Composite rotors and methods of making composite rotors
In accordance with at least one aspect of this disclosure, a composite rotor includes a first rotor portion defining a first rotational axis and having a first magnet therein and a second rotor portion defining a second rotational axis and having a second magnet therein. A stator portion is disposed radially between the first rotor portion and the second rotor portion. The first rotor portion and the second rotor portion are formed of composite filaments and/or composite tape, and the composite filaments and/or composite tape are wrapped in both a first direction and a second direction different from the first direction relative to the first and second rotation axes.
1 . A composite rotor, comprising:
a first rotor portion defining a first rotational axis and having a first magnet therein;
a second rotor portion defining a second rotational axis and having a second magnet therein; and
a stator portion disposed radially between the first rotor portion and the second rotor portion, wherein the first rotor portion and the second rotor portion are comprised of composite filaments and/or composite tape, wherein the composite filaments and/or composite tape are wrapped in both a first direction and a second direction different from the first direction relative to the first rotation axis and the second rotation axis,
wherein the first rotor portion defines a first u-shape in radial cross-section having a first straight section, a second straight section, and a rounded section extending between the first and second straight sections,
wherein the second rotor portion defines a second u-shape in radial cross-section having a first straight section, a second straight section, and a rounded section extending between the first and second straight sections, and
wherein the second rotor portion is disposed with the first rotor portion such that the rounded section of the second rotor portion sits within the rounded section of the first rotor portion.
2 . The rotor of claim 1 , wherein the second rotor portion is radially inward of the first rotor portion such that the first rotational axis and the second rotational axis are co-axial.
3 . The rotor of claim 1 , wherein a diameter of the second rotor portion is smaller than a diameter of the first rotor portion.
4 . The rotor of claim 1 , wherein the first magnet is disposed within the first straight section and second straight section of the first rotor portion.
5 . The rotor of claim 4 , wherein the composite filaments and/or composite tape of the first rotor portion are wrapped in the first direction relative to the first rotational axis in the first straight section and the second straight section, and in the second direction relative to the first rotational axis, different from the first direction, in the rounded section.
6 . The rotor of claim 5 , wherein the first direction is 90° relative to the first rotational axis, and wherein the second direction is angled relative to the first rotational axis at an angle greater than 0° and less than 90°.
7 . The rotor of claim 1 , wherein the second magnet is disposed within the first straight section and second straight section of the second rotor portion.
8 . The rotor of claim 7 , wherein the composite filaments and/or composite tape of the second rotor portion are wrapped in the first direction relative to the second rotational axis in the first straight section and the second straight section, and in the second direction relative to the second rotational axis, different from the first direction, in the rounded section.
9 . The rotor of claim 8 , wherein the first direction is 90° relative to the second rotational axis, and wherein the second direction is angled relative to the second rotational axis at an angle greater than 0° and less than 90°.
10 . The rotor of claim 1 , wherein:
the composite filaments and/or composite tape of the first rotor portion are wrapped in the first direction relative to the first rotational axis in the first straight section and the second straight section, and in the second direction relative to the first rotational axis, different from the first direction, in the rounded section,
wherein the composite filaments and/or composite tape of the second rotor portion are wrapped in the first direction relative to the second rotational axis in the second straight section and the second straight section, and in the second direction relative to the second rotational axis, different from the first direction, in the rounded section.
11 . The rotor of claim 10 , wherein the first direction is 90° relative to the first rotational axis, and wherein the second direction is angled relative to the first rotational axis at an angle greater than 0° and less than 90°, wherein the first direction is 90° relative to the second rotational axis, and wherein the second direction is angled relative to the second rotational axis at an angle greater than 0° and less than 90°.
12 . The rotor of claim 1 , wherein the composite filaments and/or composite tape includes thermoset or thermoplastic composite filaments and/or composite tape.
