US3245674A - Crucible coated with reaction product of aluminum and boron nitride coating - Google Patents

Crucible coated with reaction product of aluminum and boron nitride coating Download PDF

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US3245674A
US3245674A US236365A US23636562A US3245674A US 3245674 A US3245674 A US 3245674A US 236365 A US236365 A US 236365A US 23636562 A US23636562 A US 23636562A US 3245674 A US3245674 A US 3245674A
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aluminum
crucible
boron nitride
coating
reaction product
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US236365A
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Charles A Baer
Philip J Clough
Robert W Steeves
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National Research Corp
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Nat Res Corp
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    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C14/00Coating by vacuum evaporation, by sputtering or by ion implantation of the coating forming material
    • C23C14/22Coating by vacuum evaporation, by sputtering or by ion implantation of the coating forming material characterised by the process of coating
    • C23C14/24Vacuum evaporation
    • C23C14/243Crucibles for source material
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F27FURNACES; KILNS; OVENS; RETORTS
    • F27BFURNACES, KILNS, OVENS, OR RETORTS IN GENERAL; OPEN SINTERING OR LIKE APPARATUS
    • F27B14/00Crucible or pot furnaces
    • F27B14/08Details peculiar to crucible or pot furnaces
    • F27B14/10Crucibles
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F27FURNACES; KILNS; OVENS; RETORTS
    • F27BFURNACES, KILNS, OVENS, OR RETORTS IN GENERAL; OPEN SINTERING OR LIKE APPARATUS
    • F27B14/00Crucible or pot furnaces
    • F27B14/08Details peculiar to crucible or pot furnaces
    • F27B14/10Crucibles
    • F27B2014/104Crucible linings
    • 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
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S117/00Single-crystal, oriented-crystal, and epitaxy growth processes; non-coating apparatus therefor
    • Y10S117/90Apparatus characterized by composition or treatment thereof, e.g. surface finish, surface coating

