Membrane
10570621 ยท 2020-02-25
Assignee
Inventors
Cpc classification
G01M3/40
PHYSICS
International classification
E04D13/00
FIXED CONSTRUCTIONS
E02D31/00
FIXED CONSTRUCTIONS
G01M3/40
PHYSICS
Abstract
A membrane 10 is a geomembrane 10, which takes the form of a non-conductive sheet 11. A conductive layer 13 is printed on to the sheet 11, in this instance in a geometric pattern of a rectangular grid. The lines of the grid 13 are conductive and connected to each other, with non-conductive gaps 15 disposed between the grid lines. Accordingly, a conductive linear network is formed, which has the requisite conductivity for leak detection.
Claims
1. A membrane comprising a non-conductive layer comprising a plastic material, and a first printed conductive layer formed on a first surface of the non-conductive layer, the non-conductive layer and the first printed conductive layer forming a sheet of the membrane, wherein the first printed conductive layer comprises a plurality of electrically isolated conductive regions isolated from each other by a non-conductive region of the first printed conductive layer disposed between each of the electrically isolated conductive regions, and wherein the non-conductive layer comprises a non-conductive border region between the first printed conductive layer and at least one edge of the membrane, the non-conductive border region allowing the sheet of the membrane and another sheet of the membrane to be welded together without interfering with conductivity of the respective sheet of the membrane and the another sheet of the membrane.
2. A membrane according to claim 1, wherein the membrane is a geomembrane.
3. A membrane according to claim 1, wherein the first printed conductive layer comprises metal.
4. A membrane according to claim 1, wherein the first printed conductive layer comprises carbon.
5. A membrane according to claim 1, wherein the plurality of electrically isolated conductive regions and the non-conductive region disposed between each of the plurality of electrically isolated conductive regions form a network of electrically isolated conductive regions, in which the network comprises a repeated geometric pattern.
6. A membrane according to claim 1, wherein the first printed conductive layer comprises one or more printed tiles and/or strips.
7. A membrane according to claim 6, wherein each tile or strip is separated by a gap.
8. A membrane according to claim 1, comprising a second printed conductive layer formed on a second surface of the non-conductive layer.
9. A membrane according to claim 8, wherein the first printed conductive layer comprises a repeated pattern and the second printed conductive layer comprises one or more printed tiles and/or printed strips.
10. A method of manufacturing a membrane comprising the steps of forming a non-conductive layer and printing a first conductive layer on a first surface of the non-conductive layer, wherein the first printed conductive layer comprises a plurality of electrically isolated conductive regions isolated from each other by a non-conductive region of the first printed conductive layer disposed between each of the electrically isolated conductive regions, and wherein the membrane comprises a non-conductive border region disposed between the first printed conductive layer and at least one edge of the membrane.
11. A method of manufacturing a membrane according to claim 10, wherein printing the first conductive layer comprises applying an ink to the first surface.
12. A method of manufacturing a membrane according to claim 11, wherein the ink comprises a metal.
13. A method of manufacturing a membrane according to claim 11, wherein the ink comprises carbon.
14. A method of manufacturing a membrane according to claim 11, wherein the ink is applied before the non-conductive layer has fully cooled after the forming thereof.
15. A method of manufacturing a membrane according to claim 11, further comprising treating the first surface so as to render it receptive to the ink.
16. A method of manufacturing a membrane according to claim 15, wherein the treating of the first surface comprises one or more of the application of a chemical, high temperature flame torch treatment and plasma surface activation.
17. A method of manufacturing a membrane according to claim 11, wherein the ink is applied by flexography or lithography or gravure printing processes.
18. A method of manufacturing a membrane according to claim 10, wherein the printing comprises printing a network of conductive lines.
19. A method of manufacturing a membrane according to claim 10, further comprising printing a second conductive layer on a second surface of the non-conductive layer.
Description
(1) For a better understanding of the invention, and to show how embodiments of the same may be carried into effect, reference will now be made, by way of example, to the accompanying diagrammatic drawings in which:
(2)
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(8) Like reference numerals are used to refer to like elements throughout the drawings.
(9)
(10) The lines of the grid 13 are conductive and connected to each other, with non-conductive gaps 15 disposed between the grid lines. Accordingly, a conductive linear network is formed, which has the requisite conductivity for leak detection.
(11) In one example, the gaps 15 each have dimensions of approximately 30 mm30 mm, though it will be understood that the dimensions may be varied depending on the sensitivity required. Furthermore, the thickness of the grid lines may similarly be varied.
(12) A border region 12 is provided between the conductive grid 13 and the edge of the membrane 10. In one example, the border region 12 has a width of approximately 30 to 80 mm. Accordingly, plural sheets of membrane 10 can be welded together, without interfering with the conductivity provided by the layer 13.
(13) In one example, a further conductive layer 13 is also printed on the rear side 14 of the sheet 11, so as to provide conductivity on both sides of the sheet.
(14)
(15) It will be further understood that the conductive layer 13 could take the form of various other patterns, including other geometric shapes, non-geometric shapes, and continuous blocks of conductivity. For example,
(16)
(17) In this case, the membrane 20 comprises four regions 23a-d, though it will be understood that the number of regions may be varied depending on the desired application. Each of the regions 23a-d forms an individual conductive region, not electrically connected to the other regions 23a-d. The regions are separated by non-conductive regions 25.
