CHARGING CABLE AND ADAPTER FOR ELECTRICALLY CHARGING AN ENERGY STORAGE DEVICE AT AN ENERGY SUPPLY DEVICE
20200282849 ยท 2020-09-10
Inventors
Cpc classification
Y02T90/16
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
B60L53/18
PERFORMING OPERATIONS; TRANSPORTING
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
B60L53/16
PERFORMING OPERATIONS; TRANSPORTING
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
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
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
B60L53/16
PERFORMING OPERATIONS; TRANSPORTING
B60L53/18
PERFORMING OPERATIONS; TRANSPORTING
B60L53/30
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A charging cable including a charging line detachably electrically connected at one end using a connection apparatus to an energy storage device to be charged and electrically connected at the other end to an adapter interface detachably connected in a form fit to an adapter. The adapter is detachably electrically connected to an energy supply device in order to transmit, via the charging cable, electrical energy from the energy supply device to the energy storage device to be charged. To obtain a particularly compact and robust charging cable, the adapter interface includes a communication device enabling a wireless communication with the adapter when the adapter is connected to the adapter interface, so that control signals between the energy supply device and an electronics system of the charging cable and/or of an energy storage device connected to the charging cable can be transmitted wirelessly between the adapter and the adapter interface.
Claims
1. A charging cable, in particular for electrically charging an electric vehicle, comprising a charging line which can be detachably electrically connected at one end using a connection apparatus to an energy storage device to be charged and is electrically connected at the other end to an adapter interface which can be detachably connected in a form fit to an adapter, wherein the adapter can be detachably electrically connected to an energy supply device in order to transmit, via the charging cable, electrical energy from the energy supply device to the energy storage device to be charged, wherein the adapter interface comprises a communication device which enables a wireless communication with the adapter comprising a corresponding communication device when the adapter is connected to the adapter interface, so that control signals between the energy supply device at one end and at the other end an electronics system of the charging cable and/or of an energy storage device connected to the charging cable can be transmitted wirelessly between the adapter and the adapter interface.
2. The charging cable according to claim 1, wherein the charging cable comprises a control device in order to control and/or monitor the transmitted electrical energy.
3. The charging cable according to claim 1, wherein the adapter interface comprises at least five electrical contacts which can be detachably electrically connected to electrical contacts on the adapter.
4. An adapter for a charging cable, in particular a charging cable according to claim 1, which can be detachably connected in a form fit at one end to the adapter interface of the charging cable and can be detachably electrically connected at the other end to an energy supply device in order to transmit, via the adapter, electrical energy from the energy supply device to the charging cable, wherein the adapter comprises a communication device which enables a wireless communication with the adapter interface comprising a corresponding communication device when the adapter is connected to the adapter interface, so that control signals between the energy supply device at one end and at the other end an electronics system of the charging cable and/or of an energy storage device connected to the charging cable can be transmitted wirelessly between the adapter and the adapter interface.
5. The adapter according to claim 4, wherein the adapter comprises at least five electrical contacts, which can be detachably electrically connected to electrical contacts on the adapter interface, and at least one additional electrical control signal conductor contact which is electrically connected to the communication device of the adapter in order to transmit control signals.
6. The adapter according to claim 4, wherein an electronics unit of the adapter can be supplied with energy using energy from at least one control signal conductor contact of the adapter, wherein in particular an energy from the control signal conductor contact is temporarily stored until a predefined amount of energy is obtained, in order to enable a communication between the energy supply unit and the electronics unit of the adapter, and to thereby initiate the transmission of a charging current.
7. A charging device for electrically charging an energy storage device at an energy supply device, in particular for electrically charging an electric vehicle, comprising a charging cable according to claim 1 and an adapter.
8. The charging device according to claim 7, wherein the communication devices in the adapter and in the adapter interface are embodied as an RFID system in order to transmit the control signals between the adapter and the adapter interface.
9. The charging device according to claim 7, wherein the control signals can be transmitted between the adapter and adapter interface via electromagnetic induction, in particular in a frequency range of 10 MHz to 15 MHz, preferably at approximately 13.56 MHz.