Definitions

  • Still another object of the invention is to provide a source of aluminum" vapors of the type described above which is simple to manufacture and use.
  • Another objectof the invention is to provide a source of the above type which can be produced from relatively inexpensive materials.
  • Still another object of the invention is to provide a means for confining high-temperature aluminum vapors to produce a stream of aluminum vapors much more concentrated than can be produced by previously-known techniques.
  • Still another object of the invention is to provide a mechanism for providing a high intensity stream of aluminum vapors capable of providing rapid coating of a discrete object with minimum transfer of heat to the object.
  • the invention accordingly comprises the process involving the several steps and the relation and the order of one or more of such steps with respect to each of the others and the apparatus possessing the features, properties and the relation of components which are exemplified in the following detailed disclosure, and the scope of the application of which will be indicated in the claims.
  • a container for confining molten aluminum at elevated temperatures is provided by furnishing a refractory base 10 which is in the form of a crucible or other structure suitable for confining a substantial pool of molten aluminum.
  • This base 10 is preferably formed of carbon or a refractory oxide such as magnesia, alumina or zirconia, or a refractory silicate such as zircon and the like.
  • the base preferably does not contain any substantial quantities of materials which will outgas as the base is heated in a vacuum chamber to the elevated temperature of 1200 C. and above, which is necessary for aluminum evaporation.
  • the invention will be initially described in connection with the utilization of a carbon crucible without attempting thereby to limit the invention.
  • a carbon crucible which may be in the form of a cylindrical bucket or long boat, is formed as a solid piece or built up out of smaller pieces of carbon suitably attached together by carbon pins or the like.
  • the whole interor surface of the crucible which is to be exposed to molten aluminum or aluminum vapors while the surface is at an elevated temperature, is then coated with a slurry of boron nitride 16 to a thickness on the order of inch.
  • This slurry is then dried, such as by baking in an oven, at a temperature on the order of 200 F. to drive off the water or other medium for forming the liquid phase in the slurry.
  • the thus prepared crucible is positioned in a vacuum chamber and suitably supported so as to be heated by an induction coil, for example.
  • Such a crucible has an extremely long life and is capable of operation at elevated temperatures in contact with molten aluminum for many hours.
  • the boron nitride layer has been converted to an extremely hard, dense compound whose identity has not been clearly established. This is believed to be a reaction product between boron nitride and aluminum, and it has been found to form in the vapor state as well as in the liquid state; that is, by reaction of boron nitride with aluminum vapors as well as the reaction of boron nitride with molten aluminum.
  • This surface can also be formed, for example, when a cover is desired over the crucible to provide lateral or downward evaporation from the crucible.
  • a deflecting top 14 is provided over the crucible, a suitable opening 12 being left between one portion of the cover and the main body of the crucible.
  • This cover is also preferably formed of a refractory material, such as carbon, similar to the material of the crucible. It is equally coated with a layer of boron nitride and dried. The abutting surfaces of the crucible and cover are coated with a boron nitride layer. The crucible and cover are placed in the vacuum system, the crucible being charged with aluminum.
  • the crucible and cover are then heated to about l000 to 1300 C. and the boron nitride coating on the cover is reacted with aluminum vapors coming from the pool of aluminum confined by the source. These aluminum vapors react with the boron nitride, coating at the elevated temperature of the cover. After a. few minutes of operation, the aluminum vapors have reacted with the boron nitride coating to form a dense, hard surface which appears to be substantially impervious to and unreactive with aluminum vapors for long periods of time thereafter. The joint between the cover and the crucible has been converted to a hard, dense mass which is tight to liquid aluminum as well as to the aluminum vapors.
  • a slurry is prepared by mixing 55 grams of powdered boron nitride in 121 cc. of water. This makes a paste having the consistency of whipped cream. This paste is then applied, such as by a brush, to all those surfaces of a carbon crucible which are to be exposed to molten aluminum or aluminum vapors. This coating is preferably ,6 inch thick. The thus coated carbon body is air dried at about 200 F. Several coatings can be applied in sequence. In one preferred embodiment of the invention, a carbon crucible, having an internal diameter of 4 and a depth of 2 inches, is thus treated with boron nitride paste and air dried.
  • the crucible is placed in a vacuum coating tank and is charged with 550 grams of aluminum. The crucible is then brought up to elevated temperatures on the order of 1200 to 1300 C. At the end of 35 minutes the major percentage of the aluminum has been evaporated. The tank is opened after the crucible is cooled to about 800 C. Another 250 grams of the solid aluminum is added to the remaining molten aluminum in the crucible. grams of titanium are also added to the melt at this time. The chamber is evacuated again and the crucible is brought up to operating temperature.
  • the aluminum evaporation rate in the second run is found to be equal to or greater than the aluminum evaporation rate in the first run, the effect of the titanium addition being to remove any small amounts of aluminum carbide formed by penetration of aluminum through pinholes or cracks in the boron nitride coating.
  • a carbon crucible having an internal diameter of 2 inches and a depth of 2 /2 inches is provided with a /2 inch hole near the top thereof.
  • This crucible is also provided with a close fitting carbon cover.
  • the inner surfaces of the crucible and cover (as well as the mating surfaces of the crucible and cover) are then coated with boron nitride and heated as above.
  • This provides a source which produces a concentrated stream of aluminum vapors traveling laterally from the hole near the top. somewhat the stream of vapors can be directed downwardly as well as laterally.
  • This arrangement is particularly suited for coating discrete objects such as nuts and bolts or powders which are most conveniently coated from above while being supported on a vibrating tray or the like.
  • the slurry of boron nitride can be prepared using numerous vehicles other than water.
  • carbon is a preferred material from the standpoint of structural strength at elevated temperatures and freedom from'decomposition at elevated tempera tures.
  • Other refractory substances can be employed; for example, refractory oxides such as magnesia, alumina and zirconia or refractory silicates such as zircon can be protected by the application of a boron nitride coating. While metals can be given a temporary coating with .boron nitride, the high solubility of all metals in molten aluminum precludes their, use since any pinhole or crack in the boron nitride coating causes rapid failure of any of the metals.
  • the improved aluminum vapor source can be employed in many types of coating devices such as those shown in the following US. Patents: 2,622,041, 2,643, 201, and 2,879,739 and the copending application of Cerych, Clough'and Steeves Serial No. 795,424, filed February 25, 1959, to mention only a few of its uses.
  • a crucible comprising a base formed of a material selected from the group consisting of carbon and the refractory oxides and silicates and a cover formed of a material selected from the group consisting of carbon and the refractory oxides and silicates, said base and cover defining a confined space therebetween, an opening in said base communicating with said confined space, the whole interior of said confined space having an adherent surface coating comprising the hard solid reaction product between boron nitride and aluminum, said reaction product coating strongly uniting said base and said cover, said reaction product being formed by reaction at temperatures on the order of 1200 C. to 1300 C. between aluminum and a coating of boron nitride supported on the interior of said confined space.

