US2147689A - Method and apparatus for heating dielectric materials - Google Patents

Method and apparatus for heating dielectric materials Download PDF

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Publication number
US2147689A
US2147689A US158553A US15855337A US2147689A US 2147689 A US2147689 A US 2147689A US 158553 A US158553 A US 158553A US 15855337 A US15855337 A US 15855337A US 2147689 A US2147689 A US 2147689A
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heating
electrode
materials
temperature
dielectric materials
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US158553A
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Joseph G Chaffee
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AT&T Corp
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Bell Telephone Laboratories Inc
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    • 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
    • H05B6/46Dielectric heating
    • H05B6/48Circuits
    • H05B6/50Circuits for monitoring or control

Definitions

  • This invention relates to heating systems for dielectric materials and the object of the invention is to heat such materials uniformly and substantially simultaneously throughout their 5 mass.
  • more uniform heating is obtained by subjecting only a portion of the material at a time to the action of the 5 field and continuously varying the area of the material in which the loss is produced.
  • This may be accomplished in various ways, such for example, as by using two electrodes, one of which is smaller than the other, and moving the smaller 0 electrode successively into opposed relationship to the several portions of the other electrode.
  • one electrode supporting the material is circular and the other or upper electrode is a sector of a circle and is s mounted on a vertical shaft for rotation with a small air-gap between it and the material.
  • the vacuum tube oscillator I which should be .0 capable of delivering power of the order of l kilowatt is tuned to a high frequency such as to megacycles by a condenser 2.
  • Inductively coupled to the plate coil of.the oscillator is a load circuit consisting of the coil 2
  • the heating unit 1 comprises a lower stationary electrode 8 mounted on the base plate 9 and 10 supporting the material iii to be heated, and an upper electrode ll supported for rotation by the arm I! which is insulated from the base plate by a suitable insulator IS.
  • the electrode ii is a sector of a circle of perhaps 60 degrees, but 16 the choice of its size will be dictated by various factors such as the nature of the material to be heated and the frequency of the oscillator.
  • the axis of the shaft H is concentric with the lower electrode 8 and the lower end I! of the shaft 20 and the adjacent portion of the sector are preferably cut away as shown, to prevent excessive heating at the center of the material.
  • the electrode II is slowly rotated by any suitable means suchvas a motor I6 connected to the pulley ll by a belt l8 and worm gearing it.
  • the load circuit is tuned by the condenser 4 and contact 5 until the current is a maximum as indicated by the radio frequency meter 20. 80 Then the coupling between the coil and the oscillator is adjusted for optimum transfer of energy to the heating circuit.
  • the load circuit may be initially detuned with respect to the oscillator frequency so thatthe change in the dielectric constant, as the temperature of the material rises, brings the load circuit into resonance. A further rise in temperature carries the tuning beyond resonance and automatically retards further heating.
  • the power transmitted to the load circuit will be substantially a maximum at all temperatures.
  • the power factor of most materials will vary considerably with temperature and hence a load circuit containing such a material, which is initially-suitably coupled to the oscillator, will depart from this condition as the heating progresses, and the heating is correspondingly retarded.
  • the initial coupling should therefore be somewhat greater or less than the optimum value depending on whether for the particular material to be heated, the power factor increases or decreases. Then, as the heating progresses, an impedance match occurs at some intermediate temperature the choice of which will depend on such factors as the rapidity of heating and the degree of automatic regulation desired.
  • the load circuit initially should be tuned to a frequency somewhat higher than that ofthe oscillator and the coupling should be somewhat greater than the optimum value. when these adjustments have been properly made the heating will then be accelerated during initial increases in the constants of the material, but excessive heating in any region will bring about suflicient modification of the load circuit constants to retard further heating.
  • a buffer stage of amplification may be used between the oscillator and the load circuit 'or the coupling adjustment may be made less critical by the use of a shunt resistor 22.
  • Such a resistor also has the advantage of reducing the effects of a large variation with the temperature in the power factor of the material being heated; 1
  • a source of high frequency potential connected to the source and producing an electric field in a portion of the material to be heated
  • a source of high frequency potential connected to the source and disposed on opposite sides of the material to be heated, one of the electrodes being substantially smaller than the other, and means for moving the smaller electrode into opposed relationship to the several portions of the other electrode in cyclic sequence.
