Method for manufacturing drainage foil, tubular drainage foil, and wound care kit

The method for manufacturing a double-walled drainage foil with capillary openings and ultrasonic welding addresses the challenge of exudate management in complex wounds, ensuring uniform drainage and structural integrity.

JP7842302B2Active Publication Date: 2026-04-07LOHMANN & RAUSCHER
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-08-11
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing drainage foils fail to provide effective exudate management throughout the wound area, especially in complex wounds, and often result in contamination or inadequate coverage, particularly in deep wounds, with production efficiency being a concern.

Method used

A method for manufacturing a double-walled drainage foil with an open drainage space formed by connecting web-like elements, allowing capillary action and capillary openings of specific diameters, and using ultrasonic welding for stability and precision, ensuring uniform exudate management and prevention of adhesion.

Benefits of technology

The method enables efficient exudate management across the entire wound area, preventing contamination and adhesion, while maintaining structural integrity, even in complex wounds, with improved production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

1. A method for manufacturing a double-walled drainage foil with open drainage spaces, comprising: i) providing a first web-like element and a second web-like element; ii) perforating the first web-like element and the second web-like element, so that at least one opening, preferably a plurality of openings, that allow the passage of body fluids, is formed in each of the first web-like element and the second web-like element; iii) placing the first web-like element on top of the second web-like element such that the first and second web-like elements are disposed substantially parallel to each other; iv) connecting the first web-like element and the second web-like element in at least one fastening area, in particular at least one point-like fastening area, preferably by ultrasonic welding, to obtain a double-walled drainage foil with an open drainage space formed between the first web-like element and the second web-like element.
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Description

[Technical Field]

[0001] The present invention relates to a method for manufacturing a double-walled drainage foil having an open drainage space, and a method for manufacturing a tubular drainage foil. The present invention further relates to a tubular drainage foil, a wound care kit, and a tubular drainage foil or wound care kit for use in wound care. The present invention further relates to a method for caring for wounds. [Background technology]

[0002] Drainage foils are needed in various types of clinical images or trauma, particularly during or after surgery in the abdominal, thoracic, or pelvic cavity, for example, when temporary covering of an open wound and / or drainage of fluid from the wound area is required. Covering an open wound may be necessary, for example, to allow rapid access to internal organs on the one hand and to reduce the adverse effects of exudate formation in the wound area, when several interventions are required daily. By temporarily covering the wound, a significant reduction in mortality can be achieved in some indications. Furthermore, since fluid accumulation such as blood or wound secretions in the wound can interfere with the healing process, aspiration of fluid, especially postoperative drainage, may be necessary to promote wound healing.

[0003] Essentially, two main requirements are set from a medical standpoint for drainage foils suitable for the stated intended use. Firstly, especially when used in open abdominal, thoracic, or pelvic cavities, good exudate management in the wound area, i.e., suction of body fluids throughout the wound area, must be achieved. Furthermore, a reduction in friction between the wound or surrounding organs and the drainage foil should be achieved, and at the same time, the wound should be adequately shielded from the environment. In addition, it must be ensured that contaminants do not enter the open wound or the patient's body through the drainage foil.

[0004] European Patent No. 0 261 167 describes a fluid-permeable wound dressing provided for direct contact with the wounded base and having a hydrophobic layer to prevent the dressing from adhering to the wound area and causing contamination of the wound. However, satisfactory exudate control in the wound area cannot be achieved with the wound dressings described in this specification.

[0005] To improve exudate management in wound areas, U.S. Patent No. 7,381,859 proposes a wound dressing in which a foamy layer capable of absorbing exudate is housed between two liquid-permeable foil-like, web-like elements, the web-like elements of which can be embodied in the form of a plastic film. However, it has been found that, in the case of wound dressings known from this literature, sufficient aspiration of exudate is not performed at the edges of the wound dressing, resulting in a problem where wound care complications occur in these edges.

[0006] International Patent Publication No. 2007 / 118652 describes a wound spacer grid that allows an absorbent secondary bandage to be placed without adhesive and comprises multiple three-dimensional perforations forming a first smooth surface and a second surface having rough handles. When this known wound dressing is used, the downstream absorbent can be replaced to ensure satisfactory wound care over a relatively long period. However, even when the wound dressing system described in the document is used, it has been found that satisfactory exudate control cannot be achieved over the entire wound area, especially in the case of wounds located deep inside the body.

[0007] European Patent No. 2 424 477 describes a double-walled foil for wound dressing having an open drainage space. However, it has been found that the wound dressing known from this document has problems in that it cannot achieve satisfactory coverage of the wound area, especially in the case of complex wound areas, particularly wounds deep within the body. Furthermore, it has been found that the production of known wound dressings has problems with production efficiency. U.S. Patent Publication 2022 / 0152287 discloses a wound care device including a multi-layer drainage foil and a foil fastened to prevent leakage of liquid. [Overview of the project] [Problems that the invention aims to solve]

[0008] In view of the aforementioned problems in the prior art, the object of the present invention is to provide a drainage foil that can effectively manage exudate throughout the wound area without contaminating the wound, especially in the case of complex wounds, such as surgical wounds of internal organs and / or musculoskeletal systems. Furthermore, the object of the present invention is to provide an improved method for manufacturing a drainage foil. [Means for solving the problem]

[0009] Manufacturing method for double-walled drainage foil According to the present invention, this objective is achieved by the method of claim 1, which is a further development of known methods, and by the tubular drainage foil described in claim 25.

[0010] In the method according to the present invention, by connecting a first web-like element and a second web-like element and perforating both web-like elements, an open drainage space is formed between the individual web-like elements that allows for capillary action. This prevents body fluids, especially exudate, from leaking out of the drainage space, while simultaneously allowing the body fluids to be distributed throughout the drainage area. For this purpose, no additional measures, such as providing additional absorbents, are absolutely necessary.

[0011] In this way, good exudate management becomes possible throughout the entire wound area because there are no marginal areas lacking capillary function that would negatively affect exudate management. The method according to the present invention makes it possible to manufacture drainage foils that can be cut to any size or structure of wound without any problems, even when applied intraluminally, and furthermore, ensures the desired drainage function throughout the entire wound area. In this case, the method may include a drainage foil made of a smooth surface that prevents adhesion of tissues and cells at the wound base, or, in the case of surrounding organs, their adhesion. In this case, the method may include a drainage foil that prevents adhesion of tissues and cells to the wound base, or, in the case of surrounding organs, is composed of a smooth surface. Furthermore, the method may include the entry of bodily fluids into the drainage space of the drainage foil, facilitated by the web-like elements themselves being formed from a liquid-permeable material.

[0012] In this case, the stability of the drainage foil manufactured by the method according to the present invention can be improved if it is formed by channels that start from a first web-like element or a second web-like element and extend toward the other web-like element, opening into the drainage space, and the channel walls of the channels are formed integrally with each web-like element by perforating the web-like element.

[0013] In the last embodiment of the present invention, If the opening or channel is provided such that its cross-sectional area decreases in a plane extending perpendicular to the depth direction of the drainage foil from one web-like element towards the other web-like element, particularly if a capillary action is obtained that facilitates the entry of body fluids into the drainage space, drainage management can be improved particularly effectively. In this way, on the one hand, the removal of exudate from the wound area is assisted, and on the other hand, backflow from the drainage space to the wound area is prevented.

[0014] Within the scope of the present invention, it has been proven particularly favorable for effective exudate management when at least one opening that allows the passage of body fluids has a diameter in the range of 100 μm to 2000 μm, preferably in the range of 300 μm to 700 μm, and more preferably in the range of 400 μm to 600 μm. It has been found that excellent capillary action can be achieved by at least one, preferably a number of, openings that allow the passage of body fluids and have such diameters.

[0015] Furthermore, when the first web-like element and the second web-like element are connected in a number of fastening regions, preferably a number of fastening regions formed in a grid arrangement, the exudate management is particularly good, and it has been found that particularly good stability of the drainage foil is ensured. In terms of the excellent suction ability of the drainage foil, in each case the distance between adjacent fastening regions is preferably 2 mm or more, preferably 3 mm or more, more preferably 5 mm or more. The plurality of fastening regions can be arranged, for example, in a rectangular grid pattern. By arranging them in a rectangular grid pattern, the drainage foil can be manufactured particularly efficiently.

[0016] The web-shaped elements can be connected while simultaneously ensuring a drainage space that produces a drainage effect through a number of dot-shaped fastening regions preferably formed in a grid arrangement. Here, the connection can be made by welding, adhesion, or other fixed types of connection. However, the removal of exudate should not be hindered by the connection, but rather be assisted. Connection by ultrasonic welding not only enables more efficient manufacture of the drainage foil for connecting the web-like elements, but also has been found to produce a particularly stable drainage foil, and its structural integrity is guaranteed, for example, under mechanical loads when applied within a lumen. In particular, it has been found that connection by ultrasonic welding enables the manufacture of a particularly durable drainage foil and can achieve a particularly advantageous adhesive strength of 0.5 N / 25.4 mm or more.

