IP Library Patent Application 12953723
Patent Application
App. No. 12/953,723

COMPOSITIONS WITH IMPROVED SEALING CHARACTERISTICS FOR MOLD-IN-PLACE GASKETS

Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US None
App. No.
12/953,723
Abstract

The present invention relates to compositions with improved sealing characteristics for mold-in-place gaskets, and a process for forming a mold-in-place gasket by liquid injection molding. More particularly, the present invention relates to a mold-in-place gasket composition incorporating (meth)acrylate-functionalized silica, plasticizers, or both, with improved modulus and sealing properties, and a process for forming such mold-in-place gasket.

Claims (32)

1 . An actinic radiation curable composition with improved tensile modulus comprising:

a polyacrylate;

(meth)acrylate-functionalized silica; and

a photoinitiator.

2 . The actinic curable composition of claim 1 , further comprising an antioxidant.

3 . The actinic curable composition of claim 1 , further comprising dimethylacrylamide.

4 . The actinic curable composition of claim 1 , further comprising a hydrophobic fumed silica.

5 . The actinic curable composition of claim 4 , wherein the ratio of said (meth)acrylate-functionalized silica to said hydrophobic fumed silica is between 3:1 to 1:3.

6 . The actinic curable composition of claim 5 , wherein the ratio of said active fumed silica to said hydrophobic fumed silica is about 2:1.

7 . The actinic curable composition of claim 1 , further comprising a plasticizer.

8 . The actinic curable composition of claim 7 , wherein said composition maintains an effective sealing force at temperatures as low as about −30° C.

9 . The actinic curable composition of claim 7 , wherein said composition comprises a glass transition temperature by peak tan delta of between about −20° C. to about −30° C.

10 . The actinic curable composition of claim 1 , wherein said polyacrylate comprises an acrylate terminated telechelic polyacrylate.

11 . The actinic curable composition of claim 1 , wherein said polyacrylate has a molecular weight of from about 3,000 to about 40,000.

12 . The actinic curable composition of claim 1 , wherein said polyacrylate has a viscosity of from about 10 Pas to about 1200 Pas.

13 . The actinic curable composition of claim 1 , wherein said (meth)acrylate-functionalized silica comprises an active fumed silica.

14 . The actinic curable composition of claim 1 , wherein said photoinitiator comprises a combination of propanone and phosphine oxide.

15 . The actinic curable composition of claim 1 , wherein said composition has a tensile modulus at 100% elongation of from about 300 to about 450 psi.

16 . The actinic curable composition of claim 1 , wherein said composition has an initial sealing force of about 60 to about 150 N.

17 . A method for producing a gasket comprising:

providing an actinic radiation curable composition with improved tensile modulus, said composition comprising:

a polyacrylate;

(meth)acrylate-functionalized silica; and

a photoinitiator;

providing an injection mold defining an enclosed gasket-forming cavity and an injection port communicating with the cavity, the mold comprising an actinic radiation conducting means for permitting radiation transmission therethrough;

injecting said composition into the mold to at least partially fill the cavity; and

transmitting actinic radiation through the actinic radiation conducting means in a sufficient amount to cure the composition in the mold to form a gasket in the gasket-forming cavity.

18 . The method of claim 17 , wherein said actinic curable composition further comprises a hydrophobic fumed silica.

19 . The method of claim 18 , wherein the ratio of said (meth)acrylate-functionalized silica to said hydrophobic fumed silica is between 3:1 to 1:3.

20 . The method of claim 17 , wherein said composition comprises a glass transition temperature of between about −20° C. to about −30° C.

21 . The method of claim 17 , wherein said step of injecting said composition into the mold to fill the cavity is performed at approximately room temperature.

22 . The method of claim 17 , wherein said actinic radiation conducting means comprises radiation-conducting channels which conduct radiation through the mold to the actinic radiation curable composition.