CONTROL DEVICE FOR A VEHICLE
20230264639 · 2023-08-24
Assignee
Inventors
- Timm MUNTEL (Friedrichshafen, DE)
- Istvan HEGEDÜS-BITE (Eriskirch, DE)
- Hubert BICHELMEIER (Tettnang, DE)
- Bastian HUBRACHT (Salem, DE)
- Mohammad ALSHARIF (Tettnang, DE)
- Gowtham PERUMALSAMY (Markdorf, DE)
- Ilker Bagci (Ravensburg, DE)
Cpc classification
B60R16/0231
PERFORMING OPERATIONS; TRANSPORTING
H05K5/0026
ELECTRICITY
B60R16/03
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60R16/023
PERFORMING OPERATIONS; TRANSPORTING
B60R16/03
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A control device for a vehicle may include a housing, a first interface for connecting to a communication network in the vehicle, a connecting unit that is connected to the first interface, a first assembly connected to the connecting unit which is configured to control a function in the vehicle, and a port for a second assembly that is configured to control another function in the vehicle.
Claims
1. A control device for a vehicle, the control device comprising: a housing; a first interface for connecting to a communication network in the vehicle; a connecting unit that is connected to the first interface; a first assembly connected to the connecting unit, which is configured to control a function in the vehicle; and a port for a second assembly that is configured to control another function in the vehicle.
2. The control device according to claim 1, wherein the connecting unit is configured to be connected to the assemblies.
3. The control device according to claim 1, wherein the first assembly is configured to be connected to the second assembly.
4. The control device according to claim 1, wherein the port provides a mechanical attachment and electrical connection to the other assembly.
5. The control device according to claim 1, also comprising a second interface for connecting to a power supply network in the vehicle.
6. The control device according to claim 5, wherein the second interface can be configured to be connected to a redundant power supply.
7. The control device according to claim 1, wherein the housing satisfies a specific protection classification regarding sealing properties.
8. The control device according to claim 1, also comprising a securing element for mechanically attaching to the vehicle, wherein a vibration damper is placed between the housing and the securing element.
9. The control device according to claim 1, wherein the connecting unit is configured to communicate over the first interface by means of a first protocol, and with the at least one assembly by means of a second protocol.
10. The control device according to claim 1, wherein the connecting unit is replaceable.
11. A system comprising the control device according to claim 1, and at least one second assembly, which is configured to be inserted in the control device and control a function in a vehicle.
12. A vehicle, comprising the control device according to claim 1.
13. The vehicle according to claim 12, comprising a permanently installed component, wherein the control device is configured to control the component.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The invention shall be described below in greater detail in reference to the attached figures, in which:
[0022]
[0023]
DETAILED DESCRIPTION
[0024]
[0025] The vehicle 105 preferably contains a communication bus 115 with which messages can be sent between components 105, 110. There is also preferably a power supply network 120, which normally comprises a power source 125 that supplies electricity to the components 105, 110 in the vehicle 100. The power source 125 can be a battery or an electric motor, which can be powered by the drive motor 110.
[0026] The control device 105 comprises a housing 130 that is configured to protect the components therein against environmental effects. The housing 130 can preferably be opened and closed without damaging it. In one embodiment, the housing 130 is hermetically sealed against dust or liquids. The housing is preferably designed to be placed in the vehicle 105 where it is protected, at least to a certain extent, against damaging environmental effects that may occur in the vehicle 100, in particular water spray, grease, acids, fuel, dust, or high temperatures. The housing 130 is also preferably easy to access. By way of example, the housing 130 can be placed in the interior of the vehicle 100, i.e. in the passenger compartment. The housing 130 can be concealed for practical or aesthetic purposes, e.g. with a cladding, floor mat, or in a service compartment.
[0027] A mechanical connection between the housing 130 and the vehicle 100 can comprise a vibration damper 135 that is designed to cushion the control device 105 against vibrations and/or impacts to the vehicle. The vibration damper 135 can comprise an elastomer, rubber, or a combination of an elastic element and a cushioning element, in the manner of a shock absorber. In one embodiment, a securing element 140 such as a base plate or frame is secured to the vehicle 100, and the housing 130 can be attached to the securing element 140 and preferably secured or locked in place mechanically. Electrical connections between the control device 105 and the vehicle 100 can be activated through the insertion and terminated through the removal thereof. In another embodiment, the control device 105 is permanently connected to the securing element 140. To remove the control device 105 from the vehicle 100, the securing element 140 can be detached from the vehicle 100. Electrical connections to the control device can be separated manually.
