EP3051664A1

Method of manufacturing high temperature laminated stator cores

Abstract

Embodiments of laminated stator cores (66) suitable for usage in high temperature applications are provided, as are embodiments of methods (10) for manufacturing high temperature laminated stator cores. In one embodiment, the method includes obtaining (12) a plurality of coated laminates (16) each comprising a laminate over which a coating precursor layer (34) is formed. The coating precursor layer contain inorganic dielectric particles having a softening point. The plurality of coated laminates are arranged (40) in a laminate stack (58), which is then fired (54) at temperatures equal to or greater than the softening point of the inorganic dielectric particles. During firing, a compressive force is applied to the laminate stack sufficient to consolidate the inorganic dielectric particles into a plurality of coherent interlaminate dielectric layers (72) electrically insulating and bondingtogether the plurality of coated laminates as the high temperature laminated stator core.

EP3051664A1, drawing sheet 1
Sheet 1 of 8

Term

9.3 yearsto projected expiry

Projected expiry 26 January 2036, counted from filing; an application has no term until it is granted.

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10 claims: 2 independent, 8 dependent

  1. 1
    A method (10) for manufacturing a high temperature laminated stator core (66), the method comprising:obtaining (12) a plurality of coated laminates (36) each comprising a laminate (14) over which a coating precursor layer (34) is formed, the coating precursor layer containing inorganic dielectric particles having a softening point;arranging (40) the plurality of coated laminates in a laminate stack (58);and firing (54) the laminate stack at temperatures equal to or greater than the softening point of the inorganic dielectric particles, while applying a compressive force on the laminate stack sufficient to consolidate the inorganic dielectric particles into a plurality of coherent interlaminate dielectric layers (72) electrically insulating and bondingtogether the plurality of coated laminates as the high temperature laminated stator core.
  2. 2
    The method (10) of Claim 1 wherein the plurality of coated laminates (36) are each produced to further comprise an oxidation barrier layer (32) between the laminate (14) and the coating precursor layer (34).
  3. 3
    The method (10) of Claim 2 wherein the oxidation barrier layer (32) comprises one of the group consisting of a thermally-grown oxide layer and a plated metal layer.
  4. 4
    The method (10) of Claim 1 wherein the coating precursor layers (34) comprise an organic binder, and wherein the method further comprises thermally decomposing substantially all of the organic binder from the coating precursor layers during or prior to firing (58) the laminate stack (58).
  5. 5
    The method (10) of Claim 1 further comprising selecting the inorganic dielectric particles to comprise low melt glass particles.
  6. 6
    The method (10) of Claim 5 wherein the laminates (14) are composed of a magnetically-permeable alloy having a first coefficient of thermal expansion (CTE), and wherein the method further comprises selecting the low melt glass particles to have a CTE less than the first CTE.
  7. 7
    The method (10) of Claim 1 wherein firing (54) comprises increasing the compressive load exerted on the laminate stack (58) when the firing temperature surpasses a predetermined temperature threshold equal to or greater than the softening point of the inorganic dielectric particles.
  8. 8
    The method (10) of Claim 1 further comprising:determining a desired vertical standoff between neighboring laminates (14) in the laminate stack (58);and embedding presorted inorganic dielectric spheres having a maximum diameter substantially equivalent to the desired vertical standoff within the coating precursor layers (34).
  9. 9
    The method (10) of Claim 1 further comprising:machining (70) at least one sidewall of the high temperature laminated stator core (66)after firing (54);and forming an additional dielectric coating (74) over the sidewall after machining, the additional dielectric coating containing an inorganic dielectric material having a softening point less than the softening point of the inorganic dielectric particles.
  10. 10
    A high temperature laminated stator core (66), comprising:a plurality of laminates (14) each composed of a magnetically-permeable material;and a plurality of interlaminate dielectric layers (72) interspersed with the plurality of laminates;wherein the plurality of interlaminate dielectric layers electrically insulate and bond together the plurality of laminates;and wherein the plurality of interlaminate dielectric layers comprise consolidated glass particles having a softening point less than the melt point of the magnetically-permeable material and having a coefficient of thermal expansion (CTE) less than the CTE of the magnetically-permeable material.