WO2013106877A1 - Schaltung zum induktiven erwärmen eines metalles - Google Patents

Schaltung zum induktiven erwärmen eines metalles Download PDF

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Publication number
WO2013106877A1
WO2013106877A1 PCT/AT2013/050010 AT2013050010W WO2013106877A1 WO 2013106877 A1 WO2013106877 A1 WO 2013106877A1 AT 2013050010 W AT2013050010 W AT 2013050010W WO 2013106877 A1 WO2013106877 A1 WO 2013106877A1
Authority
WO
WIPO (PCT)
Prior art keywords
metal
temperature
phase shift
resistance
load impedance
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.)
Ceased
Application number
PCT/AT2013/050010
Other languages
English (en)
French (fr)
Inventor
Lucian Halada
Maximilian WURMITZER
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.)
Ke Kelit Kunststoffwerk GmbH
Original Assignee
Ke Kelit Kunststoffwerk GmbH
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 Ke Kelit Kunststoffwerk GmbH filed Critical Ke Kelit Kunststoffwerk GmbH
Priority to EP13704343.6A priority Critical patent/EP2805138B1/de
Priority to DK13704343.6T priority patent/DK2805138T3/en
Priority to US14/372,557 priority patent/US10165628B2/en
Priority to KR1020147020088A priority patent/KR102007550B1/ko
Priority to RU2014133551A priority patent/RU2014133551A/ru
Priority to PL13704343T priority patent/PL2805138T3/pl
Publication of WO2013106877A1 publication Critical patent/WO2013106877A1/de
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • H—ELECTRICITY
    • H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05B—ELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B6/00—Heating by electric, magnetic or electromagnetic fields
    • H05B6/02—Induction heating
    • H05B6/06—Control, e.g. of temperature, of power
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C65/00—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor
    • B29C65/02—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure
    • B29C65/34—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure using heated elements which remain in the joint, e.g. "verlorenes Schweisselement"
    • B29C65/36—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure using heated elements which remain in the joint, e.g. "verlorenes Schweisselement" heated by induction
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C65/00—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor
    • B29C65/02—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure
    • B29C65/34—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure using heated elements which remain in the joint, e.g. "verlorenes Schweisselement"
    • B29C65/36—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure using heated elements which remain in the joint, e.g. "verlorenes Schweisselement" heated by induction
    • B29C65/3604—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure using heated elements which remain in the joint, e.g. "verlorenes Schweisselement" heated by induction characterised by the type of elements heated by induction which remain in the joint
    • B29C65/3644—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure using heated elements which remain in the joint, e.g. "verlorenes Schweisselement" heated by induction characterised by the type of elements heated by induction which remain in the joint being a ribbon, band or strip
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C66/00—General aspects of processes or apparatus for joining preformed parts
    • B29C66/50—General aspects of joining tubular articles; General aspects of joining long products, i.e. bars or profiled elements; General aspects of joining single elements to tubular articles, hollow articles or bars; General aspects of joining several hollow-preforms to form hollow or tubular articles
    • B29C66/51—Joining tubular articles, profiled elements or bars; Joining single elements to tubular articles, hollow articles or bars; Joining several hollow-preforms to form hollow or tubular articles
    • B29C66/52—Joining tubular articles, bars or profiled elements
    • B29C66/522—Joining tubular articles
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C66/00—General aspects of processes or apparatus for joining preformed parts
    • B29C66/70—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material
    • B29C66/73—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material characterised by the intensive physical properties of the material of the parts to be joined, by the optical properties of the material of the parts to be joined, by the extensive physical properties of the parts to be joined, by the state of the material of the parts to be joined or by the material of the parts to be joined being a thermoplastic or a thermoset
    • B29C66/739—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material characterised by the intensive physical properties of the material of the parts to be joined, by the optical properties of the material of the parts to be joined, by the extensive physical properties of the parts to be joined, by the state of the material of the parts to be joined or by the material of the parts to be joined being a thermoplastic or a thermoset characterised by the material of the parts to be joined being a thermoplastic or a thermoset
    • B29C66/7392—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material characterised by the intensive physical properties of the material of the parts to be joined, by the optical properties of the material of the parts to be joined, by the extensive physical properties of the parts to be joined, by the state of the material of the parts to be joined or by the material of the parts to be joined being a thermoplastic or a thermoset characterised by the material of the parts to be joined being a thermoplastic or a thermoset characterised by the material of at least one of the parts being a thermoplastic
    • B29C66/73921—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material characterised by the intensive physical properties of the material of the parts to be joined, by the optical properties of the material of the parts to be joined, by the extensive physical properties of the parts to be joined, by the state of the material of the parts to be joined or by the material of the parts to be joined being a thermoplastic or a thermoset characterised by the material of the parts to be joined being a thermoplastic or a thermoset characterised by the material of at least one of the parts being a thermoplastic characterised by the materials of both parts being thermoplastics
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C66/00—General aspects of processes or apparatus for joining preformed parts
    • B29C66/90—Measuring or controlling the joining process
    • B29C66/91—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux
