MLchartDataset catalogue

Patent · US9462641B2 · B2 · US

Transverse flux strip heating with DC edge saturation

(11) Publication number
US9462641B2
(21) Application number
14/681,487
(22) Filing date
2015-04-08
(30) Priority date
2013-12-20
(43) Publication date
2016-10-04
(45) Date of grant
2016-10-04
(51) IPC
H05B 6/06; H05B 6/10; H05B 6/36; C21D 1/42; C21D 11/00; C21D 9/60
(52) CPC
  • H05B Electric heating; electric light sources not otherwise provided for; circuit arrangements for electric light sources, in general: 6/36, 6/06, 6/101
  • C21D Modifying the physical structure of ferrous metals; general devices for heat treatment of ferrous or non-ferrous metals or alloys; making metal malleable, e.g. by decarburisation or tempering: 1/42, 11/00, 9/60
  • Y02P Climate change mitigation technologies in the production or processing of goods: 10/25, 10/253
(73) Assignee
Ajax Tocco Magnethermic Corp
(72) Inventors
Ronald R. Akers
(54) Title
Transverse flux strip heating with DC edge saturation
(57) Abstract

Induction heating apparatus and methods are disclosed for selective workpiece heating such as strip heating, in which DC windings around one or more laminations proximate to a workpiece edge are selectively energized using DC electrical power for controlled partial or full saturation of the one laminations to control edge overheating in a transverse flux induction heating system, in which certain implementations further employ a copper shield between the induction heating coil and the strip workpiece proximate the edge of the workpiece to control the edge heating effect.

Full text
View on Google Patents

Claims (16)

  1. An induction heating apparatus for induction heating at least a portion of a select portion of a strip workpiece traveling along a process direction relative to the induction heating apparatus, the workpiece having opposite first and second workpiece sides and first and second workpiece edges, the induction heating apparatus comprising: a first coil structure spaced from and facing the first workpiece side and extending between the first and second workpiece edges; an AC supply operatively coupled with the first coil structure to provide AC current to energize the first coil structure for heating at least a portion of the first workpiece side; a plurality of laminations at least partially surrounding a first portion of the first coil structure leaving an unobstructed second portion of the first coil structure facing the first workpiece side, the individual laminations including laminated structures extending along the process direction, the individual laminations parallel to and spaced from an adjacent lamination along a cross-process direction between the first and second workpiece edges; windings extending around at least portions of a first set of the plurality of laminations; and a DC supply coupled with the windings and operative to selectively provide DC current to individual windings to at least partially saturate a magnetic field associated with individual ones of the corresponding laminations of the first set; and a controller operatively coupled with the DC supply to control individual DC excitation of the individual windings for selectively saturating the individual ones of the corresponding laminations of the first set to control induction heating of the first and second workpiece edges.
  2. The induction heating apparatus of claim 1, comprising: a flux shield spaced from and disposed between the first coil structure and the first workpiece side facing at least one of the first and second workpiece edges.
  3. The induction heating apparatus of claim 2, wherein the flux shield faces at least one of the first set of the plurality of laminations.
  4. The induction heating apparatus of claim 1, comprising at least one sensor located proximate at least one of the first and second workpiece edges and operative to sense heating of the workpiece.
  5. The induction heating apparatus of claim 4, wherein the at least one sensor provides a signal to the controller, and wherein the controller regulates a heating condition of the workpiece by selectively adjusting the individual DC excitation of the individual windings at least partially according to the signal from the at least one sensor.
  6. The induction heating apparatus of claim 1, wherein the first set of the plurality of laminations includes at least two laminations facing the first workpiece edge and at least two laminations facing the second workpiece edge.
  7. The induction heating apparatus of claim 1, wherein the first coil structure forms a single turn facing the first workpiece side, the first coil structure comprising: a first straight portion facing the first workpiece side and extending between the first and second workpiece edges; a turn portion connected to the first straight portion; and a second straight portion connected to the turn portion, the second straight portion facing the first workpiece side and extending between the first and second workpiece edges.