[0017] Each fastening region has an area of 5 mm 2 or less, particularly 3 mm 2 or less, particularly preferably 2 mm 2 or less in a cross-section extending perpendicular to the depth direction, and it has been found preferable that the distance between individual fastening regions or individual grid points of the fastening regions formed in a grid arrangement is 2 mm or more, particularly 3 mm or more, particularly preferably 5 mm or more.

[0018] Regardless of whether fastening is performed by welding, adhesive bonding or other forms of connection, a material bridge connecting the inner boundary surfaces of the web-like elements can be formed within the fastening region. It has been found that such a material bridge, which promotes the stability of the overall structure of the drainage foil, can be manufactured particularly precisely by ultrasonic welding. In order to obtain the desired capillary action in the drainage space, the distance between the inner boundary surfaces of the web-like elements is 5 mm or less, preferably 4 mm or less, particularly preferably 2 mm or less.

[0019] In this case, if the distance between the inner boundary surfaces of the web-like elements is 0.05 mm or more, particularly 0.1 mm or more, particularly preferably 0.3 mm or more, it is possible to ensure the distribution of the exudate over the entire area of the drainage foil that utilizes capillary phenomena in the drainage space. In order to manufacture a high-quality drainage foil, if the connection between the first web-like element and the second web-like element is performed by ultrasonic welding, then the desired distance between the first and second web-like elements in this way, particularly the distance between the inner boundary surface of the drainage space formed by the first web-like element and the inner boundary surface of the drainage space formed by the second web-like element, can be manufactured in a precise and quality-assured manner, which has proven to be particularly preferable. The production of the drainage foil by ultrasonic welding has been found to enable a higher-quality drainage foil than when the distance between the internal boundary surfaces is ensured only by the depth of the funnel-shaped opening, for example, because perforation is typically performed with limited accuracy.

[0020] Regarding the use of the drainage foil in wound care, the drainage foil is 30 g / m 2 to 90 g / m 2 , preferably 40 g / m 2 to 80 g / m 2 , more preferably 50 g / m 2 to 70 g / m 2It has been found to be particularly advantageous when the basis weight (basic weight) is within the range of [specify range]. The first web-like element and / or the second web-like element may include or may be plastic foil, the plastic foil preferably comprising polyethylene, polypropylene, polyethylene terephthalate, polyurethane, polytetrafluoroethylene, polyhydroxybutyrate, polylactide and / or cellulose. This type of plastic foil has the advantage of effectively preventing the penetration of pathogens, such as bacteria, as well as tissue adhesion and internal growth. The plastic foil may particularly include polyethylene, preferably low-density polyethylene (LDPE).

[0021] Web-like elements or plastic foils containing polyethylene, particularly low-density polyethylene (LDPE), have been found to be particularly advantageous for the manufacture and use of wastewater foil according to the present invention. The first web-like element and / or the second web-like element may contain polyethylene, polypropylene, polyethylene terephthalate, polyurethane, polytetrafluoroethylene, polyhydroxybutyrate, polylactide and / or cellulose, preferably polyethylene, more preferably low-density polyethylene (LDPE). The structure of the web-like element can be manufactured by a nonwoven fabric manufacturing process. In this case, synthetic and natural (e.g., silk, cotton) fibers, as well as inorganic fibers (glass ceramics) or metals (silver fibers), can also be used to manufacture the nonwoven fabric or tissue.

[0022] Within the scope of the present invention, the web-like elements may further be provided with an antimicrobial or bacteriostatic layer on one or both sides. The antimicrobial or bacteriostatic effect can be achieved by, for example, PHMB, silver, chlorhexidine, etc. In relation to avoiding the tendency of drainage foils produced by the method of the present invention to stick together, at least one web-like element may have a hydrophilic or hydrophobic finish. Furthermore, the application of swellable materials is also envisioned.

[0023] Regarding the use of drainage foil manufactured by the method according to the present invention in wound care, the drainage foil has a tensile strength of 7N / 25.4mm or more, an elongation at break of 40% or more, and 75m 3 / m 2 It has been found to be particularly advantageous when the porosity is greater than or equal to / min and / or the bond strength is greater than or equal to 0.5N / 25.4mm. Therefore, it is possible to ensure effective exudate management while simultaneously guaranteeing the structural integrity of the drainage foil.

[0024] Tensile strength is preferably measured according to DIN EN ISO 527. The drain foil may have a tensile strength of 7 N / 25.4 mm or more, as measured according to DIN EN ISO 527. Elongation at break is preferably measured according to DIN EN ISO 527. The drain foil may have an elongation at break of 40% or more, as measured according to DIN EN ISO 527. Adhesion strength is preferably measured based on Edana NWSP 401.0.R0. The drain foil may have an adhesion strength of 0.5 N / 25.4 mm or more, as measured according to Edana NWSP 401.0.R0, or as measured according to Edana NWSP 401.0.R0. Porosity is a measure of the ratio of cavity volume to total volume of the drain foil.

[0025] In the case of a drainage foil manufactured by the method according to the present invention, at least one opening that allows the passage of bodily fluids may be round, circular, and / or elliptical, particularly with respect to a plan view of the planar extent of the first web-like element or the second web-like element. Such shapes allow for the effective passage of bodily fluids from the wound area into the open drainage space of the drainage foil.

[0026] In the case of a drain foil manufactured by the method according to the present invention, if at least one web-like element, preferably both web-like elements, has a number of openings preferably arranged in a grid, particularly openings arranged in a rectangular grid, and the distance between adjacent openings or grid points of the web-like elements is 15 mm or less, preferably 5 mm or less, particularly 3 mm or less, then the desired removal of the drain foil can be achieved while ensuring sufficient overall stability of the drain foil.

[0027] With regard to the desired overall stability of the drainage foil manufactured by the method according to the present invention, it has been further proven that it is particularly advantageous if the mouth of an opening located on one of the web-like elements is located on a projection along the depth direction between the mouths of openings located on the other web-like element. To prevent the collapse of the overall structure of the drainage foil, it has been found to be particularly effective, especially when negative pressure is applied, if at least one channel, preferably multiple such channels, that form the openings of the web-like elements extend in the depth direction for more than 50% of the total depth of the drainage space.

[0028] To ensure the desired permeability of the web-like element, the opening region of each individual opening in a plane extending perpendicular to the depth direction, facing the drainage space, is 0.1 mm. 2 The above, especially 0.5mm 2 The above is particularly preferably 1 mm 2 It was found that the method described above is advantageous when perforation is performed. The perforation results in an opening area of ​​5 mm² for the drainage foil. 2 Below, especially 4mm 2 The following is particularly preferred: 3 mm 2 When performed as described below, the desired capillary action can be achieved while avoiding backflow from the drainage space to the wound site.

[0029] As already explained, the openings of channels forming web-like elements are formed by perforation of the web-like elements. In this regard, it has been found that in order to obtain a smooth surface that can effectively suppress the adhesion of tissue or cells to the wound base or surrounding organs, it is advantageous for the channel walls to have at least a partially arcuate structure in a cross section extending parallel to the depth direction and to be continuously bonded to the boundary region of the web-like elements.

[0030] The method according to the present invention may include attaching an adhesive, in particular an adhesive, adhesive material and / or hook-and-loop fastener, in particular one or more spikes, to the drainage foil. Such an adhesive, adhesive material or hook-and-loop fastener makes it possible to fix the manufactured drainage foil to other structures, such as body parts, surgical devices, absorbents, tubes, wires, stents, insertion aids and / or devices for negative pressure therapy. For example, the method may include attaching an adhesive, adhesive material and / or hook-and-loop fastener to two opposing edges of the drainage foil. Such a drainage foil can then be used to fix the drainage foil to the structure by wrapping it around a structure selected from, for example, absorbents, tubes, wires, stents, insertion aids and devices for negative pressure therapy, and by connecting the adhesive, adhesive material or hook-and-loop fastener at the two opposing edges.

[0031] With respect to manufacturing technology, it has been found to be particularly advantageous when process ii) is carried out before or after process iii), and / or when process iv) is carried out after process iii) and before or after process ii).

[0032] The method according to the present invention may further include forming a three-dimensional, preferably tubular, structure from the drainage foil. The advantage of such a three-dimensional structure, such as a tubular structure, is that it can be used for more complex wounds, such as deep wounds, or deep areas of the body. In particular, such a three-dimensional structure, such as a tubular structure, can even be used in a lumen, for example, in the gastrointestinal tract or fistula. The drainage foil may be tubular, for example, for application in a lumen and / or for receiving a drainage tube.

