A turbo machine such as a gas turbine engine 10 is shown in
The compressor 12 includes a hub 14 mounted on the shaft 15. A discharge outlet 16 expels discharge air D from the compressor 12 to a turbine inlet 20 via passages 18. A turbine hub 22 supporting blades 24 is mounted on the shaft 15. The blades 24 receive and expand the discharge air D from the turbine inlet 20.
Pollution air P is produced within the gas turbine engine 10 from fluid that leaks past various seals. For example, compressor seals 26 and 28 arranged between the hub 14 and engine housing leak pollution air P into cavities 30 and 31. The pollution air P then leaks past seal 32 and reaches the turbine 19.
A nozzle such as a tangential on-board injector (TOBI) 44 delivers discharge air D to a space 40 near the turbine 16 for cooling the turbine hub 22. In the example shown, a baffle 43 is arranged between the passage 18 and the TOBI 44 to force the air to turn abruptly to separate debris before reaching the turbine 19. A member 36 separates the TOBI 44 and the turbine hub 22, and an aperture 38 is provided in the member 36 to permit cooling air C from the TOBI 44 to reach the turbine 19.
One example of TOBI 44 includes a hollow frustoconical-shaped manifold provided by first, second, third and fourth walls 46, 48, 50 and 52. Various views of the example embodiment 44 are shown in
Previously, the low momentum pollution air P simply leaked past the seal 32 and inhibited the flow of the discharge air D from the TOBI, which raised the pressure of the discharge air thereby reducing its cooling effectiveness. Typically, a discharge inlet 56 is provided in the first wall 46 near the outer diameter of the TOBI 44. A discharge outlet 58 is provided on the second wall 48, which is arranged on a side 49 facing the turbine hub 22 and is generally annular in shape. The example embodiment utilizes the passages 55 that would otherwise be blocked and unused. One or more pollution inlets 60 are provided on the inner or fourth wall 52 of the TOBI 44. The pollution inlets 60 are exposed to the cavity 31 so that pollution air P flows thru the TOBI 44 rather than leaking past the seal 32. Pollution outlets 61 are formed on the side 49 in the second wall 48. In this manner, pollution air P received by pollution inlets 60 is swirled in the same manner as the discharge air D and intermingled with the discharge air D when the pollution air P exits the pollution outlet 61.
An annular discourager 42 is mounted on a circumference of the TOBI 44 and extends radially outward. The discourager 42 prevents cooling air C from leaking past a seal 34 between the TOBI 44 and turbine 19.
TOBIs 44 can be retrofitted with the feature described in the present application by machining the existing TOBI and welding in pollution inlets and outlets 60 and 61 as described.
Although a preferred embodiment of this invention has been disclosed, a worker of ordinary skill in this art would recognize that certain modifications would come within the scope of this invention. For that reason, the following claims should be studied to determine the true scope and content of this invention.