Patent classifications
B60G13/02
Motion control system
A motion control system includes an absorber fixed relative to an axis, a spring fixed relative to the axis, and a mass coupled to the absorber and the spring and configured to move relative to the axis. The spring is configured to bias the mass toward a neutral position and with the absorber configured to dampen movement of the mass. The mass includes an internal surface and an external surface spaced from the internal surface. The external surface extends between a first end and a second end, with the first end closer to the axis than the second end. At least a portion of the external surface tapers away from the axis and toward the internal surface further from the first end to direct debris away from the axis.
Damper with digital valve
A shock absorber is disclosed having a pressure tube forming a working chamber, and a piston assembly slidably disposed within the pressure tube. The piston assembly may divide the working chamber into upper and lower working chambers. The piston assembly may have a piston body defining a first fluid passage extending therethrough and a first valve assembly controlling fluid flow through the first fluid passage. A second fluid passage, separate from the first fluid passage, extends from one of the upper and lower working chambers to a fluid chamber defined at least in part by the pressure tube. A plurality of digital valve assemblies are included and configured to exclusively control all fluid flow through the second fluid passage, and thus all fluid flow between the one of the upper and lower working chambers to the fluid chamber.
Damper with digital valve
A shock absorber is disclosed which has a base valve assembly for controlling a flow of a working fluid between a reservoir chamber and a working chamber of the shock absorber. The base valve makes use of at least one digital valve assembly. The digital valve assembly communicates with an intermediate chamber formed between an intermediate tube and a pressure tube of the shock absorber. The digital valve assembly controls flow of the working fluid between the intermediate chamber and the reservoir chamber, to help control a damping action provided by the shock absorber.
Damper with digital valve
A shock absorber is disclosed which has a base valve assembly for controlling a flow of a working fluid between a reservoir chamber and a working chamber of the shock absorber. The base valve makes use of at least one digital valve assembly. The digital valve assembly communicates with an intermediate chamber formed between an intermediate tube and a pressure tube of the shock absorber. The digital valve assembly controls flow of the working fluid between the intermediate chamber and the reservoir chamber, to help control a damping action provided by the shock absorber.
DAMPER WITH DIGITAL VALVE
A shock absorber is disclosed having a pressure tube forming a working chamber, and a piston assembly slidably disposed within the pressure tube. The piston assembly may divide the working chamber into upper and lower working chambers. The piston assembly may have a piston body defining a first fluid passage extending therethrough and a first valve assembly controlling fluid flow through the first fluid passage. A second fluid passage, separate from the first fluid passage, extends from one of the upper and lower working chambers to a fluid chamber defined at least in part by the pressure tube. A plurality of digital valve assemblies are included and configured to exclusively control all fluid flow through the second fluid passage, and thus all fluid flow between the one of the upper and lower working chambers to the fluid chamber.
Machine suspension system having link oscillation limiter
A suspension system is disclosed for use with a mobile machine. The suspension system may have a link with a first eye formed at a first end and a second eye formed at a second end, and a bearing disposed within each of the first eye and the second eye. The suspension system may also have a pin configured to pass through the first eye and the first hearing, and an oscillation limiter disposed on the pin adjacent the link. The oscillation limiter may he ring-shaped and split at a first side, and have a flex portion at a second side that allows the oscillation limiter to flex open and be installed on the pin from an annular side of the pin.
Truck strut fail-safe
A method for protecting the suspension and frame of a vehicle is provided. The method may include providing a first working mode where the strut is at a fully expanded state, providing a second working mode where the strut is at a partially collapsed state, and providing a fail-safe working mode where the strut is at a fully collapsed state. The method may further comprise alerting the user that the strut is operating in the fail-safe working mode and servicing the strut by placing a fail-safe member into the strut.
ROTARY DAMPER
A rotary damper that is to be fastened to a first mass via a fastening part (10) comprises a damper housing (2) surrounding an electromagnetic damper motor (4) which is disposed along a central axis of the rotary damper, a hinged lever 14) connected to a second mass, and a gearing (14) for transmitting and/or converting a relative rotation between the masses to the damper motor (4) such that vibrations are dampened. The fastening part (10) is connected to a bearing part (38) via an elastomer bearing (44), the damper motor (4) being disposed on said bearing part (38), and the damper housing (2) is connected to the hinged lever (14), which is mounted so as to be able to rotate relative to the bearing part (38).
ROTARY DAMPER
A rotary damper that is to be fastened to a first mass via a fastening part (10) comprises a damper housing (2) surrounding an electromagnetic damper motor (4) which is disposed along a central axis of the rotary damper, a hinged lever 14) connected to a second mass, and a gearing (14) for transmitting and/or converting a relative rotation between the masses to the damper motor (4) such that vibrations are dampened. The fastening part (10) is connected to a bearing part (38) via an elastomer bearing (44), the damper motor (4) being disposed on said bearing part (38), and the damper housing (2) is connected to the hinged lever (14), which is mounted so as to be able to rotate relative to the bearing part (38).
MECHANICAL SPRING ACTUATOR
A linear actuator comprising a housing with a proximal end and a distal end, the housing defining a central cavity extending axially through the housing; a piston tube, where a first portion of the piston tube is slidably positioned axially in the housing, and a second portion of the piston tube extends outwardly from the distal end of the housing; an elongated rotatable screw positioned axially within the central cavity of the housing; a nut positioned within the housing and mounted about the screw, the nut configured to move axially within the housing as the screw rotates; and a spring positioned around the screw, the spring positioned within the housing between the nut and the piston tube; wherein the spring is configured to bias the piston tube away from the nut.