Switching element, switching device and method for the operation of the switching device
11488795 ยท 2022-11-01
Assignee
Inventors
Cpc classification
H01H47/001
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
H01H33/59
ELECTRICITY
B60L3/00
PERFORMING OPERATIONS; TRANSPORTING
B60L3/0046
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
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
H01H33/00
ELECTRICITY
Abstract
A switching element (100) that comprises a switching unit (30), a first and a second coil unit (10, 20) for closing and opening the switching unit (30), wherein the first coil unit (10) comprises a first coil (12) and wherein the second coil unit (20) comprises a second coil (22). According to the invention, the first coil unit (10) comprises a first controllable delay circuit (14) that is connected in series with the first coil (12). The invention further relates to a switching device (200) that comprises a switching element (100) according to the invention. The invention further relates to a first and a second method for the operation of the switching device (200) according to the invention.
Claims
1. A switching device (200) comprising a switching element (100), including a switching unit (30), a first and a second coil unit (10, 20) for closing and opening the switching unit (30), wherein the first coil unit (10) comprises a first coil (12) and wherein the second coil unit (20) comprises a second coil (22), wherein the first coil unit (10) comprises a first controllable delay circuit (14) that is connected in series with the first coil (12), wherein the second coil unit (20) comprises a second controllable delay circuit (24) that is connected in series with the second coil (22), at least one control unit (40) for control of the first controllable delay circuit (14) and the second controllable delay circuit (24), a first driver circuit (50) for driving the first coil unit (10), and a second driver circuit (60) for driving the second coil unit (20).
2. The switching device (200) according to claim 1, wherein the at least one control unit (40) is designed to control the first controllable delay circuit (14) and the second controllable delay circuit (24) separately from one another.
3. The switching device (200) according to claim 1, wherein the switching device (200) comprises at least one energy source (70) that supplies the first coil unit (10) via the first driver circuit (50) and the second coil unit (20) via the second driver circuit (60).
4. A battery management system that comprises at least one switching device (200) according to claim 1.
5. A motor vehicle that comprises at least one switching device (200) according to claim 1.
6. The switching device (200) according to claim 1, wherein the switching device is configured to maintain the closed state of the switching unit (30) by the first coil unit (10) in the presence of a fault state in the second coil unit (20) or the second driver circuit (60).
7. The switching device (200) according to claim 6, wherein the switching device (200) is configured to maintain the closed state of the switching unit (30) by the second coil unit (20) in the presence of a fault state in the first coil unit (10) or the first driver circuit (50).
8. The switching device (200) according to claim 7, wherein the switching device (200) is configured to close the switching unit (30) by switching on the second coil unit (20); and switch on the first coil unit (10) when a fault state is detected in the second coil unit (20) or in the second driver circuit (60).
9. The switching device (200) according to claim 8, wherein the first coil unit (10) is switched off after a predefined period of time by the first controllable delay circuit (14).
10. The switching device (200) according to claim 1, wherein the first driver circuit (50) is configured for only driving the first coil unit (10).
11. The switching device (200) according to claim 10, wherein the second driver circuit (60) is configured only for driving the second coil unit (20).
12. A method for operation of a switching device (200), the switching device comprising a switching element (100) including a switching unit (30), a first and a second coil unit (10, 20) for closing and opening the switching unit (30), wherein the first coil unit (10) comprises a first coil (12), wherein the second coil unit (20) comprises a second coil (22), wherein the first coil unit (10) comprises a first controllable delay circuit (14) that is connected in series with the first coil (12), wherein the second coil unit (20) comprises a second controllable delay circuit (24) that is connected in series with the second coil (22), at least one control unit (40) for control of the first controllable delay circuit (14) and the second controllable delay circuit (24), a first driver circuit (50) for driving the first coil unit (10) and a second driver circuit (60) for driving the second coil unit (20), the method comprising: closing of the switching unit (30) through simultaneously switching on the first coil unit (10) and the second coil unit (20); maintaining the closed state of the switching unit (30) by the first coil unit (10) in the presence of a fault state in the second coil unit (20) or the second driver circuit (60); and maintaining the closed state of the switching unit (30) by the second coil unit (20) in the presence of a fault state in the first coil unit (10) or the first driver circuit (50).
13. The method of claim 12, further comprising: closing the switching unit (30) by switching on the second coil unit (20); and switching on the first coil unit (10) when a fault state is detected in the second coil unit (20) or in the second driver circuit (60).
