Tube
10544887 · 2020-01-28
Assignee
Inventors
Cpc classification
F16L11/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29C48/11
PERFORMING OPERATIONS; TRANSPORTING
B29C48/21
PERFORMING OPERATIONS; TRANSPORTING
F16L11/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L9/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61B1/012
HUMAN NECESSITIES
F16L11/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A tube has a tube body. In the tube body, at least one high-pressure lumen and at least one low-pressure lumen are embedded. The at least one high-pressure lumen and the at least one low-pressure lumen are embedded in the tube body as a bundle configured as a lumen bundle. As a result, a tube body is obtained that is flexibly adaptable to various conditions of use.
Claims
1. A tube comprising a tube body of a polymer in which at least one high-pressure (HP) lumen and at least one low-pressure (LP) lumen are embedded, wherein the at least one HP lumen and the at least one LP lumen are embedded in the tube body as a bundle configured as a lumen bundle.
2. The tube according to claim 1, wherein the lumen bundle is surrounded by a sheathing embedded in the tube body as well.
3. The tube according to claim 2, wherein the sheathing is made of one of the group comprising a polymer material and metal wires.
4. The tube according to claim 2, wherein the sheathing is configured for signal transmission.
5. The tube according to claim 1, comprising exactly one HP lumen extending centrally through the tube.
6. The tube according to claim 1, comprising at least two LP lumina.
7. The tube according to claim 1, comprising at least two HP lumina extending in a radially inner region of the tube cross-section.
8. The tube according to claim 1, comprising at least one metal strand embedded in the tube body.
9. The tube according to claim 1, comprising at least one working lumen embedded in the tube body.
10. The tube according to claim 1, wherein at least one of the lumina is configured as a monotube the tube material of which differs from the material of the tube body.
11. The tube according to claim 1, wherein at least one of the lumina is provided with a reinforcement.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) A multilumen tube 1, which is shown in a cross-sectional view in
(8) The tube body 2 is made of a polymer having a Shore hardness in the range of A, for example a thermoplastic polyurethane (TPU), a polyether block amide (PEBA), a soft thermoplastic elastomer (TPE) on a styrol/ethene butene (SEBS) basis or a soft polyvinylchloride (PVC).
(9) The HP lumen 3 has a round cross-section.
(10) The HP lumen 3 extends centrally through the tube 1. The HD lumen 3 is configured as a reinforced monotube. A lumen wall 5 of the HP lumen 3 is made of polyamide (PA), of polytetrafluoroethylene (PTFE), of tetrafluoroethylene/hexafluoropropylene (FPE), of polyether ether ketone (PEEK), of polyetherimide (PEI), of a fluorinated polymer or, alternatively, of a metal such as stainless steel. In other words, the monotube material of the HP lumen 3 differs from the material of the tube body 2.
(11) The lumen wall 5 is surrounded by a stainless steel reinforcement 6 arranged in the region of a boundary surface between the lumen wall 5 and the surrounding tube body 2. The stainless steel reinforcement 6 is made of 12 reinforcing fibers or wires surrounding the lumen wall 5. Alternatively, the stainless steel reinforcement 6 may also be made of 16, of 24 or of 32 reinforcing fibers or wires surrounding the lumen wall 5. The stainless steel reinforcement 6 may be made of wire, of monofilaments and/or of multifilaments. The filaments or the wire may have a diameter in the range of 0.04 to 0.08 mm.
(12) The three LP lumina 4 are arranged in a radially outer region of the tube cross-section of the multilumen tube 1.
(13) The LP lumina 4 each have an elliptical cross-section. A semi-major ellipse axis of said elliptical cross-section is tangential to the center of the cross-section of the tube 1.
(14) The three LP lumina 4 are arranged about the center of the tube 1 in such a way as to be distributed equally. The three LP lumina 4 each have identical cross-sectional areas. A lumen wall of the LP lumina 4 is formed seamlessly of the material of the tube body 2.
(15) Another embodiment of a multilumen tube 7 will hereinafter be explained by means of
(16) The multilumen tube 7 has two HP lumina 3a and 3b extending in a radially inner region of the tube cross-section and two LP lumina 4. The HP lumina 3a and 3b have a smaller distance from a cross-sectional center Z of the tube body 2 than the two LP lumina 4.
(17) Both the two HP lumina 3a, 3b and the two LP lumina 4 are arranged opposite one another in relation to said cross-sectional center Z.
(18) Another embodiment of a multilumen tube 8 will hereinafter be explained by means of
(19) In terms of the arrangement of the high-pressure lumen 3 and the three low-pressure lumina 4, the multilumen tube 8 is identical to the multilumen tube 1. In addition thereto, the multilumen tube 8 is provided with three metal strands 9 configured as stainless steel strands, which are embedded in the tube body 2. These metal strands 9 may be used to absorb tensile forces acting on the tube 8 or they may each be used as a Bowden cable to influence a layout of the tube 8.
(20) The three metal strands 9 are arranged in a radially outer region of the tube cross-section and have approximately the same distance from the cross-sectional center Z as the LP lumina 4. The three metal strands 9 are equally distributed about the cross-sectional center Z as well. This arrangement is such that one respective metal strand 9 is arranged at the same distance from two adjacent LP lumina 4.
(21) Another embodiment of a multilumen tube 10 will hereinafter be explained by means of
(22) The arrangement of the HP lumina 3a, 3b and of the LP lumina 4 is the same in the multilumen tube 10 as in the multilumen tube 7 as shown in
(23) As shown in
(24) Another embodiment of a multilumen tube 11 will hereinafter be explained by means of
(25) The multilumen tube 11 has two HP lumina 3a and 3b, two LP lumina 12 and one working lumen 13. Contrary to the LP lumina 4, the LP lumina 12 of the multilumen tube 11 are configured as monotubes the lumen walls 14 of which are made of a material that differs from the tube material of the tube body 2. The tube material of these lumen walls 14 of the LP lumina 12 may be made of one of the materials specified above in connection with the material of the tube body 2. The same applies to a material of a lumen wall 15 of the working lumen 13.
(26) The working lumen 13 may also be used to guide a Bowden cable introduced therein of a separated tube introduced therein or a probe introduced therein. The working lumen may also used to guide metal, polymer or optical fibers, which may be used for signal transmission, for example.
(27) The lumina 3a, 3b, 12 and 13 of the multilumen tube 11 are embedded in the tube body 2 as a bundle configured as a lumen bundle 16. The lumen bundle 16 is surrounded by a sheathing 17 embedded in the tube body 2 as well.
(28) The reinforcement 6 and/or the sheathing 17 may be made of a polymer material such as polyethylene terephthalate (PET), of a polyamide (PA) or of metal wires. The reinforcement 6 and/or the sheathing 17 may have a signal transmitting function.
(29) Another embodiment of a multilumen tube 18 will hereinafter be explained by means of
(30) In the multilumen tube 18, the lumen bundle 16 comprises a central HP lumen 3, three LP lumina 12 and two working lumina 13.
(31) The at least one LP lumen may also be used as a working duct or a guide duct. In the at least one LP lumen, a probe and/or a tool may be guided. Alternatively or additionally, the at least one LP lumen may also be used as a flushing duct or a liquid duct.