Claims
- 1. An apparatus for inductively heating and then quench hardening the surfaces of axially spaced cams on a steel camshaft having a longitudinally extending rotational axis concentric with a plurality of axially spaced bearings with surfaces concentric to said rotational axis, said cams having lobes with differing circumferential locations, said apparatus comprising: means for rotatably mounting said camshaft to rotate about a work axis coinciding with said rotational axis; an induction heating coil having an inner surface surrounding said work axis with an insulation gap and integral quenching openings for directing liquid inwardly from said heating coil toward said work axis; a high frequency power supply means for selectively energizing said heating coil with a power density within said heating coil of over about 20 KW/in.sup.2 ; an auxiliary cooling assembly fixed with respect to said heating coil at an axially spaced position near said heating coil and including means for spraying a cooling liquid toward said work axis; first drive means for causing relative axial movement of said camshaft and said heating coil to position a cam in said heating coil during a hardening cycle, including an induction heating portion and quench hardening portion: second drive means for rotating said camshaft about said work axis; means for controlling said second drive means for selective rotating said camshaft to an indexed position with said cam in said coil having a preselected fixed circumferential orientation during at least said heating portion of said hardening cycle; means for selectively operating said power supply means during said heating portion of said cam hardening cycle; means for selectively operating said cooling assembly during at least said heating portion of said hardening cycle for a cam in said heating coil; control means for repeatedly operating said first drive means, said second drive means, power supply operating means, said cooling assembly operating means for axially indexing a further cam into said fixed orientation within said heating coil for hardening during a hardening cycle while a previously, axially adJacent, hardened cam is cooled in said cooling assembly; and means for preventing splashing of cooling liquid onto said cam in said heating coil during said heating portion of said hardening cycle.
- 2. An apparatus as defined in claim 1 where said index position is with the lobe of said cam in said coil is adjacent said insulating gap.
- 3. An apparatus as defined in claim 2 wherein said splash preventing means includes a shield and means for selectively moving said shield between said heating coil and said cooling assembly at least during said heating portion of said hardening cycle.
- 4. An apparatus as defined in claim 3 including an eddy current detecting means for detecting the hardened quality of said cams after said cams have been sequentially hardened, said eddy current detecting means comprising an eddy current coil concentric with said work axis, means for progressively moving said eddy current coil along said cam shaft, means for energizing said eddy current coil at least at each of said axially spaced cams; means for reading the eddy current responses of said energized eddy current coil at each of said hardened cams; means for comparing said eddy current response with a preselected map of acceptable responses; and means for rejecting a camshaft when said eddy current responses deviate from said preselected map of acceptable responses.
- 5. An apparatus as defined in claim 3 wherein said heating coil has an element of high permeability material diametrically opposite to said insulating gap whereby the portion of the surface of said cam opposite to the lobe of said cam has enhanced heating during said heating portion of said hardening cycle.
- 6. An apparatus as defined in claim 3 wherein said axis is vertical and said cooling assembly is axially below said heating coil.
- 7. An apparatus as defined in claim 3 including a second heating coil and cooling assembly concentric with a second work axis parallel to said first mentioned work axis and means for mounting a second of said camshafts on said second work axis and means for sequentially hardening the cams of said second camshaft in unison with cams of said first mentioned camshaft.
- 8. An apparatus as defined in claim 2 including an eddy current detecting means for detecting the hardened quality of said cams after said cams have been sequentially hardened, said eddy current detecting means comprising an eddy current coil concentric with said work axis, means for progressively moving said eddy current coil along said cam shaft, means for energizing said eddy current coil at least at each of said axially spaced cams; means for reading the eddy current responses of said energized eddy current coil at each of said hardened cams; means for comparing said eddy current response with a preselected map of acceptable responses; and means for rejecting a camshaft when said eddy current responses deviate from said preselected map of acceptable responses.
