STEAM TURBINE ROTOR WITH MECHANICALLY COUPLED HIGH AND LOW TEMPERATURE SECTIONS USING DIFFERENT MATERIALS
A turbine rotor including an elongated shaft having at least an HP region, the HP region having a first section supporting a stage 1 rotor wheel and a second section supporting a stage 2 rotor wheel, the first section formed of a relatively higher-temperature-capability material and the second section formed of a relatively lower-temperature-capability material. Various mechanical couplings and described for securing the first and second sections.
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This invention relates to rotors for turbomachines and, more specifically, to the construction of rotors in axial sections of different materials.
In a recent steam turbine rotor, and following a tendency to high temperatures for steam, a 12% chromium steel is used, as it is excellent in high temperature strength and toughness. In such a rotor, both for a high temperature portion exposed to a high temperature steam and a low temperature portion exposed to a low temperature steam, the same 12% chromium steel is used. But as rotors have become larger in recent years, it is becoming difficult and expensive to manufacture the rotor so as to satisfy characteristics both of the high temperature portion and the low temperature portion with one material.
While the expensive 12% chromium steel satisfies the required heat resistance, creep characteristics, etc. of the portion exposed to the high temperature steam, it is not necessary to use such an expensive material for the low temperature portion, so long as the requisite toughness is retained. In order to meet these problems it has attempted to join rotor portions of different materials together by welding to make a single rotor.
BRIEF SUMMARY OF THE INVENTIONIn a first exemplary but non-limiting embodiment, this invention relates to a turbine rotor comprising an elongated shaft including at least an HP region, the HP region having a first axial section supporting a stage 1 rotor wheel and a second axial section supporting a stage 2 rotor wheel, the first axial section formed of a relatively higher-temperature-capability material and the second axial section formed of a relatively lower-temperature-capability material; and means for mechanically coupling the first axial section and the second axial section.
In another aspect, the invention relates to the turbine rotor comprising an elongated shaft including at least HP and IP regions, a combined HP/IP region having at least a first section supporting a stage 1 rotor wheel and a second section supporting a stage 2 rotor wheel, the first section formed of a relatively higher-temperature-capability material and the second section formed of a relatively lower-temperature-capability material; and wherein said first and second sections are joined by a mechanical coupling
The invention will now be described in connection with the drawings identified below.
With reference initially to
The inventors have recognized that significant cost savings can be realized by using different materials for the rotor sections 22, 24 within the HP or combined HP/IP region 12.
For the rotor section 22, a more expensive 12% Cr material (e.g., ASTM A982, Grade B) is suitable while for section 24, a less expensive, lower % Cr material such as a Cr-MO-V material (e.g. ASTM A470, Grade D, Class 8) is suitable.
The rotor sections 22 and 24 are preferably joined together by any of several suitable mechanical coupling arrangements. In
For the embodiments illustrated in
Other mechanical coupling arrangements are within the scope of the invention. In all cases, secure axial coupling that prevents relative rotation of the rotor sections is required.
While the invention has been described in connection with what is presently considered to be the most practical and preferred embodiment, it is to be understood that the invention is not to be limited to the disclosed embodiment, but on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.
Claims
1. A turbine rotor comprising:
- an elongated shaft including at least an HP region, the HP region having a first axial section supporting a stage 1 rotor wheel and a second axial section supporting a stage 2 rotor wheel, said first axial section formed of a relatively higher-temperature-capability material and said second axial section formed of a relatively lower-temperature-capability material; and
- means for mechanically coupling said first axial section and said second axial section.
2. The turbine rotor of claim 1 wherein said relatively higher-temperature-capability material comprises a 12% Cr material.
3. The turbine rotor of claim 1 wherein said relatively lower-temperature-capability material comprises a CrMoV material.
4. The turbine rotor of claim 2 wherein said relatively lower-temperature-capability material comprises a CrMoV material.
5. The turbine rotor of claim 1 wherein said first axial section and said second axial section are coupled between said stage 1 and stage 2 rotor wheels.
6. A turbine rotor comprising: an elongated shaft including at least HP and IP regions, a combined HP region having a first section supporting a stage 1 rotor wheel and a second section supporting a stage 2 rotor wheel, said first section formed of a relatively higher-temperature-capability material and said second section formed of a relatively lower-temperature-capability material; and
- wherein said first and second sections are joined by a mechanical coupling.
7. The turbine rotor of claim 7 wherein said mechanical coupling comprises abutting flanges on said first and second sections and plural bolts passing through said abutting flanges.
8. The turbine rotor of claim 7 wherein said mechanical coupling comprises a flange on said first section engaged with a hub of said stage 2 rotor wheel, and plural bolts passing through said flange and said hub.
9. The turbine rotor of claim 7 wherein said mechanical coupling comprises a reduced diameter end of one of said first and second sections received in a blind bore in the other of said first and second sections.
10. The turbine rotor of claim 7 wherein said mechanical coupling comprises a first bore through said first section and a second blind bore on said second section, with a stud extending between said first bore and said second blind bore.
11. The turbine rotor of claim 10 wherein said stud is threaded into said blind bore.
12. The turbine rotor of claim 6 wherein said mechanical coupling comprises a male spline extending from said second section and received in a female spline in said first section.
13. The turbine rotor of claim 12 wherein said male spline is formed with at least six radially projecting teeth that extend axially along said male spline.
14. The turbine rotor of claim 12 wherein said mail spline is formed with four radially projecting teeth, spaced substantially 90° apart about an axis of rotation of said turbine rotor.
15. The turbine rotor of claim 7 wherein said relatively higher temperature capability material comprises a 12% Cr material.
16. The turbine rotor of claim 7 wherein said relatively lower temperature capability material comprises a CrMoV material.
17. The turbine rotor of claim 15 wherein said relatively lower temperature capability material comprises a CrMoV material.
Type: Application
Filed: Jan 6, 2011
Publication Date: Jul 12, 2012
Applicant: GENERAL ELECTRIC COMPANY (Schenectady, NY)
Inventors: Duttatrey PARASHAR (Bangalore), Sandeep KUMAR (Bangalore)
Application Number: 12/985,508
International Classification: F01D 25/00 (20060101);