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Materials Engineering (AREA)
  • Metallurgy (AREA)
  • Organic Chemistry (AREA)
  • Physical Vapour Deposition (AREA)

Description

April 12, 1966 c, BAER ET AL 3,245,674
CRUCIBLE COATED WITH REACTION PRODUCT 0F ALUMINUM AND BORON NITRIDE COATING Original Filed April 25, 1960 ARBON INVENTORJ Chaiylp 13 m: L Clad BY g i g W. Sf-13v United States. Patent 3 245,674 CRUCIBLE CGATED VITI-l REACTION PRODUCT OF ALUMINUM AND BORON NITRIDE COAT- ING Charles A. Baer, Princeton, N.J., and Philip J. Clough,
Reading, and Robert W. Steeves, Nahaut, Mass., assignors, by mesne assignments, to National Research Corporation, Cambridge, Mass., a corporation of Massachusetts Original application Apr. 25, 1960, Ser. No. 24,238, now Patent No. 3,084,060, dated Apr. 2, 1963. Divided and this application Nov. 8, 1962, Ser. No..236,365 The portion of the term of the patent subsequent to Nov. 13, 1979, has been disclaimed 1 Claim. (Cl. 26639) This invention relates to coating and more particularly to the coating of various substrates with aluminum. This application is a division of the copending application of Baer et al., Serial No. 24,238, filed April 25, 1960, now Patent 3,084,060.
In the vacuum evaporation of aluminum where aluminum is heated to an elevated temperature on the order of 1200 to 1300 C., or above, one of the principal technical problems to be solved has been to find a crucible which is resistant to attack by the high-temperature aluminum. The same problem is encountered when a portion of the aluminum-evaporating source which is at elevated temperatures is exposed to a high density of aluminum vapors. This situation arises in those cases where it is desired to deflect or concentrate the flowing aluminum vapors to provide, for example, lateral or downwardevaporation.
Some progress has been made in providing aluminumresistant structures, but these structures have not always been adequately simple to construct or cheap to maintain. While some progress has been made, great difficulty has been experienced in providing a completely satisfactory method, for producing such a source, particularly'one which is of a complex geometric shape. Equally, the art has only with difiiculty been able to produce a stream of aluminum vapors which is directed laterally or downwardly from the source. Such a stream is particularly useful when discrete objects such as nuts and bolts and powders are to be coated, or when two sides of a continuous substrate are to be coated at the same time.
Accordingly, it is a principal object of the present invention to provide a means for producing a source of aluminum vapors which can have wide latitude of design and still be reasonably simple and inexpensive to construct.
Still another object of the invention is to provide a source of aluminum" vapors of the type described above which is simple to manufacture and use.
Another objectof the invention is to provide a source of the above type which can be produced from relatively inexpensive materials.
Still another object of the invention is to provide a means for confining high-temperature aluminum vapors to produce a stream of aluminum vapors much more concentrated than can be produced by previously-known techniques.
Still another object of the invention is to provide a mechanism for providing a high intensity stream of aluminum vapors capable of providing rapid coating of a discrete object with minimum transfer of heat to the object.
Qther objects of'the invention will in part be obvious and will in part appear hereinafter.
The invention accordingly comprises the process involving the several steps and the relation and the order of one or more of such steps with respect to each of the others and the apparatus possessing the features, properties and the relation of components which are exemplified in the following detailed disclosure, and the scope of the application of which will be indicated in the claims.
For a fuller understanding of the nature and objects of the invention, reference should be had to the following detailed description taken in connection with the drawing which is a diagrammtic, schematic, sectional view of one preferred embodiment of the invention.
In the present invention, a container for confining molten aluminum at elevated temperatures is provided by furnishing a refractory base 10 which is in the form of a crucible or other structure suitable for confining a substantial pool of molten aluminum. This base 10 is preferably formed of carbon or a refractory oxide such as magnesia, alumina or zirconia, or a refractory silicate such as zircon and the like. The base preferably does not contain any substantial quantities of materials which will outgas as the base is heated in a vacuum chamber to the elevated temperature of 1200 C. and above, which is necessary for aluminum evaporation. For convenience, the invention will be initially described in connection with the utilization of a carbon crucible without attempting thereby to limit the invention.
A carbon crucible, which may be in the form of a cylindrical bucket or long boat, is formed as a solid piece or built up out of smaller pieces of carbon suitably attached together by carbon pins or the like. The whole interor surface of the crucible, which is to be exposed to molten aluminum or aluminum vapors while the surface is at an elevated temperature, is then coated with a slurry of boron nitride 16 to a thickness on the order of inch. This slurry is then dried, such as by baking in an oven, at a temperature on the order of 200 F. to drive off the water or other medium for forming the liquid phase in the slurry. The thus prepared crucible is positioned in a vacuum chamber and suitably supported so as to be heated by an induction coil, for example. Such a crucible has an extremely long life and is capable of operation at elevated temperatures in contact with molten aluminum for many hours.
While the exact reason is not fully understood, it has also been found that the addition of titanium, Zirconium, hafnium, vanadium, niobium or tantalum to the molten aluminum tends to maintain an appreciably higher evaporation rate. This is believed to be the result of minimizing any appreciable concentration of aluminum carbide in the melt due to pin hole porosity of the boron nitride coating which would otherwise permit penetration of the coating and attack of the crucible by the aluminum.
After a period of operation of the crucible, it was found that the boron nitride layer has been converted to an extremely hard, dense compound whose identity has not been clearly established. This is believed to be a reaction product between boron nitride and aluminum, and it has been found to form in the vapor state as well as in the liquid state; that is, by reaction of boron nitride with aluminum vapors as well as the reaction of boron nitride with molten aluminum.
