Antistatic composite board and manufacturing method thereof

By coating a PET substrate with a solution containing dispersant and carbon nanotubes, the optical property problem caused by the poor dispersibility of inorganic antistatic agents in antistatic boards is solved, and an antistatic composite board with high light transmittance and low haze is achieved.

CN121625577APending Publication Date: 2026-03-10NANYA PLASTICS CORP
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-09-11
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

Existing antistatic boards have optical properties affected by the addition of inorganic antistatic agents with poor dispersibility.

Method used

An antistatic composite board is formed by coating a PET film with a viscosity between 20 cps and 40 cps, using a coating solution containing polyurethane oligomers, antistatic agents and solvents, dispersants and carbon nanotubes.

Benefits of technology

The optical properties of the antistatic sheet material have been improved, maintaining high light transmittance and low haze, while also possessing good surface impedance.

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Abstract

The invention discloses an antistatic composite board and a manufacturing method thereof. The antistatic composite board comprises a PET substrate, a PET film and a coating, wherein the PET film is formed on one side of the PET substrate, and the coating is formed on the PET film by coating a coating liquid. The coating liquid comprises a polyurethane oligomer, an antistatic agent and a solvent. The antistatic agent comprises a dispersing agent and a plurality of carbon nanotubes dispersed in the dispersing agent. Based on 100 wt% of the total weight of the coating liquid, the content of the polyurethane oligomer is between 30 wt% and 40 wt%, the content of the antistatic agent is between 5 wt% and 20 wt%, and the content of the solvent is between 40 wt% and 60 wt%. The antistatic composite board has a light transmittance greater than or equal to 84%, a haze less than or equal to 4%, and a surface specific impedance less than or equal to 107 Omega. According to the antistatic composite board and the manufacturing method thereof, the problem that the optical property of an existing antistatic board is affected due to the fact that an inorganic antistatic agent with poor dispersity is added can be solved.
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Description

Technical Field

[0001] This invention relates to a composite board and its manufacturing method, and more particularly to an antistatic composite board and its manufacturing method. Background Technology

[0002] Existing antistatic sheets sometimes incorporate organic antistatic agents to enhance their antistatic properties. However, these agents have poor heat resistance and their antistatic properties are not long-lasting. Other existing antistatic sheets contain inorganic antistatic agents, but these agents have poor dispersibility, which can easily affect the optical properties of the antistatic sheet. Summary of the Invention

[0003] The technical problem to be solved by the present invention is to provide an antistatic composite board and its manufacturing method to address the shortcomings of the prior art, so as to effectively improve the problem that the optical properties of existing antistatic boards are affected by the addition of inorganic antistatic agents with poor dispersibility.

[0004] To solve the aforementioned technical problems, one technical solution adopted by the present invention is to provide an antistatic composite board, comprising: a PET substrate; a PET film formed on one side of the PET substrate; and a coating layer formed on the side of the PET film away from the PET substrate by applying a coating liquid; wherein the coating liquid has a viscosity between 20 cps and 40 cps, and the coating liquid comprises: a polyurethane oligomer; an antistatic agent; wherein the antistatic agent comprises a dispersant and a plurality of carbon nanotubes dispersed in the dispersant, and the carbon nanotubes are... The dispersant weight ratio can be between 99:1 and 99.9:0.1; and a solvent; wherein the solvent is propylene glycol methyl ether acetate (PMA); wherein, based on a total weight of 100 wt% for the coating liquid, the content of the polyurethane oligomer is between 30 wt% and 40 wt%, the content of the antistatic agent is between 5 wt% and 20 wt%, and the content of the solvent is between 40 wt% and 60 wt%; wherein the antistatic composite board has a light transmittance greater than or equal to 84%, a haze less than or equal to 4%, and a haze less than or equal to 10. 7 Ω is the surface impedance.

[0005] Optionally, the thickness of the PET substrate is between 1.5 mm and 2.5 mm, the thickness of the PET film is between 60 micrometers and 150 micrometers, and the thickness of the coating is between 2 micrometers and 8 micrometers.

