Geometrically segmented abradable ceramic thermal barrier coating with improved spallation resistance
A turbine article includes a substrate with a geometric surface having a multiple of divots recessed into the substrate, and a ceramic topcoat disposed over the geometric surface, the topcoat including at least a first layer having a first hardness and a second layer having a second hardness, the first hardness different than the second hardness.
1. A turbine article comprising:
a substrate with a geometric surface having a multiple of raised substrate features and a multiple of divots forming coplanar surfaces; and
a ceramic topcoat disposed over the geometric surface, the ceramic topcoat comprising a first layer having a first hardness, a second layer on the first layer, the second layer having a second hardness, the first hardness different than the second hardness, a third layer on the second layer, the third layer having a hardness about equivalent to the first hardness, wherein the third layer is flush with a top surface of the geometric surface, the top surface of the multiple of raised substrate features and the bottom of each of the multiple of divots forming coplanar surfaces that are generally perpendicular to a spray stream for depositing the geometrically segmented abradable coating.
2. The turbine article as recited in claim 1 , wherein the first layer is located within a bottom of each of the multiple of divots and on a raised area surrounding each divot.
3. The turbine article as recited in claim 1 , further comprising a fourth layer on the third layer, the fourth layer having a hardness about equivalent to the second hardness.
4. The turbine article as recited in claim 3 , further comprising a fifth layer on the fourth layer, the fifth layer having a hardness about equivalent to the first hardness.
5. The turbine article as recited in claim 4 , wherein the coating is machined to remove the portion of the fourth and fifth layers that are raised above the fourth and fifth layers located in the divot locations to produce a machined surface.
6. The turbine article as recited in claim 5 , wherein the fifth layer is about 5-20 mils thick prior to being machined.
7. The turbine article as recited in claim 5 , wherein the fifth layer is about 3-10 mils thick after being machined.
8. The turbine article as recited in claim 1 , wherein the first layer is 1-3 mils thick and the second layer is 6-50 mils thick.
9. The turbine article as recited in claim 1 , wherein a divot depth of each of the multiple of divots of the geometric surface is 10-50 mils, the first layer thickness spans from 0-15% of the divot depth (with 0% being the bottom of the divot) and the third layer thickness spans 90-115% the divot depth.
10. The turbine article as recited in claim 1 , wherein each of the multiple of divots of the geometric surface comprises a substantially uniform divot depth extending into the substrate and a divot width, wherein the ratio of the divot width to the divot depth is 1 to 10, with the divot depth being at least 0.01 inches (0.254 millimeters).
11. The turbine article as recited in claim 1 , wherein the substrate comprises a bond coat.
12. The turbine article as recited in claim 1 , wherein the substrate is at least one of metallic, monolithic ceramic, metal matrix composite and a ceramic matrix composite.
13. The turbine article as recited in claim 1 , wherein the article is a blade outer air seal.