This surface can also be formed, for example, when a cover is desired over the crucible to provide lateral or downward evaporation from the crucible. In this case, a deflecting top 14 is provided over the crucible, a suitable opening 12 being left between one portion of the cover and the main body of the crucible. This cover is also preferably formed of a refractory material, such as carbon, similar to the material of the crucible. It is equally coated with a layer of boron nitride and dried. The abutting surfaces of the crucible and cover are coated with a boron nitride layer. The crucible and cover are placed in the vacuum system, the crucible being charged with aluminum. The crucible and cover are then heated to about l000 to 1300 C. and the boron nitride coating on the cover is reacted with aluminum vapors coming from the pool of aluminum confined by the source. These aluminum vapors react with the boron nitride, coating at the elevated temperature of the cover. After a. few minutes of operation, the aluminum vapors have reacted with the boron nitride coating to form a dense, hard surface which appears to be substantially impervious to and unreactive with aluminum vapors for long periods of time thereafter. The joint between the cover and the crucible has been converted to a hard, dense mass which is tight to liquid aluminum as well as to the aluminum vapors.
As a result of the techniques described above, it is possible to produce sources for molten aluminum having a wide range of geometric configurations and a control of aluminum vapors which permits upward, sideways or downward direction of the vapors. The above described method of forming a vapor-tight joint can also be used to form joints which also withstand molten aluminum, such as when a large source is to be built from a number of pieces of carbon.
In one preferred embodiment of the invention, a slurry is prepared by mixing 55 grams of powdered boron nitride in 121 cc. of water. This makes a paste having the consistency of whipped cream. This paste is then applied, such as by a brush, to all those surfaces of a carbon crucible which are to be exposed to molten aluminum or aluminum vapors. This coating is preferably ,6 inch thick. The thus coated carbon body is air dried at about 200 F. Several coatings can be applied in sequence. In one preferred embodiment of the invention, a carbon crucible, having an internal diameter of 4 and a depth of 2 inches, is thus treated with boron nitride paste and air dried. The crucible is placed in a vacuum coating tank and is charged with 550 grams of aluminum. The crucible is then brought up to elevated temperatures on the order of 1200 to 1300 C. At the end of 35 minutes the major percentage of the aluminum has been evaporated. The tank is opened after the crucible is cooled to about 800 C. Another 250 grams of the solid aluminum is added to the remaining molten aluminum in the crucible. grams of titanium are also added to the melt at this time. The chamber is evacuated again and the crucible is brought up to operating temperature. The aluminum evaporation rate in the second run is found to be equal to or greater than the aluminum evaporation rate in the first run, the effect of the titanium addition being to remove any small amounts of aluminum carbide formed by penetration of aluminum through pinholes or cracks in the boron nitride coating.
In another embodiment of the invention a carbon crucible having an internal diameter of 2 inches and a depth of 2 /2 inches is provided with a /2 inch hole near the top thereof. This crucible is also provided with a close fitting carbon cover. The inner surfaces of the crucible and cover (as well as the mating surfaces of the crucible and cover) are then coated with boron nitride and heated as above. This provides a source which produces a concentrated stream of aluminum vapors traveling laterally from the hole near the top. somewhat the stream of vapors can be directed downwardly as well as laterally. This arrangement is particularly suited for coating discrete objects such as nuts and bolts or powders which are most conveniently coated from above while being supported on a vibrating tray or the like.
While several preferred embodiments of the invention have been described above, numerous modifications thereof can be employed without departing from the spirit of the invention. The slurry of boron nitride can be prepared using numerous vehicles other than water.
If the crucible is tilted,
However, from the standpoint of cost and freedom from residual material which might outgas in the vacuum system, water is preferred. Equally Wetting agents or binding agents can be added to the boron nitride, but these have been found to be unnecessary. For complex struc tures they can be helpful.
Similarly, carbon is a preferred material from the standpoint of structural strength at elevated temperatures and freedom from'decomposition at elevated tempera tures. Other refractory substances can be employed; for example, refractory oxides such as magnesia, alumina and zirconia or refractory silicates such as zircon can be protected by the application of a boron nitride coating. While metals can be given a temporary coating with .boron nitride, the high solubility of all metals in molten aluminum precludes their, use since any pinhole or crack in the boron nitride coating causes rapid failure of any of the metals.
While specific forms of apparatus have not been illustrated, the improved aluminum vapor source can be employed in many types of coating devices such as those shown in the following US. Patents: 2,622,041, 2,643, 201, and 2,879,739 and the copending application of Cerych, Clough'and Steeves Serial No. 795,424, filed February 25, 1959, to mention only a few of its uses.
Since certain changes can be made in the above proc ess and apparatus without departing from the scope of the invention herein involved, it is intended that all matter contained in the above description shall be interpreted as illustrative and not in a limiting sense.
What is claimed is:
A crucible comprising a base formed of a material selected from the group consisting of carbon and the refractory oxides and silicates and a cover formed of a material selected from the group consisting of carbon and the refractory oxides and silicates, said base and cover defining a confined space therebetween, an opening in said base communicating with said confined space, the whole interior of said confined space having an adherent surface coating comprising the hard solid reaction product between boron nitride and aluminum, said reaction product coating strongly uniting said base and said cover, said reaction product being formed by reaction at temperatures on the order of 1200 C. to 1300 C. between aluminum and a coating of boron nitride supported on the interior of said confined space.
References Cited by the Examiner UNITED STATES PATENTS MORRIS KAPLAN, Priniary Examiner. RICHARD NEVIUS, WILLIAM MARTIN, Examiners.
CHARLES A. WILLMUTH, I. HAUG,
Assistant Examiners.
US236365A 1960-04-25 1962-11-08 Crucible coated with reaction product of aluminum and boron nitride coating Expired - Lifetime US3245674A (en)

