EP4255703A1 - Système mélangeur continu de matériau de construction, procédé de production d?un mélange de matériau de construction à humidité de mise en ?uvre au moyen d?un système mélangeur de matériau de construction et dispositif, doté en particulier d?une unité de contrôle ou d?une unité de stockage - Google Patents

Système mélangeur continu de matériau de construction, procédé de production d?un mélange de matériau de construction à humidité de mise en ?uvre au moyen d?un système mélangeur de matériau de construction et dispositif, doté en particulier d?une unité de contrôle ou d?une unité de stockage

Info

Publication number
EP4255703A1
EP4255703A1 EP21836034.5A EP21836034A EP4255703A1 EP 4255703 A1 EP4255703 A1 EP 4255703A1 EP 21836034 A EP21836034 A EP 21836034A EP 4255703 A1 EP4255703 A1 EP 4255703A1
Authority
EP
European Patent Office
Prior art keywords
building material
parameter
mixing
unit
mixing 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
EP21836034.5A
Other languages
German (de)
English (en)
Inventor
Alexander Breunig
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.)
Knauf PFT GmbH and Co KG
Original Assignee
Knauf PFT GmbH and Co 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 Knauf PFT GmbH and Co KG filed Critical Knauf PFT GmbH and Co KG
Publication of EP4255703A1 publication Critical patent/EP4255703A1/fr
Pending legal-status Critical Current

Links

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B28WORKING CEMENT, CLAY, OR STONE
    • B28CPREPARING CLAY; PRODUCING MIXTURES CONTAINING CLAY OR CEMENTITIOUS MATERIAL, e.g. PLASTER
    • B28C5/00Apparatus or methods for producing mixtures of cement with other substances, e.g. slurries, mortars, porous or fibrous compositions
    • B28C5/08Apparatus or methods for producing mixtures of cement with other substances, e.g. slurries, mortars, porous or fibrous compositions using driven mechanical means affecting the mixing
    • B28C5/10Mixing in containers not actuated to effect the mixing
    • B28C5/12Mixing in containers not actuated to effect the mixing with stirrers sweeping through the materials, e.g. with incorporated feeding or discharging means or with oscillating stirrers
    • B28C5/1238Mixing in containers not actuated to effect the mixing with stirrers sweeping through the materials, e.g. with incorporated feeding or discharging means or with oscillating stirrers for materials flowing continuously through the mixing device and with incorporated feeding or discharging devices
    • B28C5/1292Mixing in containers not actuated to effect the mixing with stirrers sweeping through the materials, e.g. with incorporated feeding or discharging means or with oscillating stirrers for materials flowing continuously through the mixing device and with incorporated feeding or discharging devices with rotating stirring and feeding or discharging means fixed on the same axis, e.g. in an inclined container fed at its lower part
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01FMIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
    • B01F27/00Mixers with rotary stirring devices in fixed receptacles; Kneaders
    • B01F27/21Mixers with rotary stirring devices in fixed receptacles; Kneaders characterised by their rotating shafts
    • B01F27/2123Shafts with both stirring means and feeding or discharging means
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01FMIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
    • B01F35/00Accessories for mixers; Auxiliary operations or auxiliary devices; Parts or details of general application
    • B01F35/20Measuring; Control or regulation
    • B01F35/21Measuring
    • B01F35/212Measuring of the driving system data, e.g. torque, speed or power data
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01FMIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
    • B01F35/00Accessories for mixers; Auxiliary operations or auxiliary devices; Parts or details of general application
    • B01F35/20Measuring; Control or regulation
    • B01F35/22Control or regulation
    • B01F35/2201Control or regulation characterised by the type of control technique used
    • B01F35/2207Use of data, i.e. barcodes, 3D codes or similar type of tagging information, as instruction or identification codes for controlling the computer programs, e.g. for manipulation, handling, production or compounding in mixing plants
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01FMIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
    • B01F35/00Accessories for mixers; Auxiliary operations or auxiliary devices; Parts or details of general application
    • B01F35/20Measuring; Control or regulation
    • B01F35/22Control or regulation
    • B01F35/221Control or regulation of operational parameters, e.g. level of material in the mixer, temperature or pressure
    • B01F35/2214Speed during the operation
    • B01F35/22142Speed of the mixing device during the operation
    • B01F35/221422Speed of rotation of the mixing axis, stirrer or receptacle during the operation
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B28WORKING CEMENT, CLAY, OR STONE
    • B28CPREPARING CLAY; PRODUCING MIXTURES CONTAINING CLAY OR CEMENTITIOUS MATERIAL, e.g. PLASTER
    • B28C5/00Apparatus or methods for producing mixtures of cement with other substances, e.g. slurries, mortars, porous or fibrous compositions
    • B28C5/08Apparatus or methods for producing mixtures of cement with other substances, e.g. slurries, mortars, porous or fibrous compositions using driven mechanical means affecting the mixing
    • B28C5/10Mixing in containers not actuated to effect the mixing
    • B28C5/12Mixing in containers not actuated to effect the mixing with stirrers sweeping through the materials, e.g. with incorporated feeding or discharging means or with oscillating stirrers
    • B28C5/14Mixing in containers not actuated to effect the mixing with stirrers sweeping through the materials, e.g. with incorporated feeding or discharging means or with oscillating stirrers the stirrers having motion about a horizontal or substantially horizontal axis
    • B28C5/142Mixing in containers not actuated to effect the mixing with stirrers sweeping through the materials, e.g. with incorporated feeding or discharging means or with oscillating stirrers the stirrers having motion about a horizontal or substantially horizontal axis the stirrer shaft carrying screw-blades
    • B28C5/143Mixing in containers not actuated to effect the mixing with stirrers sweeping through the materials, e.g. with incorporated feeding or discharging means or with oscillating stirrers the stirrers having motion about a horizontal or substantially horizontal axis the stirrer shaft carrying screw-blades for materials flowing continuously through the mixing device
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B28WORKING CEMENT, CLAY, OR STONE
    • B28CPREPARING CLAY; PRODUCING MIXTURES CONTAINING CLAY OR CEMENTITIOUS MATERIAL, e.g. PLASTER
    • B28C7/00Controlling the operation of apparatus for producing mixtures of clay or cement with other substances; Supplying or proportioning the ingredients for mixing clay or cement with other substances; Discharging the mixture
    • B28C7/02Controlling the operation of the mixing
    • B28C7/022Controlling the operation of the mixing by measuring the consistency or composition of the mixture, e.g. with supply of a missing component
    • B28C7/026Controlling the operation of the mixing by measuring the consistency or composition of the mixture, e.g. with supply of a missing component by measuring data of the driving system, e.g. rotational speed, torque, consumed power
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B28WORKING CEMENT, CLAY, OR STONE
    • B28CPREPARING CLAY; PRODUCING MIXTURES CONTAINING CLAY OR CEMENTITIOUS MATERIAL, e.g. PLASTER
    • B28C7/00Controlling the operation of apparatus for producing mixtures of clay or cement with other substances; Supplying or proportioning the ingredients for mixing clay or cement with other substances; Discharging the mixture
    • B28C7/04Supplying or proportioning the ingredients
    • B28C7/0404Proportioning
    • B28C7/0418Proportioning control systems therefor

