A CONNECTOR AND AN ANTI THERMAL MISMATCH CONNECTING DEVICE
20220341348 ยท 2022-10-27
Assignee
Inventors
Cpc classification
F05D2250/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2250/27
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B19/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2240/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B2200/506
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2240/11
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2250/711
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B35/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2250/231
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2300/6033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2250/314
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D11/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/246
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01D25/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
In order to alleviate a mismatch problem of thermal deformation, in all directions, of a connecting and installing structure between a CMC turbine outer annular component and a metal intermediate casing, a connector and an anti thermal mismatch connecting device are provided. The rod part of the connector comprises a subtractive hollow section and a cylindrical section. The subtractive hollow section is composed of a central shaft, a plurality of supporting rib plates extending outwards from a peripheral surface of the central shaft and inclined radially relative to the central shaft, and a plurality of outer annular plates arranged around the central shaft, with a circumferential gap between adjacent outer annular plates. The supporting rib plate is connected with the central shaft and the outer annular plate, and the central shaft is connected with the cylindrical section. The anti thermal mismatch connecting device the connector.
Claims
1-8. (canceled)
9. A connector, comprising a rod part, wherein the rod part comprises a subtractive hollow section and a cylindrical section, and the subtractive hollow section comprises: a central shaft; a plurality of supporting rib plates, extending outwards from a peripheral surface of the central shaft and inclined radially relative to the central shaft; and a plurality of outer annular plates, arranged around the central shaft, with a circumferential gap between adjacent outer annular plates; wherein the supporting rib plate is connected with the central shaft and the outer annular plate, and the central shaft is connected with the cylindrical section.
10. The connector of claim 9, wherein the plurality of the supporting rib plates are arranged in a rotationally symmetric form along the central shaft.
11. The connector of claim 9, wherein the central shaft and the cylindrical section are connected or welded by a threaded connection structure.
12. The connector of claim 9, wherein outer surfaces of the plurality of the outer annular plates are located on a same cylindrical surface, and the cylindrical surface is located in an axial extension direction of an outer surface of the cylindrical section.
13. An anti thermal mismatch connecting device, comprising: a connector of claim 12, wherein the connector is metal; a CMC turbine outer annular component, with an outer convex annular rib plate at an outer circumference; a metal intermediate casing, with an inner convex annular rib plate at an inner circumference; wherein the outer convex annular rib plate has a CMC connecting hole, and the inner convex annular rib plate has a metal connecting hole; the cylindrical section of the connector is matched with the metal connecting hole of the inner convex annular rib plate; the subtractive hollow section of the connector is inserted into the CMC connecting hole, and the plurality of the outer annular plates are matched with the CMC connecting hole in a close contact, to generate an installation preload on the supporting rib plate.
14. The connecting device of claim 13, wherein the metal intermediate casing provides two limit rings; the CMC turbine outer annular component provides two outer convex annular rib plates, the two outer convex annular rib plates are located between the two limit rings, and outer edges of the two outer convex annular rib plates are respectively abutted on the adjacent limit ring.
15. The connecting device of claim 14, wherein the metal intermediate casing provides three inner convex annular rib plates, the two outer convex annular rib plates and the three inner convex annular rib plates are staggered along an axial direction of an engine, to make any one of the two outer convex annular rib plates located between two inner convex annular rib plates.
16. The connecting device of claim 13, wherein the metal intermediate casing provides a plurality of the inner convex annular rib plates, the metal connecting holes of the plurality of the inner convex annular rib plates, which are matched with one of the connector, are round holes, and rest of the metal connecting holes are runway shaped connecting holes.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The above and other features, properties and advantages of the disclosure will become more apparent by the following description in combination with the drawings and the embodiments, wherein:
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027] wherein 1 is a CMC turbine outer annular component; 2 is a connector; 3 is a metal intermediate casing; 11 is a CMC connecting hole; 12 is an outer convex annular rib plate; 13 is an inner convex annular rib plate; 21 is a subtractive hollow section; 22 is a cylindrical section; 23 is a cap part; 24 is rod part; 31 is a metal connecting hole; 32 is a limit ring; 211 is a central shaft; 212 is a supporting rib plate; 213 is an outer annular plate; 214 is a circumferential gap; 311 is a round hole; 312 is a runway shaped connecting hole.
DETAILED DESCRIPTION OF EMBODIMENTS
[0028] The disclosure will be further described in combination with some specific embodiments and drawings, so that those skilled in the art can better understand the disclosure and implement it. However, the described embodiments are not taken as a limitation of the disclosure.