  8. The induction heating apparatus of claim 1, wherein the first coil structure and the plurality of laminations are integrated.
  9. The induction heating apparatus of claim 1, wherein the first coil structure comprises a hollow copper tubing, the system further comprising a coolant supply operatively coupled to circulate a coolant fluid through the first coil structure.
  10. An induction heating apparatus for induction heating at least a portion of a select portion of a strip workpiece traveling along a process direction relative to the induction heating apparatus, the workpiece having opposite first and second workpiece sides and first and second workpiece edges, the induction heating apparatus comprising: a first coil structure spaced from and facing the first workpiece side and extending between the first and second workpiece edges; a second coil structure positioned spaced from and facing the the second workpiece side and extending between the first and second workpiece edges; an AC supply operatively coupled with the first coil structure to provide AC current to energize the first coil structure for heating at least a portion of the first workpiece side; a plurality of laminations at least partially surrounding a first portion of the first coil structure leaving an unobstructed second portion of the first coil structure facing the first workpiece side, the individual laminations including laminated structures extending along the process direction, the individual laminations parallel to and spaced from an adjacent lamination along a cross-process direction between the first and second workpiece edges; windings extending around at least portions of a first set of the plurality of laminations; a second plurality of laminations at least partially surrounding a first portion of the second coil structure leaving an unobstructed second portion of the second coil structure facing the second workpiece side; second windings extending around at least a portion of a first set of the second plurality of laminations; a DC supply coupled with the windings and operative to selectively provide DC current to individual windings to at least partially saturate a magnetic field a magnetic field associated with individual ones of the corresponding laminations of the first set; and a controller operatively coupled with the DC supply to control individual DC excitation of the individual windings for selectively saturating the individual ones of the corresponding laminations of the first set to control induction heating of the first and second workpiece edges; wherein the AC supply is operatively coupled with the second coil structure to provide AC current to energize the second coil structure for heating at least a portion of the second workpiece side; wherein the DC supply is coupled with the second windings and operative to selectively provide DC current to individual second windings to at least partially saturate a magnetic field associated with individual ones of the first set of the second plurality of laminations; and wherein the controller is operative to control individual DC excitation of the individual second windings for selectively saturating the individual ones of the first set of the second plurality of laminations to control induction heating of the first and second workpiece edges.
  11. The induction heating apparatus of claim 10, wherein the first and second coil structures each form a single turn comprising: a first straight portion extending between the first and second workpiece edges; a turn portion connected to the first straight portion; and a second straight portion connected to the turn portion, the second straight portion extending between the first and second workpiece edges.
  12. The induction heating apparatus of claim 11, wherein the first sets of laminations each include at least two laminations facing the first workpiece edge and at least two laminations facing the second workpiece edge.
  13. The induction heating apparatus of claim 10, comprising: a first flux shield spaced from and disposed between the first coil structure and the first workpiece side facing at least one of the first and second workpiece edges; and a second flux shield spaced from and disposed between the second coil structure and the second workpiece side facing at least one of the first and second workpiece edges.
  14. The induction heating apparatus of claim 13, wherein the first and second flux shields face at least one of the first sets of the first and second pluralities of laminations.
  15. The induction heating apparatus of claim 10, wherein the first sets of laminations each include at least two laminations facing the first workpiece edge and at least two laminations facing the second workpiece edge.
  16. The induction heating apparatus of claim 10, comprising at least one flux shield spaced from and disposed between one of the first and second coil structures and the workpiece.

