Intelligent switch for automotive application
11205547 · 2021-12-21
Assignee
Inventors
- Joerg Einhorn (Berlin, DE)
- Ralf Kakerow (Darmstradt, DE)
- Aruna Lawrence (Bensheim, DE)
- Mathias Michael (St. Leon-Rot, DE)
- Georges Ngongang (Longeville les Metz, FR)
- Ruediger Ostermann (Rimbach, DE)
- Steve Rohr (Birmingham, MI, US)
- Abraham Shocket (Cary, NC, US)
Cpc classification
H01H2071/124
ELECTRICITY
H01H9/54
ELECTRICITY
International classification
H01H9/54
ELECTRICITY
H01H50/04
ELECTRICITY
B60R16/03
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An intelligent switch for automotive application. In particular, a resettable and/or programmable fuse comprising at least one inlet, at least one outlet, and a switch circuit electrically connecting the at least one inlet and the at least one outlet. In order to provide an intelligent switch for automotive applications that provides more than one switching function, the switch circuit comprises at least two switching submodules selected from an electromechanical switching submodule and an electric switching submodule. The intelligent switch further comprises a control unit for controlling an operating state of the at least two switching submodules.
Claims
1. An intelligent switch comprising: a pair of inlets including a first inlet and a second inlet; a pair of outlets including a first outlet and a second outlet; and a switch circuit electrically connecting the inlets and the outlets and comprising: (a) an electromechanical switching submodule connecting the first inlet to the first outlet on a first path, the first inlet is connectable to the first outlet only by the electromechanical switching submodule, (b) an electrical switching submodule connecting the second inlet to the second outlet on a second path, the second inlet is connectable to the second outlet only by the electrical switching submodule, (c) a control unit for controlling an operating state of the electromechanical switching submodule and the electrical switching submodule, (d) a first diagnostic submodule arranged in the first path between the electromechanical switching submodule and the first outlet, and (e) a second diagnostic submodule arranged in the second path between the electrical switching submodule and the second outlet.
2. An intelligent switch according to claim 1, wherein the electromechanical switching submodule is at least one of a monostable switching submodule and a bistable switching submodule.
3. An intelligent switch according to claim 2, wherein the electric switching submodule is a semi-conductor switch.
4. An intelligent switch according to claim 3, wherein the control unit comprises at least one control interface for connecting the control unit to a network system located outside the intelligent switch.
5. An intelligent switch according to claim 4, wherein the control unit is connected to both switching submodules by a driving line.
6. An intelligent switch according to claim 5, wherein each diagnostic submodule comprises at least one sensor for detecting at least one of the operating state of a switching submodule, a path current, a temperature, and a voltage.
7. An intelligent switch according to claim 6, (a) further comprising a status line, and (b) wherein the at least one sensor is connected to the control unit by the status line.
8. An intelligent switch according to claim 7: (a) further comprising an electrical automotive connector having: (1) a base assembly having at one side thereof a connector face with the inlets and the outlets, and (2) an interior side opposite to the connector face, and (b) wherein the switch circuit is at the interior side.
9. An intelligent switch according to claim 8, wherein the connector face has at least three terminals.
10. An intelligent switch according to claim 9: (a) further comprising a power supply line, and (b) wherein the control unit further comprises a single control interface connected to or corresponding to one of the terminals and that the control unit is connected to at least one of the inlets by the power supply line.
11. An intelligent switch according to claim 10, further comprising at least one circuit board having at least one electrical or electromechanical component selected from the group of electromechanical switching submodule, electrical switching submodule, control unit, driving line, power supply line, status line, and sensor.
12. An intelligent switch according to claim 11, further comprising at least two circuit board sections at the interior side which extend away from the base assembly and face each other and each circuit board section comprises at least one electrical component or electromechanical component.
13. An intelligent switch according to claim 2, wherein the electric switching submodule is at least one of a field-effect transistor and a smart field-effect transistor.