- 9. An apparatus as defined in claim 8 wherein said heating coil has an element of high permeability material diametrically opposite to said insulating gap whereby the portion of the surface of said cam opposite to the lobe of said cam has enhanced heating during said heating portion of said hardening cycle.
- 10. An apparatus as defined in claim 2 further including orientating means for rotating said camshaft before the first of said hardening cycles while a position sensor means is adjacent a selected one of said cams, said sensor means having an output indicative of the radial dimension of the surface of said selected one of cams; detector means for determining the circumferential location of the lobe of said selected one of said cams; and, means for controlling said control means by said determined lobe location.
- 11. An apparatus as defined in claim 10 wherein said heating coil has an element of high permeability material diametrically opposite to said insulating gap whereby the portion of the surface of said cam opposite to the lobe of said cam has enhanced heating during said heating portion of said hardening cycle.
- 12. An apparatus as defined in claim 2 wherein said heating coil has an element of high permeability material diametrically opposite to said insulating gap whereby the portion of the surface of said cam opposite to the lobe of said cam has enhanced heating during said heating portion of said hardening cycle.
- 13. An apparatus as defined in claim 12 wherein said axis is vertical and said cooling assembly is axially below said heating coil.
- 14. An apparatus as defined in claim 12 including a second heating coil and cooling assembly concentric with a second work axis parallel to said first mentioned work axis and means for mounting a second of said camshafts on said second work axis and means for sequentially hardening the cams of said second camshaft in unison with cams of said first mentioned camshaft.
- 15. An apparatus as defined in claim 2 wherein said axis is vertical and said cooling assembly is axially below said heating coil.
- 16. An apparatus as defined in claim 2 including a second heating coil and cooling assembly concentric with a second work axis parallel to said first mentioned work axis and means for mounting a second of said camshafts on said second work axis and means for sequentially hardening the cams of said second camshaft in unison with cams of said first mentioned camshaft.
- 17. An apparatus as defined in claim 2 wherein said camshaft has a gear concentric with said axis and including means for axially moving said camshaft until said gear is within said heating coil and means for then rotating said camshaft while said gear is in said heating coil and means for actuating said selectively operating means for said power supply as said gear rotates in said heating coil.
- 18. An apparatus as defined in claim 1 wherein said splash preventing means includes a shield and means for selectively moving said shield between said heating coil and said cooling assembly at least during said heating portion of said hardening cycle.
- 19. An apparatus as defined in claim 18 including an eddy current detecting means for detecting the hardened quality of said cams after said cams have been sequentially hardened, said eddy current detecting means comprising an eddy current coil concentric with said work axis, means for progressively moving said eddy current coil along said cam shaft, means for energizing said eddy current coil at least at each of said axially spaced cams; means for reading the eddy current responses of said energized eddy current coil at each of said hardened cams; means for comparing said eddy current response with a preselected map of acceptable responses; and means for rejecting a camshaft when said eddy current responses deviate from said preselected map of acceptable responses.
- 20. An apparatus as defined in claim 18 further including orientating means for rotating said camshaft before the first of said hardening cycles while a position sensor means is adjacent a selected one of said cams, said sensor means having an output indicative of the radial dimension of the surface of said selected one of cams; detector means for determining the circumferential location of the lobe of said selected one of said cams; and, means for controlling said control means by said determined lobe location.
- 21. An apparatus as defined in claim 1 including an eddy current detecting means for detecting the hardened quality of said cams after said cams have been sequentially hardened, said eddy current detecting means comprising an eddy current coil concentric with said work axis, means for progressively moving said eddy current coil along said cam shaft, means for energizing said eddy current coil at least at each of said axially spaced cams: means for reading the eddy current responses of said energized eddy current coil at each of said hardened cams: means for comparing said eddy current response with a preselected map of acceptable responses; and means for rejecting a camshaft when said eddy current responses deviate from said preselected map of acceptable responses.
