SAFETY SYSTEM FOR A MOTOR VEHICLE, METHOD FOR CONTROLLING A SAFETY SYSTEM, AND CONTROL UNIT
20230271587 · 2023-08-31
Inventors
Cpc classification
International classification
Abstract
A safety system (18) for an automotive vehicle (10) comprises a gas tank (20) in which pressurized gas is stored, a valve (22) associated with the gas tank (20), at least one airbag (24) connected to the valve (22) via a fluid line (30), and a control device (26). In the control device (26) vehicle information (32) is stored and the control device (26) is configured to control the valve (22) in an accident situation of the automotive vehicle (10) on the basis of the vehicle information (32) and to fill the airbag (24) with the gas stored in the gas tank (20). The invention further shows a method of controlling a safety system of an automotive vehicle and a control device.
Claims
1-12. (canceled)
13. A safety system for an automotive vehicle, comprising a gas tank (20) in which pressurized gas, specifically inert gas, is stored, a valve (22) associated with the gas tank (20), wherein gas can be led out of the gas tank (20) via the valve (22), at least one airbag (24) which is connected to the valve (22) via a fluid line (30), and a control device (26) which is electronically connected to the valve (22) and is configured to control the valve (22), wherein vehicle information (32) is stored in the control device (26) and the control device (26) is configured to control the valve (22) in an accident situation of the vehicle (10) based on the vehicle information (32) and to fill the airbag (24) with the gas stored in the gas tank (20).
14. The safety system according to claim 13, wherein the control device (26), the airbag (24) and/or the gas tank (20) is/are disposed in a vehicle seat (12).
15. The safety system according to claim 13, wherein the safety system (18) includes an environment sensor (40) and/or a crash sensor (38) which are connected to the control device (26) and are configured to detect an expected accident.
16. The safety system according to claim 13, wherein the safety system includes plural airbags (24) which are fluid-connected to the valve (22) of the gas tank (20) via corresponding fluid lines (30).
17. The safety system according to claim 16, wherein a valve system (34) is disposed in the fluid lines (30), the valve system (34) including at least one limiting valve (36) which is associated with at least one of the airbags (24) and is configured to limit the pressure value of the gas inside the associated airbag (24).
18. The safety system according to claim 17, wherein the valve system (34) is controllable and is connected to the control device (26), the control device (26) being configured to determine a pressure value for each airbag (24) for the expected accident situation and to control the valve (22) and the valve system (34) on the basis of the determined pressure value.
19. A method of controlling a safety system of an automotive vehicle, the safety system comprising a gas tank (20), a valve (22), at least one airbag (24) and a control device (26), wherein the control device (26) is connected to the valve (22) and vehicle information (32) is stored in the control device (26), by means of the following steps of: a) receiving a trigger signal by the control device (26), b) determining or reading out an amount of gas with which the airbag (24) is to be filled by the control device (26) on the basis of the vehicle information (32), c) controlling the valve (22) by the control device (26) on the basis of the vehicle information (32) stored in the control device (26) such that the airbag (24) is filled with the amount of gas.
20. The method according to claim 19, wherein the control device (26) defines a valve opening curve based on the vehicle information (32).
21. The method according to claim 19, wherein a pressure sensor (28) and/or temperature sensor (29) connected to the control device (26) is/are associated with the gas tank (20), wherein the control device (26) determines a pressure value by means of the pressure sensor (28) and/or determines a temperature value of the gas inside the gas tank (20) by means of the temperature sensor (29).
22. The method according to claim 21, wherein the control device (26) monitors the pressure value inside the gas tank (20) by means of the pressure sensor (28) and/or monitors the temperature value inside the gas tank (20) by means of the temperature sensor (29).
23. The method according to claim 21, wherein the control device (26) monitors a gas amount of the gas inside the gas tank (20) via the pressure value and/or the temperature value.