[0033] With regard to manufacturing technology, it has been found to be particularly advantageous when such a three-dimensional structure is formed by a first web-like element and a second web-like element joined in step iv) by welding, especially ultrasonic welding or laser welding, by thermal bonding, especially by UV or hot air, by using adhesives, and / or by deep drawing, especially by deep drawing.

[0034] Manufacturing method for tubular drainage foil The object of the present invention is further achieved by a method according to the present invention for manufacturing a tubular drainage foil, the method characterized by comprising the following steps. a) A step of providing a double-walled drainage foil manufactured according to a method according to the present invention for manufacturing a drainage foil, preferably a double-walled drainage foil having an open drainage space, more preferably a double-walled drainage foil, b) A step of folding the drainage foil on itself around a fold line, particularly a crease line, such that the drainage foil has an overlapping area that can be connected to a connecting line, preferably the drainage foil has a first edge and a second edge extending substantially parallel to the first edge, and the drainage foil is folded or creased on itself along the first edge and the second edge, respectively, so that it has an overlapping area that can be connected to a connecting line. c) A step of connecting drainage foils along the overlapping region to form a connecting line, d) A step to obtain a tubular drainage foil.

[0035] Furthermore, the object of the present invention is achieved by a method according to the present invention for manufacturing a tubular drainage foil, the method comprising the following steps. a) A step of providing a double-walled drainage foil manufactured according to a method according to the present invention for manufacturing a drainage foil, preferably a double-walled drainage foil having an open drainage space, more preferably a double-walled drainage foil, b) A step of positioning the first edge of the drainage foil on the elastic material such that an overlapping region is formed between the first edge of the drainage foil and the elastic material, which can be connected to a connecting line; c) A step of connecting the drainage foil and the elastic material along the overlapping region of the drainage foil and the first edge of the elastic material to form a connecting line, d) A step of folding the drainage foil onto the elastic material with respect to a fold line, particularly a creasing line, so that an overlapping region connected to a connecting line is formed between the second edge of the drainage foil, preferably extending substantially parallel to the first edge, and the elastic material, e) A step of connecting the drainage foil and the elastic material along the overlapping region of the second edge of the drainage foil and the elastic material to form a connecting line, f) A step to obtain a tubular drainage foil.

[0036] The object of the present invention is also achieved by a method according to the present invention for manufacturing a tubular drainage foil, the method comprising the following steps: a) A step of providing a double-walled drainage foil manufactured according to a method according to the present invention for manufacturing a drainage foil, preferably a double-walled drainage foil having an open drainage space, more preferably a double-walled drainage foil, b) A step of winding a drainage foil around a winding shaft such that the drainage foil has an overlapping region, the overlapping region being formed by winding around the winding shaft and being connectable to a connecting wire, and the drainage foil being in at least two layers, c) Preferably by using an adhesive or connecting means to connect the first and second layers of drainage foil present in at least two layers within the overlapping region, thereby preferably forming a connecting line, d) A step to obtain a tubular drainage foil.

[0037] Each of the above-described methods according to the present invention for manufacturing tubular drainage foils has been found to efficiently provide tubular drainage foils that enable uniform drainage performance even in complex wound areas, for example, in the case of wounds deep within the body. The following description relates to all three of the above-described methods according to the present invention for manufacturing tubular drainage foils. Each of the above-described methods for manufacturing tubular drainage foils may have the following characteristics.

[0038] With regard to manufacturing technology, it has been found to be particularly advantageous when connections are made by welding, especially ultrasonic welding or laser welding, thermal bonding, especially UV or hot air, adhesives, especially adhesives or hook-and-loop fasteners, and / or connecting means, especially clamps. In particular, connections of drainage foil along overlapping regions, connections of drainage foil and elastic material along overlapping regions between the first edge of the drainage foil and the elastic material, connections of drainage foil and elastic material along overlapping regions between the second edge of the drainage foil and the elastic material, and connections of the first and second layers of drainage foil present in at least two layers in the overlapping region can be made by welding, especially ultrasonic welding or laser welding, thermal bonding, especially UV or hot air, thermal bonding, especially adhesives or hook-and-loop fasteners, and / or welding by connecting means, especially clamps, especially ultrasonic welding or laser welding.

[0039] The connecting means may be, for example, clamps, cords, screws, joints, such as elastic joints or joints having elastic material, or annular coating aids. For example, a drainage foil can be wound around a winding shaft which is wound around a drainage tube, and then fixed as a tubular drainage foil by connecting means, such as clamps or annular coating aids. Overlapping regions, for example, the overlapping region between the first and second edges of a double-walled drainage foil, can be connected by elastic joints. Elastic joints increase the expandability of the tubular drainage foil.

[0040] The manufactured tubular drainage foil has properties particularly advantageous for medical applications when the connections are made by ultrasonic welding, preferably at a speed in the range of 0.1 to 5.0 m / min, an output in the range of 50 to 500 watts, and / or a pressure in the range of 5 N to 100 N. Such connections allow for stable connection lines that ensure high tensile strength even under mechanical load.

[0041] The connection in the method according to the present invention for manufacturing a tubular drainage foil, particularly the connection of the drainage foil along an overlapping region, the connection of the drainage foil to an elastic material along an overlapping region between the first edge of the drainage foil and an elastic material, the connection of the drainage foil to an elastic material along an overlapping region between the second edge of the drainage foil and an elastic material, and / or the connection of a first layer and a second layer of the drainage foil present in at least two layers within an overlapping region, may include the steps of placing the drainage foil in an ultrasonic welding apparatus and welding the drainage foil in particular with a welding die, such as an L-shaped welding die, to form a tubular drainage foil. It has been found that tubular drainage foils with the corresponding welding dies can be manufactured efficiently and with high quality.

[0042] It has been further found that when the connection is made by ultrasonic welding using a cutting wheel having a cutting edge radius of 0.2 mm or less, and / or by ultrasonic welding using a cutting wheel having a grinding angle of 15° or less opposite to the fold line, especially the crease line, and / or by ultrasonic welding using a cutting wheel having a grinding angle of 75° or less on the opposite side of the fold line, especially the crease line, the characteristics of the cut edge are particularly suitable for the function of the drainage wheel. Thus, it is possible to prevent material residues that could impair the functionality of the drainage wheel from remaining at the cut edge.

[0043] Welding, particularly ultrasonic welding, can be performed by heating and melting materials in overlapping areas, such as double-walled drainage foil and / or elastic material, using a sonotrode vibrated by a generator. A cutting wheel can be used to create a welded joint, for example, a cutting wheel that can weld and cut simultaneously. A cutting wheel that can weld and cut simultaneously creates a welded joint in which excess material is removed simultaneously during the welding process. Conventional cutting wheels can also be used to manufacture connecting wires. Ultrasonic welding can be performed, for example, with a Nucleus Rotosonic™ DX1-TC 12 flatbed ultrasonic welding machine at an ultrasonic frequency of approximately 35 kHz.

[0044] To provide the smoothest possible connection lines, and in particular to prevent functional defects in the tubular drainage foil resulting from rough connection lines, the edge strips of the drainage foil located on the opposite side of the connection lines, especially the fold lines, can be removed during or after connection, particularly by punching. Furthermore, punching can be used to remove any unwanted residual material.

[0045] It has been found that this method is particularly advantageous for the functionality of the tubular drainage foil when the connecting lines, such as welded seams, have a width of 2 mm or less, preferably 1 mm or less, and more preferably 0.5 mm or less, along the circumferential direction of the tubular drainage foil.

[0046] To prevent any functional defects in the product, it is particularly advantageous to provide the narrowest possible connection lines, especially welded joints. Furthermore, it has been found that when the thickness of the connection line is 1 mm or less, preferably 750 μm or less, and more preferably 450 μm or less, it is particularly advantageous to ensure functionality throughout the entire tubular structure, extending radially or in depth along the tubular drainage foil, especially perpendicular to the tube axis. Based on the method by which the connection is performed in the method of manufacturing the tubular drainage foil according to the present invention, the material melts in the overlapping region, especially at the connection line, and thus, for example, when the connection is performed by welding, especially ultrasonic welding, a material bridge is formed.

[0047] According to the present invention, a method for improving the stability of a drainage foil includes the step of attaching reinforcing elements, particularly reinforcing strips or reinforcing foils, to the area of ​​the connecting line, preferably by placing the reinforcing elements in the overlapping area before connection and / or at least one end of the tube. The reinforcing strip can be provided, for example, by a drainage foil provided in a double layer in the area to be reinforced, or by a reinforcing material, such as polyethylene foil, fixed to the area to be reinforced. Foil, in particular polyethylene foil, has been found to have a particularly advantageous reinforcing effect as a reinforcing element.