- 22. An apparatus as defined in claim 21 further including orientating means for rotating said camshaft before the first of said hardening cycles while a position sensor means is adjacent a selected one of said cams, said sensor means having an output indicative of the radial dimension of the surface of said selected one of cams; detector means for determining the circumferential location of the lobe of said selected one of said cams; and, means for controlling said control means by said determined lobe location.
- 23. An apparatus as defined in claim 21, wherein said axis is vertical and said cooling assembly is axially below said heating coil.
- 24. An apparatus as defined in claim 1 further including orientating means for rotating said camshaft before the first of said hardening cycles while a position sensor means is adjacent a selected one of said cams, said sensor means having an output indicative of the radial dimension of the surface of said selected one of cams; detector means for determining the circumferential location of the lobe of said selected one of said cams and, means for controlling said control means by said determined lobe location.
- 25. An apparat defined in claim 24 wherein said axis is vertical and said cooling assembly is axially below said heating coil.
- 26. An apparatus as defined in claim 24 including a second heating coil and cooling assembly concentric with a second work axis parallel to said first mentioned work axis and means for mounting a second of said camshafts on said second work axis and means for sequentially hardening the cams of said second camshaft in unison with cams of said first mentioned camshaft.
- 27. An apparatus as defined in claim 24 wherein said camshaft has a gear concentric with said axis and including means for axially moving said camshaft until said gear is within said heating coil and means for then rotating said camshaft while said gear is in said heating coil and means for actuating said selectively operating means for said power supply as said gear rotates in said heating coil.
- 28. An apparatus as defined in claim 1 wherein said axis is vertical and said cooling assembly is axially below said heating coil.
- 29. An apparatus as defined in claim 28 including a second heating coil and cooling assembly concentric with a second work axis parallel to said first mentioned work axis and means for mounting a second of said camshafts on said second work axis and means for sequentially hardening the cams of said second camshaft in unison with cams of said first mentioned camshaft.
- 30. An apparatus as defined in claim 1 including a second heating coil and cooling assembly concentric with a second work axis parallel to said first mentioned work axis and means for mounting a second of said camshafts on said second work axis and means for sequentially hardening the cams of said second camshaft in unison with cams of said first mentioned camshaft.
- 31. An apparatus as defined in claim 1 wherein said camshaft has a gear concentric with said axis and including means for axially moving said camshaft until said gear is within said heating coil and means for then rotating said camshaft while said gear is in said heating coil and means for actuating said selectively operating means for said power supply as said gear rotates in said heating coil.
- 32. An apparatus as defined in claim 1 wherein said camshaft as an axially facing end surface with a center countersink on said rotational axis and an axially space locating hose wherein said second drive means includes a motor driven head having a center engaging said countersink and a radially outwardly spaced shaft drivepin engageable with said end surface and adapted to drop into said hose while said center engage said countersink and means for applying resistive torque to said shaft as said driven head rotates at least until said drivepin drops into said locating hose.
- 33. An apparatus as defined in claim 32 wherein said torque applying means include a rotatable head for supporting said shaft at an end opposite to said end surface and means for applying a resistive force against rotation of said rotatable head.
- 34. An apparatus as defined in claim 32 wherein said torque applying means includes a drag brake and means for selectively moving said brack radially against said camshaft.