(18) In the example shown in
(19) A method of manufacturing the membrane 10 will now be described, with reference to
(20) Firstly, in step S31, the non-conductive sheet 11 that forms the basis of the membrane is formed.
(21) The non-conductive sheet 11 is formed from any suitable plastics material. For example, the sheet 11 may comprise one or more of the following materials: High-density polyethylene (HDPE); linear low-density polyethylene (LLDPE); flexible polypropylene (fPP); polyvinylchloride (PVC); ethylene interpolymer alloy (EIA); thermoplastic polyurethane (TPU); polyvinylidene fluoride (PVDF); chlorinated sulphonated polyethylene (CSPE); ethylene propylene diene monomer (EPDM) rubber; polychloroprene; butyl rubber, and nitrile rubber.
(22) The sheet 11 is formed by any suitable method, including by extrusion (e.g. by blown film or flat die), calendaring, spread coating or extrusion coating.
(23) Secondly, in step S32, the conductive pattern 13 is printed on to the sheet 11.
(24) In particular, the conductive pattern 13 printed by applying an electrically conductive ink thereto. The ink comprises a conductive component, which renders the ink conductive. The ink then dries, forming the conductive pattern. In one example, the pattern 13 is printed on one side of the sheet 11. In a further example, the pattern 13 is printed on both sides of the sheet 11. In one example, the pattern comprises a plurality of electrically isolated conductive regions.
(25) In one example, the ink comprises a metallic substance that renders the ink conductive. In a further example, the ink comprises carbon, which renders the ink conductive. In one example, the carbon is in the form of graphene.
(26) In one example, the ink is applied during the process of cooling of the non-conductive sheet 11 after formation, but before the sheet 11 is fully cooled. Accordingly, the surface energy of the sheet 11 is higher, and the ink applied thereto more successfully adheres to the sheet 10.
(27) In a further example, the ink is applied after the non-conductive sheet 11 has cooled. In one example, the cooled surface of the sheet 11 is energised so as to successfully receive the ink, for example by chemical treatment, high temperature flame torch treatment or plasma surface activation.
(28) In one example, the ink is applied to the sheet using one of flexography, lithography or gravure printing processes. It will be understood that the particular printing technique may be varied, and that any suitable method of printing the conductive pattern 13 could be employed.
(29) In use, the formed membrane 10 is installed in a location where leak detection is required. Plural sheets of the membrane 10 are arranged adjacent to one another, with a portion of their respective border regions 12 overlapping. The sheets 10 are then welded together in the border regions 12. Subsequently, the sheets 10 are connected to a suitable testing apparatus, allowing for the detection of leaks in the membranes 10.
(30)
(31) In one example, the first conductive layer 33A comprises a plurality of conductive tiles 35. In further examples, the first conductive layer 33A comprises a plurality of conductive strips (not shown). The tiles and/or stripes may be continuous regions of conductivity.
(32) In one example, the second conductive layer 33B comprises a continuous printed pattern. Whilst a printed grid pattern similar to that of membrane 10 of
(33) The membrane 30 finds particular utility in the containment of liquid (e.g. water), where the capacitance effect of the water make cause difficulties in leak detection. In use, current is applied to the second conductive layer 33B. When a leak (e.g. a hole) occurs in the geomembrane 30, the liquid creates an electrical connection between the second conductive layer 33B and the first conductive layer 33A. The provision of the tiles 35 (or alternatively stripes) on the first conductive layer 33A allows more precise identification of the leak, because the leak can be isolated to a particular tile thereby indicated a particular position or sector of the membrane 30 that has been damaged.
(34) Furthermore, the membrane 30 can also be electrically connected to provide homogenous surface conductivity. Accordingly, if both surfaces are connected and any conductive edges are clear of the ground so as to be isolated, an alert can be generated by a suitable detection system in the instance that there is a hole.
(35) It will be appreciated that the membrane describe herein is advantageously easy to install, because the installation of a separate conductive layer is not required. Furthermore, the border region provided allows welding between adjacent membrane sheets without introducing regions of conductivity thereto.
(36) It will be further appreciated that the use of graphene ink provides a flexible, optically transparent and electrically conductive pattern on the sheet, whilst providing benefits in terms of cost, environmentally stable, and reduced processing after printing.
(37) It will be still further appreciated that the method of manufacturing the membrane 10 described herein advantageously provides a flexible method of forming a conductive portion of a membrane, wherein the particular size, shape and pattern of the conductive portion can be easily adjusted depending on the particular operational requirements of the membrane.
(38) Attention is directed to all papers and documents which are filed concurrently with or previous to this specification in connection with this application and which are open to public inspection with this specification, and the contents of all such papers and documents are incorporated herein by reference.
(39) All of the features disclosed in this specification (including any accompanying claims, abstract and drawings), and/or all of the steps of any method or process so disclosed, may be combined in any combination, except combinations where at least some of such features and/or steps are mutually exclusive.
(40) Each feature disclosed in this specification (including any accompanying claims, abstract and drawings) may be replaced by alternative features serving the same, equivalent or similar purpose, unless expressly stated otherwise. Thus, unless expressly stated otherwise, each feature disclosed is one example only of a generic series of equivalent or similar features.
(41) The invention is not restricted to the details of the foregoing embodiment(s). The invention extends to any novel one, or any novel combination, of the features disclosed in this specification (including any accompanying claims, abstract and drawings), or to any novel one, or any novel combination, of the steps of any method or process so disclosed.