WO2008048111A1 - A method and device for removing coatings on a metal structure - Google Patents

A method and device for removing coatings on a metal structure Download PDF

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Publication number
WO2008048111A1
WO2008048111A1 PCT/NO2007/000372 NO2007000372W WO2008048111A1 WO 2008048111 A1 WO2008048111 A1 WO 2008048111A1 NO 2007000372 W NO2007000372 W NO 2007000372W WO 2008048111 A1 WO2008048111 A1 WO 2008048111A1
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WIPO (PCT)
Prior art keywords
metal structure
temperature
oscillator
resonance circuit
coil
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/NO2007/000372
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French (fr)
Inventor
Tom Arne Baann
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.)
RPR Technologies AS
Original Assignee
RPR Technologies AS
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 RPR Technologies AS filed Critical RPR Technologies AS
Priority to CN2007800472299A priority Critical patent/CN101574015B/en
Priority to EP07834781A priority patent/EP2084939B1/en
Priority to PL07834781T priority patent/PL2084939T3/en
Priority to DE602007006338T priority patent/DE602007006338D1/en
Priority to CA2666812A priority patent/CA2666812C/en
Priority to DK07834781.2T priority patent/DK2084939T3/en
Priority to AT07834781T priority patent/ATE467330T1/en
Publication of WO2008048111A1 publication Critical patent/WO2008048111A1/en
Anticipated expiration legal-status Critical
Priority to ZA2009/03297A priority patent/ZA200903297B/en
Ceased legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B6/00Heating by electric, magnetic or electromagnetic fields
    • H05B6/02Induction heating
    • H05B6/10Induction heating apparatus, other than furnaces, for specific applications
    • H05B6/101Induction heating apparatus, other than furnaces, for specific applications for local heating of metal pieces
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B08CLEANING
    • B08BCLEANING IN GENERAL; PREVENTION OF FOULING IN GENERAL
    • B08B7/00Cleaning by methods not provided for in a single other subclass or a single group in this subclass
    • B08B7/0064Cleaning by methods not provided for in a single other subclass or a single group in this subclass by temperature changes
    • B08B7/0071Cleaning by methods not provided for in a single other subclass or a single group in this subclass by temperature changes by heating
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B44DECORATIVE ARTS
    • B44DPAINTING OR ARTISTIC DRAWING, NOT OTHERWISE PROVIDED FOR; PRESERVING PAINTINGS; SURFACE TREATMENT TO OBTAIN SPECIAL ARTISTIC SURFACE EFFECTS OR FINISHES
    • B44D3/00Accessories or implements for use in connection with painting or artistic drawing, not otherwise provided for; Methods or devices for colour determination, selection, or synthesis, e.g. use of colour tables
    • B44D3/16Implements or apparatus for removing dry paint from surfaces, e.g. by scraping, by burning
    • B44D3/166Implements or apparatus for removing dry paint from surfaces, e.g. by scraping, by burning by heating, e.g. by burning
    • B44D3/168Implements or apparatus for removing dry paint from surfaces, e.g. by scraping, by burning by heating, e.g. by burning by electrically heating
    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23GCLEANING OR DE-GREASING OF METALLIC MATERIAL BY CHEMICAL METHODS OTHER THAN ELECTROLYSIS
    • C23G5/00Cleaning or de-greasing metallic material by other methods; Apparatus for cleaning or de-greasing metallic material with organic solvents
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B6/00Heating by electric, magnetic or electromagnetic fields
    • H05B6/02Induction heating
    • H05B6/06Control, e.g. of temperature, of power
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B2213/00Aspects relating both to resistive heating and to induction heating, covered by H05B3/00 and H05B6/00
    • H05B2213/07Heating plates with temperature control means