10. The charging device according to claim 7, wherein the adapter comprises an encoding that can be identified by the adapter interface when the adapter is plugged into the adapter interface, in order to control the transmitted electrical energy based on the encoding.
11. The charging device according to claim 7, wherein a connecting and detaching of the adapter to and from the energy supply device, respectively, and/or a connecting and detaching of the adapter to and from the adapter interface, respectively, and/or a connecting and detaching of the charging cable to and from the energy storage device to be charged, respectively, can be identified by at least one sensor device in the charging cable and/or in the adapter.
12. The charging device according to claim 7, wherein the adapter comprises a sensing element to which a force is applied, and/or which is moved, when the adapter is connected to the energy supply device, and in that a sensor unit is arranged in the adapter or adapter interface in order to detect an application of force to and/or a movement and/or a position of the sensing element.
13. A method for electrically charging an energy storage device, in particular an energy storage device of an electric vehicle, at an energy supply device using a charging device, in particular a charging device according to claim 7, comprising a charging line which is detachably electrically connected at one end using a connection apparatus to the energy storage device to be charged and is detachably electrically connected at the other end to the energy supply device via an adapter which is detachably connected in a form fit to an adapter interface, wherein control signals that are transmitted, via the charging cable, between the energy supply device and an electronics system of the charging cable and/or of the energy storage device to be charged are transmitted wirelessly between the adapter and the adapter interface.
14. The method according to claim 13, wherein an electronics unit of the adapter is supplied with energy from at least one control signal conductor contact of the adapter, wherein in particular an energy from the control signal conductor contact is temporarily stored until a predefined amount of energy is obtained, whereupon said electronics unit causes the energy supply device to begin a charging process.
15. The method according to claim 14, wherein a communication via the control signals transmitted via the at least one control signal conductor contact of the adapter and a supply of energy to the electronics unit of the adapter using energy from the at least one control signal conductor contact of the adapter are carried out at the same time.
Description
[0052] Additional features, advantages and effects follow from the exemplary embodiments described below. The drawings which are thereby referenced show the following:
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[0059] Both the adapter 2 and also the adapter interface 5 comprise communication devices so that control signals which are transmitted, via the charging cable 1 or the adapter 2, between the energy supply device at one end and an electronics system of the charging cable 1 and/or of the electric car 7 at the other end can be transmitted wirelessly between the adapter 2 and the adapter interface 5. Because the control signals are not transmitted between the adapter 2 and the adapter interface 5 via additional electrical contacts 8, the adapter 2 and the adapter interface 5 can be embodied to be robust and compact, which on the one hand facilitates a handling and transport of the same, and additionally enables an interference-immune communication or transmission of the control signals between the adapter 2 and the adapter interface 5. The communication devices of the adapter 2 and adapter interface 5 are embodied as an RFID system in order to wirelessly transmit the control signals based on a bidirectional near-field communication (NFC). Through the small size of the RFID system, said system can be integrated into the adapter 2 and the adapter interface 5 without significant effects on a compactness and/or durability.
[0060]
[0061] The five electrical contacts 8 of the adapter interface 5 can be detachably electrically connected to corresponding electrical contacts 8 on the adapter 2, thus enabling a safe electrical charging or a safe transmission of electrical energy via an energy supply device formed by the adapter 2 and charging cable 1.
[0062] On the side facing an energy supply device, the adapter 2 is embodied as an IEC 62169 Type 2 plug and comprises seven electrical contacts 8, wherein five electrical contacts 8 can be detachably electrically connected to the electrical contacts 8 of the adapter interface 5. The other two electrical contacts 8 are embodied as control signal conductor contacts and are used for a transmission of control signals or for communication between the energy supply device and an electronics system of the charging cable 1 and/or of the electric car 7. Within the scope of the communication between the energy supply device and the electric car 7, the two control signal conductor contacts are also referred to as a proximity pilot contact and control pilot contact.
