US2848794A - Method of making electrical coils for high temperature use - Google Patents

Method of making electrical coils for high temperature use Download PDF

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US2848794A
US2848794A US401313A US40131353A US2848794A US 2848794 A US2848794 A US 2848794A US 401313 A US401313 A US 401313A US 40131353 A US40131353 A US 40131353A US 2848794 A US2848794 A US 2848794A
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coil
wire
cement
slurry
temperature
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Roth Wilfred
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Bendix Aviation Corp
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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F41/00Apparatus or processes specially adapted for manufacturing or assembling magnets, inductances or transformers; Apparatus or processes specially adapted for manufacturing materials characterised by their magnetic properties
    • H01F41/02Apparatus or processes specially adapted for manufacturing or assembling magnets, inductances or transformers; Apparatus or processes specially adapted for manufacturing materials characterised by their magnetic properties for manufacturing cores, coils, or magnets
    • H01F41/04Apparatus or processes specially adapted for manufacturing or assembling magnets, inductances or transformers; Apparatus or processes specially adapted for manufacturing materials characterised by their magnetic properties for manufacturing cores, coils, or magnets for manufacturing coils
    • H01F41/12Insulating of windings
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01CRESISTORS
    • H01C17/00Apparatus or processes specially adapted for manufacturing resistors
    • H01C17/02Apparatus or processes specially adapted for manufacturing resistors adapted for manufacturing resistors with envelope or housing
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49002Electrical device making
    • Y10T29/4902Electromagnet, transformer or inductor
    • Y10T29/49071Electromagnet, transformer or inductor by winding or coiling
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/4981Utilizing transitory attached element or associated separate material
    • Y10T29/49812Temporary protective coating, impregnation, or cast layer
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/4998Combined manufacture including applying or shaping of fluent material
    • Y10T29/49982Coating

Definitions

  • This invention relates to the manufacture of electrical coils for high temperature use.
  • the invention provides a method for making such coils which involves winding into coil form a pie-insulated Wire and coating the turns of the coil with a slurry of a refractory cement, and, after the cement has set, heating the coil to above the decomposition temperature of the pro-insulation.
  • the present invention provides a simple method which has been found to be eminently suitable for making coils capable of operating successfully at temperatures of 250 C. and higher.
  • the new method does not require specially prepared wire, but rather uses conventional insulated wire, advantageously enameled wire, and a conventional refractory cement.
  • a slurry of the refractory cement is prepared in the usual manner.
  • Such a slurry may advantageously be a siliceous cement slurry comprising an alkali metal silicate solution in which powdered siliceous material is dispersed.
  • a coating of the slurry is applied to a wire which has been previously enameled with a conventional organic enamel, or otherwise insulated, and wound into coil form.
  • the cement is then allowed to set and the coil heated to a temperature above the decomposition temperature of the pro-insulation.
  • enameled Wire is coated with the slurry and, while still Wet with the slurry coating, is wound into coil form. Then the cement is allowed to set, and thereafter the coil is heated to a temperature above the decomposition temperature of the enamel.
  • the coil thus prepared comprises a multiplicity of turns of metallic wire embedded in a rigid monolithic refractory mass, the wire being surrounded throughout its length within the coil by thermal decomposition products of the organic enamel coating or other insulation with which it was originally provided, and each turn of the coil is held in spaced relation with adjacent turns by the refractory mass.
  • Fig. 1 is a schematic representation of apparatus suit- Kidd-h3 4 Patented 1 mg. 26, 195% able for carrying out the preferred method of the invention;
  • Fig. 2 is a cross section on a greatly enlarged scale through four adjacent turns of a coil made in accordance with the invention, prior to the final heating step;
  • Fig. 3 is a perspective of a typical completed coil according to the invention.
  • pre-insulated conductive wire 5 to be wound into an electrical coil is taken from a supply spool 6.
  • a conventional enameled wire is employed.
  • Such wire commonly is coated with a baked enamel of an oleo resin composition (i. e. a composition of a natural or synthetic resin dissolved in a drying oil).
  • an oleo resin composition i. e. a composition of a natural or synthetic resin dissolved in a drying oil.
  • other enameled wires may be used equally well,
  • the insulated wire is passed through a vessel 7 contain ing a slurry 8 of refractory cement, whereby tie wire is coated with such slurry.
