Non-fibrous flame-retardant polyamide composition, process for its preparation and use

By adding zinc borate and zinc bromide to the bromine-antimony flame retardant system, a synergistic effect is achieved, which solves the problem of decreased gloss and mirror effect of polyamide materials after the addition of glass fiber. This results in high flame retardant performance without affecting the appearance, making it suitable for multiple fields.

CN120158087BActive Publication Date: 2026-03-17CHENGDU KINGFA SCI & TECH ADVANCED MATERIALS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-27
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

While adding glass fiber to existing polyamide materials improves their flame retardant properties, it also reduces their gloss and mirror-like finish, making them unsuitable for high-requirement surface finish parts.

Method used

A fiber-free flame-retardant polyamide composition is used. By adding zinc borate and zinc bromide to the bromine-antimony flame-retardant system, a synergistic effect is formed, which quickly generates a carbon layer with a certain strength, thereby improving the flame-retardant performance. At the same time, the viscosity of the polyamide resin is controlled within the range of 2.4-2.7 to ensure that the gloss and mirror effect are not affected.

Benefits of technology

This product achieves a 5VA flame-retardant rating for polyamide materials while maintaining a glossy and mirror-like finish, making it suitable for applications in electronics, rail transportation, power tools, home appliances, and sporting goods.

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Abstract

The application discloses a kind of non-fiber flame-retardant polyamide compositions and preparation method and application thereof, and it is related to the technical field of engineering plastics.A kind of non-fiber flame-retardant polyamide composition includes the following weight parts of components: polyamide resin 55-81 parts;Bromine flame retardant 19-42 parts;Zinc borate 4-12 parts;Antimony white 1-12 parts;Zinc bromide 0.1-0.6 parts;The viscosity of the polyamide resin is 2.4-2.7.The non-fiber flame-retardant polyamide composition of the application can reach 5VA flame-retardant grade, while improving the flame-retardant property without affecting its appearance gloss and mirror effect.
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Description

Technical Field

[0001] This invention relates to the technical field of engineering plastics, and more particularly to a fiber-free flame-retardant polyamide composition, its preparation method, and its application. Background Technology

[0002] Polyamide materials are widely used engineering plastics, possessing excellent heat resistance, solvent resistance, mechanical properties, and processing performance. They are widely applied in electronics, rail transportation, power tools, home appliances, and sporting goods. With the development of the electronics and new energy industries, increasingly stringent requirements have been placed on the flame retardant properties of materials, such as the 5VA flame retardant requirement. Conventional 5VA flame-retardant nylon materials require the addition of glass fiber to the system to provide sufficient structural support during combustion, working in conjunction with the carbon layer to prevent burn-through. However, the addition of glass fiber rapidly reduces the surface finish of the parts, especially gloss and mirror-like properties, making them unsuitable for applications requiring high aesthetic standards. Summary of the Invention

[0003] The purpose of this invention is to overcome the shortcomings of existing technologies and provide a fiber-free flame-retardant polyamide composition, its preparation method, and its application. The fiber-free flame-retardant polyamide composition of this invention can achieve a 5VA flame retardant rating, improving flame retardant performance without affecting its appearance, gloss, and mirror finish.

[0004] To achieve the above objectives, the technical solution adopted by the present invention is as follows:

[0005] In a first aspect, the present invention provides a fiber-free flame-retardant polyamide composition comprising the following components in parts by weight:

[0006] The polyamide resin comprises 55-81 parts; a brominated flame retardant comprises 19-42 parts; zinc borate comprises 4-12 parts; antimony white comprises 1-12 parts; zinc bromide comprises 0.1-0.6 parts; and the viscosity of the polyamide resin is 2.4-2.7.

[0007] This invention improves the flame retardant properties of polyamide compositions by adding zinc borate to a bromine-antimony flame retardant system. The synergistic effect of zinc borate and zinc bromide creates a carbon layer of sufficient strength during combustion, preventing pores caused by melt collapse and thus enhancing the flame retardant performance. If the viscosity of the polyamide resin is too high, the material becomes difficult to process; if the viscosity is too low, small molecules are more likely to form, negatively impacting the flame retardant properties of the composition. Therefore, this invention, by controlling the viscosity of the polyamide resin within the aforementioned range, further improves the flame retardant properties of the polyamide composition. Furthermore, this improvement in flame retardant properties does not affect the product's gloss and mirror-like finish.