Definitions

  • the present invention relates to a device and method for removing rust and coatings from the surface of metal structures.
  • the invention may find applications in the oil and gas industry for the maintenance of pipelines, offshore oil platforms and chemical and petroleum tanks, in civil engineering for removing rust on bridges or other large metal structures, or in the maritime sector, e.g. on ships.
  • a portable induction heater unit is placed on the hull plate.
  • Said unit includes an induction coil driven by a powerful signal generator.
  • the magnetic field from the induction coil will set up eddy currents in the steel plate, which will be transformed to heat by the ohmic losses in the steel.
  • the heat will lift the paint layers and rust due both to the temperature and differences in expansion coefficients.
  • the supplied heat should be sufficient to lift the paint.
  • overheating must be avoided to prevent scorching of the paint and the emission of unpleasant and unhealthy gases.
  • Overheating may also be harmful for objects on the inside of the plates, in particular if there are any inflammable gases present, and may even anneal the steel and change its properties in a undesirable way. Thus, it is very important to accurately control the supplied heat.
  • the unit disclosed in NO 314296 is moved manually over the hull, and will naturally be moved with an uneven speed.
  • a tachometer wheel is mounted on the unit. The wheel traces the movement and controls the induction field, i.e. the unit is adapted to supply a controlled amount of energy per area.
  • the prior art system will control the supplied heat in a proper way under ideal conditions, it has a couple of shortcomings. Initially, the system must be manually set to the conditions prevailing on the ship in question, i.e. a mean value must be set that is adapted to the mean thickness of the paint layer. As the workers move to another part of the ship, these conditions may change due to changes in the thickness of the rust and paint, the thickness and the conductivity of the steel.
  • the invention relates to a device for removing coatings from a metal structure, said device including a signal generator driving an induction coil that is adapted to be positioned on the structure and a control unit including a temperature sensor and which is adapted to control the power output of the signal generator in accordance with the sensed temperature.
  • a control unit including a temperature sensor and which is adapted to control the power output of the signal generator in accordance with the sensed temperature.
  • the temperature sensor is adapted to measure the temperature in the metal structure beneath layers of corrosion and the other coatings and the power output of the signal generator is a function of the temperature in the metal structure
  • the invention relates to a method for removing coatings on a metal structure.
  • Said method includes inducing alternating currents in the structure, determining a temperature and controlling the power of the induced current in accordance with said temperature. Further the method includes measuring the temperature in the metal structure beneath layers of corrosion and the other coatings, and controlling the power output of the signal generator (201) as a function of the temperature in the metal structure beneath the layers of corrosion and the other coatings.
  • FIG. 1 is a schematic block diagram showing the main components of a prior art device for removal of rust and coatings
  • FIG. 2 is a schematic diagram over a corresponding device according to the present invention.
  • Fig. 3 is a diagram showing a temperature sensor for use in the device in Fig. 2,
  • Fig. 4 is an alternative embodiment of the temperature sensor in Fig. 3,
  • Fig. 5 is an alternative temperature sensor for use in the device illustrated in Fig. 2.
  • a prior art device for removing rust and paint is shown in Fig. 1.
  • the device is positioned on a metal surface that is coated with a layer of paint and rust 107.
  • This layer may of course include other coatings as well, such as epoxy coatings, rubber, fire-retardant and other various coatings for preventing fouling of ships hulls, etc.
  • a power supply unit 101 drives a coil 102.
  • the power supply unit 101 acts as a power signal generator delivering a strong AC signal.
  • the coil 102 will set up an alternating magnetic field in the metal structure.
  • the magnetic field will induce an eddy current in the metal sheet 106 which will heat the metal.
  • To control the heat induced in the steel e.g.
  • a tachometer 104 or other motion sensor measures the rate of displacement of the device.
  • a logic unit 105 reads the output from the tachometer 104 and the power delivered from the power supply unit 101.
  • a control signal is produced and sent to the power supply unit. 101.
  • This prior art device is adapted to supply a constant amount of heat per area of the metal surface.
  • Fig. 2 shows a corresponding device designed according to the present invention.
  • the device includes a power supply unit 201 driving a coil 202, as in the prior art device.
  • this device includes a temperature sensor 208 that senses the temperature in the metal sheet 206 beneath the device.
