations thereof. By repeating the same signal it is possible to avoid incorrect transmissions. The embodiment of the sound generator, which forms the transmitting unit 5 in this embodiment, depends heavily on the information to be transmitted, the frequencies used and the surrounding delivery medium, since the signal 8 must pass through the latter. It is to be borne in mind here that in the case of an embedded first unit the signal must first exit the component, wherein a transition between the solid component and the liquid delivery medium or delivery medium which is laden with solids takes place. A further transition of the signal takes place if the second unit is also integrated into a solid component, for example into a housing, or if the second unit is mounted on the outside of a housing, within the acoustic range. Furthermore, a source for supplying energy 6 is accommodated on the first unit 1. A battery and a device which can acquire energy from the movement of the rotating impeller wheel or from temperature distributions in the impeller wheel are suitable for this.
Figure 1 also shows a second unit 9 which is equipped with a receiver unit 10. The latter is mounted in or on the pump housing during use in a centrifugal pump. Depending on the loading by the delivery medium, the receiver unit is to be provided with protection. As in the first unit 1, it can be appropriate to cast the second unit 9 directly into the pump housing. The receiver 10 is tuned to the transmitter 5 with respect to its frequency range which can be captured. The signals which are captured are fed to an evaluation unit 11. In the exemplary embodiment shown, the evaluation result can be shown directly on the pump, for which reason a corresponding display means 12 is provided. The display can take place acoustically or visually. Alternatively, there is the possibility of passing on the evaluation result to a superordinate system controller for which the connection 13 is provided.
List of reference numerals: 1 first unit 2 sensor 3 sensor connection 4 microprocessor 5 transmitting unit 6 energy supply 7 transmission link 8 signal 9 second unit 10 receiver 11 evaluation unit 12 display 13 connection

Claims (15)

