Contactless electrical energy transfer device
A contactless electrical energy transfer device including a first system which includes at least one first coil including at least one first winding around at least one first zone without wire, a layer of ferromagnetic elements, at least one small column passing through the first coil by passing through a first zone without wire, and a second system which includes at least one second coil including at least one second winding around at least one second zone without wire. The small column or columns make it possible to optimize the magnetic coupling coefficient despite the absence of a layer of ferromagnetic elements in the second system. Also, a flying vehicle fitted with rechargeable batteries and its recharging base, both equipped with the electrical energy transfer device are provided.
1 . A contactless electrical energy transfer device comprising:
an electrical energy transmitter system and an electrical energy receiver system,
the electrical energy transmitter system comprising:
a first housing which has a first face oriented towards the second system when the first and second systems are magnetically coupled, and moving away from the first face,
at least one first coil and a layer of ferromagnetic elements positioned in the first housing, the first coil comprising at least one first winding around at least one first zone without wire and a first winding axis at right angles to the first face,
the electrical energy receiver system comprising:
a second housing which has a second face oriented towards the first system when the first and second systems are magnetically coupled, and
at least one second coil positioned in the second housing,
the second coil comprising at least one second winding around at least one second zone without wire and a second winding axis;
wherein the electrical energy transmitter system comprises at least one small column extending between first and second ends and having a longitudinal direction linking the first and second ends parallel to the first winding axis, said at least one small column passing through the first coil by passing through the first zone without wire, and
wherein the electrical energy receiver system comprises, in the second housing, a resin filled with ferromagnetic particles.
2 . The contactless electrical energy transfer device according to claim 1 , wherein the first end of each of the at least one small column is in contact with the layer of ferromagnetic elements.
3 . The contactless electrical energy transfer device according to claim 1 , wherein the second end of each of the at least one small column protrudes with respect to the first face of the first housing.
4 . The contactless electrical energy transfer device according to claim 3 ,
wherein the first and second coils are separated by a coupling distance when electrical energy transmitter system and the electrical energy receiver system are magnetically coupled, and
wherein each of the at least one small column has a length greater than 25% of the coupling distance.
5 . The contactless electrical energy transfer device according to claim 1 , wherein the electrical energy transmitter system comprises the at least one small column for each first zone without wire.
6 . The contactless electrical energy transfer device according to claim 5 , wherein the at least one small column has a section representing at least 50% of a surface area of the first zone without wire that the at least one small column passes through.
7 . The contactless electrical energy transfer device according to claim 1 , wherein each of the at least one small column is made of ferromagnetic material.
8 . The contactless electrical energy transfer device according to claim 1 ,
wherein the second coil has an inner face oriented towards the second face of the second housing, an outer face opposite the inner face and a thickness corresponding to a distance separating the inner and outer faces, and
wherein a volume of filled resin is formed as a body arranged between the outer face of the second coil and a first face of the second housing opposite the second face of the second housing, and at least one extension passing through at least one second zone without wire of the second coil, towards the second face of the second housing.
9 . The contactless electrical energy transfer device according to claim 8 , wherein each of the at least one extension of the volume of filled resin has a section equal to or slightly less than that of the second zone without wire that the extension passes through.
10 . The contactless electrical energy transfer device according to claim 8 , wherein the body of the volume of filled resin covers half the outer face of the second coil.
11 . The contactless electrical energy transfer device according to claim 8 , wherein the body has a thickness greater than or equal to twice the thickness of the second coil.
12 . The contactless electrical energy transfer device according to claim 8 , wherein each of the at least one extension of the volume of filled resin has a portion, protruding with respect to the inner face of the second coil, which has a height greater than at least twice the thickness of the second coil.
13 . The contactless electrical energy transfer device according to claim 12 , wherein the height of the protruding portion is greater than or equal to 5% of a distance separating the electrical energy transmitter system and the electrical energy receiver system when the electrical energy transmitter system and the electrical energy receiver system are magnetically coupled.
14 . A flying vehicle comprising at least one rechargeable battery and an electrical energy receiver system of a contactless electrical energy transfer device according to claim 1 .
15 . An electrical recharging base for a flying vehicle comprising an electrical energy transmitter system of a contactless electrical energy transfer device according to claim 1 .
16 . The contactless electrical energy transfer device according to claim 1 , wherein the second winding axis of the at least one second winding is at right angles to the second face.
17 . The contactless electrical energy transfer device according to claim 1 , wherein the first end of each of the at least one small column is in contact with the layer of ferromagnetic elements, each of the at least one small column being made of ferromagnetic material.
18 . A contactless electrical energy transfer device comprising:
an electrical energy transmitter system and an electrical energy receiver system,
the electrical energy transmitter system comprising:
a first housing which has a first face oriented towards the second system when the first and second systems are magnetically coupled, and moving away from the first face,
at least one first coil and a layer of ferromagnetic elements positioned in the first housing, the first coil comprising at least one first winding around at least one first zone without wire and a first winding axis at right angles to the first face,
the electrical energy receiver system comprising:
a second housing which has a second face oriented towards the first system when the first and second systems are magnetically coupled, and
at least one second coil positioned in the second housing,
the second coil comprising at least one second winding around at least one second zone without wire and a second winding axis;
wherein the electrical energy transmitter system comprises at least one small column extending between first and second ends and having a longitudinal direction linking the first and second ends parallel to the first winding axis, said at least one small column passing through the first coil by passing through the first zone without wire,
wherein the electrical energy receiver system comprises, in the second housing, a resin filled with ferromagnetic particles,
wherein the second coil has an inner face oriented towards the second face of the second housing, an outer face opposite the inner face and a thickness corresponding to a distance separating the inner and outer faces, and
wherein a volume of filled resin is formed as a body arranged between the outer face of the second coil and a first face of the second housing opposite the second face of the second housing, and at least one extension passing through at least one second zone without wire of the second coil, towards the second face of the second housing.