The application relates generally to gas turbine engines and, more particularly, to seals used in such engines.
It is often desirable to create seal assemblies for isolating various parts or spaces from one another. As one example, in a gas turbine engine having a rotatable shaft supported by a shaft bearing, it is desirable to provide lubricant to the shaft bearing without allowing the lubricant to leak to surrounding components. An isolated chamber is formed around the shaft bearing by casing members for the purpose of retaining lubricant, and a seal assembly is used to seal between the static casing members and the rotatable shaft.
Labyrinth-type seal assemblies are often used to seal between the static casing and rotatable shaft. However, the lubricant within the isolated chamber is sometimes at a different temperature than the temperature of the surrounding environment. This may give raise to thermal gradients in the different sealing parts and ultimately result in lubricant leakage. Improvements are therefore desired.
In one aspect, there is provided a labyrinth seal assembly for a gas turbine engine having a rotatable shaft, the labyrinth seal assembly comprising: a housing defining a cavity for receiving a lubricant; a labyrinth seal between the housing and the rotatable shaft of the gas turbine engine, the labyrinth seal having a seal rotor securable to the rotatable shaft and a seal stator secured to the housing; and an insulation layer between the seal stator and the housing, the insulation layer composed of a material different than those used for the seal stator and the housing.
In another aspect, there is provided a gas turbine engine comprising: a shaft; an engine casing circumferentially extending around the shaft and defining a housing having a cavity therein; a labyrinth seal between the housing and the shaft and between the cavity and an environment outside the cavity, the labyrinth seal having a seal rotor secured to the shaft and a seal stator secured to the housing, the seal rotor rotatable relative to the seal stator, the seal stator in a sealing engagement with the seal rotor; and an insulation layer between the seal stator and the housing, the insulation layer composed of a material different than those used for the seal stator and the housing.
In yet another aspect, there is provided a method of operating a labyrinth seal assembly, comprising: receiving lubricant within a cavity; limiting the lubricant from leaking out of the cavity with a labyrinth seal; and thermally insulating a seal stator of the labyrinth seal from the lubricant within the cavity.
Reference is now made to the accompanying figures in which:
Still referring to
Referring now to
As shown in
Referring concurrently to
The seal 30 includes a seal rotor 30a and a seal stator 30b. The seal rotor 30a is secured to the shaft 22 for joint rotation therewith relative to the central axis 11. The seal stator 30b is secured to the housing 26, which is, in turn, secured to the engine casing 20. The seal stator 30b defines a sealing engagement with the seal rotor 30a. In the depicted embodiment, the seal 30 is referred to as a labyrinth seal as it includes a plurality of axially distributed fins 30c (
Referring more particularly to
In a typical configuration that is not illustrated herein, the opposed face 30g of the seal stator 30b, is exposed to the cavity C. In other words, the lubricant that is circulating within the cavity C might contact and/or impinge the seal stator 30b. This might decrease a temperature of the seal stator 30b. In other words, the temperature of the seal stator 30b might be less than that of the seal rotor 30a because of the oil that contacts the opposite face 30g of the seal stator 30b. This might cause the cavity end of the stator to be at a lower temperature than the environment end thereby creating a thermal expansion mismatch between the cavity and environment end of the seal stator. In turn, this might require an increase of a distance between the sealing faces of the seal stator and seal rotor and impair sealing efficiency of the labyrinth seal. In a typical configuration, the stator is cooled by bearing compartment oil. This may under certain circumstances negatively affect seal function as the thermal gradients become opposite to those on the rotating component, forcing larger required seal operating clearances due to poor control of the mismatched thermal growths. The typical configuration would have the stator portion at environment end 30k exposed to oil on one side and therefore cooler than the seal rotor, forcing uneven operating clearance at both ends, and undesirable increased overall clearance at some operating conditions.
In the embodiment shown in
In the depicted embodiment, the insulation layer 34 is an air gap G that extends from the seal stator 30b to the housing 26. More specifically, the housing 26 defines connecting portion 26a that is used to connect the seal stator 30b to a remainder of the housing 26. The connecting portion 26a extends at least radially between the engine casing 20 and the seal stator 30b.
In the embodiment shown, the connecting portion 26a extends radially and axially relative to the central axis 11. In other words, the connecting portion 26a of the housing 26 axially overlaps the seal stator 30b. As shown in
In the depicted embodiment, the connecting portion 26a of the housing 26 is secured to the seal stator 30b at the cavity end 30j of the seal stator 30b. In so doing, the opposed face 30g of the seal stator 30b, is not located within the cavity C of the housing 26. The insulation layer 34 is located between the connecting portion 26a of the housing 26 and the seal stator 30b.
Consequently, the seal stator 30b may be shielded by the insulation layer 36 (e.g., air gap G) and by the housing connecting portion 26a against any contact or thermal impact that would have been generated by the lubricant contained within the lubricating cavity C.
The connecting portion 26a of the housing 26 may extend parallel to the seal stator 30b opposite face 30g (as shown in
In a particular embodiment, a length of the insulation layer 34, which is herein taken along the axis 11 of the engine 10, and/or a length of the rotor opposed face 30i can be adjusted to tune the thermal properties to match or control relative deflections of the seal rotor/stator and sealing efficiency.
