US2542656A - Indirectly heated cathode - Google Patents

Indirectly heated cathode Download PDF

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Publication number
US2542656A
US2542656A US653690A US65369046A US2542656A US 2542656 A US2542656 A US 2542656A US 653690 A US653690 A US 653690A US 65369046 A US65369046 A US 65369046A US 2542656 A US2542656 A US 2542656A
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United States
Prior art keywords
cathode
heater
indirectly heated
indirectly
heated cathode
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Expired - Lifetime
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US653690A
Inventor
Gall Bernardus Octavianu Maria
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Hartford National Bank and Trust Co
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Hartford National Bank and Trust Co
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Publication date
Application filed by Hartford National Bank and Trust Co filed Critical Hartford National Bank and Trust Co
Priority to US12697A priority Critical patent/US2542657A/en
Priority claimed from US12697A external-priority patent/US2542657A/en
Application granted granted Critical
Publication of US2542656A publication Critical patent/US2542656A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01JELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
    • H01J9/00Apparatus or processes specially adapted for the manufacture, installation, removal, maintenance of electric discharge tubes, discharge lamps, or parts thereof; Recovery of material from discharge tubes or lamps
    • H01J9/02Manufacture of electrodes or electrode systems
    • H01J9/04Manufacture of electrodes or electrode systems of thermionic cathodes
    • 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
    • Y10T29/49826Assembling or joining
    • Y10T29/49881Assembling or joining of separate helix [e.g., screw thread]

Definitions

  • This invention relates to a method of manufacturing a cathode of the indirectly heated type and to a cathode made by this method.
  • Cathodes of the indirectly-heated type generthus obtained having then slipped over it a thinwalled short length of tube that acts as a cathode body. It is also possible to turn this cathode body in the form of a thin foil around the insulating material and to weld it at the joint thus formed. Furthermore, instead of using powdered insulating material which is baked to the heater, use may be made of a solid insulating body which has formed in it one or more apertures for the parts of the heater.
  • the present invention is directed towards a special method of manufacturing a cathode of the indirectly-heated type of the form herein described, such method presenting particular advantages.
  • a tubular body of conducting material is arranged with one or more conducting wires inside, the remaining space between the tubular body and the wires is then filled with insulating material and the aggregate thus obtained is given the desired dimensions and/or shape by drawing, rolling or similar operations.
  • Use is thus initially made of component members of a cathode of the indirectly-heated type of given thickness; a cathode whose component members have the desired thickness being eventually obtained by the mechanical operations.
  • the conductor which has to act as the heater may be arranged inside the element to be used as a cathode body in the form of one or more straight wires but also for example in the form of a spiral; in the latter case depending on the manner of drawing and rolling the said heater may be shaped in the final cathode either into the form of a straight wire or that of a spiral.
  • the heating wires if used in cathodes that have to be operated at high voltages, to be very thin and in some cases this entails diiiiculty.
  • the method according to the present invention permits of choosing other materials, such as, for example, nickel, nickel iron or the like for constituting the said heaters, It is probable that when the compound bodies according to the invention are being drawn the insulating material is pressed to the heater so as to be sufficiently adherent without the necessity for this material to besupplementarilysintered in position. Incidentally, the insulating material is enclosed in the cathode so as to be well compressed so that very uniform heat transmission between heater and cathode body is obtained while at the same time the temperature difference between filament and cathode may be comparatively slight.
  • a cathode according to the present invention consists in that there is a much greater versatilityin relation to the shape to be given.
  • the drawn cathode may be shaped in a simple manner into the form of a spiral, a helix or a similar body.
  • the drawing and hammering operations may be efiected in such manner that out of a body of cylindrical or oval-shaped form a flat cathode is obtained.
  • the heater may be shaped into any form whatever and, as mentioned hereinbefore, when starting with a heater in the-form of a spiral, it is possible to obtain either a straight wire or a thinner spiral upon rolling and drawing.
  • a cathode according to the invention may be used in a large number of different tube types such as transmitting valves, gas-filled rectifier valves or the like.
  • a tube for example of nickel or copper whose diameter is 8 mms. and whose wall thickness is /2 mm. has two wires of nickel of about 1 mm. thickness introduced into it. These wires are set tightly relatively to the surrounding tube and the remaining space is then filled with powdered magnesia or alumina, this powder being compressed or mixed to the greatest extent.
  • the body thus obtained is then drawn and/or rolled until the dimensions and/or shape desired for the cathode are obtained. It is found that in this manner cathodes whose cathode body has a diameter of from 0.1 to 4 mms. can be readily manufactured.
  • the method of manufacturing an indirectly heated cathode comprising an outer conductive body and a conductive heater element, comprising the steps of arranging said element helically wound within said body and surrounded thereby.

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  • Engineering & Computer Science (AREA)
  • Manufacturing & Machinery (AREA)
  • Electrodes For Cathode-Ray Tubes (AREA)