- 35. An apparatus for inductively heating and then quench hardening axially spaced cams on a steel camshaft having a longitudinally extending rotational axis concentric with a plurality of axially spaced bearings with surfaces concentric to said rotational axis, said apparatus comprising: means for rotatably mounting said camshaft to rotate about a work axis coinciding with said rotational axis; an induction heating coil having an inner surface surrounds said work axis with an insulation gap and integral quenching openings for directing liquid inwardly from said heating coil toward said work axis; a high frequency power supply means for selectively energizing said heating coil with a power density within said heating coil of over about 20 KW/in.sup.2 ; an axially cooling assembly fixed with respect to said coil at an axially spaced position near said heating coil and including means for spraying a cooling liquid toward said work axis; first drive means for causing relative axial movement of said camshaft and said heating coil to position a cam in said heating coil during a hardening cycle, including an induction heating portion and quench hardening position; second drive means for rotating said camshaft about said work axis; means for controlling said second drive means for selective rotating said camshaft to an indexed position with said cam in said coil having a preselected fixed circumferential orientation during at least said heating portion of said hardening cycle; means for selectively operating said power supply means during said heating portion of said cam hardening cycle; means for selectively operating said cooling assembly during said at least said heating portion of said hardening cycle for a cam in said heating coil; control means for repeatedly operating said first drive means, said second drive means, power supply operating means, said cooling assembly operating means for axially indexing a further cam into said fixed orientation within said heating coil for hardening during a hardening cycle while a previously, axially adjacent, hardened cam is cooled in said cooling assembly; and, said indexed position is with the lobe of said cam in said coil being adjacent said insulating gap
- 36. An apparatus as defined in claim 35 including a shield and means for selectively moving said shield between said heating coil and said cooling assembly at least during said heating portion of said hardening cycle.
- 37. An apparatus as defined in claim 36 including an eddy current detecting means for detecting the hardened quality of said cams after said cams have been sequentially hardened, said eddy current detecting means comprising an eddy current coil concentric with said work axis, means for progressively moving said eddy current coil along said camshaft, means for energizing said eddy current coil at least at each of said axially spaced cams; means for reading the eddy current responses of said energized eddy current coil at each of said hardened cams; means for comparing said eddy current response with a preselected map of acceptable responses; and means for rejecting a camshaft when said eddy current responses deviate from said preselected map of acceptable responses.
- 38. An apparatus as defined in claim 35 further including orientating means for rotating said camshaft before the first of said hardening cycles while a position sensor means is adjacent a selected one of said cams, said sensor means having an output indicative of the radial dimension of the surface of said selected one of cams: detector means for determining the circumferential location of the lobe of said selected one of said cams; and, means for controlling said control means by said determined lobe location.
- 39. An apparatus as defined in claim 35 wherein said heating coil has an element of high permeability material diametrically opposite to said insulating gap whereby the portion of the surface of said cam opposite to the lobe of said cam has enhanced heating during said heating portion of said hardening cycle.
- 40. An apparatus as defined in claim 35 wherein said axis is vertical and said cooling assembly is axially below said heating coil.
- 41. An apparatus as defined in claim 35 including a second heating coil and cooling assembly concentric with a second work axis parallel to said first mentioned work axis and means for mounting a second of said camshaft on said second work axis and means for sequentially hardening the cams of said second camshaft in unison with cams of said first mentioned camshaft.
- 42. An apparatus for inductively heating and then quench hardening axially spaced cams on a steel camshaft having a longitudinally extending rotational axis concentric with a plurality of axially spaced bearings with surfaces concentric to said rotational axis, said apparatus comprising: means for rotatably mounting said camshaft to rotate about a work axis coinciding with said rotational axis; an induction heating coil having an inner surface surrounding said work axis with an insulation gap and integral quenching openings for directing liquid inwardly from said heating coil toward said work axis; a high frequency power supply means for selectivity energizing said heating coil with a power density within said heating coil of over about 20 KW/in.sup.2 ; an auxiliary cooling assembly fixed with respect to said heating coil at an auxiliary spaced position near said heating coil and including means for spraying a cooling liquid toward said work axis, first drive means for causing relative axial movement of said camshaft and said heating coil to position a cam in said heating coil during a hardening cycle, including an induction heating portion and quench hardening portion; second drive means for rotating said camshaft about said work axis; means for controlling said second drive means for selective rotating said camshaft to an indexed position with said cam in said coil having a preselected fixed circumferential orientation during at least said heating portion of said hardening cycle; means for selectively operating said power supply means during said heating portion of said cam hardening cycle; means for selectively operating said cooling assembly during at least said heating portion of said hardening cycle for a cam in said heatiang coil; control means for repeatedly operating said first drive means, said second drive means, power supply operating means, said cooling assembly operating means for axially indexing a further cam into said fixed orientation within said heating coil for hardening during a hardening cycle while a previously, axially adjacent, hardened cam is cooled in said cooling assembly; and, eddy current detecting means for detecting the hardened quality of said cams after said cams have been sequentially hardened, said eddy current detecting means comprising an eddy current coil concentric with said work axis, means for progressively moving said eddy current coil along said camshaft, means for energizing said eddy current coil at least at each of said axially spaced cams; means for detecting the eddy current induced by said energized eddy current coil in each of said hardened cams; means for comparing the values of said detected eddy currents with a preselected map of acceptable values; and means for rejecting a camshaft when said eddy currents deviate from said preselected map of acceptable values.