[0006] Optionally, the length of each of the carbon nanotubes is between 5 micrometers and 8 micrometers, and the diameter of each of the carbon nanotubes is between 1.2 nanometers and 2 nanometers.

[0007] Optionally, the coating liquid further comprises a photoinitiator and a dispersant; wherein, based on a total weight of 100 wt% of the coating liquid, the content of the photoinitiator is between 0.1 wt% and 2 wt%, and the content of the dispersant is between 0.1 wt% and 3 wt%; wherein the photoinitiator is 1-hydroxycyclohexylbenzophenone, and the dispersant is selected from at least one of the materials group consisting of styrene-maleic anhydride copolymer and basic polymeric pigment dispersants.

[0008] Optionally, the antistatic composite board includes two PET films and two coatings, wherein the two PET films are disposed on both sides of the PET substrate, and each of the coatings is disposed on the side of one of the PET films away from the PET substrate.

[0009] To solve the above-mentioned technical problems, another technical solution adopted by the present invention is to provide a method for manufacturing an antistatic composite board, which includes: a mixing step, in which a polyurethane oligomer and an antistatic agent are added to a solvent and stirred at a speed between 600 rpm and 1,000 rpm for 5 to 15 minutes to obtain a coating liquid; wherein the coating liquid has a viscosity between 20 cps and 40 cps; wherein the antistatic agent comprises a dispersant and a plurality of carbon nanotubes dispersed in the dispersant, and the weight ratio of the carbon nanotubes to the dispersant can be between 99:1 and 99.9:0.1; and a coating step, in which the coating liquid is coated onto a PET film. A coating is formed on one side of the PET film; a heat-lamination step is performed to bond the PET film with the coating to a PET substrate at a temperature between 40°C and 70°C to form an antistatic composite board; wherein the solvent is propylene glycol methyl ether acetate (PMA); wherein, based on a total weight of 100 wt% of the coating liquid, the content of the polyurethane oligomer is between 30 wt% and 40 wt%, the content of the antistatic agent is between 5 wt% and 20 wt%, and the content of the solvent is between 40 wt% and 60 wt%; wherein the antistatic composite board has a light transmittance greater than or equal to 84%, a haze less than or equal to 4%, and a haze less than or equal to 10%. 7 Ω is the surface impedance.

[0010] Optionally, in the mixing step, a photoinitiator and a dispersant are further added; wherein, based on the total weight of the coating liquid being 100 wt%, the content of the photoinitiator is between 0.1 wt% and 2 wt%, and the content of the dispersant is between 0.1 wt% and 3 wt%; wherein, the photoinitiator is 1-hydroxycyclohexylbenzophenone, and the dispersant is selected from at least one of the materials group consisting of styrene-maleic anhydride copolymer and basic polymeric pigment dispersants.

[0011] Optionally, after the coating step and before the thermal bonding step, the method for manufacturing the antistatic composite board further includes a photocuring step, with a curing temperature between 500 mJ / cm². 2 Up to 1000mJ / cm 2 The light intensity is used to photocur the PET film on which the coating is formed.

[0012] Optionally, the length of each of the carbon nanotubes is between 5 micrometers and 8 micrometers, and the diameter of each of the carbon nanotubes is between 1.2 nanometers and 2 nanometers.

[0013] Optionally, the thickness of the PET substrate is between 1.5 mm and 2.5 mm, the thickness of the PET film is between 60 micrometers and 150 micrometers, and the thickness of the coating is between 2 micrometers and 8 micrometers.

[0014] One of the beneficial effects of the present invention is that the antistatic composite board and its manufacturing method provided by the present invention can effectively improve the problem of the optical properties being affected by the addition of inorganic antistatic agents with poor dispersibility in existing antistatic boards by means of the following technical solutions: "based on the total weight of the coating liquid being 100wt%, the content of the polyurethane oligomer being between 30wt% and 40wt%, the content of the antistatic agent being between 5wt% and 20wt%, and the content of the solvent being between 40wt% and 60wt%" and "the antistatic agent comprising a dispersant and a plurality of carbon nanotubes dispersed in the dispersant, and the weight ratio of the carbon nanotubes to the dispersant being between 99:1 and 99.9:0.1".

