IP Library Granted Patent US 11,590,713
Granted Patent B2
US 11,590,713 · App. 17/228,062 · Granted Feb 28, 2023

Shifting layup method for structural composite components with complex surface geometry and non-linear fiber path

Inventor: Corey Magnussen (Pella, IA)
Assignee: TPI Composites, Inc.
B29C70/30B29C70/386F03D1/0675B29K2105/0881B29L2031/085
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Quick Facts
Patent No.
US 11,590,713
App. No.
17/228,062
Granted
Feb 28, 2023
Kind
B2
Abstract

Shifting is a method for manipulating unidirectional non-crimp fabrics that allows for a curved fiber path along with compound surface geometry. The bases for shifting is understanding unidirectional (UD) non-crimp-fabrics (NCFs) as a semi-flexible prismatic linkage and planning manipulations such that the array of linkages can conform to the surface geometry and path plan within allowable manufacturing tolerances. This has applications in structural composite components such as the current trailing edge prefabricated unidirectional components for wind turbine blades, and for future wind turbine blade designs including a curve-linear spar cap.

Claims (41)

1. A method of fabricating a composite fabric for a wind turbine blade comprising:

providing a continuous supply of unidirectional non-crimp composite material;

feeding the continuous supply of unidirectional non-crimp composite material through at least one pair of rollers,

the rollers having an arcuate outer surface configured to engage the continuous supply of unidirectional non-crimp composite material;

performing a shifting operation on the continuous supply of unidirectional non-crimp composite material,

the shifting operation performed continuously and synchronized with the feeding step; and

depositing the shifted unidirectional non-crimp composite material into a mold for a wind turbine blade;

forming a plurality of layers of the deposited shifted unidirectional non-crimp composite material into a curved configuration;

wherein the rollers are connected to a frame on a linear axis drive, which is perpendicular to the feed direction on the plane of the supply material fiber; and

wherein the pair of rollers are synchronized to rotate at the same speed, direction and duration.

2. The method of claim 1 , wherein the linear axis drive translates as the composite material is fed through the rollers.

3. The method of claim 1 , wherein the rollers have a malleable external surface and a rigid core.

4. The method of claim 1 , wherein the rollers have a parabolic shape.

5. The method of claim 1 , wherein the rollers have a cylindrical shape.

6. The method of claim 1 , wherein the continuous shifting is achieved by feeding the unidirectional non-crimp composite material through two in-line pairs of rollers.

7. The method of claim 1 , wherein an outfeed roller is powered.

8. The method of claim 1 , wherein an infeed roller is torque controlled to maintain tension in the unidirectional non-crimp composite material.

9. The method of claim 1 , wherein the number of shifts is determined by an amount of degradation of supply material structure.

10. The method of claim 1 , wherein a pair of clamps open and close in tandem with the rollers.

11. The method of claim 1 , wherein a shifting head is configured to shift fabrics of up to approximately 280 mm in width.

12. The method of claim 1 , wherein the shifting operation forms a curve-linear spar cap.

13. A method of fabricating a composite fabric for a wind turbine blade comprising:

providing a continuous supply of unidirectional non-crimp composite material;

feeding the continuous supply of unidirectional non-crimp composite material through at least one pair of rollers,

the rollers having an arcuate outer surface configured to engage the continuous supply of unidirectional non-crimp composite material;

performing a shifting operation on the continuous supply of unidirectional non-crimp composite material,

the shifting operation performed continuously and synchronized with the feeding step; and

depositing the shifted unidirectional non-crimp composite material into a mold for a wind turbine blade;

forming a plurality of layers of the deposited shifted unidirectional non-crimp composite material into a curved configuration;

wherein the rollers are connected to a frame on a linear axis drive, which is perpendicular to the feed direction on the plane of the supply material fiber; and

wherein the linear axis drive translates as the composite material is fed through the rollers.

14. A method of fabricating a composite fabric for a wind turbine blade comprising:

providing a continuous supply of unidirectional non-crimp composite material;

feeding the continuous supply of unidirectional non-crimp composite material through at least one pair of rollers,

the rollers having an arcuate outer surface configured to engage the continuous supply of unidirectional non-crimp composite material;

performing a shifting operation on the continuous supply of unidirectional non-crimp composite material,

the shifting operation performed continuously and synchronized with the feeding step; and

depositing the shifted unidirectional non-crimp composite material into a mold for a wind turbine blade;

forming a plurality of layers of the deposited shifted unidirectional non-crimp composite material into a curved configuration;

wherein the rollers are connected to a frame on a linear axis drive, which is perpendicular to the feed direction on the plane of the supply material fiber; and

wherein an infeed roller is torque controlled to maintain tension in the unidirectional non-crimp composite material.

Assignments (2)
SECURITY INTEREST Recorded Dec 14, 2023
From: TPI COMPOSITES, INC.
To: OAKTREE FUND ADMINISTRATION, LLC
Reel/Frame 066014/0207 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 31, 2023
From: MAGNUSSEN, COREY
To: TPI COMPOSITES, INC.
Reel/Frame 062591/0318 →
Continuity (3)
Continuation 16130545 · Sep 13, 2018
Provisional Application 62682622 · Jun 8, 2018
Related Publication 20210308968A1 · Oct 7, 2021