IP Library Granted Patent US 8,036,444
Granted Patent B2
US 8,036,444 · App. 12/090,333 · Granted Oct 11, 2011

Method and system for irradiating and inspecting liquid-carrying containers

Assignee: InnoScan K/S
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Quick Facts
Patent No.
US 8,036,444
App. No.
12/090,333
Granted
Oct 11, 2011
Kind
B2
Abstract

A method and system of irradiating a liquid-carrying container for inspection, including rotating the container, its contents or both around a rotation axis and irradiating the container with an electromagnetic radiation beam, wherein the irradiated cross-section of the container, irradiated by the electromagnetic radiation beam, is less than the cross-section of the container; and, a method and system for inspecting a liquid-carrying container for one or more test parameters of the container, the contents of the container, or both, including rotating the container, the contents or both around a rotation axis, irradiating the container with an electromagnetic radiation beam from a first direction along an irradiation center plane substantially parallel to the rotation axis, capturing a representation of a section of the container from a second direction along a detection center plane substantially parallel to the rotation axis, and processing the representation, wherein the irradiated cross-section of the container, irradiated by the electromagnetic radiation beam, is less than the cross-section of the container.

Claims (64)

1. Method of irradiating a liquid-carrying container for inspection, comprising

rotating said container, its contents or both around a rotation axis and irradiating said container with an electromagnetic radiation beam from a first direction along an irradiation center plane substantially parallel to said rotation axis,

wherein the irradiated cross-section of said container, irradiated by said electromagnetic radiation beam, has less width than the cross-section of said container,

said irradiation center plane or its prolongation intersecting a detection center plane defined by a capturing device capturing from a second direction and being substantially parallel to said rotation axis, or its prolongation, in a line substantially parallel to said rotation axis and dislocated from said rotation axis in a direction opposite of said second direction, and

avoiding illumination of said rotation axis.

2. Method of irradiating a liquid-carrying container according to claim 1 , wherein a width of said irradiated cross-section is less than 10 mm.

3. Method of irradiating a liquid-carrying container according to claim 1 , wherein said electromagnetic radiation beam comprises visible light.

4. Method of irradiating a liquid-carrying container according to claim 1 , wherein said liquid is substantially opaque.

5. Method of irradiating a liquid-carrying container according to claim 1 , wherein said liquid comprises a suspension.

6. Method of irradiating a liquid-carrying container according to claim 1 , wherein said rotation is adapted to cause any of said content which has a density higher than the density of the main content to be pushed outwards against a container wall.

7. Method of irradiating a liquid-carrying container according to claim 1 , wherein said liquid comprises an insulin micro-suspension.

8. Method of irradiating a liquid-carrying container according to claim 1 , wherein said liquid is substantially transparent.

9. Method of irradiating a liquid-carrying container according to claim 1 , wherein said liquid comprises a solution.

10. Method of irradiating a liquid-carrying container according to claim 1 , wherein said rotation is adapted to cause any of said content which has a density lower than the density of the main content to be pulled inwards and assemble along said rotation axis.

11. Method of irradiating a liquid-carrying container according to claim 1 , wherein said section that is captured is within said electromagnetic radiation beam or its prolongation.

12. Method of irradiating a liquid-carrying container according to claim 1 , wherein the width of said irradiated cross-section corresponds approximately to the cross-section of said section as seen from the direction of said irradiation.

13. Irradiation system comprising

rotation means for rotating a liquid-carrying container, its contents or both around a rotation axis and

an illumination device for irradiating said container with an electromagnetic radiation beam from a first direction along an irradiation center plane substantially parallel to said rotation axis,

wherein said irradiation center plane or its prolongation intersects a detection center plane defined by a capturing device capturing from a second direction and being substantially parallel to said rotation axis, or its prolongation, in a line substantially parallel to said rotation axis and being located between said rotation axis and said capturing device, and said electromagnetic radiation beam being arranged so that illumination of said rotation axis is avoided.

14. Irradiation system according to claim 13 , wherein said system further comprises a capturing device for capturing a representation of a section of said container.

15. Method for inspecting a liquid-carrying container for one or more test parameters of said container, the contents of said container, or both, the method comprising

rotating said container, said contents or both around a rotation axis,

irradiating said container with an electromagnetic radiation beam from a first direction along an irradiation center plane substantially parallel to said rotation axis,

capturing a representation of a section of said container from a second direction along a detection center plane substantially parallel to said rotation axis, and

processing said representation,

wherein the irradiated cross-section of said container, irradiated by said electromagnetic radiation beam, has less width than the cross-section of said container,

said irradiation center plane or its prolongation intersecting said detection center plane or its prolongation in a line substantially parallel to said rotation axis and dislocated from said rotation axis in a direction opposite of said second direction, and

avoiding illumination of said rotation axis.

16. Method for inspecting a liquid-carrying container according to claim 15 , wherein the width of said electromagnetic radiation beam at the position where it enters said container is less than the width of said container as seen from said first direction.

17. Method for inspecting a liquid-carrying container according to claim 15 , wherein said section is within said electromagnetic radiation beam or its prolongation.

18. Method for inspecting a liquid-carrying container according to claim 15 , wherein a width of said electromagnetic radiation beam at the position where it enters said container is less than half the width of said container as seen from said first direction.

19. Method for inspecting a liquid-carrying container according to claim 15 , wherein a width of said electromagnetic radiation beam at the position where it enters said container is less than 10 mm.