  • a microcontroller 209 reads the output from the temperature sensor 208 and the power delivered from the power supply unit 201.
  • An algorithm is used to find the appropriate power required, which is compared with the actual power output.
  • a control signal is produced and sent to the power supply unit 201. Then the temperature in the plate always may be held within a window of acceptable values, irrespective of local variables such as the thickness of the plate or the presence of objects at the inside of the sheet.
  • the temperature sensor 208 must be able to measure the temperature in the metal sheet 206 beneath the coating 207. This precludes the use of devices based on measuring temperatures on the surface, such as off the shelf infrared ray detectors. This requirement has dictated the development of temperature sensors suited for this application.
  • Fig. 3 illustrates an inductive temperature sensor circuit.
  • the sensor includes an oscillator circuit whose frequency is determined by a resonant circuit made of a coil LCOIL and a parallel capacitance Cose.
  • the oscillator circuit is connected to the microcontroller 312.
  • the coil LCOIL is a conventional air-cored inductor, which when driven by a signal, couples electromagnetically to the sheet of metal. If the sensor is placed in close proximity of a steel structure, the oscillator coils will be affected by the steel corresponding to an iron core in a common resonator coil, increasing their inductivity.
  • the invention is applicable for other metals as well provided they have magnetic properties.
  • the oscillator circuit consists of the corresponding coil LCOIL, connected via shielded cable to a parallel capacitance Cose and a very high gain non- inverting amplifier 310.
  • the circuit oscillates at the natural resonant frequency of the LC combination, where the loop phase shift is zero and thus positive feedback occurs.
  • the output of the oscillator is nominally a digital square wave with frequency:
  • LCOIL is the inductance of the coil
  • RCOIL is the loss in the circuit
  • Cose is the capacitance of the external capacitor. Cose has of course also some internal losses, but they are generally negligible compared with the losses in the coil and is not included in the formula.
  • LCOIL is affected by the metal sheet, as is RCOIL.
  • the oscillator will induce a weak eddy current in the metal and the losses in this circuit are also included in RCOIL.
  • the losses in the metal sheet are dependent on temperature, and therefore the actual frequency of the oscillator will change in response to the temperature.
  • the proximity of the metal sheet will also affect the inductance of the coil and thus the frequency of the oscillator, but the distance to the metal is here assumed to be constant, why this parameter may be ignored.
  • the resistance RLOOP in the feedback loop is ideally set such that it is equal to the impedance of the LC tank at resonance, thus giving the largest possible signal at the amplifier input and thereby minimising the effect of noise.
  • the microcontroller 312 observes the outputs from the PLL 313.
  • the microcontroller is adapted to calculate the temperature of the metal from these data.
  • the microcontroller may average several temperature readings.
  • a reference oscillator may be incorporated in the circuit, as illustrated in Fig. 4.
  • This circuit includes a first oscillator 407 and a second oscillator 410 with resonance circuits 406 and 409, respectively.
  • the oscillators are positioned on the metal; the first oscillator is placed in the hot zone beneath or near the induction heater, while the second oscillator is placed in the cold zone outside the area affected by the induction heater.
  • the signal from each oscillator is sent to a microcontroller unit 412 that counts and compares the frequencies of the oscillators. For each signal it measures the time required for 200 oscillations to occur. The time is measured in processor clock cycles.
  • the microcontroller 412 then displays these data on a display device 414.
  • the microcontroller is adapted to produce an output signal that is used to control the signal generator in the induction unit, as explained above.
  • the circuit may include phase locked loops 413 a, b for removing jitter.
  • FIG. 5 An alternative method for measuring the temperature in the metal is illustrated in Fig. 5. The method is based on measuring the propagation speed of ultrasonic waves in the metal.
  • the applied signal at the transducer A is creating an ultrasound wave travelling from A to the detector at point B.
  • the applied signal could either be a single pulse or a signal with a frequency swept between the two frequencies fai and fa2.
  • This ultrasound wave is passing under the heating coil which is creating the temperature T.
  • the detected signal at B is measured either in the time domain as a time delay from A to B or in the frequency domain.
  • the delay or the measured frequency spectrum will be an unambiguous function of the average temperature T in the heated area under the coil.
  • the methods used for determining the temperature in the metal sheet may find other applications than in devices for removing coating on metal.