- 43. An apparatus as defined in claim 42 wberein said axis is vertical and said cooling assembly is axially below said heating coil.
- 44. A method of inductively heating and then quench hardening the surface of axially spaced cams on a steel camshaft having a longitudinally extending rotational axis concentric with a plurality of axially spaced bearings with surfaces concentric to said rotational axis, said cams having lobes with differing circumferential locations, said method comprising the steps of:
- (a) providing an induction heating coil having an inner surface surrounding said work axis with an insulation gap and integral quenching openings for directing liquid inwardly from said heating coil toward said work axis;
- (b) providing a high frequency power supply means for selectively energizing said heating coil with a power density within said heating coil of over about 20 KW/in.sup.2 ;
- (c) providing an auxiliary cooling assembly fixed with respect to said heating coil at an axially spaced position near said heating coil and including means for spraying a cooling liquid toward said work axis;
- (d) causing relative axial movement of said camshaft and said heating coil to position a cam in said heating coil during a hardening cycle including an induction heating portion and quench hardening portion;
- (e) rotating said camshaft about said work axis;
- (f) selective rotating said camshaft to an indexed position with said cam in said coil having a preselected fixed circumferential orientation during at least said heating portion of said hardening cycle;
- (g) selectively operating said power supply means during said heating portion of said cam hardening cycle;
- (h) selectively operating said cooling assembly during said at least said heating portion of said hardening cycle for a cam in said heating coil;
- (i) sequentially indexing further cams into said fixed orientation within said heating coil for hardening during a hardening cycle while a previously, axially adjacent, hardened cam is cooled in said cooling assembly; and,
- (j) detecting the hardened quality of said cams after said cams have been sequentially scanned by an eddy current coil concentric with said work.
- 45. A method as defined in claim 44 wherein said eddy current detecting step includes:
- (k) progressively moving said eddy current coil along said camshaft;
- (l) energizing said eddy current coil at least at each of said axially spaced cams;
- (m) reading the eddy current responses of said energized eddy current coil at each of said hardened cams;
- (n) comparing said eddy current response with a preselected map of acceptable responses;
- (o) rejecting a camshaft when said eddy current responses deviate from said preselected map of acceptable responses.