14. The method of claim 13, wherein the first coil unit (10) is switched off after a predefined period of time by the first controllable delay circuit (14).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Forms of embodiment of the invention are explained in more detail with reference to the drawings and the following description.
(2) Here:
(3)
(4)
(5)
(6)
(7) In the following description of the forms of embodiment of the invention, the same or similar elements are identified by the same reference sign, wherein a repeated description of these elements is omitted in individual cases. The figures only represent the object of the invention schematically.
DETAILED DESCRIPTION
(8)
(9) The first coil unit 10 here comprises a first coil 12 and a first controllable delay circuit 14, which are connected in series with one another. The second coil unit 20 here comprises a second coil 22 and a second controllable delay circuit 24 which are also connected in series with one another.
(10) The switching element 100 according to the invention further comprises a switching unit 30 that comprises various components, such as for example an armature of ferromagnetic materials, at least one fixed switch contact and at least one movable switch contact. The armature here is mechanically bonded to the movable switch contact. The armature moves in dependency on a magnetic field generated by one or both coil units 10, 20. The at least one fixed switch contact and the at least one movable switch contact can thus be connected together or disconnected.
(11) The switching element 100 according to the invention further comprises seven terminals 1 to 7. The first coil unit 10 is here connected electrically via a first terminal 1 and a second terminal 2 to a first driver circuit 50 (see
(12) Control signals are supplied via a seventh terminal 7 from a control unit 40 (see
(13)
(14) An important difference between the switching element 100 illustrated in
(15) The switching element 100 according to the invention illustrated in
(16) Control signals are supplied via the terminal 7 from a control unit 40 to the first delay circuit 14, so that the delay times of the first delay circuit 14 can be set arbitrarily as required.
(17) A schematic illustration of the switching device 200 according to the invention is shown in
(18) The first driver circuit 50 is electrically connected via the terminals 1 and 2 of the switching element 100 to the first coil unit 10 (cf.
(19) An external electric circuit 300 is electrically connected via the terminals 5 and 6 of the switching element 100 to the switch contacts of the switching unit 30 (cf.
(20) A control unit 40 is electrically connected to the terminal 7, so that control signals for control of the first and/or of the second delay circuit 14, 24 (cf.
(21) The first and the second coil unit 10, 20 are supplied via the first and the second driver circuit 50, 60 from an external, common energy source 70. It is conceivable that the first and the second coil unit 10, 20 are supplied via the respective driver circuits 50, 60 from two separate energy sources 70. An external energy source 70 is used in
(22) The switching device 200 can comprise a control device (not illustrated) for control of both driver circuits 50, 60. It is, however, also conceivable that the two driver circuits 50, 60 are each assigned to a control device. It is also conceivable that the control of the driver circuits 50, 60 is carried out by at least one external control device.
(23)
(24) During operation of the switching device 200 according to the invention, the switching unit 30 of the switching element 100 according to the invention can be closed through the simultaneous switching on of the first coil unit 10 and of the second coil unit 20. If a fault state in the second coil unit 20 or in the second driver circuit 60 is detected, the closed state of the switching unit 30 is maintained by the first coil unit 10. If a fault state is detected in the first coil unit 10 or the first driver circuit 50, the closed state of the switching unit 30 is maintained by the second coil unit 20.
(25) If a fault state is detected in the second coil unit 20 or the second driver circuit 60, the first coil unit 10 can be switched off by the first delay circuit 14 after a predefined period of time if a control signal is passed from the control unit 40 to the first delay circuit 14. The switching unit 30 remains closed if no control signal is received from the at least one control unit 40.
(26) If a fault state is detected in the first coil unit 10 or in the first driver circuit 50, and the second coil unit 20 comprises a second delay circuit 24, the second coil unit 20 can be switched off by the second delay circuit 24 after a predetermined period of time if a control signal is supplied by the at least one control unit 40 to the second delay circuit 24. The switching unit 30 remains closed if a control signal is not received from the control unit 40, or if the second coil unit 20 does not have a delay circuit 24.
(27) During operation of the switching device 200 according to the invention, the switching unit 30 can also be closed by switching on the second coil unit 20. If a fault state in the second coil unit 20 or in the second driver circuit 60 is detected, the first coil unit 10 is switched on.
(28) After a predetermined period of time, the first coil unit 10 can be switched off by the first delay circuit 14.
(29) The invention is not restricted to the exemplary embodiments described here and the aspects emphasized herein. A large number of variations that lie within the scope of professional activity, are rather possible within the scope given by the claims.