[0015] To further understand the features and technical content of the present invention, please refer to the following detailed description and drawings of the present invention. However, the drawings provided are for reference and illustration only and are not intended to limit the present invention. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of an antistatic composite board according to one embodiment of the present invention.

[0017] Figure 2This is a schematic diagram of an antistatic composite board according to another embodiment of the present invention.

[0018] Figure 3 This is a schematic diagram of a method for manufacturing an antistatic composite board according to one embodiment of the present invention.

[0019] Figure 4 This is a schematic diagram of a method for manufacturing an antistatic composite board according to another embodiment of the present invention.

[0020] Figure 5 This is a schematic diagram of a method for manufacturing an antistatic composite board according to another embodiment of the present invention. Detailed Implementation

[0021] The following specific embodiments illustrate the implementation of the "antistatic composite board and its manufacturing method" disclosed in this invention. Those skilled in the art can understand the advantages and effects of this invention from the content disclosed in this specification. This invention can be implemented or applied through other different specific embodiments, and various details in this specification can also be modified and changed based on different viewpoints and applications without departing from the concept of this invention. Furthermore, the accompanying drawings of this invention are for simple illustrative purposes only and are not depictions of actual dimensions; this is stated in advance. The following embodiments will further describe the relevant technical content of this invention in detail, but the disclosed content is not intended to limit the scope of protection of this invention.

[0022] It should be understood that while terms such as "first," "second," and "third" may be used in this document to describe various components or signals, these components or signals should not be limited by these terms. These terms are primarily used to distinguish one component from another, or one signal from another. Furthermore, the term "or" as used herein should, as appropriate, include any combination of one or more of the related listed items.

[0023] [Antistatic Composite Board]

[0024] See Figure 1 As shown, Figure 1 This is a schematic diagram of an antistatic composite board according to one embodiment of the present invention. The present invention provides an antistatic composite board 100. The antistatic composite board 100 includes a PET substrate 1, a PET film 2, and a coating 3. The PET film 2 is formed on one side of the PET substrate 1, and the coating 3 is formed on the side of the PET film 2 away from the PET substrate 1 by applying a coating liquid. The coating liquid has a viscosity between 20 cps and 40 cps.

[0025] In this embodiment, the PET substrate 1 can be formed, for example, by extruding PET masterbatch of Nan Ya Manufacturing (model 3842) using an extruder, and the five temperature zones of the extruder are 250°C, 260°C, 260°C, 260°C, and 260°C, respectively. After extrusion, the PET substrate 1 can be cooled by a first forming roller, a second forming roller, and a third forming roller, and formed at a take-up roller speed of 1 m / min. The temperature of the first forming roller is between 35°C and 45°C (optionally 40°C), the temperature of the second forming roller is between 35°C and 45°C (optionally 40°C), and the temperature of the third forming roller is between 60°C and 70°C (optionally 65°C). Furthermore, the PET film 2 can be, for example, a PET film of Nan Ya Manufacturing (model LL226), but the present invention is not limited thereto.

[0026] In this embodiment, the thickness of the PET substrate 1 is between 1.5 mm and 2.5 mm, the thickness of the PET film 2 is between 60 micrometers and 150 micrometers, and the thickness of the coating 3 is between 2 micrometers and 8 micrometers, but the present invention is not limited thereto. Optionally, the thickness of the PET substrate 1 is between 1.8 mm and 2.2 mm, the thickness of the PET film 2 is between 80 micrometers and 125 micrometers, and the thickness of the coating 3 is between 4 micrometers and 6 micrometers.