- 46. A method of inductively heating and then quench hardening the surface of axially spaced cams on a steel camshaft having a longitudinally extending rotational axis concentric with a plurality of axially spaced bearings with surfaces concentric to said rotational axis said cams having lobes with differing circumferential locations said method comprising the following steps:
- (a) providing an induction heating coil having an inner surface surrounding said work axis with an insulation gap and integral quenching openings for directing liquid inwardly from said heating coil toward said work axis;
- (b) providing a high frequency power supply means for selectively energizing said heating coil with a power density within said heating coil of over about 20 KW/in.sup.2 ;
- (c) providing an auxiliary cooling assembly fixed with respect to said heating coil at an axially spaced position near said heating coil and including means for spraying a cooling liquid toward said work axis;
- (d) causing relative axial movement of said camshaft and said heating coil to position a cam in said heating coil during a hardening cycle including an induction heating portion and quench hardening portion;
- (e) rotating said camshaft about said work axis;
- (f) means for selective rotating said indexed position with said cam in said coil having a preselected fixed circumferential orientation during at least said heating portion of said hardening cycle;
- (g) selectively operating said power supply means during said heating portion of said cam hardening cycle;
- (h) selectively operating said cooling assembly during said at least said heating portion of said hardening cycle for a cam in said heating coil;
- (i) indexing a further cam into said fixed orientation within said heating coil for hardening during a hardening cycle while a previously, axially adjacent, hardened cam is cooled in said cooling assembly; and, controlling the sequencing of said method steps in accordance with the sensed position of the lobe on a selected one of said axially spaced cams.
- 47. A method as defined in claim 46 wherein said indexed position is with the lobe of a cam being heated by said heating coil is against said gap in said heating coil.
- 48. An apparatus for inductively heating and then quench hardening the surfaces of axially spaced cams on a steel canshaft having a longitudinal axis, said apparatus comprising: an induction heating coil with a central opening and means for directing a quenching liquid from said coil inwardly in said opening; a power supply having an output frequency of 10 KHz to about 25 KHz and an output power to create a power density of at least 20 KW/in.sup.2 within said coil opening; means for moving said cam into said opening; means for energizing said coil with said power supply for a heating cycle of between 0.30 seconds and 1.5 seconds; means for actuating said quenching means immediately after said heating cycle for a quenching cycle; means for liquid cooling of portions of said camshaft adjacent said heating coil; and means for preventing said quenching liquid from flowing freely from said opening during said quenching cycle whereby said quenching liquid is directed toward substantially the full area of said surfaces.
- 49. An apparatus as defined in claim 48 wherein said camshaft is rotated during said heating cycle.
- 50. An apparatus as defined in claim 48 wherein said camshaft is stationary during said heating cycle and means for rotary indexing said cam being heated to a selected rotational position in said coil opening during said heating cycle.
- 51. An apparatus as defined in claim 48 wherein said means for preventing includes movable plate means for preventing cooling liquid from splashing said cam during said heating cycle.
- 52. An apparatus for inductively heating and then quench hardening the surfaces of axially spaced cams on a steel camshaft having a longitudinal axis, said apparatus comprising: an induction heating coil with a central opening and quenching means for directing a quenching liquid from said coil inwardly in said opening; a power supply having an output frequency of 10 KHz to about 25 KHz and an output power to create a power density of at least 20 KW/in.sup.2 within said coil opening; means for moving said cam into said opening; means for energizing said coil with said power supply for a heating cycle of between 0.30 seconds and 1.5 seconds; means for actuating said quenching means immediately after said heating cycle for a quenching cycle; and means for liquid cooling of portions of said camshaft adjacent said heating coil; said quenching means including a plurality of openings in the range of 0.60-0.90 inches in diameter and means for forcing quenching liquid through said openings at a pressure of about 15-20 psi whereby a relatively low velocity stream of said liquid is directed from said coil.
- 53. An apparatus as defined in claim 52 wherein said camshaft is rotated during said heating cycle.
- 54. An apparatus as defined in claim 53 wherein said camshaft is stationary during said heating cycle and means for rotary indexing said cam belng heated to a selected rotational position in said coil opening during said heating cycle.
Parent Case Info
This application is a continuation-in-part application of prior application Ser. No. 736,214, filed May 20, 1985, now U.S. Pat. No. 4,604,510. This prior application is incorporated by reference herein.
US Referenced Citations (7)
Non-Patent Literature Citations (1)
Entry |
Lengyel, "Post Grind Hardening", SAE Technical Paper, Series No. 860231, Feb. 1986. |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
736214 |
May 1985 |
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