MLchartDataset catalogue

Patent · US10132717B2 · B2 · US

Flexible automation cell for performing secondary operations in concert with a machining center and roll check operations

(11) Publication number
US10132717B2
(21) Application number
15/412,621
(22) Filing date
2017-01-23
(30) Priority date
2014-03-31
(43) Publication date
2018-11-20
(45) Date of grant
2018-11-20
(51) IPC
B23F 23/02; B23F 23/12; B23Q 17/00; B23Q 17/20; B23Q 7/04; B25J 15/00; B25J 21/00; G01B 7/00; G01B 7/28; G01M 13/02
(52) CPC
  • G01M Testing static or dynamic balance of machines or structures; testing of structures or apparatus, not otherwise provided for: 13/021
  • B23F Making gears or toothed racks: 23/02, 23/1218
  • B23Q Details, components, or accessories for machine tools, e.g. arrangements for copying or controlling; machine tools in general characterised by the construction of particular details or components; combinations or associations of metal-working machines, not directed to a particular result: 17/20, 2017/001, 7/04, 7/048
  • B25J Manipulators; chambers provided with manipulation devices: 15/0052, 21/00
  • G01B Measuring length, thickness or similar linear dimensions; measuring angles; measuring areas; measuring irregularities of surfaces or contours: 7/003, 7/282, 7/283
(73) Assignee
Automation Controls & Engineering LLC
(72) Inventors
Predrag Lazic; Chris Mackey; Steve Moore
(54) Title
Flexible automation cell for performing secondary operations in concert with a machining center and roll check operations
(57) Abstract

An automation cell incorporating elements for performing secondary operations on a machined part is adapted to be disposed adjacent to a machining center for performing the primary operations on the part. The cell incorporates a robotic arm capable of being moved into position with respect to the machining center so as to load machined parts into the machining center and unload primarily machined parts for the performance of secondary operations in the cell. In a preferred embodiment the automation cell performs roll check operations on the primarily machined gear by bringing it into meshed engagement with a master gear and rotating the meshed gears and employing a sensor to monitor the roll-out of the machined gear.

Full text
View on Google Patents

Claims (16)

  1. A method of performing a plurality of secondary operations on machined gears for use with a gear grinder operable to perform primary machining of the gears, the method comprising: providing an automation cell having: a cell housing; a robot supported in the housing and having an elongated arm with a gripper mechanism disposed on the elongated arm; a roll checker supported in the housing, the roll checker operable to detect run-out of a machined gear; and a marker supported in the housing for marking parts; positioning the cell housing adjacent to the gear grinder to allow the robot arm to move a gear between the cell housing and the gear grinder; retrieving a machined gear from the gear grinder using the gripper mechanism of the robot; positioning the machined gear in the roll checker; clamping the machined gear in the roll checker; performing a roll checking operation on the clamped machined gear within the cell housing and determining if the clamped machined gear meets a specification; and marking the machined gear within the cell housing using the marker if the machined gear meets the specification, the marking being an identification code.
  2. A method in accordance with claim 1, wherein the marker comprises a laser marker and the marking step comprises laser marking the machined gear within the cell housing using the laser marker if the machined gear meets the specification.
  3. A method in accordance with claim 2, wherein the laser marker includes a shuttle, the laser marking step further comprising fixing the machined gear using the shuttle.
  4. A method in accordance with claim 1, wherein: the roll checker comprises: a support for rotatably supporting a machined gear about its central axis; a slide movable along an axis extending normal to the central axis of the machined gear supported on the support; a master gear rotatably supported on the slide with its axis of rotation parallel to the central axis of the machined gear; a slide drive for moving the slide to bring the master gear into meshed engagement with the machined gear; a rotational drive for rotating the meshed machined gear and master gear; and a sensor detecting motion of the slide resulting from run-out of the machined gear relative to the master gear; the step of positioning the machined gear in the roll checker comprises positioning the machined gear on the support; the step of clamping the machined gear in the roll checker comprises clamping the machined gear on the support; and the step of performing a roll checking operation on the clamped machined gear comprises: moving the slide using the slide drive to bring the master gear into meshed engagement with the machined gear; rotating the meshed machined gear and master gear using the rotational drive; and sensing run-out using the sensor.
  5. A method in accordance with claim 4, wherein the step of rotating the meshed machined gear and master gear comprises driving the machined gear with the rotational drive.
  6. A method in accordance with claim 4, wherein the slide drive for moving the slide to bring the master gear into meshed engagement with the machined gear comprises a fluid drive.
  7. A method in accordance with claim 6, wherein the fluid drive constitutes a pneumatic drive.
  8. A method in accordance with claim 4, wherein the rotational drive for rotating the meshed master and machined gear about a central axis constitutes a motor for rotating the machined gear.
  9. A method in accordance with claim 1, further comprising: providing a part washer supported in the housing; and positioning the machined gear in the gear washing system using the gripper mechanism of the robot and washing the machined gear.
  10. A method in accordance with claim 1, wherein the gripper mechanism comprises a servo gripper mechanism having two grippers that can support two parts simultaneously so that a part to be machined can be loaded into the machining center and a part which has been machined in the machining center can be moved to the housing for the performance of secondary operations.
  11. A method in accordance with claim 1, further comprising; moving a part blank from the cell housing to the gear grinder using the gripper mechanism; and measuring the part blank using the gripper mechanism to determine if the part blank is a proper blank.
  12. A method in accordance with claim 1, wherein the robot is a six axis of freedom robot.
  13. A method in accordance with claim 1, further comprising: providing a controller adapted to receive signals from the roll checker; and using the controller as an aid in segregating properly machined gears from improperly machined gears.
  14. A method in accordance with claim 1, wherein: the identification code marked on each machined gear is an identification code; further comprising providing a controller adapted to record and store data; and recording and storing data for each gear and associating the data with the identification code, thereby providing for traceability of the machined gears.
  15. A method in accordance with claim 14, wherein the identification code marked on each machined gear is a unique identification code.
  16. A method in accordance with claim 14, wherein the data recorded and stored and associated with the identification codes is selected from the data points consisting of: manufacturing machine number; manufacturing machine spindle number; date of manufacture; time of manufacture; and roll check inspection results.

