NONMETALLIC CONDUCTIVE GEOTEXTILE AND GEOCOMPOSITE
20190055710 ยท 2019-02-21
Inventors
Cpc classification
B32B5/26
PERFORMING OPERATIONS; TRANSPORTING
B32B2307/714
PERFORMING OPERATIONS; TRANSPORTING
H01B12/00
ELECTRICITY
B32B2255/02
PERFORMING OPERATIONS; TRANSPORTING
D01F1/09
TEXTILES; PAPER
D06M15/227
TEXTILES; PAPER
D06M23/08
TEXTILES; PAPER
B32B2250/20
PERFORMING OPERATIONS; TRANSPORTING
B32B5/028
PERFORMING OPERATIONS; TRANSPORTING
D06M2101/20
TEXTILES; PAPER
D06M11/74
TEXTILES; PAPER
B32B2262/106
PERFORMING OPERATIONS; TRANSPORTING
D06N3/0063
TEXTILES; PAPER
H01B5/14
ELECTRICITY
B32B2262/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
H01B1/04
ELECTRICITY
B32B5/02
PERFORMING OPERATIONS; TRANSPORTING
H01B12/00
ELECTRICITY
H01B5/14
ELECTRICITY
D06M11/74
TEXTILES; PAPER
B32B5/26
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A nonmetallic conductive geotextile and a geocomposite. The nonmetallic conductive geotextile comprises a geotextile and a nonmetallic conductive structure, the nonmetallic conductive structure comprising one of carbon nanotube, graphene, superconductive carbon black or a combination thereof, wherein the nonmetallic conductive structure may be conductive coating which is coated onto the surface of the geotextile; the nonmetallic conductive structure may also be a conductive fiber, and when producing the geotextile, the conductive fiber is added and connected into the geotextile to form a nonmetallic conductive blended geotextile; the nonmetallic conductive structure may also be a conductive sewing thread, and when producing the geotextile, the conductive sewing thread is sewn onto a nonwoven fabric at regular intervals to form a nonmetallic conductive geotextile; and the geocomposite comprises a geonet and the nonmetallic conductive geotextile bonded to one surface or two surfaces of the geonet.
Claims
1. A nonmetallic conductive geotextile, characterized in that the nonmetallic conductive geotextile comprises a geotextile and a nonmetallic conductive structure connected with the geotextile, and the nonmetallic conductive structure comprises one of carbon nanotube, graphene, superconductive carbon black or a combination thereof.
2. The nonmetallic conductive geotextile according to claim 1, characterized in that the nonmetallic conductive structure is a conductive coating formed by mixture of one of carbon nanotube, graphene, superconductive carbon black or a combination thereof, and a binder, and the conductive coating is coated onto one surface or two surfaces of the geotextile.
3. The nonmetallic conductive geotextile according to claim 2, characterized in that the conductive coating is coated onto the surface of the geotextile by means of spray coating, roller coating, roll coating, dip coating or brush coating to form a uniform conductive layer.
4. The nonmetallic conductive geotextile according to claim 2, characterized in that the surface resistivity of the conductive coating is smaller than 10.sup.5 ohms/square area.
5. The nonmetallic conductive geotextile according to claim 1, characterized in that the nonmetallic conductive structure is a conductive sewing thread formed by high-molecular polymer added with one of the carbon nanotube, the graphene, and the superconductive carbon black or a combination thereof, or is a conductive sewing thread formed by a common sewing thread which is dip-coated with a high-molecular polymer added with one of the carbon nanotube, the graphene, superconductive carbon black or a combination thereof; and when producing the geotextile, the conductive sewing thread is sewn onto a nonwoven fabric at regular intervals to form a nonmetallic conductive geotextile.
6. The nonmetallic conductive geotextile according to claim 5, characterized in that the sewing distance of the conductive sewing thread on the nonwoven fabric is 1 mm-500 mm; and the surface resistivity of the conductive sewing thread is smaller than 10.sup.5 ohms/square area.
7. The nonmetallic conductive geotextile according to claim 1, characterized in that the nonmetallic conductive structure is a conductive fiber formed by one of the carbon nanotube, the graphene, the superconductive carbon black or a combination thereof, and plastic particles; and when producing the geotextile, the conductive fiber is added and connected into the geotextile to form a nonmetallic conductive blended geotextile.
8. The nonmetallic conductive geotextile according to claim 7, characterized in that the content of the added conductive fiber is 5%-100%.
9. The nonmetallic conductive geotextile according to claim 7, characterized in that the surface resistivity of the nonmetallic conductive blended geotextile is smaller than 10.sup.5 ohms/square area.