    • B29C66/912—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by measuring the temperature, the heat or the thermal flux
    • B29C66/9121—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by measuring the temperature, the heat or the thermal flux by measuring the temperature
    • B29C66/91211—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by measuring the temperature, the heat or the thermal flux by measuring the temperature with special temperature measurement means or methods
    • B29C66/91214—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by measuring the temperature, the heat or the thermal flux by measuring the temperature with special temperature measurement means or methods by measuring the electrical resistance of a resistive element belonging to one of the parts to be welded, said element acting, e.g. as a thermistor
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C66/00—General aspects of processes or apparatus for joining preformed parts
    • B29C66/90—Measuring or controlling the joining process
    • B29C66/91—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux
    • B29C66/912—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by measuring the temperature, the heat or the thermal flux
    • B29C66/9121—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by measuring the temperature, the heat or the thermal flux by measuring the temperature
    • B29C66/91211—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by measuring the temperature, the heat or the thermal flux by measuring the temperature with special temperature measurement means or methods
    • B29C66/91216—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by measuring the temperature, the heat or the thermal flux by measuring the temperature with special temperature measurement means or methods enabling contactless temperature measurements, e.g. using a pyrometer
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C66/00—General aspects of processes or apparatus for joining preformed parts
    • B29C66/90—Measuring or controlling the joining process
    • B29C66/91—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux
    • B29C66/912—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by measuring the temperature, the heat or the thermal flux
    • B29C66/9121—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by measuring the temperature, the heat or the thermal flux by measuring the temperature
    • B29C66/91221—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by measuring the temperature, the heat or the thermal flux by measuring the temperature of the parts to be joined
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C66/00—General aspects of processes or apparatus for joining preformed parts
    • B29C66/90—Measuring or controlling the joining process
    • B29C66/91—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux
    • B29C66/914—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by controlling or regulating the temperature, the heat or the thermal flux
    • B29C66/9141—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by controlling or regulating the temperature, the heat or the thermal flux by controlling or regulating the temperature
    • B29C66/91441—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by controlling or regulating the temperature, the heat or the thermal flux by controlling or regulating the temperature the temperature being non-constant over time
    • B29C66/91443—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by controlling or regulating the temperature, the heat or the thermal flux by controlling or regulating the temperature the temperature being non-constant over time following a temperature-time profile
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C66/00—General aspects of processes or apparatus for joining preformed parts
    • B29C66/90—Measuring or controlling the joining process
    • B29C66/91—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux
    • B29C66/914—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by controlling or regulating the temperature, the heat or the thermal flux
    • B29C66/9161—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by controlling or regulating the temperature, the heat or the thermal flux by controlling or regulating the heat or the thermal flux, i.e. the heat flux
    • B29C66/91651—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux by controlling or regulating the temperature, the heat or the thermal flux by controlling or regulating the heat or the thermal flux, i.e. the heat flux by controlling or regulating the heat generated by Joule heating or induction heating
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C66/00—General aspects of processes or apparatus for joining preformed parts
    • B29C66/90—Measuring or controlling the joining process
    • B29C66/91—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux
    • B29C66/919—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux characterised by specific temperature, heat or thermal flux values or ranges
    • B29C66/9192—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux characterised by specific temperature, heat or thermal flux values or ranges in explicit relation to another variable, e.g. temperature diagrams
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C66/00—General aspects of processes or apparatus for joining preformed parts
    • B29C66/90—Measuring or controlling the joining process
    • B29C66/91—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux
    • B29C66/919—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux characterised by specific temperature, heat or thermal flux values or ranges
    • B29C66/9192—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux characterised by specific temperature, heat or thermal flux values or ranges in explicit relation to another variable, e.g. temperature diagrams
    • B29C66/91951—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux characterised by specific temperature, heat or thermal flux values or ranges in explicit relation to another variable, e.g. temperature diagrams in explicit relation to time, e.g. temperature-time diagrams
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C66/00—General aspects of processes or apparatus for joining preformed parts
    • B29C66/90—Measuring or controlling the joining process
    • B29C66/96—Measuring or controlling the joining process characterised by the method for implementing the controlling of the joining process
    • B29C66/963—Measuring or controlling the joining process characterised by the method for implementing the controlling of the joining process using stored or historical data sets, e.g. using expert systems
    • G—PHYSICS
    • G01—MEASURING; TESTING
    • G01K—MEASURING TEMPERATURE; MEASURING QUANTITY OF HEAT; THERMALLY-SENSITIVE ELEMENTS NOT OTHERWISE PROVIDED FOR