[0008] Preferably, the viscosity of the polyamide resin is a range of any one or both of 2.4, 2.5, 2.6, and 2.7.

[0009] The viscosity of the polyamide resin described in this invention was measured at room temperature according to the test method of ISO 307-2019.

[0010] Preferably, the polyamide resin includes at least one of PA6, PA66, and PA6T / 66.

[0011] Preferably, the brominated flame retardant includes at least one of brominated polystyrene, brominated epoxy, and decabromodiphenyl ethane.

[0012] More preferably, the brominated flame retardant includes brominated polystyrene and brominated epoxy, and the weight ratio of the brominated polystyrene to the brominated epoxy is greater than 2:1, specifically including but not limited to 3:1, 4:1, 5:1, and 6:1.

[0013] Preferably, the fiber-free flame-retardant polyamide composition comprises the following components in parts by weight:

[0014] 56-80 parts polyamide resin; 20-40 parts brominated flame retardant; 5-10 parts zinc borate; 2-10 parts antimony white; 0.1-0.5 parts zinc bromide.

[0015] Preferably, the average particle size of the zinc borate is 5-15 micrometers, the average particle size of the zinc bromide is 10-50 micrometers, and the average particle size of the antimony white is 0.5-5 micrometers.

[0016] The particle size described in this invention is tested according to the ISO 13320-2020 standard.

[0017] Preferably, the fiber-free flame-retardant polyamide composition further includes 0.1-0.5 parts of an antioxidant.

[0018] More preferably, the antioxidant includes hindered phenolic antioxidants or hindered amine antioxidants.

[0019] The melt flow rate of the fiber-free flame-retardant polyamide composition of this invention is 5-50 g / 10 min. The melt flow rate was tested according to ISO-1-2022 standard.

[0020] Secondly, the present invention also discloses a method for preparing a fiber-free flame-retardant polyamide composition, comprising the following steps:

[0021] The components are mixed and added to a twin-screw extruder. After granulation and cooling, a fiber-free flame-retardant polyamide composition is obtained.

[0022] Preferably, the temperature of the twin-screw extruder is 190-275℃ and the screw speed is 300-500 rpm.

[0023] More preferably, the extrusion temperature of the twin-screw extruder is: 190℃ in zone 1, 260℃ in zone 2, 270℃ in zone 3, 275℃ in zone 4, 275℃ in zone 5, 275℃ in zone 6, 270℃ in zone 7, 270℃ in zone 8, and 270℃ in zone 9.

[0024] Thirdly, the present invention also discloses the application of a fiber-free flame-retardant polyamide composition in electronics, electrical engineering, and new energy.

[0025] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0026] (1) The present invention adds zinc borate to the antimony bromide flame retardant system, and the complexation effect produced by zinc bromide produces a synergistic effect, which quickly forms a carbon layer with a certain strength during combustion, preventing the formation of holes due to melt collapse during combustion, thereby improving the flame retardant performance of the polyamide composition.

[0027] (2) The fiber-free flame-retardant polyamide composition of the present invention can achieve a flame retardant level of 5VA, which improves the flame retardant performance without affecting its gloss and mirror effect. Detailed Implementation

[0028] To better illustrate the purpose, technical solution, and advantages of the present invention, the present invention will be further described below in conjunction with specific embodiments, but the scope of protection and implementation of the present invention are not limited thereto.

[0029] Unless otherwise specified, the materials and reagents used in the following examples are commercially available.

[0030] Examples 1-8

[0031] Examples of the non-fiber flame-retardant polyamide composition and its preparation method according to the present invention are shown in Table 1.

[0032] The method for preparing the fiber-free flame-retardant polyamide composition includes the following steps:

[0033] The components are mixed and added to a twin-screw extruder. After granulation and cooling, a fiber-free flame-retardant polyamide composition is obtained.

[0034] The process parameters of the twin-screw extruder are as follows:

[0035] Extrusion temperature: Zone 1 190℃, Zone 2 260℃, Zone 3 270℃, Zone 4 275℃, Zone 5 275℃, Zone 6 275℃, Zone 7 270℃, Zone 8 270℃, Zone 9 270℃; Screw speed is 300-500 rpm.