Definitions

  • BUILDING MATERIAL CONTINUOUS MIXING DEVICE METHOD FOR PREPARING A BUILDING MATERIAL MIXTURE DAMP FOR PROCESSING BY MEANS OF A BUILDING MATERIAL CONTINUOUS MIXING DEVICE AND EQUIPMENT, IN PARTICULAR WITH A CONTROL UNIT OR STORAGE UNIT
  • the invention relates in particular to a building material continuous mixing device, a method for providing a processing-moist building material mixture by means of a building material continuous mixing device and a device, in particular with a control unit or a storage unit.
  • a building material continuous mixing device with a mixer unit operated in continuous flow for providing a processing-moist building material mixture from a dry building material mixture and water is known, for example, from DE 20 2004 020 257 U1.
  • the known building material continuous mixing device has a mixing chamber, which is horizontally aligned during operation, with a dosing zone upstream of the mixing chamber for feeding the dry building material mixture into the mixing chamber.
  • water is continuously fed to the mixing chamber and the dry building material mixture is fed via the dosing zone.
  • the dry building material mixture is mixed with the water as it passes through the mixing chamber to form the processing-moist building material mixture.
  • the processing-moist building material mixture is discharged at the end of the mixing chamber facing away from the dosing zone.
  • the dry-to-wet quantity ratio, i.e. the moisture consistency, of the building material mixture results from the quantity of dry building material mixture that is added via the dosing zone and from the quantity of water added.
  • undesirable fluctuations in the moisture consistency can occur, for example if, as is usual, the dry building material mixture is provided in a silo and is fed from the silo to the dosing zone.
  • such fluctuations in the moisture consistency can occur when the outflow behavior of the dry building material mixture from the silo is subject to fluctuations, for example caused by bridging in the silo or due to longer standing times in the silo.
  • the object of the underlying invention is to provide a new or alternative continuous mixing device for building materials.
  • a building material continuous mixing device is to be provided with which the disadvantage mentioned, in particular fluctuations in the moisture consistency, can be at least partially avoided or at least reduced and/or with which fluctuations in the moisture consistency can be determined automatically.
  • a method for providing a processing-moist building material mixture by means of a building material continuous mixing device is to be provided.
  • a device is to be provided, in particular with a control unit or a memory unit, which is set up to carry out the method.
  • a building material continuous mixing device is provided with a mixer unit operated in continuous flow for providing a processing-moist building material mixture, such as mortar or plaster mortar, by mixing a dry building material mixture with liquid, for example water.
  • the building material mixture can be based, for example, on mortar or concrete, and can include, for example, lightweight plaster, lime, cement, thermal plaster, and/or mortar mixtures and the like.
  • Such building material mixtures, or the underlying dry building material mixture usually contain a binder and harden permanently by the added liquid initiating a chemical setting process (hardening).
  • building material mixtures are particularly suitable which harden permanently after processing in the processing-moist, in particular free-flowing, state and are produced or can be produced in a continuous mixing process.
  • the building material continuous mixing device can be set up, for example, the building material mixture in the flow through the mixer unit, eg a Mixing chamber or a mixing zone to produce.
  • the mixture of dry building material and the liquid can be fed continuously to the mixer unit and mixed, so that the building material mixture can be made available continuously.
  • the building material mixture differs fundamentally from a compulsory mixer, in which cement, aggregates and water, for example, are added to a mixing drum and produced in batches.
  • the moisture consistency of the building material mixture is given in particular by the dry-to-wet quantity ratio of the building material mixture.
  • the moisture consistency or the dry-to-wet quantity ratio can, for example, be described or expressed by the viscosity of the building material mixture.
  • a higher dry-to-wet ratio means higher viscosity. With increasing viscosity, the building material mixture becomes less flowable.
  • a lower dry-to-wet quantity ratio means, for example, a lower viscosity. As the viscosity decreases, the building material mixture becomes more flowable.
  • the operating parameter indicative of the moisture consistency of the building material mixture can also be referred to as an operating parameter indicative of the viscosity of the building material mixture, or as an operating parameter dependent on the viscosity of the building material mixture.
  • processing-moist is to be understood in particular as meaning that the building material mixture is present in a moisture state suitable for the respective processing purpose or processing application and has a correspondingly suitable dry-to-wet quantity ratio.
  • a processing application for example, application to bricks as a layer of plaster or application to bricks to connect them comes into consideration.
  • the building material continuous mixing device is set up for this purpose at least in one operating mode, for example in an operating mode that can be selectively activated, for example by a user, an automatic to effect a change (or: adjustment or setting) of at least one mixing parameter influencing the moisture consistency (or: the viscosity) of the building material mixture or to automatically change (or: to adapt or set) at least one mixing parameter that influences the moisture consistency of the building material mixture.
  • the building material continuous mixing device is set up to bring about (or bring about) the automatic change in the mixing parameter on the basis of a detected operating parameter of the building material continuous mixing device indicative of the moisture consistency or a parameter derived therefrom.
  • a mixing parameter influencing the moisture consistency of the building material mixture is, as the term itself suggests, a mixing parameter that has an influence on the dry-to-wet quantity ratio during mixing operation of the building material continuous mixing device for preparing (or: producing) the processing-moist building material mixture.
  • Exemplary mixing parameters are mentioned below.
  • an increase in the dry quantity e.g. by changing the mixing parameter relating to the quantity of dry building material mixture fed to the mixing chamber, leads to a higher viscosity, while a decrease in the dry quantity correspondingly leads to a lower viscosity, assuming a constant supply of liquid.
  • the mixing parameter regarding the supply of liquid i.e. the wet quantity.
  • An increase in the wet quantity e.g. by changing the mixing parameter relating to the quantity of liquid supplied to the mixing chamber, causes a reduction in viscosity, assuming a constant supply of dry quantity.
  • reducing the amount of wet causes an increase in viscosity.
  • An operating parameter that is indicative of the moisture consistency is, as the term itself suggests, an operating parameter of the building material continuous-flow mixing device which, during mixing operation, directly or indirectly, in particular special causal, assumes a value that depends on a specifically existing moisture consistency, or changes directly or indirectly, in particular causally, with the moisture consistency.
  • An example of such an operating parameter is the torque, for example, of a drive unit, for example an electric motor, used to drive the mixer unit, in particular a mixing rotor or a mixing shaft.
  • an increasing or higher torque is indicative of an increasing or higher viscosity, ie a moisture consistency with an increasing or higher dry-to-wet quantity ratio, since the building material mixture is less flowable with higher viscosity and accordingly a higher mixing power, i.e. a higher mixing torque, is required.
  • a falling or low torque is indicative of a falling or lower viscosity, i.e. a moisture consistency with a falling or lower dry quantity, since the building material mixture is more flowable with lower viscosity and correspondingly a lower mixing force, i.e. a lower one mixing torque required.
  • a building material continuous mixing device in an embodiment according to the invention of a building material continuous mixing device according to the features of claim 2, with a mixer unit operated in continuous flow for preparing a processing-moist building material mixture, such as mortar or plaster mortar, by mixing a dry building material mixture with liquid, an operating mode is provided in which at least one for the moisture consistency of the building material mixture indicative operating parameters of the building material continuous mixing device are essentially continuously recorded, and the recorded operating parameter or a parameter derived therefrom is provided for changing a mixing parameter influencing the moisture consistency of the building material mixture and/or for display on a display unit of a user interface and/or for storage in a memory such as a log file.
  • a processing-moist building material mixture such as mortar or plaster mortar
  • the operating parameter or the parameter derived from it can be made available to a setting unit for a mixing parameter that influences the moisture consistency.
  • the setting unit can then, for example, change one (or more) mixing parameters and, through this change, influence the viscosity, ie the flowability of the building material mixture, and consequently the moisture consistency, in particular change it in a targeted or directed manner.
  • the display unit can then display this, for example, for example as visual or auditory information directed at an operator. Based on this information, the user can, for example, change a mixing parameter if the displayed operating parameter or derived parameter is indicative of an unsuitable or unfavorable moisture consistency, in particular viscosity.
  • the operating parameter or the parameter derived from it for storage in a log file, this can be stored, for example, in a memory of the building material continuous mixing device or in a memory assigned to the building material continuous mixing device.
  • the log file can be used, for example, for quality control purposes, to determine drying or hardening times for the building material mixture and/or to determine the operating state of the building material continuous mixing device for maintenance purposes.
  • the memory can be part of a memory unit of the building material continuous mixing device, for example. It is also possible that the memory is part of a memory unit that is connected or can be connected to the continuous building material mixing device via a wired or wireless data communication connection.
