IP Library › Granted Patent US 10,125,743
Granted Patent B2
US 10,125,743 · App. 14/366,009 · Granted Nov 13, 2018

Method for de-icing composite material structures, particularly blades of a wind turbine

Inventors: Bastien Gaillardon (Bordeaux, FR); Serge Gracia (Navarra, ES); Mathieu Oyharcabal (Talence, FR); Thomas Olinga (Floirac, FR)
Assignee: VALEOL
F03D11/0025C09D5/24F03D80/40H05B3/146H01B1/128Y02E10/72
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Quick Facts
Patent No.
US 10,125,743
App. No.
14/366,009
Granted
Nov 13, 2018
Kind
B2
Abstract

The method for de-icing composite material structures, particularly blades of a wind turbine made from composite materials, includes the following steps: disposing at least one layer of a formulation of conductive polymer on at least one portion of the surface of the structure, providing an appropriate electrical power supply for the structure, and connecting the layer of a formulation of conductive polymer to the electrical power supply in such a way as to cause the conductive layer of conductive polymer to heat up, controlling the electrical power supply depending on climatic conditions. The required composition and suitable device are also described. A specific application is the blades of wind turbines.

Claims (42)

1. A method for de-icing a composite material structure, comprising the following steps:

placing at least one conductive layer of a formulation having a conductive polymer base on at least one portion of a surface of the structure;

providing an electric power supply for the structure; and

connecting the conductive layer of the formulation having the conductive polymer base to the electric power supply so as to be able to bring about a heating of said conductive layer,

wherein the electric power supply is controlled as a function of weather conditions, and

wherein the conductive polymer is selected from among the family of doped polyanilines obtained according to the following reaction:

with A selected from among dopants of general formula:

in which:

R is a water-soluble radical, with a surfactant nature, and which represents namely:

a primary or secondary diamine of formula

x and n being integers, x varying between 1 and 5, and n varying between 1 and 20,

a polyethylene glycol of formula

n being an integer between 1 and 20,

a polyethylene oxide of formula

n being an integer between 1 and 20, and

a glycerol of formula

and

R′ represents namely:

an alkane, associated with an acid group, of formula

CH 2 —R0

in which R0 represents SO 3 H, PO 3 H 2 or COOH, and

at least one aromatic ring, containing several acid groups, of formula

in which:

R1 represents SO 3 H, PO 3 H 2 or COOH,

R2 represents H, OH, CH 3 (CH 2 ) x (x=0, 1, 2, 3 . . . ), NO 2 , SO 3 H, Cl or Br,

R3 represents H, OH, SO 3 H, Cl or Br,

R4 represents H, OH, SO 3 H, Cl or Br, and

R5 represents H, OH or SO 3 H 6.

2. The method for de-icing the composite material structure according to claim 1 ,

wherein the conductive layer of the formulation having the conductive polymer base is incorporated into composite materials that make up said structure.

3. The method for de-icing the composite material structure according to claim 1 ,

wherein the conductive layer of the formulation having the conductive polymer base is placed under a finishing gel-coat.

4. The method for de-icing the composite material structure according to claim 1 , further comprising:

placing a plurality of said conductive layers of the formulation having the conductive polymer base at different depths in composite materials that make up said structure.

5. The method for de-icing the composite material structure according to claim 1 , further comprising:

impregnating a fabric with a formulation having an electrically conductive polymer base.

6. The method for de-icing composite material structures according to claim 2 ,

wherein the conductive layer of the formulation having the conductive polymer base is placed under a finishing gel-coat.

7. The method for de-icing composite material structures according to claim 2 , further comprising:

placing a plurality of said conductive layers of the formulation having the conductive polymer base at different depths in the composite materials.

8. The method for de-icing composite material structures according to claim 2 , further comprising:

impregnating a fabric with a formulation having an electrically conductive polymer base.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 7, 2015
From: GAILLARDON, BASTIEN; GRACIA, SERGE; OYHARCABAL, MATHIEU
To: VALEOL
Reel/Frame 034651/0328 →
Priority Claims (1)
FR 11 61867 · Dec 19, 2011 · national
Continuity (1)
Related Publication 20140363291A1 · Dec 11, 2014