[0048] For example, reinforcing elements may be additionally co-welded during connection by reinforcing elements placed in the overlapping region before connection, thus increasing the tear strength of the drainage foil, particularly the tear strength at the connection line. The reinforcing elements not only have the advantage of increasing the tear strength of the drainage foil, but can also provide further advantages, such as being embodied as radiopaque reinforcing elements. This allows, for example, the precise positioning of a tubular drainage foil on a target structure under the control of radiopaquery.

[0049] The superior structural integrity of tubular drainage foils can be further enhanced if the tubular drainage foil is circumferentially formed at at least one tube end having a reinforcing region, and if the drainage foil is present in at least two layers. This is particularly advantageous for applications where auxiliary devices, such as absorbents, tubes, wires, stents, or insertion aids, are inserted into the tubular drainage foil, for example, during surgical procedures or in the manufacture of wound care kits.

[0050] The tube opening is further stabilized by the reinforcing region, and as a result, any desired auxiliary device can be inserted into the tubular drainage foil without the risk of tearing the drainage foil. From a production technology standpoint, it has been found to be advantageous to fold a portion of the tubular drainage foil at the tube end, particularly the edge region of the tubular drainage foil, and the folding is carried out in such a way that the tubular elements forming the inner interface of the tubular drainage foil form the outer interface of the tubular drainage foil in the reinforcing region. This method further includes the step of fixing the folded portion of the tubular drainage foil, particularly by welding, heat bonding, adhesive, and / or connecting means, for example, in a point manner. "Folding" should be understood to mean any shaping, positioning, bending, winding, or folding of the drainage foil, in which overlapping regions, particularly overlapping regions that can be connected to connecting lines, and / or reinforced regions having the drainage foil can be achieved.

[0051] The present invention provides a method for manufacturing a tubular drainage foil, which includes the step of winding up at least a portion of the tubular drainage foil, starting from the tube opening at the tube end and along the longitudinal tube axis, particularly starting from the inner interface and moving towards the outer interface along the longitudinal tube axis. The tubular drainage foil can be partially or completely wound up. It has been found that the application of a wound tubular drainage foil is simpler compared to an unwound drainage foil, because the user can easily wind the tubular drainage foil onto a structure such as a drainage tube or probe, and cover the structure with the tubular drainage foil.

[0052] In the sense of having a smooth surface on the outer connecting line of a tubular drainage foil, it has been found to be advantageous if, after connection, the side of the connecting line facing the fold line, particularly the crease line, is completely rotated outward by inverting the tubular drainage foil. A smooth surface on the outer connecting line ensures high functionality of the tubular drainage foil in the region of the connecting line.

[0053] In order to achieve a particularly good drainage effect using the generated tubular drainage foil, the drainage foil provided in step a) of the method according to the present invention for generating a tubular drainage foil may be a drainage foil generated according to the method according to the present invention for generating a double-walled drainage foil. The structure of the generated drainage foil prevents the collapse of the open drainage space between the two layers, which is aided by the fastening region. Thus, a suction distribution is ensured over the entire area up to the edge region of the tubular drainage foil, and the drainage foil effectively removes exudate.

[0054] Tubular drainage foil According to the present invention, the object of the present invention is further achieved by a tubular drainage foil comprising a first tubular element forming an outer interface and a second tubular element forming an inner interface facing away from the outer interface, wherein the second tubular element is connected to the first tubular element by at least one fastening region, and the first tubular element and the second tubular element each have at least one opening that allows passage of bodily fluids, and an open drainage space is formed between the outer interface and the inner interface. In the tubular drainage foil according to the present invention, capillary action is achieved between the two tubular elements by an open drainage space, and this capillary action allows body fluids, particularly exudate, to flow out or be drawn out throughout the entire tubular structure. Furthermore, even in the case of more complex wounds, such as wounds deep inside the body, especially in intraluminal applications, effective exudate management can be ensured by the tubular drainage foil according to the present invention. The tubular drainage foil according to the present invention has the advantage that it can be used not only on the surface of a wound but can also be placed between organ structures to effectively absorb body fluids, such as exudate.

[0055] The first tubular element and / or the second tubular element may include or be plastic foil, and the plastic foil preferably includes polyethylene, polypropylene, polyethylene terephthalate, polyurethane, polytetrafluoroethylene, polyhydroxybutyrate, polylactide, and / or cellulose. This type of plastic foil has the advantage of effectively preventing the penetration of pathogens, such as bacteria, as well as tissue adhesion and internal growth. The plastic foil may particularly include polyethylene, preferably low-density polyethylene (LDPE). It has been found that tubular elements or plastic foils containing polyethylene, particularly low-density polyethylene (LDPE), are particularly advantageous for the manufacture and use of the tubular drainage foil according to the present invention. The first tubular element and / or the second tubular element may include polyethylene, polypropylene, polyethylene terephthalate, polyurethane, polytetrafluoroethylene, polyhydroxybutyrate, polylactide, and / or cellulose, preferably polyethylene, more preferably low-density polyethylene (LDPE).

[0056] Within the scope of the present invention, it is further conceivable that the tubular element may be provided with an antimicrobial or bacteriostatic layer on one or both sides. The antimicrobial or bacteriostatic effect can be achieved, for example, by PHMB, silver, chlorhexidine, etc. To avoid the tendency of drainage foils manufactured by the method according to the present invention to stick together, at least one tubular element may have a hydrophilic or hydrophobic finish. Furthermore, the application of swellable materials is also conceivable.

[0057] In terms of the structural integrity of the tubular drainage foil, it is known that the first tubular element and the second tubular element are preferably connected by a number of fastening regions, preferably formed in a grid arrangement. The distance between adjacent fastening regions is preferably 2 mm or more, preferably 3 mm or more, and more preferably 5 mm or more, in order to ensure excellent capillary action of the open drainage space formed between the first tubular element and the second tubular element. The multiple fastening regions can be arranged, for example, in a rectangular grid.

[0058] Furthermore, each fastening area is 5 mm 2 Below, especially 3mm 2 The following is particularly desirable: 2 mm 2 The following regions have proven useful for effective capillary action in cross-sections extending perpendicular to the radial or depth direction. The depth direction is particularly the direction extending perpendicular to the interface. The radial direction is particularly the direction extending perpendicular to the longitudinal tube axis.

[0059] Regardless of whether fastening in the fastening region is performed by welding, such as ultrasonic welding, adhesive bonding, or other types of connection, material bridges connecting the tubular elements to each other can be formed within the fastening region. It has been found that such material bridges, which promote the stability of the overall structure of the tubular drainage foil, can be manufactured with particular precision by ultrasonic welding. To obtain the desired capillary action in the drainage space, the distance between the inner interface surfaces of the tubular elements defining the open drainage space is 5 mm or less, preferably 4 mm or less, and particularly preferably 2 mm or less.

[0060] In this case, if the distance between the inner interface surfaces of the tubular elements defining the drainage space is 0.05 mm or more, particularly 0.1 mm or more, and especially preferably 0.3 mm or more, then it is possible to ensure the distribution of exudate throughout the entire tubular drainage foil utilizing capillary action in the drainage space. The tubular drainage foil has a distance between the inner interface surfaces of the tubular elements that defines a drainage space, preferably at least 50% of the area of ​​the drainage foil, and preferably at least 70% of the area of ​​the drainage foil.

[0061] The tubular drainage foil according to the present invention may have a connecting line, preferably a welded seam, that connects a first tubular element and a second tubular element, and / or the first and / or second tubular elements to an elastic material. The connecting line can be provided by connecting means, for example, welding, in particular ultrasonic welding or laser welding, thermal bonding, in particular by UV or hot air, adhesive, in particular by adhesive or hook-and-loop fasteners, and / or in particular by clamps. For example, the connecting line is generated when the first edge of the drainage foil is positioned at the second edge of the drainage foil, and the second edges are connected to each other, for example by ultrasonic welding, thereby generating a connecting line, for example a welded seam, between the first and second edges.

[0062] It has been found that when the connecting lines, such as welded seams, have a width of 2 mm or less, preferably 1 mm or less, and more preferably 0.5 mm or less, along the circumferential direction of the tubular drainage foil, it is particularly advantageous for the functionality of the tubular drainage foil. Furthermore, it has been proven that when the connecting lines have a thickness of 1 mm or less, preferably 750 μm or less, and more preferably 450 μm or less, along the radial or depth direction of the tubular drainage foil, it is particularly advantageous for ensuring functionality throughout the entire tubular structure.

[0063] Regarding the use of tubular drainage foil in wound care, the drainage foil is 30g / m². 2 ~90g / m 2 Preferably 40 g / m 2 ~80g / m 2 It has been found to be particularly advantageous when the basis weight (basic weight) is in the range of 50 g / m2 to 70 g / m2. The drainage foil has a tensile strength of 7 N / 25.4 mm or more, an elongation at break of 40% or more, and 75 m 3 / m 2When the porosity is greater than or equal to / min and / or the bond strength is greater than or equal to 0.5 N / 25.4 mm, effective drainage management can be ensured while simultaneously maintaining the structural integrity of the drainage foil. Tensile strength is preferably measured according to DIN EN ISO 527.

