Claims
- 1. A hydraulic mount comprising:
a resilient hollow body defining a primary fluid chamber and a secondary fluid chamber; a rotary track assembly separating the primary and secondary fluid chambers; a rotary actuator operably connected to the rotary track assembly; a controller operably connected to the rotary actuator; and at least one sensor operably connected to the controller for sensing vibrational amplitude, wherein the controller receives a sensed vibrational amplitude from the at least one sensor and sends a signal to the rotary actuator to rotate the rotary track assembly based on the sensed vibrational amplitude.
- 2. The hydraulic mount of claim 1 wherein the rotary track assembly comprises:
an orifice plate including a plurality of openings; a containment plate securely attached to the orifice plate, the containment plate including a wall portion, the wall portion including a plurality of tab portions defining a plurality of fluid chambers; and a rotary track disposed between and rotatably coupled to the orifice plate and the containment plate, the rotary track including a wall portion and a base portion, the wall portion including a first plurality of openings and the base portion including a second plurality of openings.
- 3. The hydraulic mount of claim 1 wherein the resilient hollow body comprises:
a diaphragm operably connected to the rotary track assembly to define the secondary fluid chamber; and a resilient member operably connected to the rotary track assembly to define the primary fluid chamber.
- 4. The hydraulic mount of claim 1 wherein the resilient hollow body comprises:
a diaphragm including an outward radius disposed between a mount housing and the rotary track assembly and an inward radius disposed between an actuator mount and the orifice plate to define the secondary fluid chamber; and a resilient member coupled to the mount housing and the rotary track assembly to define the primary fluid chamber.
- 5. The hydraulic mount of claim 3 wherein the resilient member includes a rigid support.
- 6. The hydraulic mount of claim 2 wherein the rotary actuator is operably connected to the rotary track.
- 7. The hydraulic mount of claim 6 wherein the plurality of openings of the rotary track wall portion are rotated to align with the plurality of fluid chambers of the containment plate to allow for fluid flow between the primary fluid chamber and the secondary fluid chamber.
- 8. The hydraulic mount of claim 6 wherein the rotary track is rotated to align the rotary track wall portion with the containment plate fluid chambers to block the flow of fluid between the primary fluid chamber and the secondary fluid chamber.
- 9. The hydraulic mount of claim 2 wherein the base portion of the rotary track is sloped.
- 10. The hydraulic mount of claim 6 wherein the rotary actuator rotates the rotary track to partially block the flow of fluid between the primary fluid chamber and the secondary fluid chamber.
- 11. A method for operating a hydraulic mount having a resilient hollow body defining a primary fluid chamber, a secondary fluid chamber, a rotary track assembly having a rotary track providing fluid communication between the primary chamber and the secondary chamber, and a rotary actuator operably connected to a controller, the method comprising:
sensing an amplitude vibration; receiving the sensed vibration at the controller; sending a signal to the rotary actuator; and rotating the rotary track based on the received amplitude vibration.
- 12. The method of claim 11 wherein rotating the rotary track comprises:
rotating the rotary track to an open position in response to a low amplitude vibration; and rotating the rotary track to a closed position in response to a high amplitude vibration.
- 13. The method of claim 11 further comprising:
regulating the pressure of a fluid contained in the mount by partially blocking the fluid flow between the primary and secondary fluid chambers.
- 14. A hydraulic mount comprising:
a resilient hollow body defining a primary fluid chamber and a secondary fluid chamber; an orifice plate including a plurality of openings separating the primary fluid chamber from the secondary fluid chamber; a containment plate securely attached to the orifice plate, the containment plate including a wall portion, the wall portion including a plurality of tab portions defining a plurality of fluid chambers; a rotary track disposed between and rotatably coupled to the orifice plate and the containment plate, the rotary track including a wall portion and a base portion, the wall portion including a first plurality of openings and the base portion including a second plurality of openings; a rotary actuator operably connected to the rotary track and a controller; and at least one sensor operably connected to the controller for sensing vibrational amplitude.
- 15. The hydraulic mount of claim 14 wherein the resilient hollow body comprises:
a diaphragm operably connected to the orifice plate to define the secondary fluid chamber; and a resilient member operably connected to the orifice plate and a mount housing to define the primary fluid chamber.
- 16. The hydraulic mount of claim 14 wherein the resilient hollow body comprises:
a diaphragm including an outward radius disposed between a mount housing and the rotary track assembly and an inward radius disposed between an actuator mount and the orifice plate to define the secondary fluid chamber; and a resilient member coupled to the mount housing and the rotary track assembly to define the primary fluid chamber.
RELATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Patent Application No. 60/355,671 filed Feb. 7, 2002, titled Bi-State Hydraulic Mount by Sanjiv G. Tewani et al.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60355671 |
Feb 2002 |
US |