1. Indretning til overvågning af roterende komponenter i centrifugalpumper eller anlæg omfattende centrifugalpumper, bestående af en første enhed (1) som er fast forbundet til den overvågede komponent, og som omfatter en kilde til energiforsyning (6), mindst en sensor (2), en mikroprocessor (4), en sendeenhed (5) til transmission af et signal (8) til modtager, der er rumligt adskilt fra den overvågede komponent, og en anden enhed (9) der omfatter en modtageenhed (10), et middel (11) til evaluering af det transmitterede signal (8) og et middel (12) til visning og/eller videreførelse (13) af en detekteret komponentegenskab, kendetegnet ved, at transmissionen af signalet (8) sker akustisk, ved hjælp af lydbølger.Apparatus for monitoring rotating components in centrifugal pumps or systems comprising centrifugal pumps, comprising a first unit (1) fixedly connected to the monitored component and comprising a source of energy supply (6), at least one sensor (2), a microprocessor (4), a transmitting unit (5) for transmitting a signal (8) to receiver spatially separated from the monitored component, and another unit (9) comprising a receiving unit (10), a means (11) ) for evaluating the transmitted signal (8) and a means (12) for displaying and / or transmitting (13) a detected component property, characterized in that the transmission of the signal (8) occurs acoustically, by means of sound waves. 2. Indretning ifølge krav 1, kendetegnet ved, at der på en transmissionsstrækning (7) mellem sendeenheden (5) og modtageenheden (10) er tilvejebragt flydende og faste lydledende medier.Device according to claim 1, characterized in that liquid and solid sound-conducting media are provided on a transmission line (7) between the transmitting unit (5) and the receiving unit (10). 3. Indretning ifølge krav 1 eller 2, kendetegnet ved, at evalueringsenheden (4) af den første enhed (1) indeholder et sætpunktværdilager.Device according to claim 1 or 2, characterized in that the evaluation unit (4) of the first unit (1) contains a set point value storage. 4. Indretning ifølge et hvilket som helst af kravene 1 til 3, hvor frekvens og faseposition af informationstransmissionen er forskellig fra frekvenser på støj fra systemet.Device according to any one of claims 1 to 3, wherein the frequency and phase position of the information transmission are different from frequencies of noise from the system. 5. Indretning ifølge et hvilket som helst af kravene 1 til 4, kendetegnet ved, at på den anden enhed (9) er der tilvejebragt en lydbølgesensor til at detektere omgivende støj.Device according to any one of claims 1 to 4, characterized in that on the second unit (9) a sound wave sensor is provided for detecting ambient noise. 6. Indretning ifølge et hvilket som helst af kravene 1 til 5, hvor den første enhed (1) er integreret i en komponent, især indstøbt.Device according to any one of claims 1 to 5, wherein the first unit (1) is integrated into a component, especially molded. 7. Indretning ifølge et hvilket som helst af kravene 1 til 6, hvor den første enhed (1) råder over en energiforsyning (6).Device according to any one of claims 1 to 6, wherein the first unit (1) has an energy supply (6). 8. Indretning ifølge et hvilket som helst af kravene 1 til 7, hvor sensoren (2) detek-terer driftsparametre for centrifugalpumpen eller anlægget.Device according to any one of claims 1 to 7, wherein the sensor (2) detects operating parameters of the centrifugal pump or system. 9. Indretning ifølge et hvilket som helst af kravene 1 til 8, hvor sensoren (2) detek-terer komponentegenskaber af centrifugalpumpen eller anlægget.Device according to any one of claims 1 to 8, wherein the sensor (2) detects component characteristics of the centrifugal pump or plant. 10. Indretning ifølge krav 9, hvor sensoren (2) er en brudsensor.Device according to claim 9, wherein the sensor (2) is a breaking sensor. 11. Indretning ifølge et hvilket som helst af kravene 1 til 10, hvor sensoren (2) de-tekterer egenskaber ved transportmediet.Device according to any one of claims 1 to 10, wherein the sensor (2) detects the characteristics of the transport medium. 12. Fremgangsmåde til overvågning af roterende komponenter med en indretning ifølge kravene ltil 11, kendetegnet ved, at en forespørgsel fra den mindst ene sensor (2) foregår i cyklisk tilbagevendende intervaller, hvor sensordataene sammenlignes med sætpunktværdier fra sætpunktværdilageret, og hvis de overstiger en tærskelværdi, sendes et signal (8) til modtageenheden (10), hvor modtageenheden (10) evaluerer signalet (8) og enten viser det på en visning (12) og/eller leder det videre til et højere niveau af anlægsstyring.Method for monitoring rotating components with a device according to claims 1 to 11, characterized in that a request from the at least one sensor (2) takes place in cyclic recurring intervals, where the sensor data is compared with setpoint values from the setpoint value store and if they exceed a threshold value. , a signal (8) is sent to the receiving unit (10), the receiving unit (10) evaluating the signal (8) and either displaying it on a display (12) and / or passing it on to a higher level of system control. 13. Fremgangsmåde til overvågning af komponenter med en indretning ifølge krav 12, kendetegnet ved, at til signalvurdering anvendes information, som tager højde for omgivende støj i centrifugalpumpen eller anlægget.Method for monitoring components with a device according to claim 12, characterized in that information for signal evaluation is used which takes into account ambient noise in the centrifugal pump or plant. 14. Løbehjul til centrifugalpumpe, kendetegnet ved, at det er udstyret med en indretning til overvågning ifølge krav 1 til 11.Centrifugal pump impeller, characterized in that it is equipped with a monitoring device according to claims 1 to 11. 15. Løbehjul ifølge krav 14, kendetegnet ved, at det er fremstillet af et polymermateriale, især polymerbeton.Scooter according to claim 14, characterized in that it is made of a polymeric material, in particular polymer concrete.
DK11758208.0T 2010-10-22 2011-09-21 Device for monitoring pump DK2630372T3 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
DE102010049138A DE102010049138A1 (en) 2010-10-22 2010-10-22 Device for pump monitoring
PCT/EP2011/066396 WO2012052246A1 (en) 2010-10-22 2011-09-21 Device for monitoring a pump

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DK2630372T3 true DK2630372T3 (en) 2016-02-22

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US (1) US20130230381A1 (en)
EP (1) EP2630372B1 (en)
CN (1) CN103249952B (en)
BR (1) BR112013009576B1 (en)
DE (1) DE102010049138A1 (en)
DK (1) DK2630372T3 (en)
MX (1) MX2013004444A (en)
PL (1) PL2630372T3 (en)
RU (1) RU2559104C2 (en)
WO (1) WO2012052246A1 (en)

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Publication number Publication date
EP2630372A1 (en) 2013-08-28
BR112013009576B1 (en) 2021-06-29
MX2013004444A (en) 2013-07-29
US20130230381A1 (en) 2013-09-05
CN103249952B (en) 2016-01-20
CN103249952A (en) 2013-08-14
DE102010049138A1 (en) 2012-04-26
BR112013009576A2 (en) 2016-07-12
EP2630372B1 (en) 2015-11-18
BR112013009576A8 (en) 2018-07-31
RU2013123455A (en) 2014-11-27
RU2559104C2 (en) 2015-08-10
PL2630372T3 (en) 2016-05-31
WO2012052246A1 (en) 2012-04-26

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