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Patent · US9368867B2 · B2 · US

Near-linear drive systems for positioning reflectors

(11) Publication number
US9368867B2
(21) Application number
14/047,611
(22) Filing date
2013-10-07
(30) Priority date
2013-10-07
(43) Publication date
2016-06-14
(45) Date of grant
2016-06-14
(51) IPC
F16H 21/40; F16H 25/20; H01Q 3/14; H01Q 3/20; G02B 7/182; H01Q 1/12; H01Q 3/00
(52) CPC
  • H01Q Antennas, i.e. radio aerials: 3/20, 1/125, 1/427, 3/14
  • F16H Gearing: 1/16, 2025/2043, 21/40, 25/20
  • F16M Frames, casings or beds of engines, machines or apparatus, not specific to engines, machines or apparatus provided for elsewhere; stands; supports: 11/046, 11/126
  • G02B Optical elements, systems or apparatus: 7/1821
  • Y10T Technical subjects covered by former us classification: 74/18184
(73) Assignee
Harris Corp
(72) Inventors
Mark Evans
(54) Title
Near-linear drive systems for positioning reflectors
(57) Abstract

System for positioning a reflector includes a base (112), yoke (104) and a reflector in the form of a lens mirror assembly (10). A motor (120) is mounted and remains substantially stationary with respect to rotation about a first axis while the yoke rotates about the first axis. A connecting rod (152) actuated for movement by the motor is mechanically coupled to the reflector so that movement of the connecting rod in relation to the yoke imparts rotation to the reflector about the second axis when the reflector is supported by the yoke. A mechanical drive system couples an output shaft of the motor to the connecting rod. The mechanical drive system is arranged so that it varies an angular position of the reflector at a rate which is linearly related to the rotation of the output shaft.

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Claims (9)

  1. A system for positioning a reflector, comprising: a base; a yoke mounted on the base for rotation about a first axis in relation to the base and being capable of supporting the reflector so that the reflector can rotate about a second axis in relation to the yoke; a linkage comprising at least one connecting rod and at least one linkage member, wherein: the linkage is operable to rotate with the yoke about the first axis; the linkage member is limited to movement along a linear path parallel to the first axis; and the connecting rod having a first end mechanically coupled to the reflector offset a pre-defined distance from said first axis and a second end mechanically coupled to the linkage member so that the movement of the linkage member along the linear path imparts rotation to the reflector about the second axis when the reflector is supported by the yoke; and a feed positioned on a non-rotating component of said system.
  2. The system of claim 1, further comprising an azimuth control motor mounted on the base and mechanically coupled to the yoke so that the azimuth control motor is operable to impart rotation to the yoke about the first axis.
  3. The system of claim 2, wherein an elevation control motor drives the linkage member which causes movement in relation to the yoke.
  4. The system of claim 2, further comprising a worm gear-set that is configured to drive the linkage member for movement in relation to the yoke, the worm gear-set comprising a worm, and a pawl that engages the worm so that relative movement between the worm and the pawl imparts translational movement to the pawl.
  5. The system of claim 4, wherein: the reflector comprises a lens/mirror to which the first end of the connecting rod is mechanically coupled; and the linkage member is mechanically coupled to the pawl so that the translational movement of the pawl imparts movement to the linkage member in relation to the yoke.
  6. The system of claim 5, further comprising an elevation control motor mounted on the base, and a drive shaft, wherein: the drive shaft is mechanically coupled to the elevation control motor so that the elevation control motor is operable to impart rotation to the drive shaft; the drive shaft is mechanically coupled to the worm so that rotation of the drive shaft imparts rotation to the worm; rotation of the worm imparts translational motion to the pawl of the worm-gear set; and wherein an elevation motor drives the linkage member which causes movement in relation to the yoke.
  7. The system of claim 6, further comprising an attaching bolt and a gear concentrically disposed around the attaching bolt, said attaching bolt concentrically disposed around the drive shaft, and a contact bearing concentrically disposed around the attaching bolt, said contact bearing including an outer race that engages the base, wherein the attaching bolt is mechanically coupled to the yoke so that the yoke rotates about the first axis with the attaching bolt, and the gear is mechanically coupled to the azimuth control motor so that the azimuth control motor drives the yoke for rotation about the first axis by way of the gear and the bolt.
  8. The system of claim 6, wherein the azimuth control motor and the elevation control motor are mounted on an underside of the base, opposed from said yoke.
  9. The system of claim 1, further comprising at least one encoder configured to determine when one or both of an elevation angle and an azimuth angle of a lens has reached a reference position.

