Apparatus for inductive power transmission
09840152 · 2017-12-12
Assignee
Inventors
Cpc classification
B60L53/124
PERFORMING OPERATIONS; TRANSPORTING
H02J50/80
ELECTRICITY
H02J50/402
ELECTRICITY
B60L2240/36
PERFORMING OPERATIONS; TRANSPORTING
Y02T90/14
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H02J50/90
ELECTRICITY
H02J50/60
ELECTRICITY
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60L53/126
PERFORMING OPERATIONS; TRANSPORTING
H02J50/005
ELECTRICITY
Y02T90/12
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60L3/0069
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/7072
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
H02J7/00
ELECTRICITY
B60L3/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Apparatus for inductively transmitting power, which apparatus comprises a primary unit with a primary coil and a secondary unit with a secondary coil, and in which the primary coil induces a magnetic transmission field in a transmission area between the primary unit and the secondary unit, and which has an even number of detector coil elements which are wound in opposite directions in pairs and form a detector pair.
Claims
1. An apparatus for inductively transmitting power, comprising: a primary unit with a primary coil; a secondary unit with a secondary coil, wherein the primary coil induces a magnetic transmission field in a transmission area between the primary unit and the secondary unit, and at least one detector unit positioned in the transmission area and configured to detect an induction voltage, the at least one detector unit comprising an even number of detector coil elements wound in opposite directions such that adjacent detector coil elements form detector pairs.
2. The apparatus as claimed in claim 1, wherein the detector pairs are electrically connected to one another in at least one series circuit, the at least one series circuit forms the at least one detector unit, at least one measuring means for measuring the induction voltage at the detector unit is assigned to the at least one detector unit, and the at least one detector unit can be introduced or has been introduced into the transmission area.
3. The apparatus as claimed in claim 2, wherein the at least one detector unit is de-energized or the induction voltage is low in the case of a homogeneous transmission field, and the induction voltage is increased at the at least one detector unit in the case of an inhomogeneous transmission field.
4. The apparatus as claimed claim 1, wherein the at least one detector unit can be moved within a movement range perpendicular to the orientation of the transmission field in the transmission area, and the movement range covers the transmission area.
5. The apparatus as claimed claim 2, wherein the at least one detector unit can be moved within a movement range perpendicular to the orientation of the transmission field in the transmission area, and the movement range covers the transmission area.
6. The apparatus as claimed claim 3, wherein the at least one detector unit can be moved within a movement range perpendicular to the orientation of the transmission field in the transmission area, and the movement range covers the transmission area.
7. The apparatus as claimed in one of claim 1, wherein the apparatus comprises a plurality of detector units in the transmission area, and the detector units cover the entire transmission area in a manner perpendicular to the orientation of the transmission field.
8. The apparatus as claimed in one of claim 2, wherein the apparatus comprises a plurality of detector units in the transmission area, and the detector units cover the entire transmission area in a manner perpendicular to the orientation of the transmission field.
9. The apparatus as claimed in one of claim 3, wherein the apparatus comprises a plurality of detector units in the transmission area, and the detector units cover the entire transmission area in a manner perpendicular to the orientation of the transmission field.
10. The apparatus as claimed in one of claim 4, wherein the apparatus comprises a plurality of detector units in the transmission area, and the detector units cover the entire transmission area in a manner perpendicular to the orientation of the transmission field.
11. The apparatus as claimed in claim 1, wherein the spatial extent of a detector coil element is adjustable.
12. A system for inductively transmitting power to a vehicle, the system comprising the apparatus of claim 1 and the vehicle, wherein: the secondary unit is included in the vehicle and is situated in the region of the underbody of the vehicle, the primary unit is situated outside the vehicle, and the at least one detector unit is included in the primary unit or the secondary unit.
13. The system as claimed in claim 12, wherein, the detector pairs are electrically connected to one another in at least one series circuit, the at least one series circuit forms the at least one detector unit, at least one measuring means for measuring the induction voltage at the detector unit is assigned to the at least one detector unit, and the at least one detector unit can be introduced or has been introduced into the transmission area.
14. The system as claimed in claim 13, wherein, the at least one detector unit is de-energized or the induction voltage is low in the case of a homogeneous transmission field, and the induction voltage is increased at the at least one detector unit in the case of an inhomogeneous transmission field.
15. The system as claimed in claim 12, wherein, the at least one detector unit can be moved within a movement range perpendicular to the orientation of the transmission field in the transmission area, and the movement range covers the transmission area.
16. The system as claimed in claim 12, wherein the apparatus comprises a plurality of detector units in the transmission area, and the detector units cover the entire transmission area in a manner perpendicular to the orientation of the transmission field.