    • G01K7/00—Measuring temperature based on the use of electric or magnetic elements directly sensitive to heat ; Power supply therefor, e.g. using thermoelectric elements
    • G01K7/32—Measuring temperature based on the use of electric or magnetic elements directly sensitive to heat ; Power supply therefor, e.g. using thermoelectric elements using change of resonant frequency of a crystal
    • H—ELECTRICITY
    • H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05B—ELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B6/00—Heating by electric, magnetic or electromagnetic fields
    • H05B6/02—Induction heating
    • H05B6/10—Induction heating apparatus, other than furnaces, for specific applications
    • H05B6/105—Induction heating apparatus, other than furnaces, for specific applications using a susceptor
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C65/00—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor
    • B29C65/02—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure
    • B29C65/34—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure using heated elements which remain in the joint, e.g. "verlorenes Schweisselement"
    • B29C65/36—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure using heated elements which remain in the joint, e.g. "verlorenes Schweisselement" heated by induction
    • B29C65/3604—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure using heated elements which remain in the joint, e.g. "verlorenes Schweisselement" heated by induction characterised by the type of elements heated by induction which remain in the joint
    • B29C65/3644—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure using heated elements which remain in the joint, e.g. "verlorenes Schweisselement" heated by induction characterised by the type of elements heated by induction which remain in the joint being a ribbon, band or strip
    • B29C65/3648—Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure using heated elements which remain in the joint, e.g. "verlorenes Schweisselement" heated by induction characterised by the type of elements heated by induction which remain in the joint being a ribbon, band or strip said strip being perforated
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C66/00—General aspects of processes or apparatus for joining preformed parts
    • B29C66/50—General aspects of joining tubular articles; General aspects of joining long products, i.e. bars or profiled elements; General aspects of joining single elements to tubular articles, hollow articles or bars; General aspects of joining several hollow-preforms to form hollow or tubular articles
    • B29C66/51—Joining tubular articles, profiled elements or bars; Joining single elements to tubular articles, hollow articles or bars; Joining several hollow-preforms to form hollow or tubular articles
    • B29C66/52—Joining tubular articles, bars or profiled elements
    • B29C66/522—Joining tubular articles
    • B29C66/5221—Joining tubular articles for forming coaxial connections, i.e. the tubular articles to be joined forming a zero angle relative to each other
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C66/00—General aspects of processes or apparatus for joining preformed parts
    • B29C66/50—General aspects of joining tubular articles; General aspects of joining long products, i.e. bars or profiled elements; General aspects of joining single elements to tubular articles, hollow articles or bars; General aspects of joining several hollow-preforms to form hollow or tubular articles
    • B29C66/51—Joining tubular articles, profiled elements or bars; Joining single elements to tubular articles, hollow articles or bars; Joining several hollow-preforms to form hollow or tubular articles
    • B29C66/52—Joining tubular articles, bars or profiled elements
    • B29C66/522—Joining tubular articles
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    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C66/00—General aspects of processes or apparatus for joining preformed parts
    • B29C66/70—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material
    • B29C66/71—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material characterised by the composition of the plastics material of the parts to be joined
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
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    • B29C66/70—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material
    • B29C66/73—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material characterised by the intensive physical properties of the material of the parts to be joined, by the optical properties of the material of the parts to be joined, by the extensive physical properties of the parts to be joined, by the state of the material of the parts to be joined or by the material of the parts to be joined being a thermoplastic or a thermoset
    • B29C66/737—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material characterised by the intensive physical properties of the material of the parts to be joined, by the optical properties of the material of the parts to be joined, by the extensive physical properties of the parts to be joined, by the state of the material of the parts to be joined or by the material of the parts to be joined being a thermoplastic or a thermoset characterised by the state of the material of the parts to be joined
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    • B29C66/73773—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material characterised by the intensive physical properties of the material of the parts to be joined, by the optical properties of the material of the parts to be joined, by the extensive physical properties of the parts to be joined, by the state of the material of the parts to be joined or by the material of the parts to be joined being a thermoplastic or a thermoset characterised by the state of the material of the parts to be joined amorphous, semi-crystalline or crystalline the to-be-joined area of at least one of the parts to be joined being semi-crystalline
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    • B29C66/70—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material
    • B29C66/73—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material characterised by the intensive physical properties of the material of the parts to be joined, by the optical properties of the material of the parts to be joined, by the extensive physical properties of the parts to be joined, by the state of the material of the parts to be joined or by the material of the parts to be joined being a thermoplastic or a thermoset
