IP Library › Granted Patent US 12,188,837
Granted Patent B2
US 12,188,837 · App. 16/713,827 · Granted Jan 7, 2025

Composite components with impact detection

Inventors: James Bernard (Brackley, GB); Alexander D. Taylor (Oxfordshire, GB); Paul Daniel Liddel (Oxfordshire, GB); Jon Pethick (Leicestershire, GB); Jashen Litesh (Middlesex, GB); Myrto Angeliki Matzakou (Warwickshire, GB); Nathaniel M. Gray (Stratham, NH)
Assignee: CROMPTON TECHNOLOGY GROUP LIMITED
G01L5/0052B32B33/00C08J5/04B29C45/0005B29K2071/00B29K2105/12B29K2307/04Y10T428/24479
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Quick Facts
Patent No.
US 12,188,837
App. No.
16/713,827
Granted
Jan 7, 2025
Kind
B2
Abstract

A fiber-reinforced polymer composite component formed from a polymer matrix material containing fiber reinforcement. The component comprises a main portion and at least one raised feature extending from a surface plane s of said main portion. The at least one raised feature is arranged to incur visually perceptible damage when the component is subject to an impact with an energy above a predetermined impact energy threshold and to resist an impact with an energy below the predetermined impact energy threshold.

Claims (34)

1. A fiber-reinforced polymer composite component formed from a polymer matrix material containing fiber reinforcement, the component comprising:

a tubular main portion having a central axis, an internal surface and an external surface, and at least one raised feature extending from the external surface and running entirely around the external surface in a helical or circumferential direction relative to the central axis a surface plane of said main portion, said main portion and said at least one raised feature comprising polymer matrix material containing fiber reinforcement;

wherein the at least one raised feature is exposed to impacts on the external surface of the tubular main portion and arranged to incur visually perceptible damage when the component is subject to an impact with an energy above a predetermined impact energy threshold and to resist an impact with an energy below the predetermined impact energy threshold;

wherein the at least one raised feature has a height above the surface plane and the main portion has a thickness below the surface plane at a position aligned with the at least one raised feature, the thickness and the height being measured from a cross-section taken through the surface plane;

wherein the height is the same as or greater than the thickness; and

wherein the fiber reinforcement is chopped fiber reinforcement.

2. The component of claim 1 , wherein the predetermined impact energy threshold is set by the at least one raised feature having a predetermined shape.

3. The component of claim 1 , wherein the at least one raised feature has a cross-sectional profile defined in a cross-section taken through the surface plane, and wherein the cross-sectional profile extends away from a base adjacent the surface plane in a converging shape having a tip that defines a maximum height above the surface plane.

4. The component of claim 3 , wherein the tip has a radius of curvature that is less than a base width of the at least one raised feature at the surface plane.

5. The component of claim 1 , wherein the at least one raised feature has a cross-sectional profile defined in a cross-section taken through the surface plane, the cross-sectional profile being generally triangular.

6. The component of claim 1 , wherein the at least one raised feature has a cross-sectional profile defined in a cross-section taken through a surface plane of the main portion, the cross-sectional profile having an aspect ratio greater than one.

7. The component of claim 1 ,

wherein the at least one raised feature has a cross-sectional profile defined in a cross-section taken through a surface plane of the main portion, the cross-sectional profile having an angle measured from the surface plane that is at least 30°.

8. The component of claim 1 , wherein the main portion has a thickness below the surface plane, and wherein the at least one raised feature has a base width at the surface plane, the thickness and the base width being measured from a cross-section taken through the surface plane, and wherein the base width is at least half the thickness.

9. The component of claim 1 ,

wherein the at least one raised feature comprises a cross-sectional profile that is selected to achieve a predetermined volume fraction of fiber in the at least one raised feature that is different to a volume fraction of fiber in the main portion.

10. The component of claim 1 ,

wherein the main portion comprises a first volume fraction of fiber reinforcement and the at least one raised feature comprises a second, different volume fraction of fiber reinforcement, the second volume fraction being less than the first volume fraction.

11. The component of claim 1 , wherein the component is monolithic.

12. The component of claim 1 , made by an injection moulding process.

13. The component of claim 1 , wherein the predetermined impact energy threshold is an impact energy below that at which the main portion would incur visually perceptible impact damage.

14. The component of claim 1 , comprising a plurality of different raised features having different impact energy thresholds.

15. A fiber-reinforced polymer composite component formed from a polymer matrix material containing fiber reinforcement, the component comprising:

a tubular main portion having a central axis, an internal surface and an external surface, and at least one raised feature extending from the external surface and running entirely around the external surface in a helical or circumferential direction relative to the central axis a surface plane of said main portion, said main portion and said at least one raised feature comprising polymer matrix material containing fiber reinforcement;

wherein the at least one raised feature is exposed to impacts on the external surface of the tubular main portion and arranged to incur visually perceptible damage when the component is subject to an impact with an energy above a predetermined impact energy threshold and to resist an impact with an energy below the predetermined impact energy threshold;

wherein the at least one raised feature has a height above the surface plane and the main portion has a thickness below the surface plane at a position aligned with the at least one raised feature, the thickness and the height being measured from a cross-section taken through the surface plane;

wherein the height is the same as or greater than the thickness; and

wherein the at least one raised feature extends over 30% or less of the surface plane of the main portion by area.

16. A fiber-reinforced polymer composite component formed from a polymer matrix material containing fiber reinforcement, the component comprising:

a tubular main portion having a central axis, an internal surface and an external surface, and at least one raised feature extending from the external surface and running entirely around the external surface in a helical or circumferential direction relative to the central axis a surface plane of said main portion, said main portion and said at least one raised feature comprising polymer matrix material containing fiber reinforcement;

wherein the at least one raised feature is exposed to impacts on the external surface of the tubular main portion and arranged to incur visually perceptible damage when the component is subject to an impact with an energy above a predetermined impact energy threshold and to resist an impact with an energy below the predetermined impact energy threshold;

wherein the at least one raised feature has a height above the surface plane and the main portion has a thickness below the surface plane at a position aligned with the at least one raised feature, the thickness and the height being measured from a cross-section taken through the surface plane;

wherein the height is the same as or greater than the thickness; and

wherein the at least one raised feature extends over 20% or less of the surface plane of the main portion by area.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 27, 2023
From: BERNARD, JAMES; TAYLOR, ALEXANDER D.; LIDDEL, PAUL DANIEL; PETHICK, JON; LITESH, JASHEN; MATZAKOU, MYRTO
To: CROMPTON TECHNOLOGY GROUP LTD.
Reel/Frame 063458/0278 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 27, 2023
From: GRAY, NATHANIEL M.
To: HAMILTON SUNDSTRAND CORPORATION
Reel/Frame 063458/0576 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 27, 2023
From: HAMILTON SUNDSTRAND CORPORATION
To: CROMPTON TECHNOLOGY GROUP LIMITED
Reel/Frame 063458/0588 →
Priority Claims (1)
EP 19386041 · Oct 4, 2019 · regional
Continuity (1)
Related Publication 20210102855A1 · Apr 8, 2021
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