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US392994A US3367811A (en) 1962-11-08 1964-08-10 Process of joining bodies with boron nitride

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US24238A US3084060A (en) 1960-04-25 1960-04-25 Process of coating a refractory body with boron nitride and then reacting with aluminum
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Cited By (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3328017A (en) * 1965-05-25 1967-06-27 William V Conner Reaction vessel for production of plutonium
US3341315A (en) * 1964-08-06 1967-09-12 Maul Bros Inc Glass delivery system
US3350182A (en) * 1965-07-29 1967-10-31 Dow Corning Silicon carbide glass fiber bushing and method of making said bushing
US3607197A (en) * 1967-11-10 1971-09-21 Barr & Stroud Ltd Manufacture of fiber optic stacks
US3730507A (en) * 1971-01-18 1973-05-01 Union Carbide Corp Boron nitride base evaporation vessel having a surface coating of titanium-silicon thereon
JPS5241176A (en) * 1975-09-29 1977-03-30 Toshiba Corp Crucible for evaporation source
US4268483A (en) * 1976-03-17 1981-05-19 Metals Research Limited Improvements in and relating to the growth of crystalline material
US4999082A (en) * 1989-09-14 1991-03-12 Akzo America Inc. Process for producing monocrystalline group II-IV or group III-V compounds and products thereof
US20060134415A1 (en) * 2003-04-28 2006-06-22 Yury Gogotsi Boron nitride-aluminum (ban) interfaces and coatings and methods for their production and use
US20080156453A1 (en) * 2006-12-27 2008-07-03 Thomas Joseph Kelly Articles for use with highly reactive alloys
US20080156147A1 (en) * 2006-12-27 2008-07-03 Thomas Joseph Kelly Methods for reducing carbon contamination when melting highly reactive alloys
US20100252018A1 (en) * 2007-12-11 2010-10-07 Johannes Imle Wall lining of industrial ovens

