Claims
- 1. A method of manufacturing an anisotropically loaded helix assembly for use within a traveling-wave tube, comprising the steps of:
- selectively depositing conductive material onto a plurality of dielectric support members in predetermined configurations, creating a desired anisotropic load;
- attaching said dielectric support members to a helix circuit forming a subassembly of a predetermined configuration; and
- inserting said subassembly into a conductive cylindrical housing such that said conductive material is selectively coupled to said cylindrical housing.
- 2. The method of claim 1, wherein said step of depositing includes metalizing said dielectric support members by applying said conductive material to said dielectric support member with a silk screen process, whereby said conductive material is selectively deposited on said dielectric support members in predetermined configurations.
- 3. The method of claim 1, wherein said predetermined configuration of said subassembly has a dimensional interference with said cylindrical housing, preventing the passage of said subassembly into said housing and wherein said step of inserting includes elastically deforming said cylindrical housing, by selectively applying a deforming force to said cylindrical housing, whereby said cylindrical housing expands to remove said interference; placing said sub-assembly within said elastically deformed cylindrical housing; and removing said deforming force such that said cylindrical housing returns to a nominal position, creating a compression fit between said sub-assembly and said housing, said compression fit operative to trap said helix assembly in place during operation of said traveling-wave tube.
- 4. The method of claim 3, wherein said step of attaching said dielectric support members to said helix circuit includes adhesively attaching three dielectric support members to said helix circuit in a symmetrically disposed manner to form said sub-assembly with a substantially triangular profile, wherein each dielectric support comprises an apex within said triangular profile.
- 5. The method of claim 1, further including the step of forming said dielectric support members into shapes such that each said dielectric support member interacts with electromagnetic field lines, produced by said helix circuit in such a manner so as to promote a substantially constant wave velocity within said helix circuit across a given range of frequencies.
- 6. The method of claim 1, wherein said plurality of dielectric support members are formed from aluminum nitride.
- 7. A method of manufacturing an anisotropically loaded helix assembly for use within a traveling-wave tube, comprising the steps of:
- applying conductive material onto a plurality of dielectric support members with a silk screen process, wherein said conductive material is selectively deposited on said dielectric support members in predetermined configurations,
- attaching said dielectric support members to a helix circuit forming a subassembly of a predetermined configuration; and
- inserting said subassembly into a conductive cylindrical housing such that said conductive material is selectively coupled to said cylindrical housing.
- 8. The method of claim 7, wherein said step of applying is sputtering.
- 9. The method of claim 7, wherein said step of applying is copper bonding.
- 10. A method of manufacturing an anisotropically loaded helix assembly for use within a traveling-wave tube, comprising the steps of:
- depositing conductive material onto a plurality of dielectric support members creating a desired anisotropic load;
- attaching said dielectric support members to a helix circuit, said attaching including adhesively attaching three dielectric support members to said helix circuit in a symmetrically disposed manner to form a subassembly of a predetermined configuration with a substantially triangular profile, wherein each dielectric support comprises an apex within said triangular profile, said predetermined configuration of said subassembly having a dimensional interference with a cylindrical housing preventing the passage of said subassembly into said housing;
- elastically deforming said cylindrical housing, by selectively applying a deforming force to said cylindrical housing, whereby said cylindrical housing expands to remove said interference;
- placing said sub-assembly within said elastically deformed cylindrical housing; and
- removing said deforming force such that said cylindrical housing returns to a nominal position, compressing said sub-assembly therein.
- 11. The method of claim 10, wherein said step of elastically deforming said cylindrical housing includes applying said deforming force to three positions around said cylindrical housing, such that said cylindrical housing expands in between said three positions, allowing for the passage of said sub-assembly therein.
Parent Case Info
This is a division of application Ser. No. 07/939,305, filed Sep. 2, 1992.
US Referenced Citations (6)
Divisions (1)
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Number |
Date |
Country |
Parent |
939305 |
Sep 1992 |
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