Circuit Arrangement For Deactivating An Occupant Protection Device And Occupant Protection System
20200269792 · 2020-08-27
Assignee
Inventors
Cpc classification
B60R21/017
PERFORMING OPERATIONS; TRANSPORTING
B60R21/01564
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60R21/017
PERFORMING OPERATIONS; TRANSPORTING
B60R21/231
PERFORMING OPERATIONS; TRANSPORTING
B60R21/015
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A circuit arrangement for deactivating an occupant protection device is indicated, comprising a first switch having a first ohmic resistor connected in series with the first switch. The first ohmic resistor together with the first switch and a second ohmic resistor lying parallel to both form a first parallel connection. The circuit arrangement includes a second switch having a third ohmic resistor connected in series with the second switch. The third ohmic resistor together with the second switch and a fourth ohmic resistor lying parallel to both form a second parallel connection, the first parallel connection and the second parallel connection are connected in series with one another. A resistance value of the first ohmic resistor is greater than the resistance value of the third ohmic resistor, and a resistance value of the second ohmic resistor is greater than the resistance value of the first ohmic resistor.
Claims
1. A circuit arrangement for deactivating an occupant protection device, the circuit arrangement comprising: a first parallel connection comprising: a first switch; a first ohmic resistor connected in series with the first switch; and a second ohmic resistor, wherein the first ohmic resistor together with the first switch and the second ohmic resistor lying parallel to both form the first parallel connection; and a second parallel connection comprising: a second switch; a third ohmic resistor connected in series with the second switch; and a fourth ohmic resistor, wherein the third ohmic resistor together with the second switch and the fourth ohmic resistor lying parallel to both form the second parallel connection, wherein the first parallel connection and the second parallel connection are connected in series with one another, wherein the resistance value of the first ohmic resistor is greater than the resistance value of the third ohmic resistor, wherein the resistance value of the second ohmic resistor is greater than the resistance value of the first ohmic resistor, and wherein the resistance value of the fourth ohmic resistor is greater than the resistance value of the second ohmic resistor.
2. The circuit arrangement according to claim 1, wherein the resistance value of the third ohmic resistor is substantially 0 .
3. The circuit arrangement according to claim 1, wherein the resistance value of the first ohmic resistor is 100 , wherein the resistance value of the second ohmic resistor is 1000 , and wherein the resistance value of the fourth ohmic resistor is 1500 .
4. An occupant protection system comprising: a control circuit; and a circuit arrangement for deactivating the occupant protection system, the circuit arrangement comprising: at least one switch; a first ohmic resistor connected in series with the first switch; and a second ohmic resistor, the first ohmic resistor together with the first switch and the second ohmic resistor lying parallel to both form a first parallel connection, wherein the control circuit detects a total resistance value of the circuit arrangement or a variable dependent thereon and compares this with at least one threshold, and wherein a first threshold is provided, wherein the occupant protection system is activated in the event of the first threshold being fallen short of, and wherein the occupant protection system is deactivated in the event of the first threshold being exceeded.
5. The occupant protection system according to claim 4, wherein the at least one switch is connectable to an input of the control circuit, and the control circuit detects the total resistance value or a variable dependent thereon of the respectively arranged circuit arrangement, wherein the identical first threshold is used irrespective of the connected circuit arrangement.
6. The occupant protection system according to claim 5, wherein the first threshold is derived from the value of the total resistance of the first and second ohmic resistor and the resistance value of the second ohmic resistor.
7. The occupant protection system according to claim 6, wherein the first threshold is between the value of the total resistance of the first and second ohmic resistors and the resistance value of the second ohmic resistor, is approximately centrally between the value of the total resistance of the first and second ohmic resistor and the resistance value of the second ohmic resistor.
8. The occupant protection system according to claim 4, wherein the first threshold lies in a resistance range of 421 to 651 .
9. The occupant protection system according to any one of claims 4, wherein a second threshold is provided, wherein the second threshold is less than the first threshold, the second threshold lies in a resistance range of 35 to 60 , wherein the occupant protection system is activated in the event of the second threshold being exceeded and the first threshold simultaneously being fallen short of, and wherein the occupant protection system is deactivated in the event of the second threshold being fallen short of.
10. The occupant protection system according to claim 4, wherein the at least one switch interacts with a first sensor in order to detect a position of a rear seat backrest, and wherein the at least one switch deactivates the occupant protection system, as a function of the position of the rear seat backrest.