  • a relatively large stationary electrode supporting the material to be heated and a relatively small electrode in the form of a sector disposed above said material, a source of high frequency potential connected to the electrodes and producing an electric field between them, and means for slowly rotating the small electrode to subject the several being contoured adjacent the shaft to prevent excessive heating in the central portion of the material.
  • the method of regulating the heating of dielectric materials under the action of a high frequency electric field which comprises initially adjusting the coupling between the heating circuit and the. source of high frequency oscillations to a value otherthan the optimum value such that the variations with temperature in the power factor of the material bring the coupling to its optimum value at a temperature within the desired heating range.

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  • Physics & Mathematics (AREA)
  • Electromagnetism (AREA)
  • Control Of High-Frequency Heating Circuits (AREA)
  • Constitution Of High-Frequency Heating (AREA)

Description

Feb. 21, 1939. CHAFFEE 2,147,689
METHOD AND APPARATUS FOR HEATING DTELECTRTC MATERIALS Filed Aug. 11, 193'? INVENTOR JG. CHA F FEE A TTORNEV Patented Feb. 21, 1939 UNITED STATES METHOD AND APPARATUS FOR HEATING DIELECTRIO MATERIALS Joseph G. Chaflee, Hackensack, N. .L, assignor to Bell Telephone Laboratories, Incorporated, New York, N. Y., a corporation of New York Application August 11, 1937, Serial No. 158,558
8 Claims.
This invention relates to heating systems for dielectric materials and the object of the invention is to heat such materials uniformly and substantially simultaneously throughout their 5 mass.
Due to their low heat conductivity, it is difiicult to heat such materials quickly and uniformly by the external application of heat without subjecting the outer layers of the material to such high temperatures as to impair their physical properties. i
It has been proposed heretofore to heat such materials simultaneously throughout their mass by means of the dielectric loss produced in them when they are subjected to a high voltage, high frequency field. While this method has provedvery effective in reducing the time required to heat such materials, considerable diiliculty has been encountered as a result of the o tendency of the materials to heat more rapidly in one or more spots than in others.
According to this invention, more uniform heating is obtained by subjecting only a portion of the material at a time to the action of the 5 field and continuously varying the area of the material in which the loss is produced. This may be accomplished in various ways, such for example, as by using two electrodes, one of which is smaller than the other, and moving the smaller 0 electrode successively into opposed relationship to the several portions of the other electrode. In the preferredembodiment one electrode supporting the material is circular and the other or upper electrode is a sector of a circle and is s mounted on a vertical shaft for rotation with a small air-gap between it and the material. With this type of moving electrode a small central area under the shaft is continuously subjected to the field and to avoid excessive heating at this point the shaft and the adjacent portion of the electrode are preferably cut away suffl'ciently to produce the necessary reduction in heating effect.
These and other'features of the invention will 5 be more clearly understood from the-following detailed description and the drawing which shows a suitable power supply circuit and one form of moving electrode and its driving mechanism.
The vacuum tube oscillator I which should be .0 capable of delivering power of the order of l kilowatt is tuned to a high frequency such as to megacycles by a condenser 2. Inductively coupled to the plate coil of.the oscillator is a load circuit consisting of the coil 2| of the transi6 former! tuned by the combined capacity of the 'lator as determined by the position of the movable coil II.
The heating unit 1 comprises a lower stationary electrode 8 mounted on the base plate 9 and 10 supporting the material iii to be heated, and an upper electrode ll supported for rotation by the arm I! which is insulated from the base plate by a suitable insulator IS. The electrode ii is a sector of a circle of perhaps 60 degrees, but 16 the choice of its size will be dictated by various factors such as the nature of the material to be heated and the frequency of the oscillator. The axis of the shaft H is concentric with the lower electrode 8 and the lower end I! of the shaft 20 and the adjacent portion of the sector are preferably cut away as shown, to prevent excessive heating at the center of the material.
During the heating operation the electrode II is slowly rotated by any suitable means suchvas a motor I6 connected to the pulley ll by a belt l8 and worm gearing it. In operating the system the load circuit is tuned by the condenser 4 and contact 5 until the current is a maximum as indicated by the radio frequency meter 20. 80 Then the coupling between the coil and the oscillator is adjusted for optimum transfer of energy to the heating circuit. These adjustments and the alternative adjustments described below are preferably made with the electrode ii rotating, or at reduced oscillator power to avoid excessive heating of the material.
