US3683154A - Temperature control device - Google Patents

Temperature control device Download PDF

Info

Publication number
US3683154A
US3683154A US89800A US3683154DA US3683154A US 3683154 A US3683154 A US 3683154A US 89800 A US89800 A US 89800A US 3683154D A US3683154D A US 3683154DA US 3683154 A US3683154 A US 3683154A
Authority
US
United States
Prior art keywords
panels
coating
oven
heating
curing
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.)
Expired - Lifetime
Application number
US89800A
Inventor
Harry P Kipple
Virgil J Cozzarin
Francis C Kapperman
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.)
CBS Corp
Original Assignee
Westinghouse Electric Corp
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 Westinghouse Electric Corp filed Critical Westinghouse Electric Corp
Application granted granted Critical
Publication of US3683154A publication Critical patent/US3683154A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Images

Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K15/00Methods or apparatus specially adapted for manufacturing, assembling, maintaining or repairing of dynamo-electric machines
    • H02K15/12Impregnating, heating or drying of windings, stators, rotors or machines
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F26DRYING
    • F26BDRYING SOLID MATERIALS OR OBJECTS BY REMOVING LIQUID THEREFROM
    • F26B3/00Drying solid materials or objects by processes involving the application of heat
    • F26B3/28Drying solid materials or objects by processes involving the application of heat by radiation, e.g. from the sun
    • F26B3/30Drying solid materials or objects by processes involving the application of heat by radiation, e.g. from the sun from infrared-emitting elements
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01JMEASUREMENT OF INTENSITY, VELOCITY, SPECTRAL CONTENT, POLARISATION, PHASE OR PULSE CHARACTERISTICS OF INFRARED, VISIBLE OR ULTRAVIOLET LIGHT; COLORIMETRY; RADIATION PYROMETRY
    • G01J5/00Radiation pyrometry, e.g. infrared or optical thermometry
    • G01J5/0044Furnaces, ovens, kilns
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01JMEASUREMENT OF INTENSITY, VELOCITY, SPECTRAL CONTENT, POLARISATION, PHASE OR PULSE CHARACTERISTICS OF INFRARED, VISIBLE OR ULTRAVIOLET LIGHT; COLORIMETRY; RADIATION PYROMETRY
    • G01J5/00Radiation pyrometry, e.g. infrared or optical thermometry
    • G01J5/02Constructional details
    • G01J5/04Casings
    • G01J5/041Mountings in enclosures or in a particular environment
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01JMEASUREMENT OF INTENSITY, VELOCITY, SPECTRAL CONTENT, POLARISATION, PHASE OR PULSE CHARACTERISTICS OF INFRARED, VISIBLE OR ULTRAVIOLET LIGHT; COLORIMETRY; RADIATION PYROMETRY
    • G01J5/00Radiation pyrometry, e.g. infrared or optical thermometry
    • G01J5/02Constructional details
    • G01J5/04Casings
    • G01J5/047Mobile mounting; Scanning arrangements
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01JMEASUREMENT OF INTENSITY, VELOCITY, SPECTRAL CONTENT, POLARISATION, PHASE OR PULSE CHARACTERISTICS OF INFRARED, VISIBLE OR ULTRAVIOLET LIGHT; COLORIMETRY; RADIATION PYROMETRY
    • G01J5/00Radiation pyrometry, e.g. infrared or optical thermometry
    • G01J5/02Constructional details
    • G01J5/08Optical arrangements
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01JMEASUREMENT OF INTENSITY, VELOCITY, SPECTRAL CONTENT, POLARISATION, PHASE OR PULSE CHARACTERISTICS OF INFRARED, VISIBLE OR ULTRAVIOLET LIGHT; COLORIMETRY; RADIATION PYROMETRY
    • G01J5/00Radiation pyrometry, e.g. infrared or optical thermometry
    • G01J5/02Constructional details
    • G01J5/08Optical arrangements
    • G01J5/0846Optical arrangements having multiple detectors for performing different types of detection, e.g. using radiometry and reflectometry channels
    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05DSYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
    • G05D23/00Control of temperature
    • G05D23/19Control of temperature characterised by the use of electric means
    • G05D23/1919Control of temperature characterised by the use of electric means characterised by the type of controller
    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05DSYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
    • G05D23/00Control of temperature
    • G05D23/19Control of temperature characterised by the use of electric means
    • G05D23/27Control of temperature characterised by the use of electric means with sensing element responsive to radiation
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01BCABLES; CONDUCTORS; INSULATORS; SELECTION OF MATERIALS FOR THEIR CONDUCTIVE, INSULATING OR DIELECTRIC PROPERTIES
    • H01B13/00Apparatus or processes specially adapted for manufacturing conductors or cables
    • H01B13/06Insulating conductors or cables
    • H01B13/065Insulating conductors with lacquers or enamels
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B3/00Ohmic-resistance heating
    • H05B3/0033Heating devices using lamps
    • H05B3/0038Heating devices using lamps for industrial applications

