Assembly process and plastic composite tube
Process for assembling, by fusion bonding using IR laser radiation, plastic multilayer tapes that comprise an oriented layer that is transparent to the radiation and a layer that absorbs this radiation, the tapes being fusion-bonded using the same technique to a plastic preformed support. Composite tube resulting from the fusion bonding of these tapes to a plastic core.
1. A process for assembling multilayer tapes comprising:
providing first and second fusion-bondable tapes, each tape containing two plastic layers in contact with each other, wherein one of the two layers is transparent to electromagnetic radiation and the other layer partially absorbs electromagnetic radiation, the transparent layer being oriented in at least one direction;
winding the first tape around a tubular support in such a manner that the radiation-absorbing layer of the first tape is in contact with the outer surface of the tubular support;
winding the second tape around the first tape in such a manner that the radiation-absorbing layer of the second tape is in contact with the transparent layer of the first layer; and
applying electromagnetic radiation to the wound tapes to form fusion-bonding between the first and second tapes and between the tubular support and the first tape.
2. The process of claim 1 , wherein the first and second tapes are wound in such a manner that the at least one orientation direction of the transparent layer of the first tape is 40-70° from the axial direction of the tubular support and is 80-140° from the at least one orientation direction of the transparent layer of the second tape.
3. The process of claim 1 , wherein the electromagnetic radiation has a wavelength ranging from 700 to 1200 nm.
4. The process of claim 1 , wherein the electromagnetic radiation is laser radiation.
5. The process of claim 1 , wherein, in each of the two tapes, the transparent layer is oriented in a single direction.
6. The process of claim 5 , wherein the first and second tapes are wound in such a manner that the orientation directions of the tranparent layers of the first and second tapes are +55° and −55° from the axial direction of the tubular support, respectively.
7. The process of claim 3 , wherein the electromagnetic radiation is laser radiation.
8. The process of claim 7 , wherein, in each of the two tapes, the transparent layer is oriented in a single direction.
9. The process of claim 8 , wherein the first and second tapes are wound in such a manner that the orientation directions of the tranparent layers of the first and second tapes are +55° and −55° from the axial direction of the tubular support, respectively.
10. A process for preparing an enhanced tubular support comprising:
preparing, by coextrusion, first and second fusion-bondable tapes, each tape containing two plastic layers in contact with each other, wherein one of the two layers is transparent to electromagnetic radiation and the other layer partially absorbs electromagnetic radiation, the transparent layer being oriented in at least one direction;
winding the first tape around a tubular support in such a manner that the radiation-absorbing layer of the first tape is in contact with the outer surface of the tubular support;
winding the second tape around the first tape in such a manner that the radiation-absorbing layer of the second tape is in contact with the transparent layer of the first layer; and
applying electromagnetic radiation to the wound tapes to form fusion-bonding between the first and second tapes and between the tubular support and the first tape.
11. The process of claim 10 , wherein the first and second tapes are wound in such a manner that the at least one orientation direction of the tranparent layer of the first tape is 40-70° from the axial direction of the tubular support and is 80-140° from the at least one orientation direction of the transparent layer of the second tape.
12. The process of claim 10 , wherein the electromagnetic radiation has a wavelength ranging from 700 to 1200 nm.
13. The process of claim 10 , wherein the electromagnetic radiation is laser radiation.
14. The process of claim 10 , wherein, in each of the two tapes, the transparent layer is oriented in a single direction.
15. The process of claim 10 , wherein the first and second tapes are wound in such a manner that the orientation directions of the tranparent layers of the first and second tapes are +55° and −55° from the axial direction of the tubular support, respectively.
16. The process of claim 12 , wherein the electromagnetic radiation is laser radiation.
17. The process of claim 16 , wherein, in each of the two tapes, the transparent layer is oriented in a single direction.
18. The process of claim 17 , wherein the first and second tapes are wound in such a manner that the orientation directions of the tranparent layers of the first and second tapes are +55° and −55° from the axial direction of the tubular support, respectively.