Description

The present disclosure relates generally to the induction heating workpieces and more particularly to transverse flux induction heating apparatus with field cancellation for induction heating strip work pieces.

Induction heaters are often required to heat a defined bandwidth on a plate of varying thicknesses for bending the plate. In general, the heating of a strip or plate can be for annealing purposes, such as transformer steels, paint curing, tin reflow, bonding zinc and sink/aluminum alloys to the strip for control of corrosion in a galvannealing process such as for automotive body panels, etc. In the past, a solenoid type induction coil was formed around the plate in close proximity to the portion of the plate to be heated. However, solenoid type induction heating of plate workpieces suffers from several drawbacks. In particular, for thin plate workpieces, high induction frequencies are required to effectively couple to the plate. High frequency operation, however, may lead to overheating of edge portions and/or the surface of the plate workpiece before the core of the plate can get to temperature. Alternatively, transverse coil arrangements have been contemplated, in which the induction heating coil does not encircle the workpiece. These approaches have thusfar also suffered from edge overheating, and accordingly have not been widely adopted. Thus, there remains a continuing need for improved induction heating techniques for heating select portions of plate or strip type workpieces.

Citations (17)

  • US2836694A
  • US4054770A
  • US4678883A
  • US5844213A
  • US5403994A
  • WO1996026296A1
  • US6498328B2
  • US20020121512A1
  • US6570141B2
  • US6677561B1
  • US6963056B1
  • US20060255029A1
  • US20070235446A1
  • US20090255924A1
  • US20110036831A1
  • US20110259876A1
  • WO2014088423A1
Record as JSON
{
  "publication_number": "US9462641B2",
  "country": "US",
  "kind": "B2",
  "title": "Transverse flux strip heating with DC edge saturation",
  "abstract": "Induction heating apparatus and methods are disclosed for selective workpiece heating such as strip heating, in which DC windings around one or more laminations proximate to a workpiece edge are selectively energized using DC electrical power for controlled partial or full saturation of the one laminations to control edge overheating in a transverse flux induction heating system, in which certain implementations further employ a copper shield between the induction heating coil and the strip workpiece proximate the edge of the workpiece to control the edge heating effect.",
  "claims": [
    "1. An induction heating apparatus for induction heating at least a portion of a select portion of a strip workpiece traveling along a process direction relative to the induction heating apparatus, the workpiece having opposite first and second workpiece sides and first and second workpiece edges, the induction heating apparatus comprising: a first coil structure spaced from and facing the first workpiece side and extending between the first and second workpiece edges; an AC supply operatively coupled with the first coil structure to provide AC current to energize the first coil structure for heating at least a portion of the first workpiece side; a plurality of laminations at least partially surrounding a first portion of the first coil structure leaving an unobstructed second portion of the first coil structure facing the first workpiece side, the individual laminations including laminated structures extending along the process direction, the individual laminations parallel to and spaced from an adjacent lamination along a cross-process direction between the first and second workpiece edges; windings extending around at least portions of a first set of the plurality of laminations; and a DC supply coupled with the windings and operative to selectively provide DC current to individual windings to at least partially saturate a magnetic field associated with individual ones of the corresponding laminations of the first set; and a controller operatively coupled with the DC supply to control individual DC excitation of the individual windings for selectively saturating the individual ones of the corresponding laminations of the first set to control induction heating of the first and second workpiece edges.",
    "2. The induction heating apparatus of claim 1, comprising: a flux shield spaced from and disposed between the first coil structure and the first workpiece side facing at least one of the first and second workpiece edges.",
    "3. The induction heating apparatus of claim 2, wherein the flux shield faces at least one of the first set of the plurality of laminations.",
    "4. The induction heating apparatus of claim 1, comprising at least one sensor located proximate at least one of the first and second workpiece edges and operative to sense heating of the workpiece.",
    "5. The induction heating apparatus of claim 4, wherein the at least one sensor provides a signal to the controller, and wherein the controller regulates a heating condition of the workpiece by selectively adjusting the individual DC excitation of the individual windings at least partially according to the signal from the at least one sensor.",
    "6. The induction heating apparatus of claim 1, wherein the first set of the plurality of laminations includes at least two laminations facing the first workpiece edge and at least two laminations facing the second workpiece edge.",
    "7. The induction heating apparatus of claim 1, wherein the first coil structure forms a single turn facing the first workpiece side, the first coil structure comprising: a first straight portion facing the first workpiece side and extending between the first and second workpiece edges; a turn portion connected to the first straight portion; and a second straight portion connected to the turn portion, the second straight portion facing the first workpiece side and extending between the first and second workpiece edges.",
    "8. The induction heating apparatus of claim 1, wherein the first coil structure and the plurality of laminations are integrated.",
    "9. The induction heating apparatus of claim 1, wherein the first coil structure comprises a hollow copper tubing, the system further comprising a coolant supply operatively coupled to circulate a coolant fluid through the first coil structure.",