[0036] Comparative Examples 1-12

[0037] The only difference between the comparative examples and the embodiments is the type and ratio of components, as shown in Table 2.

[0038] In the components described in each embodiment and comparative example:

[0039] The polyamide resin 1 is PA66, with a viscosity of 2.1, manufactured by Invista, and model PA66 U2501.

[0040] The polyamide resin 2 is PA66, with a viscosity of 2.4, manufactured by Invista, and model PA66 U3600 NC01 SS.

[0041] The polyamide resin 3 is PA66, with a viscosity of 2.7, manufactured by Invista, and model PA66 U4800 NC01 SS.

[0042] The polyamide resin 4: PA6 has a viscosity of 2.5, is manufactured by Jiangsu Hongsheng, and has the model number BE3250.

[0043] The brominated flame retardant 1 is brominated polystyrene, Albemarle BPS 7010;

[0044] The brominated flame retardant 2 is a brominated epoxy, CXB-2000H, purchased from Woo Jin Copolymer Co., Ltd.;

[0045] The brominated flame retardant 3 comprises brominated polystyrene and brominated epoxy in a weight ratio of 3:1.

[0046] The brominated flame retardant 4 comprises brominated polystyrene and brominated epoxy in a weight ratio of 3:2.

[0047] The zinc borate in question is manufactured by Jinan Taixing Fine Chemical Co., Ltd., and its model number is HT-207.

[0048] The antimony white substance is manufactured by Changde Chenzhou Antimony Products Co., Ltd., and its model number is S-05N.

[0049] The fiberglass used is manufactured by China Jushi Co., Ltd., ECS10-03-568H.

[0050] The zinc bromide is commercially available.

[0051] The antioxidant is antioxidant 1098, BASF.

[0052] The zinc chloride in question is commercially available.

[0053] Unless otherwise specified, all components and raw materials used in the embodiments and comparative examples of this invention are commercially available, and the same type of components and raw materials are used in each parallel experiment.

[0054] Table 1

[0055]

[0056] Table 2

[0057]

[0058] To verify the performance of the fiberless flame-retardant polyamide composition of the present invention, the fiberless flame-retardant polyamide compositions prepared in each embodiment and comparative example were injection molded into specimens for testing the following properties.

[0059] Performance testing methods:

[0060] 1. Combustion performance test: The test is conducted in accordance with the UL 94 5VA test standard, and the test strip thickness is 2.0mm.

[0061] 2. Tensile strength: Tested according to ISO 527-2-2012 standard.

[0062] 3. Gloss is tested according to ASTM D523, with a geometrical reflection angle of 60 degrees.

[0063] 4. Mirror effect test: Visually inspect and classify the mirror clarity into the following five levels:

[0064] Poor: Almost no mirror-like imaging effect;

[0065] Poor: Barely achieves an imaging effect, but the quality is extremely poor;

[0066] Normal: It has basic imaging effects and can present a general outline;

[0067] Good: The imaging effect is good, and it can completely map the overall effect except for some details;

[0068] Clarity: It can fully map all the details of an object.

[0069] The performance parameters obtained from the above tests are shown in Tables 3 and 4.

[0070] Table 3

[0071]

[0072] Table 4

[0073]

[0074] As can be seen from Examples 1-3, by controlling the viscosity of the polyamide resin within the range of 2.4-2.7, the polyamide composition can achieve a flame retardant rating of 5VA, improving flame retardant performance without affecting its gloss and mirror effect.

[0075] Comparing Comparative Example 1 with Example 1, it can be seen that the viscosity of the polyamide resin in Comparative Example 1 is too low, and the polyamide composition cannot pass the 5VA square plate test, indicating that the viscosity of the polyamide resin will have a certain impact on the flame retardant properties of the composition.

[0076] Comparing Comparative Examples 2-4 and 7 with Example 1, it can be seen that Comparative Example 2 did not contain antimony white, Comparative Example 3 did not contain zinc borate, Comparative Example 4 did not contain zinc bromide, and Comparative Example 7 used zinc chloride instead of zinc bromide. None of the polyamide compositions passed the 5VA square plate test. This indicates that only by adding zinc borate to the antimony bromide flame retardant system can the flame retardant performance of the polyamide composition be significantly improved in conjunction with the complexation effect produced by zinc bromide.

