LASER ROUGH DRILL AND FULL EDM FINISH FOR SHAPED COOLING HOLES
20210060709 ยท 2021-03-04
Assignee
Inventors
Cpc classification
B23H1/00
PERFORMING OPERATIONS; TRANSPORTING
F05D2260/202
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/186
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B23H9/10
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23H9/10
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A process of forming a shaped cooling passage in an article comprising positioning the article within a laser drilling apparatus; laser ablating a near net-shaped cooling passage having a meter section and a diffuser section; forming a re-recast on an interior wall of said cooling passage in both the meter section and the diffuser section; positioning the article within an electric discharge machining apparatus; and electric discharge machining said re-cast from said interior wall at both the meter section and diffusor section with the same electric discharge machine electrode to form a finished shaped cooling passage.
Claims
1. A process of forming a shaped cooling passage in an article comprising: positioning the article within a laser drilling apparatus; laser drilling a near net-shaped cooling passage having a meter section and a diffuser section, wherein a re-recast is formed on an interior wall of said cooling passage in both the meter section and the diffuser section; positioning the article within an electric discharge machining apparatus; and electric discharge machining said re-cast from said interior wall at both the meter section and diffusor section with the same electric discharge machine electrode to form a finished shaped cooling passage.
2. The process according to claim 1, wherein said electric discharge machine electrode is shaped for both said meter section and said diffuser section.
3. The process according to claim 1, further comprising: locating said near net-shaped cooling passage prior to said electric discharge machining with a vision system; and aligning said electric discharge machine electrode with said near net-shaped cooling passage.
4. The process according to claim 1, wherein said article comprises a flow surface.
5. The process according to claim 4, wherein the cooling passage is canted at an angle relative to the flow surface and configured to direct cooling fluid.
6. The process according to claim 1, wherein said article is a gas turbine engine rotor blade having an airfoil coupled to a platform and said cooling passages formed within at least one of said airfoil and said platform.
7. The process according to claim 1, wherein said meter section and said diffuser section are formed in the absence of duplicating or reintroducing separate electrodes for each of the diffuser section and the meter section.
8. The process according to claim 1, where said article is selected from the group consisting of a rotor blade, a vane and a combustion chamber panel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0029]
[0030] The airfoil 14 includes a plurality of shaped cooling passages 22 disposed along the pressure side 24 of the airfoil 14. As shown in
[0031] The platform 16 includes another plurality of cooling passages 34 extending through the platform 16. A first group of the cooling passages 34 are adjacent to the airfoil 14. As shown in
[0032] Each cooling passage 18 is disposed about a passage axis 46 and includes a meter section 48 and a diffuser section 52. The meter section 48 is centered on the passage axis 46 and is of constant diameter. The meter section 48 controls the amount of cooling fluid flowing through the cooling passage 18. The diffuser section 52 expands outwardly such that the velocity of the cooling fluid flowing through the metering section 48 decreases and the body of fluid spreads over a greater area. The shape of each particular cooling passage 18 can be tailored to meet the particular cooling requirement.
[0033] In an exemplary embodiment the cooling passage 18 can be canted at a particular angle relative to the flow surface over which it is directing cooling fluid. For the airfoil cooling passages 18, these angles are represented by the character and are shown as being approximately equal to each other. For the platform cooling passages 34, these angles are represented by the character . The angles are different depending upon the location of the platform cooling passage 34. In addition, each of the platform cooling passages 34 form an angle with a common reference, as shown in
[0034] Forming the shaped cooling passages 18 requires two independent passage forming operations, one for the near net-shape meter section 48 and the diffusor section 52 of each cooling passage 18 and one for the finished version of the meter section 48 and the diffusor section 52 of each cooling passage 18. For illustrative purposes, the process includes a laser drilling operation and an EDM operation will be shown and described as the methods for forming the meter section 48 and the diffusor section 52, respectively. Laser drilling is a time and cost efficient method to make the straight, constant diameter passages for both the meter section 48 and diffusor section 52. EDM is a method for making passages having three-dimensionally complex shapes, such as the diffusor section 52.
[0035]
[0036] Upon completion of the laser drilling of both the meter sections 48 and diffusor sections 52, the rotor blade 12 is removed from the laser drilling apparatus 54. Laser backing material, used conventionally to prevent back wall strikes during laser drilling, is removed from the rotor blade 12. The rotor blade 12 is then placed within the EDM apparatus 56. Again, a multi-axis mount 62 is used to position and rotate the rotor blade 12 into the proper orientation for the EDM passage forming. As with the laser drilling device, the EDM apparatus 56 has its own internal coordinate system and each cooling passage 18 has a spatial position P2 within that coordinate system. Both the meter sections 48 and diffusor sections 52 are formed at the specified locations, again within the tolerances of the EDM apparatus 56.
[0037]
[0038] Referring to
[0039]
[0040] Step 112 of the process, shown at
[0041] Step 114 of the process, shown in
[0042] Step 116 of the process, shown at
[0043] Step 118 shown at
[0044] At step 120, shown in
[0045] A technical advantage of the disclosed process includes a straightforward technique to drill the initial meter and diffuser to near net shape using a laser and then using a vision system to locate the rough hole.
[0046] Another technical advantage of the disclosed process includes using a precisely shaped EDM electrode to remove the laser recast material and finish both the meter and the diffuser of the cooling passage, creating the precise shape needed.
[0047] Another technical advantage of the disclosed process includes the fact that laser drilling is far faster than EDM; laser drilling a shaped cooling hole by removing most of the material using the laser, saves enormous amounts of time.
[0048] Another technical advantage of the disclosed process includes using EDM to remove recast and finalize the shape of both meter and diffuser sections at the same time which cuts down process time and provides excellent cooling passage quality.
[0049] The disclosed process overcomes the drawbacks of previous systems that have not succeeded, because the time needed to find each rough hole and align the EDM electrode with the rough hole consumes much of the time saved by drilling the near net shape hole with a laser.
[0050] Using the vision system to rapidly locate each hole for finish EDM drilling saves most of the time that was lost in previous systems.
[0051] Another technical advantage of the disclosed process includes using the laser to rough form the near net-shape passage to save time, and then EDM finishing the entire passage (meter and diffuser) to provide the precise shape needed.
[0052] There has been provided a process of forming a cooling passage. While the process of forming a cooling passage has been described in the context of specific embodiments thereof, other unforeseen alternatives, modifications, and variations may become apparent to those skilled in the art having read the foregoing description. Accordingly, it is intended to embrace those alternatives, modifications, and variations which fall within the broad scope of the appended claims.