Description

1. Statement of the Technical Field

The inventive arrangements relate to systems for positioning or pointing reflectors on a dynamic or moving basis, and more particularly to reflector assemblies that are used to focus and direct energy to and from sensors used in applications such as satellite communications and optical sensing.

2. Description of the Related Art

Directive sensors, i.e., sensors whose functionality is dependent upon the relative orientation thereof, are often used in applications that require hemispherical pointing and focusing of the energy being directed to or from the sensor, hereinafter referred to as “the sensor beam.” A passive reflector in the form of a lens and an attached mirror, hereinafter referred to collectively as a lens/mirror assembly, can be used to focus and direct the sensor beam. To effectuate hemispherical pointing of the sensor beam, the lens/mirror assembly needs to be movable so that its azimuth angle, i.e., compass direction, and elevation angle, i.e., the angle above the horizon, can be varied. Hemispherical pointing thus requires that the lens/mirror assembly rotate about at least two axes.

Lens/mirror assemblies, and other types of reflectors that require hemispherical pointing can be mounted on devices that facilitate movement of the lens/mirror assembly about a vertically-oriented axis and a horizontally-oriented axis. For example, the lens/mirror assembly can be suspended from a yoke or other type of mount that permits the lens/mirror assembly to pivot about the horizontally-oriented axis.

Citations (23)