Definitions

  • ABSTRACT A temperature control system for an oven for heating and curing a powdered coating of a heat hardenable resinous material that has been applied to coil windings of a magnetic core, including a heating panel on each of two opposite sides of a core, the panels being movably mounted on an oven frame for placement of the panels at suitable distances from the core, the panels having a plurality of infrared radiation lamps adapted to be turned on and off for predetermined portions of the preheating and curing periods, an infrared radiation thermometer mounted on each panel for detecting the temperature of a selected portion of the coating and for controlling the on and off status of the lamps, and the thermometers being pivotally mounted in the corresponding panel for enabling direction of the thermometer to the selected portion of the coating.
  • This invention relates to a radiation thermometer and more particularly it pertains to a radiation thermometcr adapted for measuring temperatures of selected positions of a resinous coating being cured in an oven.
  • Rotating electrical apparatus such as motors and generators, employ insulated coils comprising central core portions and end turn portions.
  • the preparation of coils, windings or conductors for insertion into slots of magnetizable cores by prior methods has involved the time consuming and costly process of applying insulation tape, wrappers, and slot cell liners to the coil portions, such as disclosed in US. Pat. No. 3,054,770. The process was particularly involved where it was employed in the repair for coils for motors and generators.
  • Repair shops handle apparatus of various sizes and are therefore necessarily faced with a wide variety of non-standardized coils of different shapes and sizes and needing different varnishes requiring different applying and curing procedures. For example, repair shops must be prepared to handle components of rotatable apparatus varying in diameter from four inches to 6 feet or more. In such circumstances the methods employed must be adapted to a maximum output at a minimum cost.
  • an oven for heating and curing a coating of heat hardenable resinous materials in place on coil windings in a slot'of a magnetic core which oven comprises support means for mounting the magnetic core in place, a heating panel oh at least one side of the support means, the panel having a source of infrared radiation energy for heating the resinous coating on the coil windings, and means for measuring the temperature of the resinous coating and for controlling the output of the source of infrared energy, and the means including an infrared radiation thermometer that is pivotally mounted in the panel for aiming the thermometer at a selected area for temperature measurement, whereby the powdered particles of resinous material are fused together and cured as a continuous insulating coating on the coil windings.
  • FIG. 1 is a vertical sectional view of the oven taken on the line I-I of FIG. 2;
  • FIG. 2 is an end elevational view of the oven
  • FIG. 3 is an enlarged vertical sectional view taken on the line III-III of FIG. 1;
  • FIG. 4 is an enlarged view taken on the line lVlV of FIG. 1;
  • FIG. 5 is a vertical sectional VV of FIG. 4.
  • an oven is generally indicated at 10. It includes a frame 12, a pair of heating panels 14 and 16, temperature control means or radiation thermometers l8 and 20 and a pair of sliding doors 22 and 24 on opposite sides of the oven.
  • the frame 12 includes four similar legs 26 (two of which are shown in FIG. 1), a pair of horizontal beams 28 (one of which is shown in FIG. 1), and a pair of inner connecting cross members 30 extending between opposite corresponding ends of the beam 28.
  • wheels 32 are mounted and at the lower end of another pair of the legs 26.
  • a grooved wheel 34 is mounted and disposed in engagement with a track 36.
  • the wheels 32 and 34 enable movement of the oven 10 to facilitate placement of a rotor 38 on a pedestal 40 such as, by an overhead crane after which the oven 10 may be rolled into place over and around the rotor 38 in order to cure layers 42 of heat curable resin on the end coils 44 of the rotor.
  • the heating panel 14 includes a plurality of horizontally disposed radiation heat lamps 46.
  • the lamps 46 in the panel 14 extend between a similar pair of vertically disposed arms 48.
  • the heat lamps 46 in the panel 16 are supported between a pair of spaced vertical arms 50.
  • the upper ends of the arms 48 are at tached to slide bars 52 in the upper ends of the arms 50 are attached to similar slide bars 54.
  • the upper edge portion of the slide bar 52 extends into an inverted C- shaped channel track 56 which is attached to the underside and is coextensive with the beam 28. Pairs of rollers 58 are attached to the upper edge portions of each plate 52 for rolling engagement with the interior of the channel track 56 as shown in FIG. 3.
  • each end of the panel 14 is suspended from similar slide bars 52 which are in rolling engagement with similar channel tracks 56 that are attached to both horizontal beams 28.
  • the panel 16 is similarly suspended from the pair of slide bars 54 the upper edges of which are also provided with 60 that engage the same track 56 as the rollers 58 on the panel 14.
  • the panels 14 and 16 are movable along the tracks 56 toward and away from the workpiece or rotor 38 in order to obtain the proper spacing from the heat lamps 46 during the curing.