    • B29C66/737—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material characterised by the intensive physical properties of the material of the parts to be joined, by the optical properties of the material of the parts to be joined, by the extensive physical properties of the parts to be joined, by the state of the material of the parts to be joined or by the material of the parts to be joined being a thermoplastic or a thermoset characterised by the state of the material of the parts to be joined
    • B29C66/7377—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material characterised by the intensive physical properties of the material of the parts to be joined, by the optical properties of the material of the parts to be joined, by the extensive physical properties of the parts to be joined, by the state of the material of the parts to be joined or by the material of the parts to be joined being a thermoplastic or a thermoset characterised by the state of the material of the parts to be joined amorphous, semi-crystalline or crystalline
    • B29C66/73773—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material characterised by the intensive physical properties of the material of the parts to be joined, by the optical properties of the material of the parts to be joined, by the extensive physical properties of the parts to be joined, by the state of the material of the parts to be joined or by the material of the parts to be joined being a thermoplastic or a thermoset characterised by the state of the material of the parts to be joined amorphous, semi-crystalline or crystalline the to-be-joined area of at least one of the parts to be joined being semi-crystalline
    • B29C66/73774—General aspects of processes or apparatus for joining preformed parts characterised by the composition, physical properties or the structure of the material of the parts to be joined; Joining with non-plastics material characterised by the intensive physical properties of the material of the parts to be joined, by the optical properties of the material of the parts to be joined, by the extensive physical properties of the parts to be joined, by the state of the material of the parts to be joined or by the material of the parts to be joined being a thermoplastic or a thermoset characterised by the state of the material of the parts to be joined amorphous, semi-crystalline or crystalline the to-be-joined area of at least one of the parts to be joined being semi-crystalline the to-be-joined areas of both parts to be joined being semi-crystalline
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C66/00—General aspects of processes or apparatus for joining preformed parts
    • B29C66/90—Measuring or controlling the joining process
    • B29C66/91—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux
    • B29C66/919—Measuring or controlling the joining process by measuring or controlling the temperature, the heat or the thermal flux characterised by specific temperature, heat or thermal flux values or ranges
    • G—PHYSICS
    • G01—MEASURING; TESTING
    • G01K—MEASURING TEMPERATURE; MEASURING QUANTITY OF HEAT; THERMALLY-SENSITIVE ELEMENTS NOT OTHERWISE PROVIDED FOR
    • G01K2217/00—Temperature measurement using electric or magnetic components already present in the system to be measured

Definitions

  • the invention relates to a circuit for inductive heating of an optionally embedded in a non-magnetic bed metal with a transformer which induces eddy currents in the metal in response to an excitation current and an excitation voltage and forms a load impedance together with the metal to be heated, wherein a temperature monitoring for the metal to be heated is provided.
  • thermoplastic connecting sleeve Such integrated in welding devices circuits are used for example for connecting individual shots of a plastic line.
  • pipes or jacket pipes made of a thermoplastic material are connected to one another via a thermoplastic connecting sleeve.
  • a thermoplastic connecting sleeve it is known (WO 2007/128384 A2), insert a self-contained ring of a perforated plate between the sleeve and the thermoplastic pipes to be connected, in order then with the aid of an induction coil enclosing the sleeve in the region of the perforated metal sheet ring
  • an induction coil enclosing the sleeve in the region of the perforated metal sheet ring
  • the invention is thus based on the object, a circuit for inductive heating of an optionally embedded in a non-magnetic bed metal, in particular for inductive welding a sleeve with the jacket tube of a district heating pipe, so that a determination of the temperature profile in the welding area is possible without the safe To endanger welding.
  • the invention achieves this object by virtue of the fact that the load impedance is preferably operated in the region of its resonant frequency, that the exciter current and excitation voltage and their phase shift are measured and recorded relative to one another during heating of the metal, and that a temperature profile which is proportional to the phase shift is calculated from exciter current, excitation voltage and phase shift , Advantageous developments of the invention are illustrated in the subclaims.
  • FIG. 1 is a simplified circuit diagram of the circuit according to the invention
  • Fig. 2 shows the enthalpy over time during the welding process of a
  • FIG 3 shows a diagram of the temperature profile in the welding region of a plastic sleeve over time.
  • the temperature in the secondary coil ie the closed heating metal, for example a heating metal strip
  • the closed heating metal for example a heating metal strip
  • the energy transfer takes place inductively from a primary air coil to the secondary side, the metal to be heated, a metal strip.
  • the temperature of the metal strip must be recorded for process and educascher reasons without direct measurement.
  • the metal strip has a more or less positive or negative temperature coefficient, ie it is made of materials that conduct electricity better at lower temperatures than at higher temperatures. Their electrical resistance thus increases with increasing temperature. This fact is used around the temperature course during the
  • FIG. 1 the predominantly inductive load circuit is connected to a parallel capacity compensated.
  • C1 is a parallel capacitance
  • Xl is a leakage inductance
  • X2 is an inductance for the magnetization
  • X3 is a secondary inductance (converted to the primary side)
  • RL is the temperature-dependent metal resistance, that is to say the band resistance in the example.
  • a resistance change AR L of the band resistance causes a change in the total resistance Z L of the overall circuit. This causes independent of other influences such as power, voltage, and current changes a phase shift in the power supply, between supply voltage Uv and supply current l v . If the circuit is operated in the range of the resonant frequency, this leads to very useful results.
