Electric machine stator cooling systems and methods
A stator for an electromagnetic machine having a plurality of electromagnets. Some or all of the electromagnets include a stack of laminations defining a tooth and a yoke segment, and an insulating bobbin surrounding a portion of the tooth of each lamination such that each lamination is held against adjacent laminations by the bobbin. The electromagnets also include electrically conductive windings surrounding a portion of the bobbin and a stator encapsulant fully encapsulating the bobbin and windings of the electromagnets.
1. A stator for an electromagnetic machine comprising:
a plurality of electromagnets comprising:
a stack of laminations defining a tooth and a yoke segment wherein the stack of laminations of each of the plurality of electromagnets comprises:
a plurality of individual laminations, with each lamination comprising opposing first and second planar faces and a surrounding edge, such that the first planar face of a first lamination faces the second planar face of a second, adjacent, lamination; and
a thermal transmission layer positioned between the first planar face of the first lamination and the second planar face of the second lamination such that the thermal transmission layer is in thermal and physical contact with the first planar face of the first lamination and in thermal contact with the second planar face of the second lamination;
an insulating bobbin surrounding a portion of the tooth of each lamination, wherein each lamination is held against adjacent laminations by the bobbin;
electrically conductive windings surrounding a portion of the bobbin; and
a stator encapsulant fully encapsulating the bobbin and windings of the plurality of electromagnets.
2. The stator of claim 1 wherein the encapsulant comprises a dielectric material and an additive to increase the thermal conductivity of the encapsulant.
3. The stator of claim 2 wherein the dielectric material comprises a polymer and the additive comprises one or more of boron nitride, silicon carbide, silicon; aluminum powder, copper powder, metal oxide, ceramic, and graphene.
4. The stator of claim 2 wherein the dielectric material comprises a polymer and the additive comprises one or more of spherical suspended particles and radially oriented suspended fibers.
5. The stator of claim 1 further comprising one or more sensors associated with the dielectric material.
6. The stator of claim 5 further comprising a vibration sensor or a temperature sensor associated with the dielectric material.
7. The stator of claim 1 wherein the thermal transmission layer has a greater thermal conductivity than the individual laminations.
8. The stator of claim 7 wherein the thermal transmission layer comprises one or more of nickel, nickel silver, copper, gold, silver, aluminum, graphene and graphene oxide.
9. The stator of claim 1 wherein the stack of laminations of each of the plurality of electromagnets further comprises a dielectric layer in physical contact with one of the first and second planar faces, opposite the thermal transfer layer.
10. The stator of claim 1 wherein the stack of laminations of each of the plurality of electromagnets comprises:
separate first and second thermal transmission layers, wherein the second thermal transmission layer is in physical and thermal contact with the second planar face of the first lamination.
11. The stator of claim 10 wherein the first and second thermal transmission layers have a greater thermal conductivity than the individual laminations.
12. The stator of claim 11 wherein the first and second thermal transmission layers comprise one or more of nickel, nickel silver, copper, silver, gold, aluminum, graphene and graphene oxide.
13. The stator of claim 10 wherein the stack of laminations of each of the plurality of electromagnets further comprises a dielectric layer positioned between the first planar face of a first lamination and the second planar face of a second, adjacent, lamination, said dielectric layer being in physical contact with one of the first and second thermal transmission layers.
14. The stator of claim 1 wherein the yoke segment defines a tongue structure at a first outside edge.
15. The stator of claim 14 wherein the yoke segment defines a groove structure at a second outside edge, opposite the first outside edge.
16. The stator of claim 15 wherein the tongue structure of a first electromagnet is mated with the groove structure of an adjacent second electromagnet, and the groove structure of the first electromagnet is mated with the tongue structure of a third electromagnet.