Device for adjusting a gap between the housing of an impeller and the impeller in a radial compressor and a turbomachine
10465705 ยท 2019-11-05
Assignee
Inventors
Cpc classification
F04D29/4206
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D27/0246
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/162
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/622
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/62
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A device for adjusting a gap between the housing of an impeller and the impeller in a radial compressor of a turbomachine is provided. The device comprises at least one mechanical setting device by means of which the housing of the impeller can be axially adjusted in a targeted manner for the purpose of adjusting the gap, wherein the at least one setting device can be actuated via an adjusting ring, and a transmission of a force and/or a torsional moment from the adjusting ring can be effected via at least one adjustment lever device, in particular a thread lever, or a tilting lever.
Claims
1. A device for adjusting a gap between an impeller and a housing of the impeller in a radial compressor of a turbomachine, comprising: an impeller and a housing of the impeller; a housing of a diffuser; an adjusting ring; at least one mechanical setting device supported by the housing of the diffuser, wherein the at least one mechanical setting device comprises a base portion located at the housing of the diffuser; an adjustment lever with a first end and a second end, wherein the first end is connected to the adjusting ring, and wherein the second end is connected to the at least one mechanical setting device; and wherein a movement of the adjusting ring actuates the at least one mechanical setting device by at least one chosen from an axial transmission of force and a rotational motion of the adjustment lever, and wherein the movement of the adjusting ring axially repositions the housing of the impeller to adjust a gap between the impeller and the housing of the impeller.
2. The device according to claim 1, wherein the at least one mechanical setting device includes a plurality of mechanical setting devices, wherein the plurality of mechanical setting devices are synchronously adjustable in a targeted manner via the adjusting ring to adjust the gap between the impeller and the housing of the impeller.
3. The device according to claim 1, wherein the adjusting ring is arranged concentrically around a rotational axis of the impeller on a suction side of a radial compressor, wherein the adjusting ring is movable in a circumferential direction around at least one chosen from a rotational axis D and an axial direction relative to the housing of the impeller.
4. The device according to claim 1, wherein the adjustment lever is arranged so as to be movable in a plane perpendicular to a rotational axis of the impeller.
5. The device according to claim 1, wherein the adjustment lever is arranged so as to be movable parallel to a rotational axis of the impeller.
6. The device according to claim 1, wherein the at least one mechanical setting device includes a threaded shaft extending from the second end of the adjustment lever to the housing of the diffuser, and wherein the rotational motion of the adjustment lever is transferable to the threaded shaft to convert the rotational motion of the adjustment lever to an axial motion of the housing of the impeller.
7. The device according to claim 6, further comprising a bearing block, wherein the threaded shaft is supported by the bearing block at the housing of the diffuser.
8. The device according to claim 6, wherein the threaded shaft includes a thread configuration arranged around the threaded shaft, wherein the thread configuration is at least one chosen from a flat thread, a spiral groove guide, a trapezoidal thread, a buttress thread, and a round thread.
9. The device according to claim 8, further comprising a nut device, wherein the threaded shaft is arranged inside the nut device, wherein the nut device is coupled to a connection element for transmitting an axial force.
10. The device according to claim 1, wherein the adjustment lever includes a joint gear for converting an axial movement of the adjusting ring into an axial movement of the housing of the impeller.
11. The device according to claim 1, further comprising a spring device, wherein the spring device radially connects the housing of the diffuser to the housing of the impeller to avoid or minimize a rotational movement of the housing of the impeller.
12. The device according to claim 11, wherein the spring device is configured as a full ring spring that seals a transition between the housing of the diffuser and the housing of the impeller.
13. The device according to claim 1, wherein the at least one mechanical setting device includes a number of mechanical setting devices concentrically arranged uniformly around a rotational axis of the impeller, wherein the number is chosen from between three and twenty.
14. The device according to claim 1, wherein the housing of the impeller is mechanically coupled to a pressure chamber such that a pressure inside the pressure chamber contributes to adjusting the gap between the impeller and the housing of the impeller.
15. The device according to claim 14, wherein the at least one mechanical setting device is arranged at least partially inside the pressure chamber.
16. An aircraft engine, with a radial compressor that includes the device according to claim 1.
17. The device according to claim 10, wherein the joint gear is a double-jointed lever, wherein the double-jointed lever includes a tilting lever and a towing lever for converting an axial movement of the adjusting ring into an axial movement of the housing of the impeller.
18. The device according to claim 13, wherein the number of mechanical setting devices is chosen from between five and ten.
19. The device according to claim 1, wherein the base portion is an anti-friction base portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention is explained in connection with the exemplary embodiments that are shown in the Figures.
(2)
(3)
(4)
(5)
(6)
(7)
(8)
DETAILED DESCRIPTION
(9)
(10) Inside the impeller 1, the flow is deflected into a radial direction, and then enters the diffuser 2 (stator). The desired pressure increase is then present at the exit of the diffuser.
(11) Towards the suction side, the impeller 1 is covered by a housing 3. The diffuser 2 extends inside a diffuser housing 22. A seal 8 is arranged in the transitional area between the housing 3 of the impeller 1 and the diffuser housing 22.
(12) An undesirably large gap 21 may occur between the impeller 1 and the housing 3 of the impeller in particular due to thermal loads. In the embodiment shown in
(13) In the following, one possibility of designing the setting device 20 is described.
(14) For the purpose of setting the gap 21 (or the gap width), the housing 3 of the impeller 1 is embodied so as to be movable relative to the impeller 1 in particular in the axial direction. The gap can be adjusted in the desired manner through a displacement of the housing 3 in the axial direction towards the gap 21, as represented by the double arrows.