  • a RL is proportional to AZL and AZL is equivalent to ⁇ , so AR L is equivalent to ⁇ .
  • R 0 as the nominal resistance at, for example, room temperature T 0
  • b as the material constant
  • TL the temperature to be determined and the respective calculated resistance RL to be measured.
  • a calibration of the circuit can for example be carried out so that the input frequency F of the power supply is changed by AF. On the basis of the model calculation this causes a change of the load impedance XL, in consequence a defined band resistance change AR L and a defined measured value of ⁇ .
  • a calculated value can be determined, which is proportional to the heating strip temperature and based on the course of which the relative change of the temperature value in the welding area can be very well mapped. All induction heating methods (eg also the bottom plate material for induction cookers) in which the secondary winding consists of material with a positive temperature coefficient could be calibrated and thus monitored for a relative temperature change statement by this method.
  • FIGS. 2 and 3 schematically show the melting behavior of a semicrystalline polymer (for example polyethylene). With increasing temperature (T), the enthalpy content H (amount of energy per gram) of the substance increases. Due to their molecular structure, polymers do not have a defined melting point but a melting range, which can be assumed to be the area below the curve of the hatched area.
  • T temperature
  • H amount of energy per gram
  • the measured data are "pinned" to the crystalline melting point temperature after passing through this temperature point - and thus the temperature profile can be assigned to real measured values All values before and after can be assigned to an exact, to a few degrees Celsius, sweatband temperature and the log files in the form of corresponding temperature curves If a comparison is made between the temperature profile calculated from the resistance profile and the melting temperature inherent to the bed material, the curve of the calculated temperature profile in the calculated melting range is shifted, for example, by the material characteristic melting temperature in the direction of the temperature axis.
  • the invention relates to a non-illustrated induction welding ß réelle, in particular for induction connection sleeves for fusion bonding weldable thermoplastic body, with a circuit described above.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Physics & Mathematics (AREA)
  • Thermal Sciences (AREA)
  • Electromagnetism (AREA)
  • Chemical & Material Sciences (AREA)
  • Crystallography & Structural Chemistry (AREA)
  • General Physics & Mathematics (AREA)
  • Lining Or Joining Of Plastics Or The Like (AREA)
  • General Induction Heating (AREA)

Description

Schaltung zum induktiven Erwärmen eines Metalles
Technisches Gebiet
Die Erfindung bezieht sich auf eine Schaltung zum induktiven Erwärmen eines gegebenenfalls in ein nichtmagnetisches Bett eingebetteten Metalles mit einem Übertrager, der im Metall in Abhängigkeit eines Erregerstromes und einer Erregerspannung Wirbelströme induziert und der zusammen mit dem zu erwärmenden Metall eine Lastimpedanz bildet, wobei eine Temperaturüberwachung für das zu erwärmende Metall vorgesehen ist.
Stand der Technik
Derartige in Schweißvorrichtungen integrierte Schaltungen werden beispielsweise zum Verbinden einzelner Schüsse einer Kunststoffleitung verwendet. Dazu werden Rohre oder Mantelrohre aus einem thermoplastischen Kunststoff miteinander über eine thermoplastische Verbindungsmuffe verbunden. Zu diesem Zweck ist es bekannt (WO 2007/128384 A2), zwischen der Muffe und den zu verbindenden Rohren aus thermoplastischem Kunststoff je einen in sich geschlossenen Ring aus einem Lochblech einzulegen, um dann mit Hilfe einer die Muffe im Bereich des Lochblechrings umschließenden Induktionsspule im Lochblechring Wirbelströme zu induzieren, über die der Blechring mit der Folge erwärmt wird, dass der thermoplastische Kunststoff der Muffe und der zu verbindenden Mantelrohre im Verbindungsbereich aufgeschmolzen wird, sodass sich durch das Lochblech hindurch eine innige Schweißverbindung zwischen der Muffe und den Mantelrohren einstellt.
Eine derartige Vorrichtung ist zudem in der A 2058/2010 beschrieben. Einer der wesentlichen Vorteile eines damit möglichen Schweißverfahrens liegt darin, dass für die Zuleitung der erforderlichen Schweißenergie zur Anschlussmuffe keine Anschlussdrähte erforderlich sind. Dadurch gibt es keine, wie bei Heiz- wendelwiderstandsschweißverfahren im Durchtrittsbereich der Anschlussdrähte entstehenden Störzonen am Übergang zwischen geschweißtem und ungeschweißtem Material. Wie bei allen Verfahren ist es jedoch erstrebenswert, den Schwei ßprozess temperaturmäßig zu überwachen, gegebenenfalls auch regeln zu können. Dies kann bislang nur mit einem im Schweißbereich vorgesehenen Temperatursensor bewerkstelligt werden, was aber aus montagetechnischen Gründen unpraktikabel ist
Darstellung der Erfindung
Der Erfindung liegt somit die Aufgabe zugrunde, eine Schaltung zum induktiven Erwärmen eines gegebenenfalls in ein nichtmagnetisches Bett eingebetteten Metalles, insbesondere zum induktiven Verschweißen einer Muffe mit dem Mantelrohr einer Fernwärmeleitung, so auszugestalten, dass eine Bestimmung des Temperaturverlaufes im Schweißbereich möglich wird, ohne das sichere Verschweißen zu gefährden. Insbesondere sollen nach einer Weiterbildung der Erfindung eine Überwachung eines vollständigen Aufschmelzens des
Schweißbereiches und eine Protokollierung der Schweißnaht möglich sein.