[0029] An anti thermal mismatch connecting device is shown in
[0030] Additionally,
[0031] The CMC turbine outer annular component 1 provides two outer convex annular rib plates 12, and the metal intermediate casing 3 provides three inner convex annular rib plates 13. The two outer convex annular rib plates 12 and the three inner convex annular rib plates 13 are staggered along an axial direction of the engine, so that any one of the two outer convex annular rib plates 12 is located between two of the inner convex annular rib plates 13. The connection configuration shown in
[0032]
[0033]
[0034]
[0035] In the first embodiment of the connector 2, the integrated processing structure is suitable to be processed and produced by a processing method such as precision casting or 3D printing.
[0036]
[0037]
[0038] The following describes the installation process in combination with
[0039] In the room temperature installation state, the connectors 2 are alternately passed through the metal connecting holes 31 on the metal intermediate casing 3 and the CMC connecting holes 11 on the CMC turbine outer annular component 1, to install and fix the CMC turbine outer annular component 1 and the metal intermediate casing 3.
[0040] The rod part 24 of the connector 2 comprises a subtractive hollow section 21 and a cylindrical section 22. The cylindrical section 22 is connected with the central shaft 211 of the subtractive hollow section 21 by threaded connection or welding.
[0041] The outer surfaces of the subtractive hollow section 21 of the connector 2, are fitted with the CMC connecting holes 11 on the outer convex annular rib plate 12, so that the surfaces of the plurality of the outer annular plates 213, arranged around the central shaft 211 on the subtractive hollow section 21, are closely attached with the inner circumferential surfaces of the CMC connecting holes 11, and a certain contact force and an installation preload are generated, which can avoid the vibration and collision problems caused by a reserved assembly gap. A plurality of supporting rib plates 212, extending outwards from the peripheral surface of the central shaft and inclined radially relative to the central shaft, are arranged between the outer annular plates 213 and the central shaft 211, and a plurality of circumferential gaps 214 are provided between adjacent outer annular plates 213. Generally, the numbers of the supporting rib plates 212, the outer annular plates 213 and the circumferential gaps 214 are the same. In the process of temperature rising, the thermal expansion of the CMC turbine outer annular component 1 is different from that of the connector 2 and the metal intermediate casing 3, while the outer surface of the subtractive hollow section 21 on the connector 2 has smaller radial deformation stiffness when it contacts with the CMC connecting hole 11, and is prone to radial elastic deformation. This allows the expansion deformation of the outer surface of the subtractive hollow section 21, under the limit of the inner circumferential surfaces of the CMC connecting holes 11 during the heating process. Meanwhile, there will be no great contact stress between the two. Therefore, the thermal deformation mismatch during the heating process, between the two, is alleviated, and the strength failure of the structure is avoided. At the same time, the existence of the subtractive hollow section 21 will not significantly reduce the overall deformation stiffness of the connector, thereby ensuring the overall stiffness of the whole anti thermal mismatch connecting device to meet the design needs.
[0042] The outer surface of the cylindrical section 22 of the connector 2 is closely matched with the metal connecting hole 31 on the inner convex annular rib plate 13. A kind of round hole 311 of the metal connecting hole 31 is closely matched with the cylindrical section 22 on a first connector 2, which is used to realize the accurate installation and positioning of the CMC outer annular component 1. Another kind of raceway shaped connecting hole 312 of the metal connecting hole 31 is closely matched with the cylindrical section 22 on a second connector 2. The raceway shaped connecting hole 312 allows the second connector 2 to slide in a specified direction, thereby alleviating the mismatch problem of thermal deformation between the connector 2, which is completely limited and fixed by the CMC connection hole 11, and the metal connecting hole 31 on the metal intermediate casing 3.
[0043] By designing the connector 2 with the subtractive hollow section 21 and the anti thermal mismatch connecting device, the mechanical connection and installation of the CMC turbine outer annular component 1 on a gas turbine engine are realized, and the mismatch problem of thermal deformation of connection structure among the CMC turbine outer annular component, the metal intermediate casing and the connectors, is alleviated, thereby avoiding the problems of structural strength failure or structural relaxation caused by high thermal mismatch stress, and the problems of vibration and collision caused by a reserved gap, which is of great value for the engineering application of the CMC turbine outer annular component.
[0044] Although the disclosure is disclosed in a better embodiment as above, it is not intended to limit the disclosure. Those skilled in the art can make possible changes and modifications without departing from the spirit and scope of the disclosure. Therefore, all amendments, equivalent changes and modifications made to the above embodiments according to the technical essence of the disclosure, without departing from the content of the technical scheme of the disclosure, fall into the scope of protection defined by the claims of the disclosure.