  • the storage unit can be installed at a location that is different, in particular remote, from the operating site of the continuous building material mixing device, for example in the form of a cloud storage unit. That is advantageous, for example, as part of predictive maintenance, in particular predictive remote maintenance, and/or as part of (remote) coordination of deployment planning for the building material continuous mixing device and/or work steps that may be required after the building material mixture has hardened.
  • the operating parameter or the parameter derived from it can be stored together with other data, in particular processing data, for example the batch number of the dry building material mixture, the processing location, the processing temperature, etc.
  • the other data can be entered manually and/or automatically by a user, for example are recorded.
  • the processing location can be determined by manual input at a user interface or automatically by a position detection system, e.g. based on GPS or GNSS.
  • a position detection system e.g. based on GPS or GNSS.
  • it is possible to determine the batch number, for example of the dry building material mixture provided in a silo by manual input or manual recording, for example by means of a scanner for scanning a batch code.
  • the further data to be assigned to the operating parameter or the parameter derived therefrom in some other way, in particular automatically, for example by an external computer instance set up, for example, to coordinate the use and work of the building material continuous mixing device.
  • the derived parameter can have a parameter value, for example, which indicates or specifies the moisture consistency and/or the viscosity of the building material mixture, or is characteristic of it.
  • the parameter value can specify or describe the dry-to-wet quantity ratio or the viscosity of the building material mixture.
  • the derived parameter can be determined, for example, empirically from test runs of the building material continuous mixing device and/or from calibration runs of the building material continuous mixing device and/or by calculation based on the properties of the dry building material mixture.
  • test runs and/or calibration runs of the building material continuous mixing device and/or a calculation are possible in particular if the dry building material mixture to be processed, even in different batches, has essentially the same, in particular defined or guaranteed, properties, in particular mixing properties, and/or an im Has a substantially constant, in particular defined or guaranteed composition.
  • the derived parameter can also take into account the ambient temperature and/or the temperature of the liquid, in particular to the extent that the viscosity of the building material mixture can be influenced by these temperatures.
  • Any calculation bases can be determined, for example, on rheological tests on the dry building material mixture and/or building material mixtures produced from it.
  • the building material continuous mixing device is set up to process dry building material mixtures of different types, for example with different compositions, different mixing behavior and/or different hardening behavior
  • the derived parameter can be determined or set specifically for the processed type.
  • any desired values which are described in more detail below, can be provided specifically for the type, for example in the form of a recipe database.
  • the embodiments of the construction material continuous mixing device proposed according to the invention are, based on the above statements, suitable for recognizing, determining, recording, logging and/or for operating the construction material continuous mixing device during operation of the moisture consistency or a variable representing the moisture consistency to use or provide.
  • the building material continuous mixing device can be operated in such a way that the building material mixture has a substantially constant moisture consistency can be provided or produced.
  • information on device wear and/or maintenance can be determined from the operating parameters. The latter can be used, for example, as part of fleet management and/or predictive maintenance.
  • the at least one operating parameter can include at least one variable selected from the following group: speed, torque, power consumption, power factor, current consumption of the mixer unit, in particular of a drive unit assigned to the mixer unit.
  • the operating parameter(s) can, for example, be recorded (or: measured) actual values, such as the actual speed, the actual torque, etc.
  • the operating parameter derived therefrom can correspondingly be a respective actual parameter.
  • the moisture consistency or viscosity of the building material mixture just mixed in the mixer unit can be determined or calculated from the respectively determined or measured torque and used as the derived parameter.
  • the operating parameter can also be used directly.
  • the derived parameter for example a value describing the moisture consistency and/or the viscosity, can be determined, for example, on the basis of an empirically or rheologically determined calculation formula and/or on the basis of a table of values, e.g. based on empirical values or operating data, by comparison.
  • the use of operating parameters to characterize the moisture consistency offers the particular advantage that it is not absolutely necessary to install measuring sensors in the mixing chamber.
  • the measuring sensors for measuring or determining the operating parameter can advantageously be arranged outside of the mixing chamber, for example on or in a drive train of the building material continuous mixing device. This allows For example, simpler assembly, simpler electrical and data connection and/or maintenance of the measuring sensors can be achieved.
  • the measuring sensors can be installed in a protected area compared to an arrangement in the mixing chamber and the harsh environmental influences prevailing therein.
  • the at least one mixing parameter can include at least one variable selected from the following group: amount of dry building material mixture fed to the mixer unit, in particular to a mixing chamber of the mixer unit, amount of liquid fed to the mixer unit, in particular to a mixing chamber of the mixer unit. If, for example, the operating parameter or the parameter derived from it indicates that the viscosity is too low, the quantity of dry building material mixture supplied can be increased in order to counteract a falling viscosity, and vice versa if the viscosity is too high.
  • the quantity of dry building material mixture can be changed, for example, by increasing or reducing the conveying speed of a conveying unit for the dry building material mixture, for example a dosing unit.
  • a change in the quantity of dry building material mixture can also be achieved in that a slider present in the conveyor line for the dry building material mixture is adjusted, for example further closed or opened.
  • a valve present in the supply line can be adjusted, for example further closed or opened.
  • a pump can also be present to supply the liquid.
  • the building material continuous mixing device can include controllable control units, for example for a conveyor unit, a slide, a valve, a pump, etc., and the building material continuous mixing device can be set up for these control units and thus the respectively assigned ones To set or set mixing parameters as a function of the operating parameter or the derived parameter, for example to counteract a respectively determined or detected change in the operating parameter or the derived parameter.
  • the building material continuous mixing device can be set up to couple the operating parameter or the derived parameter to the mixing parameter in terms of open-loop or closed-loop control.
  • the coupling can provide that if the operating parameter or the derived parameter changes, for example if the operating parameter or the derived parameter deviates from a target value or a target value interval, the at least one mixing parameter, e.g. by setting the assigned control unit, is changed in this way or it is set that the change or the deviation can be counteracted.
  • the building material continuous mixing device can furthermore comprise a conveyor unit for charging the mixer unit, in particular the mixing chamber of the mixer unit, with the mixture of dry building material.
  • the building material continuous mixing device can be set up to automatically change the quantity of the dry building material mixture fed to the mixer unit, in particular the mixing chamber, by changing the conveying speed of the conveying unit on the basis of the operating parameter.
  • the conveyor unit may include, for example, one or more screw conveyors, conveyor belts, etc.
  • the building material continuous mixing device can comprise a liquid supply unit which is designed to supply the liquid to the mixer unit, in particular to the mixing chamber of the mixer unit.
  • the liquid supply unit can, for example, comprise a feed line with which the liquid can be supplied from a tank to the mixing chamber.
  • the liquid can be supplied based on gravity and/or based on a pump. If the amount of liquid supplied is used as a mixing parameter, a controllable valve, such as a control valve, can be used in the case of gravity-based supply.
  • a controllable pump can be used, with which the mixing parameter relating to the quantity of liquid supplied can be changed or adjusted, for example by changing the pump output or pump speed.
  • a gravity-based supply of the liquid for example from a storage tank
  • fluctuations in the liquid supply can be at least largely or even completely avoided in comparison to the supply from a supply network, for example a water supply network. Fluctuations in a supply network can occur, for example, if several consumers with variable or discontinuous liquid withdrawal are connected to it.
  • the storage tank can be used as a kind of buffer storage for the liquid. Even if such a buffer store is fed from a supply network, said fluctuations can be at least largely or even completely avoided by the buffer effect. Consequently, fluctuations that are subject to a supply network and that are essentially uncontrollable can be ruled out as potential disturbance variables in the liquid supply, so that corrective measures can be dispensed with.
  • a substantially constant, for example defined, supply of the quantity of liquid can be achieved, so that it is possible to set, regulate or control the moisture consistency solely via the mixing parameters relating to the quantity of dry building material mixture supplied.
  • the liquid is supplied from a supply network or feed network that is subject to fluctuations in the amount of liquid supplied, said fluctuations can be corrected, for example, by suitable measures.
  • the building material continuous mixing device can have a flow meter with which the amount of liquid supplied can be determined. Based on the measurement data from the flow meter, the supply of dry building material mixture can then be adjusted, for example in such a way that the moisture consistency desired in each case is achieved. If the liquid supply is too low or too high, the supply of dry building material mixture can be throttled or increased accordingly.