  • the refractory cement slurry may advantageously be a siliceous cement slurry which generally comprises a solution of sodium silicate or other alkali metal silicate (e. g., potassium silicate or lithium silicate) in which a finely divided or powdered solid siliceous material is suspended.
  • the solid material may comprise powdered asbestos, clay, Portland cement, diatomaceous earth, powdered silica, or mixtures of these substances.
  • modifying agents such as lead or zinc oxide, barium sulfate, whiting, or manganese dioxide, may be incorporated with the siliceous material in the cement.
  • the cement may also include magnesium oxide or magnesium chloride, or both, in either major or minor proportions.
  • the composition of the cement is not cri itcal so far as the present invention is concerned. Any conventional siliceous (or equivalent refractory) cement which is not electrically conducting may be used successfully. It is important only that the cement be capable of setting to a hard mass at room temperature or at some moderately elevated temperature below the thermal decomposition temperature of the wire enamel or other insulation (e. g., below C. for enamel), and that after it has set it be capable of withstanding prolonged heating at the elevated temperature at which the coil is to be operated (e. g., 250 C. or higher). Air drying or chemical setting cements may be employed as best suits the particular application.
  • the wire while wet with the coating of refractory cement, is wound into an electrical coil on any desired coil form 9.
  • the initial slurry 8 is preferably of fairly thick consistency so that a sufficient quantity will adhere to the wire to thoroughly coat the turns of the coil and till the interstices.
  • some of the cement slurry may be allowed to drip on to the coil from a vessel It), as the coil is being wound, to further insure that the coil is thoroughly permeated with the cement.
  • Excess cement may be drained by gr vity from the coil into a receptacle 11.
  • the refractory cement is allowed to set. Depending on the particular cement composition selected, setting occurs generally in a period from a few minutes to a few hours. Setting may take place at room temperature, or it may be accelerated by heating the coil to amoderate temperature preferably be low 75 C. Such heating. may be employed, if desired, before the cement has set, simply to accelerate the setting. or it may be employed after the cement has set to insure complete evaporation of moisture from the coil.
  • the coil is heated to an ele .vated temperature above the thermal decomposition temperature of the enamel on the wire, and preferably for a period of time sulficient to effect substantially complete decomposition of the wire enamel.
  • Such heating may be accomplished in any desired fashion.
  • the coil may be fired in a heated furnace, at a temperature of 250 C. to 375 C. or higher.
  • the temperature of heating should be at least equal to, and preferably is somewhat above, the maximum temperature to which the coil willbe subjected in service.
  • the coil may be heated by passing an electric current through it, of such magnitude as to bring the coil temperature to the desired maximum value.
  • heating may be accomplished simply by putting the coil in high temperature service, and letting it become heated in the course of its normal operation.
  • the length of time required for the high temperature heat treatment will of course depend on the temperature employed and 011 the composition of the wire insulation and the cement. Periods of several hours have been employed with success. Generally speaking, periods of heat treatment longer than the minimum time required to effect decomposition of the insulation will do no harm and afford a desirable factor of safety.
  • FIG. 2 A cross section through four adjacent turns of a coil prepared as above described, but prior to the final heating, is shown on a greatly enlarged scale in Fig. 2.
  • Each turn of copper or other metallic wire 12 is surrounded by its film of insulation 13. Adjacent turns may be substantially contiguous and/or overlapping to occupy minimum space.
  • the refractory cement composition 14 fills the interstices between the turns of wire. With a fairly thick slurry and moderate tension on the wire during winding, a thin coating of the refractory cement may remain between adjacent turns as indicated at 14.
  • the metallic conductors are held out of contact with each other by the insulation 13. It is essential that an insulated wire be used, in order to insure that adjacent turns of the coil will not be shortcircuited when it is freshly wound and while the refractory cement is still in liquid slurry form.
  • the wire is heated to its final elevated temperature above the thermal decomposition temperature of the enamel, it is probable that some shrinkage of the insulation film takes place.
  • the wires appear to be maintained in their spaced relation, out of contact with one another, by therefractory cement, which now is in its hardened condition. Indeed, such shrinkage or decomposition of the insulation may be advantageous in allowing some room for thermal expansion of the wire when the coil is subjected to high temperatures.
  • the thermal decomposition product of the enamel film which remains about the wire after the final heating step has been completed, is doubtless carbonaceous. It is not necessary, however, to take any special steps to insure its complete oxidation, or otherwise to eliminate it from the surface of the wire, for it has been found to have no deleterious effect on the coil. Coils made in the manner described above, after heating, do not show any indication of shorted turns or other defects, either electrical or mechanical.