11. The occupant protection system according to claim 10, wherein the occupant protection system is a side airbag.
12. The occupant protection system according to claim 10, wherein the function of the position of the rear seat backrest includes a function of a condition of a latching apparatus for locking the rear seat backrest.
Description
DESCRIPTION OF DRAWINGS
[0021]
[0022]
[0023] Like reference symbols in the various drawings indicate like elements.
DETAILED DESCRIPTION
[0024]
[0025] The resistance value of the first ohmic resistor R1 is 100 , the resistance value of the second ohmic resistor R2 is 1000 and the resistance value of the fourth ohmic resistor R4 is 1500 . The resistance value of the third ohmic resistor is substantially 0 .
[0026] The first switch S1 interacts with a first sensor (not represented) in order to detect the status of a first locking device of a latching apparatus for locking the backrest of the rear seat. The second switch S2 interacts with a second sensor (not represented) of a second locking device of the latching apparatus.
[0027] The control circuit 2 may be configured to detect the total resistance value of the circuit arrangement 3 as well as to compare the detected total resistance value with at least one threshold. In connection with this, a first threshold is provided. In the event of the first threshold being fallen short of, the occupant protection device is activated, in the event of the first threshold being exceeded, the occupant protection device is deactivated, i.e. switched off.
[0028] The first threshold lies approximately centrally between the value of the total resistance of the first ohmic resistor R1 and of the second ohmic resistor R2, which consequently results from the formula ((R1*R2)/(R1+R2)), and the resistance value of the second ohmic resistor R2, and is 530 .
[0029] In the event that the first switch S1 and simultaneously the second switch S2 are closed, which corresponds to a latched first locking device and a latched second locking device of the latching apparatus of the rear seat backrest, the total resistance value of the circuit arrangement 3 is approximately 91 . The first threshold of 530 is thus fallen short of. Consequently, this means that the occupant protection device is activated.
[0030] In the event that only the first switch S1 is closed, whereas the second switch S2 is open, which corresponds to only a latched first locking device, the total resistance value of the circuit arrangement 3 is approximately 1591 . In the event that only the second switch S2 is closed, whereas the first switch S1 is open, which corresponds to only a latched second locking device, the total resistance value of the circuit arrangement 3 is approximately 1000 . In the event that both the first switch S1 and the second switch S2 are open and, thus, both locking devices are not latched, the total resistance value of the circuit arrangement 3 is approximately 2500 . In all three of these cases, that is to say first switch S1 and/or second switch S2 open, the first threshold of 530 is consequently exceeded. This means that the occupant protection device is deactivated or switched off.
[0031]
[0032] The circuit arrangement 3 therefore only includes a first switch S1 which interacts with a sensor (not represented) in order to detect the status of the locking device, having a first ohmic resistor R1 connected in series with the first switch, the first ohmic resistor together with the first switch S1 and a second ohmic resistor R2 lying parallel to both forming a parallel connection 4. The resistance value of the first ohmic resistor R1 is 100 and the resistance value of the second ohmic resistor R2 is 1000 . That is to say, the parallel connection 4 of the circuit arrangement 3 shown in
[0033] The control circuit 2 which is likewise configured identically to the control circuit 2 represented in
[0034] The first threshold lies approximately centrally between the value of the total resistance of the first ohmic resistor R1 and of the second ohmic resistor R2, which thus results from the formula ((R1*R2)/(R1+R2)), and the resistance value of the second ohmic resistor R2, and is 530 .
[0035] In the event that the first switch S1 is closed, which corresponds to a latched locking device of the latching apparatus of the rear seat backrest, the total resistance value of the circuit arrangement 3 is approximately 91 . The first threshold of 530 is thus fallen short of. Consequently, this means that the occupant protection device is activated.
[0036] In the event that the first switch S1 is open, which corresponds to a non-latched locking device of the latching apparatus, the total resistance value of the circuit arrangement 3 is approximately 1000 . The first threshold of 530 is consequently exceeded. This means that the occupant protection device is deactivated or switched off.
[0037] The key thing is that the identical first threshold to that in the example according to
[0038] It is made possible to connect both a circuit arrangement 3 having only a (first) switch S1 and alternatively a circuit arrangement 3 having a first switch S2 and a second switch S2 to one and the same input of the identical control circuit 2. The first threshold, which is identical in both cases, covers both embodiments, without necessitating any change in the implementation.
[0039] A number of implementations have been described. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the disclosure. Accordingly, other implementations are within the scope of the following claims.