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Physics & Mathematics (AREA)
  • Electromagnetism (AREA)
  • General Chemical & Material Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Materials Engineering (AREA)
  • Metallurgy (AREA)
  • Organic Chemistry (AREA)
  • General Induction Heating (AREA)
  • Application Of Or Painting With Fluid Materials (AREA)
  • Manufacturing Of Printed Wiring (AREA)

Abstract

A device for removing layers of corrosion and other coatings (205) from a metal surface (204) is disclosed. Said device includes a signal generator (202) driving an induction coil (201) that is positioned on the structure (204). A control unit (206) includes a temperature sensor sensing the temperature in the metal structure (204). The control unit is adapted to control the power output of the signal generator (202) in accordance with the temperature in the metal structure (204).

Description

Description
A METHOD AND DEVICE FOR REMOVING COATINGS ON A METAL
STRUCTURE Technical Field
[0001] The present invention relates to a device and method for removing rust and coatings from the surface of metal structures. The invention may find applications in the oil and gas industry for the maintenance of pipelines, offshore oil platforms and chemical and petroleum tanks, in civil engineering for removing rust on bridges or other large metal structures, or in the maritime sector, e.g. on ships.
Background Art
[0002] From Norwegian patent NO 314296 owned by the present applicant, there is known a device for removing rust and paint on ships' hulls using induction heating. A portable induction heater unit is placed on the hull plate. Said unit includes an induction coil driven by a powerful signal generator. The magnetic field from the induction coil will set up eddy currents in the steel plate, which will be transformed to heat by the ohmic losses in the steel. The heat will lift the paint layers and rust due both to the temperature and differences in expansion coefficients. The supplied heat should be sufficient to lift the paint. However, overheating must be avoided to prevent scorching of the paint and the emission of unpleasant and unhealthy gases. Overheating may also be harmful for objects on the inside of the plates, in particular if there are any inflammable gases present, and may even anneal the steel and change its properties in a undesirable way. Thus, it is very important to accurately control the supplied heat. The unit disclosed in NO 314296 is moved manually over the hull, and will naturally be moved with an uneven speed. To control the supplied heat, a tachometer wheel is mounted on the unit. The wheel traces the movement and controls the induction field, i.e. the unit is adapted to supply a controlled amount of energy per area. While the prior art system will control the supplied heat in a proper way under ideal conditions, it has a couple of shortcomings. Initially, the system must be manually set to the conditions prevailing on the ship in question, i.e. a mean value must be set that is adapted to the mean thickness of the paint layer. As the workers move to another part of the ship, these conditions may change due to changes in the thickness of the rust and paint, the thickness and the conductivity of the steel.
[0003] It is known from the German patent application DE 199 40 732 A1 , to remove the outer layer of coatings from transmission towers using high frequency inductive heating. An infra red sensor is used for measuring the surface temperature; the measured temperature is used as an input for controlling output power of the inductive heating device.
[0004] It is further known from a French patent application, FR 2 843 316 A1 , to use inductive heating to heat magnetic structures on vehicles. An anticorrosive painting, wax or the like is applied to said structure and the structure is heated using the inductive heating thereby causing the anticorrosive painting or wax to be less viscous, this lowered viscosity makes penetration of anticorrosive easier. The use of inductive heating will also ensure a more rapid heating with use of less power which implies a rapid cooling compared to what is achieved using heating with radiation or forced heated air.
Disclosure of Invention
[0005] It is an object of the present invention to provide an improved device for the removal of rust and coatings on metal plates that avoids the shortcoming of prior art devices.
