The present invention relates to gaskets and particularly to hybrid gaskets constructed of polymers containing corrugated inserts.
Conventional polytetrafluoroethylene (PTFE) envelope gaskets use a machined PTFE envelope. These gaskets can be problematic because of their porosity and the propensity for the splitting of the thin PTFE envelope material. Additionally, the envelope may flare open prior to installation making the installation difficult. These conventional envelope gaskets also require high compressive stress/bolt load and have poor surface conformability. Other types of PTFE including expanded PTFE, full density PTFE and filled PTFE lack resiliency, so a corrugated insert may be used to provide this resiliency.
Gaskets having both polymer (PTFE) and metal components have been known and used for many years. These types of gaskets are acceptable for many gasket applications. The corrugated metal in combination with the polymer layers form a gasket able to handle low bolt load and thermal cycling and still maintain an adequate seal.
Accordingly, it is an object of the present invention to overcome the foregoing drawbacks and provide an effective hybrid gasket construction. The new construction provides nonconductive polymer elements at both the inside diameter and outside diameter of a gasket, thereby encapsulating a rigid, typically metal insert and removing the need for adhesive to adhere to and hold a metal insert in place inside a gasket.
In one example, a hybrid gasket comprises a first annular ring comprising a polymer. The first ring has an inside diameter and an outside diameter, wherein the width of the first ring is the radial distance from the inside diameter to the outside diameter, and wherein the first ring has a thickness that is the distance from one side of the ring to the opposite side. The first annular ring has a pocket therein that is defined by a slit from the outside diameter of the first ring toward the inside diameter, and wherein the radial width of the slit is less than the width of the first ring. A second annular ring is comprised of a corrugated metal. The second ring has an inside diameter and an outside diameter, wherein the width of the second ring is the radial distance from the inside diameter to the outside diameter, and wherein the width of the second ring is less than the width of the first ring. The second ring is positioned inside the pocket of the first ring. And the outside diameter of the first ring is greater than the outside diameter of the second ring. The gasket may further comprise adhesive applied to the inside of the pocket and outside the outside diameter of the second ring, whereby the second ring is sealed within the thickness of the first ring. The hybrid gasket may also further include a third annular ring having an inside diameter greater than the outside diameter of the second ring, and the inside diameter is less than the outside diameter of the first ring. The third annular ring is positioned, at least in part, inside the pocket of the first ring. Adhesive may be applied to both sides of the third annular ring to seal the third annular ring inside the pocket. The first annular ring may be comprised of expanded polytetrafluoroethylene. The width of the slit may be substantially equal to the width of the second ring plus the width of the third ring.
The present invention is demonstrated in
Referring now to
The gasket 30 includes a second annular ring 32 formed of a corrugated material, typically metal. The metal ring 32 has an inside diameter 38 and outside diameter 39, and the width W3 of the second ring 32 is the radial distance from the inside diameter 38 to the outside diameter 39. The width W3 of the second ring 32 is less than the width W1 of the first ring 31. The corrugated ring 32 is positioned inside the pocket 34 of the first ring 31. A layer of adhesive 33 is applied to the inside of the pocket 34 on the portion of the pocket that is outside the outside diameter 39 of the metal ring 32. The adhesive 33 seals together the polymer ring 31, thereby encapsulating the metal ring 32 inside the pocket 34.
A corrugated metal ring 42 has an inside diameter 48 and an outside diameter 49 that define width W30 that is the radial distance from the inside diameter to the outside diameter. The width W30 of the metal ring 42 is less than the width W10 of the first ring 41. The metal ring 42 is positioned inside the pocket 44 of the first ring 41. Also, the outside diameter 46 of the first ring 41 is greater than the outside diameter 49 of the metal ring 42.
The gasket 40 further includes a polymer third ring 47 having inside diameter 50 and an outside diameter 51. The width W40 is the radial distance from the inside diameter 50 to the outside diameter 51 of the polymer ring 47. The inside diameter 50 of the polymer ring 47 is greater than the outside diameter 49 of the metal ring 42. The outside diameter 51 of the polymer ring 47 as shown is substantially equal to or less than the outside diameter 46 of the first ring 41. (The outside diameter 51 could also be greater than the outside diameter 46 of the first ring 41.) The polymer ring 47 is positioned inside the pocket 44. Adhesive 33 is applied to both sides of the ring 47 to secure it inside the pocket 44. Importantly, the adhesive 43 is applied inside the pocket 44 but outside the outside diameter 49 of the second ring 42.
In one application, the inside and outside diameters 48 and 49 respectively of the corrugated insert 42 are engineered with the inside diameter of the third polymer ring 47 so that adhesive 43 and the third ring itself are not compressed by the flange loading faces in the given joint. Carrying no load, therefore, the thermal degradation of the adhesive does not impact the portion of the gasket that is compressed and sealing. In other words, the outside diameter 49 of the corrugated insert 42 is engineered to be substantially the same as the outside diameter of a pipe flange raised face so that the third ring 47 (and adhesive 43) do not have any sealing role.
The polymers or envelope materials that may be used in connection with the components of the gasket described herein may be any form of polytetrafluoroethylene (PTFE) or other material used in the gasket industry including, but not limited to, the following: elastomers, PTFE, porous PTFE, expanded PTFE, filled PTFE, microcellular PTFE, expanded graphite, etc. The use of PTFE in various forms is often advantageous, because PTFE is chemically inert to most process media, and it is electrically nonconductive.
The corrugated insert may be any rigid material, typically metal. Commonly used metal inserts are made from stainless steel, carbon steel, copper, copper alloy, nickel alloy, titanium alloy, hastalloy, etc. Rigid plastics or polymers may also be used. The thickness of the insert and amount of corrugation will depend on gasket size and specific application requirements, as will the inside diameter/outside diameter of all components within the gasket.
The components of the gasket may be secured together using adhesives or other means of securing including heat fusion (e.g. expanded PTFE) or FEP/PFA melt films or mechanical compression or stitching. Different adhesives that may be used in connection with the present gasket are known to those in the gasket industry including, but not limited to, pressure sensitive adhesives, epoxy, acrylic, rubber, etc. It is preferable to use adhesives that are relatively inert or minimally affected by process or atmospheric conditions within the plant environment.
While the invention has been described with reference to specific embodiments thereof, it will be understood that numerous variations, modifications and additional embodiments are possible, and all such variations, modifications, and embodiments are to be regarded as being within the spirit and scope of the invention.