  • both pairs of doors 22 and 24 are suspended from spaced pairs of rollers 62 which are rollingly mounted in a channel track 64 adjacent to the track 56 and attached to the undersurface of the beam 28, whereby both pairs of doors 22 and 24 may be'opened for setting up the operation prior to turning on the heat lamps 46.
  • the heat lamps 46 are preferably infrared lamps having a pair of quartz tubular heating elements 70 for each lamp. Each lamp 46 also includes a three-sided reflector 72 which reflects the heat generated by the heating element 70 from the elements and toward the workpiece or stator 38. Thus, each lamp 46 provides radiant energy heating the source of which heat for each lamp is a coiled tungsten filament (not shown) which extends from one end to the other of each quartz tube heating element 70. The filament operating temperature is approximately 4,000 F. During the heating and curing period all or a portion of the lamps 46 may be used, depending upon the size of the rotor 38.
  • the lamps 46 are controlled to turn them on and off during a selected percentage of their total operation time in order to gradually heat the layer 42 of resin to the desired fusion and curing temperature such as about 380 F. After the layer 42 of resin is brought to that temperature, or any other temperature depending upon the type of resin used, the temperature of the resin is closely controlled in order to obtain optimum curing in a minimum of time without burning the resin. For that resin, the lamps 46 may be on during greater or lesser percentages of their complete operation time as dictated by the characteristics and curing time for the particular resin used. r
  • Control means includingthe radiation thermometers 18 and 20 are provided for measuring the temperature of the layers 42 of resin during the preliminary heating as well as the final curing phases.
  • One type of radiation thermometer that is useful for that purpose is the IRCON 700 series radiation thermometer provided by IRCON Inc. of Chicago, Illinois for measuring temperatures from 100 to 4,000 F without contact.
  • the radiation thermometers l8 and 20 are dependent upon the intensity of radiation of the temperature of the layer 42 of resin. Inasmuch as all heated bodies emit infrared radiation, the thermometers l8 and 20, being provided with an optical system for collecting the radiation and focusing it on a built in infrared detector which converts the radiant energy into an electrical signal which is amplified and used to control the current supply to the heating lamps 46.
  • thermometers 18 and 20 are dependent upon an accurate focus upon the object being heated the thermometers are provided with mounting means including a support rod 74 and a clamp 76 in which the rod is slidingly mounted to adjust the height of the thermometer 18 or 20.
  • the clamp 76 is attached to a bar clamp 78 which is mounted on a horizontal support bar 80.
  • the opposite ends of which are secured to end rod 82 which extend outwardly from a mounting plate 84.
  • the plate 84 in turn is attached at opposite ends to the corresponding pairs of arms 48 and 50.
  • the upper end of the support rod 74 is pivoted at 86 to the underside of the thermometer 18 or 20 to enable movement of the thermometer to any angle such as indicated by the broken line positions 180 and 20a.
  • each thermometer l8 and 20 and its corresponding panels 48 and 50, respectively is maintained by a tube 88 and 90, respectively, one end of which is rigidly fixed to the optic system of the thermometer.
  • the other end of each tube 88 and 90 is provided with'a ball 92 and 94, respectively, which ball has a bore aligned with the interior opening of the tube for transmitting the infrared radiation reflected from the heated layer 42 of resin.
  • the ball 94 is secured between a vertical plate 96 on the front side of the panel 16 and a mounting bracket 98 which is secured in place behind a pair of lamps 46.
  • the combination of the ball 94 and the tube 90 maintains the required focus distance between the thermometers 18 and 20 and the inner surfaces of the corresponding panels 14 and 16.
  • the remainder of the focus distance from the thermometers 18 and 20 to the layer 42 of resin is a measured distance 100 between the ball 94 and the particular area on the layer 42 selected for temperature measurement during the curing period.
  • an oven for curing a coating of a powdered heat hardenable resin material on a coil winding of a magnetic core located within the oven which oven includes a heating panel of infrared radiant energy on two opposite sides of the magnetic core, and the panels being movably mounted on a supporting frame to varying positions from a magnetic core
  • the improvement comprising means for measuring the temperature of the resinous coating and for controlling the on and off time intervals of the heating panels during the preheat and ble at the selected area of the coating, and the ball of the ball and socket joint is attached to the other end of the tube, and the ball having an opening therethrough aligned with the tube interior.
  • the oven of claim 1 wherein the source of radiant heat energy is provided on at least two sides of the support means and are mounted on panels that are movable to and from support means, and the radiation thermometers are infrared radiation thermometers mounted in the panels and adapted for controlling the current to the source of radiant heat energy.