  • enameled wire is advantageously employed for the insulated wire.
  • Such wire has the advantage that it is free of any textile or fibrous covering which might give rise to short-circuits between turns after subsequent processing, due to decomposed conductive filaments, etc., and has been found very satisfactory in use.
  • Plastic-insulated wire such as wire covered with teflon, nylon, vinyl materials, etc., is likewise free of fibrous matter and may be employed if desired.
  • fibrous types of insulation such as wire covered with cotton, silk, or rayon insulation, etc.
  • a sufficiently thick slurry and to adjust the winding tension so as to insure that there is at least a thin layer of cement, such as shown at 14', be-
  • insulated copper Wire has been employed with success, in some high temperature applications the copper may become embrittled and lead to eventual failure due to repeated expansion and contraction. in such cases other metals may be employed such as aluminum, silver, etc., if desired.
  • the insulated wire is coated with a refractory cement slurry just prior to (and sometimes also during) winding the coil. This insures that each turn of the wire when in coil form is coated with the refractory cement in a slurry condition prior to setting of the cement. While this procedure has been found satisfactory in practice, other methods of applying the refractory cement are possible so long as the turns of the insulated wire when in coil form are coated with the eement in a slurry condition before it has.- set. I
  • the method of the invention has proved to be eminently satisfactory for making small coils of very fine wire, such, for example, as the transducer coil of the magnetostrictive probe described and claimed in the copending application of Stanley R. Rich and myself, Serial No. 227,694, filed May 22, 1951.
  • a coil is shown in perspective in Fig. 3. It comprises steatite or other refractory end forms 15, between which is the coil body of wire embedded in a rigid monolithic mass 16 of refractory material.
  • the coil leads 17 are shown brought out through one of the end forms 15.
  • Such a coil is approximately five-sixteenths inch in diameter by three quarters inch in length, and is random-wound with a large number of turns of No. 40 A. W. G. copper wire.
  • coils for other purposes, of larger size and wound with larger wire can equally well be made in accordance with the invention. Examples are coils for relays, actuators, mo tors, etc. where the withstanding of high temperatures is important.
  • the method of making an electrical coil suitable for high temperature operation which comprises applying a coating of a refractory cement slurry to a wire enameled with an organic enamel, winding the resulting slurrycoated wire into coil form before the cement has set, allowing the cement to set, and thereafter heating the coil to a temperature above the decomposition temperature of the enamel to remove the enamel and prevent short circuiting.

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Manufacturing & Machinery (AREA)
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  • Resistance Heating (AREA)

Description

Aug. 26, 1958 w. ROTH 2,848,794
METHOD OF MAKING ELECTRICAL cons FOR HIGH TEMPERATURE USE Filed Dec. 50, 1953 NVENTOR Wilfred Roth BY PMZQA QZMAJW ATTORNEYS METHGD (IF MAKll li ELECTRKCAL CGILS Fills; HE GH TEMPERATURE USE Wiifred Roth, West Hartford, Comm, assignor to Eendix Aviation Corporation, New York, N. a corporation of Delaware Application December 3%), 1953, Serial No. 46 1,3333
3 Claims. (Cl. E fi -15557) This invention relates to the manufacture of electrical coils for high temperature use. The invention provides a method for making such coils which involves winding into coil form a pie-insulated Wire and coating the turns of the coil with a slurry of a refractory cement, and, after the cement has set, heating the coil to above the decomposition temperature of the pro-insulation.
Numerous attempts have been made heretofore to produce coils suitable for operation at temperatures higher than conventional organic insulating materials can with-- stand. Some such attempts have been based on using an inorganic ceramic material in place of a conventional organic material to form the insulating coating on a wire which is subsequently Wound into coil form. Only very limited success has been attained by procedures of this character because of the inherent brittleness of ceramic coating materials and the consequent lack of flexibility on the part of the coated wire. Other procedures have involved winding the coil of bare wire on a ceramic form, or embedding a bare wire coil, after it has been wound with turns spaced widely apart, in a ceramic matrix. While coils usable at high temperatures can successfully be produced by these procedures, such coils are difficult to make and are extremely bulky.
