Claims
- 1. A method of producing shock tubing, which shock tubing has a hollow tube with an inner core loading of a reactive material for the propagation of a shock wave within said tube, and which reactive material absorbs radiation of a selected frequency, which process comprises:
- forming a visually colored hollow tube comprising a colored compound, and having a inner surface and an outer surface; and
- coating the inner surface of said tube with a core loading of said reactive material,
- characterized in that said visually colored hollow tube is essentially transparent to infrared and near infrared radiation.
- 2. A shock tube comprising an inner surface and an outer surface, said inner surface coated with a core load of reactive material said shock tube characterized by the improvement comprising a colored hollow tube essentially transparent to IR or near IR radiation.
- 3. The shock tube in claim 2 wherein said shock tube color is selected from the group consisting of diazo dyes, disazo dyes, Lake dyes, and combinations thereof.
- 4. The shock tube in claim 2 wherein said shock tube color is selected from the group consisting of yellow, red, orange, blue, green, violet, and combinations thereof.
- 5. The shock tube in claim 2 wherein said shock tube comprises a polymeric resin.
- 6. The shock tube in claim 5 wherein said resin is selected from the group consisting of linear low density polyethylene, ultra low density polyethylene, low density polyethylene, and blends and copolymers thereof.
- 7. The shock tube in claim 2 wherein said radiation consists of a broad band peaking at 900 nm.
- 8. The shock tube in claim 2 wherein said reactive material consists of a mixture of HMX and aluminum.
- 9. The shock tube in claim 2 wherein said shock tube is bilaminate.
- 10. The shock tube in claim 2 wherein said shock tube consists of a single walled shock tube combined with a colored over-extruded shock tube.
- 11. The shock tube in claim 2 wherein said color coats said inner surface.
- 12. The shock tube in claim 2 wherein said color coats said outer surface.
- 13. The shock tube of claim 2, wherein said shock tube is essentially opaque to ultraviolet radiation.
- 14. A method of producing shock tubing, wherein said shock tubing comprises a hollow tube, an inner surface and an outer surface, said inner surface coated with a core load of reactive material comprising the steps of:
- a) forming a colored hollow tube with an inner and a outer surface,
- b) coating said inner surface with a core load of reactive material,
- c) measuring said core load with IR or near IR radiation.
- 15. The method in claim 14 wherein said color is selected from the group consisting of yellow, red, orange, blue, green, violet, and combinations thereof.
- 16. The method of claim 14 wherein said color is selected from the group consisting of diazo dyes, disazo dyes, Lake dyes, and combinations thereof.
- 17. The method of claim 14 wherein said shock tubing comprises a polymeric resin.
- 18. The method of claim 14 wherein said reactive material consists of HMX and a aluminum.
- 19. The method of claim 14 wherein said radiation consists of a broad band peaking at 900 nm.
- 20. The method of claim 14 wherein said shock tubing is bilaminate.
- 21. The method of claim 14 wherein said shock tubing consists of a single walled shock tube combined with a colored over-extruded shock tube.
- 22. The polymeric resin of claim 17 wherein said resin is selected from the group consisting of linear low density polyethylene, ultra low density polyethylene, low density polyethylene, and blends and copolymers thereof.
Parent Case Info
This patent is a continuation of U.S. Ser. No. 693,886, filed May 1, 1991.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
5109772 |
Cunningham et al. |
May 1992 |
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5144893 |
Zeman et al. |
Sep 1992 |
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Continuations (1)
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Number |
Date |
Country |
Parent |
693886 |
May 1991 |
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