  • the continuous-flow mixing device for building material is set up to automatically change the quantity of liquid fed to the mixer unit, in particular the mixing chamber, on the basis of the operating parameter.
  • Exemplary configurations using a controllable valve or a controllable pump have already been mentioned above.
  • an electronic arithmetic unit assigned to the building material continuous mixing device can be set up to determine an actuating signal from the operating parameter or the derived parameter.
  • the building material continuous mixing device can comprise a control unit, in particular an electronic control unit, for changing the mixing parameter on the basis of the control signal.
  • the setting unit can be set up, for example, to change, in particular to set, the conveying speed of a conveying unit for feeding the mixer unit with dry building material mixture.
  • the control unit can be set up to change, in particular to set, the supply of liquid to the mixer unit via, for example, a valve or a pump.
  • the building material continuous mixing device can furthermore comprise a measuring unit for detecting the operating parameter.
  • a torque sensor can be present in the drive train of the mixer unit to detect the torque as an operating parameter.
  • Appropriate sensors can be present to record other operating parameters, such as a current or power sensor and/or speed sensor on an (electric) drive of the drive train.
  • Said computer unit can, at least in part, be part of the building material continuous mixing device, or, at least partially, be designed as a remote computer unit that can be connected or is connected to the building material continuous mixing device via a data communication connection.
  • the operating parameter measured by the measuring unit or the derived parameter if this is determined by the measuring unit, can be transmitted to the computer unit, which determines the mixing parameter and/or the control signal from it and transmits it to the control unit for implementation or controls the control unit accordingly.
  • the building material continuous mixing device or the measuring unit can, for example, transmit the measured operating parameter or the derived parameter via the data communication connection to the remote computer unit, which can then, for example, determine the control signal and transmit it to the building material continuous mixing device for implementation.
  • the actuating unit can be controlled or regulated by the remote computer unit.
  • the building material continuous mixing device in particular the electronic control unit, can be set up to set the moisture consistency of the building material mixture to a predefined or specifiable desired value or a predefined or specifiable desired value interval.
  • the moisture consistency can be adjusted, for example, by the computer unit, in which case, as already indicated, the computer unit can be designed as the central unit of the building material continuous mixing device. It is also possible for the computer unit to include a number of distributed units, including remote units.
  • the building material continuous mixing device can be set up to use the operating parameter or the parameter derived therefrom as a regulation or control variable, the target value or the target value interval as a command variable, and the mixing parameter as a manipulated variable or control variable.
  • a correspondingly designed computer unit can be set up to regulate or control the moisture consistency on the basis of the operating parameter or the derived parameter.
  • the moisture consistency can be changed, in particular regulated or controlled, for example by setting or changing one or more mixing parameters, for example based on control values that are determined from the operating parameter or the derived parameter.
  • a setpoint operating parameter characteristic of a predetermined or predeterminable moisture consistency of the building material mixture or a characteristic setpoint operating parameter interval for the detected operating parameter or the derived parameter can be used as the setpoint or as the setpoint interval.
  • a desired moisture consistency e.g. viscosity
  • the building material continuous mixing device or an assigned computer unit can be set up to adapt the mixing parameters in such a way that deviations from the respectively determined operating parameters or The parameters derived from the target value or target value interval can be reduced or minimized.
  • the building material continuous mixing device is set up to set or set the reference variable and/or the manipulated variable or control variable as a function of the ambient and/or liquid temperature.
  • the building material continuous mixing device can also be set up to determine or measure the ambient temperature and/or the liquid temperature, for example using appropriate temperature sensors. By taking the temperature into account, for example, temperature fluctuations occurring during the course of processing, eg daily temperature fluctuations, can also be included.
  • the target value or the target value interval can be stored in a database or a memory, preferably in the form of a table of values, e.g. also as a function of the temperature.
  • the stored or filed values can be target values or target value intervals that are specific to the dry building material mixture and/or the application of the building material mixture.
  • the building material continuous mixing device can be set up to read the target value and/or the target value interval from the database or the memory and to use it to adjust the moisture consistency, for example by using the target value or the target value interval read out by a computer unit for regulating or controlling the Operation of the building material continuous mixing device, in particular the mixing parameter, is used.
  • the building material continuous mixing device can include a user interface with a setting control element, in particular a setting button, and be set up to assign a respectively determined actual value of the operating parameter as the setpoint when the setting control element is actuated put.
  • a predefined or definable tolerance range can be assigned to the setpoint value that is set.
  • the building material continuous mixing device can, for example, be set up in such a way that a correspondingly set setpoint and/or setpoint interval is or is stored in the database or memory, preferably together with additional information on the type of dry building material mixture, the batch, the temperature, the Processing location, etc.
  • the database or memory can provide a type of recipe or processing database, which can be designed to be expandable by adding further setpoint data, and from the recipes, e.g. setpoint data and other information, for example for setting the building material continuous mixing device and/or can be called up as part of a quality assurance or test.
  • the building material continuous mixing device can be set up to process the operating parameter or the derived parameter and/or the respectively associated mixing parameter, optionally together with further data or information, e.g. the respective ambient temperature, in particular processing temperature, and/or the temperature of the liquid. the place of processing, date, time, etc., in a log file.
  • further data or information e.g. the respective ambient temperature, in particular processing temperature, and/or the temperature of the liquid. the place of processing, date, time, etc., in a log file.
  • data or information e.g. the respective ambient temperature, in particular processing temperature, and/or the temperature of the liquid. the place of processing, date, time, etc.
  • the stored data can be used, for example, as part of quality assurance.
  • the stored data can also be read out and analyzed as part of predictive maintenance and/or to determine operating information such as malfunctions, wear and tear on mixer arms, dosing elements, etc.
  • the building material continuous mixing device is set up to stop the mixing operation of the building material continuous mixing device, in particular to stop it in a manner that can be acknowledged, if a deviation, e.g. continuous and/or significant, of the operating parameter indicative of the moisture consistency or a parameter derived therefrom from the setpoint or setpoint interval is detected or is determined.
  • the time profile of the operating parameter or the parameter derived therefrom in particular the time profile of the deviation from the target value or target value interval, can be recorded.
  • a tolerance limit value can be or can be stored in addition to the setpoint or setpoint interval. If the tolerance limit value is exceeded, in particular if it is continuously exceeded, a significant deviation, in particular a continuous one, can be determined accordingly. With the mode of operation described, it can be avoided, for example, that in terms of moisture consistency, unsuitable or unsuitable building material mixtures are processed.
  • the building material continuous mixing device can be set up to output an error message or warning message, preferably one that can be acknowledged, on a user interface if there is a, in particular continuous and/or significant, deviation of the operating parameter indicative of the moisture consistency or a parameter derived therefrom from the setpoint or setpoint interval is detected.
  • the user can be alerted to corresponding deviations, for example visually or acoustically.
  • the stopping of the building material continuous mixing device or the output of the error message can be linked, for example, to a notice to check that the building material continuous mixing device, for example the mixer unit, etc. is functioning properly.
  • Constant deviations can be caused, for example, by wear and tear or malfunctions in the area of feeding the mixing chamber with drywall Mixture of substances and/or fluid intake may be caused. Examples include wear on a dosing shaft for feeding the dry building material mixture to the mixing chamber, missing or insufficient discharge when removing the dry building material mixture from a silo, partial or full closure of the liquid supply, etc..
  • the building material continuous mixing device or a computer unit that is data-technically connected to the building material continuous mixing device can be set up to record the operating parameter, the derived parameter and/or the mixing parameter, and/or a time profile of the operating parameter, the derived parameter or mixing parameter or to determine, and based on the operating parameter, the derived parameter and/or the mixing parameter and/or the respective course over time, to determine an operating state, in particular an operating moment, of the building material continuous mixing device as part of predictive maintenance, to provide this for determining the operating state, or to store it in a log file.
  • the operating parameters determined in any case for setting the moisture consistency or derived parameters can also be used for maintenance purposes.