The present invention provides a simple method which has been found to be eminently suitable for making coils capable of operating successfully at temperatures of 250 C. and higher. The new method does not require specially prepared wire, but rather uses conventional insulated wire, advantageously enameled wire, and a conventional refractory cement. In carrying out the method of the invention, a slurry of the refractory cement is prepared in the usual manner. Such a slurry may advantageously be a siliceous cement slurry comprising an alkali metal silicate solution in which powdered siliceous material is dispersed. A coating of the slurry is applied to a wire which has been previously enameled with a conventional organic enamel, or otherwise insulated, and wound into coil form. The cement is then allowed to set and the coil heated to a temperature above the decomposition temperature of the pro-insulation.
In a preferred mode, enameled Wire is coated with the slurry and, while still Wet with the slurry coating, is wound into coil form. Then the cement is allowed to set, and thereafter the coil is heated to a temperature above the decomposition temperature of the enamel.
The coil thus prepared comprises a multiplicity of turns of metallic wire embedded in a rigid monolithic refractory mass, the wire being surrounded throughout its length within the coil by thermal decomposition products of the organic enamel coating or other insulation with which it was originally provided, and each turn of the coil is held in spaced relation with adjacent turns by the refractory mass.
An advantageous embodiment of the invention is described below with reference to the accompanying drawings, in which- Fig. 1 is a schematic representation of apparatus suit- Kidd-h3 4 Patented 1 mg. 26, 195% able for carrying out the preferred method of the invention;
Fig. 2 is a cross section on a greatly enlarged scale through four adjacent turns of a coil made in accordance with the invention, prior to the final heating step; and
Fig. 3 is a perspective of a typical completed coil according to the invention.
Referring to Fig. 1, pre-insulated conductive wire 5 to be wound into an electrical coil is taken from a supply spool 6. Advantageously a conventional enameled wire is employed. Such wire commonly is coated with a baked enamel of an oleo resin composition (i. e. a composition of a natural or synthetic resin dissolved in a drying oil). However, other enameled wires may be used equally well,
- such, for example, as Wires coated with Formvar (a vinyl acetal enamel modified by the addition of a phenol formaldehyde resin), and with other conventional organic wire enameling compositions.
The insulated wire is passed through a vessel 7 contain ing a slurry 8 of refractory cement, whereby tie wire is coated with such slurry. The refractory cement slurry may advantageously be a siliceous cement slurry which generally comprises a solution of sodium silicate or other alkali metal silicate (e. g., potassium silicate or lithium silicate) in which a finely divided or powdered solid siliceous material is suspended. The solid material may comprise powdered asbestos, clay, Portland cement, diatomaceous earth, powdered silica, or mixtures of these substances. Various modifying agents, such as lead or zinc oxide, barium sulfate, whiting, or manganese dioxide, may be incorporated with the siliceous material in the cement. The cement may also include magnesium oxide or magnesium chloride, or both, in either major or minor proportions. The composition of the cement is not cri itcal so far as the present invention is concerned. Any conventional siliceous (or equivalent refractory) cement which is not electrically conducting may be used successfully. It is important only that the cement be capable of setting to a hard mass at room temperature or at some moderately elevated temperature below the thermal decomposition temperature of the wire enamel or other insulation (e. g., below C. for enamel), and that after it has set it be capable of withstanding prolonged heating at the elevated temperature at which the coil is to be operated (e. g., 250 C. or higher). Air drying or chemical setting cements may be employed as best suits the particular application.
The wire, while wet with the coating of refractory cement, is wound into an electrical coil on any desired coil form 9. The initial slurry 8 is preferably of fairly thick consistency so that a sufficient quantity will adhere to the wire to thoroughly coat the turns of the coil and till the interstices. Advantageously, but not necessarily, some of the cement slurry may be allowed to drip on to the coil from a vessel It), as the coil is being wound, to further insure that the coil is thoroughly permeated with the cement. Excess cement may be drained by gr vity from the coil into a receptacle 11.
After the coil has been wound, the refractory cement is allowed to set. Depending on the particular cement composition selected, setting occurs generally in a period from a few minutes to a few hours. Setting may take place at room temperature, or it may be accelerated by heating the coil to amoderate temperature preferably be low 75 C. Such heating. may be employed, if desired, before the cement has set, simply to accelerate the setting. or it may be employed after the cement has set to insure complete evaporation of moisture from the coil.