14. An intelligent switch according to claim 8, wherein the connector face has a socket or plug having nine terminals.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In the figures:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
DETAILED DESCRIPTION OF THE EMBODIMENT(S)
(9) In
(10) The intelligent switch 100 comprises at least one inlet 103 and at least one load outlet 105. The inlet 103 may be an input port, (e.g., for a load line). The outlet 105 may be an output port, (e.g., for a load line). The inlet 103 and the outlet 105 may be a terminal 9 or contact element (e.g., a contact pin or a contact socket) of the intelligent switch 100.
(11) In the first embodiment shown in
(12) A switch circuit 107 electrically connects the at least one inlet 103 and the at least one outlet 105. The switch circuit 107 comprises at least one electromechanical switching submodule 109 as an electromechanical component 29 and at least one electrical switching submodule 111 as an electrical component 27.
(13) In the exemplary embodiment shown in
(14) A monostable relay has the advantage that it reaches a safe state after power down that keeps the electromechanical switching submodule in one predetermined state, for example, in an open state, thus interrupting the load circuit. A bistable electromechanical switching module, such as a bistable relay is advantageous in that it merely requires very low coil power consumption for switching between its two switching (or operating) states.
(15) Electromechanical switches, in particular a monostable relay requires manual resetting. Contrary thereto, it is possible to reset a semi-conductor switch remotely. Further, semi-conductor switches allow pulse width modulation, making it possible to control the voltage and current fed through the load path to the load, e.g. a lamp. Further, semi-conductor switches respond very quickly and are a small size, thus allowing miniaturization of the electric automotive switch/fuse. The quick response allows semi-conductor switches to be used as a soft fuse that disconnects the load before the current reaches values that are too high. The electric switching submodule may be a field-effect transistor that can operate at high voltages, e.g. within a 48 volt power net. Further, field-effect transistors require low power consumption for controlling the switch and may have diagnostic features on board, such as, for example a current, temperature or voltage detector.
(16) The circuit 121, in the shown embodiment of the present invention, comprises, in addition to the intelligent switch 100 or fuse 101, an electrical load 123 which is led to ground 125 of, for example an automotive that is not shown in the case of using the switch 100 for an automotive application.
(17) The intelligent switch 100, in the embodiment of the present invention shown in
(18) The control unit 127 is connected to the electromechanical switching submodule 109 via a driving line 131 and to the electric switching submodule 111 via another driving line 133. In case of monostable relays used as a monostable switching module 113, the driving line 133 connects the microcontroller 129 to a driver, here a relay driver 135. The driver 135 acts on the switching monostable switching module 113 and, upon receiving a corresponding signal from the control unit 127 via the driving line 133, brings the electromechanical switching submodule 113 into a certain operating state, commonly the “off”-state, in which it interrupts the path 119.
(19) The control unit 127 comprises a control interface 137 for connecting the control unit 127 to a network system (not shown in detail) located outside of the intelligent switch 100. In the embodiment shown in
(20) The control interface 137 may be connected to a bus system 139 for connecting the control unit 127 of the intelligent switch 100 to a master controller, (e.g., an engine or electrical control unit (not shown) of an automobile). The bus system 139 may be, for example a LIN bus, or any other preferably single-wire network allowing to send data from a master controller to the control unit 127 of the intelligent switch 100 or sending information about the intelligent switch 100 from its control unit 127. However, other existing communication technologies, like a Controller Area Network (CAN), FlexRay, Media Oriented Systems Transport, and Low Voltage Differential Signaling, may also be used.
(21) The fuse 101, in the embodiment of the present invention shown in
(22) In the embodiment of the present invention shown in
(23) The intelligent switch 100 in the embodiment of the present invention shown in
(24) The intelligent switch 100 further comprises a temperature sensor 153. In the shown embodiment of the present invention, the temperature sensor 153 is an internal temperature sensor of the microcontroller 129.
