Claims
- 1. A lamination cooling system comprising a lamination stack including a plurality of laminations, each lamination defining an aperture, wherein the aperture of each lamination is at least partially coincident with the apertures of adjacent laminations such that the apertures define a cooling-fluid passageway through the lamination stack, and wherein gaps between the adjacent laminations are sealed to prevent a liquid cooling fluid in the passageway from exiting the lamination stack between adjacent laminations.
- 2. The lamination cooling system of claim 1, wherein gaps between the adjacent laminations are sealed to prevent a liquid cooling fluid from exiting the passageway between the adjacent laminations.
- 3. The lamination cooling system of claim 1, wherein the gaps between the adjacent laminations are sealed with a sealant applied internally to walls of the passageways.
- 4. The lamination cooling system of claim 3, wherein the sealant is a heat-cured sealant.
- 5. The lamination cooling system of claim 3, wherein the sealant is a heat-cured, low-viscosity epoxy.
- 6. The lamination cooling system of claim 1, wherein the laminations are planar, and wherein the aperture of each lamination is completely coincident with the apertures of adjacent laminations such that the passageway is straight, extending in a direction normal to the plane of the laminations.
- 7. The lamination cooling system of claim 1, wherein the laminations are planar, and wherein the apertures of some adjacent laminations are only partially coincident such that the passageway extends in one or more directions that are not normal to the plane of the laminations.
- 8. The lamination cooling system of claim 7, wherein lamination apertures are configured such that the passageway includes:
a first portion normal to the plane of the laminations; a second portion normal to the plane of the laminations, the second portion being offset from the first portion; and a third portion that is not normal to the plane of the laminations, the third portion placing the first portion and the second portion in fluid communication.
- 9. The lamination cooling system of claim 1, wherein:
the plurality of laminations includes mutually exclusive first and second groups of laminations, the first group of laminations adjoining the second group of laminations; each lamination of the second group of laminations further defines a second aperture; within the second group of laminations, the second aperture of each lamination is at least partially coincident with the second apertures of adjacent laminations such that the second apertures define a second cooling-fluid passageway extending through the second group of laminations; the sealed gaps between the adjacent laminations are sealed to prevent a liquid cooling fluid in the second passageway from exiting the lamination stack between adjacent laminations; a first portion of the first passageway extends through the first group of laminations and a second portion of the first passageway extends through the second group of laminations; and the first portion of the first passageway is in direct fluid communication with the second passageway.
- 10. The lamination cooling system of claim 9, wherein:
the plurality of laminations further includes a third group of laminations that are mutually exclusive from the first and second groups of laminations, the third group of laminations adjoining the second group of laminations; a third portion of the first passageway extends through the third group of laminations; and the third portion of the first passageway is in direct fluid communication with the second passageway.
- 11. The lamination cooling system of claim 1, wherein each lamination defines a second aperture, wherein the second aperture of each lamination is at least partially coincident with the second apertures of adjacent laminations such that the second apertures define a second cooling-fluid passageway through the lamination stack, and wherein gaps between the adjacent laminations are sealed to prevent a liquid cooling fluid in the second passageway from exiting the lamination stack between adjacent laminations.
- 12. The lamination cooling system of claim 11, and further comprising a manifold member adjoining the lamination stack, the manifold member being configured to place a first end of the first passageway and a first end of the second passageway in fluid communication with a first cooling-fluid port.
- 13. The lamination cooling system of claim 12, and further comprising a second manifold member adjoining the lamination stack, the second manifold member being configured to place a second end of the first passageway and a second end of the second passageway in fluid communication with a second cooling-fluid port.
- 14. The lamination cooling system of claim 13, wherein the first and second manifold members are on opposing ends of the stack of laminations, and wherein the laminations are compressed together by the first and second manifold members.
- 15. The lamination cooling system of claim 14, and further comprising at least one rod, the rod carrying a load that compresses the laminations together between the first and second manifold members.
- 16. The lamination cooling system of claim 11, and further comprising a first manifold member adjoining the lamination stack at a first end and a second manifold member adjoining the lamination stack at a second end, wherein:
the first manifold member is configured to place a first end of the first passageway in fluid communication with a first cooling-fluid port on the first manifold member; the first manifold member is configured to place a first end of the second passageway in fluid communication with a second cooling-fluid port on the first manifold member; and the second manifold member is configured to place a second end of the first passageway in fluid communication with a second end of the second passageway.
- 17. The lamination cooling system of claim 1, wherein the lamination stack is configured for bidirectional flow.
- 18. The lamination cooling system of claim 1, and further including cooling fluid, wherein the cooling fluid is a fluid selected from the group of oil, water, and a mixture of water and ethylene glycol.
- 19. An electric motor, comprising the lamination cooling system of claim 1.
- 20. A transformer, comprising the lamination cooling system of claim 1.
- 21. An inductor, comprising the lamination cooling system of claim 1.
- 22. A method of forming a lamination cooling system, comprising:
injecting a sealant between a plurality of laminations in a lamination stack, wherein each lamination defines an aperture, wherein the aperture of each lamination is at least partially coincident with the apertures of adjacent laminations such that the apertures define a cooling-fluid passageway through the lamination stack, and wherein the sealant forms a seal to prevent a liquid cooling fluid in the passageway from exiting the lamination stack between adjacent laminations.
- 23. The method of claim 21, wherein the step of injecting includes:
injecting the sealant into the passageway, the sealant being at a pressure adequate to force the sealant to flow between adjoining laminations; and then ejecting enough sealant from the passageway to configure it as a sealed conduit capable of passing cooling fluid from a first end of the passageway to a second end of the passageway.
- 24. The method of claim 22, and further comprising curing the sealant.
- 25. The method of claim 23, wherein the sealant is a heat-cured, low-viscosity epoxy.
- 26. The method of claim 21, wherein:
each lamination defines a second aperture, the second aperture of each lamination being at least partially coincident with the second apertures of adjacent laminations such that the second apertures define a second cooling-fluid passageway through the lamination stack; and in the step of injecting, the sealant forms a seal to prevent a liquid cooling fluid in the second passageway from exiting the lamination stack between adjacent laminations.
- 27. A method of forming a lamination cooling system, comprising:
forming a lamination stack from a plurality of laminations, wherein each lamination defines an aperture, and wherein the aperture of each lamination is at least partially coincident with the apertures of adjacent laminations in the lamination stack such that the apertures define a cooling-fluid passageway through the lamination stack; and injecting a sealant between the plurality of laminations, wherein the sealant forms a seal to prevent a liquid cooling fluid in the passageway from exiting the lamination stack between adjacent laminations.
- 28. The method of claim 26, wherein the lamination stack is formed prior to the step of injecting.
Parent Case Info
[0001] This application claims priority from U.S. provisional patent application 60/378,276, filed May 6, 2002, which is incorporated herein by reference for all purposes.
Provisional Applications (1)
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Number |
Date |
Country |
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60378276 |
May 2002 |
US |