B60G7/00

Vehicle front suspension

A transverse link has an inboard side and an outboard side. A steering knuckle has an upper end, a wheel supporting section and a lower end. The lower end is pivotally coupled to the outboard side of the transverse link. A strut has an upper end and a lower end. An upper knuckle breakaway structure attaches the upper end of the steering knuckle to the lower end of the strut. The upper knuckle breakaway structure has a frangible part that releases the upper end of the steering knuckle from the lower end of the strut upon application of a prescribed rearward directed force. A transverse link breakaway structure couples the inboard side of the transverse link to a lower suspension support structure such that upon application of the prescribed rearward directed force the inboard side of the transverse link is released from the lower suspension support structure.

Suspension arm

A suspension arm has an elongated shape. The suspension arm is shaped such that a line defining an outer shape of the suspension arm does not coincide with a line of force transmission, but a line extending through a shearing center point of each of a plurality of cross sections of the suspension arm coincides with the line of force transmission.

Riding mower trailing arm suspension system

Provided is a trailing arm riding mower suspension system that includes trailing arms adapted to support hydraulic motor units and having leading ends pivotally coupled to a mower frame by way of leading end spherical joints and trailing ends having hydraulic drive unit mounts, where the trailing arms are adapted to pivot about leading end pivot locations defined by the leading end spherical joints.

DEVICE FOR ADJUSTING A CAMBER AND/OR TOE OF A VEHICLE WHEEL
20170225531 · 2017-08-10 · ·

A device for adjusting camber and/or toe of a vehicle wheel includes a multi-part wheel carrier having a wheel-side carrier part, an axle-side guide part, and an adjusting member, in particular two rotary parts, arranged there between, by which the carrier part is swingable about a wobble point for toe and/or camber adjustment of the vehicle wheel. A bearing point is formed radially outside of the adjusting member, on which the carrier part and the guide part are articulated to one another. The bearing point is designed in a firm manner in the wheel-axle circumferential direction for support of the carrier part which is subjected to a brake torque, and is designed in a soft manner to realize a trouble-free adjustment and, compared with the wheel-axle circumferential direction, a particularly smooth adjustment of the carrier part about the toe and/or camber angle in the vehicle transverse direction.

STEERING SHOCK ABSORBING STRUCTURE FOR IN-WHEEL MOTOR AND METHOD THEREOF
20220306200 · 2022-09-29 ·

A steering shock absorbing structure for an in-wheel motor includes: a steering input unit configured to detect a steering angle of a steering wheel; a steering unit fastened to the steering input unit, and configured to steer a wheel according to the steering angle of the steering input unit; a tilting unit having a first end connected to the steering unit and a second end connected to the wheel, and configured to be tilted with respect to the steering unit; and a controller configured to selectively drive the tilting unit.

SUSPENSION STRUCTURE
20220305858 · 2022-09-29 ·

A suspension structure includes a trailing arm that couples a hub support portion supporting a wheel hub to a vehicle body. The trailing arm includes a vehicle body side attachment portion attached to the vehicle body, and a hub side attachment portion attached to the hub support portion. The hub side attachment portion is positioned below a shortest virtual line connecting a center of the vehicle body side attachment portion and a rotation center of the wheel hub.

FOUR WHEEL VEHICLE
20170225715 · 2017-08-10 ·

The four wheel vehicle uses an electric motor (142) for driving the vehicle and a battery unit (160) for supplying electric power to the electric motor. The lower chassis (5) of the vehicle includes a pair of front side frames (10) extending linearly in a fore and aft direction with an upward slant and a progressively increasing lateral mutual spacing from a front part thereof to a rear part thereof and a plurality of cross members (14, 16, 18) connecting the front side frames to each other. The battery unit is positioned between the two front side frames such that the battery unit overlaps with the front side frames in side view. Thereby, the battery unit can be effectively protected from side impacts.

FOUR WHEEL VEHICLE
20170225714 · 2017-08-10 ·

The four wheel vehicle uses an electric motor (142) for driving the vehicle and a battery unit (160) for supplying electric power to the electric motor. The lower chassis (5) of the vehicle includes a pair of front side frames (10) extending linearly in a fore and aft direction with an upward slant and a progressively increasing lateral mutual spacing from a front part thereof to a rear part thereof, a pair of rear side frames (12) connected to rear ends of the respective front side frames, and extending linearly in a fore and aft direction with an upward slant from a front part thereof to a rear part thereof in continuation of the corresponding front side frames in a mutually parallel relationship, and a plurality of cross members (14, 16, 18, 20, 22) connecting the side frames to each other.

SUSPENSION SYSTEM FOR A VEHICLE AND METHOD OF ADJUSTING REAR CONTROL ARM GEOMETRY FOR SAME
20220305857 · 2022-09-29 · ·

A vehicle suspension includes and axle. An upper control arm bracket is fixedly positioned relative to the axle and defines a first axis. An upper control arm is rotatably coupled to the upper control arm bracket about the first axis. A lower control arm bracket is fixedly positioned relative to the axle and defines a second axis. A lower control arm is rotatably coupled to the lower control arm bracket about the second axis. An upper control arm relocation bracket is configured to be mounted to the axle and includes a clevis defining a third axis and configured to rotatably couple the upper control arm about the third axis. The relocation bracket includes a first aperture coaxial with the first axis when the relocation bracket is mounted to the axle and a second aperture coaxial with the second axis when the relocation bracket is mounted to the axle.

SUSPENSION SYSTEM FOR ELECTRIC HEAVY-DUTY VEHICLE
20220032704 · 2022-02-03 ·

Methods and systems are provided for an electric heavy-duty vehicle. In one example, a system for the vehicle may include a wheel hub assembly coupled to a frame of the vehicle via a first wishbone arm and a second wishbone arm, and an air spring coupled at opposite ends to a first link and a second link, each of the first link and the second link being pivotably coupled to the frame of the vehicle, the second link further being pivotably coupled to the first wishbone arm. The air spring may be positioned above the wheel hub assembly with respect to the vehicle.