(25) In summary, the intelligent switch 100 comprises sensors 145 that are capable of detecting the operating state of the switching submodules 109, 111, the current, and consequently the voltage in the subpath 119a and 119b as well as the temperature. The microcontroller 129 may thus receive data concerning the contact state of the switching submodules 109, 111, the current and/or voltage in the subpath 119a and 119b and the temperature in the switch 100. Based on the respective data received from the sensors 145 via the status lines 149, 149a, the control unit 127 may decide, for example, whether there is an overload, an overvoltage, a short circuit, or thermal stability. In case there is no malfunction, (i.e., no overload, no overvoltage, no short circuit and thermal stability), the control unit 127 may send a status to the master controller of the automotive via the bus system 139 connected to the control interface 137. In case of a malfunction, (e.g., an overload, overvoltage, short circuit or thermal instability), the control unit 127 may take the appropriate measures by sending data via driving lines 131, 133 for accordingly changing the operating state of its switching modules 109, 111, (e.g., opening the monostable relay), thus interrupting the path 119.
(26) The switch circuit 107 of the embodiment of the present invention shown in
(27)
(28) The intelligent switch 100 of the embodiment of the present invention shown in
(29) In the second path 119′, an electrical switching submodule 111 is arranged, as well as a contact state monitor 147 that is capable of detecting and outputting the operating state of the electric switching submodule 111. Circuits 121, 121′ comprising the first path 119 and the second path 119′, respectively, each comprise a different load 123, 123′ that is connected to the ground 125 of, for example, an automobile.
(30) The intelligent switch 100 of the embodiment of the present invention shown in
(31) In the embodiment shown in
(32) In a further alternative, which is not shown in the figures, instead of having two separate paths 119, 119′, the electromechanical switching submodule 109 and the electric switching submodule 111 may be arranged in series in the same path. This could be achieved, for example, by connecting the outlet 105 shown in
(33) In
(34) In the embodiment of the present invention shown in
(35) Of course, in alternative embodiments of the present invention, arbitrary combinations of switching submodules are possible. For example, the design shown in
(36) Arranging an electromechanical switching submodule 109 and an electrical switching submodule 111 in parallel in one path allows use of the intelligent switch 100 as an age-booster solution for the electromechanical switching submodule 109. One problem with electromechanical relays is the undesired arcing between the contacts. The undesired arching might eventually lead the contacts shut, or make the relay fail due to the contact surface damage by the destructive arc energy upon switching events. The embodiment using a parallel combination of electrical switching submodule 111, (e.g., a power MOSFET), and an electromechanical switching submodule 109, such as a relay reduces the undesired arcing. For switching the load, first the electric switching submodule 111 switches on, and then the electromechanical switching submodule 109 takes over. This helps by passing the in-rush current through the electric switching submodule 111 and reduces the arcing effect on the contacts of the electromechanical switching submodule 109.
(37) Although the control unit 127 is shown in the embodiments of
(38) The intelligent switch 100 shown in
(39) The electric connector 1 with the base assembly 11 may have an interior side 17 opposite the connector face 7, at which the switch circuit 107 is provided. As will be shown in the following, the connector face 7 may comprise at least three terminals 9, but preferably comprises the connector face having nine terminals 9.
(40) As will be explained in detail below, the intelligent switch 100 for automotive application may comprise at least two circuit board sections 19 that are provided at the interior side 17 which extend away from the base assembly 11 and face other, wherein each of the at least two circuit board sections 19 comprises at least one electric 27/or electromechanical component 29 of the switch circuit 107.
(41) In
(42) The plug-in form 5 is characterized by a connector face 7 which comprises a multitude of contact elements or terminals 9. The electric connector 1 further comprises a base assembly 11 which receives the terminals 9.
(43) The contact elements or terminals 9 extend from the base assembly 11 to a connector side 13 in a connector direction 15. Along the connector direction 15, the electric connector 1 of the intelligent switch 100 may be plugged into a corresponding plug socket provided, for instance, in a car.
(44) Opposite to the connector face 7, the electric connector 1 comprises an interior side 17 on which two circuit board sections 19 are provided which extend away from the base assembly 11.