[0063] The communication devices of the adapter 2 and the adapter interface 5 are embodied in the form of what are referred to as NFC printed circuit boards 9 which carry out the bidirectional near-field communication between the adapter 2 and adapter interface 5. For this purpose, the control signal conductor contacts and also the protective ground contact of the adapter 2 are electrically connected to the NFC printed circuit board 9 of the adapter 2 in order to transmit control signals between the energy supply device and the NFC printed circuit board 9 of the adapter 2.
[0064] Typically, the control signals are thereby produced or transmitted using voltage differences that are present between one of the control signal conductor contacts and the protective ground contact.
[0065] Since near-field communication is limited to a communication at a close range, the NFC printed circuit board 9 is arranged in the adapter 2 and the NFC printed circuit board 9 is arranged in the adapter interface 5 such that said printed circuit boards have a smallest possible distance from one another when the adapter 2 is plugged into the adapter interface 5. For this purpose, the adapter 2 comprises a guide element 10 which can be inserted into a corresponding guide element receiver 11 on the adapter interface 5, which guide element receiver 11 is embedded as a recess in the surface of the adapter interface 5, during a connection of the adapter 2 and adapter interface 5. Because the NFC printed circuit board 9 of the adapter 2 is integrated into the guide element 10 of the adapter 2 and the NFC printed circuit board 9 of the adapter interface 5 is integrated into the surface of the guide element receiver 11 of the adapter interface 5, a small distance between the NFC printed circuit boards 9 in the connected state, and therefore a secure communication, is achieved.
[0066] To enable charging at a charging station that requires a communication between the charging station and the electric car 7 before a transmission of the charging current, an electronics unit is arranged in the IEC 62169 Type 2 plug illustrated, which electronics unit can be supplied with energy using energy from at least one of the control signal conductor contacts of the adapter 2. A basic functionality of the adapter 2 is thus ensured without an additional supply of energy, solely by means of the transmitted control signals. In particular, a communication between the charging station and the electronics unit of the adapter 2 is thus enabled in order to initiate the transmission of the charging current. This communication is expediently achieved in that an electrical resistance in the adapter 2 is changed when predetermined control signals transmitted from the charging station to the adapter 2 are acquired.
[0067] Where an electric car 7 is connected to a charging station by means of an IEC 62169 Type 2 plug, this communication typically takes place in that the charging station applies predefined voltages between the control pilot contact and the protective ground contact and between the proximity pilot contact and the protective ground contact. Through the variation of electrical resistances, the electric car 7 can produce defined voltage dips in the applied voltages, and can thus communicate with the charging station and, for example, transmit a standby state or a maximum charging current.
[0068] Because the electronics unit of the adapter 2 produces these voltage dips in the signals of the control pilot contact and of the proximity pilot contact, it acts as if a certain electric vehicle were connected to the charging station, and a release of charging current is thus initiated. The adapter 2 or the electronics unit of the adapter 2 thus simulates to the charging station, using the energy acquired via at least one of the control signal conductor contacts, that a connected electric vehicle is connected to the charging station, whereby the charging station transmits the charging current.
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[0070] The adapter 2 illustrated in
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[0073] A charging cable 1 according to the invention and an adapter 2 according to the invention and, accordingly, a charging device according to the invention, enable a practicable electrical charging of an electric car 7 at different energy supply devices in that an adapter 2 that matches the available energy supply device is plugged into the charging cable 1. Because control signals that are transmitted between the energy supply device and an electronics system of the charging cable 1 and/or of the electric car 7 via the charging cable 1 are transmitted wirelessly between the adapter 2 and the adapter interface 5 through bidirectional near-field communication, the adapter interface 5 and adapter 2 can be embodied to be compact and robust and, at the same time, a dependable and interference-immune communication by means of the control signals can be achieved. Through the transmission of the control signals using bidirectional near-field communication, a high security of the communication is ensured since this communication is restricted to a spatially limited region.
[0074] Thus, a practicable electrical charging of the electric car 7 is both possible at energy supply devices which require a communication by a transmission of control signals, and an electrical charging is also further ensured in a practicable manner at conventional single- or poly-phase standard power outlets.