Magnetorheological fluid vibration isolator

6896109
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Inventors

Kelso, Shawn P.
Lindler, Jason E.

Application #

408040

Filed

Apr-7-2003

Published

May-24-2005

Current US Class

188/267.1
188/267.2
267/140.14

International Classes

F16F 009//53

Field of Search

188/267 188/267.1 188/267.2 267/140.14 267/140 11/11

Assignee

CSA Engineering, Inc. (Mountain View, CA)

Examiners

Siconolfi; Robert A.

Attorney, Agent or Firm

Brewster; Rick G.

US Patent References

4624435   Electro-magnetic vi...
4815574   Frictionless damper
4838392   Semi-active dampe...
5176368   Vehicle engine mo...
5277281   Magnetorheologica...
5284330   Magnetorheologica...
5344128   Self-expanding mo...
5398917   Magnetorheologica...
5492312   Multi-degree of free...
5540549   Fluid damping dev...
5820113   Engine mount actu...
5878851   Controllable vibrati...
5957440   Active fluid mounting
6095486   Two-way magnetor...
6158470   Two-way magnetor...
 

Referenced by:

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Cite This Patent

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Abstract
The invention disclosed is a magnetorheological fluid device offering vibration isolation and broad modulation range damping in a high load carrying and compact form. A cylindrically shaped flexure structure has a bottom cap attached to one end and a top cap attached to the other end. A piston comprising a toroidal displacement body, a central shaft, and intermediate connecting plate, attaches to the top cap. A fluid chamber surrounding and generally conforming to the shape of the toroidal displacement body, is attached to the bottom cap. Two bellows attaching between the piston connecting plate and top and bottom portions of the fluid chamber complete an enclosed volume around the toroidal displacement body and allow frictionless motion of the toroidal displacement body relative to the fluid chamber. Electromagnetic coils placed within the inner and outer radius walls of the fluid chamber effect a magnetic field across the outer radius gap and inner radius gap between the toroidal displacement body and fluid chamber. Longitudinal deflection of the cylindrical flexure structure effects motion of the top cap relative to the bottom cap which in turn effects longitudinal motion of the toroidal displacement body within the fluid chamber. Magnetorheological fluid is forced from the top of the toroidal displacement body to the bottom, and vice-versa, across the inner radius and outer radius gaps between the fluid chamber and the inner radius of the toroidal displacement body. Static payload loads are supported with a high-strength, linear-elastic load path while base motion dynamic vibration loads are substantially isolated and damped without stiction effects.
 
Claims
1. A magnetorheological fluid device comprising:

a piston,

a fluid chamber, and

at least one electromagnetic coil,

wherein the piston is further comprised of a toroidal displacement body and the fluid chamber is of toroidal shape and encompasses the toroidal displacement body such that an upper volume is created above the toroidal displacement body and a lower volume is created below the toroidal displacement body,

wherein a first fluid gap is effected between the upper and lower volumes and between an outer radius surface of the toroidal displacement body and an outer radius wall of the fluid chamber, and

a second fluid gap is effected between the upper volume and a third volume and between an inner radius surface of the toroidal displacement body and an inner radius wall of the fluid chamber, and



Description
BACKGROUND OF THE INVENTION

The present invention relates to damping mechanisms and vibration isolation mechanisms. More particularly, the present invention pertains to a high-strength, compact, magnetorheological-fluid-modulation-damped vibration isolator.

The use of magnetorheological (MR) fluid in a damping device allows for the controlled variance of device damping as a function of the strength of a magnetic field induced into a controlled or valved region of the MR fluid. Coil electromagnets, permanent magnets, or a combination of magnet types are used as the means for magnetic field creation. The use of coil electromagnets allow for the variance of the magnetic field with the variance of the electrical signal amplitude applied to the coil. Many devices exist within the prior art that take advantage of this smart material capability of MR fluids.

Problems present in MR fluid damping devices of the prior art include fluid leakage and rapid seal wear in devices incorporating dynamic type sealing, i.e. where surfaces slide over one another such as a piston rod sliding through a concentric lip seal. The maintenance of good lateral alignment of the moving components of the damper relative to the fixed components and the support of off-axis moment loading is also problematic within devices of the prior art. Tighter seals and bushings are often used for improved alignment and moment support but cause greater friction loads and stiction effects between the moving components. Devices of the prior art have thereby been relatively intolerant to off-axis moment loading.
 
  A hydraulic mount provides active control through the use of a rotary track assembly connecting a primary pumping chamber of the mount to a secondary fluid...  A damper main body of a dynamic damper comprises a long flat mounting plate portion, a rod-like central supporting metal member which is erected vertically...