(45) The two circuit board sections 19 are oriented essentially perpendicular to the base assembly 11 and parallel to each other. The two circuit board sections 19 are each embodied on a circuit board 21, wherein the circuit boards 21 shown in the embodiment of
(46) Each of the individual circuit boards 21a defines a mounting volume 23 which faces towards a space 25 between the circuit boards 21 and a mounting volume 23 which faces away from space 25. The mounting volumes 23 are indicated in
(47) Within the mounting volumes 23, each of the circuit board sections 19 may comprise at least one electrical component 27 or electromechanical component 29 of the switch current 107 illustrated in
(48)
(49) For reasons of visibility, the mechanical connection between the base assembly 11 and the circuit boards 21 will be explained with reference to
(50) The basic assembly of the second embodiment of the present invention shown in
(51) The electrically conductive elements 37 are attached to the individual circuit boards 21a via through hole 33. An established electric connection 39 allows for transmission of electrically coded data and/or supply voltages from one individual circuit board 21a to another individual circuit board 21a.
(52) The electrically conductive elements 37 also mechanically stabilize the individual circuit boards 21a by preventing, or at least reducing, vibrations of the individual circuit boards 21a along a vibration direction 41 indicated by a double-headed arrow. The individual circuit boards 21a and the electrically conductive elements 37 are arranged in a U-shape 43.
(53)
(54) The individual circuit boards 21a may be loosely received in the grooves 47 or may be press-fit into the grooves 47 or may be mechanically clamped or fixed to the grooves 47 by appropriate fixation means (e.g., a screw, which is not shown in
(55) The second embodiment of the electric connector 1, constructed in accordance with the present invention shown in
(56)
(57) The bearing receptacles 57 and the bearing members 55 engage with each other in a form-fit 49, (i.e., the bearing members 55 abut the interior of the bearing receptacles 57), which detachably receive the bearing members 55. The bearing members 55 and the bearing receptacles 57 are essentially complementary to each other.
(58) In the embodiment of the electric connector 1 shown in
(59) The further circuit board section 53 is arranged on a further circuit board 59 which is oriented essentially perpendicular to the individual circuit boards 21a and essentially parallel to the base assembly 11. The further circuit board 59 defines additional mounting volumes 23 in which further electric components 27 or electromechanical components 29 may be mounted to the further circuit board 59. The further circuit board 59 may be electrically connected to at least one of the individual circuit boards 21a by an electrically conductive element 37 which is exemplarily shown in
(60) Also, in the embodiment of the intelligent switch 100, constructed in accordance with the present invention, for automotive applications shown in
(61)
(62) The at least two circuit board sections may be galvanically isolated from each other except for the electric connection via the at least one electrically conductive element. An arbitrary number of electrically conductive elements may be provided and may electrically connect the at least two circuit board sections to each other. A plurality of electrically conductive elements may be used to provide a driving current and/or electrically coded signals from one circuit board section to different electric components on the second circuit board section. The electrically conductive elements may also be used to transmit control signals from one circuit board section to the other circuit board section.
(63) The monolithic circuit board 61 comprises two circuit board sections 19 which are essentially oriented perpendicular to the base assembly 11 and essentially parallel to each other, and a further circuit board section 53 which is essentially oriented perpendicular to the two circuit board sections 19 and essentially parallel to the base assembly 11. The ends of the monolithic circuit board 61 are received in the grooves 47 of the base assembly 11 and are engaged in a form-fit 49 therewith. Between each of the two circuit board sections 19 and the further circuit board section 53, there is an angled section 63.
(64) In the embodiment of the present invention shown in
(65) The angled sections 63 of the embodiment shown in
(66) The angled sections 63 are located at side walls 75 of the electrical automotive connector 1 facing away from the space 25 in between the circuit board sections 19 and the further circuit board section 53. This has the advantage that a bending radius 77 of the angled sections 63 is larger than the bending radius 77 obtainable if the angled sections 63 are located at inner walls 79 of the intelligent switch 100. An increased bending radius 77 reduces the risk of fractures and/or severe damage respectively to the angled sections 63.