  • US1344289A
  • US1692466A
  • US1841234A
  • US2407310A
  • US2557967A
  • US2537822A
  • US2599381A
  • US2916739A
  • US3980252A
  • US4772410A
  • US6188300B1
  • US5945961A
  • US20030112194A1
  • US6911950B2
  • US20070052604A1
  • US7388700B1
  • US7463206B1
  • US20090158878A1
  • US7839348B2
  • US20120268333A1
  • EP2549585A1
  • US20130021214A1
  • US9054409B2
Record as JSON
{
  "publication_number": "US9368867B2",
  "country": "US",
  "kind": "B2",
  "title": "Near-linear drive systems for positioning reflectors",
  "abstract": "System for positioning a reflector includes a base (112), yoke (104) and a reflector in the form of a lens mirror assembly (10). A motor (120) is mounted and remains substantially stationary with respect to rotation about a first axis while the yoke rotates about the first axis. A connecting rod (152) actuated for movement by the motor is mechanically coupled to the reflector so that movement of the connecting rod in relation to the yoke imparts rotation to the reflector about the second axis when the reflector is supported by the yoke. A mechanical drive system couples an output shaft of the motor to the connecting rod. The mechanical drive system is arranged so that it varies an angular position of the reflector at a rate which is linearly related to the rotation of the output shaft.",
  "claims": [
    "1. A system for positioning a reflector, comprising: a base; a yoke mounted on the base for rotation about a first axis in relation to the base and being capable of supporting the reflector so that the reflector can rotate about a second axis in relation to the yoke; a linkage comprising at least one connecting rod and at least one linkage member, wherein: the linkage is operable to rotate with the yoke about the first axis; the linkage member is limited to movement along a linear path parallel to the first axis; and the connecting rod having a first end mechanically coupled to the reflector offset a pre-defined distance from said first axis and a second end mechanically coupled to the linkage member so that the movement of the linkage member along the linear path imparts rotation to the reflector about the second axis when the reflector is supported by the yoke; and a feed positioned on a non-rotating component of said system.",
    "2. The system of claim 1, further comprising an azimuth control motor mounted on the base and mechanically coupled to the yoke so that the azimuth control motor is operable to impart rotation to the yoke about the first axis.",
    "3. The system of claim 2, wherein an elevation control motor drives the linkage member which causes movement in relation to the yoke.",
    "4. The system of claim 2, further comprising a worm gear-set that is configured to drive the linkage member for movement in relation to the yoke, the worm gear-set comprising a worm, and a pawl that engages the worm so that relative movement between the worm and the pawl imparts translational movement to the pawl.",
    "5. The system of claim 4, wherein: the reflector comprises a lens/mirror to which the first end of the connecting rod is mechanically coupled; and the linkage member is mechanically coupled to the pawl so that the translational movement of the pawl imparts movement to the linkage member in relation to the yoke.",
    "6. The system of claim 5, further comprising an elevation control motor mounted on the base, and a drive shaft, wherein: the drive shaft is mechanically coupled to the elevation control motor so that the elevation control motor is operable to impart rotation to the drive shaft; the drive shaft is mechanically coupled to the worm so that rotation of the drive shaft imparts rotation to the worm; rotation of the worm imparts translational motion to the pawl of the worm-gear set; and wherein an elevation motor drives the linkage member which causes movement in relation to the yoke.",
    "7. The system of claim 6, further comprising an attaching bolt and a gear concentrically disposed around the attaching bolt, said attaching bolt concentrically disposed around the drive shaft, and a contact bearing concentrically disposed around the attaching bolt, said contact bearing including an outer race that engages the base, wherein the attaching bolt is mechanically coupled to the yoke so that the yoke rotates about the first axis with the attaching bolt, and the gear is mechanically coupled to the azimuth control motor so that the azimuth control motor drives the yoke for rotation about the first axis by way of the gear and the bolt.",
    "8. The system of claim 6, wherein the azimuth control motor and the elevation control motor are mounted on an underside of the base, opposed from said yoke.",
    "9. The system of claim 1, further comprising at least one encoder configured to determine when one or both of an elevation angle and an azimuth angle of a lens has reached a reference position."
  ],
  "description_excerpt": "1. Statement of the Technical Field\n\nThe inventive arrangements relate to systems for positioning or pointing reflectors on a dynamic or moving basis, and more particularly to reflector assemblies that are used to focus and direct energy to and from sensors used in applications such as satellite communications and optical sensing.\n\n2. Description of the Related Art\n\nDirective sensors, i.e., sensors whose functionality is dependent upon the relative orientation thereof, are often used in applications that require hemispherical pointing and focusing of the energy being directed to or from the sensor, hereinafter referred to as “the sensor beam.” A passive reflector in the form of a lens and an attached mirror, hereinafter referred to collectively as a lens/mirror assembly, can be used to focus and direct the sensor beam. To effectuate hemispherical pointing of the sensor beam, the lens/mirror assembly needs to be movable so that its azimuth angle, i.e., compass direction, and elevation angle, i.e., the angle above the horizon, can be varied. Hemispherical pointing thus requires that the lens/mirror assembly rotate about at least two axes.\n\nLens/mirror assemblies, and other types of reflectors that require hemispherical pointing can be mounted on devices that facilitate movement of the lens/mirror assembly about a vertically-oriented axis and a horizontally-oriented axis. For example, the lens/mirror assembly can be suspended from a yoke or other type of mount that permits the lens/mirror assembly to pivot about the horizontally-oriented axis.",
  "cpc": [
    "H01Q 3/20",
    "F16H 1/16",
    "F16H 2025/2043",
    "F16H 21/40",
    "F16H 25/20",
    "F16M 11/046",
    "F16M 11/126",
    "G02B 7/1821",
    "H01Q 1/125",
    "H01Q 1/427",
    "H01Q 3/14",
    "Y10T 74/18184"
  ],
  "ipc": [
    "F16H 21/40",
    "F16H 25/20",
    "H01Q 3/14",
    "H01Q 3/20",
    "G02B 7/182",
    "H01Q 1/12",
    "H01Q 3/00"
  ],
  "assignees": [
    "Harris Corp"
  ],
  "inventors": [
    "Mark Evans"
  ],
  "filing_date": "2013-10-07",
  "publication_date": "2016-06-14",
  "grant_date": "2016-06-14",
  "priority_date": "2013-10-07",
  "application_number": "US-201314047611-A",
  "family_id": "51392385",
  "cited_by_count": 4,
  "citations": [
    "US1344289A",
    "US1692466A",
    "US1841234A",
    "US2407310A",
    "US2557967A",
    "US2537822A",
    "US2599381A",
    "US2916739A",
    "US3980252A",
    "US4772410A",
    "US6188300B1",
    "US5945961A",
    "US20030112194A1",
    "US6911950B2",
    "US20070052604A1",
    "US7388700B1",
    "US7463206B1",
    "US20090158878A1",
    "US7839348B2",
    "US20120268333A1",
    "EP2549585A1",
    "US20130021214A1",
    "US9054409B2"
  ]
}

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