Abstract

A temperature control system for an oven for heating and curing a powdered coating of a heat hardenable resinous material that has been applied to coil windings of a magnetic core, including a heating panel on each of two opposite sides of a core, the panels being movably mounted on an oven frame for placement of the panels at suitable distances from the core, the panels having a plurality of infrared radiation lamps adapted to be turned on and off for predetermined portions of the preheating and curing periods, an infrared radiation thermometer mounted on each panel for detecting the temperature of a selected portion of the coating and for controlling the on and off status of the lamps, and the thermometers being pivotally mounted in the corresponding panel for enabling direction of the thermometer to the selected portion of the coating.

Description

United States Patent Kipple et al. a
[s4] TEMPERATURE CONTROL mzvrcr:
[22] Filed: Nov. 16, 1970 [2 1] Appl. No.: 89,800
[52] US. Cl. ..219/412, 73/15, 219/348,
219/349, 219/352, 219/405, 219/411 [51]- Int. Cl ..F27d 11/02 [58] Field of Search ..2l9/412413, 405,
[56] References Cited UNITED STATES PATENTS 2,559,249 7/1951 Hudson ..219/411 2,610,280 9/1952 Wilson ..219/348 2,688,685 9/1954 Goodell ..2l9/405 X 2,708,707 5/1955 Merrill et a1. ..219/352 X 1 1 Aug. 8, 1972 2,841,684 7/1958 Miskella ..219/349 X 3,003,409 10/1961 Mills ..99/331 3,023,296 2/1962 Barber ..219/349 3,292,418 12/1966 Oehme et a1. ..73/15 Primary Examiner-Velodymyr Y. Mayewsky Attorney-F. Shapoe et a1.
[57] ABSTRACT A temperature control system for an oven for heating and curing a powdered coating of a heat hardenable resinous material that has been applied to coil windings of a magnetic core, including a heating panel on each of two opposite sides of a core, the panels being movably mounted on an oven frame for placement of the panels at suitable distances from the core, the panels having a plurality of infrared radiation lamps adapted to be turned on and off for predetermined portions of the preheating and curing periods, an infrared radiation thermometer mounted on each panel for detecting the temperature of a selected portion of the coating and for controlling the on and off status of the lamps, and the thermometers being pivotally mounted in the corresponding panel for enabling direction of the thermometer to the selected portion of the coating.
5 Claims, 5 Drawing Figures PATENTEDAUG 8 I972 SHEET 1 OF 3 mwvm ll PATENTEDws 8 I972 sum 2 or 3 EXHAUST 68 FIGB PATENTEDAus 8 I972 SHEET 3 BF 3 FIG.4
CROSS-REFERENCE TO RELATED APPLICATION This application is related to pending application Ser. No 89,797 filed Nov. 16, 1970.
BACKGROUND OF THE INVENTION l. Field of the Invention:
This invention relates to a radiation thermometer and more particularly it pertains to a radiation thermometcr adapted for measuring temperatures of selected positions of a resinous coating being cured in an oven.
2. Description of the Prior Art:
Rotating electrical apparatus such as motors and generators, employ insulated coils comprising central core portions and end turn portions. The preparation of coils, windings or conductors for insertion into slots of magnetizable cores by prior methods has involved the time consuming and costly process of applying insulation tape, wrappers, and slot cell liners to the coil portions, such as disclosed in US. Pat. No. 3,054,770. The process was particularly involved where it was employed in the repair for coils for motors and generators.
' A method that would eliminate or reduce the amount of taping and wrapping required for all types of rewound rotating apparatus would be desirable. In addition to reducing the labor required in the rewinding of the coil windings, a reduction of subsequent treatment cycles has been sought. More particularly, in the area of form-wound coils for stators, rotors, and armatures with, for example, direct current fields and rotating fields, the methods have remained the same; i.e., mostly the hand taping of the assembled conductors, varnish treatment and approximately 12 hours baking cycles. The foregoing problems are of greater moment where repair shops for processing such apparatus are involved. Repair shops handle apparatus of various sizes and are therefore necessarily faced with a wide variety of non-standardized coils of different shapes and sizes and needing different varnishes requiring different applying and curing procedures. For example, repair shops must be prepared to handle components of rotatable apparatus varying in diameter from four inches to 6 feet or more. In such circumstances the methods employed must be adapted to a maximum output at a minimum cost.
The use of heat hardenable resinous materials as insulation for coil windings both within the magnetic core slot as well as the coil end turns has been considered as a method of obviating the prior method of taping and wrapping as disclosed in said patent. A deterrant factor to the use of resinous materials, however, has been the lack of a suitable apparatus for rapidly heating and fully curing the materials after they have been applied to the windings. That is particularly true where the insulation material is applicable as particles of powdered resinous material.