[0064] A tubular drainage foil can have a tensile strength of 7 N / 25.4 mm or more, measured, for example, according to DIN EN ISO 527. Elongation at break is preferably measured according to DIN EN ISO 527. A tubular drainage foil can have an elongation at break of 40% or more, measured, for example, according to DIN EN ISO 527. Adhesion strength is preferably measured based on Edana NWSP 401.0.R0. A tubular drainage foil can have a bond strength of 0.5 N / 25.4 mm or more, measured, for example, based on Edana NWSP 401.0.R0 or according to Edana NWSP 401.0.R0. Porosity is a measure of the ratio of cavity volume to total volume of the drainage foil.

[0065] The tubular drainage foil according to the present invention may have a tube opening at at least one tube end. For example, a tubular drainage foil may be provided having a tube opening at one tube end and the material continuing at the other end of the tubular structure, for example, a web-like element and / or a tubular element forming a tube end connected by a connecting wire may be provided. Alternatively, a tubular drainage foil can be provided, having tube openings at both ends of the tube. For several applications, for example, for draining wounds deep within the body, it has been proven particularly advantageous for a tubular drainage foil to have a tube opening at one end and not at the other.

[0066] According to the present invention, a tubular drainage foil may have reinforcing elements, particularly reinforcing strips or reinforcing foil, along at least one tube end and / or connecting line. The reinforcing strip may be, for example, a region where two layers of material, such as double-walled drainage foil, particularly drainage foil manufactured by the method according to the present invention for manufacturing double-walled drainage foil, exist, and / or a region where reinforcing material, such as polyethylene foil, is fixed to the first tubular element and / or the second tubular element. Foil, particularly polyethylene foil, has been found to have a particularly advantageous reinforcing effect as a reinforcing element. The structural integrity of the tubular drainage foil is particularly enhanced when the connecting line and / or at least one tube opening has / has a reinforcing element.

[0067] The superior structural integrity of the tubular drainage foil according to the present invention is further enhanced when the tubular drainage foil has a reinforcing region at at least one tube end that is present in at least two layers. This is particularly advantageous for applications where auxiliary devices, such as absorbers, tubes, wires, stents, or insertion aids, are inserted into the tubular drainage foil. The tube opening is further stabilized by the reinforcing region, and as a result, any desired auxiliary device can be inserted into the tubular drainage foil without the risk of tearing the drainage foil. From a production technical standpoint, it has been found to be advantageous to form the reinforcing region in the form of a two-layered edge formed by folding a portion of the tubular drainage foil at the tube end, in particular, such that the folding is carried out so that the outer interface of the tubular drainage foil, especially the outer interface of the reinforcing region of the tubular drainage foil, is formed within the reinforcing region, and a second tubular element forming the inner interface is formed within the reinforcing region. The folded end can be fixed in a point manner.

[0068] According to the present invention, the outer interface of the tubular drainage foil, the inner interface of the tubular drainage foil, and / or the inner lumen of the tubular drainage foil included in the inner interface of the tubular drainage foil may be provided with sliding aids and / or insertion aids. Such sliding aids and / or insertion aids can further enhance ease of use and simplicity of application. For example, the outer interface and / or inner interface of the tubular drainage foil may be made of a low-friction surface, in particular an anti-stick coating and / or a microrough surface, to facilitate insertion. In particular, the outer interface and / or inner interface of the tubular drainage foil may contain or be coated with silicone, polytetrafluoroethylene (PTFE) and / or water, to facilitate insertion.

[0069] Sliding aids that significantly increase sliding ability include, for example, aqueous lubricants, glycerol-based lubricants, polymer gels, especially anti-allergic polymer gels, endoscopic lubricants, especially endoscopic sliding gels, and / or aqueous solutions, especially sodium chloride solutions. It is particularly advantageous if the substance used as a sliding aid can dissolve without residue, especially in aqueous solutions, in order to prevent substance residue from remaining on the product. Insertion aids containing fabric and / or plastic are particularly suitable as insertion aids. Insertion aids may include low-friction surfaces, especially anti-stick coatings and / or microrough surfaces. For example, insertion aids may include fabric and / or plastic, the fabric or plastic containing silicone, polytetrafluoroethylene (PTFE) and / or water, or a silicone, polytetrafluoroethylene (PTFE) coating.

[0070] The insertion aid may be a tubular insertion aid placed inside the inner lumen of the tubular drainage foil, for example, a tubular insertion aid having a tubular opening or two tubular openings. In particular, the insertion aid may have a tubular opening at one end of the tube and a closed end at the other end of the tube. The tubular insertion aid may be configured to have a predetermined break point at the closed end of the tubular insertion aid. The tubular drainage foil can be provided in a single lumen or multiple lumen configuration.

[0071] Tubular drainage foils can have lengths ranging from 0.5 cm to 40 cm, preferably 2 cm to 30 cm, and more preferably 5 cm to 20 cm, so that they are particularly advantageous for a number of applications, such as intraluminal applications, gynecological or urological applications, and applications in thoracic, visceral, and / or hip joint surgery. However, longer or shorter tubular drainage foils can also be provided. For example, tubular drainage foils having lengths of 10 cm or more, or 20 cm or more, are suitable for intraluminal applications and fistulas in the gastrointestinal tract. For applications in various wound cavities, the length can be adapted to the wound cavity; for example, tubular drainage foils having a length of 10 cm or less can be provided for wound cavities, or for smaller wound cavities having a length of 5 cm or less, for example, 2 cm or less.

[0072] Furthermore, when the tubular drainage foil has an outer diameter in the range of 1 mm to 60 mm, preferably 2 mm to 50 mm, and more preferably 4 mm to 30 mm, the tubular drainage foil is particularly suitable for a number of applications in terms of effective wound management. However, tubular drainage foils with larger or smaller outer diameters can also be provided. For narrow wounds and / or deep areas of the body, such as the pancreas, for gynecological or urological applications, and for intraluminal applications, tubular drainage foils with a small outer diameter, such as 5 mm or less, and especially 4 mm or less, are particularly suitable.

[0073] The tubular drainage foil according to the present invention has the advantage of ensuring uniform drainage performance and preventing clogging of drainage flow by tissue, even when the outer diameter of the drainage foil is small. Therefore, the tubular drainage foil enables active drainage of fluid even with a very small outer diameter. In the case of invasive surgery, for example in the case of the hip joint, especially in the case of a large wound area, a tubular drainage foil with a larger outer diameter, for example, 6 mm or more, can also be used. Depending on the accessibility and size of the wound area, a tubular drainage foil with an appropriate length and appropriate outer diameter can be provided.

[0074] Wound care kit The object of the present invention is further achieved by a wound care kit according to the present invention, which comprises a tubular drainage foil manufactured by a method according to the present invention for manufacturing a tubular drainage foil according to the present invention, or a tubular drainage foil according to the present invention and at least one further component selected from, for example, an absorbent, a tube, a wire, a stent, and an insertion aid. In terms of particularly simple handling of wound care kits, it has proven advantageous if at least a portion of at least one further component is located within the inner lumen of a tubular drainage foil, which is formed by an inner interface. Particularly for efficient negative pressure therapy, the wound care kit may comprise, for example, a tubular drainage foil and a drainage tube, where a portion of the drainage tube is located within the inner lumen of the tubular drainage foil. The drainage tube may be connected to a negative pressure source. At least one further component may be located partially or entirely within the tubular drainage foil.

[0075] In a particularly preferred embodiment of the present invention, the absorbent is a sponge, foam, especially polyurethane or polyvinyl alcohol foam, or gauze. Wound care kits having such an absorbent have been found to enable efficient suction of fluid from a body area, particularly a wound area. When the absorbent is placed within the inner lumen of a tubular drainage foil, which is formed by an inner interface, tissue adhesion to the absorbent is prevented. Thus, fluid can be efficiently and non-traumatically suctioned from the wound area.

[0076] In terms of particularly advantageous suction efficiency, it has been proven preferable when the tube included in the wound care kit is a drainage tube. The drainage tube can be single-lumen or multi-lumen. A wound care kit with a drainage tube allows for continuous suction of fluid from the wound area, and further, allows for the suction of large volumes of fluid. Since tubular drainage foils can be supplied in any dimensions, in particular, any outer diameter, any length and any shape, a wound care kit can be equipped with a tube and / or used with a tube having a complex geometric shape, for example, a multi-lumen geometric shape.