[0006] This object is achieved in the invention as claimed in the appended claims. In particular, according to a first aspect, the invention relates to a device for removing coatings from a metal structure, said device including a signal generator driving an induction coil that is adapted to be positioned on the structure and a control unit including a temperature sensor and which is adapted to control the power output of the signal generator in accordance with the sensed temperature. Where the temperature sensor is adapted to measure the temperature in the metal structure beneath layers of corrosion and the other coatings and the power output of the signal generator is a function of the temperature in the metal structure [0007] According to a second aspect, the invention relates to a method for removing coatings on a metal structure. Said method includes inducing alternating currents in the structure, determining a temperature and controlling the power of the induced current in accordance with said temperature. Further the method includes measuring the temperature in the metal structure beneath layers of corrosion and the other coatings, and controlling the power output of the signal generator (201) as a function of the temperature in the metal structure beneath the layers of corrosion and the other coatings.
[0008] Other advantageous embodiments of the invention appear from the appended dependent claims.
Brief Description of Drawings
[0009] The invention will now be described in relation to the appended drawings, in which
[0010] Fig. 1 is a schematic block diagram showing the main components of a prior art device for removal of rust and coatings,
[0011] Fig. 2 is a schematic diagram over a corresponding device according to the present invention,
[0012] Fig. 3 is a diagram showing a temperature sensor for use in the device in Fig. 2,
[0013] Fig. 4 is an alternative embodiment of the temperature sensor in Fig. 3,
[0014] Fig. 5 is an alternative temperature sensor for use in the device illustrated in Fig. 2.
Detailed description
[0015] A prior art device for removing rust and paint is shown in Fig. 1. In use, the device is positioned on a metal surface that is coated with a layer of paint and rust 107. This layer may of course include other coatings as well, such as epoxy coatings, rubber, fire-retardant and other various coatings for preventing fouling of ships hulls, etc. A power supply unit 101 drives a coil 102. The power supply unit 101 acts as a power signal generator delivering a strong AC signal. The coil 102 will set up an alternating magnetic field in the metal structure. The magnetic field will induce an eddy current in the metal sheet 106 which will heat the metal. To control the heat induced in the steel, e.g. if the device is held stationary for a moment, a tachometer 104 or other motion sensor measures the rate of displacement of the device. A logic unit 105 reads the output from the tachometer 104 and the power delivered from the power supply unit 101. A control signal is produced and sent to the power supply unit. 101. This prior art device is adapted to supply a constant amount of heat per area of the metal surface.
[0016] Fig. 2 shows a corresponding device designed according to the present invention. The device includes a power supply unit 201 driving a coil 202, as in the prior art device. However, this device includes a temperature sensor 208 that senses the temperature in the metal sheet 206 beneath the device. A microcontroller 209 reads the output from the temperature sensor 208 and the power delivered from the power supply unit 201. An algorithm is used to find the appropriate power required, which is compared with the actual power output. A control signal is produced and sent to the power supply unit 201. Then the temperature in the plate always may be held within a window of acceptable values, irrespective of local variables such as the thickness of the plate or the presence of objects at the inside of the sheet.
[0017] The temperature sensor 208 must be able to measure the temperature in the metal sheet 206 beneath the coating 207. This precludes the use of devices based on measuring temperatures on the surface, such as off the shelf infrared ray detectors. This requirement has dictated the development of temperature sensors suited for this application.
[0018] Fig. 3 illustrates an inductive temperature sensor circuit. The sensor includes an oscillator circuit whose frequency is determined by a resonant circuit made of a coil LCOIL and a parallel capacitance Cose. The oscillator circuit is connected to the microcontroller 312.
[0019] The coil LCOIL is a conventional air-cored inductor, which when driven by a signal, couples electromagnetically to the sheet of metal. If the sensor is placed in close proximity of a steel structure, the oscillator coils will be affected by the steel corresponding to an iron core in a common resonator coil, increasing their inductivity. The invention is applicable for other metals as well provided they have magnetic properties.