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US2453763A (en) * 1945-07-07 1948-11-16 Ruben Samuel Selenium rectifier and process for making same
US2480299A (en) * 1946-05-16 1949-08-30 Air Reduction Apparatus for butt welding with induction heating
US2512230A (en) * 1947-02-07 1950-06-20 C D Patents Ltd Joining of carbon bodies to other bodies
US2670311A (en) * 1951-02-02 1954-02-23 C D Patents Ltd Method of making a heat exchanger
US2759861A (en) * 1954-09-22 1956-08-21 Bell Telephone Labor Inc Process of making photoconductive compounds
GB766119A (en) * 1953-01-26 1957-01-16 British Dielectric Res Ltd Improved means for coating of surfaces by vapour deposition
US2925062A (en) * 1953-05-15 1960-02-16 Heraeus Gmbh W C Coating apparatus
US2938816A (en) * 1957-06-08 1960-05-31 Siemens Ag Vaporization method of producing thin layers of semiconducting compounds
US2945934A (en) * 1957-09-14 1960-07-19 Kralowetz Bruno Machine for hot-forming bar stock
US2963001A (en) * 1957-09-16 1960-12-06 Continental Can Co Chamber sealing apparatus for web materials
US3063858A (en) * 1959-07-22 1962-11-13 Nat Res Corp Vapor source and processes for vaporizing iron, nickel and copper
US3063865A (en) * 1957-06-03 1962-11-13 Nat Steel Corp Process of treating a boron nitride crucible with molten aluminum

Patent Citations (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2453763A (en) * 1945-07-07 1948-11-16 Ruben Samuel Selenium rectifier and process for making same
US2480299A (en) * 1946-05-16 1949-08-30 Air Reduction Apparatus for butt welding with induction heating
US2512230A (en) * 1947-02-07 1950-06-20 C D Patents Ltd Joining of carbon bodies to other bodies
US2670311A (en) * 1951-02-02 1954-02-23 C D Patents Ltd Method of making a heat exchanger
GB766119A (en) * 1953-01-26 1957-01-16 British Dielectric Res Ltd Improved means for coating of surfaces by vapour deposition
US2925062A (en) * 1953-05-15 1960-02-16 Heraeus Gmbh W C Coating apparatus
US2759861A (en) * 1954-09-22 1956-08-21 Bell Telephone Labor Inc Process of making photoconductive compounds
US3063865A (en) * 1957-06-03 1962-11-13 Nat Steel Corp Process of treating a boron nitride crucible with molten aluminum
US2938816A (en) * 1957-06-08 1960-05-31 Siemens Ag Vaporization method of producing thin layers of semiconducting compounds
US2945934A (en) * 1957-09-14 1960-07-19 Kralowetz Bruno Machine for hot-forming bar stock
US2963001A (en) * 1957-09-16 1960-12-06 Continental Can Co Chamber sealing apparatus for web materials
US3063858A (en) * 1959-07-22 1962-11-13 Nat Res Corp Vapor source and processes for vaporizing iron, nickel and copper

Cited By (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3341315A (en) * 1964-08-06 1967-09-12 Maul Bros Inc Glass delivery system
US3328017A (en) * 1965-05-25 1967-06-27 William V Conner Reaction vessel for production of plutonium
US3350182A (en) * 1965-07-29 1967-10-31 Dow Corning Silicon carbide glass fiber bushing and method of making said bushing
US3607197A (en) * 1967-11-10 1971-09-21 Barr & Stroud Ltd Manufacture of fiber optic stacks
US3730507A (en) * 1971-01-18 1973-05-01 Union Carbide Corp Boron nitride base evaporation vessel having a surface coating of titanium-silicon thereon
JPS5241176A (en) * 1975-09-29 1977-03-30 Toshiba Corp Crucible for evaporation source
US4268483A (en) * 1976-03-17 1981-05-19 Metals Research Limited Improvements in and relating to the growth of crystalline material
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