As the material heats due to the dielectric loss produced in it by the field set up between the electrodes, two effects will be observed. With most materials both the dielectric constant and the power factor will become larger. Any change in the dielectric constant will produce a detuning effect in the heating circuit thereby reducing the energy delivered and retarding the heating rate. An increase in the power factor increases the equivalent series resistance of the secondary tuned circuit, the current in the circuit 3 decreases and the heating action is correspondingly decreased.
When the rotating electrode of applicant's system moves over a portion of the material in which an excessive temperature is developing, the current is automatically reduced due to both of these effects and relatively less hea is generated in this portion of the material than in those portions of lower temperature. In this way any tendency toward localized overheating is checked and the temperature is raised substantially uniformly throughout the whole mass of the material.
If the dielectric constant and power factor of the material to be heated increase rapidly with temperature, the resulting reduction in the load circuit current may unduly prolong the heating process or even prevent the material from reaching the desired final temperature. To offset the effect of excessive change in the dielectric constant, the load circuit may be initially detuned with respect to the oscillator frequency so thatthe change in the dielectric constant, as the temperature of the material rises, brings the load circuit into resonance. A further rise in temperature carries the tuning beyond resonance and automatically retards further heating.
If the material is of such nature that its power factor does not change appreciably with tem-- perature and the coupling between the winding 2| and the primary of the transformer 8 is ad justed to its optimum value with the material at ambient temperature, the power transmitted to the load circuit will be substantially a maximum at all temperatures. The power factor of most materials, however, will vary considerably with temperature and hence a load circuit containing such a material, which is initially-suitably coupled to the oscillator, will depart from this condition as the heating progresses, and the heating is correspondingly retarded.
To offset this eflect of a large variation in power factor, the initial coupling should therefore be somewhat greater or less than the optimum value depending on whether for the particular material to be heated, the power factor increases or decreases. Then, as the heating progresses, an impedance match occurs at some intermediate temperature the choice of which will depend on such factors as the rapidity of heating and the degree of automatic regulation desired.
If, as in the case of many materials, both the dielectric constant and the power factor increase considerably with temperature, the load circuit initially should be tuned to a frequency somewhat higher than that ofthe oscillator and the coupling should be somewhat greater than the optimum value. when these adjustments have been properly made the heating will then be accelerated during initial increases in the constants of the material, but excessive heating in any region will bring about suflicient modification of the load circuit constants to retard further heating.
It will be understood, however, that the exact procedure in adjusting the system to produce the compensating effects desired in a particular case will depend on the nature of the material to be heated, the rapidity of heating and the final temperature required and other factors such as the relative capacities of the condenser E and heating unit i. K
g If the system is found to be unstable when operating with maximum transfer of power to the heating circuit a buffer stage of amplification may be used between the oscillator and the load circuit 'or the coupling adjustment may be made less critical by the use of a shunt resistor 22. Such a resistor also has the advantage of reducing the effects of a large variation with the temperature in the power factor of the material being heated; 1
What is claimed is:
1. In a heating system for dielectric materials, a source of high frequency potential, electrodes connected to the source and producing an electric field in a portion of the material to be heated,
producing an electric field between them, and
means for producing relative motion between the material to be heated and one of the electrodes whereby all portions of the material are subjected to the action of the field in cyclic sequence.
3. In a heating system for dielectric materials, a source of high frequency potential, electrodes connected to the source and disposed on opposite sides of the material to be heated, one of the electrodes being substantially smaller than the other, and means for moving the smaller electrode into opposed relationship to the several portions of the other electrode in cyclic sequence.
4. In a heating system for dielectric materials, a relatively large stationary electrode supporting the material to be heated and a relatively small electrode in the form of a sector disposed above said material, a source of high frequency potential connected to the electrodes and producing an electric field between them, and means for slowly rotating the small electrode to subject the several being contoured adjacent the shaft to prevent excessive heating in the central portion of the material.
6. The method of regulating the heating of dielectric materials under the action of a high frequency electric field which comprises initially adjusting the coupling between the heating circuit and the. source of high frequency oscillations to a value otherthan the optimum value such that the variations with temperature in the power factor of the material bring the coupling to its optimum value at a temperature within the desired heating range.
