Compression mounting

4006892
Add to folder: View Folders  
Keywords to Highlight:

full-text

print

pdf

permalink

Inventors

Koeneman, James B.

Application #

640359

Filed

Dec-15-1975

Published

Feb-8-1977

Current US Class

267/141
267/153
267/279
267/292

International Classes

F16F 001/36

Field of Search

267/33 267/54 248/7-10 248/18 248/21 248/22 248/358

Assignee

Lord Corporation (Erie, PA)

Examiners

Cherry; Johnny D.

Attorney, Agent or Firm

Salada; Maurice R., Wright; James W.

Referenced by:

View Backward References

Citation

Cite This Patent

More From Subclass 153

5957427   Isolation mounting...
4504044   Dry viscous spring...
6343782   Vibration canceller
5551661   Automotive transmi...
4776573   Spring element
4593889   Laminated tubular...
4659069   Laminated mecha...
5673591   Electric cylinder
6964271   Bow suspension syst...
4737760   Tire pressure warni...
5066708   Novel damping co...
5421565   Suspension spring...
6364296   Shear mount
5149069   Spring seat/jounce...
5478058   Shock isolation met...
4962916   Compression spring
4550795   Exhaust support sys...
6186486   Jounce bumper plate
6247686   Vibration damper...
4083412   Agricultural soil-wo...
6676116   Elastomeric suspen...
6149475   Tiller mounting arr...
6578836   Shock absorber for...
5240269   Bike suspension
4338046   Bumper ring with r...
6345814   Composite progress...
4936558   Variable strength s...
5014967   Spring element
5351940   Vibration damping...
4954377   Load bearing conn...
4269400   Stacked, resilient is...
5518227   Elastomeric mounti...
6328294   Elastomeric spring...
4706946   Motion control strut
5449152   Tubular elastomer...
4693457   Vibration damper
6637735   Double triad elasto...
4556203   Remote center com...
6147154   Chloroprene rubbe...
5044598   Resilient motor mo...
4121813   Vibration control b...
6659438   Mount with dual stif...
4225014   Self-aligning elevat...
5580028   Jounce plate fasten...
5915675   Seat suspension de...
4597567   Adjustable torsion s...
5222762   Double piano hing...
4010940   Telescopic shock a...
5052652   Adjustable machin...
4111406   Cushioning device
6604735   Elastomer variants
5017328   Vibration dampeni...
4315562   Energy accumulator
6364293   Fenders
4363578   Cushioned low prof...
5008324   Novel damping co...
5062507   Vibration and shoc...
4175804   Flexible spring bea...
5988609   Elastomeric tubular...
4448259   Rubber spring for f...
5232073   Process for dampin...
4925163   Spring element
6305674   Spring articulation...
5957441   Hourglass-shaped...
 

More From Class 267

5492310   Hydraulically dam...
6923299   Programmable var...
6634628   Liquid filled vibrati...
5014967   Spring element
5297781   Hydraulic anti-vibr...
6715745   Liquid-sealed mount
4223762   Omnidirectional vi...
4576366   Antivibration elasti...
5346191   Hydraulically dam...
5564537   Adaptive-passive vi...
4560150   Dry viscous spring...
5184803   Fluid damped elast...
 
Abstract
A compression mounting comprises a body of elastomer and a pair of load-transmitting devices that engage and cover two opposed and spaced apart surfaces of the elastomeric body. The two load-transmitting devices are disposed and configured to expose a circumferential surface of the body of elastomer. At least a circumferential portion of the surfaces so exposed is completely covered and enclosed by a shell or housing. The shell includes a filamentary structure that provides a plurality of substantially parallel and juxtaposed filament portions oriented to circumscribe the surface of the elastomeric body. The filament portions are less extensible than the elastomer of the elastomeric body. A matrix material encases the filament portions and flexibly bonds adjacent filament portions to one another. The shell snugly fits the surface of the elastomeric body and is more resistant to circumferential expansion than the elastomeric body. The shell thus impedes, at least, the circumferential expansion of the elastomeric body in response to compression loads exerted on the body through the load-transmitting devices. As a result, the capacity of the mounting to support compressive loads is increased relative to a mounting incorporating unconfined elastomer. The matrix material permits adjacent filament portions to move in parallel planes relative to each other so that the shell and the mounting can deflect in response to torsional loads.
 
Claims
What is claimed is:

1. A compression mounting comprising

a body of elastomer,

first load-transmitting means for engaging and covering at least part of a first surface of the body of elastomer,

second load-transmitting means for engaging and covering at least part of a second surface of the body of elastomer opposite and spaced from said first surface, the first and second load-transmitting means being disposed and configured to expose a circumferential surface of the body of elastomer, and

shell means for completely covering and enclosing at least a circumferential portion of the exposed circumferential surface of the body of elastomer, said shell means including (a) filamentary means providing a plurality of substantially parallel and juxtaposed filament portions oriented to circumscribe the exposed circumferential surface, the filament portions being less extensible than said elastomer, and (b) matrix means encasing the filament portions of the filamentary means and flexibly bonding adjacent filament portions to one another in substantially parallel relationship, the shell means snugly fitting the exposed circumferential surface and the filamentary means causing the shell means to be more resistant to circumferential expansion than the body of elastomer so as at least to impede circumferential expansion of said portion of the exposed surface of the body of elastomer in response to compressive loads applied to the body through the load-transmitting means, adjacent filament portions in the shell means being movable in parallel planes relative to each other so that the shell means can deflect in response to torsional loads on the mounting.



Description
BACKGROUND OF THE INVENTION

The compressive load carrying capacity of a body or layer of elastomeric material may be increased several hundred percent by incorporating a plurality of spaced, parallel laminae fabricated of nonextensible material and oriented generally perpendicular to the direction of the compressive load. The laminae increase the compressive load carrying capacity of the elastomeric material by restricting the ability of the material to deflect or bulge in directions transverse to the direction of the compressive load. Specifically, the laminae effectively subdivide the force-free or non-loaded surfaces that extend between the loaded surfaces of the elastomeric material. When loaded in compression, therefore, the material cannot deflect along its force-free surfaces in a large bulge that is continuous between the loaded surfaces of the material. Instead, the "subdivided" force-free surfaces can only deflect in a series of distinct and separate smaller bulges.
 
  An energy-absorbing device suitable as an automobile bumper using sinuous (corrugated), elastomeric ribs, which can be either attached to a connecting...  A telescopic shock absorber having means in the slide path of the piston rod for producing resistance to sliding and braking of the return movement of...