(15) The main goal is to keep the gap at the radial compressor exit as small as possible, since it is especially in this position that wake depressions are created in the air flow due to large gaps. These then cause a loss of efficiency.
(16) Here, the axial movement of the housing 3 is [effected] through an adjustment lever device with a thread lever 9 that is coupled to an adjusting ring 10 via a slide stone 11 and a sliding guide 12 (as can be seen more clearly in
(17) In this embodiment, the setting device 20 has a bearing block 4, with is connected to a diffuser housing 22 in a firmly fixed manner. Inside the bearing block 4, an anti-friction bush 5 with a flange is arranged, inside of which a shaft 6 is arranged that is radially mounted by means of the anti-friction bush 5. A step of the shaft 6 abuts the flange of the anti-friction bush 5, so that the shaft 6 is also axially mounted.
(18) On the side that is facing away from the diffuser housing 22, the shaft 6 has a thread 23 that is embodied as a spiral groove here. Alternatively, also a sharp thread, a trapezoidal thread, a buttress thread, a flat thread or a round thread can be used. The shaft 6 is coupled to an adjustment lever device, so that a rotational movement at the thread lever 9 causes a rotational movement of the shaft 6.
(19) The shaft 6 is connected to a nut device 7 via the thread 23. The nut device 7 is coupled to a housing 3 of the impeller 1 by means of a linking element 24.
(20) In total, the setting devices 20 in this embodiment have respectively one bearing block 4 at the diffuser housing 22 and a shaft 6 in an anti-friction bush 5, wherein the shaft 6 has a thread 23 for connecting to a nut device 7, at which a linking element 24 for linkage to the housing 3 of the impeller 1 is arranged.
(21) If a torsional moment is transmitted to the shaft 6 via the thread lever 9, the shaft 6 rotates inside the anti-friction bush 5. Because of the thread 23, the rotational movement is transmitted to the nut device 7, which as a result moves in the axial direction (see double arrows). Thus, an axial adjustment of the nut device can be effected via the adjustment lever device 9.
(22) This axial adjustment movement is transmitted to the housing 3 of the impeller 1 via the linking element 24 that is fixedly connected to the nut device 7. In this way, the housing can be moved axially in the direction of the gap 21 or also away from the gap 21 in order to facilitate an adjustment of the gap 21.
(23) As shown in
(24) The impeller 1 and the diffuser 2 are not shown here for reasons of clarity. In alternative embodiments, also less or more setting devices 20 may be provided. In this way, the entire housing 3 of the impeller 1 can be moved in the axial direction in a targeted manner in order to adjust the gap 21.
(25) In
(26) If, in the shown embodiment, the adjusting ring 10 is moved in the circumferential direction around the rotational axis Das indicated in
(27) Thus, the adjusting ring 10 facilitates a synchronous transmission of a rotational movement, which is then translated into a linear axial movement, in a simple manner.
(28) In the embodiment according to
(29)
(30) Here, too, the adjusting ring 10 is moved around the rotational axis D (1. Rotation in
(31)
(32) The tilting levers 26 are respectively connected to a towing lever 18, which in turn is arranged at the setting device 20.
(33) The towing levers 18 are respectively linked at the bearing blocks 19 on top of the housing 3 of the impeller 1, so that this housing 3 is set into an axial movement by the rotational movement, by means of which the gap 21 can be adjusted.
(34) Thus, the setting device 20 of this embodiment has no shaft 6 with a thread 23 for translating a rotational movement into a linear movement, but rather a double-lever joint with a tilting lever 26 and a towing lever 18 that is attached at the housing 3 of the impeller 1 by means of a bearing block 19.
(35) The adjustment lever devices 9 that are shown here (i.e., tilting levers 26 and towing levers 18) respectively act together with the adjusting ring 10 in order to adjust the gap 21. At that, the adjustment lever devices 9 can be designed in different manners.
(36)
(37) For avoiding or minimizing a rotation of the housing 3 of the impeller 1, a ring-shaped spring element 16 is provided that is arranged at the transition between the diffuser housing 22 and the housing 3 of the impeller 1. This is shown in
(38) The embodiments of
(39)
(40) In the embodiment according to
(41) Via a pressure line 14, the pressure chamber 25 can be set under excess pressure, so that a pressure difference between the radial compressor and the environment is created. Through the increased pressure, the setting device 20 can be dimensioned to be smaller and lighter. However, in principle it is also possible to arrange the setting device 20 outside of the pressure space 25.
(42) The pressure build-up can for example be fed by the combustion chamber pressure or the compressor bleed air. The pressure can also be controllable, so that it can be adjusted to different operational states.
(43) Alternatively, a setting device 20 with tilting levers 26 and towing levers 18 according to one of the embodiments in
PARTS LIST
(44) 1 impeller of the radial compressor 2 diffuser 3 housing of the impeller 4 bearing block 5 anti-friction bush with flange 6 shaft with thread 7 nut device 8 seal 9 adjustment lever device, thread lever 10 adjusting ring for adjustment lever devices 11 slide stone 12 sliding guide or oblong hole in the thread lever 13 axial guidance and seal of the housing of the impeller 14 pressure chamber wall 15 access to pressure line 16 ring-shaped spring element 18 towing lever 19 bearing block on the housing of the impeller 20 setting device 21 gap 22 diffuser housing 23 thread 24 link of the nut device to the housing of the impeller 25 pressure chamber 26 tilting lever D rotational axis of the impeller K axial force for adjusting of the gap