B60G99/00

AERODYNAMIC MECHANISM CONFIGURED TO SELECTIVELY GENERATE DOWNFORCE ONTO A VEHICLE
20170043644 · 2017-02-16 · ·

A vehicle includes an aerodynamic mechanism for a vehicle including a body and a wheel. The aerodynamic mechanism includes a wing and a coupling assembly. The wing is configured to be arranged to intersect and airflow such that the airflow circulates about the wing and generates downforce. The coupling assembly is operatively connected to the wing and configured to be operatively connected to the body. The coupling assembly is configured to be selectively coupled to the wheel such that downforce generated by the wing is transmitted through the coupling assembly, directly to the wheel. The coupling assembly is configured to be selectively decoupled from the wheel such that downforce generated by the wing is transmitted through the coupling assembly, directly to the body.

System and method for monitoring vibration isolators

A system may monitor a vibration isolating connection between a first part and a second part. The system may include a light source, an optical sensor mounted to receive light from the light source, and a processing unit for providing an output indicative of the deformation of the vibration isolating connection based on the output of the optical sensor.

Slider suspension assembly with compliant hold-down arrangement
09555844 · 2017-01-31 · ·

A vehicle suspension assembly includes a vehicle frame rail, a slide rail extending longitudinally along the vehicle frame rail and slidably adjustable thereto, a support bracket extending downwardly from the slide rail, a trailing arm pivotably coupled to the support bracket, a spring member positioned between the trailing arm and the slide rail, and an elastically resilient coupling arrangement coupling the slide rail to the vehicle frame rail, wherein the coupling member is configured to elastically deform during vertical displacement of the vehicle frame rail with respect to the slide rail.

STEEL FOR VEHICLE SUSPENSION SPRING PART, VEHICLE SUSPENSION SPRING PART, AND METHOD OF FABRICATING THE SAME

A steel, having a high corrosion resistance and low-temperature toughness, for a vehicle suspension spring part, the steel includes 0.21 to 0.35% by mass of C, more than 0.6% by mass but 1.5% by mass or less of Si, 1 to 3% by mass of Mn, 0.3 to 0.8% by mass of Cr, 0.005 to 0.080% by mass of sol. Al, 0.005 to 0.060% by mass of Ti, 0.005 to 0.060% by mass of Nb, not more than 150 ppm of N, not more than 0.035% by mass of P, not more than 0.035% by mass of S, 0.01 to 1.00% by mass of Cu, and 0.01 to 1.00% by mass of Ni, the balance being Fe and unavoidable impurities, with Ti+Nb0.07% by mass, wherein crystal grains of the steel after hardening have a prior austenite grain size number of 7.5 to 10.5, and the steel having a tensile strength of not less than 1,300 MPa.

Rotary disc suspension system

The present invention relates to a rotary disc suspension system for connecting different components constituting a moving body, comprising: an inner disc rotatably connected to one component of the moving body; and an outer disc which is coupled to another component of the moving body and which is rotatably coupled to the inner disc while disposed to face the inner disc, and thus force applied to the moving body during traveling is converted into rotational motion from linear motion so that dynamic strain and dynamic stress of the moving body can be more actively managed, and thus, even if the moving body encounters bumpy and rugged land or sloped land when in motion, a horizontal state can be maintained without tilting.

Rotary disc suspension system

The present invention relates to a rotary disc suspension system for connecting different components constituting a moving body, comprising: an inner disc rotatably connected to one component of the moving body; and an outer disc which is coupled to another component of the moving body and which is rotatably coupled to the inner disc while disposed to face the inner disc, and thus force applied to the moving body during traveling is converted into rotational motion from linear motion so that dynamic strain and dynamic stress of the moving body can be more actively managed, and thus, even if the moving body encounters bumpy and rugged land or sloped land when in motion, a horizontal state can be maintained without tilting.

FOLD-OUT TRAILER WITH RETRACTABLE WHEEL ASSEMBLY

A trailer includes a trailer frame having a hitch. A stationary support base is joined to the trailer frame. Two supports are slidably guided on the support base toward and away from each other. A wheel assembly is mounted to an end of each of the supports remote from the other support such that a distance between the wheel assemblies varies with movement of the supports on the support base. A locking device selectively locks each support to the support base in a first position where the wheel assemblies are furthest from each other and a second position where the wheel assemblies are closer to each other.

FOLD-OUT TRAILER WITH RETRACTABLE WHEEL ASSEMBLY

A trailer includes a trailer frame having a hitch. A stationary support base is joined to the trailer frame. Two supports are slidably guided on the support base toward and away from each other. A wheel assembly is mounted to an end of each of the supports remote from the other support such that a distance between the wheel assemblies varies with movement of the supports on the support base. A locking device selectively locks each support to the support base in a first position where the wheel assemblies are furthest from each other and a second position where the wheel assemblies are closer to each other.

Methods and systems for controlling vehicle body motion and occupant experience

In one embodiment, one or more suspension systems of a vehicle may be used to mitigate motion sickness by limiting motion in one or more frequency ranges. In another embodiment, an active suspension may be integrated with an autonomous vehicle architecture. In yet another embodiment, the active suspension system of a vehicle may be used to induce motion in a vehicle. The vehicle may be used as a testbed for technical investigations and/or as a platform to enhance the enjoyment of video and/or audio by vehicle occupants. In some embodiments, the active suspensions system may be used to perform gestures as a means of communication with persons inside or outside the vehicle. In some embodiments, the active suspensions system may be used to generate haptic warnings to a vehicle operator or other persons in response to certain road situations.

Controller, control method, and computer program product for a vehicle which has a chassis part and a driver cab part that can be found on the chassis part

A control unit for a vehicle that has a chassis and a driver's cab on the chassis, comprising a first data interface for receiving image data generated by an imaging sensor, a second data interface for receiving vehicle state data generated by a vehicle state sensor, an evaluation unit for evaluating the image data and/or the vehicle state data in order to generate a first control signal on the basis of the evaluation of the image data, which is configured to counteract a relative movement between the chassis and the driver's cab and/or generate a second control signal on the basis of the evaluation of the vehicle state data, which is configured to correct a setting of the imaging sensor, and a signal output unit for outputting the first and/or second control signals.