[0027] The coating liquid comprises a polyurethane oligomer, an antistatic agent, and a solvent. The solvent is propylene glycol methyl ether acetate (PMA). Based on a total weight of 100 wt% of the coating liquid, the content of the polyurethane oligomer is between 30 wt% and 40 wt%, the content of the antistatic agent is between 5 wt% and 20 wt%, and the content of the solvent is between 40 wt% and 60 wt%. Optionally, based on a total weight of 100 wt% of the coating liquid, the content of the polyurethane oligomer is between 32.5 wt% and 37.5 wt%, the content of the antistatic agent is between 10 wt% and 20 wt%, and the content of the solvent is between 45 wt% and 55 wt%.

[0028] The polyurethane oligomer can be, for example, a polyurethane acrylate oligomer (such as Dong-A Synthetic Manufacturing Co., Ltd., model TJ-UA2001). The antistatic agent comprises a dispersant and a plurality of carbon nanotubes dispersed in the dispersant, and the weight ratio of the carbon nanotubes to the dispersant can be between 95:5 and 99.9:0.1. Optionally, the weight ratio of the carbon nanotubes to the dispersant can be between 99:1 and 99.9:0.1.

[0029] In other words, the carbon nanotubes may be pre-dispersed in the dispersant to form the antistatic agent, thereby allowing the carbon nanotubes to be better dispersed in the coating liquid. The dispersant may be, for example, propylene glycol methyl ether acetate (PMA), but the invention is not limited thereto. Furthermore, the material of the dispersant may be the same as the material of the solvent, so that the antistatic agent can be better dispersed in the coating liquid.

[0030] In this embodiment, the length of each carbon nanotube is between 5 micrometers and 8 micrometers, and the diameter of each carbon nanotube is between 1.2 nanometers and 2 nanometers, but the invention is not limited thereto. Optionally, the length of each carbon nanotube is between 5.5 micrometers and 7.5 micrometers, and the diameter of each carbon nanotube is between 1.4 nanometers and 1.8 nanometers. The carbon nanotubes may be, for example, MATRIX 208 manufactured by TUBLALL™, but the invention is not limited thereto.

[0031] The coating liquid may further comprise a photoinitiator and a dispersant. Based on a total weight of 100 wt% of the coating liquid, the content of the photoinitiator is between 0.1 wt% and 2 wt%, and the content of the dispersant is between 0.1 wt% and 3 wt%. In this embodiment, the photoinitiator is 1-hydroxycyclohexylbenzophenone (such as Irgacure 184), and the dispersant is selected from at least one of the materials group consisting of styrene-maleic anhydride copolymers (such as BYK-2013) and basic polymeric pigment dispersants (such as Ajinomoto PB821), but the invention is not limited thereto.

[0032] The antistatic composite board 100 has a light transmittance of greater than or equal to 84%, a haze of less than or equal to 4%, and a light transmittance of less than or equal to 10%. 7 Ω surface resistivity. Optionally, the antistatic composite plate 100 has a light transmittance of between 84% and 88% and a haze of between 1% and 4%.

[0033] Please see Figure 2 As shown, Figure 2 This is a schematic diagram of an antistatic composite board according to another embodiment of the present invention. The antistatic composite board 100 includes two PET films 2 and two coatings 3. The two PET films 2 are disposed on both sides of the PET substrate 1, and each of the coatings 3 is disposed on the side of one of the PET films 2 away from the PET substrate 1.

[0034] [Manufacturing method of antistatic composite board]

[0035] Please see Figure 3 As shown, Figure 3This is a schematic diagram of a method for manufacturing an antistatic composite board according to one embodiment of the present invention. The present invention also provides a method for manufacturing an antistatic composite board. The aforementioned antistatic composite board can be obtained by performing the above-described method, but the present invention is not limited thereto. The method for manufacturing the antistatic composite board includes a mixing step S110, a coating step S120, and a thermal bonding step S130. Of course, the method for manufacturing the antistatic composite board may include other steps as needed, and the present invention is not limited thereto.