.JOSEPH G. CHAI 'FEE.
US158553A 1937-08-11 1937-08-11 Method and apparatus for heating dielectric materials Expired - Lifetime US2147689A (en)

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Cited By (43)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2421334A (en) * 1944-04-26 1947-05-27 Ind Rayon Corp Method of treating twisted filamentary materials
US2422525A (en) * 1942-07-31 1947-06-17 Rca Corp Radio-frequency electric field bonding apparatus
US2429819A (en) * 1944-03-28 1947-10-28 Gen Electric High-frequency heating apparatus
US2438595A (en) * 1944-05-03 1948-03-30 Girdler Corp High-frequency generator
US2449451A (en) * 1944-09-28 1948-09-14 Westinghouse Electric Corp High-frequency dielectric heating apparatus
US2453680A (en) * 1944-12-07 1948-11-09 Singer Mfg Co Speed and frequency control apparatus for radio-frequency bonding systems
US2458012A (en) * 1946-04-03 1949-01-04 Westinghouse Electric Corp Apparatus for high frequency dielectric heating of condenser bushings
US2464403A (en) * 1945-08-30 1949-03-15 Rca Corp Apparatus for heating dielectric materials electronically
US2467285A (en) * 1944-07-12 1949-04-12 Rca Corp High-frequency generating system
US2470443A (en) * 1944-07-21 1949-05-17 Mittelmann Eugene Means for and method of continuously matching and controlling power for high-frequency heating of reactive loads
US2473143A (en) * 1945-02-07 1949-06-14 Singer Mfg Co Electrostatic bonding machine
US2494716A (en) * 1945-11-08 1950-01-17 Induction Heating Corp Method and apparatus for treating materials dielectrically
US2511026A (en) * 1946-06-27 1950-06-13 Ohio Crankshaft Co Method for controlling heating by an induction-heating circuit
US2512336A (en) * 1945-10-12 1950-06-20 Westinghouse Electric Corp Tuning control system
US2516324A (en) * 1946-02-15 1950-07-25 Rca Corp Constant potential gradient dielectric heating device
US2521880A (en) * 1946-09-25 1950-09-12 Sunbeam Corp Control system for high-frequency induction heating apparatus
US2522823A (en) * 1946-04-16 1950-09-19 Union Special Machine Co Automatic tuning of high-frequency electrical seaming apparatus
US2526697A (en) * 1946-06-21 1950-10-24 Armstrong Cork Co Dielectric heating method and apparatus
US2551757A (en) * 1945-08-10 1951-05-08 Mittelmann Eugene High-frequency heating
US2551756A (en) * 1944-07-21 1951-05-08 Mittelmann Eugene High-frequency heating method and apparatus
US2595502A (en) * 1946-08-01 1952-05-06 Allis Chalmers Mfg Co Variable capacity circuit for dielectric heating apparatus
US2596636A (en) * 1949-03-10 1952-05-13 Weltronic Co Dielectric heating apparatus
US2607880A (en) * 1945-09-21 1952-08-19 Lord Mfg Co Electrostatic heating
US2624830A (en) * 1948-03-30 1953-01-06 Jr George Muntz High-frequency dielectric heating apparatus
DE887687C (en) * 1949-10-15 1953-08-27 Klein Dieter Arrangement for the electrical welding of objects made of weldable plastics using high-frequency currents
US2723334A (en) * 1951-04-14 1955-11-08 Westinghouse Electric Corp Dielectric heating
DE1011099B (en) * 1952-08-20 1957-06-27 Siemens Ag Capacitor for the high frequency treatment of moist goods
DE1052013B (en) * 1952-04-26 1959-03-05 Standard Elektrik Lorenz Ag Electrode arrangement for welding foils made of thermoformable material by dielectric means
US2898431A (en) * 1955-02-16 1959-08-04 F H Peavey & Company Apparatus for moisture removal
US3023835A (en) * 1958-10-20 1962-03-06 Phillips Petroleum Co Thermochromatographic analyzer heater
US3430350A (en) * 1967-04-18 1969-03-04 Fitchburg Paper Co High frequency drying of separate pieces
US4055295A (en) * 1976-09-15 1977-10-25 Champion International Corporation Self-sealing envelope and method of making same