Description

Patented Feb. 20, 1951 INDIRECTLY HEATED'GATHODE No. Drawing. Application March 11, 1946, Serial -'No.""653,690. ZIn'Jthe Netherlands January 31,
"Section 1, Public Law690, August '8, 1946 Patent expires January 31,1961
1 Claim.
This invention relates to a method of manufacturing a cathode of the indirectly heated type and to a cathode made by this method.
Cathodes of the indirectly-heated type generthus obtained having then slipped over it a thinwalled short length of tube that acts as a cathode body. It is also possible to turn this cathode body in the form of a thin foil around the insulating material and to weld it at the joint thus formed. Furthermore, instead of using powdered insulating material which is baked to the heater, use may be made of a solid insulating body which has formed in it one or more apertures for the parts of the heater.
The present invention is directed towards a special method of manufacturing a cathode of the indirectly-heated type of the form herein described, such method presenting particular advantages. According to this method, for example, a tubular body of conducting material is arranged with one or more conducting wires inside, the remaining space between the tubular body and the wires is then filled with insulating material and the aggregate thus obtained is given the desired dimensions and/or shape by drawing, rolling or similar operations. Use is thus initially made of component members of a cathode of the indirectly-heated type of given thickness; a cathode whose component members have the desired thickness being eventually obtained by the mechanical operations. The conductor which has to act as the heater may be arranged inside the element to be used as a cathode body in the form of one or more straight wires but also for example in the form of a spiral; in the latter case depending on the manner of drawing and rolling the said heater may be shaped in the final cathode either into the form of a straight wire or that of a spiral.
Apart from the surprising fact that in actual fact it is found possible for compound bodies such as cathodes of the indirectly-heated type having to satisfy certain requirements, to be manufactured in this simple manner, the method herein described has particular advantages. Thus, for example, there is a greater liberty in regard to 2 the choice of the material of the heater; since in the case of the well-known cathode the insulating material has to be baked to the heater at a high temperature for example at 1400 'C., it is necessary that for the constitution thereof use should be made of material capable of withstanding this high temperature. Tungsten or molybdenum is generally used for this purpose. Since these metals have a low resistance it is necessary for the heating wires, if used in cathodes that have to be operated at high voltages, to be very thin and in some cases this entails diiiiculty. The method according to the present invention permits of choosing other materials, such as, for example, nickel, nickel iron or the like for constituting the said heaters, It is probable that when the compound bodies according to the invention are being drawn the insulating material is pressed to the heater so as to be sufficiently adherent without the necessity for this material to besupplementarilysintered in position. Incidentally, the insulating material is enclosed in the cathode so as to be well compressed so that very uniform heat transmission between heater and cathode body is obtained while at the same time the temperature difference between filament and cathode may be comparatively slight.
An important advantage of a cathode according to the present invention consists in that there is a much greater versatilityin relation to the shape to be given. Thus, for example the drawn cathode may be shaped in a simple manner into the form of a spiral, a helix or a similar body. In addition, the drawing and hammering operations may be efiected in such manner that out of a body of cylindrical or oval-shaped form a flat cathode is obtained. In addition, the heater may be shaped into any form whatever and, as mentioned hereinbefore, when starting with a heater in the-form of a spiral, it is possible to obtain either a straight wire or a thinner spiral upon rolling and drawing.
Due to all these possibilities, a cathode according to the invention may be used in a large number of different tube types such as transmitting valves, gas-filled rectifier valves or the like.
In order that the invention may be clearly understood and'readily carried into effect it will now be described more fully with reference to an example in which a method of manufacturing a cathode of the indirectly-heated type according to the invention is set out in detail. According to this method, a tube for example of nickel or copper whose diameter is 8 mms. and whose wall thickness is /2 mm. has two wires of nickel of about 1 mm. thickness introduced into it. These wires are set tightly relatively to the surrounding tube and the remaining space is then filled with powdered magnesia or alumina, this powder being compressed or mixed to the greatest extent. The body thus obtained is then drawn and/or rolled until the dimensions and/or shape desired for the cathode are obtained. It is found that in this manner cathodes whose cathode body has a diameter of from 0.1 to 4 mms. can be readily manufactured.
What I claim is:
The method of manufacturing an indirectly heated cathode comprising an outer conductive body and a conductive heater element, comprising the steps of arranging said element helically wound within said body and surrounded thereby.
4 filling the space between said element and said body with a pulverulent insulating material, and thereafter drawing the said body so filled until the said helically wound element is substantially 5 straightened,
BERNARDUS OCTAVIANUS MARIA GALL.
REFERENCES CITED The following references are of record in the 10 file of this patent:
UNITED STATES PATENTS
US653690A 1941-01-31 1946-03-11 Indirectly heated cathode Expired - Lifetime US2542656A (en)

Priority Applications (1)

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US12697A US2542657A (en) 1941-01-31 1948-03-02 Indirectly heated cathode

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
NL2542656X 1941-01-31
US12697A US2542657A (en) 1941-01-31 1948-03-02 Indirectly heated cathode

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US2542656A true US2542656A (en) 1951-02-20

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3287591A (en) * 1961-12-13 1966-11-22 Sylvania Electric Prod Tantalum carbide incandescent lamp and method of manufacture thereof

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1618499A (en) * 1923-11-06 1927-02-22 Charles P White Electrical apparatus
US1719988A (en) * 1923-01-26 1929-07-09 Westinghouse Lamp Co Electron device and the like adapted for alternating current
US2107945A (en) * 1934-11-20 1938-02-08 Gen Electric Cathode structure
US2175345A (en) * 1935-07-12 1939-10-10 Gen Electric Electric gaseous discharge device
US2199879A (en) * 1936-06-12 1940-05-07 Deroche Andre Process for the manufacture of armored electric heating elements

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1719988A (en) * 1923-01-26 1929-07-09 Westinghouse Lamp Co Electron device and the like adapted for alternating current
US1618499A (en) * 1923-11-06 1927-02-22 Charles P White Electrical apparatus
US2107945A (en) * 1934-11-20 1938-02-08 Gen Electric Cathode structure
US2175345A (en) * 1935-07-12 1939-10-10 Gen Electric Electric gaseous discharge device
US2199879A (en) * 1936-06-12 1940-05-07 Deroche Andre Process for the manufacture of armored electric heating elements

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3287591A (en) * 1961-12-13 1966-11-22 Sylvania Electric Prod Tantalum carbide incandescent lamp and method of manufacture thereof

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