Method for removing refractory metal cores
11325182 · 2022-05-10
Assignee
Inventors
Cpc classification
F27B5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B5/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B5/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B22D29/00
PERFORMING OPERATIONS; TRANSPORTING
F27B5/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A furnace for removing a molybdenum-alloy refractory metal core through sublimation comprising a retort furnace having an interior; a sublimation fixture insertable within the interior of the retort furnace, the sublimation fixture configured to receive at least one turbine blade having the molybdenum-alloy refractory metal core; a flow passage thermally coupled to the retort furnace configured to heat a fluid flowing through the flow passage and deliver the fluid to the molybdenum-alloy refractory metal core causing sublimation of the molybdenum-alloy refractory metal core.
Claims
1. A furnace for removing a molybdenum-alloy refractory metal core through sublimation comprising: a retort furnace having an interior; a sublimation fixture insertable within said interior of the retort furnace, said sublimation fixture configured to receive at least one turbine blade having the molybdenum-alloy refractory metal core; a flow passage thermally coupled to said retort furnace configured to heat a fluid flowing through said flow passage and deliver said fluid to said molybdenum-alloy refractory metal core causing sublimation of said molybdenum-alloy refractory metal core, wherein said flow passage is fluidly coupled to a coupling configured to receive air, and said flow passage is fluidly coupled to a junction at an end opposite said coupling, said junction being configured to fluidly couple to said sublimation fixture.
2. The furnace for removing a molybdenum-alloy refractory metal core through sublimation according to claim 1, wherein said flow passage is formed within a wall of the retort furnace.
3. The furnace for removing a molybdenum-alloy refractory metal core through sublimation according to claim 1, wherein said sublimation fixture comprises a blade receiver fluidly coupled to said flow passage, said blade receiver configured to receive a root of said turbine blade.
4. The furnace for removing a molybdenum-alloy refractory metal core through sublimation according to claim 1, further comprising: a collector fluidly coupled to said interior of the retort furnace, wherein said collector is configured to collect waste discharged from the blade responsive to sublimation of said molybdenum-alloy refractory metal core.
5. The furnace for removing a molybdenum-alloy refractory metal core through sublimation according to claim 1, further comprising: an inner furnace box within an outer furnace box of said retort furnace, said inner furnace box configured to receive said sublimation fixture.
6. The furnace for removing a molybdenum-alloy refractory metal core through sublimation according to claim 1, wherein said inner furnace box comprises an enclosure coupled to a base at a joint having a seal between a wall of said enclosure and said base.
7. A furnace for removing a molybdenum-alloy refractory metal core from a blade through sublimation comprising: a retort furnace comprising an outer furnace box having an interior; an inner furnace box within said interior, said inner furnace box comprising an enclosure coupled to a base; a sublimation fixture insertable within said inner furnace box, said sublimation fixture configured to receive at least one turbine blade having the molybdenum-alloy refractory metal core; a flow passage coupled to said sublimation fixture; said flow passage thermally coupled to said retort furnace configured to heat a fluid flowing through said flow passage and deliver said fluid to said molybdenum-alloy refractory metal core causing sublimation of said molybdenum-alloy refractory metal core, wherein said flow passage is fluidly coupled to a coupling configured to receive air, and said flow passage is fluidly coupled to a junction at an end opposite said coupling, said junction being configured to fluidly couple to said sublimation fixture; and a collector fluidly coupled to said interior of the outer furnace box, wherein said collector is configured to collect waste discharged from the blade responsive to sublimation of said molybdenum-alloy refractory metal core.
8. The furnace for removing a molybdenum-alloy refractory metal core through sublimation according to claim 7, wherein said flow passage is formed within a wall of the inner furnace box.
9. The furnace for removing a molybdenum-alloy refractory metal core through sublimation according to claim 7, wherein said sublimation fixture comprises a blade receiver fluidly coupled to said flow passage, said blade receiver configured to receive a root of said turbine blade.
10. The furnace for removing a molybdenum-alloy refractory metal core through sublimation according to claim 7, wherein said enclosure is coupled to the base at a joint having a seal between a wall of said enclosure and said base.
11. The furnace for removing a molybdenum-alloy refractory metal core through sublimation according to claim 7, wherein said sublimation fixture comprises a cavity formed between internal plenums opposite said blade receiver.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
DETAILED DESCRIPTION
(10) Referring now to
(11) The inner furnace box 14 situated within the interior 18 includes a coupling 20 attached to an exterior 22 of a retort furnace wall 24. A flow passage 26 is coupled to the coupling 20. The coupling 20 can include a quick connect 44 configured to receive an external air supply line from an air source 45. The flow passage 26 fluidly connects with an interior 28 of the inner furnace box 14 (See
(12) Referring also, to
(13) Referring also to
(14) Referring also to
(15) Referring also to
(16) Referring also to
(17) The sublimation fixture 68 can include a thermocouple 88 seated in a thermocouple well 90. The thermocouples 88 can be placed strategically along the sublimation fixture 68 to provide for temperature data to operate the retort furnace 10.
(18) The profile of the sublimation fixture 68 includes a cavity 92 formed opposite the blade receiver 80. The cavity 92 can be formed as a linear V with radius configuration that runs between the internal plenum legs 72. The cavity 92 serves a dual purpose. The first purpose of the cavity 92 is to reduce the overall weight of the sublimation fixture 68. The second purpose is to enlarge the surface area of the sublimation fixture 68 to improve the heat transfer from the inner furnace box 14 to the sublimation fixture 68. The air 46 flowing through the sublimation fixture 68 receives the thermal energy transferred from the inner furnace box 14 to the sublimation fixture 68. The sublimation fixture 68 having these features allows for shortened processing time for each set of turbine blades 74 mounted in the sublimation fixture 68 because the sublimation fixture 68 heats up faster, cools down faster, maintains more uniform temperature during the core removal operation process cycle, and maintains improved temperature uniformity during heating and cooling.
(19) The collector 38 is configured to capture the waste 36 in the air 46 discharged from the sublimation of the molybdenum-alloy refractory metal cores 48. The hot air 46 flowing into and through the blades 74 passes over the molybdenum-alloy refractory metal cores 48 and sublimates the material. The air 46 discharges from the blade 74 into the interior 28 and flows to the collector 38. The waste 36 of molybdenum dioxide, and/or molybdenum trioxide in the waste 36 stream can be exhausted from the discharge 34 into the collector 38. The collector 38 can include a HEPA filtering system. The collector 38 can include a water entrainment tank configured to capture the molybdenum dioxide, and/or molybdenum trioxide. The molybdenum dioxide, and/or molybdenum trioxide can be reverted or disposed.
(20) Referring also to
(21) There has been provided a process and tooling for non-aqueous removal of refractory metal cores. While the tooling for non-aqueous removal of refractory metal cores 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.