[0020] The oscillator circuit consists of the corresponding coil LCOIL, connected via shielded cable to a parallel capacitance Cose and a very high gain non- inverting amplifier 310. The circuit oscillates at the natural resonant frequency of the LC combination, where the loop phase shift is zero and thus positive feedback occurs.
[0021] The output of the oscillator is nominally a digital square wave with frequency:
Figure imgf000006_0001
[0023] where LCOIL is the inductance of the coil, RCOIL is the loss in the circuit and Cose is the capacitance of the external capacitor. Cose has of course also some internal losses, but they are generally negligible compared with the losses in the coil and is not included in the formula.
[0024] LCOIL is affected by the metal sheet, as is RCOIL. The oscillator will induce a weak eddy current in the metal and the losses in this circuit are also included in RCOIL. The losses in the metal sheet are dependent on temperature, and therefore the actual frequency of the oscillator will change in response to the temperature. The proximity of the metal sheet will also affect the inductance of the coil and thus the frequency of the oscillator, but the distance to the metal is here assumed to be constant, why this parameter may be ignored.
[0025] The fact that the inductance also is dependent on the proximity to the metal implies that this circuit may also be used to measure the distance to the metal sheet, provided that the temperature is held constant.
[0026] For best performance, heavy gauge wire should be used in the coil to reduce the internal RCOIL. In addition, Cose should have a small temperature coefficient. These measures provide for low temperature drift in the oscillator.
[0027] The resistance RLOOP in the feedback loop is ideally set such that it is equal to the impedance of the LC tank at resonance, thus giving the largest possible signal at the amplifier input and thereby minimising the effect of noise.
[0028] Noise at the amplifier input is translated into timing jitter in the square wave output, affecting both the frequency and the duty cycle of the output. Therefore the oscillator output signal is passed to a Phase Locked Loop IC 313, which effectively removes the jitter.
[0029] The microcontroller 312 observes the outputs from the PLL 313. The microcontroller is adapted to calculate the temperature of the metal from these data.
[0030] To improve the noise immunity, the microcontroller may average several temperature readings.
[0031] To improve the stability and accuracy of the temperature sensor, a reference oscillator may be incorporated in the circuit, as illustrated in Fig. 4. This circuit includes a first oscillator 407 and a second oscillator 410 with resonance circuits 406 and 409, respectively. The oscillators are positioned on the metal; the first oscillator is placed in the hot zone beneath or near the induction heater, while the second oscillator is placed in the cold zone outside the area affected by the induction heater. The signal from each oscillator is sent to a microcontroller unit 412 that counts and compares the frequencies of the oscillators. For each signal it measures the time required for 200 oscillations to occur. The time is measured in processor clock cycles. The microcontroller 412 then displays these data on a display device 414. This is the microcontroller denoted as 209 in fig. 2, and 312 in Fig. 3. The microcontroller is adapted to produce an output signal that is used to control the signal generator in the induction unit, as explained above. The circuit may include phase locked loops 413 a, b for removing jitter.
[0032] An alternative method for measuring the temperature in the metal is illustrated in Fig. 5. The method is based on measuring the propagation speed of ultrasonic waves in the metal.
[0033] The applied signal at the transducer A is creating an ultrasound wave travelling from A to the detector at point B. The applied signal could either be a single pulse or a signal with a frequency swept between the two frequencies fai and fa2.
[0034] This ultrasound wave is passing under the heating coil which is creating the temperature T. The detected signal at B is measured either in the time domain as a time delay from A to B or in the frequency domain.
[0035] The delay or the measured frequency spectrum will be an unambiguous function of the average temperature T in the heated area under the coil.
[0036] The methods used for determining the temperature in the metal sheet may find other applications than in devices for removing coating on metal. In the industry, there may often be a need for determining temperature in a metal structure that is not readily visible, i.e. being beneath a covering or coating of some kind, where these methods may be used with advantage.