US4258240A (en) * 1978-02-07 1981-03-24 Electron Kilns (Luzern) Gmbh, Of Zahringerhof Method and apparatus for radio frequency drying of lumber
DE4112383A1 (en) * 1991-04-16 1992-10-22 Krantz H Gmbh & Co HF rotary heater or dryer - uses cylindrical oven rotating between HF electrode and earth
US20120273429A1 (en) * 2009-11-20 2012-11-01 Erwin Junker Method for separating grinding oil from grinding slurry; separating station for carrying out said method and plant according to said method
ITBO20120423A1 (en) * 2012-08-02 2014-02-03 Magneti Marelli Spa FUEL SUPPLY SYSTEM FOR AN INTERNAL COMBUSTION ENGINE PROVIDED WITH A RADIOFREQUENCY FUEL HEATING DEVICE
WO2014063839A1 (en) 2012-10-23 2014-05-01 Latexco N.V. Bedding product comprising a foamed latex layer, slab of such foamed latex layer for cutting a bedding product therefrom and method of manufacturing thereof
WO2017040637A1 (en) * 2015-09-01 2017-03-09 Illinois Tool Works Inc. Rf deep fat fryer
US10815397B2 (en) 2012-09-27 2020-10-27 Henkel IP & Holding GmbH Waterborne adhesives for reduced basis weight multilayer substrates and use thereof
US11427963B2 (en) 2010-09-10 2022-08-30 Henkel Ag & Co, Kgaa Adhesive having insulative properties
US11773297B2 (en) 2017-07-18 2023-10-03 Henkel Ag & Co., Kgaa Dielectric heating of foamable compositions
US11833788B2 (en) 2018-02-16 2023-12-05 Henkel Ag & Co, Kgaa Method for producing a multi-layer substrate
US11926134B2 (en) 2017-08-25 2024-03-12 Henkel Ag & Co. Kgaa Process for forming improved protective eco-friendly pouch and packaging and products made therefrom

Cited By (47)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2422525A (en) * 1942-07-31 1947-06-17 Rca Corp Radio-frequency electric field bonding apparatus
US2429819A (en) * 1944-03-28 1947-10-28 Gen Electric High-frequency heating apparatus
US2421334A (en) * 1944-04-26 1947-05-27 Ind Rayon Corp Method of treating twisted filamentary materials
US2438595A (en) * 1944-05-03 1948-03-30 Girdler Corp High-frequency generator
US2467285A (en) * 1944-07-12 1949-04-12 Rca Corp High-frequency generating system
US2470443A (en) * 1944-07-21 1949-05-17 Mittelmann Eugene Means for and method of continuously matching and controlling power for high-frequency heating of reactive loads
US2551756A (en) * 1944-07-21 1951-05-08 Mittelmann Eugene High-frequency heating method and apparatus
US2449451A (en) * 1944-09-28 1948-09-14 Westinghouse Electric Corp High-frequency dielectric heating apparatus
US2453680A (en) * 1944-12-07 1948-11-09 Singer Mfg Co Speed and frequency control apparatus for radio-frequency bonding systems
US2473143A (en) * 1945-02-07 1949-06-14 Singer Mfg Co Electrostatic bonding machine
US2551757A (en) * 1945-08-10 1951-05-08 Mittelmann Eugene High-frequency heating
US2464403A (en) * 1945-08-30 1949-03-15 Rca Corp Apparatus for heating dielectric materials electronically
US2607880A (en) * 1945-09-21 1952-08-19 Lord Mfg Co Electrostatic heating
US2512336A (en) * 1945-10-12 1950-06-20 Westinghouse Electric Corp Tuning control system
US2494716A (en) * 1945-11-08 1950-01-17 Induction Heating Corp Method and apparatus for treating materials dielectrically
US2516324A (en) * 1946-02-15 1950-07-25 Rca Corp Constant potential gradient dielectric heating device
US2458012A (en) * 1946-04-03 1949-01-04 Westinghouse Electric Corp Apparatus for high frequency dielectric heating of condenser bushings
US2522823A (en) * 1946-04-16 1950-09-19 Union Special Machine Co Automatic tuning of high-frequency electrical seaming apparatus
US2526697A (en) * 1946-06-21 1950-10-24 Armstrong Cork Co Dielectric heating method and apparatus
