Electric vehicle charging station with medium voltage input
10424436 ยท 2019-09-24
Assignee
Inventors
Cpc classification
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
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
B60L53/22
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
B60L1/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60L53/22
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present disclosure relates to an electric vehicle charging station including a transformer. The transformer is a multi-winding transformer including one primary winding and a plurality of secondary windings. The secondary windings are electrically isolated from one another. The electric vehicle charging station further includes an AC/DC converter to which a secondary winding is connected.
Claims
1. An electric vehicle charging station comprising: a transformer, wherein: said transformer is a multi-winding transformer including one primary winding and a plurality of secondary windings, and said secondary windings are electrically isolated from one another, an AC/DC converter to which a secondary winding is connected, a switchboard with a plurality of switches, each secondary winding being connected to a separate switch of the switchboard, and a medium voltage input switchgear, said medium voltage input switchgear being connected to the primary winding of the multi-winding transformer, wherein a voltage level of the medium voltage input switchgear is 1-72 kV AC.
2. The electric vehicle charging station of claim 1, further including an auxiliary power equipment, wherein at least one of the secondary winding is connected to an AC/DC converter, and one of the secondary windings is connected directly to the auxiliary power equipment without passing through an AC/DC converter.
3. The electric vehicle charging station of claim 2, wherein four secondary windings are connected to AC/DC converters.
4. The electric vehicle charging station of claim 2, further including an energy storage connected to one of the secondary windings.
5. The electric vehicle charging station of claim 4, further including a housing enclosure, wherein said energy storage is arranged within the housing enclosure.
6. The electric vehicle charging station of claim 2, wherein the multi-winding transformer and the secondary windings are configured such that the output of the multi-winding transformer can be either one or several of 3 phase, 6 phase or 9 phase.
7. The electric vehicle charging station of claim 2 further including a housing enclosure and at least two AC/DC converters, a medium voltage input switchgear and a low voltage switchboard, all housed in the same housing enclosure together with the multi-winding transformer.
8. The electric vehicle charging station of claim 1, wherein four secondary windings are connected to AC/DC converters.
9. The electric vehicle charging station of claim 1, further including a housing enclosure within which the multi-winding transformer, the switchboard, and the medium voltage input switchgear are arranged.
10. The electric vehicle charging station of claim 9, including at least two AC/DC converters, each AC/DC converter being connected to a separate one of the secondary windings.
11. The electric vehicle charging station of claim 10, wherein said at least two AC/DC converters are arranged within the housing enclosure.
12. The electric vehicle charging station of claim 1, further including an energy storage connected to one of the secondary windings.
13. The electric vehicle charging station of claim 12, further including a housing enclosure, wherein said energy storage is arranged within the housing enclosure.
14. The electric vehicle charging station of claim 1, wherein the multi-winding transformer and the secondary windings are configured such that the output of the multi-winding transformer can be either one or several of 3 phase, 6 phase or 9 phase.
15. The electric vehicle charging station of claim 1 further including a housing enclosure and at least two AC/DC converters, a medium voltage input switchgear and a low voltage switchboard, all housed in the same housing enclosure together with the multi-winding transformer.
16. The electric vehicle charging station of claim 1, wherein the multi-winding transformer is a three-phase multi-winding transformer.
17. The electric vehicle charging station of claim 1, wherein a power output of each AC/DC converter to an electric vehicle to be charged lies in a range of 150 to 350 kW.
18. The electric vehicle charging station of claim 1, further including a separation wall which provides at least two segregated compartments for different components of the electric vehicle charging station.
19. The electric vehicle charging station of claim 1, further including a controller to control a current per AC/DC converter such that a sum of power drawn by all AC/DC converters does not exceed a power rating of the primary winding.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be explained in greater detail with reference to the accompanying drawings, wherein
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) One embodiment of an electric vehicle charging station 10 in accordance with the present invention is shown in
(6) The internal components of the station 10 will be described with reference to
(7) Other lay-outs are also conceivable, but a preferred solution is to position the switchgear 60 at one end of the station 10 with the transformer 20 immediately adjacent, as is shown in
(8) The multi-winding transformer 20 comprises one primary winding 22 and a plurality of secondary windings 24a, 24b, 26, 28. In the illustrated example, there is a first secondary winding 24a, a second secondary winding 24b, a third secondary winding 26 and a fourth secondary winding 28. The secondary windings 24a, 24b, 26, 28 are galvanically isolated from one another. The general reference number 25 is also used for denoting all secondary windings 24a, 24b, 26, 28, 29.