24. A control device for a safety system of an automotive vehicle, wherein the control device (26) is configured to carry out a method according to claim 20.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0048] Further features and advantages of the invention will result from the following description and from the attached drawings which are referred to in the following, and wherein:
[0049]
[0050]
[0051]
[0052]
DESCRIPTION
[0053]
[0054] Apart from the seat belt 16, the vehicle seat 12 includes a safety system 18.
[0055] The safety system 18 of
[0056] The control device 26 is connected to the valve 22 via an electric line 27. The electric line can be designed to be both wired and wireless.
[0057] In the embodiments of
[0058] Pressurized gas, for example an inert gas such as argon, helium, neon or nitrogen, is stored in the gas tank 20. Generally, in the gas tank 20 also a gas mixture may be stored, such as a gas mixture of helium and neon.
[0059] The valve 22 in the embodiment of
[0060] Hence, the valve 22 is mounted in and locks an opening of the gas tank.
[0061] In general, the valve 22 is associated only with the gas tank 20, i.e., a gas flow can be realized from the gas tank 20 to the at least one airbag 24 via the valve 22.
[0062] For example, the valve 22 could be arranged spaced apart from the gas tank 20 and could be fluid-connected to the gas tank 20 via an appropriate fluid line.
[0063] In a closed state of the valve 22, the valve 22 blocks a flow of the gas out of the gas tank 20, and in the opened state the gas flows out of the gas tank 20.
[0064] In the valve 22, a pressure sensor 28 and a temperature sensor 29 are disposed via which the pressure value and/or the temperature value of the gas inside the gas tank 20 is/are determined. For this purpose, the pressure sensor 28 and/or the temperature sensor 29 is/are connected to the control device 26 via the electric line 27.
[0065] The pressure sensor 28 is a digital manometer, for example. The temperature sensor 29 is a temperature detector or a thermocouple.
[0066] The valve 22 and the airbag 24 are, as is shown in
[0067] In an opened state of the valve 22, the gas stored in the gas tank 20 can thus flow into the airbag 24 via the fluid line 30.
[0068] Before the gas flows into the airbag 24, the airbag 24 is folded and integrated in the vehicle seat 12. For example, the airbag 24 is a side impact protection integrated in the vehicle seat 12 for the protection of the vehicle occupant 14.
[0069] The valve 22 is infinitely variable between the closed position of the valve 22 and the opened position of the valve 22 by means of the control device 26.
[0070] More precisely, in the control device 26 vehicle information 32 is stored, for example in a read-only memory of the control device 26, and the control device 26 is configured to control the valve 22 in an accident situation of the vehicle 10 based on the stored vehicle information 32 and, thus, to fill the airbag 24 with the gas stored in the gas tank 20. In addition, the control device 26 can access, e.g., additionally or alternatively, vehicle occupant-related sensor values which may be established via seat sensors 41 or interior sensors 42 so as to control, in an accident situation of the vehicle 10, the valve/valves 22 and, thus, to fill the airbag/airbags 24 with the gas stored in the gas tank 20. Via those seat sensors 41 which may be integrated or disposed in the vehicle seat 12 and/or the seat belt 16, for example, or via interior sensors 42 such as camera or radar systems, the body height, the weight or the position of the vehicle occupant 14 in the vehicle seat 12, for example, can be established.
[0071] For this purpose, the control device 26 makes use of a method shown in the block diagram of
[0072] In a first method step S1, the control device 26 determines the pressure value and/or or the temperature value of the gas inside the gas tank 20 via the pressure sensor 28 and/or the temperature sensor 29. In this manner, the control device 26 can determine the amount of gas stored in the gas tank 20.
[0073] For example, the control device 26 determines the amount of gas immediately after starting the vehicle 10 and monitors the pressure value and/or the temperature value during operation of the vehicle 10.
[0074] In a next method step S2, the control device 26 receives a trigger signal for triggering the safety system 18.
[0075] For example, the control device 26 receives the trigger signal from a central controller of the vehicle 10.
[0076] Subsequently (step S3), based on the stored vehicle information 32, the control device 26 determines an amount of gas with which the airbag 24 is to be filled.
