IP Library Granted Patent US 9,534,580
Granted Patent B2
US 9,534,580 · App. 13/778,646 · Granted Jan 3, 2017

Fluid turbine blade with torsionally compliant skin and method of providing the same

Inventors: Chandra Sekher Yerramalli (Raleigh, NC); Peggy Lynn Baehmann (Glenville, NY); Ken Ivcar Salas (Schenectady, NY); Mohammad Salah Attia (Niskayuna, NY); Haifeng Zhao (Houston, TX)
Assignee: General Electric Company
F03D1/0675F03D1/0683F05D2230/23Y02E10/721Y10T29/49336
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Quick Facts
Patent No.
US 9,534,580
App. No.
13/778,646
Granted
Jan 3, 2017
Kind
B2
Abstract

A fluid turbine blade and method of fabrication are provided. The fluid turbine blade includes a centrally disposed longitudinal spar having a substantially circumferential cross section. The fluid turbine blade also includes at least one chord stiffener coupled to the longitudinal spar. The fluid turbine blade further includes a torsionally compliant segmented skin coupled to the at least one chord stiffener. The centrally disposed longitudinal spar and the torsionally compliant segmented skin are functionally decoupled to relieve the torsionally compliant segmented skin of one or more of a flapwise load condition, an edgewise load condition and a torsional load condition.

Claims (24)

1. A fluid turbine blade comprising:

a centrally disposed longitudinal spar having a substantially circumferential cross section and including a central beam extending a complete length of the fluid turbine blade;

at least one chord stiffener coupled to the longitudinal spar; and

a torsionally compliant segmented skin overlying and adjoining the at least one chord stiffener, the torsionally compliant segmented skin comprising a plurality of skin segments including a compliant joint extending in a chordwise direction therebetween adjoining skin segments of the plurality of skin segments to provide movement of the plurality of skin segments relative to one another when under the influence of one or more load conditions, wherein the compliant joint is one of a gap including a compliant sealant disposed therebetween or an overlap,

wherein the centrally disposed longitudinal spar and the torsionally compliant segmented skin are functionally decoupled to relieve the torsionally compliant segmented skin of one or more of a flapwise load condition, an edgewise load condition and a torsional load condition.

2. The fluid turbine blade of claim 1 , wherein the fluid turbine blade comprises a wind turbine blade or a marine hydrokinetic energy turbine blade.

3. The fluid turbine blade of claim 1 , wherein the centrally disposed longitudinal spar comprises a hollow, a solid, or a filled spar.

4. The fluid turbine blade of claim 1 , wherein the centrally disposed longitudinal spar comprises one of a circular shape, an elliptical shape, a D-shape, or an enclosed shape.

5. The fluid turbine blade of claim 4 , wherein the circular shape, the elliptical shape or the D-shape comprises a tapering cross sectional area in a direction along a span of the fluid turbine blade.

6. The fluid turbine blade of claim 1 , wherein the at least one chord stiffener is adhesively coupled to the centrally disposed longitudinal spar.

7. The fluid turbine blade of claim 1 , wherein the at least one chord stiffener is adhesively coupled to the torsionally compliant segmented skin.

8. The fluid turbine blade of claim 1 , wherein the at least one chord stiffener is integrally formed with the torsionally compliant segmented skin.

9. A method of fabricating a fluid turbine blade comprising:

centrally disposing a longitudinal spar of a fluid turbine blade having a substantially circumferential cross section and including a central beam extending from a blade mount to a tip of the fluid turbine blade; and

coupling at least one chord stiffener to the longitudinal spar and adjoining a torsionally compliant segmented skin to the at least one chord stiffener, a torsionally compliant segmented skin overlying and coupled to the at least one chord stiffener, the torsionally compliant segmented skin comprising a plurality of skin segments including a compliant joint extending in a chordwise direction therebetween adjoining skin segments of the plurality of skin segments to provide movement of the plurality of skin segments relative to one another when under the influence of one or more load conditions, wherein the compliant joint is one of a gap including a compliant sealant disposed therebetween or an overlap,

wherein the centrally disposed longitudinal spar and the torsionally compliant segmented skin are functionally decoupled to relieve the torsionally compliant segmented skin of one or more of a flapwise load condition, an edgewise load condition and a torsional load condition.

10. The method of claim 9 , wherein fabricating the fluid turbine blade comprises fabricating a wind turbine blade or a marine hydrokinetic energy turbine blade.

11. The method of claim 9 , wherein coupling the at least one chord stiffener to the longitudinal spar comprises attaching the at least one chord stiffener to an outer surface of the centrally disposed longitudinal spar via a bonding process comprising at least one from a group of adhesive, wet layup, or suitably designed riveting process.

12. The method of claim 9 , wherein coupling the torsionally compliant segmented skin to the at least one chord stiffener comprises one of integrally forming the at least one chord stiffener with the plurality of skin segments or adhesively attaching the at least one chord stiffener to the plurality of skin segments.

13. A wind turbine blade comprising:

a centrally disposed longitudinal spar of the wind turbine blade having a substantially circumferential cross section and extending from a blade mount to a tip of the fluid turbine blade;

at least one chord stiffener coupled to the centrally disposed longitudinal spar; and

a torsionally compliant segmented skin overlying and adjoining the at least one chord stiffener, the torsionally compliant segmented skin comprising a plurality of skin segments including a compliant joint extending in a chordwise direction therebetween adjoining skin segments of the plurality of skin segments to provide movement of the plurality of skin segments relative to one another when under the influence of one or more load conditions, wherein the compliant joint is one of a gap including a compliant sealant disposed therebetween or an overlap,

wherein the centrally disposed longitudinal spar and the torsionally compliant segmented skin are functionally decoupled to relieve the torsionally compliant segmented skin of one or more of a flapwise load condition, an edgewise load condition and a torsional load condition.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 22, 2024
From: LM WIND POWER US TECHNOLOGY APS
To: GE INFRASTRUCTURE TECHNOLOGY LLC
Reel/Frame 066869/0770 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 9, 2023
From: GENERAL ELECTRIC COMPANY
To: LM WIND POWER US TECHNOLOGY APS
Reel/Frame 065531/0160 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 27, 2013
From: YERRAMALLI, CHANDRA SEKHER; BAEHMANN, PEGGY LYNN; SALAS, KEN IVCAR; ATTIA, MOHAMMAD SALAH; ZHAO, HAIFENG
To: GENERAL ELECTRIC COMPANY
Reel/Frame 029886/0310 →
Continuity (1)
Related Publication 20140241895A1 · Aug 28, 2014