[0077] The wound care kit according to the present invention may have a length ranging from 0.5 cm to 250 cm, preferably from 10 cm to 200 cm. The length of the wound care kit can be optimized for each application; for example, a wound care kit having a length of at least 10 cm or at least 20 cm can be provided for intraluminal application in the gastrointestinal tract or for application in a fistula. For application in a wound cavity, the length can be adapted to the respective wound cavity; for example, the wound care kit may have a length of less than 10 cm, less than 5 cm, or less than 2 cm, depending on the size or depth of the wound cavity.

[0078] Medical Uses and Methods for Wound Care The present invention further relates to a tubular drainage foil according to the present invention for use in wound care, and a wound care kit according to the present invention for use in, for example, a method according to the present invention for draining a wound and / or caring for a wound. A tubular drainage foil or wound care kit is preferably used, for example, for drainage during and / or postoperative surgery. The tubular drainage foil or wound care kit according to the present invention is preferably used, for example, during surgery, to drain bodily fluids from a wound area.

[0079] The tubular drainage foil and wound care kit according to the present invention enable the easy and reliable aspiration of fluid from a wound. The tubular drainage foil and wound care kit according to the present invention can be used, for example, in intraluminal settings such as the gastrointestinal tract, gynecology and urology, surgical procedures such as thoracic, visceral and hip surgeries, and negative pressure therapy. The tubular drainage foil or wound care kit can be used for drainage, particularly within the scope of surgery. Therefore, the accumulation of blood, wound secretions and / or tissue fluid in the wound cavity can be prevented by applying drainage, which typically occurs during surgical intervention. In this way, the healing process can be significantly accelerated.

[0080] The tubular drainage foil or wound care kit according to the present invention can be used particularly advantageously in combination with negative pressure therapy for wound care. In this case, the tubular drainage foil or wound care kit according to the present invention is used as a direct interface between the wound, particularly the wound base, and the wound filler or exudate removal area, such as a drainage tube. Particularly advantageously, the tubular drainage foil or wound care kit according to the present invention can be used for use in wounds of internal tissue. In this case, the tubular drainage foil is applied to the wound, and the tubular drainage foil provides drainage function and a very smooth surface to prevent adhesion or friction between the tissue and the foil.

[0081] The tubular drainage foil or wound care kit according to the present invention can be anatomically preformed, but it can also be configured to be adjustable to specific situations. When used in combination with negative pressure therapy, the tubular drainage foil according to the present invention can be filled with a filling medium such as gauze or foam, or a wound care kit and / or drainage tube can be inserted. The tube used to drain exudate or for wound drainage may be led from inside the body, for example from the abdominal cavity, and connected to a negative pressure source, which may be provided by a pump or, in a hospital, by central home care. Using a negative pressure source, the exudate can then be removed from the wound by a tubular drainage foil or wound care kit according to the present invention, resulting in good exudate control.

[0082] In the medical application of the tubular drainage foil or wound care kit according to the present invention, the following advantages can be obtained. - Openings that allow the passage of bodily fluids help remove exudate and prevent backflow of exudate into the wound space (capillary action). - The tubular drainage foil prevents adhesion of tissue or cells to the wound base, or to surrounding tissue. - Tubular drainage foils or wound care kits can be adapted to any size or structure of the wound area without impairing drainage function, thus enabling the care of complex wounds.

[0083] The present invention also relates to a method for caring for a wound, characterized by bringing a tubular drainage foil or a wound care kit according to the present invention into contact with a patient's wound. In particular, the tubular drainage foil or wound care kit is brought into contact with the patient's wound so that bodily fluids, such as exudate or blood, can flow out of the wound into the tubular drainage foil or wound care kit. The tubular drainage foil and wound care kit according to the present invention enable the effective drainage or aspiration of bodily fluids, particularly blood or wound fluid, from the wound. The method for caring for a wound according to the present invention has the advantage that bodily fluids are effectively aspirationed and the penetration of bacteria or other pathogens into the wound area is prevented.

[0084] Methods for wound care may also be methods for draining wounds. Methods for wound care include all medical fields and all areas of the body, for example, intraluminal applications, gynecological or urological applications, and applications in thoracic, visceral and / or hip surgery. As described above, the length and / or outer diameter of the tubular drainage foil or wound care kit can be adapted to the requirements of each wound area; for example, a small outer diameter can be used for intraluminal applications in the gastrointestinal tract. The methods for wound care according to the present invention can be used for any area of ​​the body and any wound, since the shape of the tubular drainage or wound care kit can be adapted according to the shape of each area of ​​the body, wound, or required drainage area.

[0085] The present invention provides tubular drainage foils or wound care kits having any shape, any size, and any outer diameter suitable for any wound or any medical application. For example, the tubular drainage foil may be round or cylindrical, or it may be configured as a flat tubular drainage foil, particularly a flat drainage foil, for example, for application in the gastrointestinal tract or fistula. Furthermore, the tubular drainage foil can be provided in any dimensions.

[0086] The method for wound care according to the present invention has advantages over other methods for wound care, such as the fact that the tubular drainage foil adheres less to tissue compared to absorbents such as polyurethane foam, resulting in a reduced risk of injury and bleeding. Therefore, the method according to the present invention is suitable for sensitive body parts, such as areas of blood vessels or pre-injured tissue, and for patients at high risk of bleeding. Furthermore, the tubular drainage foil or wound care kit can be used, which can be used for a wider range of applications to address anatomical and drainage requirements in the wound area. [Brief explanation of the drawing]

[0087] The present invention is described below with reference to the drawings, which expressly refer to all details essential to the invention that are not further emphasized in the specification. [Figure 1] This is a schematic diagram of an ultrasonic welding apparatus. [Figure 2] This is a schematic diagram of a drilling device. [Figure 3] This is a schematic diagram of a device for inverting a tubular drainage foil. [Figure 4] This is a schematic diagram of the folding or winding technique, in which the drainage foil is folded around the fold line 37, or the drainage foil is wound around the winding shaft such that it has an overlapping region that can be connected to the connecting line. [Figure 5] This is a schematic diagram of a self-adhesive drainage foil that can be used as a tubular drainage foil by being rolled up or folded. [Figure 6] This is a schematic diagram of a self-adhesive drainage foil that can be used as a tubular drainage foil by, for example, wrapping it around a drainage tube or folding it. [Figure 7] This is a schematic diagram of the connecting lines, particularly the welded joints. [Figure 8] This is a schematic diagram showing the attachment of reinforcing elements to the drainage foil. [Figure 9] This is a schematic diagram of an insertion aid. [Figure 10] This diagram shows the process of winding up a tubular drainage foil and a schematic diagram of the wound-up tubular drainage foil. [Figure 11] This is a schematic diagram of a tubular drainage foil made of an elastic material. [Figure 12] This is a schematic diagram of a tubular drainage foil with edges reinforced by folding. [Figure 13] This is a schematic diagram of a tubular drainage foil. [Figure 14] This is a schematic diagram of a tubular drainage foil equipped with a tube. [Figure 15] This is a schematic diagram of a tubular drainage foil equipped with a tube and an absorbent. [Figure 16] This is a schematic diagram of a tubular drainage foil equipped with a tube. [Modes for carrying out the invention]

[0088] The ultrasonic welding apparatus shown in Figure 1 can be used to manufacture a tubular drainage foil 3a according to the present invention. For example, the ultrasonic welding apparatus can be used to manufacture a tubular drainage foil 3a by simultaneous punching and welding, in which, as a result of ultrasonic welding, overlapping materials are joined in the overlapping region to form a connecting line 11, and at the same time, the edge strip of residual material is removed. The double-walled drainage foil 3b is inserted into the base 4 in a folded state and fixed in place.

[0089] As an ultrasonic welding die 1, for example, an L-shaped ultrasonic welding die 1 is located within a bracket 2 positioned above the base 4. A generator provides the necessary voltage to the welding die 1. The welding die 1 moves downward and welds the contour of the tubular drain foil 3a. When the welding operation is complete, the bracket 2 returns to its starting position. The tubular drain foil 3a can then be removed. The left diagram shows a plan view of the ultrasonic welding apparatus, and the right diagram shows a side view.

[0090] The perforation apparatus shown in Figure 2 can be used to manufacture the drain foil 3 according to the present invention. The provided double-walled drain foil 3b is inserted into the lower die half of the punching tool with one side folded. A heated, integrated cutting tool is positioned in the lower die half of the punching tool. Punching is started by lowering the upper die half. In the same operation, the hot, sharp cutting element 5 welds the cutting edge of the drain foil 3b, separating the cutting edge, resulting in a tubular drain foil 3a with a welded seam 6. The foil residue 7 is removed by punching. The die can then be opened by moving the upper die half upward, allowing the tubular drain foil 3a to be removed.