[0036] In the mixing step S110, a polyurethane oligomer and an antistatic agent are added to a solvent and stirred at a speed between 600 rpm and 1,000 rpm for 5 to 15 minutes to obtain a coating solution. Optionally, in the mixing step S110, the polyurethane oligomer, the antistatic agent, and the solvent are stirred at a speed of 700 rpm to 900 rpm (more preferably about 800 rpm). The coating solution has a viscosity between 20 cps and 40 cps. The solvent is propylene glycol methyl ether acetate (PMA). Based on a total weight of 100 wt% for the coating solution, the content of the polyurethane oligomer is between 30 wt% and 40 wt%, the content of the antistatic agent is between 5 wt% and 20 wt%, and the content of the solvent is between 40 wt% and 60 wt%.

[0037] Optionally, in the mixing step S110, the polyurethane oligomer may be mixed with a portion of the solvent to obtain a first solution, and the antistatic agent may be mixed with another portion of the solvent to obtain a second solution. The first solution and the second solution may then be mixed and stirred at a speed between 600 rpm and 1,000 rpm for 5 to 15 minutes to obtain the coating liquid. Furthermore, the weight ratio between the solution in the first solution and the solvent in the second solution may be, for example, between 1:1.5 and 1.5:1, but the invention is not limited thereto.

[0038] The antistatic agent comprises a dispersant and a plurality of carbon nanotubes dispersed in the dispersant, wherein the weight ratio of the carbon nanotubes to the dispersant may be between 99:1 and 99.9:0.1. The length of each carbon nanotube is between 5 micrometers and 8 micrometers, and the diameter of each carbon nanotube is between 1.2 nanometers and 2 nanometers.

[0039] Please see Figure 4 As shown, Figure 4This is a schematic diagram of a method for manufacturing an antistatic composite board according to another embodiment of the present invention. In the mixing step S110a of one embodiment, a photoinitiator and a dispersant are also added. Based on the total weight of the coating liquid being 100 wt%, the content of the photoinitiator is between 0.1 wt% and 2 wt%, and the content of the dispersant is between 0.1 wt% and 3 wt%. The photoinitiator is 1-hydroxycyclohexylbenzophenone, and the dispersant is selected from at least one of the materials group consisting of styrene-maleic anhydride copolymer and basic polymeric pigment dispersants. More specifically, the photoinitiator may be added to the first solution, and the dispersant may be added to the second solution, and then the first solution and the second solution are mixed and stirred to form the coating liquid. Thus, the antistatic agent can be more preferably dispersed in the coating liquid.

[0040] In the coating step S120, the coating liquid is applied to a PET film 2 to form a coating 3 on one side of the PET film 2. In the heat bonding step S130, the PET film 2 with the coating 3 formed is bonded to a PET substrate 1 at a temperature between 40°C and 70°C to form an antistatic composite board 100. The thickness of the PET substrate 1 is between 1.5 mm and 2.5 mm, the thickness of the PET film 2 is between 60 micrometers and 150 micrometers, and the thickness of the coating 3 is between 2 micrometers and 8 micrometers.

[0041] Please see Figure 5 As shown, Figure 5 This is a schematic diagram of a method for manufacturing an antistatic composite board according to another embodiment of the present invention. In one embodiment, after the coating step S120 and before the thermal bonding step S130, the method for manufacturing the antistatic composite board may further include a photocuring step S121, with a curing temperature between 500 mJ / cm². 2 Up to 1000mJ / cm 2 The light intensity is used to photocur the PET film on which the coating 3 is formed.

[0042] Furthermore, prior to the heat bonding step S130, the manufacturing method of the antistatic composite board may further include an extrusion molding step S122, in which PET masterbatch is extruded using an extruder, then cooled by a first molding roller, a second molding roller, and a third molding roller, and molded at a take-up roller speed of 1 m / min to form the PET substrate 1. The temperature of the first molding roller is between 35°C and 45°C (optionally 40°C), the temperature of the second molding roller is between 35°C and 45°C (optionally 40°C), and the temperature of the third molding roller is between 60°C and 70°C (optionally 65°C). The five temperature zones of the extruder are 250°C, 260°C, 260°C, 260°C, and 260°C, respectively.

[0043] The antistatic composite board 100 manufactured by the aforementioned method has a light transmittance greater than or equal to 84%, a haze less than or equal to 4%, and a light transmittance less than or equal to 10%. 7 Ω is the surface impedance.