curing time of the particular resinous material involved.
2 SUMMARY OF THE INVENTION In accordance with this invention it has been found that the foregoing problems may be overcome by providing an oven for heating and curing a coating of heat hardenable resinous materials in place on coil windings in a slot'of a magnetic core which oven comprises support means for mounting the magnetic core in place, a heating panel oh at least one side of the support means, the panel having a source of infrared radiation energy for heating the resinous coating on the coil windings, and means for measuring the temperature of the resinous coating and for controlling the output of the source of infrared energy, and the means including an infrared radiation thermometer that is pivotally mounted in the panel for aiming the thermometer at a selected area for temperature measurement, whereby the powdered particles of resinous material are fused together and cured as a continuous insulating coating on the coil windings.
BRIEF DESCRIPTION OF THE DRAWINGS FIG. 1 is a vertical sectional view of the oven taken on the line I-I of FIG. 2;
FIG. 2 is an end elevational view of the oven;
FIG. 3 is an enlarged vertical sectional view taken on the line III-III of FIG. 1;
FIG. 4 is an enlarged view taken on the line lVlV of FIG. 1; and
FIG. 5 is a vertical sectional VV of FIG. 4.
DESCRIPTION OF THE PREFERRED EMBODIMENTS In FIG. 1, an oven is generally indicated at 10. It includes a frame 12, a pair of heating panels 14 and 16, temperature control means or radiation thermometers l8 and 20 and a pair of sliding doors 22 and 24 on opposite sides of the oven.
The frame 12 includes four similar legs 26 (two of which are shown in FIG. 1), a pair of horizontal beams 28 (one of which is shown in FIG. 1), and a pair of inner connecting cross members 30 extending between opposite corresponding ends of the beam 28. At the lower end of two of the legs 26 wheels 32 are mounted and at the lower end of another pair of the legs 26. A grooved wheel 34 is mounted and disposed in engagement with a track 36. The wheels 32 and 34 enable movement of the oven 10 to facilitate placement of a rotor 38 on a pedestal 40 such as, by an overhead crane after which the oven 10 may be rolled into place over and around the rotor 38 in order to cure layers 42 of heat curable resin on the end coils 44 of the rotor.
As shown in FIG. 1, all other portions of the oven 10 including the heating panels 14, the thermometers l8 and the sliding doors 22 and 24 are suspended from the top of the frame 12 and particularly the beams 28. The heating panel 14 includes a plurality of horizontally disposed radiation heat lamps 46. The lamps 46 in the panel 14 extend between a similar pair of vertically disposed arms 48. Likewise, the heat lamps 46 in the panel 16 are supported between a pair of spaced vertical arms 50. The upper ends of the arms 48 are at tached to slide bars 52 in the upper ends of the arms 50 are attached to similar slide bars 54.
view taken on the line As shown more particularly in FIG. 3, the upper edge portion of the slide bar 52 extends into an inverted C- shaped channel track 56 which is attached to the underside and is coextensive with the beam 28. Pairs of rollers 58 are attached to the upper edge portions of each plate 52 for rolling engagement with the interior of the channel track 56 as shown in FIG. 3. As was indicated above, each end of the panel 14 is suspended from similar slide bars 52 which are in rolling engagement with similar channel tracks 56 that are attached to both horizontal beams 28. The panel 16 is similarly suspended from the pair of slide bars 54 the upper edges of which are also provided with 60 that engage the same track 56 as the rollers 58 on the panel 14. Thus, the panels 14 and 16 are movable along the tracks 56 toward and away from the workpiece or rotor 38 in order to obtain the proper spacing from the heat lamps 46 during the curing.
As shown in FIG. 1 and more particularly in FIG. 3, both pairs of doors 22 and 24 are suspended from spaced pairs of rollers 62 which are rollingly mounted in a channel track 64 adjacent to the track 56 and attached to the undersurface of the beam 28, whereby both pairs of doors 22 and 24 may be'opened for setting up the operation prior to turning on the heat lamps 46.
When the lamps 46 are on for curing, the layer 42 of resin on the end coils 44 the doors 22 and 24 are closed as shown in the solid line position thereof in FIG. 1. During the curing operation, the chamber surrounding the stator38 becomes heated and a pair of heat barrier walls 66 are provided between opposite pairs of slide bars 52 and 54. In addition, a sealing 68 is provided between the top side of the spaced beams 28 which sealing extends throughout the distance of complete spacing of the walls 68 when the beams 14 and 16 are opened to their widest distance as indicated by the broken line positions 14a and 16a.