  • the building material continuous mixing device or computer unit can be set up to display a maintenance and/or wear indicator for at least one operating component of the building material Continuous mixing device, in particular the mixer unit, a drive unit, a conveyor unit for supplying the dry building material mixture and/or for supplying or adding the liquid.
  • Corresponding maintenance or wear information can also be transmitted to a remote computer, for example for the purpose of requesting spare parts or maintenance measures.
  • the mixer unit comprises a continuous mixing chamber with a mixing zone, a loading zone for loading the mixing area with dry building material mixture and a discharge zone for discharging processing-moist building material mixture from the mixing zone.
  • the continuous mixing chamber in particular the mixing zone, the charging zone and/or the discharge zone, can have, for example, a hollow-cylindrical shape at least in part.
  • the flow-through mixing chamber can be set up as a horizontal mixing chamber, in which the building material mixture or the dry building material mixture runs through the mixing chamber, for example essentially parallel to the machine standing surface or mounting surface. However, it is also possible for the passage to take place at an angle to the machine base or assembly area.
  • the building material continuous mixing device can furthermore comprise: a supply unit or feed unit for supplying or feeding the liquid, in particular water, into the mixing zone; a measuring unit for recording the operating parameter indicative of the moisture consistency, and a data processing unit, for example a computer unit which is or can be connected to the building material continuous mixing device in terms of data technology, for determining and setting the mixing parameter on the basis of the operating parameter or the parameter derived therefrom, for example in the frame a regulation or control.
  • a supply unit or feed unit for supplying or feeding the liquid, in particular water, into the mixing zone
  • a measuring unit for recording the operating parameter indicative of the moisture consistency
  • a data processing unit for example a computer unit which is or can be connected to the building material continuous mixing device in terms of data technology, for determining and setting the mixing parameter on the basis of the operating parameter or the parameter derived therefrom, for example in the frame a regulation or control.
  • the building material continuous mixing device comprises a mixing shaft with mixing elements assigned to the mixing zone, a dosing shaft with dosing elements assigned to the charging zone and also at least one, in particular precisely one, drive unit that is or can be coupled to the mixing shaft and the dosing shaft to drive them.
  • the detected operating parameter indicative of the moisture consistency can be an operating parameter of the drive unit, for example a drive motor or a drive train.
  • the dosing shaft can be connected to the drive unit to drive it, and the mixing shaft can be connected to the dosing shaft via a non-positive coupling, in particular in a collinear arrangement.
  • a coupling can be used, for example, in the above-mentioned horizontal mixing chamber, but also in mixing chambers in which the passage takes place at an angle to the ground or the machine base.
  • the building material continuous mixing device comprises a torque sensor arranged in a drive train for operating the mixer unit, in particular between the drive unit and the metering shaft and/or the mixing shaft, for detecting the torque of the drive unit as the operating parameter indicative of the moisture consistency of the building material mixture, with the torque sensor preferably being used is designed as a strain gauge sensor.
  • the torque sensor can be arranged, for example, in the area between the output of a drive motor and a drive shaft of the mixer unit that is driven by the drive motor.
  • a method for providing a processing-moist building material mixture by means of a building material continuous mixing device, in particular according to one of the embodiments described herein, by mixing a dry building material mixture with liquid.
  • At least one operating parameter that is indicative of the moisture consistency of the building material mixture is recorded.
  • At least one mixing parameter of the continuous-flow mixing device that influences the moisture consistency is changed, in particular adjusted or set, on the basis of the operating parameter that is recorded and is indicative of the moisture consistency, or based on a parameter derived therefrom, and/or the the operating parameter indicative of the moisture consistency of the building material mixture or a parameter derived therefrom is provided, in particular for changing a mixing parameter influencing the moisture consistency of the building material mixture and/or for storage in a memory, in particular in a log file.
  • At least one variable selected from the following group is recorded or measured as an operating parameter in the method: speed, torque, power consumption, power factor, current consumption of the mixer unit, in particular of a drive unit assigned to the mixer unit.
  • the variables can each be recorded or measured as actual variables. It is also possible for the method to be based on a mean value of successive individual measurements as the operating parameter.
  • variable or combination of variables can be used in each case to be variable, in particular selectable. For example, different sizes and/or combinations of sizes, e.g. for selection, can be provided and/or used for different types of building material mixtures.
  • the at least one mixing parameter can include at least one of the variables already mentioned above in connection with the building material continuous mixing device.
  • the determined operating parameter or the parameter derived therefrom can be compared with a predetermined or specifiable desired value or desired value interval.
  • the mixing parameter is changed, in particular controlled or regulated, in such a way that the operating parameter or the derived parameter is returned to the target value.
  • the mixing parameter can also be changed as a function of the ambient temperature and/or the liquid temperature or other relevant variables.
  • the target value or the target value interval is or is stored in a database, e.g.
  • the desired value or the desired value interval is read out from the database or the memory and used to set the moisture consistency or the mixing parameter.
  • an actual value of the operating parameter determined during operation of the building material continuous mixing device or a parameter derived therefrom is set or stored as a setpoint value to be used or usable in further operation.
  • the desired value can be stored or set, for example, based on a user input recorded by a user interface assigned to the building material continuous mixing device. For example, user input may be captured via a set control or set button.
  • the operating parameter or the derived parameter and/or the respectively associated mixing parameter optionally together with the respective ambient temperature and/or the temperature of the liquid, and/or others already mentioned above, relevant data is stored in a log file.
  • storage in the log file can take place when a continuous and/or significant deviation of the operating parameter indicative of the moisture consistency or the parameter derived therefrom from the target value is determined.
  • the mixing operation of the building material continuous mixing device can be stopped, in particular stopped with acknowledgment, if a continuous and/or significant deviation of the operating parameter indicative of the moisture consistency or the parameter derived therefrom from the setpoint is determined.
  • an error message preferably one that can be acknowledged, can be output on a user interface if a, in particular continuous and/or significant, deviation of the operating parameter indicative of the moisture consistency or the parameter derived therefrom from the target value is detected.
  • the operating parameter, the parameter derived therefrom and/or the mixing parameter and/or the time profile of the operating parameter, the derived parameter or mixing parameter is recorded or determined and based on the operating parameter, the derived parameter and/or the mixing parameter and/or the respective course over time, an operating state, in particular an operating moment, of the building material continuous mixing device is determined.
  • This determination can be made as part of predictive maintenance.
  • one or more of the parameters mentioned can also only be provided for further processing, for example to determine the operating status, for example if the processing and processing takes place on a separate computer unit, e.g. remotely.
  • a maintenance and/or wear and tear message for at least at least one operating component of the building material continuous mixing device in particular the mixer unit, a conveyor unit for supplying the dry building material mixture and/or the liquid and/or a drive unit are generated, with the maintenance and/or wear message preferably being displayed on a display unit assigned to the building material continuous mixing device , for example a user interface, or a display unit of a computer unit assigned to the building material continuous mixing device and/or is displayed thereon.
  • the continuous-flow mixing device comprises a mixing shaft with mixing elements assigned to a mixing zone, a dosing shaft with dosing elements assigned to a charging zone, and also a drive unit for driving the mixing shaft and the dosing shaft.
  • the detected operating parameter can be detected as an operating parameter of the drive unit and/or a drive train.
  • the operating parameter can preferably be detected as a torque determined in the drive train, in particular on the drive unit.
  • the torque can be determined or recorded by means of a torque sensor, e.g. a strain gauge sensor, arranged between a drive motor and the dosing shaft and/or the mixing shaft.
  • the operating parameter or the derived parameter is determined as an average of successively measured operating parameter values, in particular continuously successively measured operating parameter values.
  • a calibration of a measuring unit or actuating unit used to determine the operating parameter and/or the mixing parameter can be carried out before determining the operating parameter and/or the mixing parameter.
  • a device in particular with a control unit or a memory unit, which includes a memory with instructions stored therein which, when executed by a computer unit, bring about a method according to an embodiment of the invention described herein.
  • the device can be a computer unit connected to the building material continuous mixing device via a data communication interface and/or the building material continuous mixing device as such can comprise the device.
  • FIG. 1 is a schematic view of a building material continuous mixing device
  • FIG. 2 the building material continuous mixing device according to FIG. 1 with other components and/or associated units,
  • FIG. 3 to 5 diagrams of the time course of various parameters and variables during an exemplary mixed operation
  • FIG. 6 shows an exemplary flow chart of a method for operating the building material continuous mixing device.