After the cement has set, the coil is heated to an ele .vated temperature above the thermal decomposition temperature of the enamel on the wire, and preferably for a period of time sulficient to effect substantially complete decomposition of the wire enamel. Such heating may be accomplished in any desired fashion. For example, the coil may be fired in a heated furnace, at a temperature of 250 C. to 375 C. or higher. When thus heated, the temperature of heating should be at least equal to, and preferably is somewhat above, the maximum temperature to which the coil willbe subjected in service. Alternatively, the coil may be heated by passing an electric current through it, of such magnitude as to bring the coil temperature to the desired maximum value. Or again, heating may be accomplished simply by putting the coil in high temperature service, and letting it become heated in the course of its normal operation.
The length of time required for the high temperature heat treatment will of course depend on the temperature employed and 011 the composition of the wire insulation and the cement. Periods of several hours have been employed with success. Generally speaking, periods of heat treatment longer than the minimum time required to effect decomposition of the insulation will do no harm and afford a desirable factor of safety.
A cross section through four adjacent turns of a coil prepared as above described, but prior to the final heating, is shown on a greatly enlarged scale in Fig. 2. Each turn of copper or other metallic wire 12 is surrounded by its film of insulation 13. Adjacent turns may be substantially contiguous and/or overlapping to occupy minimum space. The refractory cement composition 14 fills the interstices between the turns of wire. With a fairly thick slurry and moderate tension on the wire during winding, a thin coating of the refractory cement may remain between adjacent turns as indicated at 14.
It will be noted that the metallic conductors are held out of contact with each other by the insulation 13. It is essential that an insulated wire be used, in order to insure that adjacent turns of the coil will not be shortcircuited when it is freshly wound and while the refractory cement is still in liquid slurry form. When the wire is heated to its final elevated temperature above the thermal decomposition temperature of the enamel, it is probable that some shrinkage of the insulation film takes place. However, the wires appear to be maintained in their spaced relation, out of contact with one another, by therefractory cement, which now is in its hardened condition. Indeed, such shrinkage or decomposition of the insulation may be advantageous in allowing some room for thermal expansion of the wire when the coil is subjected to high temperatures.
The thermal decomposition product of the enamel film, which remains about the wire after the final heating step has been completed, is doubtless carbonaceous. It is not necessary, however, to take any special steps to insure its complete oxidation, or otherwise to eliminate it from the surface of the wire, for it has been found to have no deleterious effect on the coil. Coils made in the manner described above, after heating, do not show any indication of shorted turns or other defects, either electrical or mechanical.
As above mentioned, enameled wire is advantageously employed for the insulated wire. Such wire has the advantage that it is free of any textile or fibrous covering which might give rise to short-circuits between turns after subsequent processing, due to decomposed conductive filaments, etc., and has been found very satisfactory in use. Plastic-insulated wire, such as wire covered with teflon, nylon, vinyl materials, etc., is likewise free of fibrous matter and may be employed if desired.
With suitable precautions fibrous types of insulation may be employed, such as wire covered with cotton, silk, or rayon insulation, etc. In such event it is considered desirable to employ a sufficiently thick slurry and to adjust the winding tension so as to insure that there is at least a thin layer of cement, such as shown at 14', be-
(ii, tween the points of tangency of adjacent turns upon setting of the cement. Thus an insulating barrier is thterposed between any conductive filaments arising out of the high temperature treatment, and avoids the danger of short-circuits.
While insulated copper Wire has been employed with success, in some high temperature applications the copper may become embrittled and lead to eventual failure due to repeated expansion and contraction. in such cases other metals may be employed such as aluminum, silver, etc., if desired.
in the above-described preferred mode of carrying out the method of the invention, the insulated wire is coated with a refractory cement slurry just prior to (and sometimes also during) winding the coil. This insures that each turn of the wire when in coil form is coated with the refractory cement in a slurry condition prior to setting of the cement. While this procedure has been found satisfactory in practice, other methods of applying the refractory cement are possible so long as the turns of the insulated wire when in coil form are coated with the eement in a slurry condition before it has.- set. I
The method of the invention has proved to be eminently satisfactory for making small coils of very fine wire, such, for example, as the transducer coil of the magnetostrictive probe described and claimed in the copending application of Stanley R. Rich and myself, Serial No. 227,694, filed May 22, 1951. Such a coil is shown in perspective in Fig. 3. It comprises steatite or other refractory end forms 15, between which is the coil body of wire embedded in a rigid monolithic mass 16 of refractory material. The coil leads 17 are shown brought out through one of the end forms 15. Such a coil is approximately five-sixteenths inch in diameter by three quarters inch in length, and is random-wound with a large number of turns of No. 40 A. W. G. copper wire. However, coils for other purposes, of larger size and wound with larger wire, can equally well be made in accordance with the invention. Examples are coils for relays, actuators, mo tors, etc. where the withstanding of high temperatures is important.