The heat lamps 46 are preferably infrared lamps having a pair of quartz tubular heating elements 70 for each lamp. Each lamp 46 also includes a three-sided reflector 72 which reflects the heat generated by the heating element 70 from the elements and toward the workpiece or stator 38. Thus, each lamp 46 provides radiant energy heating the source of which heat for each lamp is a coiled tungsten filament (not shown) which extends from one end to the other of each quartz tube heating element 70. The filament operating temperature is approximately 4,000 F. During the heating and curing period all or a portion of the lamps 46 may be used, depending upon the size of the rotor 38.
Ordinarily, during their operation, the lamps 46 are controlled to turn them on and off during a selected percentage of their total operation time in order to gradually heat the layer 42 of resin to the desired fusion and curing temperature such as about 380 F. After the layer 42 of resin is brought to that temperature, or any other temperature depending upon the type of resin used, the temperature of the resin is closely controlled in order to obtain optimum curing in a minimum of time without burning the resin. For that resin, the lamps 46 may be on during greater or lesser percentages of their complete operation time as dictated by the characteristics and curing time for the particular resin used. r
Control means includingthe radiation thermometers 18 and 20 are provided for measuring the temperature of the layers 42 of resin during the preliminary heating as well as the final curing phases. One type of radiation thermometer that is useful for that purpose is the IRCON 700 series radiation thermometer provided by IRCON Inc. of Chicago, Illinois for measuring temperatures from 100 to 4,000 F without contact. The radiation thermometers l8 and 20 are dependent upon the intensity of radiation of the temperature of the layer 42 of resin. Inasmuch as all heated bodies emit infrared radiation, the thermometers l8 and 20, being provided with an optical system for collecting the radiation and focusing it on a built in infrared detector which converts the radiant energy into an electrical signal which is amplified and used to control the current supply to the heating lamps 46. Inasmuch as the radiation thermometers 18 and 20 are dependent upon an accurate focus upon the object being heated the thermometers are provided with mounting means including a support rod 74 and a clamp 76 in which the rod is slidingly mounted to adjust the height of the thermometer 18 or 20. The clamp 76 is attached to a bar clamp 78 which is mounted on a horizontal support bar 80. The opposite ends of which are secured to end rod 82 which extend outwardly from a mounting plate 84. The plate 84 in turn is attached at opposite ends to the corresponding pairs of arms 48 and 50. As shown in FIG. 1 the upper end of the support rod 74 is pivoted at 86 to the underside of the thermometer 18 or 20 to enable movement of the thermometer to any angle such as indicated by the broken line positions 180 and 20a.
The distance between each thermometer l8 and 20 and its corresponding panels 48 and 50, respectively, is maintained by a tube 88 and 90, respectively, one end of which is rigidly fixed to the optic system of the thermometer. The other end of each tube 88 and 90 is provided with'a ball 92 and 94, respectively, which ball has a bore aligned with the interior opening of the tube for transmitting the infrared radiation reflected from the heated layer 42 of resin.
As shown more particularly in FIG. 5, the ball 94 is secured between a vertical plate 96 on the front side of the panel 16 and a mounting bracket 98 which is secured in place behind a pair of lamps 46. Thus, the combination of the ball 94 and the tube 90 maintains the required focus distance between the thermometers 18 and 20 and the inner surfaces of the corresponding panels 14 and 16. The remainder of the focus distance from the thermometers 18 and 20 to the layer 42 of resin is a measured distance 100 between the ball 94 and the particular area on the layer 42 selected for temperature measurement during the curing period.
What is claimed is:
1. In an oven for curing a coating of a powdered heat hardenable resin material on a coil winding of a magnetic core located within the oven, which oven includes a heating panel of infrared radiant energy on two opposite sides of the magnetic core, and the panels being movably mounted on a supporting frame to varying positions from a magnetic core, the improvement comprising means for measuring the temperature of the resinous coating and for controlling the on and off time intervals of the heating panels during the preheat and ble at the selected area of the coating, and the ball of the ball and socket joint is attached to the other end of the tube, and the ball having an opening therethrough aligned with the tube interior.
5. The oven of claim 1 wherein the source of radiant heat energy is provided on at least two sides of the support means and are mounted on panels that are movable to and from support means, and the radiation thermometers are infrared radiation thermometers mounted in the panels and adapted for controlling the current to the source of radiant heat energy.

