Background of the Invention
This invention relates to housings for turbomachines such as, for example, gas turbine engines, and, in particular, although not exclusively to housings for compressors of such machines.
During transient conditions of operation such as on start-up or run-down of such machines the temperature of the working fluid in the machine varies relatively quickly. Those parts of the machine in direct contact with the working fluid are thereby heated or cooled relatively quickly. However, the thermal response of components not in direct contact with the working fluid, is much slower and this can cause problems. For example, in gas turbine engine compressors or turbines having a bladed rotor comprising blades mounted on discs and disposed within a housing, the housing tends to heat up very quickly whereas the more massive rotor discs, which are shielded from the hot gases by the blade platforms and interstage spacers, heat up less quickly. The consequence is that the gap between the tips of the blades and the housing varies because of the differential thermal expansion. This can lead to fouling of the blades on the casing, or, if the gap becomes too large, to loss of efficiency or a surge in the engine.
It is known to construct turbine or compressor housings in the form of two radially spaced casings, and to match the expansion of the inner casing to that of the rotor by providing thermal insulating materials on the inner surface of the inner casing and heat sinks on the inner casing to slow down the thermal response of the casing. Such a compressor casing is described in our British Pat. No. 1,501,916. The casing described in this patent comprises an inner casing made up of annular stator rings carrying stator vanes, and the outer casing comprises cylindrical rings or two half casings joined along longitudinal axes and assembled around the outside of the inner casing and bolted to it.
One of the problems with compressor housings employing inner casing segments which locate in an outer casing is that pressurised air leaks into the space between the inner and outer casing from high pressure regions of the compressor and tends to flow back towards the lower pressure stages of the compressor. This reduces the efficiency of the compressor and has a detrimental effect on the overall thermodynamic cycle of the turbomachine.
Summary of the Invention
An object of the present invention is to improve the sealing between co-axially adjacent inner segments to minimize the leakage of air into the gap between the inner and outer casings.
It is an object of the present invention to provide a housing for a turbine or compressor of a turbomachine in which the thermal response of the housing is designed to match substantially the thermal response of the turbine or compressor rotor assembly, as the case may be, so as to control the operating clearance between the casing and its respective rotor assembly.
The invention as claimed utilizes the axial forces, and the turning moment produced on the inner casing segments by the gas loads on the segments, to urge the segments into contact with the inclined surface so that the segments slide into contact with other surfaces to establish an effective air seal.
The present invention will now be described, by way of an example, with reference to the accompanying drawing in which:
Brief Description of the Drawings
FIG. 1 illustrates schematically a gas turbine aero-engine incorporating the present invention;
FIG. 2 shows in greater detail part of the housing of the high pressure compressor of the engine of FIG. 1 constructed in accordance with the present invention;
FIG. 3 illustrates in greater detail part of the housing of FIG. 2.
Detailed Description of Preferred Embodiments
Referring to the drawings, FIG. 1 shows a ducted fan aero-engine 10 comprising a front mounted low pressure compressor 11 driven by a turbine 12, a high pressure compressor 13 driven by a turbine 14, a combustion chamber 15 for generating hot gases to drive the turbine 12 and 14 and an exhaust jet pipe 16.
Referring to FIGS. 2 and 3 at least the rearmost part of the H.P. compressor 13 is accommodated within an outer hollow cylindrical casing 18 made up of a plurality of cylindrical sections 18(a) to 18(e) assembled end-to-end along the axis of the compressor. The section 18(a) to 18(e) may each be fabricated from one part or a plurality of parts bolted together along a joint or flange which extends in a direction along the length of the compressor. Located within the outer casing, and spaced from it, is an inner casing 19.
The inner casing 19 comprises a plurality of hollow cylindrical sections 19(a) to 19(e) assembled end-to-end along the length of the compressor. Each section 19(a) to 19(e) comprises a plurality of segments 20(a) to 20(e) which are spaced apart circumferentially to define a gap which allows circumferential expansion and contractions of the segments relative to one another. These gaps between the segments 20(a) to 20(e) extend in a longitudinal direction and are sealed by means of a longitudinal sealing strip 46 that overlaps the segments 20(a) to 20(e) to provide an effective air seal.