I claim:
l. The method of making an electrical coil suitable for high temperature operation which comprises applying a coating of a refractory cement slurry to a wire enameled with an organic enamel, winding the resulting slurrycoated wire into coil form before the cement has set, allowing the cement to set, and thereafter heating the coil to a temperature above the decomposition temperature of the enamel to remove the enamel and prevent short circuiting.
2. The method of making an electrical coil as set forth in claim 1 in which the cement slurry is applied to the wire by passing the wire through a body of the slurry, and in which additional cement slurry is dipped onto the coil as it is being wound.
3. The method of making an electrical coil as set forth in claim 1 in which the coil is heated to about 75 C. to accelerate the setting and drying of the cement, and the coil after the cement has set and dried is heated to at least about 250 C. for a sufiicient period of time to effect substantially complete decomposition of the organic enamel.
Charbonneau Sept. 22, 1953
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Cited By (38)

* Cited by examiner, † Cited by third party
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US3006794A (en) * 1958-08-28 1961-10-31 Rea Magnet Wire Company Inc Articles of manufacture such as electrical coils and method of producing the same
US3012092A (en) * 1957-12-02 1961-12-05 Rea Magnet Wire Company Inc Insulated electrical equipment and process of making
US3015686A (en) * 1958-08-28 1962-01-02 Rea Magnet Wire Company Inc Article of manufacture utilizing a stranded core construction and method of making
US3018321A (en) * 1958-08-28 1962-01-23 Rea Magnet Wire Company Inc Article of manufacture comprising an insulated electrical conductor and method of making
US3028446A (en) * 1958-08-28 1962-04-03 Rea Magnet Wire Company Inc Encapsulated coils and method of making
US3033917A (en) * 1958-08-28 1962-05-08 Rea Magnet Wire Company Inc Article of manufacture using a braided core construction and method of making
US3035115A (en) * 1958-08-28 1962-05-15 Rea Magnet Wire Company Inc Electrical component having a serrated core construction and method of making the component
US3065772A (en) * 1958-12-15 1962-11-27 Sylvania Electric Prod Coil winding apparatus
US3071846A (en) * 1958-10-30 1963-01-08 Gen Electric Process for making coils
US3078186A (en) * 1960-07-26 1963-02-19 Westinghouse Electric Corp Ceramic potting composition and method of encapsulating an electrical article therewith
US3086562A (en) * 1958-11-10 1963-04-23 Zenith Radio Corp Coil winding machine
US3089787A (en) * 1959-12-07 1963-05-14 Westinghouse Electric Corp Electrical insulating coating composition, method, and coated article
US3109601A (en) * 1958-10-24 1963-11-05 Philips Corp Method of winding orthocyclically wound coils
US3119897A (en) * 1959-06-16 1964-01-28 Daven Company Insulated wire for high temperature use and coils made therefrom
US3128798A (en) * 1958-07-18 1964-04-14 Liebman Charles Method and apparatus for winding coils automatically and coil strings derived therefrom
US3154426A (en) * 1960-04-07 1964-10-27 Glidden Co Plastic coating on bisque enamel
US3157722A (en) * 1960-01-06 1964-11-17 Plessey Co Ltd Method of making reinforced refractory bodies
US3182383A (en) * 1960-09-13 1965-05-11 Gen Electric Electromagnetic construction
US3223896A (en) * 1960-02-25 1965-12-14 Anaconda Aluminum Co Aluminum strip roll for forming electrical coils
US3257245A (en) * 1960-08-01 1966-06-21 Physical Sciences Corp Wire coating apparatus
US3273225A (en) * 1962-02-14 1966-09-20 Anaconda Wire & Cable Co Method of making electromagnetic structures for high-temperature service
US3283276A (en) * 1963-07-25 1966-11-01 Avco Corp Twisted superconductive winding assembly
US3343984A (en) * 1962-07-06 1967-09-26 Anaconda Wire & Cable Co Electrical apparatus, insulating composition therefor and method of making the same
US3370348A (en) * 1962-06-29 1968-02-27 Ibm Process for preparing arrays of magnetic circuit elements