(9) As is understood by the skilled person, in a three phase system there is one primary winding per phase, thus three primary windings in total. The secondary windings are correspondingly multiplied by three. For ease of illustration, only one phase is shown here.
(10) The multi-winding transformer of the present invention maybe a three-phase multi-winding transformer. More precisely a three-phase multiwinding step-down transformer. A multi-winding transformer can also be named multiple winding transformer.
(11) The secondary windings 24a, 24b, 26, 28 are connected to a low voltage (LV) switchboard 40 which comprises a number of switches 42. Only one switch 42 is illustrated here. Each secondary winding 24a, 24b, 26, 28, or multi-winding transformer output, is connected to a separate switch within the switchboard 40. Said switch 42 may be a circuit breaker or a fuse-switch disconnector. The switchboard is preferably positioned immediately adjacent to the multi-winding transformer 20, as is shown here.
(12) After the switchboard 40, in the rightmost end of the station 10 illustrated in
(13) The above mentioned control systems could include a system controller (not shown) arranged within the housing enclosure 70 to control inter alia each one of the converters 30.
(14) In an alternative embodiment, not shown here, the secondary windings 24a, 24b, 26, 28 could be connected directly to the converters 30, without an intermediate switchboard 40.
(15) However, the switchboard brings the advantage that the converters 30 can be individually isolated for maintenance and scalability (adding additional converters after delivery of the station).
(16) The vertical dashed lines in
(17) The converters 30 output DC for charging the batteries of the electric vehicles. In the figures, the charging poles which are fed by the converters 30 are illustrated similar to conventional gasoline pumps marked EV. The charging poles are provided with an interface for charging the electric vehicles. The interface may for instance be a cable connection (as illustrated in the drawings) or an inductive connection (wireless).
(18) As can be seen in
(19) By connecting two secondary windings 24a, 24b to the same converter, a 6 phase (2 windings, 3 phases) output is achieved. This output is connected to the input of one converter 30 resulting in less ripple, and thus lower harmonic content in the DC current and therefore a smaller filter is required. Alternatively, there could also be three secondary windings (not illustrated) connected to the same converter forming a 9 phase output minimizing said ripple even more.
(20) As can further be seen in
(21) As is shown in the lower right-most corner of the station 10 in
(22) Surrounding all the equipment mentioned above, there is a housing enclosure 70. The charging poles may be positioned separate for the housing enclosure 70, attached to the housing enclosure 70 or within the housing enclosure 70. Said housing enclosure could also be referred to as an electric vehicle charging station housing enclosure 70, to reflect that all power equipment of the charging station is enclosed within it.
(23) An advantage of housing the medium voltage (MV) input switchgear 60, the multi-winding transformer 20, the low voltage (LV) switchboard 40, the converters 30 and the optional energy storage 50 in the same housing enclosure 70 is that a complete electric vehicle charging station 10 can be assembled and tested in a factory, and then be delivered ready for on-site installation. Thereby, on-site work is heavily reduced. Also, as already mentioned, the electric vehicle charging station 10 is very compact.
(24) Another embodiment of an electric vehicle charging station 10 in accordance with the present invention is shown in
(25) In the embodiment of
(26) The housing enclosure 70 is preferably made from concrete, steel or composite materials.
(27) In this disclosure, by medium voltage is generally meant 1-72 kV AC. However, the most likely level of the medium voltage to which the station will be connected is 10 or 20 kV AC. Typically, the primary winding voltage of the multi-winding transformer is at least a factor of 10 higher than the secondary winding voltage. The typical power output to the electric car charged by the station is 150 to 350 kW.