Each of the segments 20(a) to 20(e) is provided with at least two axially spaced sets of fixing devices comprising locating members 21,22 (shown in greater detail in FIG. 3) which locate in locating means 24(a), 24(b) provided on the outer casing 18. The segments 20(a) have one locating member 21 and two locating members 22. Each segment 20(a) to 20(e) comprises a plurality of stator vanes 23 cantilevered from the circumferential wall of each segment.
Referring in particular to FIG. 3 it will be seen that the locating means 24(a), on the outer casing 18 comprises a recess 25 at the radially innermost end of a radial flange 26 of each section 18(a) to 18(e). The recess 25 is defined by two surfaces namely a surface 27 inclined to a direction extending axially along the outer casing, and an axially extending circumferential surface 28 that defines a sealing surface. The flanges 26 also have a second locating means 24(b) defined by a recess 29 in which an adjacent segment locates. The second recess 29 has an axially extending cylindrical surface 30 which lies on the same radius as the surface 28 and the surfaces 28 and 30 support the segments 20 at a fixed radius when the compressor is stopped. Section 18(a) of the outer casing has an additional flange 26 partway along its length. This additional flange is provided with a recess 29 which is identical to the other recesses 29.
The locating members 21, of each segment 20(a) to 20(e) comprises an upstanding circumferential flange 31 that projects towards the outer casing 18 and has an inclined surface 32 that confronts the inclined surface 27 of the recesses 25, and a circumferential surface 33 that engages the surface 28.
The locating members 22 of the segments 20(a) to 20(e) comprise an upstanding circumferential flange 34 that projects towards the outer casing 18. The flange 34 has a hook portion 35 defined by a cylindrical flange, and the hook portion 35 has a circumferential surface 36 that engages the surface 30.
In operation, gas loads exerted on the segments 20(a) to 20(e) by the compressed air as it flows axially through the compressor 13 acts on the stator vanes 23 to push the segments 20(a) to 20(e) forwards an indicated by arrow A (FIG. 3). This causes the inclined surface 32 to engage the inclined surface 27 and slide down the incline urging the surfaces 33 and 28 together into sealing engagement. At the same time the cylindrical surfaces 36 and 30 permit the segments 20(a) to 20(e) to slide axially relative to the outer casing.
The gas loads impart a turning moment to the segments 20 which is clockwise as viewed in FIG. 3 (shown by arrow Ma). The net effect of the forwards movement of the segment and the rotation of the segments due to the turning moment is to urge the surfaces 33 and 36 radially inwards to effect an air seal at regions X and Y to minimize leakage of air into the gap between the casing 18,19.
The segments 20(a) each have a plurality of rows of stator vanes 23 nevertheless the inclined surfaces effect a seal at the front of each segment 20(a) and the hooks 35 effect air seals on the surfaces 30.
The present invention may be applied to housings for turbine rotors. In this case the gas loads act rearwards to the inclined surfaces 27 and 32 would be provided at the rear of the segments.
It is to be understood that the locating members 21,22 may be provided on the outer casing 18 and the locating means (i.e. recesses 25,29 provided on the inner casing 19). That is to say that the arrangement shown in FIG. 3 could be reversed.
It is also to be understood that although the inclined surfaces 27 are shown as facing radially inwards they may be arranged to face outwards in which case the circumferential surfaces 28 and 30 would face inwards and confront the inclined surfaces so that as the inclined surfaces slide along the incline the surfaces 28,33 are urged together.
In a further modification the surfaces 28 and 30 need not be cylindrical but could be conical to form a diverging recess. In this case the surfaces 33,36 could by cylindrical (in which case they would engage surfaces along a line contact) or conical. However, this arrangement is not preferred because of the difficulty of locating the segments on a predictable radius.
The outermost flanges 37 of the outer casing 18 constitute thermal slugging masses that control the rate of heat dissipation from the inner casing 19 through the flanges 26 and 37. If desired, the outercasing 18 may be surrounded with a further casing or sleeve to define a chamber around the outercasing 18, through which air can flow to enable one to control more precisely the flow of heating or cooling air over the slugging masses. In this way it may be possible to control the tip clearances of the rotor blades. In this latter described arrangement the inner and outer casings 18,19 form the structural housing for the compressor rotor.
Furthermore, since the inner casing 19 is located in recesses in the outer casing, radial movements of the inner casing can be controlled easier and hence one can achieve better control of the clearances of the tips of the stator vanes 23 and rotor blades.