Developments relating to a rotor arrangement
A rotor arrangement has a rotor-section and a circumferential moveable seal around the rotor-section. The arrangement being such that, for a given rotation rate, the rotor-section is subject to an associated radial growth and a corresponding related axial displacement, relative to the seal. The rotor-section is provided with an axially-varying profile for off-setting said radial growth of the rotor-section, adjacent the circumferential seal, at said given rotation rate.
1. A rotor arrangement comprising:
a rotor-section and a circumferential sealing-element around the rotor-section, wherein, in operation, rotation of the rotor-section is accompanied by radial growth of the rotor-section and by axial displacement of the rotor-section relative to the circumferential sealing-element, the rotor-section having a sealing surface for co-operation with the circumferential sealing-element,
a profile of the sealing surface being such that, at a given operational rotation speed of the rotor, the accompanying radial growth of the rotor-section adjacent the circumferential sealing-element is substantially compensated for by a corresponding axial displacement of the rotor-section.
2. A rotor arrangement according to claim 1 , wherein the rotor-section is operable at a range of rotation speeds, and said profile is configured such that, across the range of rotation speeds, the respective accompanying radial growth of the rotor-section adjacent the circumferential sealing-element is compensated for by the corresponding respective axial displacement of the rotor-section.
3. A rotor arrangement according to claim 1 , wherein the circumferential sealing-element is selected from a list of sealing elements including a brush-seal, a pressure balanced brush-seal and a leaf-seal.
4. A rotor arrangement according to claim 1 , wherein the circumferential seal-element is a floating seal.
5. A rotor arrangement according to claim 1 , wherein the circumferential seal-element is a floating seal and comprises an annular backing plate having an inner edge, the inner edge of the backing plate being abradable.
6. A rotor arrangement according to claim 1 , the circumferential seal-element is having an inner face configured for complementary mating engagement with the sealing surface.
7. A rotor arrangement according to claim 1 , wherein the rotor-section incorporates an abradable section.
8. A rotor arrangement according to claim 1 , wherein at least part of the sealing surface has a frusto-conical profile.
9. A rotor arrangement according to claim 8 , wherein the frusto-conical profile forms a transition section between regions of the sealing surface having different diameters.
10. A method of determining the profile of a rotor-section for use in a rotor arrangement including a circumferential sealing-element around the rotor-section which co-operates with a sealing surface provided on the rotor-section, wherein, in operation, rotation of the rotor-section is accompanied by radial growth of the rotor-section and by axial displacement of the rotor-section relative to the circumferential sealing-element, the method comprising:
estimating the accompanying radial growth and corresponding axial-displacement of the rotor-section at a given operational rotation speed; and
based on said estimate, determining a profile for the sealing-surface such that, at the given operational rotation speed of the rotor, the accompanying radial growth of the rotor-section adjacent the circumferential sealing-element is substantially compensated for by a corresponding axial displacement.
11. A method according to claim 10 , wherein
estimating the accompanying radial growth and corresponding axial displacement of the rotor-section comprises estimating the accompanying radial growth across a range of operational rotation speeds, as a function of the corresponding axial displacement of the rotor, and
determining a profile for the sealing-surface based on said estimate comprises determining a profile such that, across the range of operational speeds, the respective accompanying radial growth of the rotor-section adjacent the circumferential sealing-element will be substantially compensated for by the corresponding axial displacement.