ABRADABLE MEMBER FOR A TURBINE OF A TURBOMACHINE, COMPRISING A WEAR FACE PROVIDED WITH GUIDE VANES
20220275731 · 2022-09-01
Assignee
Inventors
Cpc classification
F01D11/127
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2250/283
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
F05D2240/55
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D11/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2240/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D11/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2240/129
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An abradable member for a turbomachine turbine, including a cellular structure including walls defining wells which open through a wear face. The cellular structure includes at least one flow straightener jutting from the wear face.
Claims
1. An abradable member for a turbomachine turbine, comprising a cellular structure comprising walls defining wells which open through a wear face, characterized in that wherein the cellular structure comprises at least one flow straightener jutting from the wear face.
2. The abradable member according to claim 1, wherein the cellular structure is obtained by additive manufacture.
3. The abradable member according to claim 1, wherein: the at least one flow straightener has a curved wall fastened to a well.
4. The abradable member according to claim 1, comprising at least one series of flow straighteners disposed side by side to be aligned columnwise.
5. The abradable member according to claim 4, wherein the flow straighteners of at least one series are identical and oriented in the same way.
6. The abradable member according to claim 1, wherein the wells of the cellular structure are hexagonally based wells.
7. A turbomachine turbine comprising a movable bladed wheel having blades provided with rubbing fins, surrounded by a stator bearing at least one abradable member according to claim 1.
8. The turbomachine turbine comprising a fixed wheel comprising an inside sleeve surrounding a rotor member provided with rubbing fins, and wherein that inside sleeve bears at least one abradable member according to claim 1.
9. A turbine according to claim 7, wherein the flow straighteners are disposed downstream of the rubbing fins.
10. A jet engine comprising a turbine according to claim 7.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
DETAILED DESCRIPTION OF SPECIFIC EMBODIMENTS
[0027] The idea behind the invention is to produce an abradable member by additive manufacturing, comprising a layer of cellular material incorporating flow straighteners jutting from the wear face of that cellular layer, to straighten the leakage flow. The leakage flow is thus straightened to bring its gyration to a value close to that of the main flow in order to facilitate its re-introduction into the main flow downstream of the abradable member to improve efficiency.
[0028] A turbine of a turbomachine such as a jet engine, part of which is shown in
[0029] The inside face of the stator 2 is covered by abradable members 3 located immediately opposite rubbing fins carried by the blades 1 of the rotor, in an arrangement constituting an abradable ring surrounding those blades.
[0030] Each end of the blade 1 comprises a protuberance 4 comprising a platform 7 bearing a first rubbing fin 8, and a second rubbing fin 9 located downstream AV of the first rubbing fin, the ends of these rubbing fins extending along the abradable members 3 when the turbine is in use.
[0031] The abradable member 3 which is more clearly apparent in
[0032] The layer with the a cellular structure 12 is a network of walls 13 extending perpendicularly to the base 11 in a repeating pattern which here is hexagonally based to delimit contiguous hexagonal wells 14 extending radially, that is to say perpendicularly to the base 11. Other basic patterns may be used such as a square, rectangular or diamond-shaped pattern or of any other appropriate shape.
[0033] That layer 12 comprises, successively along the axis AX: a first abradable portion 16; a first series of straighteners 17a-17d; a second abradable portion 18; and a second series of straighteners 19a-19d. The radially inside faces of the abradable portions 16 and 18 which are disposed facing the rubbing fins of the rotor constitute their wear faces 21. The wear face 21 is located at a distance from the base 11 which is the nominal thickness N of that layer 12, and the straighteners comprise active straightening parts which jut from that wear face by an emerged radial height E.
[0034] The first series comprises four straighteners 17a-17d disposed side by side columnwise in the transverse direction Dc while being positioned downstream of the first rubbing fin 8, and which extend beyond the wear face 21. The second series comprises four straighteners 19a-19d disposed side by side columnwise in the transverse direction Dc while being positioned downstream of the second rubbing fin 9, and which extend beyond the wear face 21.
[0035] Each series of straighteners is located downstream of a rubbing fin, in order to channel the leakage flow passing within the functional radial clearance that exists between the rubbing fins and the abradable material and which flows between the wear face 21 and the platform 7. These straighteners are arranged to straighten the leakage flow in order to reduce its gyration in order to bring it to a value close to that of the main flow in order to reduce the pressure losses resulting from its reintroduction into the main stream downstream of the abradable member. As can be seen in the drawings, the straighteners of each series are oriented in the same direction.
[0036] More particularly, and as illustrated in
[0037] In similar manner, when the flow encounters the second rubbing fin 9, it again undergoes a deviation tending to increase its gyration. After having passed that second rubbing fin 9, it encounters the second series of straighteners 19a-19d which again straighten its direction of flow as close as possible to the axis AX, as represented by the arrows F4.
[0038] The fact of straightening the leakage flow enables its gyration to be significantly reduced to facilitate its re-introduction into the rest of the flow which has passed through the blades 1, and which also has weak gyration. The fact of facilitating the re-introduction of the leakage gases into the main stream, while reducing their gyration, provides a significant gain in the efficiency of the turbine.
[0039] Generally, it is preferable for the straighteners to be positioned downstream of the rubbing fins so as to be immediately opposite the blade platforms: in this zone of small passage cross-section, extending between the wear face and the platform, the leakage flow undergoes a jet effect making it possible to profit from high efficacy with the straighteners having a relatively small emerged radial height E.
[0040] As indicated above, the layer 12 is a network of walls constituting a repeating pattern forming hexagonal wells 14 of radial height corresponding to the nominal thickness N of that layer, which are contiguous perpendicular to the base 11 to conjointly delimit the wear face 21, and furthermore constituting a first and a second series of straighteners jutting from that wear face 21 by an emerged radial height E.
[0041] As can be seen in
[0042] Each straightener is fastened to one or more wells over the full height of those wells, to profit from anchorage in the cellular layer which is mechanically very robust. This anchorage over the full nominal thickness N enables each straightener to bear the mechanical stresses resulting from the flow of gas to which is subjected its active part jutting from the wear face 21.
[0043] The layer with a cellular structure 12 with the straighteners it comprises is obtained by additive manufacturing to combine the functions of cellular structure and of straightener in a single material. Additive manufacturing makes it possible to manufacture the complex forms of walls required by the implantation of the straighteners over the full nominal thickness N of the cellular structure for the purpose of improving its anchorage therein.
[0044] This additive manufacturing is for example provided by successive deposits of layers of metal powder melted by laser radiation to form the network of walls forming the layer 12. The straighteners are thus manufactured simultaneously with the honeycomb structure by stratification for example directly on the base 11. The additive manufacturing thus makes it possible conjointly to obtain cells providing mechanical robustness and enabling acoustic waves to be absorbed, and stiffeners making it possible to reduce the losses of efficiency due to the leakage flows.
[0045] As regards the design of the straighteners, these are provided with an appropriate curvature to ensure the straightening of the leakage flow in the general direction of gas flow. As can be seen in
[0046] As can be seen in
[0047] In practice, the dimensions, the shapes and the curvatures of the straighteners are designed as a function of the operating conditions of the turbine for its nominal regime, so as to bring the gyration of the leakage flow to a value close to that of the main flow.
[0048] Thus, in the embodiment of
[0049] The abradable member of
[0050] As can be seen more particularly in
[0051] Moreover, in the example for
[0052] Thus, in the example of