Claims (5)

1. In an oven for curing a coating of a powdered heat hardenable resin material on a coil winding of a magnetic core located within the oven, which oven includes a heating panel of infrared radiant energy on two opposite sides of the magnetic core, and the panels being movably mounted on a supporting frame to varying positions from a magnetic core, the improvement comprising means for measuring the temperature of the resinous coating and for controlling the on and off time intervals of the heating panels during the preheat and curing periods of the coating, and the measuring means being adjustably mounted in the heating panels so that it may be directed at a selected area of the coating for temperature measurement thereof.
2. The apparatus of claim 1 wherein the measuring means includes an adjustable ball and socket joint in the heating panels, for mounting the means in place.
3. The apparatus of claim 2 wherein the measuring means includes infrared radiation thermometers at each heating panel.
4. The apparatus of claim 3 wherein each infrared thermometer is mounted at one end of the tube directable at the selected area of the coating, and the ball of the ball and socket joint is attached to the other end of the tube, and the ball having an opening therethrough aligned with the tube interior.
5. The oven of claim 1 wherein the source of radiant heat energy is provided on at least two sides of the support means and are mounted on panels that are movable to and from support means, and the radiation thermometers are infrared radiation thermometers mounted in the panels and adapted for controlling the current to the source of radiant heat energy.
US89800A 1970-11-16 1970-11-16 Temperature control device Expired - Lifetime US3683154A (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US8980070A 1970-11-16 1970-11-16

Publications (1)

Publication Number Publication Date
US3683154A true US3683154A (en) 1972-08-08

Family

ID=22219644

Family Applications (1)

Application Number Title Priority Date Filing Date
US89800A Expired - Lifetime US3683154A (en) 1970-11-16 1970-11-16 Temperature control device

Country Status (2)

Country Link
US (1) US3683154A (en)
CA (1) CA942816A (en)

Cited By (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2538181A1 (en) * 1982-12-20 1984-06-22 Mitsubishi Electric Corp Coil insulating method for rotating electrical machine.
US4501072A (en) * 1983-07-11 1985-02-26 Amjo, Inc. Dryer and printed material and the like
US4556783A (en) * 1983-11-14 1985-12-03 Trinity Industrial Corporation Heat welding apparatus
US4856700A (en) * 1985-11-29 1989-08-15 Kawasaki Jukogyo Kabushiki Kaisha Apparatus for assembling a structural panel in order to prevent the sag thereof
US4980538A (en) * 1988-06-10 1990-12-25 Instrumentation Laboratory S. P. A. Heating and temperature-control device for biological sample containers
WO1994007101A1 (en) * 1992-09-11 1994-03-31 Queen Mary & Westfield College Radiant heating furnace
US5590238A (en) * 1990-03-05 1996-12-31 Birger Ericson Fasad Ab Horizontally and vertically movable radiant heater for removing paint from a surface
US6127653A (en) * 1998-06-02 2000-10-03 Samuels; Gladestone Method and apparatus for maintaining driveways and walkways free of ice and snow
EP1167138A1 (en) * 2000-02-04 2002-01-02 Uegaki, Tateo Repairing device for vehicles
CN101819068A (en) * 2010-05-11 2010-09-01 无锡风电设计研究院有限公司 Temperature detecting device and method of composite material in infusion and curing process
CN101989798B (en) * 2009-07-30 2012-11-07 上海新沪电机厂有限公司 Far infrared heating device
RU2529778C1 (en) * 2012-02-28 2014-09-27 Сикора Аг Method and device for measurement of temperature of multi-strand material
US20150170796A1 (en) * 2012-09-10 2015-06-18 Yazaki Corporation Wire harness
CN111446047A (en) * 2020-04-07 2020-07-24 安徽恒明工程技术有限公司 Electromagnetic wire baking process

Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2559249A (en) * 1948-02-18 1951-07-03 William H Hudson Infrared oven structure
US2610280A (en) * 1947-02-26 1952-09-09 Wilson Wesley Infrared oven construction
US2688685A (en) * 1951-10-29 1954-09-07 Paul H Goodell Sheath-resistance heater and panel supporting structures therefor which are built into heating devices
US2708707A (en) * 1952-06-13 1955-05-17 Frank C Merrill Portable paint baking apparatus
US2841684A (en) * 1956-06-12 1958-07-01 William J Miskella Apparatus for baking paint on automotive vehicles
US3003409A (en) * 1959-05-01 1961-10-10 Reflectotherm Inc Ultra-long wavelength infrared radiant heating oven
US3023296A (en) * 1960-02-23 1962-02-27 Fostoria Corp Radiant heating device
US3292418A (en) * 1964-06-04 1966-12-20 Cons Papers Inc Method and apparatus for testing printing paper for blistering

Patent Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2610280A (en) * 1947-02-26 1952-09-09 Wilson Wesley Infrared oven construction
US2559249A (en) * 1948-02-18 1951-07-03 William H Hudson Infrared oven structure
US2688685A (en) * 1951-10-29 1954-09-07 Paul H Goodell Sheath-resistance heater and panel supporting structures therefor which are built into heating devices
US2708707A (en) * 1952-06-13 1955-05-17 Frank C Merrill Portable paint baking apparatus
US2841684A (en) * 1956-06-12 1958-07-01 William J Miskella Apparatus for baking paint on automotive vehicles
US3003409A (en) * 1959-05-01 1961-10-10 Reflectotherm Inc Ultra-long wavelength infrared radiant heating oven
US3023296A (en) * 1960-02-23 1962-02-27 Fostoria Corp Radiant heating device
US3292418A (en) * 1964-06-04 1966-12-20 Cons Papers Inc Method and apparatus for testing printing paper for blistering