[0077] Comparing Comparative Examples 5 and 6 with Example 1, it can be seen that the zinc bromide content in Comparative Example 5 is too low, and the polyamide composition cannot pass the 5VA square plate test; the zinc bromide content in Comparative Example 6 is too high. Although the polyamide composition can pass the 5VA square plate test, the mirror effect of the polyamide composition is not as good as that of Example 1. This shows that by controlling the zinc bromide content, the present invention can not only enable the polyamide composition to reach the 5VA flame retardant level, but also improve the mirror effect of the polyamide composition.

[0078] Comparing Comparative Example 8 with Example 1, it can be seen that the addition of glass fiber in Comparative Example 8 resulted in the polyamide composition passing the 5VA square plate test and exhibiting improved mechanical properties, but significantly reduced mirror effect and gloss.

[0079] According to the comparison between Comparative Examples 9-10 and Example 1, the content of brominated flame retardant in Comparative Example 9 was too low, and the polyamide composition could not pass the 5VA square plate test; the content of brominated flame retardant in Comparative Example 10 was too high, and the mechanical properties and mirror effect of the polyamide composition were reduced.

[0080] According to the comparison between Comparative Examples 11-12 and Example 1, the content of antimony white in Comparative Example 11 is too low, and the polyamide composition cannot pass the 5VA square plate test; the content of antimony white in Comparative Example 12 is too high, and the mechanical properties, mirror effect and clarity of the polyamide composition will be reduced.

[0081] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit the scope of protection of the present invention. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the essence and scope of the technical solutions of the present invention.

Claims

1. A non-woven flame retardant polyamide composition, characterized in that, The non-woven flame-retardant polyamide composition comprises the following components by weight: polyamide resin 55-81 parts; bromine-based flame retardant 19-42 parts; zinc borate 4-12 parts; antimony white 1-12 parts; zinc bromide 0.1-0.6 parts; the viscosity of the polyamide resin is 2.4-2.7; The bromine-based flame retardant comprises at least one of brominated polystyrene, brominated epoxy, decabromodiphenyl ethane.

2. The non-woven flame retardant polyamide composition according to claim 1, wherein, The polyamide resin comprises at least one of PA6, PA66, PA6T / 66.

3. The non-woven flame retardant polyamide composition according to claim 1, wherein, The bromine-based flame retardant comprises brominated polystyrene and brominated epoxy, and the weight ratio of the brominated polystyrene and the brominated epoxy is greater than 2:

1.

4. The non-woven flame retardant polyamide composition according to claim 1, wherein, The non-woven flame-retardant polyamide composition comprises the following components by weight: polyamide resin 55-81 parts; bromine-based flame retardant 19-42 parts; zinc borate 4-12 parts; antimony white 1-12 parts; zinc bromide 0.1-0.6 parts; the viscosity of the polyamide resin is 2.4-2.7; 5. The non-woven flame retardant polyamide composition according to claim 1, wherein, The non-woven flame-retardant polyamide composition further comprises 0.1-0.5 parts of an antioxidant.

6. The non-woven flame retardant polyamide composition according to claim 5, wherein the polyamide is a polyamide 6,6. The antioxidant comprises a hindered phenolic antioxidant or a hindered amine antioxidant.

7. Process for the preparation of a flame-retardant polyamide composition according to any one of claims 1 to 6, characterized in that, The non-woven flame-retardant polyamide composition comprises the following components by weight: After mixing the components, they are added to a twin-screw extruder, granulated, and cooled to obtain the non-woven flame-retardant polyamide composition.

8. The process for the preparation of flame-retardant polyamide compositions without fiber according to claim 7, characterized in that, The temperature of the twin-screw extruder is 190-275°C, and the screw rotation speed is 300-500 rpm.

9. Use of the non-woven flame-retardant polyamide composition according to any one of claims 1-6 in electronics and electrical appliances, new energy.

Citation Information

Patent Citations

  • Polyamide resin composition

    CN106164141A

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    CN1114607A