Die Erfindung löst die gestellte Aufgabe dadurch, dass die Lastimpedanz vorzugsweise im Bereich ihrer Resonanzfrequenz betrieben wird, dass Erregerstrom und Erregerspannung sowie deren Phasenverschiebung zueinander beim Erwärmen des Metalles gemessen und mitprotokolliert werden und dass ein der Phasenverschiebung proportionaler Temperaturverlauf aus Erregerstrom, Erregerspannung und Phasenverschiebung errechnet wird. Vorteilhafte Weiterbildungen der Erfindung sind in den Unteransprüchen dargestellt.
Kurze Beschreibung der Zeichnung
In der Zeichnung ist die Erfindung an einem Ausführungsbeispiel schematisch dargestellt. Es zeigen Fig. 1 ein vereinfachte Schaltbild der erfindungsgemäßen Schaltung
Fig. 2 ein die Enthalpie über der Zeit während des Schweißprozesses einer
Kunststoffmuffe darstellendes Diagramm und
Fig. 3 ein den Temperaturverlauf im Schweißbereich einer Kunststoffmuffe über der Zeit darstellendes Diagramm.
Weg zur Ausführung der Erfindung
Um die Systemschwächen- die mit der Zu- oder Einleitung von elektrisch leitenden Kabeln oder Drähten sowohl für die Schweißung als auch für die Temperaturüberwachung in die Schweißzone verbunden sind gänzlich zu vermeiden, ist erfindungsgemäß eine berührungslose indirekte Temperaturmessung vorgesehen.
Dazu ist es notwendig, aus Parametern die über eine Primärspule beim Induktionsschweißen in den Schweißgenerator übertragen und dort ausgewertet werden, die Temperatur in der Sekundärspule, also dem geschlossenen Heizmetall, beispielsweise ein Heizmetallband, bestimmen zu können. Die Lösung dieser messtechnischen Aufgabe wird nachfolgend beschrieben.
Im gegenständlichen Anwendungsfall erfolgt die Energieübertragung induktiv von einer primären Luftspule auf die Sekundärseite, das zu erwärmende Metall, ein Metallband. Die Temperatur des Metallbandes muss aus Verfahrens- und Prüftechnischen Gründen ohne direkte Messung erfasst werden.
Das Metallband hat je nach verwendetem Material einen mehr oder weniger hohen positiven oder negativen Temperaturkoeffizient, besteht also aus Materialien, die den Strom bei tieferen Temperaturen besser leiten als bei höheren. Ihr elektrischer Widerstand vergrößert sich also bei steigender Temperatur. Diese Tatsache wird benutzt um den Temperaturverlauf während des
Schweißprozesses zu erfassen. Wie aus der Skizze des Prinzipschaltbildes (Fig. 1 ) ersichtlich, wird der überwiegend induktive Lastkreis mit einer Parallel- kapazität kompensiert. In Fig. 1 ist C1 eine Parallelkapazität, Xl eine Streuinduktivität, X2 eine Induktivität für die Magnetisierung, X3 eine Sekundärinduktivität (umgerechnet auf die Primärseite) und RL der temperaturabhängige Metallwiderstand, also im Beispiel der Bandwiderstand. Diese Wiederständer zusammen bilden die an einer Versorgung liegenden Lastimpedanz XL, an welcher der Erregerstrom und die Erregerspannung anliegen.
Im dargestellten Modell bewirkt eine Widerstandsänderung A RL des Bandwiderstandes eine Änderung des Gesamtwiderstandes ZL der Gesamtschaltung. Dies bewirkt unabhängig von sonstigen Einflüssen wie Leistungs-, Spannungs-, sowie Stromänderungen eine Phasenverschiebung in der Energieversorgung, zwischen Versorgungsspannung Uv und Versorgungsstrom lv. Wird die Schaltung im Bereich der Resonanzfrequenz betrieben, führt dies zu sehr brauchbaren Ergebnissen. Im Besonderen ist A RL ist proportional zu AZL und AZL ist äquivalent zu Δφ, also ist A RL äquivalent zu Δφ. Durch Messung Versorgungsspannung Uv und Versorgungsstrom lv über der Zeit, insbesondere in Echtzeit, können somit Phasenverschiebung Δφ in der Energieversorgung und in weiterer Folge der Widerstand Ri_ des Metalles mit Hilfe des mathematischen Modelles errechnet werden. Somit lässt sich der Widerstandsverlauf während des Schwei ßprozesses mitprotokollieren. Dieser Widerstandsverlauf ist wegen der Kaltleitereigenschaften des Metalles, also wegen der Temperaturabhängigkeit, proportional dem Temperaturverlauf während des Schwei ßprozesses.