17. The system as claimed in claim 12, wherein the spatial extent of a detector coil element is adjustable.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION OF THE DRAWINGS
(4)
(5) The primary coil generates an alternating magnetic field at a transmission frequency, which field induces a voltage at the secondary coil according to the induction principle. This voltage can be used as the charging voltage in the vehicle. The alternating magnetic field is called the transmission field.
(6) When the apparatus is used to inductively charge a vehicle energy store, the secondary unit can be integrated in the region of the underbody of the vehicle. The primary unit is situated outside the vehicle and can be integrated in a vehicle parking space and/or vehicle charging space, for example.
(7) The vehicle can be charged when the vehicle is located in the region of the vehicle charging space in such a manner that sufficient spatial coverage of the secondary coil with the primary coil is established with respect to the x direction and the y direction. The x direction and the y direction moreover relate to the vehicle coordinate system which is known to a person skilled in the art, with the x axis along the direction of travel, the y axis transverse to the direction of travel and the z axis as the vehicle vertical axis. The transmission field is oriented along the z axis in the transmission area and is rotationally symmetrical with respect to the z axis in the exemplary embodiment shown.
(8) During charging, the primary coil generates the transmission field (8) which may be rotationally symmetrical with respect to the z axis. The field area of the transmission field, which is situated between the primary unit and the secondary unit during charging, is called the transmission area.
(9) Additional concentration of the transmission field in the transmission area can be achieved by respectively using two ferrites (4, 5) on that side of the primary or secondary coil which faces away from the transmission area in the z direction. The primary coil and the ferrite (4) are integrated in a first housing (1), and the secondary coil and the ferrite (5) are integrated in a second housing (2).
(10)
(11)
(12)
(13) The detector unit consists of an even number of coils (10). This exemplary embodiment describes eight coil segments without restricting generality.
(14) Two coils of the detector unit are respectively wound in opposite directions in pairs and form a coil pair which electrically forms a series circuit. The detector unit in
(15) If the detector unit according to
(16) If a metal object is situated in the transmission area, for example a coin which falls into the transmission area, an eddy current field caused by the eddy currents in the coin results in the transmission field being added to the eddy current field. This results in local interference in the magnetic field in the transmission area in the comparison between
(17) The local change in the magnetic field with respect to the x axis at the location x1 results in a change the induced voltage those coils which are situated in the region of the location x1 with respect to the x axis. Since the eddy current field causes a heterogeneous local change in the magnetic field in the transmission area, the voltage compensation by pairs of adjacent coils in
(18) In this manner, a state which differs from the intended state can therefore be detected using the voltage which can be tapped off at the detector unit by means of a voltage comparison. For this purpose, the voltage value according to
(19) In order to avoid heating of the metal object, a charging operation can be terminated by the monitoring unit if the detector voltage differs from the reference voltage.
(20) According to another embodiment, the detector unit is constructed from an even number of coil segments, two adjacent coil segments each being wound in opposite directions. This can be carried out, for example, with a plait-like winding of the coil elements or with a winding in the form of an eight. Other forms of winding are also possible, which result in two coil segments of the detector unit, each being symmetrical with respect to the y direction and the x direction.
(21) In particular, the detector unit is sensitive to metal objects having a spatial extent of the order of magnitude of the diameter of a coil or a coil segment. According to another embodiment, the detector unit has a mechanism which can be used to change the spatial extent of the coils or the coil segments. This is associated with the advantage that the sensitivity of the detector unit to different particle sizes can be adapted.
(22) According to another embodiment, the apparatus has a plurality of detector units which are arranged beside one another with respect to the y axis, the result that the entire transmission area is covered by detector units in the x-y plane. A reference voltage can be assigned to each detector unit and the detector voltage is compared with the reference voltage for each detector unit. If the two voltage values differ in a detector unit, the charging operation can be terminated. Local differences can also be detected by differences in induced voltages between adjacent detector units. Induced voltages in the detector units, which are produced, for example, by positioning of the primary coil with respect to the secondary coil which is not entirely accurate, result in extensive effects without differences in induced voltages between adjacent detector units. The charging operation can then be continued even though the individual detector units have differences between the detector voltage and the reference voltage.
(23) According to another embodiment, the detector unit is movable in the y direction. Therefore, the entire transmission area “can be searched” for small metal particles in the transmission area, in particular. A detector voltage profile can then be measured on the basis of the position of the detector unit with respect to the y axis (detector voltage profile). For example, a local change in the magnetic field at the location (x1, y2) can also be detected in this manner according to