MACHINABLE MOLDED FRETTING BUFFER
A fretting buffer includes a matrix, a plurality of reinforcing fibers, and a lubricant disbursed substantially homogeneously in the matrix.
1 . A fretting buffer comprising:
a matrix, the matrix comprising a phenolic resin;
a plurality of reinforcing fibers, the plurality of reinforcing fibers comprising polyester fibers and the plurality of reinforcing fibers being disbursed substantially homogeneously in the phenolic resin matrix; and
a lubricant; the lubricant comprising polytetrafluoroethylene, the lubricant being disbursed substantially homogeneously in the matrix.
2 . The fretting buffer of claim 1 , wherein the matrix comprises a resin selected from the group consisting of epoxies, silicates, nitriles, polyimides, phthalates, and combinations thereof.
3 . The fretting buffer of claim 1 , wherein the plurality of reinforcing fibers is selected from the group consisting of aramids, glasses, carbons, PEEKs, thermoplastics, ceramics, and combinations thereof.
4 . The fretting buffer of claim 1 , wherein the polyester fibers are felted.
5 . The fretting buffer of claim 1 , wherein the polytetrafluoroethylene comprises at least one of polytetrafluoroethylene fibers and polytetrafluoroethylene whiskers.
6 . The fretting buffer of claim 1 , wherein the matrix is formed into a sheet.
7 . The fretting buffer of claim 1 , further including a debris slot for capturing a wear particle or a contaminant.
8 . The fretting buffer of claim 1 , further including a wear indicator.
9 . The fretting buffer of claim 8 , wherein the wear indicator is at least one of: (a) a slot and (b) a colorant, disposed partially through a thickness of the fretting buffer.
10 . The fretting buffer of claim 1 , further comprising at least one colorant, the at least one colorant being disbursed substantially homogeneously in the phenolic resin matrix to form a predetermined color which substantially matches a predetermined color of an aircraft structure.
11 . The fretting buffer of claim 1 , comprising a bonding side having at least one slot extending therein to accommodate conformation of the fretting buffer to arcuate surfaces.
12 . The fretting buffer of claim 11 , wherein bonding side has at least two slots extending therein to accommodate conformation of the fretting buffer to arcuate surfaces, the at least two slots intersecting one another.
13 . The fretting buffer of claim 1 , comprising a wear side having at least one slot extending therein to accommodate conformation of the fretting buffer to arcuate surfaces.
14 . The fretting buffer of claim 13 , wherein wear side has at least two slots extending therein to accommodate conformation of the fretting buffer to arcuate surfaces, the at least two slots intersecting one another.
15 . The fretting buffer of claim 1 , wherein the fretting buffer comprises a sheet or strip configured to continuously cover, conform to, be adhered to or be a wear surface over an arcuate surface.
16 . A method of protecting a structure from fretting comprising:
providing the fretting buffer of claim 1 ;
attaching the fretting buffer to a first mating surface of a first structure; and
mating the first mating surface with a second mating surface of a second structure, wherein the fretting buffer is disposed between the first mating surface and the second mating surface.
17 . The method of claim 16 , wherein the fretting buffer is adhesively bonded to the first mating surface.
18 . The method of claim 16 , wherein the first structure is a first nacelle component and the second structure is a second nacelle component.
19 . The method of claim 16 , wherein the second structure includes a polyurethane based polytetrafluoroethylene filled coating disposed on the second mating surface.
20 . The method of claim 16 , wherein the second mating surface is a non-chromate treated metal.
21 . The method of claim 16 , wherein the second mating surface comprises at least one of a bare metal, a plated metal, a high velocity oxygen fuel coated surface, and a ceramic coated surface.