(67) In the zoom 70 of
(68) Although an electrical component 27 is only shown in
(69) The entire intelligent switch 100 may be comprised in a connector housing, which is not shown in the figures but commonly applied for the electrical connectors 1 shown herein.
(70) The footprint of the embodiments shown in
(71) An intelligent switch for automotive applications constructed in accordance with the present invention module that has a combination of switching submodules (e.g., two bi-stable, one monostable and a Smart FET), offers more than one switching function in a single case. The parallel use of switches enables space and weight optimized architectures. Any other electrical combination of the included switching submodules increases functional safety. In addition to the electrical contacts for power signals, the inventive switch may be independently controlled by a 4-pin LIN (Local Interconnect Network) bus interface that provides direct communication with vehicle ECU. This introduces highest flexibility for the control architecture thereby addressing the need of de-centralized modules. A LIN is a concept for low cost automotive networks. The LIN is a serial communications protocol which efficiently supports the controller of mechatronics nodes in a distributed automotive application. The properties and advantages of the LIN bus system are that it is a single master with multiple slaves concept that is self-synchronizing having a deterministic signal transmission with signal propagation time computer built in advance. It is of low cost and high speed at a single-wire implementation. Due to the single-wire implementation, an embodiment of the electric automotive switch, in which the control unit comprises a single control interface connected to one terminal only, is possible. This allows an embodiment of the electric automotive switch comprising a standardized ISO socket or plug having nine terminals to house up to four different load paths. In this case, the nine terminals may be assigned to four different load inlets, four different load outlets and the control interface which, via a LIN bus, may communicate with a master controller. In this embodiment, using a standard connector face, nevertheless achieves a high degree of flexibility. However, the intelligent switch may likewise comprise more than one control interface and/or more than one control unit. Further, any kind of appropriate communication medium can be implemented including existing automotive communication technologies such as Controller Area Network (CAN), FlexRay (FR), Media Oriented Systems Transport (MOST) and Low Voltage Differential Signaling (LVDS). An advantage of using LIN is that it is a cheaper alternative to the CAN networks usually used for vehicles. LIN systems can be connected to a vehicle CAN network via a LIN/CAN gateway. This reduces the number of devices that need to communicate with the CAN network, eliminating the costs of CAN controllers for each of the switches. LIN complements CAN by being much cheaper and yet supporting the communication needed for typical automotive subsystems.
(72) The present invention thus incorporates different protections such as those against overvoltage and reverse battery polarity, and diagnostic functions may be included as well. It can, therefore, represent the functionality of a fuse, since it disconnects the load in case of anomalies such as short circuit or overvoltage conditions. It enables any power distribution and control architectures in future vehicles.
(73) The inventive intelligent switch not only helps reducing the number of control wires, it also offers a compact shape that is compatible with the existing platforms. It transforms a simple switching element (i.e., an electromechanical relay) to an intelligent device that has more than one switching function and may, in certain embodiments, additionally communicate with its commander-unit and provide information about its status and conditions. Based on different scenarios (e.g., software implemented in the control unit), it can also take decisions on its own, even before the ECU handles a fault event.
(74) This switch has a flexible and modular architecture/hardware. Thus, based on customers' preferences, different generics with different number/type of the switching elements inside the module can be developed with minor—mainly software—modifications. Besides, the automatic node-addressing makes this switch quite robust for the repair and maintenance. No extra addressing modification is required for a replacement module.
(75) In one specific embodiment of the electric switch according to the present invention and at least one terminal for the bus communication, up to a total of four switching submodules may be comprised in the switch. Even a switch with four switching submodules would be capable of being used together with a standardized ISO plug or socket having nine terminals, such as for example a mini-ISO plug according to DIN 72552. These nine terminals could, for example, be used for various inlets and outlets.