[0028] The housing 140 preferably has a first interface 145 for connecting to the communication network 115 and a second interface 150 for connecting to the power supply network 120.
[0029] The first interface 145 can comprise a number of electrical contacts that can be connected to a pair of data lines in a CAN bus, for example. There can also be additional signal, shielding or communication lines. The first interface 145 can also support information transmission in a manner other than electrically, e.g. by means of light. The first interface 145 normally functions bidirectionally. There can be at least one communication protocol for communication with vehicle components.
[0030] The second interface 150 normally comprises at least a pair of electrical connections, although it can also have more, for conveying different electrical currents or signals. In particular, the second interface 150 can be configured to be connected to a redundant power supply. In this case, the vehicle 100 normally comprises at least two power supply networks 120, which are at least partially separated from one another.
[0031] The first interface 145 is connected to a connecting unit 155 inside the housing 130. The connecting unit 155 is connected to at least one assembly 160, which is configured to execute a predetermined function in the vehicle 100. The assembly 160 is preferably connected to the connecting unit 115 with a releasable connection 165.
[0032] The connecting unit 155 is preferably configured to communicate with the assembly 160, for which there can be a second communication protocol, which can differ from the first. By way of example, a PCIe Bus can be used between the connecting unit 155 and an assembly 160, on which another protocol is defined that that for the first interface 145 in the form of a CAN bus. The connecting unit 155 can translate messages in the communication protocols such that they are compatible with one another, and thus convert or translate addresses, arbitrations or transmission speeds, for example. It should be noted that numerous hierarchical communication protocols can normally be used at an interface 145, 165, as described, for example, for the ISO layer model for communication. A transformation of the connecting unit 155 can impact one or more layers.
[0033] The housing 130 has a port 170 for the assembly 160. The port 170 can comprise mechanical, electrical, or communicative specifications for the assembly 160. By way of example, a port 170 can define the available space for the assembly 160in terms of shape and size. There are numerous ports 160 in the present case, which can provide identical spaces, although different spaces can be made available in another embodiment. The mechanical attachment of an assembly 160 can also be defined by the port 170, e.g. with respect to a notch, edge, or hole that the assembly 160 must have in order to fit correctly in the housing 130.
[0034] The port 170 can also determine how much energy is available to an assembly 160 inserted therein. Communication between the assembly 160 and the connecting unit 155 can also be defined. Energy and communication can be conveyed over a combined connection 165, or there can be separate connections 165.
[0035] In another embodiment, there can be a cooling device in the housing 130, which can comprise a bearing surface for absorbing thermal energy from an assembly 160. The bearing surface can be connected to a heat sink on the outside of the housing 130 in a thermally conductive manner. In another embodiment, the bearing surface can be cooled by means of a closed cooling system. Alternatively, a gaseous coolant can flow through the housing 130. The amounts of energy that are to be absorbed from an assembly 160 by the cooling device or bearing surface may differ at the different ports 170.
[0036] In the present illustration, numerous assemblies 160 can each be placed in a port 170, such that each assembly 160 is then connected to the connecting unit 155. Connections can also be obtained between individual assemblies 160. One assembly 160 can also occupy numerous ports 170, in which case it can make use of just one or numerous connections 165 to the connecting unit 155. A number of ports 170 in the housing 130 is normally predefined, and there is normally one connection 165 for each port 170, even if no assembly 160 is inserted therein.
[0037]
[0038] In another embodiment, a second assembly 160 can also be connected to the second interface 150 by means of another connection.
REFERENCE SYMBOLS
[0039] 100 vehicle [0040] 105 control device [0041] 110 drive motor [0042] 115 communication bus [0043] 120 power supply network [0044] 125 power source [0045] 130 housing [0046] 135 vibration damper [0047] 140 securing element [0048] 145 first interface to communication bus [0049] 150 second interface to power supply network [0050] 155 connecting unit [0051] 160 assembly [0052] 165 connection [0053] 170 port