RL = R0 * eb (TL-T^
Mit R0 als Nennwiderstand bei beispielsweise Raumtemperatur T0, mit b als Materialkonstante und mit TL der zu bestimmenden, dem jeweiligen errechneten Widerstand RL zugeordneten und zu messenden Temperatur.
Eine Eichung der Schaltung kann beispielsweise damit durchgeführt werden, dass die Eingangsfrequenz F der Spannungsversorgung um AF verändert wird. Dies bewirkt auf Basis der Modellrechnung eine Änderung der Lastimpedanz XL, in Folge eine definierte Bandwiderstandsänderung ARL und einen definierten Messwert von Δφ. Mit der Erfindung kann ein Rechenwert ermittelt werden, der proportional zur Heizbandtemperatur ist und anhand dessen Verlauf die relative Änderung des Temperaturwertes im Schweißbereich sehr gut abbildet werden kann. Alle Induktionswärmeverfahren (z. B. auch das Pfannenbodenmaterial bei Induktionsherde), bei der die Sekundärwicklung aus Material mit einem positiven Temperaturkoeffizienten besteht, könnten nach dieser Methode auf eine relative Temperaturänderungsaussage geeicht und somit überwacht werden.
Eine verbesserte und genauere Zuordnung zu einer physikalischen Messgröße (°C , °K) ist mit der in weiterer Folge beschriebenen Schaltung möglich. Fig. 2 und 3 zeigen schematisch das Aufschmelzverhalten eines teilkristallinen Polymers (z.B Polyethylen). Mit steigernder Temperatur (T) nimmt der Enthalpiegehalt H (Energiemenge je Gramm) des Stoffes zu. Polymere haben aufgrund ihrer molekularen Struktur keinen definierten Schmelzpunkt sondern einen Schmelzbereich, der als Fläche unterhalb der Kurve des schraffierten Bereichs angenommen werden kann.
Mit dieser Stoffeigenschaft wird im Aufschmelzprozess bei Thermoplasten bei gleicher Leistungszufuhr, vor und nach dem Aggregatzustandswechsel ein einigermaßen konstanter Temperaturanstieg erfolgen (Fig. 3). Im Bereich der kristallinen Aufschmelzung (bei PE, 142°C) wird bei gleichbleibender Energiezufuhr, eine Temperaturzunahme in der Schweißlinse erst dann wieder erfolgen wird, wenn das Material um das Heizmetall überwiegend in den plastifizier- ten Zustand übergegangen ist. Diese Verzögerung in der Temperaturzunahme an diesem Temperaturpunkt ist in Fig. 3 dargestellt.
Dieser Umstand wir erfindungsgemäß dahingehend genutzt, dass im Betrieb stets der Widerstand des als Kaltleiter ausgebildeten Metalles errechnet und vorzugsweise mitprotokolliert wird, wobei der Widerstand bei Erreichen der Aufschmelztemperatur des Bettes bis zum Aufschmelzen des Bettes zumindest nahezu konstant bleibt und erst nach einem Aufschmelzen wieder ansteigt, und dass der aus dem Widerstandsverlauf errechnete Temperaturverlauf mit der dem Bettmaterial zueigenen Schmelztemperatur abgeglichen wird, bevor der Temperaturverlauf in einen Speicher abgelegt wird.
Mit Hilfe entsprechender Softwareunterstützung werden die bei jedem
Schweißvorgang die erfassten Messdaten nach Durchschreiten dieses Temperaturpunktes an die kristalline Schmelzpunkttemperatur„angeheftet" - und so der Temperaturverlauf echten Messwerten zuordenbar. Sämtliche Werte davor und danach können somit einer exakten, auf wenige Grad Celsius genauen, Schweißbandtemperatur zugeordnet und die Logdateien in Form entsprechender Temperaturkurven ausgewiesen werden, wenn ein Abgleich zwischen dem aus dem Widerstandsverlauf errechnete Temperaturverlauf mit der dem Bettmaterial zueigenen Schmelztemperatur erfolgt. Dazu wird die Kurve des errechneten Temperaturverlaufes im errechneten Schmelzbereich beispielsweise um die materialcharakteristische Schmelztemperatur in Richtung der Temperaturachse verschoben.
Des Weiteren betrifft die Erfindung ein nicht näher dargestelltes Induktionsschwei ßgerät, insbesondere für Induktionsverbindungsmuffen zum Schmelzverbinden schweißbarer Thermoplastkörper, mit einer vorbeschriebenen Schaltung.