10. A geocomposite, characterized in that the geocomposite comprises a geonet and the nonmetallic conductive geotextile according to claim 1 which is bonded to one surface or two surfaces of the geonet; and when the nonmetallic conductive geotextile is bonded onto one surface of the geonet, a metallic conductive geotextile or nonconductive geotextile is bonded onto the other surface of the geonet.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to more clearly describe the technical solution in the embodiment of the present invention, the drawings which need to be used in the description of the embodiments will be briefly described below. Obviously, the drawings described below are just some embodiments of the present invention. One skilled in the art may further obtain other drawings according to these drawings without contributing any creative work.
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
DESCRIPTION OF COMPONENT MARK NUMBERS
[0025] 100 Nonmetallic conductive geotextile [0026] 110 Geotextile [0027] 120 Conductive coating [0028] 130 Conductive fiber [0029] 200 Geocomposite [0030] 210 Geonet [0031] 300 Nonconductive geotextile [0032] 400 Conductive sewing thread [0033] 500 Nonwoven fabric
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0034] The implementation modes of the present invention will be described below through specific embodiments. One skilled in the art may easily understand other advantages and effects of the present invention according to the content disclosed by the description.
[0035] Please refer to
[0036] The purpose of the embodiment according to the present invention is to provide a nonmetallic conductive geotextile and a geocomposite, which are used for solving the problem that conductive geotextiles cannot resist acid and alkali and resist electrochemical corrosion when metals are used as conductive materials in the prior art. The principle and implementation modes of the nonmetallic conductive geotextile and the geocomposite provided by the present invention will be described below in detail such that one skilled in the art can understand the nonmetallic conductive geotextile and the geocomposite provided by the present invention without contributing any creative work.
Embodiment 1
[0037] Please refer to
[0038] Specially, as illustrated in
[0039] Herein, the conductive coating 120 is coated onto one surface or two surfaces of the geotextile 110.
[0040] The binder is a high-molecular binder and the content of the high-molecular binder is 1%-99%. The surface resistivity of the conductive coating 120 is required to satisfy a requirement of conductor. In this embodiment, the surface resistivity of the conductive coating 120 is smaller than 10.sup.5 ohms/square area.
[0041] In this embodiment, the conductive coating 120 is coated onto the surface of the geotextile by means of but not limited to spray coating, roller coating, roll coating, dip coating or brush coating to form a conductive layer stable and with uniform thickness.
[0042] In other words, in this embodiment, the nonmetallic conductive structure is made of carbon nanotube, graphene or superconductive carbon black with high conductive performance and a high-molecular binder. In this way, the nonmetallic conductive structure has excellent electrical performance and chemical corrosion resistance performance. The conductive material may be a single conductive material or mixture of several materials. Preferably, the conductive coating 120 is formed by the carbon nanotube and the high-molecular binder. Herein, for example, the high-molecular binder is acrylic, polyurethane or epoxy resin etc., and preferably is a water-borne acrylic binder. An addition ratio of the binder is within 5-80% and is conventionally 20-30%.
[0043] An implementation process of this embodiment is as follows: one of carbon nanotube, graphene, superconductive carbon black or a combination thereof is mixed with the high-molecular binder, and the mixture is coated onto the surface of the geotextile 110 by means of spray coating, roller coating, roll coating, dip coating or brush coating to form the uniform conductive coating 120, wherein the geotextile 110 may be an existing polypropylene geotextile, polyester geotextile or a geotextile 110 made from any other materials.
Embodiment 2
[0044] Please refer to
[0045] Specifically, in this embodiment, the nonmetallic conductive structure comprises one of carbon nanotube, graphene, superconductive carbon black or a combination thereof.
[0046] Specifically, as illustrated in
[0047] In other words, one of the carbon nanotube, the graphene, the superconductive carbon black or a combination thereof is added into the plastic particles to form the conductive fiber 130, and the conductive fiber 130 is blended with a common fiber to form a nonmetallic conductive blended geotextile.
[0048] Wherein, the content of the added conductive fiber 130 is 5%-10%. In other words, the geotextile 110 may be fully made of the conductive fiber 130 to form the nonmetallic conductive geotextile 100.
[0049] The surface resistivity of the formed nonmetallic conductive blended geotextile is required to satisfy requirement of conductor. In this embodiment, the surface resistivity of the nonmetallic conductive blended geotextile is smaller than 10.sup.5 ohms/square area. In other words, in this embodiment, the nonmetallic conductive structure is a conductive fiber 130 made from one of carbon nanotube, graphene, superconductive carbon black or a combination thereof. In this way, the nonmetallic conductive structure has excellent electrical performance and chemical corrosion resistance performance. The conductive material may be a single conductive material or mixture of several materials, a conductor fiber made of carbon nanotube is preferred.