  • FIG. 1 shows a schematic view of an exemplary building material continuous mixing device 1.
  • the building material continuous mixing device 1 comprises a mixer unit 2 and a drive unit 3 assigned to the mixer unit 2, for example an electric motor.
  • the building material continuous mixing device 1 is set up to provide a processing-moist building material mixture from a dry building material mixture with the addition of water.
  • the dry building material mixture is supplied via a hopper opening 4, for example from a silo (not shown in FIG. 1) with dry building material mixture.
  • the funnel opening 4 can have a flange 5 via which the building material continuous mixing device 1 can be detachably flanged to an outlet opening of the silo.
  • a slide e.g. actuatable or manually operated, can be provided for opening and closing the outlet opening or the hopper opening 4.
  • the dry building material mixture is not fed directly from the silo, but via an intermediate conveyor unit, e.g. with a screw conveyor, to the building material continuous mixing device 1.
  • an intermediate conveyor unit e.g. with a screw conveyor
  • the dry building material mixture reaches the dry material zone 6 of the mixer unit 2 via the hopper opening 4.
  • This dry material zone 6 can comprise mixing elements for pre-mixing the dry building material mixture.
  • the dry material zone 6 is followed by a dosing zone 7 for the dry building material mixture and the dosing zone 7 is followed by a mixing zone (or: mixing zone) 9, in which the mixing liquid, in particular water, is supplied in order to produce a wet mixture.
  • a conveying and dosing shaft 8 the dry building material mixture is moved from the dry material zone 6 through the dosing zone 7 transported to the mixing zone 9.
  • the conveying and dosing shaft 8 includes a screw thread for the directional conveying of the dry building material mixture from the dry material zone 6 via the dosing zone 7 into the mixing zone 9, and for pre-mixing the dry building material mixture in the dry material zone 6.
  • a conveyor screw of the conveyor and metering shaft 8 runs in a tubular section, the inside diameter of which corresponds approximately to the outside diameter of the screw thread of the conveyor screw.
  • the amount of dry building material mixture that is conveyed depends, among other things, on the respective speed of the screw conveyor, i.e. in the present example the speed of the conveying and dosing shaft 8.
  • the dosing zone 7 has a funnel-shaped design that widens towards the mixing zone 9 .
  • the pitch of the screw thread of the conveying and dosing shaft 8 is greater, and the diameter increases towards the mixing zone 9 in a funnel-shaped manner corresponding to the funnel-shaped widening.
  • the mixing zone 9 comprises a mixing chamber 10, in which there is a mixing shaft 11, which extends from the conveying and dosing shaft 8 and is rotatably coupled thereto, with a plurality of mixer arms 12 attached thereto, which can have radially and/or axially running mixing segments and/or mixing fingers.
  • the shafts 8 and 11 are arranged axially to the common central axis, which also forms the axis of rotation A of the shafts 8 and 11, one behind the other and colli near one another.
  • the zones 6, 7 and 9 assigned to the shafts are arranged axially to the axis of rotation A one behind the other.
  • the processing-moist building material mixture is conveyed through the mixing chamber 10, mixed with water by the mixer arms 12, and made available at a discharge zone 14 for further processing.
  • the building material continuous mixing device 1 is designed as a continuous mixing device which is suitable for producing or providing a processing-moist building material mixture from the mixture of dry building material with the addition of water in continuous operation.
  • the mixer unit 2 When the mixer unit 2 is in operation, its longitudinal axis is preferably aligned essentially parallel to the machine base 15 or a subsurface, in particular horizontally.
  • the conveying and dosing shaft 8 is non-positively connected to the mixing shaft 11, for example via a detachable non-positive connection.
  • the conveying and dosing shaft 8 in turn is connected to the drive unit 3 via a non-positive connection, for example via a detachable non-positive connection.
  • a torque sensor 16 is arranged between the end of the feed and metering shaft 8 facing the drive unit 3 and the output or output of the drive unit 3, which is set up to measure the torque at the output of the drive unit 3 or that acting on the feed and metering shaft 8 torque.
  • FIG. 1 An operating mode of the building material continuous mixing device 1 according to FIG. 1 and an operating method are described in more detail below in connection with FIGS.
  • FIG. 2 shows the building material continuous mixing device with additional components and/or associated units.
  • a building material continuous mixing device 1 is a building material continuous mixing device 1, with an associated feed tank 17 for water 18, and a silo 19 for the dry building material mixture 20.
  • the feed tank 17 is connected to the water supply 13 via a feed line 21.
  • the silo 19 has a screw conveyor 22 for supplying dry building material mixture 20 from the silo 19 to the dry material zone 6 .
  • FIG. 2 a computer unit 23, a setpoint memory 24 and a log memory 25, as well as a user interface 26.
  • the units or components mentioned can be assigned to the building material continuous mixing device 1 or they can be part of the building material continuous mixing device 1.
  • the computer unit 23 is connected to the setpoint memory 24 , the log memory 25 and to the user interface 26 via data communication links 27 .
  • the computer unit 23, the setpoint memory 24, the log memory 25 and the user interface 26 can be an integral part of a machine control of the building material continuous mixing device 1, or at least partially as separate units, in particular remote units be.
  • the log memory 25 and/or the setpoint memory 24 can be present as such on the building material continuous mixing device 1 .
  • the computer unit 23 can comprise one or more separate units which can be designed in the machine control or as remote computer units.
  • the data communication connections 27 can be wireless or wired connections.
  • the building material continuous mixing device 1 and the other components and/or associated units are set up in a mixing operating mode to use the torque sensor 16 to measure the torque D of the drive train 3 formed by the drive unit 3, the conveying and metering shaft 8 and the mixing shaft 11, 8, 11 to determine.
  • the torque D can be used as an operating parameter of the continuous-flow mixing device 1 for the building material which is indicative of the moisture consistency F of the processing-moist building material mixture.
  • the moisture consistency F describes the dry-to-wet quantity ratio of the building material mixture, i.e. the ratio between the dry quantity of the dry building material mixture and the quantity of water in the building material mixture.
  • the torque D continuously determined by the torque sensor 16 during the mixing process is transmitted to the computer unit 23 via the data communication connection 27 or retrieved from it.
  • the torque D or a parameter provided or determined by the computer unit 23 and derived therefrom is used, in the present example, by the computer unit 23 in an operating mode to change the speed RPM of the drive unit 3.
  • an actuating signal in particular a regulation or control signal, is supplied by the computer unit 23 via one of the data communication connections 27 .
  • the drive unit 3 changes the speed RPM accordingly in response to the actuating signal.
  • the rotational speed RPM is the moisture consistency the building material mixture influencing mixing parameters of the building material continuous mixing device 1.
  • the torque D or the speed RPM or the derived parameter can be provided for display on a display unit of the user interface 26 and/or for storage in a log file of the log memory 25 .
  • the torque D or the speed RPM or the derived parameter can be displayed on the display unit and/or stored in the log file.
  • the computer unit 23 and the building material continuous mixing device 1 can be set up to automatically change the speed RPM as the mixing parameter influencing the moisture consistency F on the basis of the detected torque D or the parameter derived therefrom, which are each representative of a moisture consistency F indicative operating parameters.
  • the present example is described as an example with the torque as the operating parameter and the speed RPM as the mixing parameter.
  • the mixing parameter for example, the quantity of water 18 supplied to the mixing chamber 10 from the feed tank 17 can also or alternatively be used.
  • the speed RPM as a mixing parameter
  • the quantity of dry building material mixture 20 supplied to the dry material zone 6 via the hopper opening 4 can also be changed.
  • a control valve in the feed line 21 or on the water supply 13 or in the area of the screw conveyor 22 at the outlet of the silo 19 or on the hopper opening 4 is suitable for changing the amount of water 18 or the amount of dry building material mixture fed to the hopper opening 4. controllable slider.
  • increasing or decreasing the speed RPM results in an increased or decreased conveying speed, whereby the amount of dry build material mix 20 supplied to the mixing chamber 10 may be increased or decreased.
  • the moisture consistency F ie the dry-to-wet quantity ratio
  • increasing or reducing the amount of water is also suitable for adapting, in particular reducing or increasing, the moisture consistency F, ie the dry-to-wet quantity ratio.
  • the building material continuous mixing device 1, in particular the computer unit 23, is set up to set the moisture consistency F of the building material mixture to a predetermined or specifiable desired value S or a predetermined or specifiable desired value interval SI.
  • the setpoint interval SI can be defined on the basis of a setpoint S by tolerance ranges T lying on both sides of the setpoint S.
  • the torque D can be used as a regulation or control variable in a control or regulation, which can be implemented on the computer unit 23, for setting the moisture consistency F.
  • the speed RPM can be used as a manipulated variable or control variable.
  • the desired value S or the desired value interval SI is stored in the desired value memory 24, for example in the form of a table of values.
  • the setpoint memory 24 can set up to store a number of different data sets comprising setpoint S, setpoint interval SI and/or tolerance range T, and to keep them available for computer unit 23 to call up.
  • the data records can be stored specifically for a type or a type of dry building material mixture 20 and/or for the respective application or processing of the building material mixture.
  • the setpoint memory 24 can be set up as a type of recipe database.
  • the computer unit 23 can be set up, for example, to call up a data set displayed via the user interface 26 and selected by the user and to use it for setting the moisture consistency F.