[0091] The apparatus shown in Figure 3 can be used to invert a tubular drainage foil 3a. First, the tubular drainage foil 3a is manufactured by one of the above methods, for example, by welding overlapping regions to form a connecting line 11. For use in wound areas, it has been found to be particularly advantageous if the connecting line 11 has a smooth surface on the outside of the tubular drainage foil 3a, especially to prevent tissue adhesion. To generate a smooth surface on the welded seam 6, the tubular drainage foil 3a can be inverted from the inside out, so that the side surface 10 of the connecting line 11 that was facing away from the fold line, especially the fold line, is positioned on the side surface 12 of the connecting line 11 that is facing the fold line, especially the fold line, after inversion. The tubular drainage foil 3a is pulled onto the upper movable ram 8 of the illustrated apparatus in order to flip or invert it. The sleeve 9 then moves further over the movable ram 8, and with the help of the rigid counter ram 13, rotates the tubular drainage foil 3a.

[0092] The folding or winding techniques shown in Figure 4 can be used to position the drainage foil 3 planarly around the winding shaft 27, for example, on the tip of the tube 16, or to fold it over the tube 16. For example, the drainage foil 3 is formed by winding it around the winding shaft 27, is connectable to the connecting wire 11, and can be wound around the winding shaft 27 such that the drainage foil 3 has overlapping regions where at least two layers exist. The overlapping regions can then be connected or fixed, for example, by adhesive 14, or by connecting means such as clamps, joints, or annular coating aids, in order to obtain a tubular drainage foil 3a.

[0093] The self-adhesive drainage foil 3 shown in Figure 5 can be fixed to any desired structure, for example, a body part, surgical device, absorbent, tube, wire, stent, insertion aid 22, and / or device for negative pressure therapy. Using an adhesive 14 attached to the drainage foil 3, particularly an adhesive, tack, and / or one or more barbed hook fasteners 15, the drainage foil 3 can be wrapped around or folded around another structure, and in particular, fixed to the structure or around the structure in a tubular shape. Such a drainage foil 3 can be used as a self-adhesive tubular drainage foil 3a, which has the advantage of being able to adapt in place to structural requirements, such as the size of the wound cavity.

[0094] While the drainage foil 3 is wrapped around a corresponding structure, for example, around a drainage tube, the adhesive or adhesive portion of the drainage foil 3 can be fixed to another portion of the drainage foil 3. If the drainage foil 3 thus fixed to the structure must withstand particularly high mechanical loads, the drainage foil 3 can be additionally fixed by seams as needed. According to the present invention, the drainage foil 3 may have one or more adhesive portions, in particular the adhesive 14 may be attached to one portion, or the adhesive 14, for example, two complementary components of hook-and-loop fasteners 15a, 15b may be attached to two or more portions that can thereby be attached to each other.

[0095] Figure 6 shows a self-adhesive drainage foil 3 having an adhesive 14, which can be wrapped around a tube 16 or probe and thus used as a tubular drainage foil 3a. Figure 7 shows a schematic diagram of the welded seam 6 between the connecting line 11, particularly between the first element 17 and the second element 18, for example between the first web-like element and the second web-like element or between the first tubular element and the second tubular element. Detail A shows the tapering of the wheel thickness due to the connection, particularly the welding process. The wheel is compressed in the region of the connecting line 11, particularly at the welded seam 6. By compressing the double-walled drainage wheel 3b in the region of the connecting line 11 and the cutting wheel angle, a shape-dependent angle α is generated between the edge of the connecting line 11 and the outer interface 28 of the tubular drainage wheel 3a.

[0096] The connecting lines 11 of the perforated drainage foil 3, such as the welded seams 6, can represent a critical point of the product in terms of the foil's stability. The tubular drainage foil 3a according to the present invention can be reinforced with additional material in order to equip it with an open drainage space 20 having particularly excellent strength characteristics, and in particular to improve the strength of the connecting lines 11, such as the welded seams 6. Figure 8 shows a schematic diagram of the attachment of a reinforcing element 29 to a drainage foil 3 comprising a first element 17 and a second element 18, for example, by welding to a cut foil 19. In particular, unperforated polyethylene foil can be used as the additional material or as the reinforcing element 29. The foil layer may be made of polyethylene so that an additional foil layer, for example, an additional, particularly unperforated polyethylene foil, can be welded to the drainage foil 3 particularly effectively.

[0097] As a result of additional welding, particularly of non-perforated polyethylene foil, more material flows into the holes of the drainage foil 3 in the area of ​​the connecting line 11, for example, during welding, stabilizing the holes, and as a result, superior strength is achieved. Such reinforcing elements 29, for example polyethylene foil, significantly increase the tensile load of the welded seam 6. To attach the reinforcing elements 29, the reinforcing elements, for example additional polyethylene foil, are placed on the drain foil 3 and then folded. During connection, for example ultrasonic welding, the reinforcing elements 29 are connected to the drain foil 3 in the overlapping area, resulting in the creation of a connection line 11, in particular a stable welded seam 6. The remaining material 21 of the reinforcing elements 29, for example residual polyethylene foil, can then be removed, for example, manually or mechanically, in the area of ​​the connection line 11, in particular the area of ​​the welded seam 6. The reinforcing elements 29, for example polyethylene foil, can be provided so that they are present only in the connection line 11, in particular the welded seam 6.

[0098] The tubular drainage foil 3a with the insertion aid 22 shown in Figure 9 simplifies the use of the drainage foil 3. Various materials can be used as the insertion aid 22, such as textiles or plastics with low friction against plastic, for example, microrough textiles. The insertion aid 22 can be applied to the tube 16 (left side in Figure 9), directly integrated into the drainage foil 3a, or included in the lumen of the tubular drainage foil 3a (right side in Figure 9). For example, the insertion aid 22 can be placed on a tube, such as a drainage tube or probe (left side in Figure 9). The tubular drainage foil 3a may have a closed tube end, for example, when the tube 16 is covered with the tubular drainage foil 3a.

[0099] It has been found that having a predetermined break point 23 at such a closed tube end is advantageous for several applications. The predetermined break point 23 allows the insertion aid 22 to be removed by applying force. The insertion aid 22 may also be tubular in shape, having two open tube ends (right side in Figure 9). With regard to manufacturing techniques, it has been found to be particularly advantageous if the insertion aid 22 is already incorporated into the tubular drainage foil 3a during its manufacture. For easy handling of the insertion aid 22, it has been found to be preferable that the insertion aid 22 is longer than the tubular drainage foil 3a, and that the insertion aid 22 protrudes from and is grippable at the tube end of the tubular drainage foil 3a. After the tubular drainage foil 3a or the tube covered by the tubular drainage foil 3a has been inserted into the wound area, the insertion aid 22 can be removed by simple withdrawal.

[0100] Figure 10 shows the process of winding up a tubular drainage foil 3a to obtain a wound-up tubular drainage foil 3a. Partially or completely wound up tubular drainage foil 3a has the advantage of being able to be efficiently packaged in an environmentally friendly way, particularly by saving material. Furthermore, it has the advantage that the user can easily roll the tubular drainage foil 3a over a structure, such as a tube 16, especially a drainage tube or probe, to cover the structure with the tubular drainage foil 3a.

[0101] To wind up the tubular drainage foil 3a, part or all of the tubular drainage foil 3a can be wound up along the longitudinal tube axis 30, starting from the tube opening at the tube end. In particular, the tubular drainage foil 3a can be wound up part or all of the tubular drainage foil 3a, starting from the inner interface in the direction of the outer interface 28 and winding up along the longitudinal tube axis 30.

[0102] Figure 11 shows a tubular drainage foil 3a having an elastic material. The tubular drainage foil 3a may have, for example, an elastic foil 24 or an elastic joint 25, in particular a joint made of an elastic material. By integrating the elastic material into the tubular drainage foil 3a, the elasticity of the tubular drainage foil 3a can be increased, especially when the double-walled drainage foil 3b used to form the tubular drainage foil 3a is made of a slightly expandable material. A tubular drainage foil 3a having elastic material can be formed by connecting the double-walled drainage foil 3b and the elastic material along the overlapping region of the drainage foil 3b and the elastic material. By integrating the elastic material, such as a strip or elastic joint 25 of elastic foil 24, the tubular drainage foil 3a can be expanded particularly well, and as a result, it becomes easier to apply, for example, to a drainage tube.

[0103] Figure 12 shows a side view of a tubular drainage foil 3a whose edges are reinforced by folding. This tubular drainage foil 3a can be formed by providing reinforced regions at one or both ends of the tube in the circumferential direction. From a production technology standpoint, it has been found that it is particularly efficient to fold a portion of the tubular drainage foil 3a at the tube end to form a reinforced region, where the folding is performed in such a manner that the tubular elements forming the inner interface of the tubular drainage foil 3a form the outer interface 28 of the tubular drainage foil 3a in the reinforced region. The marked edge region 26 of the tube opening can be folded outward, thereby creating a double wall and reinforcing the edge of the tubular drainage foil 3a. The folded edge can be secured at points, for example, by seams. Tearing of the tubular drainage foil 3a is effectively prevented by the reinforced edge.