Claims

Claims
1. 1. A device for removing coatings (207) from a metal structure (206), said device including a signal generator (201) driving an induction coil (202) that is adapted to be positioned on the structure (206), a control unit (209, 312, 412) including a temperature sensor (208) and which is adapted to control the power output of the signal generator (201) in accordance with the sensed temperature (206, 306, 406) characterized in that the temperature sensor is adapted to measure the temperature in the metal structure beneath layers of corrosion and the other coatings and the power output of the signal generator (201) is a function of the temperature in the metal structure .
2. A device as claimed in claim 1 , wherein said device includes: an oscillator (307) with a resonance circuit (306) including a coil and a capacitor, the resonance circuit being positioned on a heated part of the metal structure, said control unit (312) being adapted to determine the oscillation frequency of the oscillator and produce a controlling signal which is a function of said frequency.
3. A device as claimed in claim 1 , wherein said device includes: a first oscillator (407) with a first resonance circuit (406) including a first coil and a first capacitor, the first resonance circuit being positioned on a heated part of the metal structure, a second oscillator (410) with a second resonance circuit (409) including a second coil and a second capacitor, the second resonance circuit being positioned on an unheated part on the metal structure, said control unit (412) being adapted to determine the difference between the frequencies of the first and second oscillators and produce a controlling signal which is a function of the difference between said frequency values.
4. A device as claimed in claim 3, wherein the control unit (412) includes a clock, and is adapted to estimate said frequencies by counting a predefined number of oscillator periods in clock cycles.
5. A device as claimed in claim 4, wherein the device includes first and second phase locked loops arranged to receive an output signal from the first and second oscillator, respectively, and deliver cleaned up versions of the signals to the control unit.
6. A device as claimed in claim 5, wherein the control unit is adapted to sum a number of readings of frequency differences, and compute an average of said frequency differences.
7. A device as claimed in claim 1 , wherein said device is includes: a first transducer (A) adapted to transmit an ultrasonic signal into the metal structure, a second transducer (B) adapted to receive said ultrasonic signal, a processor unit connected to said first and second transducers and which is adapted to determine the temperature in the metal structure.
8. A method for removing coatings (205) on a metal structure (204), said method including inducing alternating currents in the structure (204) and determining a temperature (204) and controlling the power of the induced current in accordance with said temperature, characterized in that .the sensor measures the temperature in the metal structure beneath layers of corrosion and the other coatings, and controlling the power output of the signal generator (201) as a function of the temperature in the metal structure beneath the layers of corrosion and the other coatings.
9. A method as claimed in claim 8, wherein the method includes: positioning a first coil of a first resonance circuit on a heated part of the metal structure, said first resonance circuit controlling a first oscillator, positioning a second coil of a second resonance circuit on an unheated part of the metal structure, said second resonance circuit controlling a second oscillator, determining the difference between the frequencies of the first and second oscillators, and determining the temperature in the metal structure beneath said layers as a function of the frequency difference.
10. A method as claimed in claim 9, the method including cleaning up signals from the first and second oscillator with first and second phase locked loops, respectively.
11. A method as claimed in claim 9, the method including summing a number of readings of frequency differences, and compute an average of said frequency differences.
12. A method as claimed in claim 8, wherein the method includes: positioning a first transducer on said metal structure, positioning a second transducer on the metal structure, transmitting an ultrasonic signal between said first and second transducers, and determining the temperature in the metal structure beneath said layers as a function of a propagation speed of the ultrasonic signal.
PCT/NO2007/000372 2006-10-19 2007-10-19 A method and device for removing coatings on a metal structure Ceased WO2008048111A1 (en)

Priority Applications (8)

Application Number Priority Date Filing Date Title
CN2007800472299A CN101574015B (en) 2006-10-19 2007-10-19 Method and device for removing coatings on a metal structure
EP07834781A EP2084939B1 (en) 2006-10-19 2007-10-19 A method and device for removing coatings on a metal structure
PL07834781T PL2084939T3 (en) 2006-10-19 2007-10-19 A method and device for removing coatings on a metal structure
DE602007006338T DE602007006338D1 (en) 2006-10-19 2007-10-19 METHOD AND DEVICE FOR REMOVING COATINGS ON A METAL STRUCTURE
CA2666812A CA2666812C (en) 2006-10-19 2007-10-19 A method and device for removing coatings on a metal structure
DK07834781.2T DK2084939T3 (en) 2006-10-19 2007-10-19 Method and apparatus for removing coatings on a metal structure
AT07834781T ATE467330T1 (en) 2006-10-19 2007-10-19 METHOD AND DEVICE FOR REMOVAL OF COATINGS ON A METAL STRUCTURE
ZA2009/03297A ZA200903297B (en) 2006-10-19 2009-05-13 A method and device for removing coatings on a metal structure

