摘要:
Disclosed is a safety restraint design controller for controlling the design of a safety restraint system so that a predetermined desired level of an occupant's response is produced. The controller has a database for storing a occupant restraint factor response model. The model interrelates at least one predetermined restraint factor with the occupant response; the restraint factors having a level which is indicative of setting values for controlling the safety restraint design. A database engine connected to the database determines a level for the occupant response based upon the model and upon a first level of the restraint factors. A solver is connected to the database engine for determining a second level of the restraint factors which produces the desired level of the occupant response based upon the desired level of the occupant response from the database engine whereby the safety restraint design is controlled based upon the determined second level of the restraint factors which produces the desired level of the safety response.
摘要:
A system is provided for utilizing belt movement information in a motorized seat belt (MSB) control system algorithm to achieve better levels of comfort and safety. The MSB control system algorithm controls execution of multiple modes including a no friction mode, a stowage mode, a slack reduction mode, an out of position warning mode, a medium pull-back mode, and a high pull-back mode. The MSB control system algorithm also controls execution of a low power mode initiated after the other vehicle modules are put to sleep to provide the ability to stow the seat belt after the vehicle has been turned off for some period of time. The MSB control system algorithm also controls belt monitoring functions defined based on a buckle switch state that indicates the buckled or unbuckled state of the seat belt. Belt monitoring consists of belt movement being converted to counts based on a resolution provided by a belt movement sensor.
摘要:
A system is provided for utilizing belt movement information in a motorized seat belt (MSB) control system algorithm to achieve better levels of comfort and safety. The MSB control system algorithm controls execution of multiple modes including a no friction mode, a stowage mode, a slack reduction mode, an out of position warning mode, a medium pull-back mode, and a high pull-back mode. The MSB control system algorithm also controls execution of a low power mode initiated after the other vehicle modules are put to sleep to provide the ability to stow the seat belt after the vehicle has been turned off for some period of time. The MSB control system algorithm also controls belt monitoring functions defined based on a buckle switch state that indicates the buckled or unbuckled state of the seat belt. Belt monitoring consists of belt movement being converted to counts based on a resolution provided by a belt movement sensor.
摘要:
A system is provided for utilizing belt movement information in a motorized seat belt (MSB) control system algorithm to achieve better levels of comfort and safety. The MSB control system algorithm controls execution of multiple modes including a no friction mode, a stowage mode, a slack reduction mode, an out of position warning mode, a medium pull-back mode, and a high pull-back mode. The MSB control system algorithm also controls execution of a low power mode initiated after the other vehicle modules are put to sleep to provide the ability to stow the seat belt after the vehicle has been turned off for some period of time. The MSB control system algorithm also controls belt monitoring functions defined based on a buckle switch state that indicates the buckled or unbuckled state of the seat belt. Belt monitoring consists of belt movement being converted to counts based on a resolution provided by a belt movement sensor.
摘要:
A vehicle seat and a seat headrest are adjustable to accommodate seat occupants of varying heights. The headrest, height and seat position are adjusted together by connecting the headrest drive motor and the seat drive motor to a single control switch. The headrest has a smaller total distance of travel in relation to the travel distance of the vehicle seat. The headrest motor may drive a thread with a smaller pitch. Alternatively, there may be employed pulse width modulation of the electrical power supplied by a common switch or a similar device to create a proportional relationship between the motion of the headrest and the vehicle seat.
摘要:
A system is provided for utilizing belt movement information in a motorized seat belt (MSB) control system algorithm to achieve better levels of comfort and safety. The MSB control system algorithm controls execution of multiple modes including a no friction mode, a stowage mode, a slack reduction mode, an out of position warning mode, a medium pull-back mode, and a high pull-back mode. The MSB control system algorithm also controls execution of a low power mode initiated after the other vehicle modules are put to sleep to provide the ability to stow the seat belt after the vehicle has been turned off for some period of time. The MSB control system algorithm also controls belt monitoring functions defined based on a buckle switch state that indicates the buckled or unbuckled state of the seat belt. Belt monitoring consists of belt movement being converted to counts based on a resolution provided by a belt movement sensor.
摘要:
A system for initializing a module is provided wherein the system includes components associated with the module that are assembled separately. The system includes a sensor, a datum, a data reader, and a memory. The sensor and the datum are mounted on an item. The datum is associated with the sensor and is captured on the item in the form of a machine-readable code. The data reader reads the datum and communicates the datum to the memory that stores the datum. The stored datum is used in a module of a product that includes the item. In an exemplary embodiment, the product is a vehicle, the item is a seat, and the module controls a safety system for the vehicle. The safety system includes load sensors mounted in the seat to measure a weight of a seat occupant. The weight of the seat occupant is used to control the deployment of the vehicle safety systems such as an air bag or a seat belt pretensioner.
摘要:
An air bag module (20) having a base plate (30) and a toroidal air bag (80) is disclosed. The toroidal air bag (80) defines a pocket (120). The toroidal air bag (80) is coupled to the base plate (30). A control module (40) having a base plate portion (82) and a generally cylindrical portion (86) is coupled to the base and located within the toroidal air bag (80). The control module (40) has a control module cover (90) coupled to said generally cylindrical portion (86) disposed within said pocket (120).
摘要:
A system for detecting the position of a seat within an automobile in which a selected number of discrete sensors S is used to detect (2xS) seat positions. This is accomplished by using an actuator which, when positioned over three sensors, activates three sensors and when positioned over two sensors, activates both sensors and when positioned over a single sensor, activates only the single sensor. A simple algorithm or logic determines position by the rule that, if a single sensor is activated the seat is positioned over the single sensor, but if two sensors are activated, the seat is positioned between those two sensors, and if none of the sensors is activated, the seat is not positioned over any of those sensors.
摘要:
A system is provided for utilizing belt movement information in a motorized seat belt (MSB) control system algorithm to achieve better levels of comfort and safety. The MSB control system algorithm controls execution of multiple modes including a no friction mode, a stowage mode, a slack reduction mode, an out of position warning mode, a medium pull-back mode, and a high pull-back mode. The MSB control system algorithm also controls execution of a low power mode initiated after the other vehicle modules are put to sleep to provide the ability to stow the seat belt after the vehicle has been turned off for some period of time. The MSB control system algorithm also controls belt monitoring functions defined based on a buckle switch state that indicates the buckled or unbuckled state of the seat belt. Belt monitoring consists of belt movement being converted to counts based on a resolution provided by a belt movement sensor.