[0044] [Experimental Data Testing]

[0045] The component ratio formulations and physicochemical property test results of the exemplary and comparative examples are shown in Table 1 below. The process parameters of the exemplary and comparative examples are shown in Table 2 below. The light irradiation test results of the exemplary examples are shown in Table 3 below. The relevant test methods are explained below.

[0046] Haze test: The test was conducted using a haze meter (model: NDK NDH7000) according to the ASRMD-1003 standard.

[0047] Surface resistivity test: The test was performed according to ASTM D-257 using a surface resistivity measuring instrument (model: OHM-STAT RT-1000).

[0048] Light transmittance test: The test was conducted using a haze meter (model: NDK NDH7000) according to the ASRMD-1003 standard.

[0049] Thickness measurement: Measured using a magnetic film thickness gauge (model: KETT LZ-990).

[0050] Pencil hardness test: The test was conducted according to JIS K 5400 standard using a pencil hardness tester (model: B-3084T3).

[0051] Abrasion resistance test: The abrasion tester (model: A20-339) is tested in the following two ways: (1) 1 kg pressure with a dust-free wiping cloth and 50% IPA is used to wipe back and forth 1500 times to test solvent resistance; (2) 1500 times is used to wipe back and forth with #0000 steel wool to test steel wool resistance.

[0052] Aging test: The optical properties of the samples were analyzed after they were irradiated with different light sources using a Cofomegra UV accelerated aging tester.

[0053] [Table 1. Component proportions and physicochemical property test results for the exemplary and comparative examples]

[0054]

[0055]

[0056]

[0057]

[0058]

[0059]

[0060] [Table 2 Process parameters for the exemplary and comparative examples]

[0061]

[0062] [Table 3: Results of a 1000-hour light exposure test for an example]

[0063] wavelength 313nm 340nm Xenon arc lamp Light transmittance (%) 84.43 84.31 85.01 Haze (%) 3.87 3.58 2.23

[0064] [Beneficial Effects of the Examples]

[0065] One of the beneficial effects of the present invention is that the antistatic composite board and its manufacturing method provided by the present invention can effectively improve the problem of the optical properties being affected by the addition of inorganic antistatic agents with poor dispersibility in existing antistatic boards by means of the following technical solutions: "based on the total weight of the coating liquid being 100wt%, the content of the polyurethane oligomer being between 30wt% and 40wt%, the content of the antistatic agent being between 5wt% and 20wt%, and the content of the solvent being between 40wt% and 60wt%" and "the antistatic agent comprising a dispersant and a plurality of carbon nanotubes dispersed in the dispersant, and the weight ratio of the carbon nanotubes to the dispersant being between 99:1 and 99.9:0.1".

[0066] The above-disclosed content is only an optional and feasible embodiment of the present invention, and is not intended to limit the claims of the present invention. Therefore, all equivalent technical changes made based on the description and drawings of the present invention are included in the claims of the present invention.

Claims

1. An antistatic composite sheet, characterized by, The antistatic composite board comprises: a PET substrate; a PET film formed on one side of the PET substrate; and a coating layer formed on the side of the PET film away from the PET substrate by coating a coating liquid; wherein the coating liquid has a viscosity between 20 cps and 40 cps, and the coating liquid comprises: a polyurethane oligomer; an antistatic agent, wherein the antistatic agent comprises a dispersant and a plurality of carbon nanotubes dispersed in the dispersant, and the weight ratio of the carbon nanotubes to the dispersant can be between 99:1 and 99.9:0.1; and a solvent, wherein the solvent is propylene glycol methyl ether acetate; wherein, based on the total weight of the coating liquid being 100 wt%, the content of the polyurethane oligomer is between 30 wt% and 40 wt%, the content of the antistatic agent is between 5 wt% and 20 wt%, and the content of the solvent is between 40 wt% and 60 wt%; The antistatic composite board has a light transmittance greater than or equal to 84%, a haze less than or equal to 4%, and a surface specific impedance of the Ω less than or equal to 10 7 Ω.