  • the computer unit 23 and/or the user interface 26 can have or provide a selection menu and/or a search function, for example, which enable the user to search for and select a suitable data record.
  • the data set can be loaded automatically into the computer unit 23, for example via an identifier present on the silo 29 and specific to the mixture 20 of dry building material.
  • the identifier can be entered, for example, via a scanner or via the user interface 26 and transmitted to the computer unit 23 .
  • the user interface 26 embodied, for example, as a touch-sensitive display can comprise a set control element 28 that can be displayed, for example, in a separate menu, or in another embodiment, a set button.
  • the user interface 26 can transmit a detected activation of the setting control element 28 to the computer unit 23 .
  • the computer unit 23 can set an actual value measured or determined at the time of activation for the operating parameter torque D as the setpoint S for setting, in particular open-loop or closed-loop control, the moisture consistency F or the mixing parameter speed RPM .
  • time intervals can also be used that include the point in time of activation, in which case the desired value S is, for example, a mean value of the torques D measured in the time interval by individual measurements can be used.
  • the setting control element 28 is activated manually and that the computer unit 23 then tries, for example based on a control or regulation, to Automatically adjust the moisture consistency F to the set setpoint S.
  • a manual setting of the target value S can be replaced by suitable, predetermined tolerance ranges T for the target value interval [ST; S+T]. It is also possible for the user interface 26 to be set up to query tolerance values T by means of a user query and to assign them to the setpoint value S that has been set.
  • the computer unit 23 can be set up to store the torque D, i.e. the measured operating parameter, or a parameter derived therefrom, and/or the respectively associated speed RPM as the mixing parameter in the log memory 25.
  • corresponding parameters can each be stored in a log file in the log memory 26 together with a time and/or location stamp, for example corresponding to the time of the measurement or the processing location.
  • the mixing parameter or parameters determined from the operating parameter can be stored in the log memory 26 in one or the same log file.
  • the parameters mentioned can be stored in the log file together with other data. Further data can include, for example, the temperatures mentioned, the place of processing and other data already mentioned above.
  • the computer unit 23 can be set up to stop the mixing operation of the continuous building material mixing device 1 , for example in a manner that can be acknowledged via an element of the user interface 26 . Stopping comes into consideration, for example, if a continuous and/or significant deviation of torque D from setpoint S or setpoint interval SI is determined or ascertained. By stopping the mixed operation, it can be avoided, for example, that a building material mixture with an unsuitable moisture consistency F is processed.
  • an error message e.g. visual or auditory
  • an error message can be output on the user interface 26, for example in a manner that can be acknowledged via an element of the user interface 26.
  • Such an error message can be output, for example, if an in particular continuous and/or significant deviation of the torque D from the setpoint S or setpoint interval SI is determined or ascertained, and accordingly the moisture consistency F continuously and/or significantly deviates or fluctuates from the set value. A corresponding deviation and/or fluctuation can thus be communicated to the user at least visually or audibly. If only an error message is displayed, it is up to the operator, for example, to continue operation and to continue processing the building material mixture despite the deviation and/or fluctuation, or to stop the building material continuous mixing device 1 e.g. for control purposes.
  • Stopping the building material continuous mixing device 1 or the error message according to the operating modes described can be indicative of a malfunction of the mixer unit 2, the supply of dry building material mixture 20 and/or the supply of water 18, for example.
  • Especially repeated stop or repeated error messages can indicate the need for maintenance, and for example indicative of a worn conveying and dosing shaft 8 and/or mixing shaft, among other things.
  • the torques D determined by the building material continuous mixing device 1 as operating parameters and/or the detected deviations can be evaluated as part of predictive maintenance and to determine or define maintenance work, for example whether the conveying and metering shaft 8 and/or the mixing shaft 11 should be replaced is required to be used.
  • Predictive maintenance can also be carried out on the basis of the data stored in log memory 25, for example.
  • the evaluations for predictive maintenance can be carried out by the computer unit 23 . It is also possible for these evaluations to be carried out by a separate maintenance instance, for example a remote computer, which has access to the log memory 25 .
  • the log memory 25 can be integrated into a network so that the maintenance entity can access it.
  • the reference value memory 24 it is also possible for the reference value memory 24 to be integrated into a network, so that reference value data can be stored in the reference value memory 24 and/or retrieved from it via the network.
  • Setpoint memory 24 and log memory 25 can be implemented in a common memory unit.
  • a maintenance or wear indicator for example, can be output on the user interface 26 if the data is appropriate. In this way, the user can be made aware of any maintenance work to be carried out.
  • FIG. 3 to FIG. 5 show diagrams of various parameters and variables over time during an exemplary mixed operation.
  • FIG. 3 shows the moisture consistency F of the building material mixture over time in an exemplary, illustrative mixing process. designated TI the end of a start-up phase after the start 0 of the building material continuous mixing device 1 at the beginning of a mixing process.
  • the mixing chamber 10 which is still essentially empty, is charged with a mixture of dry building material 20, and the torque D increases accordingly, for example with a simultaneous, uniform supply of water 18.
  • the time TI is followed by a calibration phase which lasts up to the time T2.
  • the speed RPM is not yet set as a mixing parameter. Rather, this phase in the operating mode described serves to determine a suitable setpoint value S for the torque D, corresponding to a moisture consistency F that is suitable in each case for processing the building material mixture.
  • the user actuates the setting control element 28 at time T2 and thus defines the setpoint value S for the torque D as an operating parameter.
  • the mean value of the torques D measured in the time interval [TI, T2] can be used as the setpoint S. It is also possible that the torque measured at the time of user actuation is used as setpoint value S.
  • the tolerance range T specified or specified by the user, defines the target value interval SI: [S-T, S+T].
  • the mixing process is subject to the regulation or control of the computer unit 23, which attempts or is set up to regulate the torque D, as the operating parameter indicative of the moisture consistency F, to the target interval SI.
  • the computer unit 23 sets or regulates the speed RPM, i.e. the mixing parameter influencing the moisture consistency F, such that if the torque D deviates from the setpoint S, the torque D is returned to the setpoint S.
  • the torque D is above the setpoint S, but still in the setpoint interval SI.
  • the higher torque D indicates a moisture consistency F that is higher than the target value S, ie an increased dry-to-wet quantity ratio.
  • the computer unit 23 regulates the speed RPM downwards, as a result of which the conveying and dosing shaft 8 conveys less dry building material mixture 20 into the mixing chamber 10 . Assuming a constant water supply, the result is that the dry-to-wet quantity ratio is reduced and the torque D decreases accordingly, that is to say it is guided towards the desired value S.
  • the computer unit 23 increases the speed RPM with the aim of conveying more dry building material mixture 20 into the mixing chamber 10.
  • the moisture consistency F drops further after the time interval [T3, T4]. This can be caused, for example, by a disrupted outflow of the dry building material mixture 20 from the silo 19 due to bridging in the silo 19.
  • the computer unit 23 increases the speed RPM accordingly.
  • the torque D is outside the setpoint interval SI, and in this situation the computer unit 23 can issue a warning message on the user interface 26.
  • the computer unit 23 it is also possible, as mentioned above, for the computer unit 23 to stop the mixed operation if, for example, the target value interval SI is not reached (analogously if it is exceeded), or take other measures mentioned above.
  • the target value interval SI is not reached (analogously if it is exceeded), or take other measures mentioned above.
  • the moisture consistency F can advantageously be set automatically to a specified setpoint interval SI or a specified setpoint S based on the torque D as the operating parameter indicative of the moisture consistency F, and based on the speed RPM as the mixing parameter influencing the moisture consistency.
  • FIG. 6 shows an example of a flow chart of a method for operating the building material continuous mixing device 1 in mixing mode.
  • a first method step 601 corresponding to a first operating phase, the computer unit 23 determines a setpoint S and an associated setpoint interval SI. This can be done, for example, by a calibration process or by reading out from the reference value memory 24 .
  • a speed RPM that corresponds to the desired value S.
  • the initial speed RPM can, for example, be a standard setting, for example a setting that is characteristic of the respective dry building material mixture 20 .
  • This initial speed can, for example, be read out together with the setpoint S from the setpoint memory 24 and/or be a speed set by a user.
  • the torque D is measured continuously in the operating phase 603 .
  • the torque D can also already be measured in the calibration phase 601 if the setpoint value S is determined by means of a calibration process.
  • the measured torque D or a mean value of successive measurements is compared with the setpoint value S .
  • the mixed operation is continued without changing the speed RPM, with further continuous measurement of the torque D and comparison with the setpoint S, indicated by the process step 605.
  • the computer unit 23 regulates the rotational speed RPM in the operating phase 606, as described above, with the aim of returning the torque D to the setpoint S.
  • the torque D continues to be measured continuously and compared to the setpoint value S, which is indicated by the process step 607 .
  • the method branches off to method step 605. However, if a deviation from the desired value S is still determined, the computer unit 23 stays in the loop given by the operating phase 606 and the process step 607 .