[0104] Figure 13 shows various embodiments of the tubular drainage foil 3a according to the present invention. In particular, the tubular drainage foil 3a may have a tube opening 32 or an open tube end at one end of the tube and a closed tube end 33 at the other end of the tube. The tubular drainage foil 3a may also have tube openings 32 at both ends of the tube. The tubular drainage foil 3a may further have reinforcing elements 29, such as folded edges.

[0105] Figure 14 shows a side view of a tubular drainage foil 3a having a tube 16, which may be provided together as a wound care kit 34. Figure 15 shows a side view of a tubular drainage foil 3a having a tube 16 and an absorbent 35, which may be provided together as a wound care kit 34. Figure 16 shows a side view of a drainage foil 3, such as a tubular drainage foil 3a, which has a tube 16 and a connecting means 36, such as an annular application aid or clamp, which may be provided together as a wound care kit 34. [Explanation of Symbols]

[0106] Code List 1 Welding die 2 brackets 3. Drainage foil 3a Tubular drainage foil 3b Double drainage foil 4 base 5 Cutting elements 6. Welded joint 7. Foil residue 8 Ram 9 sleeves 10 The side of the connecting line opposite the fold line, especially the fold line 11 connecting wires 12. The side of the connecting line facing the fold line, especially the fold line 13 Corresponding RAM 14 Adhesives 15-sided fastener 15a, 15b Folding fasteners 16 tubes 17. The first element 18. Second element 19 Cutting foil 20 Drainage space 21 Residual substances 22 Insertion aid 23. Predetermined fracture point 24 Elastic Foil 25 Elastic joint 26 Edge area 27 Winding shaft 28 Outer interface of tubular drainage foil 29 Reinforcement elements 30 Tube shaft 31 Inner interface of tubular drainage foil 32 Tube opening 33 Closed tube end 34 Wound Care Kit 35 Absorbent 36 Connection means

Claims

1. A method for manufacturing a double-walled drainage foil having an open drainage space, i) A step of providing a first web-like element and a second web-like element, ii) A step of perforating a first web-like element and a second web-like element, wherein at least one opening, preferably a plurality of openings that allow the passage of bodily fluids, is formed in each of the first web-like element and the second web-like element, iii) The step of placing the first web-like element on the second web-like element such that the first web-like element and the second web-like element are arranged in approximately parallel positions, iv) A method comprising the step of connecting a first web-like element and a second web-like element by ultrasonic welding at at least one fastening region, particularly at least one point fastening region, to obtain a double-walled drainage foil having an open drainage space formed between the first web-like element and the second web-like element, v) A method characterized by including a step of forming a tubular structure from the drainage foil.

2. The method according to claim 1, wherein at least one opening that allows the passage of bodily fluids has a diameter in the range of 100 μm to 2000 μm, preferably in the range of 300 μm to 700 μm, and more preferably in the range of 400 μm to 600 μm.

3. The method according to claim 1 or 2, wherein in step iv), the first web-like element and the second web-like element are connected by a number of fastening regions, preferably formed in a grid arrangement, and preferably, in each case, the distance between adjacent fastening regions is 2 mm or more, preferably 3 mm or more, more preferably 5 mm or more.

4. The aforementioned drainage foil has a density of 30 g / m². 2 ~90g / m 2 Preferably 40 g / m 2 ~80g / m 2 More preferably 50 g / m 2 ~70g / m 2 The method according to claim 1 or 2, having a basis weight within the range of [specified range].

5. The drainage foil has a tensile strength of 7 N / 25.4 mm or more, an elongation at break of 40% or more, and a length of 75 m. 3 / m 2 The method according to claim 1 or 2, having a porosity of 0.5 N / 25.4 mm or more, and / or a bond strength of 0.5 N / 25.4 mm or more.

6. The method according to claim 1 or 2, wherein at least one opening that allows the passage of bodily fluids is round, circular, and / or elliptical, in particular with respect to the planar extent of the first or second web-like element.

7. The method according to claim 1 or 2, wherein the method includes the step of attaching an adhesive, in particular an adhesive, an adhesive material and / or a hook-and-loop fastener, in particular one or more spikes, to the drainage foil.

8. The method according to claim 1 or 2, wherein step ii) is performed before or after step iii), and / or step iv) is performed after step iii) and before or after step ii).

9. The step of forming a tubular structure is: a) A step of folding the drain foil around a fold line such that the drain foil has overlapping regions that can be connected to form a connecting line, preferably the drain foil having a first edge and a second edge extending substantially parallel to the first edge, and the drain foil being folded along the fold line onto the drain foil itself such that the drain foil has overlapping regions along the first edge and the second edge that can be connected to a connecting line. b) The method of claim 1 or 2, comprising the step of connecting drainage foils along overlapping regions, wherein a connecting line is formed.

10. Further comprising the step of providing an elastic material, a) A step of positioning the first edge of the drainage foil on the elastic material such that an overlapping region is formed between the first edge of the drainage foil and the elastic material, which can be connected to a connecting line, b) A step of connecting the drainage foil and the elastic material along the overlapping region between the first edge of the drainage foil and the elastic material to form a connecting line, c) Folding the drainage foil onto the elastic material around a fold line, forming an overlapping region connected to a connecting line between the second edge of the drainage foil, preferably extending substantially parallel to the first edge, and the elastic material; d) The method of claim 1 or 2, comprising the step of connecting the drainage foil and the elastic material along an overlapping region between the second edge of the drainage foil and the elastic material, wherein a connecting line is formed.

11. The step of forming a tubular structure is: a) A step of winding a drainage foil around a winding shaft such that the drainage foil has an overlapping region, the overlapping region being formed by winding around the winding shaft and being connectable to a connecting wire, and the drainage foil being in at least two layers, b) The method of claim 1 or 2, preferably comprising the step of connecting a first layer and a second layer of drainage foil present in at least two layers within an overlapping region by an adhesive or connecting means, preferably the step of forming a connecting line.

12. The method according to claim 9, characterized in that the connecting step is carried out by welding, in particular ultrasonic welding or laser welding, thermal bonding, in particular UV or hot air, adhesive, in particular adhesive or hook-and-loop fastener, and / or connecting means, in particular clamp.

13. The method according to claim 9, wherein the connecting step is performed by ultrasonic welding, preferably at a speed in the range of 0.1 to 5.0 m / min, an output in the range of 50 to 500 watts, and / or a pressure in the range of 5 N to 100 N.

14. The method according to claim 9, wherein the connecting step includes the step of placing the drainage foil inside an ultrasonic welding apparatus, and the step of welding the drainage foil in particular with a welding die, for example an L-shaped welding die, to form a tubular drainage foil.

15. The method according to claim 9, wherein the connecting step is performed by ultrasonic welding using a cutting wheel having a cutting edge radius of 0.2 mm or less, and / or using a cutting wheel having a grinding angle of 15° or less opposite to the fold, and / or using a cutting wheel having a grinding angle of 75° or less on the opposite side of the fold.

16. The method according to claim 9, wherein the edge strip of the drainage foil, which is positioned on the opposite side of the fold of the connecting line, is removed, in particular by punching, during or after connection.

17. The method according to claim 9, wherein the connecting wire, preferably a welded joint, has a width of 2 mm or less, preferably 1 mm or less, and more preferably 0.5 mm or less, along the circumferential direction of the tubular drainage foil.

18. The method according to claim 9, wherein the connecting line, preferably the welded joint, has a thickness of 1 mm or less, preferably 750 μm or less, and more preferably 450 μm or less, along the radial direction of the tubular drainage foil.

19. The method according to claim 9, which preferably includes the step of attaching the reinforcing element, in particular a reinforcing strip or reinforcing foil, to the area of ​​the connecting line and / or to at least one tube end by positioning the reinforcing element in the overlapping area before the connection step.

20. The method according to claim 19, wherein the reinforcing element is foil, preferably polyethylene foil.

21. The tubular drainage foil is formed circumferentially at at least one tube end having a reinforcing region, and the drainage foil is present in at least two layers. The method according to claim 9, wherein the reinforced region is preferably formed by folding a portion of the tubular drainage foil at the end of the tube, the folding being carried out in particular such that the tubular elements forming the inner interface form the outer interface of the tubular drainage foil in the reinforced region.

22. The method according to claim 9, wherein at least a portion of the tubular drainage foil is wound up along the longitudinal axis of the tube, starting from the tube opening at the end of the tube, and in particular, is wound up along the longitudinal axis of the tube in the direction of the outer interface, starting from the inner interface.

23. The method according to claim 9, wherein, after connection, the side of the connecting line facing the fold line is completely rotated outward by inverting the tubular drainage foil.

Citation Information

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