Dual track variable orifice mount

6799754
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Inventors

Bodie, Mark O.
Long, Mark W.
Tewani, Sanjiv G.

Application #

408918

Filed

Apr-8-2003

Published

Oct-5-2004

Current US Class

267/140.14
267/219

International Classes

F16M 009/00

Field of Search

267/219 267/140.14 267/140.15 267/140.13 267/140.11 267/140.12 180/902 180/311 180/312 180/300 701/37 701/38 248/550 248/562 248/636 248/638

Assignee

Delphi Technologies, Inc. (Troy, MI)

Examiners

Butler; Douglas C.

Attorney, Agent or Firm

Smith; Michael D.

US Patent References

4789143   Electronic motor m...
4969632   Mount with adjusta...
6361031   Adaptive hydraulic...
6422545   Vacuum actuated a...
6439556   Active decoupler hy...
6454249   Mechanically tune...
6485005   Hydraulic mount w...
6547226   Bi-state hydraulic...
6622995   Hydraulic mount w...
6691990   Variable orifice tra...

Referenced by:

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Citation

Cite This Patent

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Abstract
A powertrain mount comprises an orifice plate including two tracks, a control track and an isolation track. The control track is spirally formed within the orifice plate, which has an exit and entrance on either side of the plate. The control track provides damping to control damping from engine bounce; whereas, the isolation track controllably provides dynamic rate dip. The isolation track is formed between an alignment plate and rotatable track member, each having an exit and entrance, respectively. The rotatable track member and the alignment plate are sealingly engaged and affixed to a decoupler and an annular area disposed about the orifice plate of the powertrain mount. The exit of the alignment plate is adjacent the decoupler. The rotatable track member forms a cavity with the molded body of the powertrain mount, with the entrance exposed to fluid within the cavity for controlling and minimizing vibrations within the powertrain. The isolation track has a track length that may be varied by rotation of the track member and its entrance. Various magnitudes of disturbance frequencies may be managed and controlled by either the fixed control track and/or the variable isolation track within the powertrain mount.
 
Claims
We claim:

1. A powertrain mount comprising:

an orifice plate including a fixed spiral track and an annular track formed therein, the fixed spiral track disposed about the orifice plate including an entrance on a first side of the orifice plate and exit on a second side of the plate, and the annular track including an annular surface disposed about the orifice plate;

a decoupler positioned adjacent the annular surface of the annular track;

an alignment plate positioned adjacent the decoupler and the first side of the orifice plate, the alignment plate including an exit adjacent the decoupler; and

a rotatable member including an entrance formed therein, the rotatable member rotatably coupled to the alignment plate defining a variable track between the rotatable member and the alignment plate, wherein a variable track length is determined by rotation of the rotatable member.



Description
TECHNICAL FIELD OF THE INVENTION

The present invention relates to powertrain mounts for motor vehicles, and more particularly to a powertrain mount having a controllable compliant member.

BACKGROUND OF THE INVENTION

It is desirable to provide motor vehicles with improved operating smoothness by damping and/or isolating powertrain vibrations of the vehicle. A variety of mount assemblies are presently available to inhibit such engine and transmission vibrations. Hydraulic mount assemblies of this type typically include a reinforced, hollow rubber body that is closed by a resilient diaphragm so as to form a cavity. This cavity is separated into two chambers by a plate. A first or primary chamber is formed between the orifice plate and the body, and a secondary chamber is formed between the plate and the diaphragm.

The chambers may be in fluid communication through a relatively large central passage in the plate, and a decoupler may be positioned in the central passage of the plate disposed about the passage to reciprocate in response to the vibrations. The decoupler movement alone accommodates small volume changes in the two chambers. When, for example, the decoupler moves in a direction toward the diaphragm, the volume of the portion of the decoupler cavity in the primary chamber increases and the volume of the portion in the secondary chamber correspondingly decreases, and vice-versa. In this way, for certain small vibratory amplitudes and generally higher frequencies, fluid flow between the chambers is substantially avoided and undesirable hydraulic damping is eliminated. In effect, the decoupler is a passive tuning device.
 
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