    "10. An induction heating apparatus for induction heating at least a portion of a select portion of a strip workpiece traveling along a process direction relative to the induction heating apparatus, the workpiece having opposite first and second workpiece sides and first and second workpiece edges, the induction heating apparatus comprising: a first coil structure spaced from and facing the first workpiece side and extending between the first and second workpiece edges; a second coil structure positioned spaced from and facing the the second workpiece side and extending between the first and second workpiece edges; an AC supply operatively coupled with the first coil structure to provide AC current to energize the first coil structure for heating at least a portion of the first workpiece side; a plurality of laminations at least partially surrounding a first portion of the first coil structure leaving an unobstructed second portion of the first coil structure facing the first workpiece side, the individual laminations including laminated structures extending along the process direction, the individual laminations parallel to and spaced from an adjacent lamination along a cross-process direction between the first and second workpiece edges; windings extending around at least portions of a first set of the plurality of laminations; a second plurality of laminations at least partially surrounding a first portion of the second coil structure leaving an unobstructed second portion of the second coil structure facing the second workpiece side; second windings extending around at least a portion of a first set of the second plurality of laminations; a DC supply coupled with the windings and operative to selectively provide DC current to individual windings to at least partially saturate a magnetic field a magnetic field associated with individual ones of the corresponding laminations of the first set; and a controller operatively coupled with the DC supply to control individual DC excitation of the individual windings for selectively saturating the individual ones of the corresponding laminations of the first set to control induction heating of the first and second workpiece edges; wherein the AC supply is operatively coupled with the second coil structure to provide AC current to energize the second coil structure for heating at least a portion of the second workpiece side; wherein the DC supply is coupled with the second windings and operative to selectively provide DC current to individual second windings to at least partially saturate a magnetic field associated with individual ones of the first set of the second plurality of laminations; and wherein the controller is operative to control individual DC excitation of the individual second windings for selectively saturating the individual ones of the first set of the second plurality of laminations to control induction heating of the first and second workpiece edges.",
    "11. The induction heating apparatus of claim 10, wherein the first and second coil structures each form a single turn comprising: a first straight portion extending between the first and second workpiece edges; a turn portion connected to the first straight portion; and a second straight portion connected to the turn portion, the second straight portion extending between the first and second workpiece edges.",
    "12. The induction heating apparatus of claim 11, wherein the first sets of laminations each include at least two laminations facing the first workpiece edge and at least two laminations facing the second workpiece edge.",
    "13. The induction heating apparatus of claim 10, comprising: a first flux shield spaced from and disposed between the first coil structure and the first workpiece side facing at least one of the first and second workpiece edges; and a second flux shield spaced from and disposed between the second coil structure and the second workpiece side facing at least one of the first and second workpiece edges.",
    "14. The induction heating apparatus of claim 13, wherein the first and second flux shields face at least one of the first sets of the first and second pluralities of laminations.",
    "15. The induction heating apparatus of claim 10, wherein the first sets of laminations each include at least two laminations facing the first workpiece edge and at least two laminations facing the second workpiece edge.",
    "16. The induction heating apparatus of claim 10, comprising at least one flux shield spaced from and disposed between one of the first and second coil structures and the workpiece."
  ],
  "description_excerpt": "The present disclosure relates generally to the induction heating workpieces and more particularly to transverse flux induction heating apparatus with field cancellation for induction heating strip work pieces.\n\nInduction heaters are often required to heat a defined bandwidth on a plate of varying thicknesses for bending the plate. In general, the heating of a strip or plate can be for annealing purposes, such as transformer steels, paint curing, tin reflow, bonding zinc and sink/aluminum alloys to the strip for control of corrosion in a galvannealing process such as for automotive body panels, etc. In the past, a solenoid type induction coil was formed around the plate in close proximity to the portion of the plate to be heated. However, solenoid type induction heating of plate workpieces suffers from several drawbacks. In particular, for thin plate workpieces, high induction frequencies are required to effectively couple to the plate. High frequency operation, however, may lead to overheating of edge portions and/or the surface of the plate workpiece before the core of the plate can get to temperature. Alternatively, transverse coil arrangements have been contemplated, in which the induction heating coil does not encircle the workpiece. These approaches have thusfar also suffered from edge overheating, and accordingly have not been widely adopted. Thus, there remains a continuing need for improved induction heating techniques for heating select portions of plate or strip type workpieces.",
  "cpc": [
    "H05B 6/36",
    "C21D 1/42",
    "C21D 11/00",
    "C21D 9/60",
    "H05B 6/06",
    "H05B 6/101",
    "Y02P 10/25",
    "Y02P 10/253"
  ],
  "ipc": [
    "H05B 6/06",
    "H05B 6/10",
    "H05B 6/36",
    "C21D 1/42",
    "C21D 11/00",
    "C21D 9/60"
  ],
  "assignees": [
    "Ajax Tocco Magnethermic Corp"
  ],
  "inventors": [
    "Ronald R. Akers"
  ],
  "filing_date": "2015-04-08",
  "publication_date": "2016-10-04",
  "grant_date": "2016-10-04",
  "priority_date": "2013-12-20",
  "application_number": "US-201514681487-A",
  "family_id": "53403481",
  "cited_by_count": 14,
  "citations": [
    "US2836694A",
    "US4054770A",
    "US4678883A",
    "US5844213A",
    "US5403994A",
    "WO1996026296A1",
    "US6498328B2",
    "US20020121512A1",
    "US6570141B2",
    "US6677561B1",
    "US6963056B1",
    "US20060255029A1",
    "US20070235446A1",
    "US20090255924A1",
    "US20110036831A1",
    "US20110259876A1",
    "WO2014088423A1"
  ]
}

Record 4,541 of 8,000 in Patents full text (MLC-0201). Request the full dataset.