Distributed active suspension system with an electrically driven pump and valve controlled hydraulic pump bypass flow path
US-2019054788-A1 · Feb 21, 2019 · US
US11919348B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11919348-B2 |
| Application number | US-202117389716-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jul 30, 2021 |
| Priority date | Apr 17, 2008 |
| Publication date | Mar 5, 2024 |
| Grant date | Mar 5, 2024 |
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A regenerative shock absorber that includes a housing and a piston that moves at least partially through the housing when the shock is compressed or extended from a rest position. When the piston moves, hydraulic fluid is pressurized and drives a hydraulic motor. The hydraulic motor, in turn, drives an electric generator that produced electric energy. The electric energy may be provided to a vehicle, among other things. The regenerative shock absorber may also provide ride performance that comparable to or exceeds that of conventional shock absorbers.
Opening claim text (preview).
What is claimed is: 1. An active shock absorber system of a vehicle, comprising: a housing that includes a compression volume and an extension volume; a piston disposed in the housing that, in a first operating condition, is configured to move through at least a portion of a compression stroke and that, in a second operating condition, is configured to move through at least a portion of an extension stroke; a hydraulic device which is configured to operate as—a hydraulic pump in a first mode of operation to apply an active force on the piston, wherein the hydraulic device includes a first port and a second port; a controller configured to control the active shock absorber system to alter the force/velocity response of the active shock absorber system as a function of driving conditions; a pressurized reservoir; a hydraulic controls, with a multiplicity of valves configured and located to control flow to and from the pressurized reservoir, wherein the multiplicity of valves includes a first valve and a second valve, and wherein a hydraulic fluid exchange with the pressurized reservoir in the first mode of operation is controlled at least by the second valve in the hydraulic controls; a first hydraulic flow path that fluidly connects the compression volume and the extension volume and passes through the first port and the second port of the hydraulic device; and a second hydraulic flow path that fluidly connects the compression volume and the extension volume and passes through the first valve and the second valve of the hydraulic controls, wherein the second hydraulic flow path bypasses the hydraulic device. 2. The active shock absorber system of claim 1 , wherein, in a second mode of operation, the hydraulic device is configured to operate as a hydraulic motor. 3. The active shock absorber system of claim 1 , wherein the first valve is a check valve. 4. The active shock absorber system of claim 1 , wherein the pressurized reservoir is pressurized to maintain a minimum hydraulic pressure in the active shock absorber system. 5. The active shock absorber system of claim 3 , wherein the second valve is a multi-position valve, and wherein the position of the multi-position valve is adjusted based on a pressure at the first port and the second port. 6. The active shock absorber system of claim 1 , further comprising a controller associated with the hydraulic device, wherein the controller is configured to dynamically control the hydraulic device based on road conditions. 7. The active shock absorber system of claim 1 , further comprising an electric generator operatively coupled to a shaft of the hydraulic device. 8. The active shock absorber system of claim 7 , further comprising a controller associated with the electric generator, wherein the controller is configured to at least partially control a force applied to the piston by controlling the electric generator at least at one operating point. 9. A method of operating an active shock absorber system of a vehicle that includes a piston disposed in a housing dividing a volume in the housing into a compression volume and an extension volume, the method comprising: operating a hydraulic device as a pump, wherein the hydraulic device includes a first port and a second port; as a result of the operation of the pump, exchanging hydraulic fluid between the compression volume and the extension volume through a first fluid flow path; controlling a position of the piston in the housing; with a first valve, controlling fluid flow between the first port of the hydraulic device and a pressurized reservoir; with a second valve, controlling fluid flow between the second port of the hydraulic device and the pressurized reservoir, wherein the first fluid flow path bypasses the first valve and the second valve; and altering a force and velocity response of the active shock absorber system based on changes in driving conditions. 10. The method of claim 9 , further comprising operating the hydraulic device as a hydraulic motor. 11. The method of claim 9 , wherein the first valve is a check valve. 12. The method of claim 9 , further comprising controlling a position of the second valve based on a pressure of at least one of the first port or the second port, wherein the second valve is a multi-position valve. 13. The method of claim 9 , further comprising controlling the position of the piston based on driving conditions. 14. An active shock absorber system of a vehicle, comprising: a housing that includes a first volume and a second volume; a piston slidably disposed in the housing that in a first mode is configured to move through at least a portion of a compression stroke and that in a second mode is configured to move through at least a portion of an extension stroke; a hydraulic device, wherein the hydraulic device is configured to operate as a hydraulic pump in at least one mode of operation to apply an active force on the piston, wherein the hydraulic device includes a shaft, a first port and a second port, wherein the first port is in fluid communication with the first volume and the second port is in fluid communication with the second volume; a controller configured to control the active shock absorber system to alter the force/velocity response of the active shock absorber system as a function of driving conditions; a pressurized reservoir; a first hydraulic flow path that fluidly connects the first port and the pressurized reservoir, wherein a hydraulic flow in the first flow path is, at least partially, controlled by a first valve; a second hydraulic flow path that fluidly connects the second port and the pressurized reservoir, wherein a hydraulic flow in the second flow path is, at least partially, controlled by a second valve; and a third hydraulic flow path that fluidly connects the first volume and the second volume and passes through the hydraulic device and the first port and the second port, wherein the third hydraulic flow path bypasses the first valve and the second valve. 15. The shock absorber system of claim 14 , wherein the first volume is a compression volume and the second volume is an extension volume. 16. The shock absorber system of claim 14 , wherein the first valve is a check valve. 17. The shock absorber system of claim 14 , wherein the second valve is a multi-position valve, and wherein the position of the multi-position valve is adjusted based on a pressure of at least the first port or the second port. 18. The shock absorber system of claim 14 , wherein the hydraulic device is configured to operate as a hydraulic motor in at least one operating mode.
having dampers accumulating utilisable energy, e.g. compressing air {(fluid springs with an accumulator B60G11/30)} · CPC title
Characteristics of fluid dampers (adjusting fluid dampers in general F16F9/44 - F16F9/53) · CPC title
directly from oscillating movements due to vehicle running motion, e.g. suspension movement · CPC title
Other motors, e.g. gravity or inertia motors · CPC title
recovering energy derived from swinging, rolling, pitching or like movements, e.g. from the vibrations of a machine · CPC title
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