2. The antistatic composite board according to claim 1, characterized in that, the thickness of the PET substrate is between 1.5 mm and 2.5 mm, the thickness of the PET film is between 60 μm and 150 μm, and the thickness of the coating layer is between 2 μm and 8 μm.

3. The antistatic composite board according to claim 1, characterized by The length of each carbon nanotube is between 5 μm and 8 μm, and the diameter of each carbon nanotube is between 1.2 nm and 2 nm.

4. The antistatic composite board according to claim 1, characterized by The coating liquid further comprises a photoinitiator and a dispersant; wherein, based on the total weight of the coating liquid being 100 wt%, the content of the photoinitiator is between 0.1 wt% and 2 wt%, and the content of the dispersant is between 0.1 wt% and 3 wt%; wherein the photoinitiator is 1-hydroxycyclohexyl phenyl ketone, and the dispersant is at least one selected from the group consisting of styrene maleic anhydride copolymer and basic high molecular pigment dispersant.

5. The antistatic composite board according to claim 1, characterized by The antistatic composite board comprises two PET films and two coating layers, the two PET films are arranged on both sides of the PET substrate, and each coating layer is arranged on the side of one of the PET films away from the PET substrate.

6. A method of manufacturing an antistatic composite board, characterized by, The manufacturing method of the antistatic composite board comprises: a mixing step of adding a polyurethane oligomer and an antistatic agent into a solvent and stirring at a speed between 600 rpm and 1,000 rpm for 5 minutes to 15 minutes to obtain a coating liquid; wherein the coating liquid has a viscosity between 20 cps and 40 cps; wherein the antistatic agent comprises a dispersant and a plurality of carbon nanotubes dispersed in the dispersant, and the weight ratio of the carbon nanotubes to the dispersant can be between 99:1 and 99.9:0.1; a coating step of coating the coating liquid on a PET film to form a coating layer on one side of the PET film; a hot lamination step of laminating the PET film formed with the coating layer to a PET substrate at a temperature between 40°C and 70°C to form an antistatic composite board. The solvent is propylene glycol methyl ether acetate; wherein, based on the total weight of the coating liquid being 100 wt%, the content of the polyurethane oligomer is between 30 wt% and 40 wt%, the content of the antistatic agent is between 5 wt% and 20 wt%, and the content of the solvent is between 40 wt% and 60 wt%; The antistatic composite board has a light transmittance greater than or equal to 84%, a haze less than or equal to 4%, and a surface specific impedance of the Ω less than or equal to 10 7 Ω.

7. The method of manufacturing an antistatic composite sheet according to claim 6, characterized by, In the mixing step, a photoinitiator and a dispersant are also added; wherein, based on the total weight of the coating liquid being 100 wt%, the content of the photoinitiator is between 0.1 wt% and 2 wt%, and the content of the dispersant is between 0.1 wt% and 3 wt%; wherein, the photoinitiator is 1-hydroxycyclohexyl phenyl ketone, and the dispersant is at least one selected from the group consisting of styrene maleic anhydride copolymer and basic high molecular pigment dispersant.

8. The method of manufacturing an antistatic composite sheet according to claim 7, characterized by, After the coating step and before the heat lamination step, the manufacturing method of the antistatic composite board further comprises a photocuring step to photocure the PET film formed with the coating layer at a light intensity of 500 mJ / cm 2 to 1000 mJ / cm 2 .

9. The method of claim 6, wherein the method further comprises the step of applying a primer to the surface of the wood substrate prior to the step of applying the first layer of the anti-static composite sheet. The length of each of the carbon nanotubes is between 5 microns and 8 microns, and the diameter of each of the carbon nanotubes is between 1.2 nanometers and 2 nanometers.

10. The method of manufacturing an antistatic composite sheet according to claim 6, characterized by, The thickness of the PET substrate is between 1.5 millimeters and 2.5 millimeters, the thickness of the PET film is between 60 microns and 150 microns, and the thickness of the coating layer is between 2 microns and 8 microns.