Description

This invention relates to a flexible automation cell adapted to load blanks for production parts into an adjacent machining center for the performance of a primary operation, to unload the parts after performance of the primary operation, and to perform secondary operations, including checking the results of the primary operation on the unloaded part, and to a roll check operation for measuring gear run-out.

Automated machining centers, often employing numerically controlled milling machines, lathes, or similar specialty machine tools such as gear grinding machines and the like, have come into widespread use to perform primary operations on workpieces. The parts produced by these machining centers often require secondary operations, such as the inspection of the parts for proper completion of the primary operation, cleaning the part by washing or the like, or the performance of additional machining operations. In present practice, these primarily machined parts are unloaded from the machining center and delivered to a separated machine for the performance of the necessary secondary operations. Often several secondary operations must each be performed in different machines and the part must further be transported between these machines. This multistage processing is often time consuming, requires substantial manual labor, and is wasteful of shop space.

Citations (15)

  • US4137642A
  • US4322889A
  • US4519241A
  • US5016471A
  • US5667351A
  • US20040098162A1
  • US20060254055A1
  • US20090249633A1
  • US20110232116A1
  • US20150066390A1
  • US20150193919A1
  • US20150338309A1
  • US9671310B2
  • US20160214805A1
  • US20180117767A1
Record as JSON
{
  "publication_number": "US10132717B2",
  "country": "US",
  "kind": "B2",
  "title": "Flexible automation cell for performing secondary operations in concert with a machining center and roll check operations",
  "abstract": "An automation cell incorporating elements for performing secondary operations on a machined part is adapted to be disposed adjacent to a machining center for performing the primary operations on the part. The cell incorporates a robotic arm capable of being moved into position with respect to the machining center so as to load machined parts into the machining center and unload primarily machined parts for the performance of secondary operations in the cell. In a preferred embodiment the automation cell performs roll check operations on the primarily machined gear by bringing it into meshed engagement with a master gear and rotating the meshed gears and employing a sensor to monitor the roll-out of the machined gear.",
  "claims": [
    "1. A method of performing a plurality of secondary operations on machined gears for use with a gear grinder operable to perform primary machining of the gears, the method comprising: providing an automation cell having: a cell housing; a robot supported in the housing and having an elongated arm with a gripper mechanism disposed on the elongated arm; a roll checker supported in the housing, the roll checker operable to detect run-out of a machined gear; and a marker supported in the housing for marking parts; positioning the cell housing adjacent to the gear grinder to allow the robot arm to move a gear between the cell housing and the gear grinder; retrieving a machined gear from the gear grinder using the gripper mechanism of the robot; positioning the machined gear in the roll checker; clamping the machined gear in the roll checker; performing a roll checking operation on the clamped machined gear within the cell housing and determining if the clamped machined gear meets a specification; and marking the machined gear within the cell housing using the marker if the machined gear meets the specification, the marking being an identification code.",
    "2. A method in accordance with claim 1, wherein the marker comprises a laser marker and the marking step comprises laser marking the machined gear within the cell housing using the laser marker if the machined gear meets the specification.",
    "3. A method in accordance with claim 2, wherein the laser marker includes a shuttle, the laser marking step further comprising fixing the machined gear using the shuttle.",
    "4. A method in accordance with claim 1, wherein: the roll checker comprises: a support for rotatably supporting a machined gear about its central axis; a slide movable along an axis extending normal to the central axis of the machined gear supported on the support; a master gear rotatably supported on the slide with its axis of rotation parallel to the central axis of the machined gear; a slide drive for moving the slide to bring the master gear into meshed engagement with the machined gear; a rotational drive for rotating the meshed machined gear and master gear; and a sensor detecting motion of the slide resulting from run-out of the machined gear relative to the master gear; the step of positioning the machined gear in the roll checker comprises positioning the machined gear on the support; the step of clamping the machined gear in the roll checker comprises clamping the machined gear on the support; and the step of performing a roll checking operation on the clamped machined gear comprises: moving the slide using the slide drive to bring the master gear into meshed engagement with the machined gear; rotating the meshed machined gear and master gear using the rotational drive; and sensing run-out using the sensor.",
