MANUFACTURING AIRFOIL WITH ROUNDED TRAILING EDGE
A method of manufacturing an aerodynamic element with an edge is provided. The method includes producing the aerodynamic element with an initial condition, cooling the aerodynamic element, generating a predefined number of data points sufficient to characterize contours of the edge and comparing the data points to a nominal condition to derive transformation parameters applicable to cutting toolpaths to adapt the cutting toolpaths to the initial condition.
1 . A method of manufacturing an aerodynamic element with an edge, the method comprising:
producing the aerodynamic element with an initial condition;
cooling the aerodynamic element;
generating a predefined number of data points sufficient to characterize contours of the edge; and
comparing the data points to a nominal condition to derive transformation parameters applicable to cutting toolpaths to adapt the cutting toolpaths to the initial condition.
2 . The method according to claim 1 , wherein the aerodynamic element comprises a turbine airfoil having a root and a tip, pressure and suction surfaces extending from the root to the tip and the edge is one of a leading edge and a trailing edge at leading and trailing sides of the pressure and suction surfaces, respectively.
3 . The method according to claim 1 , wherein the aerodynamic element comprises a ceramic core.
4 . The method according to claim 1 , wherein:
the generating of the predefined number of data points comprises one or more of scanning, probing and measuring the aerodynamic element with the initial condition,
the predefined number of data points are sufficient to characterize a position, size and shape of the aerodynamic element with the initial condition, and
the predefined number of data points are sufficient to characterize the contours of the edge relative to the position, the size and the shape of the aerodynamic element with the initial condition.
5 . The method according to claim 1 , wherein:
the initial condition is an as-cast condition and the as-cast condition is characterized as an offset discharge,
the cutting toolpaths are adapted toward correcting the as-cast condition, and
the method further comprises driving a cutting machine in accordance with the cutting toolpaths adapted toward correcting the as-cast condition.
6 . The method according to claim 5 , wherein the cutting machine comprises one or more of a CNC machine, a ball endmill, an electro-dynamic machining (EDM) electrode and an electro-chemical machining (ECM) electrode.
7 . The method according to claim 5 , further comprising feeding cutting fluid through the aerodynamic element during the driving.
8 . The method according to claim 5 , wherein the cutting toolpaths adapted toward correcting the as-cast condition are defined along one or more of radial, axial and circumferential dimensions.
9 . The method according to claim 5 , wherein each of the cutting toolpaths adapted toward correcting the as-cast condition comprises one or more passes on each side of the edge such that the edge has a curvature at each side thereof.
10 . The method according to claim 9 , wherein the curvature at each side is one or more of:
one or more of spherical, elliptical and complex; and
variable along one or more of radial, axial and circumferential dimensions.
11 . A method of manufacturing a turbine airfoil having a root and a tip, pressure and suction surfaces extending from the root to the tip, and leading and trailing edges at leading and trailing sides of the pressure and suction surfaces, respectively, the method comprising:
producing the turbine airfoil with an as-cast condition from an investment casting process;
cooling the turbine airfoil;
generating a predefined number of data points sufficient to characterize contours of the trailing edge; and
comparing the data points to a nominal condition to derive transformation parameters applicable to cutting toolpaths to adapt the cutting toolpaths to the as-cast condition.
12 . The method according to claim 11 , wherein:
the generating of the predefined number of data points comprises one or more of scanning, probing and measuring the turbine airfoil with the as-cast condition,
the predefined number of data points are sufficient to characterize a position, size and shape of the turbine airfoil with the as-cast condition, and
the predefined number of data points are sufficient to characterize the contours of the trailing edge relative to the position, the size and the shape of the turbine airfoil with the as-cast condition.
13 . The method according to claim 11 , wherein the as-cast condition is characterized as an offset discharge and the cutting toolpaths are adapted toward correcting the as-cast condition.
14 . The method according to claim 13 , further comprising driving a cutting machine in accordance with the cutting toolpaths adapted toward correcting the as-cast condition.
15 . The method according to claim 14 , wherein the cutting machine comprises one or more of a CNC machine, a ball endmill, an electro-dynamic machining (EDM) electrode and an electro-chemical machining (ECM) electrode.
16 . The method according to claim 14 , further comprising feeding cutting fluid through the turbine airfoil during the driving.
17 . The method according to claim 13 , wherein the cutting toolpaths adapted toward correcting the as-cast condition are defined along one or more of radial, axial and circumferential dimensions.
18 . The method according to claim 13 , wherein each of the cutting toolpaths adapted toward correcting the as-cast condition comprises one or more passes on each side of the trailing edge such that the trailing edge has a curvature at each side thereof.
19 . The method according to claim 18 , wherein the curvature at each side is one or more of:
one or more of spherical, elliptical and complex; and
variable along one or more of radial, axial and circumferential dimensions.
20 . A manufacturing machine for manufacturing an aerodynamic element, the manufacturing machine comprising:
a casting unit configured to execute a casting process to produce the aerodynamic element with an initial condition;
a cooling element configured to cool the aerodynamic element;
a cutting machine configured to machine the aerodynamic element following cooling by the cooling element; and
a processing system configured to:
generate a predefined number of data points sufficient to characterize contours of the aerodynamic element,
compare the data points to a nominal condition to derive transformation parameters applicable to cutting toolpaths to adapt the cutting toolpaths toward correcting the initial condition, and
drive the cutting machine in accordance with the cutting toolpaths adapted toward correcting the initial condition.