20. Method for inspecting a liquid-carrying container according to claim 15 , wherein an angle between said irradiation center plane and said detection center plane is between 40 degrees and 140 degrees.

21. Method for inspecting a liquid-carrying container according to claim 15 , wherein said electromagnetic radiation beam ( 46 ) comprises visible light.

22. Method for inspecting a liquid-carrying container according to claim 15 , wherein said capturing a representation of a section of said container comprises performing a line scan parallel to said rotation axis.

23. Method for inspecting a liquid-carrying container according to claim 15 , wherein said capturing a representation of a section of said container comprises taking a picture with a matrix camera.

24. Method for inspecting a liquid-carrying container according to claim 15 , wherein said liquid is substantially opaque.

25. Method for inspecting a liquid-carrying container according to claim 15 , wherein said liquid comprises a suspension.

26. Method for inspecting a liquid-carrying container according to claim 15 , wherein said liquid comprises an insulin micro-suspension.

27. Method for inspecting a liquid-carrying container according to claim 15 , wherein said liquid is substantially transparent.

28. Method for inspecting a liquid-carrying container according to claim 15 , wherein said liquid comprises a solution.

29. Method for inspecting a liquid-carrying container according to claim 15 , wherein said test parameters comprise existence of foreign bodies.

30. Method for inspecting a liquid-carrying container according to claim 15 , wherein said processing comprises digital image processing.

31. Method for inspecting a liquid-carrying container according to claim 15 , wherein said processing comprises analog signal processing.

32. Method for inspecting a liquid-carrying container according to claim 15 , wherein said capturing a representation is repeated several times, and said step of processing said representation comprises comparing said representation with at least a part of at least one further representation of a section of said container.

33. Method for inspecting a liquid-carrying container for one or more test parameters of said container, the contents of said container, or both, comprising

rotating said container, said contents or both around a rotation axis,

irradiating said container with an electromagnetic radiation beam from a first direction along an irradiation center plane substantially parallel to said rotation axis,

capturing a representation of a section of said container from a second direction along a detection center plane substantially parallel to said rotation axis, and

processing said representation,

wherein a width of said electromagnetic radiation beam at the position where it enters said container is less than a width of said container as seen from said first direction, and wherein said irradiation center plane or its prolongation intersecting said detection center plane or its prolongation in a line substantially parallel to said rotation axis and dislocated from said rotation axis in a direction opposite of said second direction, and

avoiding illumination of said rotation axis.

34. Inspection system for liquid-carrying containers comprising

rotation means for rotating a liquid-carrying container, its contents or both around a rotation axis,

an illumination device for establishing an electromagnetic radiation beam for irradiating said container from a first direction along an irradiation center plane substantially parallel to said rotation axis,

a capturing device for capturing a representation of a section of said container from a second direction along a detection center plane substantially parallel to said rotation axis, and

processing means for processing said representation,

wherein said irradiation center plane or its prolongation intersects said detection center plane or its prolongation in a line substantially parallel to said rotation axis and being located between said rotation axis and said capturing device, and said electromagnetic radiation beam being arranged so that illumination of said rotation axis is avoided.

35. Inspection system according to claim 34 , wherein said system comprises an irradiation system comprising rotation means for rotating a liquid-carrying container, its contents or both around a rotation axis and an illumination device for irradiating said container with an electromagnetic radiation beam, wherein the irradiated cross-section of said container, irradiated by said electromagnetic radiation beam, is less than the cross-section of said container.

36. Method of irradiating a liquid-carrying container according to claim 1 , wherein said electromagnetic radiation beam is directed towards said section that is being captured in order to preferably illuminate that part of said liquid-carrying container only.

37. Irradiation system according to claim 13 , wherein said electromagnetic radiation beam is directed towards said section that is being captured in order to preferably illuminate that part of said liquid-carrying container only.

38. Method for inspecting a liquid-carrying container according to claim 15 , wherein said electromagnetic radiation beam is directed towards said section that is being captured in order to preferably illuminate that part of said liquid-carrying container only.

39. Inspection system according to claim 34 , wherein said electromagnetic radiation beam is directed towards said section that is being captured in order to preferably illuminate that part of said liquid-carrying container only.

Assignments (6)
MERGER Recorded May 31, 2023
From: INNOSCAN A/S
To: SVM AUTOMATIK A/S
Reel/Frame 063814/0849 →
CHANGE OF NAME Recorded May 31, 2023
From: SVM AUTOMATIK A/S
To: STEVANATO GROUP DENMARK A/S
Reel/Frame 063814/0853 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 5, 2013
From: NIELSEN, GERT
To: UDVIKLINGSSELSKABET INNOSCAN K/S
Reel/Frame 031145/0033 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 5, 2013
From: UDVIKLINGSSELSKABET TOGE K/S
To: INNOSCAN A/S
Reel/Frame 031145/0316 →
CHANGE OF NAME Recorded Sep 5, 2013
From: UDVIKLINGSSELSKABET INNOSCAN K/S
To: UDVIKLINGSSELSKABET TOGE K/S
Reel/Frame 031170/0038 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 10, 2008
From: NIELSEN, GERT
To: INNOSCAN K/S
Reel/Frame 021074/0557 →
Continuity (1)
Related Publication 20080230720A1 · Sep 25, 2008