Still referring to
Consequently, and in the depicted embodiment, the seal stator 30b and the seal rotor 30a are located within the environment E and might be subjected to the same temperature field. Hence, both of the seal stator and rotor 30b, 30a might have a similar temperature distribution and might exhibit similar thermal expansions relative to one another.
Referring to all figures, for operating the labyrinth seal assembly 100, lubricant is received within the cavity C. The lubricant is limited from leaking out of the cavity C with one or more labyrinth seals 30 and the seal stator 30b of the labyrinth seal 30 is thermally insulated from the lubricant that flows within the cavity C. In the depicted embodiment, the seal stator 30b is thermally insulated from the lubricant in the cavity C by the air gap G that is defined between the seal stator 30b and the housing 26, more specifically, the connecting portion 26a of the housing 26.
Herein, the static stator portion of the seal is mounted intentionally such that it might be insulated from the bearing compartment oil thermal effects. This might allow the stator to be designed with a similar operating thermal pattern to the rotating portion of the seal, and then thermal growth and coning of both static and rotating components might be matched to optimize and reduce seal clearances throughout the complete operating range. This might result in reduced air flow and thermal load on the air-oil system of the engine. This might have the further benefit of allowing more complete static air insulation for the bearing compartment (e.g., cavity C) for reduced heat input to the oil system.
In a particular embodiment, the disclosed assembly 10 allows matching of thermal gradient, so the seal rotating and static component coning matches and allows reduced operating clearance and better air/oil system performance. In a particular embodiment, the high heat transfer seal air is no longer adjacent to a compartment wall (e.g., housing connecting portions 26a), and therefore overlap compartment operating temperature and heat load of the oil system is reduced. The seal stator may be separated from cooled wall of the housing 26 by being supported at its inboard side (cavity side).
In operation, environment end 30k has a higher temperature than cavity end 30j, and therefore has different thermal expansion. Herein, thermal growth at both ends might be matched as both the seal rotor and seal stator are subject to similar thermal operating conditions.
For operating the labyrinth seal, the lubricant is received within the cavity; the lubricant is limited from leaking out of the cavity with the labyrinth seal; and the seal stator is thermally insulated from the lubricant within the cavity. Herein, thermally insulating the seal stator includes thermally insulating the seal stator with an air gap located between the seal stator and the housing.
Embodiments disclosed herein include:
A. A labyrinth seal assembly for a gas turbine engine having a rotatable shaft, the labyrinth seal assembly comprising: a housing defining a cavity for receiving a lubricant; a labyrinth seal between the housing and the rotatable shaft of the gas turbine engine, the labyrinth seal having a seal rotor securable to the rotatable shaft and a seal stator secured to the housing; and an insulation layer between the seal stator and the housing, the insulation layer composed of a material different than those used for the seal stator and the housing.
B. A gas turbine engine comprising: a shaft; an engine casing circumferentially extending around the shaft and defining a housing having a cavity therein; a labyrinth seal between the housing and the shaft and between the cavity and an environment outside the cavity, the labyrinth seal having a seal rotor secured to the shaft and a seal stator secured to the housing, the seal rotor rotatable relative to the seal stator, the seal stator in a sealing engagement with the seal rotor; and an insulation layer between the seal stator and the housing, the insulation layer composed of a material different than those used for the seal stator and the housing.
Embodiments A and B may include any of the following elements, in any combinations:
Element 1: the material is air and the insulation layer includes an air gap extending from the seal stator to the housing outside the cavity. Element 2: the seal stator is connected to the housing at an inboard side of the seal stator. Element 3: the seal rotor is spaced apart from the shaft by an air gap located outside the cavity. Element 4: a second labyrinth seal, the cavity located between the labyrinth seal and the second labyrinth seal, the second labyrinth seal having a second seal stator in sealing engagement with a second seal rotor, the second seal stator secured to the housing, a second insulation layer between the second seal stator and the housing. Element 5: the second seal stator is secured to the housing at an inboard side of the second seal stator. Element 6: a connecting portion of the housing overlaps the seal stator, the insulation layer located between the connecting portion of the housing and the seal stator. Element 7: the connecting portion of the housing is substantially parallel to a face of the seal stator opposite a sealing face of the seal stator. Element 8: the connecting portion of the housing is angled relative to the seal stator. Element 9: the connecting portion of the housing overlaps the seal stator from an outboard side of the seal stator to an inboard side of the seal stator.
The above description is meant to be exemplary only, and one skilled in the art will recognize that changes may be made to the embodiments described without departing from the scope of the invention disclosed. For example, the insulation layer may comprise any suitable insulation material, and include at least one material (whether in gas, liquid or solid state) that is different than the adjacent materials between which insulation is desired. The above described configuration may be used for different thermal configurations, that is, the seal stator may be mounted to have it correspond to whichever condition the labyrinth seal is exposed to (hot or cold). Still other modifications which fall within the scope of the present invention will be apparent to those skilled in the art, in light of a review of this disclosure, and such modifications are intended to fall within the appended claims.
This application claims priority of U.S. provisional patent application No. 62/886,533 filed on Aug. 14, 2019, the entire content of which is incorporated herein by reference.
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