Cited By (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2538181A1 (en) * 1982-12-20 1984-06-22 Mitsubishi Electric Corp Coil insulating method for rotating electrical machine.
US4501072A (en) * 1983-07-11 1985-02-26 Amjo, Inc. Dryer and printed material and the like
US4556783A (en) * 1983-11-14 1985-12-03 Trinity Industrial Corporation Heat welding apparatus
US4856700A (en) * 1985-11-29 1989-08-15 Kawasaki Jukogyo Kabushiki Kaisha Apparatus for assembling a structural panel in order to prevent the sag thereof
US4988032A (en) * 1985-11-29 1991-01-29 Kawasaki Jukogyo Kabushiki Kaisha Method for assembling a structural panel in order to prevent the sag thereof
US4980538A (en) * 1988-06-10 1990-12-25 Instrumentation Laboratory S. P. A. Heating and temperature-control device for biological sample containers
US5590238A (en) * 1990-03-05 1996-12-31 Birger Ericson Fasad Ab Horizontally and vertically movable radiant heater for removing paint from a surface
AU672041B2 (en) * 1992-09-11 1996-09-19 Queen Mary & Westfield College Radiant heating furnace
WO1994007101A1 (en) * 1992-09-11 1994-03-31 Queen Mary & Westfield College Radiant heating furnace
US6127653A (en) * 1998-06-02 2000-10-03 Samuels; Gladestone Method and apparatus for maintaining driveways and walkways free of ice and snow
EP1167138A1 (en) * 2000-02-04 2002-01-02 Uegaki, Tateo Repairing device for vehicles
EP1167138A4 (en) * 2000-02-04 2005-02-09 Uegaki Tateo Repairing device for vehicles
CN101989798B (en) * 2009-07-30 2012-11-07 上海新沪电机厂有限公司 Far infrared heating device
CN101819068A (en) * 2010-05-11 2010-09-01 无锡风电设计研究院有限公司 Temperature detecting device and method of composite material in infusion and curing process
RU2529778C1 (en) * 2012-02-28 2014-09-27 Сикора Аг Method and device for measurement of temperature of multi-strand material
US20150170796A1 (en) * 2012-09-10 2015-06-18 Yazaki Corporation Wire harness
US9947439B2 (en) * 2012-09-10 2018-04-17 Yazaki Corporation Dark exterior wire harness with heat-reflection and identification portion
CN111446047A (en) * 2020-04-07 2020-07-24 安徽恒明工程技术有限公司 Electromagnetic wire baking process

Also Published As

Publication number Publication date
CA942816A (en) 1974-02-26

Similar Documents

Publication Publication Date Title
US3683154A (en) Temperature control device
EP0385571B1 (en) Electromagnetic induction heating apparatus
KR101044166B1 (en) Method and device for heating stator
US3732066A (en) Oven for controlling heating and curing of resinous insulating material
US2417678A (en) Work handling apparatus
RU2728895C1 (en) Inducing heat by rotating magnet
JPH0124846B2 (en)
CN103714917A (en) Enameling machine suitable for light-cured insulating paint
JPS60250034A (en) Process and apparatus for polymerizing and/or bridging resincontained in composition of composite material member by ionizing radiation
US2819370A (en) Polyphase induction heating apparatus
US2858405A (en) 60-cycle induction furnace
CN106319168B (en) A kind of metal blank induction heating apparatus of achievable temperature scaling factor
CN110154379B (en) Wire harness sleeving heat shrinkage pipe device and wire harness sleeving heat shrinkage pipe method
SE7607040L (en) INSTALLATION FOR CONTINUOUS VULCANIZATION OF LONG-TERM VULCANIZABLE PRODUCTS
US4443679A (en) Induction furnace for heat shrinking thermoplastic sheet onto mandrels in a forming process
CN111430146B (en) Induction coil assembly for induction heating and machining device and method thereof
JPH0118853B2 (en)
US3824366A (en) Process and apparatus for annealing the weld bead of a welded metallic tube
JP2765180B2 (en) Induction heating device and induction heating method
CN113894166B (en) Device for induction heating of strip steel
CA1052845A (en) Heating apparatus for preheating, reducing moisture content and firing heatint of dental products
CN215676465U (en) Resistance furnace with heat energy circulation
JPS61136618A (en) Induction heating method
CN218108854U (en) Online heating device of cold rolling experiment machine steel band
SU1049986A1 (en) Apparatus for manufacturing flat cable