US2511026A (en) * 1946-06-27 1950-06-13 Ohio Crankshaft Co Method for controlling heating by an induction-heating circuit
US2595502A (en) * 1946-08-01 1952-05-06 Allis Chalmers Mfg Co Variable capacity circuit for dielectric heating apparatus
US2521880A (en) * 1946-09-25 1950-09-12 Sunbeam Corp Control system for high-frequency induction heating apparatus
US2624830A (en) * 1948-03-30 1953-01-06 Jr George Muntz High-frequency dielectric heating apparatus
US2596636A (en) * 1949-03-10 1952-05-13 Weltronic Co Dielectric heating apparatus
DE887687C (en) * 1949-10-15 1953-08-27 Klein Dieter Arrangement for the electrical welding of objects made of weldable plastics using high-frequency currents
US2723334A (en) * 1951-04-14 1955-11-08 Westinghouse Electric Corp Dielectric heating
DE1052013B (en) * 1952-04-26 1959-03-05 Standard Elektrik Lorenz Ag Electrode arrangement for welding foils made of thermoformable material by dielectric means
DE1011099B (en) * 1952-08-20 1957-06-27 Siemens Ag Capacitor for the high frequency treatment of moist goods
US2898431A (en) * 1955-02-16 1959-08-04 F H Peavey & Company Apparatus for moisture removal
US3023835A (en) * 1958-10-20 1962-03-06 Phillips Petroleum Co Thermochromatographic analyzer heater
US3430350A (en) * 1967-04-18 1969-03-04 Fitchburg Paper Co High frequency drying of separate pieces
US4055295A (en) * 1976-09-15 1977-10-25 Champion International Corporation Self-sealing envelope and method of making same
US4258240A (en) * 1978-02-07 1981-03-24 Electron Kilns (Luzern) Gmbh, Of Zahringerhof Method and apparatus for radio frequency drying of lumber
DE4112383A1 (en) * 1991-04-16 1992-10-22 Krantz H Gmbh & Co HF rotary heater or dryer - uses cylindrical oven rotating between HF electrode and earth
US20120273429A1 (en) * 2009-11-20 2012-11-01 Erwin Junker Method for separating grinding oil from grinding slurry; separating station for carrying out said method and plant according to said method
US11649589B2 (en) 2010-09-10 2023-05-16 Henkel Ag & Co., Kgaa Adhesive having insulative properties
US11427963B2 (en) 2010-09-10 2022-08-30 Henkel Ag & Co, Kgaa Adhesive having insulative properties
ITBO20120423A1 (en) * 2012-08-02 2014-02-03 Magneti Marelli Spa FUEL SUPPLY SYSTEM FOR AN INTERNAL COMBUSTION ENGINE PROVIDED WITH A RADIOFREQUENCY FUEL HEATING DEVICE
US10815397B2 (en) 2012-09-27 2020-10-27 Henkel IP & Holding GmbH Waterborne adhesives for reduced basis weight multilayer substrates and use thereof
US11193048B2 (en) 2012-09-27 2021-12-07 Henkel IP & Holding GmbH Waterborne adhesives for reduced basis weight multilayer substrates and use thereof
US11459490B2 (en) 2012-09-27 2022-10-04 Henkel Ag & Co, Kgaa Waterborne adhesives for reduced basis weight multilayer substrates and use thereof
US11970634B2 (en) 2012-09-27 2024-04-30 Henkel Ag & Co. Kgaa Waterborne adhesives for reduced basis weight multilayer substrates and use thereof
WO2014063839A1 (en) 2012-10-23 2014-05-01 Latexco N.V. Bedding product comprising a foamed latex layer, slab of such foamed latex layer for cutting a bedding product therefrom and method of manufacturing thereof
WO2017040637A1 (en) * 2015-09-01 2017-03-09 Illinois Tool Works Inc. Rf deep fat fryer
US11773297B2 (en) 2017-07-18 2023-10-03 Henkel Ag & Co., Kgaa Dielectric heating of foamable compositions
US11926134B2 (en) 2017-08-25 2024-03-12 Henkel Ag & Co. Kgaa Process for forming improved protective eco-friendly pouch and packaging and products made therefrom
US11833788B2 (en) 2018-02-16 2023-12-05 Henkel Ag & Co, Kgaa Method for producing a multi-layer substrate

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