US3378801A (en) * 1960-02-25 1968-04-16 Anaconda Aluminum Co Strip electrical coils
US3425121A (en) * 1964-01-14 1969-02-04 Anaconda Wire & Cable Co Method of making high-temperature encapsulated apparatus
US3458650A (en) * 1966-08-29 1969-07-29 Toko Inc Composite winding for transformers
US5105531A (en) * 1989-10-13 1992-04-21 Sumitomo Electric Industries, Ltd. Method of manufacturing a coil of insulated wire
US5636434A (en) * 1995-02-14 1997-06-10 Sundstrand Corporation Method of fabricating an electrical coil having an inorganic insulation system
US8466767B2 (en) 2011-07-20 2013-06-18 Honeywell International Inc. Electromagnetic coil assemblies having tapered crimp joints and methods for the production thereof
US8572838B2 (en) 2011-03-02 2013-11-05 Honeywell International Inc. Methods for fabricating high temperature electromagnetic coil assemblies
US20140065418A1 (en) * 2012-09-04 2014-03-06 Hitachi Metals, Ltd. Insulated wire and coil using the same
US8754735B2 (en) 2012-04-30 2014-06-17 Honeywell International Inc. High temperature electromagnetic coil assemblies including braided lead wires and methods for the fabrication thereof
US8860541B2 (en) 2011-10-18 2014-10-14 Honeywell International Inc. Electromagnetic coil assemblies having braided lead wires and methods for the manufacture thereof
US9027228B2 (en) 2012-11-29 2015-05-12 Honeywell International Inc. Method for manufacturing electromagnetic coil assemblies
US9076581B2 (en) 2012-04-30 2015-07-07 Honeywell International Inc. Method for manufacturing high temperature electromagnetic coil assemblies including brazed braided lead wires
US9722464B2 (en) 2013-03-13 2017-08-01 Honeywell International Inc. Gas turbine engine actuation systems including high temperature actuators and methods for the manufacture thereof
US20240282515A1 (en) * 2023-02-17 2024-08-22 James J. Steppan Coil fabrication process including in situ potting

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US546220A (en) * 1895-09-10 Harold p
US873780A (en) * 1907-06-22 1907-12-17 Gen Electric Insulated coil.
US1826297A (en) * 1930-05-24 1931-10-06 Vincent G Apple Method of making electric coils
US2484214A (en) * 1945-12-15 1949-10-11 Westinghouse Electric Corp Method of making magnetic cores
US2548208A (en) * 1944-10-20 1951-04-10 Rolls Royce Hydraulic power transmission system
US2652622A (en) * 1947-06-07 1953-09-22 Cutler Hammer Inc Method of making electric heaters

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US546220A (en) * 1895-09-10 Harold p
US873780A (en) * 1907-06-22 1907-12-17 Gen Electric Insulated coil.
US1826297A (en) * 1930-05-24 1931-10-06 Vincent G Apple Method of making electric coils
US2548208A (en) * 1944-10-20 1951-04-10 Rolls Royce Hydraulic power transmission system
US2484214A (en) * 1945-12-15 1949-10-11 Westinghouse Electric Corp Method of making magnetic cores
US2652622A (en) * 1947-06-07 1953-09-22 Cutler Hammer Inc Method of making electric heaters

Cited By (40)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3012092A (en) * 1957-12-02 1961-12-05 Rea Magnet Wire Company Inc Insulated electrical equipment and process of making
US3128798A (en) * 1958-07-18 1964-04-14 Liebman Charles Method and apparatus for winding coils automatically and coil strings derived therefrom
US3015686A (en) * 1958-08-28 1962-01-02 Rea Magnet Wire Company Inc Article of manufacture utilizing a stranded core construction and method of making
US3018321A (en) * 1958-08-28 1962-01-23 Rea Magnet Wire Company Inc Article of manufacture comprising an insulated electrical conductor and method of making
US3028446A (en) * 1958-08-28 1962-04-03 Rea Magnet Wire Company Inc Encapsulated coils and method of making
US3033917A (en) * 1958-08-28 1962-05-08 Rea Magnet Wire Company Inc Article of manufacture using a braided core construction and method of making
US3035115A (en) * 1958-08-28 1962-05-15 Rea Magnet Wire Company Inc Electrical component having a serrated core construction and method of making the component