[0077] As an alternative, the control device 26 can read the amount of gas out of a database stored in the control device 26 also on the basis of the vehicle information 32.
[0078] As an alternative, the control device 26 can additionally determine, apart from the amount of gas, based on the stored vehicle information 32 and/or the vehicle occupant-related sensor values and/or sensor values from a crash sensor 38 and/or an environment sensor 40 (see
[0079] In a next method step S4, the control device 26 controls the valve 22 or, resp., valves 22 of the valve system 34 so that the airbag 24 or, resp., airbags 24 is/are filled with the amount of gas determined or read out in the previous step S3.
[0080] In doing so, in the control device 26 a valve opening curve may be stored, for example as vehicle information 32.
[0081] Thus, a specific deployment of the airbag 24 or, resp., the airbags 24 is ensured.
[0082] In the safety system 18, the valve 22 can be opened and also closed again by means of the control device 26. Accordingly, the amount of gas for the corresponding airbag 24 is determined based on the vehicle information 32 and/or the vehicle occupant-related sensor values and/or the sensor values of the crash sensor 38 and/or the environment sensor 40.
[0083] Hence, an airbag 24 of any design can be filled with the gas stored in the gas tank 20 so that it is no longer necessary to design a respective inflator for each airbag 24 of a vehicle 10. The safety system 18 thus can be easily adapted to the respective vehicle 10 via the program code means stored in the control device 26. In this way, the number of different inflators required is reduced. Moreover, no pyrotechnics is necessary to fill the airbag 24.
[0084] On the basis of
[0085] In order to be able to differentiate between the fluid line 30 and the electric line 27, the fluid line in
[0086] In the embodiment of
Unlike the embodiment of
[0087] Moreover, the safety system 18 of
[0088] In addition, an airbag 24 is disposed on a side of the vehicle 10. For example, the airbag 24 in the filled state extends over the entire longitudinal side of the passenger compartment.
[0089] Each airbag 24 is connected to the valve 22 via an appropriate fluid line 30. Accordingly, it is not necessary for each airbag 24 to have a completely independent fluid line 30 from the valve 22 to the corresponding airbag 24. The fluid lines 30 of the individual airbags 24 may also be partly overlapping.
[0090] A valve system 34 is disposed in the fluid lines 30. The valve system 34 has plural limiting valves 36 for limiting the pressure value of the gas in the respectively associated airbag 24.
[0091] Accordingly, each limiting valve 36 is electrically connected to the control device 26 and the control device 26 is configured to control the limiting valves 36.
[0092] Correspondingly, the pressure values in the respective airbags 24 can be set by the control device 26.
[0093] Unlike the embodiment of
[0094] Via the crash sensor 38, an impact of the vehicle 10 on an obstacle or an impact of the obstacle on the vehicle can be detected. For example, the control device 26 receives the trigger signal from the crash sensor 38.
[0095] The vehicle environment of the vehicle 10 is monitored by means of the environment sensor 40. For example, the environment sensor 40 is a camera, a radar sensor, an ultrasonic sensor, a LIDAR sensor and/or an infrared sensor.
[0096] In particular, an expected accident can be detected by means of the environment sensor 40 and, correspondingly, a trigger signal can be transmitted to the control device 26 before the occurring crash.
[0097] In this way, the airbags 24 can be filled already before the occurring accident.
[0098] The airbags are filled already in a time interval from 0 to 200 ms, specifically from 20 to 100 ms before the accident, for example.
[0099] With the aid of the crash sensor 38 and/or the environment sensor 40, also the type of the (expected) accident situation can be determined, i.e., whether a frontal collision or a side collision is present or imminent, for example.
[0100] In general, it is conceivable that the safety system 18 fills the airbags with an appropriate amount of gas in response to the type of accident, that is, appropriately controls the limiting valves 36.
[0101] The control device 26 controls the limiting valves 36, for example, such that the airbags 24 between the vehicle occupant 14 and the obstacle are filled with higher pressure.