Patent classifications
B60R21/16
Safety systems for modular seating
A safety system for a vehicle includes a work table, an airbag, and a controller that includes a processor. The work table is disposed in an extended position and is movable to a reaction position and a stowed position. The processor is configured to receive information indicative of a vehicle event. The processor is further configured to send a command to deploy the airbag based on the information indicative of the vehicle event. When deployed, the airbag expands to abut a bottom surface of the work table and move the work table from the extended position to the reaction position such that the bottom surface of the work table in the reaction position serves as a reaction surface for the airbag.
Safety systems for modular seating
A safety system for a vehicle includes a work table, an airbag, and a controller that includes a processor. The work table is disposed in an extended position and is movable to a reaction position and a stowed position. The processor is configured to receive information indicative of a vehicle event. The processor is further configured to send a command to deploy the airbag based on the information indicative of the vehicle event. When deployed, the airbag expands to abut a bottom surface of the work table and move the work table from the extended position to the reaction position such that the bottom surface of the work table in the reaction position serves as a reaction surface for the airbag.
Force sensing horn system
Various implementations of a horn system include one or more force sensors disposed on a first portion of a driver air bag module and one or more actuators disposed on a second portion of the driver air bag module. For example, the force sensors may be disposed adjacent a perimeter of a base plate of the driver air bag module, and the actuators may extend inwardly toward the force sensors from an inner surface of a cover of the driver air bag module, or vice versa. To actuate the horn, the cover is moved axially toward the base plate, causing the actuators to apply force to the force sensors. Force signals received from the force sensors are used by one or more processors to determine characteristics of the force received and/or select a control message for communicating to the horn system based on the force signal characteristics.
VEHICLE DASHBOARD SAFETY FEATURES
A vehicle includes: a dashboard with load sensors and airbag(s), a seat, processor(s) configured to: (a) detect load on the dashboard, (b) generate a display based on (a), (c) count time elapsed since (b), (d) activate a vibrating motor of the seat based on (a) and (c), (e) count time elapsed since (d), (f) disable the airbag(s) based on (a) and (e).
VEHICLE DASHBOARD SAFETY FEATURES
A vehicle includes: a dashboard with load sensors and airbag(s), a seat, processor(s) configured to: (a) detect load on the dashboard, (b) generate a display based on (a), (c) count time elapsed since (b), (d) activate a vibrating motor of the seat based on (a) and (c), (e) count time elapsed since (d), (f) disable the airbag(s) based on (a) and (e).
Dynamic Safe Storage of Vehicle Content
Systems and methods are provided for dynamically protecting transportable articles in vehicles. A system for dynamically protecting a transportable article in a vehicle may include one or more processors and non-volatile memory storing instructions. The instructions, when executed by the one or more processors, cause the system to determine at least one of a characteristic or a trait of the transportable article; detect, based on sensed data, an emergency condition; select one or more article protection components based on (i) the at least one of the characteristic or the trait of the transportable article, and (ii) the detected emergency condition; and in response to detecting the emergency condition, deploy the selected one or more article protection components to protect the transportable article.
Airbag base fabric and airbag
The present invention relates to an airbag base fabric including a woven fabric made from a yarn containing polyethylene terephthalate as the main raw material, the yarn having a single fiber fineness of 1.0 to 3.9 dtex and a total fineness of 280 to 470 dtex, and, in a Raman spectrum obtained by irradiating the yarn with a He—Ne laser with a wavelength of 630 nm, I.sub.x/I.sub.0 being 1.20 or more, where I.sub.x is the spectral intensity at 3083 cm.sup.−1, and I.sub.0=277.4.
Airbag base fabric and airbag
The present invention relates to an airbag base fabric including a woven fabric made from a yarn containing polyethylene terephthalate as the main raw material, the yarn having a single fiber fineness of 1.0 to 3.9 dtex and a total fineness of 280 to 470 dtex, and, in a Raman spectrum obtained by irradiating the yarn with a He—Ne laser with a wavelength of 630 nm, I.sub.x/I.sub.0 being 1.20 or more, where I.sub.x is the spectral intensity at 3083 cm.sup.−1, and I.sub.0=277.4.
COLLISION DETECTING APPARATUS FOR VEHICLE
A collision detecting apparatus for a vehicle includes a bumper acceleration sensor, a floor acceleration sensor, a pressure sensor, and a processor including a vehicle collision determining unit and a threshold variably controlling unit. The vehicle collision determining unit is configured to determine a state of collision of the vehicle by comparing a detection value of the pressure sensor with a first threshold, and comparing a detection value of the bumper acceleration sensor with a second threshold when the detection value of the pressure sensor is greater than the first threshold. The threshold variably controlling unit is configured to change a threshold of the floor acceleration sensor from a third threshold to a fourth threshold in a case where: the detection value of the pressure sensor is greater than the first threshold; and the detection value of the bumper acceleration sensor is equal to or less than the second threshold.
RADAR DETECTION OF CHILD CAR SEAT CONDITIONS IN A VEHICLE
A system for controlling operation of a vehicle includes a millimeter-wave radar sensor, a processor, and a memory communicably coupled to the processor. The memory stores a sensor control module configured to automatically control operation of the radar sensor to perform at least one radar scan of at least a portion of an interior of the vehicle. The sensor control module is also configured to determine, using information acquired by the at least one radar scan of the vehicle interior, at least one characteristic of a child car seat positioned in the interior. The sensor control module is also configured to compare the at least one determined characteristic of the child car seat with child car seat comparison information and, responsive to the comparison of the at least one determined characteristic with the child car seat comparison information, control an operation of the vehicle.