13 . A method of making a composite rotor, comprising,
placing a first grouping of composite filaments and/or composite tape on a first mandrel of a first diameter in a first direction relative to an axis of the first mandrel;
placing a second grouping of composite filaments and/or composite tape on the first mandrel in a second direction relative to the axis of the first mandrel, the second direction being different from the first direction to form a first rotor portion having a first u-shape in radial cross-section having a first straight section, a second straight section, and a rounded section extending between the first and second straight sections;
cutting the first rotor portion along a cut line perpendicular to the axis of the first mandrel into a first rotor portion first half and a first rotor portion second half and removing the first mandrel from the first rotor portion to form the first rotor portion;
placing a third grouping of composite filaments and/or composite tape on a second mandrel of a second diameter in a first direction relative to an axis of the second mandrel;
placing a fourth grouping of composite filaments and/or composite tape on the second mandrel in a second direction relative to the axis of the second mandrel, the second direction being different from the first direction to from a second rotor portion having a second u-shape in radial cross-section having a first straight section, a second straight section, and a rounded section extending between the first and second straight sections;
cutting the second rotor portion along a cut line perpendicular to the axis of the second mandrel into a second rotor portion first half and a second rotor portion second half and removing the second mandrel from the second rotor portion; and
inserting the second rotor portion first half into the first rotor portion first half such that the rounded section of the second rotor portion sits within the rounded section of the first rotor portion.
14 . The method of claim 13 , further comprising, inserting a first magnet within the first rotor portion first half, and a second magnet within the second rotor portion first half.
15 . The method of claim 14 , further comprising, inserting a stator into a space formed between the first rotor portion first half and the second rotor portion first half such that the stator is radially between the first rotor portion first half and the second rotor portion first half and radially between the first magnet and the second magnet.
16 . The method of claim 13 , wherein:
placing the first grouping of composite filaments and/or composite tape on the first mandrel in the first direction includes wrapping the first grouping of composite filaments and/or composite tape around the first mandrel about the axis of the first mandrel such that the first grouping of composite filaments and/or composite tape are oriented 90° relative to the axis of the first mandrel;
placing the second grouping of composite filaments and/or composite tape on the first mandrel in the second direction includes wrapping the first grouping of composite filaments and/or composite tape on the first mandrel along the axis of the first mandrel but offset from the axis of the first mandrel such that the second grouping of composite filaments and/or composite tape are oriented and an angle relative to the axis of the first mandrel, wherein the angle is greater than 0° and less than 90°;
placing the third grouping of composite filaments and/or composite tape on the second mandrel in the first direction includes wrapping the first grouping of composite filaments and/or composite tape around the second mandrel about the axis of the second mandrel such that the third grouping of composite filaments and/or composite tape are oriented 90° relative to the axis of the second mandrel; and
placing the fourth grouping of composite filaments and/or composite tape on the second mandrel in the second direction includes wrapping the fourth grouping of composite filaments and/or composite tape on the second mandrel along the axis of the second mandrel but offset from the axis of the second mandrel such that the fourth grouping of composite filaments and/or composite tape are oriented and an angle relative to the axis of the second mandrel, wherein the angle is greater than 0° and less than 90°.
17 . A composite rotor, comprising:
a first rotor portion defining a first rotational axis and having a first magnet therein;
a second rotor portion defining a second rotational axis and having a second magnet therein, wherein the first rotor portion and the second rotor portion are comprised of composite filaments and/or composite tape; and
a stator portion disposed radially between the first rotor portion and the second rotor portion,
wherein the first rotor portion defines a first u-shape in radial cross-section having a first straight section a second straight section, and a rounded section extending between the first and second straight sections,
wherein the second rotor portion defines a second u-shape in radial cross-section having a first straight section, a second straight section and a rounded section extending between the first and second straight sections, and
wherein the second rotor portion is disposed with the first rotor portion such that the rounded section of the second rotor portion sits within the rounded section of the first rotor portion, and wherein a third magnet is disposed between the rounded section of the first rotor portion and the stator portion.
18 . The composite rotor of claim 17 , wherein the first rotor portion and the second rotor portion define a “u” shaped structure in radial cross-section.
19 . The composite rotor of claim 18 , further comprising a hub portion operatively connected to the second rotor portion to couple the “u” shaped structure to a shaft.
20 . The composite rotor of claim 18 , wherein the second rotor portion is radially inward of the first rotor portion such that the first rotational axis and the second rotational axis are co-axial.