[0050] An implementation process of this embodiment is as follows:
[0051] The conductive fiber 130 is made from one of carbon nanotube, graphene, superconductive carbon black or a combination thereof, and when producing the geotextile 110, the conductive fiber 130 is added, wherein the content of the added conductive fiber 130 is 5%-10%, such that the conductive fiber 130 is connected into the geotextile 110 to form a nonmetallic conductive blended geotextile.
Embodiment 3
[0052] This embodiment provides a nonmetallic conductive geotextile 100. The nonmetallic conductive geotextile 100 comprises a geotextile 110 and a nonmetallic conductive structure connected with the geotextile 110, and the geotextile 110 has a conductive function through the nonmetallic conductive structure. In this embodiment, a conductive material used for the geotextile 110 is a nonmetallic material, and the geotextile 110 made in this way has functions such as aging resistance, corrosion resistance, acid and alkali resistance and electrochemical corrosion resistance, and can be adapted to severe environments.
[0053] Specifically, in this embodiment, the nonmetallic conductive structure comprises one of carbon nanotube, graphene, superconductive carbon black or a combination thereof.
[0054] Specifically, as illustrated in
[0055] When forming the geotextile, the conductive sewing thread 400 is sewn onto a nonwoven fabric 500 at regular intervals to form a nonmetallic conductive geotextile.
[0056] In this embodiment, the conductive sewing thread 400 is formed in two ways as follows:
[0057] 1) One of the carbon nanotube, the graphene, the superconductive carbon black or a combination thereof with a high-molecular binder added is dip-coated onto the surface of a sewing thread, such that the sewing thread is conductive, thereby a conductive sewing thread 400 is formed, then the conductive sewing thread 400 is sewn onto the surface of a nonwoven fabric 500 at regular intervals to form a conductive geotextile.
[0058] 2) One of the carbon nanotube, the graphene, the superconductive carbon black or a combination thereof is added into a high-molecular plastic material, then a sewing thread is made through spinning to form a conductive sewing thread 400, and then the conductive sewing thread 400 is sewn onto the surface of a nonwoven fabric 500 at regular intervals to form a conductive geotextile.
[0059] The surface resistivity of the conductive sewing thread 400 is smaller than 10.sup.5 ohms/square area.
[0060] Wherein, the conductive sewing threads 400 are uniformly sewed on the nonwoven fabric 500, the distance between the conductive sewing threads 400 is between 1 mm-500 mm; if the distance between the conductive sewing thread 400 is too large, the leaking liquid may not immerse the conductive sewing threads 400, thereby leakage cannot be found in time; if the distance is too small, the cost of the product will be increased.
[0061] As illustrated in
[0062] Specifically, as illustrated in
Embodiment 4
[0063] As illustrated in
[0064] Specifically, as illustrated in
[0065] For another example, as illustrated in
[0066] In this embodiment, when the nonmetallic conductive geotextile 100 is bonded to one surface of the geonet 210, as illustrated in
[0067] In this embodiment, the geocomposite 200 is used between two layers of geomembranes in the dual-layer leakage-proof structure. For damage loophole detection after construction completion, the geocomposite 200 forms a uniform conductive layer such that the accuracy of loophole detection is improved. In long-term leakage detection system, monitoring electrodes can be directly arranged on the geocomposite 200, and the uniform conductive layer enables the sensitivity and accuracy of the long-term monitoring system to be kept higher. By using the geocomposite 200, the clay layer or other natural conductive material may not be used, and damage of the low layer geomembrane caused by constructing the clay layer will be avoided. By using the geocomposite 200, the leakage-proof structure layer becomes simple, and the damage loophole detection and long-term leakage monitoring after construction are more reliable.
[0068] To sum up, in the present invention, by connecting the nonmetallic conductive structure into the geotextile to form the nonmetallic conductive geotextile, the problem that geotextiles cannot resist acid and alkali and resist electrochemical corrosion when metals are used as conductive materials is avoided; in addition, in the present invention, by bonding the nonmetallic conductive geotextile onto the surface of the geonet to enable the geonet to form a uniform conductive layer; when the geonet is applied to the detection of damage loophole detection after construction completion, the accuracy of loophole detection can be effectively improved; and besides, the material is mainly used for the long-term monitoring system of the geomembrane leakage-proof structure. Therefore, the present invention effectively overcomes various disadvantages in the prior art and thus has a very great industrial utilization value.
[0069] The above-mentioned embodiments are just used for exemplarily describing the principle and effect of the present invention instead of limiting the present invention. One skilled in the art may make modifications or changes to the above-mentioned embodiments without departing from the spirit and scope of the present invention. Therefore, all equivalent modifications or changes made by those who have common knowledge in the art without departing from the spirit and technical thought disclosed by the present invention shall be still covered by the claims of the present invention.