US3006794A (en) * 1958-08-28 1961-10-31 Rea Magnet Wire Company Inc Articles of manufacture such as electrical coils and method of producing the same
US3109601A (en) * 1958-10-24 1963-11-05 Philips Corp Method of winding orthocyclically wound coils
US3071846A (en) * 1958-10-30 1963-01-08 Gen Electric Process for making coils
US3086562A (en) * 1958-11-10 1963-04-23 Zenith Radio Corp Coil winding machine
US3065772A (en) * 1958-12-15 1962-11-27 Sylvania Electric Prod Coil winding apparatus
US3119897A (en) * 1959-06-16 1964-01-28 Daven Company Insulated wire for high temperature use and coils made therefrom
US3089787A (en) * 1959-12-07 1963-05-14 Westinghouse Electric Corp Electrical insulating coating composition, method, and coated article
US3157722A (en) * 1960-01-06 1964-11-17 Plessey Co Ltd Method of making reinforced refractory bodies
US3378801A (en) * 1960-02-25 1968-04-16 Anaconda Aluminum Co Strip electrical coils
US3223896A (en) * 1960-02-25 1965-12-14 Anaconda Aluminum Co Aluminum strip roll for forming electrical coils
US3154426A (en) * 1960-04-07 1964-10-27 Glidden Co Plastic coating on bisque enamel
US3078186A (en) * 1960-07-26 1963-02-19 Westinghouse Electric Corp Ceramic potting composition and method of encapsulating an electrical article therewith
US3257245A (en) * 1960-08-01 1966-06-21 Physical Sciences Corp Wire coating apparatus
US3182383A (en) * 1960-09-13 1965-05-11 Gen Electric Electromagnetic construction
US3273225A (en) * 1962-02-14 1966-09-20 Anaconda Wire & Cable Co Method of making electromagnetic structures for high-temperature service
US3370348A (en) * 1962-06-29 1968-02-27 Ibm Process for preparing arrays of magnetic circuit elements
US3343984A (en) * 1962-07-06 1967-09-26 Anaconda Wire & Cable Co Electrical apparatus, insulating composition therefor and method of making the same
US3283276A (en) * 1963-07-25 1966-11-01 Avco Corp Twisted superconductive winding assembly
US3425121A (en) * 1964-01-14 1969-02-04 Anaconda Wire & Cable Co Method of making high-temperature encapsulated apparatus
US3458650A (en) * 1966-08-29 1969-07-29 Toko Inc Composite winding for transformers
US5105531A (en) * 1989-10-13 1992-04-21 Sumitomo Electric Industries, Ltd. Method of manufacturing a coil of insulated wire
US5636434A (en) * 1995-02-14 1997-06-10 Sundstrand Corporation Method of fabricating an electrical coil having an inorganic insulation system
US8572838B2 (en) 2011-03-02 2013-11-05 Honeywell International Inc. Methods for fabricating high temperature electromagnetic coil assemblies
US9508486B2 (en) 2011-03-02 2016-11-29 Honeywell International Inc. High temperature electromagnetic coil assemblies
US8466767B2 (en) 2011-07-20 2013-06-18 Honeywell International Inc. Electromagnetic coil assemblies having tapered crimp joints and methods for the production thereof
US8860541B2 (en) 2011-10-18 2014-10-14 Honeywell International Inc. Electromagnetic coil assemblies having braided lead wires and methods for the manufacture thereof
US8754735B2 (en) 2012-04-30 2014-06-17 Honeywell International Inc. High temperature electromagnetic coil assemblies including braided lead wires and methods for the fabrication thereof
US9076581B2 (en) 2012-04-30 2015-07-07 Honeywell International Inc. Method for manufacturing high temperature electromagnetic coil assemblies including brazed braided lead wires
US20140065418A1 (en) * 2012-09-04 2014-03-06 Hitachi Metals, Ltd. Insulated wire and coil using the same
US9027228B2 (en) 2012-11-29 2015-05-12 Honeywell International Inc. Method for manufacturing electromagnetic coil assemblies
US9653199B2 (en) 2012-11-29 2017-05-16 Honeywell International Inc. Electromagnetic coil assemblies having braided lead wires and/or braided sleeves
US9722464B2 (en) 2013-03-13 2017-08-01 Honeywell International Inc. Gas turbine engine actuation systems including high temperature actuators and methods for the manufacture thereof
US20240282515A1 (en) * 2023-02-17 2024-08-22 James J. Steppan Coil fabrication process including in situ potting

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