This invention relates to an electronic control unit having central current regulation for a plurality of airbag squib deployment circuits.
Electronic control units are used for deploying pyrotechnic restraint devices, such as airbags and pretensioners, during a crash event. Each airbag includes a squib deployment circuit to begin deployment of the airbag. Current regulation is provided for each squib deployment circuit to control current load to each squib deployment circuit. Thus, in known electronic control units each squib deployment circuit includes a dedicated current regulator. In a typical crash event, the electronic control unit does not deploy the entire restraint system and therefore does not ignite all of the airbag squibs. Therefore, the current regulators on the unused squib deployment circuits are not utilized. In addition it is customary to provide a safety circuit in a squib deployment circuit which has a redundant function to switch the deploy current. This is to prevent unwanted deployments due to a failure in the primary squib deployment circuit.
Accordingly, reducing the number of unused current regulators would reduce hardware and simplify circuitry, providing lower cost and increased efficiency. It is therefore desirable to develop and design an electronic control unit providing current regulation for each squib deployment circuit that reduces the amount of hardware and simplifies the electronic control unit circuitry.
An example electronic control unit according to this invention includes an airbag deployment circuit having a multi-channel central current regulator for all squib deployment circuits.
An example electronic control unit for an airbag includes at least one airbag deployment circuit and an energy source. The energy source is utilized for multiple airbag deployment circuits such as a side curtain airbag and a side thorax airbag. Each airbag deployment circuit includes a single current regulator and multiple squib deployment circuits connected to the current regulator. In a crash event all the squib deployment circuits may not need to deploy. However, some squib deployment circuits must be simultaneously deployed. An example would be the same side of a vehicle side curtain airbags and side thorax airbags. Squib deployment circuits that are not be deployed simultaneously are attached to the same current regulator. The electronic control unit sends a signal to the airbag deployment circuit. A current regulation switch located at each channel of the current regulator closes if any of the squib deployment circuits attached to the associated current regulator need to be deployed.
These and other features of the present invention can be best understood from the following specification and drawings, the following of which is a brief description.
Each airbag deployment circuit 12 includes a current regulator 22. At least one squib deployment circuit 24 is connected to the current regulator 22. In the example shown there are four squib deployment circuits 24 attached to the current regulator 22. The number of squib deployment circuits 24 attached to each current regulator 22 may vary. Squib deployment circuits 24 that are not deployed simultaneously are attached to the same current regulator 22. This is typically between two and four squib deployment circuits 24. In other words, all the squib deployment circuits 24 in an airbag deployment circuit 12 may not need to be deployed for a crash event. However, some squib deployment circuits 24 must be simultaneously deployed. Thus, the number of current regulators 22 in the electronic control unit 10 is equal to the number of squib deployment circuits 24 that must be deployed simultaneously.
Each of the squib deployment circuit 24 includes a high side transistor switch 26 and a low side transistor switch 28 and an airbag squib 32 (shown as a resistor). The high side transistor switch 26 and the low side transistor switch 28 controls the activation of the squib 32 that is located between them. Alternatively, the airbag deployment circuit 12 may include only high side transistor switches 26.
In a crash event the electronic control unit 10 sends a signal to the airbag deployment circuit 12. A current regulation switch 30 is located prior to each current regulator 22. Alternatively, the current regulation switch 30 can also be located before the current regulator 22. The current regulation switch 30 is closed if any of the squib deployment circuits 24 attached to the associated current regulator 22 need to be deployed. One or all of the current regulation switches 30 may be closed for any given crash event based upon the signals from the electronic control unit 10. Additionally, the high side transistor switch 26 and the low side transistor switch 28 are closed for each of the squib deployment circuits 24 that are to be deployed. In order to regulate the current to each squib deployment circuit 24, only one squib deployment circuit 24 may be deployed simultaneously per current regulator. Thus, with arrangement a shared current regulator can control current the multiple squib deployment circuits 24
Although a preferred embodiment of this invention has been disclosed, a worker of ordinary skill in this art would recognize that certain modifications would come within the scope of this invention. For that reason, the following claims should be studied to determine the true scope and content of this invention.
The present invention claims the benefit of U.S. Provisional Patent Application No. 60/663,518, filed Mar. 18, 2005.
Number | Date | Country | |
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60663518 | Mar 2005 | US |