    "5. A method in accordance with claim 4, wherein the step of rotating the meshed machined gear and master gear comprises driving the machined gear with the rotational drive.",
    "6. A method in accordance with claim 4, wherein the slide drive for moving the slide to bring the master gear into meshed engagement with the machined gear comprises a fluid drive.",
    "7. A method in accordance with claim 6, wherein the fluid drive constitutes a pneumatic drive.",
    "8. A method in accordance with claim 4, wherein the rotational drive for rotating the meshed master and machined gear about a central axis constitutes a motor for rotating the machined gear.",
    "9. A method in accordance with claim 1, further comprising: providing a part washer supported in the housing; and positioning the machined gear in the gear washing system using the gripper mechanism of the robot and washing the machined gear.",
    "10. A method in accordance with claim 1, wherein the gripper mechanism comprises a servo gripper mechanism having two grippers that can support two parts simultaneously so that a part to be machined can be loaded into the machining center and a part which has been machined in the machining center can be moved to the housing for the performance of secondary operations.",
    "11. A method in accordance with claim 1, further comprising; moving a part blank from the cell housing to the gear grinder using the gripper mechanism; and measuring the part blank using the gripper mechanism to determine if the part blank is a proper blank.",
    "12. A method in accordance with claim 1, wherein the robot is a six axis of freedom robot.",
    "13. A method in accordance with claim 1, further comprising: providing a controller adapted to receive signals from the roll checker; and using the controller as an aid in segregating properly machined gears from improperly machined gears.",
    "14. A method in accordance with claim 1, wherein: the identification code marked on each machined gear is an identification code; further comprising providing a controller adapted to record and store data; and recording and storing data for each gear and associating the data with the identification code, thereby providing for traceability of the machined gears.",
    "15. A method in accordance with claim 14, wherein the identification code marked on each machined gear is a unique identification code.",
    "16. A method in accordance with claim 14, wherein the data recorded and stored and associated with the identification codes is selected from the data points consisting of: manufacturing machine number; manufacturing machine spindle number; date of manufacture; time of manufacture; and roll check inspection results."
  ],
  "description_excerpt": "This invention relates to a flexible automation cell adapted to load blanks for production parts into an adjacent machining center for the performance of a primary operation, to unload the parts after performance of the primary operation, and to perform secondary operations, including checking the results of the primary operation on the unloaded part, and to a roll check operation for measuring gear run-out.\n\nAutomated machining centers, often employing numerically controlled milling machines, lathes, or similar specialty machine tools such as gear grinding machines and the like, have come into widespread use to perform primary operations on workpieces. The parts produced by these machining centers often require secondary operations, such as the inspection of the parts for proper completion of the primary operation, cleaning the part by washing or the like, or the performance of additional machining operations. In present practice, these primarily machined parts are unloaded from the machining center and delivered to a separated machine for the performance of the necessary secondary operations. Often several secondary operations must each be performed in different machines and the part must further be transported between these machines. This multistage processing is often time consuming, requires substantial manual labor, and is wasteful of shop space.",
  "cpc": [
    "G01M 13/021",
    "B23F 23/02",
    "B23F 23/1218",
    "B23Q 17/20",
    "B23Q 2017/001",
    "B23Q 7/04",
    "B23Q 7/048",
    "B25J 15/0052",
    "B25J 21/00",
    "G01B 7/003",
    "G01B 7/282",
    "G01B 7/283"
  ],
  "ipc": [
    "B23F 23/02",
    "B23F 23/12",
    "B23Q 17/00",
    "B23Q 17/20",
    "B23Q 7/04",
    "B25J 15/00",
    "B25J 21/00",
    "G01B 7/00",
    "G01B 7/28",
    "G01M 13/02"
  ],
  "assignees": [
    "Automation Controls & Engineering LLC"
  ],
  "inventors": [
    "Predrag Lazic",
    "Chris Mackey",
    "Steve Moore"
  ],
  "filing_date": "2017-01-23",
  "publication_date": "2018-11-20",
  "grant_date": "2018-11-20",
  "priority_date": "2014-03-31",
  "application_number": "US-201715412621-A",
  "family_id": "54189908",
  "cited_by_count": 0,
  "citations": [
    "US4137642A",
    "US4322889A",
    "US4519241A",
    "US5016471A",
    "US5667351A",
    "US20040098162A1",
    "US20060254055A1",
    "US20090249633A1",
    "US20110232116A1",
    "US20150066390A1",
    "US20150193919A1",
    "US20150338309A1",
    "US9671310B2",
    "US20160214805A1",
    "US20180117767A1"
  ]
}

Record 3,170 of 8,000 in Patents full text (MLC-0201). Request the full dataset.