Landscapes

  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Dispersion Chemistry (AREA)
  • Mechanical Engineering (AREA)
  • Structural Engineering (AREA)
  • Automation & Control Theory (AREA)
  • General Engineering & Computer Science (AREA)
  • Software Systems (AREA)
  • Preparation Of Clay, And Manufacture Of Mixtures Containing Clay Or Cement (AREA)
  • Accessories For Mixers (AREA)

Abstract

L'invention concerne un système mélangeur continu de matériau de construction (1) comportant un ensemble mélangeur (2) actionné en continu destiné à fournir un mélange de matériau de construction à humidité de traitement, tel que du mortier ou du mortier d'enduit, par mélange d'une quantité de matériau de construction sec (20) avec du liquide (18). Le système mélangeur continu de matériau de construction présente un mode de fonctionnement destiné à modifier de manière automatique au moins un paramètre de mélange (RPM) influant sur la consistance humide (F) du mélange de matériau de construction, sur la base d'un paramètre de fonctionnement (D) du système mélangeur continu de matériau de construction (1) indiquant la consistance humide (F), ou d'un paramètre qui en est dérivé. De préférence, le paramètre de fonctionnement est le couple (D) d'une unité d'entraînement (3), détecté par un capteur de couple (16), et le paramètre de mélange est la vitesse de rotation (RPM) d'un mécanisme d'entraînement en rotation d'une unité de transport destinée à alimenter la chambre de mélange (10) avec la quantité de matériau de construction sec.
EP21836034.5A 2020-12-07 2021-12-06 Système mélangeur continu de matériau de construction, procédé de production d?un mélange de matériau de construction à humidité de mise en ?uvre au moyen d?un système mélangeur de matériau de construction et dispositif, doté en particulier d?une unité de contrôle ou d?une unité de stockage Pending EP4255703A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
DE102020132489.8A DE102020132489A1 (de) 2020-12-07 2020-12-07 Baustoff-Durchlaufmischvorrichtung, Verfahren zur Bereitstellung einer verarbeitungsfeuchten Baustoffmischung mittels einer Baustoff-Durchlaufmischvorrichtung und Einrichtung, insbesondere mit einer Kontrolleinheit oder Speichereinheit
PCT/EP2021/084420 WO2022122664A1 (fr) 2020-12-07 2021-12-06 Système mélangeur continu de matériau de construction, procédé de production d'un mélange de matériau de construction à humidité de mise en œuvre au moyen d'un système mélangeur de matériau de construction et dispositif, doté en particulier d'une unité de contrôle ou d'une unité de stockage

Publications (1)

Publication Number Publication Date
EP4255703A1 true EP4255703A1 (fr) 2023-10-11

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Family Applications (1)

Application Number Title Priority Date Filing Date
EP21836034.5A Pending EP4255703A1 (fr) 2020-12-07 2021-12-06 Système mélangeur continu de matériau de construction, procédé de production d?un mélange de matériau de construction à humidité de mise en ?uvre au moyen d?un système mélangeur de matériau de construction et dispositif, doté en particulier d?une unité de contrôle ou d?une unité de stockage

Country Status (3)

Country Link
EP (1) EP4255703A1 (fr)
DE (1) DE102020132489A1 (fr)
WO (1) WO2022122664A1 (fr)

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
NL2032563B1 (en) * 2022-07-21 2024-01-29 Cugla B V Mortar mixing system and method for preparing mortar from a mortar base product and a liquid

Family Cites Families (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DD295794A5 (de) 1988-10-10 1991-11-14 Wiese,Winfried,De Verfahren zur bestimmung der eigenfeuchte und ermittlung der quantitativen fein/feinstkornabweichungen der zuschlagstoffe
DE19911060C2 (de) 1999-03-12 2001-04-26 Mathis Technik Verfahren zum kontinuierlichen Anmachen einer Baustoffmischung
WO2004003672A1 (fr) * 2002-06-27 2004-01-08 Hydromix Inc. Systeme de melange de laitier de ciment
DE202004020257U1 (de) 2004-12-28 2006-02-09 Knauf Pft Gmbh & Co.Kg Mischvorrichtung
DE202010012841U1 (de) 2010-09-22 2010-12-02 Franz Ludwig Gmbh Trommelmischer mit Messsonde
US10759087B2 (en) * 2014-05-02 2020-09-01 Construction Robotics, Llc Mortar delivery system
CN108501204B (zh) * 2018-04-08 2019-10-25 杨金梅 一种智能水泥搅拌处理设备
US20200223097A1 (en) * 2019-01-16 2020-07-16 Bay-Lynx Manufacturing Inc. Volumetric mixer control system
US20200307017A1 (en) * 2019-03-25 2020-10-01 Oshkosh Corporation Additive manufacturing printhead
CN111015956A (zh) * 2019-11-29 2020-04-17 上海建工集团股份有限公司 一种新拌高性能混凝土流变性能控制方法和装置

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DE102020132489A1 (de) 2022-06-09

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