Applications Claiming Priority (2)

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NO20064745A NO333020B1 (en) 2006-10-19 2006-10-19 Device for removing coatings on a metal structure, as well as a method for the same.

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AT (1) ATE467330T1 (en)
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DE (1) DE602007006338D1 (en)
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WO2009152807A1 (en) * 2008-06-16 2009-12-23 Trumpf Laser- Und Systemtechnik Gmbh Method and device for the inductive cleaning of and stripping the coating from a metal workpiece surface
CN102573158A (en) * 2012-01-05 2012-07-11 江苏舾普泰克自动化科技有限公司 Method and device for removing electromagnetic induction type metallic surface coating
WO2016072858A1 (en) * 2014-09-19 2016-05-12 Brynsløkken As Antifouling by means of induction

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CN105173033A (en) * 2015-09-30 2015-12-23 江苏天宝利自动化科技有限公司 Heating device for ship paint removal and ship paint removal method
CN109997412B (en) * 2016-09-13 2022-02-08 R·梅切特利 Method, apparatus and work head for inducing localized heating in sheet metal structures
WO2018061091A1 (en) * 2016-09-27 2018-04-05 第一高周波工業株式会社 Heating device for removing coating film
CN111669853A (en) * 2019-03-06 2020-09-15 南京航景信息科技有限公司 Temperature control system of electromagnetic induction type metal surface attachment removing equipment
CN113514539B (en) * 2021-04-12 2024-09-17 爱德森(厦门)电子有限公司 Method and device for detecting temperature resistance and relative expansion coefficient of metal surface coating
CN115254800B (en) * 2022-07-15 2023-06-13 业泓科技(成都)有限公司 Probe cleaning device and probe cleaning method

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US5250776A (en) * 1991-09-30 1993-10-05 Tocco, Inc. Apparatus and method of measuring temperature
DE19940732A1 (en) * 1999-08-27 2001-03-01 Starkstrom Anlagen Gmbh Removing paint coatings on steel grid masts for high voltage overhead cables involves heating steel of mast to higher than 250 degrees Centigrade by high frequency induction, scraping
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WO2009152807A1 (en) * 2008-06-16 2009-12-23 Trumpf Laser- Und Systemtechnik Gmbh Method and device for the inductive cleaning of and stripping the coating from a metal workpiece surface
DE102008028272B4 (en) * 2008-06-16 2016-07-28 Trumpf Laser- Und Systemtechnik Gmbh Method and device for inductive cleaning and stripping of a metallic workpiece surface
CN102573158A (en) * 2012-01-05 2012-07-11 江苏舾普泰克自动化科技有限公司 Method and device for removing electromagnetic induction type metallic surface coating
WO2016072858A1 (en) * 2014-09-19 2016-05-12 Brynsløkken As Antifouling by means of induction

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CA2666812A1 (en) 2008-04-24
NO20064745L (en) 2008-04-22
EP2084939A1 (en) 2009-08-05
CN101574015B (en) 2012-02-22
ES2345737T3 (en) 2010-09-30
US7857914B2 (en) 2010-12-28
CA2666812C (en) 2013-11-19
PT2084939E (en) 2010-08-11
EP2084939B1 (en) 2010-05-05
ATE467330T1 (en) 2010-05-15
DE602007006338D1 (en) 2010-06-17
US20080092919A1 (en) 2008-04-24
PL2084939T3 (en) 2010-12-31
DK2084939T3 (en) 2010-08-30
ZA200903297B (en) 2009-12-30
CN101574015A (en) 2009-11-04
NO333020B1 (en) 2013-02-18

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