Claims

Patentansprüche
1 . Schaltung zum induktiven Erwärmen eines gegebenenfalls in ein nichtmagnetisches Bett eingebetteten Metalles mit einem Übertrager, der im Metall in Abhängigkeit eines Erregerstromes L und einer Erregerspannung UL Wirbelströme induziert und der zusammen mit dem zu erwärmenden Metall eine Lastimpedanz XL bildet, wobei eine Temperaturüberwachung für das zu erwärmende Metall vorgesehen ist, dadurch gekennzeichnet, dass die Lastimpedanz XL vorzugsweise im Bereich ihrer Resonanzfrequenz betrieben wird, dass Erregerstrom II und Erregerspannung U L sowie deren Phasenverschiebung Δφ zueinander beim Erwärmen des Metalles gemessen und mitprotokolliert werden und dass ein der Phasenverschiebung Δφ proportionaler Temperaturverlauf aus Erregerstrom L, Erregerspannung U L und Phasenverschiebung Δφ errechnet wird.
2. Schaltung nach Anspruch 1 , dadurch gekennzeichnet, dass die Erregerfrequenz F der an der Lastimpedanz XL anliegenden Erregerspannung U L zur Eichung um AF verändert wird, was eine Phasenverschiebung Δφ und eine Lastimpedanzänderung AXi bewirkt, die vorzugsweise mitprotokolliert wird, wobei aus dem zugeordneten Erregerstrom lL, der zugeordneten Erregerspannung U L und der zugeordneten Phasenverschiebung Δφ aus einem mathematischen Modell der Lastimpedanz XL die Widerstandsänderung AR des als Kaltleiter oder Hei ßleiter ausgebildeten Metalles errechnet wird.
3. Schaltung nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass im Betrieb stets der Widerstand des als Kaltleiter oder Hei ßleiter ausgebildeten Metalles errechnet und vorzugsweise mitprotokolliert wird, wobei der Widerstand RL bei Erreichen einer Aggregatszustandänderung, insbesondere bei Erreichen der Aufschmelztemperatur des Bettes bis zum Aufschmelzen des Bet- tes, zumindest nahezu konstant bleibt und erst nach einem Aufschmelzen wieder ansteigt, und dass der aus dem Widerstandsverlauf errechnete Temperaturverlauf mit der dem Bettmaterial zueigenen Schmelztemperatur abgeglichen wird, bevor der Temperaturverlauf in einen Speicher abgelegt wird.
4. Schaltung nach einem der Ansprüche 1 bis 3, dadurch gekennzeichnet, dass das Metall in ein, insbesondere eine Verbindungsmuffe bildendes, Kunststoffbett eingebettet ist.
5. Induktionsschweißgerät, insbesondere für Induktionsverbindungsmuffen zum Schmelzverbinden schweißbarer Themoplastkörper, mit einer Schaltung nach einem der Ansprüche 1 bis 4.
PCT/AT2013/050010 2012-01-17 2013-01-15 Schaltung zum induktiven erwärmen eines metalles Ceased WO2013106877A1 (de)

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EP13704343.6A EP2805138B1 (de) 2012-01-17 2013-01-15 Schaltung zum induktiven erwärmen eines metalles
DK13704343.6T DK2805138T3 (en) 2012-01-17 2013-01-15 Circuit for inductive heating of metal
US14/372,557 US10165628B2 (en) 2012-01-17 2013-01-15 Circuit for the inductive heating of a metal
KR1020147020088A KR102007550B1 (ko) 2012-01-17 2013-01-15 금속의 유도 가열용 회로
RU2014133551A RU2014133551A (ru) 2012-01-17 2013-01-15 Схема для индуктивного нагрева металла
PL13704343T PL2805138T3 (pl) 2012-01-17 2013-01-15 Układ połączeń do ogrzewania indukcyjnego metalu

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ATA50006/2012A AT512427B1 (de) 2012-01-17 2012-01-17 Schaltung zum induktiven erwärmen eines metalles
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US11254063B2 (en) 2016-10-20 2022-02-22 Brugg Rohrsystem Ag Inductive welding of plastic objects with electrically interrupted heating means
US11254064B2 (en) 2016-10-20 2022-02-22 Brugg Rohrsystem Ag Thermal joining of plastic objects by means of heating means having low curie temperature

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EP3855960B1 (de) 2018-09-25 2022-11-02 Philip Morris Products S.A. Suszeptoranordnung zur induktiven erwärmung eines aerosolbildenden substrats
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DK2805138T3 (en) 2019-02-18
EP2805138A1 (de) 2014-11-26
KR20140116876A (ko) 2014-10-06
EP2805138B1 (de) 2018-10-24
US10165628B2 (en) 2018-12-25
PL2805138T3 (pl) 2019-03-29
KR102007550B1 (ko) 2019-10-01
AT512427A1 (de) 2013-08-15
AT512427B1 (de) 2014-01-15
US20140361007A1 (en) 2014-12-11

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