Mineral oxygen insulation material composition for flexible mineral insulated cable and preparation method of mineral oxygen insulation material composition

A mineral insulated cable and composition technology, applied in the field of cable materials, can solve the problems of not meeting the needs of actual use, fire resistance, temperature resistance, heat resistance and corrosion resistance, etc., to achieve the effect of ensuring complete performance and withstand spraying

CN108218320AInactive Publication Date: 2018-06-29上海腾瑞纳化工科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Publication Date
2018-06-29
Estimated Expiration
Not applicable · inactive patent
Patent Text Reader

Abstract

The invention relates to the technical field of cable materials, and particularly relates to a mineral oxygen insulation material composition for a flexible mineral insulated cable and a preparation method of the mineral oxygen insulation material composition. The mineral oxygen insulation material composition is prepared from the following components in parts by weight: 30-55 parts of inorganic adhesive, 20-70 parts of flame retardant, and10-50 parts of inorganic filler. The preparation method comprises the steps of weighing proper amounts of the above components; mixing the components uniformly by using a stirrer; and finally extruding and shaping by using a silicon rubber extruder, so as to obtain a finished product. The finished product prepared by the method resists fire, expands whenbeing heated, and generates a porous, highly foaming ceramic thermal resistant material, a hard ceramic shell in the cable can well resist flame and fire, isolate fire and prevent fire, so as to keepa circuit complete, and the mineral oxygen insulation material composition is mainly applied to medium and low voltage fire-proof fire-resistant cables. The oxygen insulation material meets the requirements of TICW 8-2012 fire-resistant insulation layer completely, the prepared cable meets the C.W.Z level of requirements of a BS6387 standard, that is, fire resistance at 950DEG C, spraying, vibration test and the like.
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Description

technical field

[0001] The invention relates to the technical field of cable materials, in particular to a mineral oxygen barrier material composition for flexible mineral insulated cables and a preparation method thereof. Background technique

[0002] As early as the end of the 19th century, a Swiss engineer Arnold Francois Bore discovered and used MI mineral insulated cables for research and application. From 1934 to 1936, France, the United Kingdom, Italy, Canada, Australia, the United States, the Soviet Union, and Japan also cited the production and application of mineral insulated cables. my country developed and produced them in the 1960s, mass production began at the end of the 20th century, and entered the 21st century. National fire protection design code and widely used in China.

[0003] Mineral insulated cables are widely used in high-rise buildings, petrochemicals, airports, tunnels, ships, offshore oil platforms, aerospace, iron and steel metallurgy, shopping c...

Examples

Embodiment 1

[0017] Embodiment 1, the present invention provides a technical solution: a mineral oxygen barrier material for flexible mineral insulated cables, comprising the following components in parts by weight: 30 parts of inorganic adhesive, 50 parts of flame retardant, and 20 parts of inorganic filler .

[0018] Specifically, the inorganic adhesive is one of silicates or modified products thereof.

[0019] Specifically, the flame retardant is any one of aluminum hydroxide, magnesium hydroxide, zinc borate or a modified product thereof.

[0020] Specifically, the inorganic filler is any one or a mixture of vermiculite powder, bentonite, graphite powder, talc powder, chlorite powder, silicon carbide powder and the like.

[0021] A preparation method of a mineral oxygen barrier material composition for a flexible mineral insulated cable, specifically comprising the following steps:

[0022] The first step is to weigh the above-mentioned appropriate amount of raw materials;

[0023] ...

Embodiment 2

[0026] Embodiment 2, a mineral oxygen barrier material composition for flexible mineral insulated cables, comprising the following components in parts by weight: 50 parts of inorganic adhesive, 20 parts of flame retardant, and 30 parts of inorganic filler.

[0027] Specifically, the inorganic adhesive is one of silicates or modified products thereof.

[0028] Specifically, the flame retardant is any one of aluminum hydroxide, magnesium hydroxide, zinc borate or a modified product thereof.

[0029] Specifically, the inorganic filler is any one or a mixture of vermiculite powder, bentonite, graphite powder, talc powder, chlorite powder, silicon carbide powder and the like.

[0030] A preparation method of a mineral oxygen barrier material composition for a flexible mineral insulated cable, specifically comprising the following steps:

[0031] The first step is to weigh the above-mentioned appropriate amount of raw materials;

[0032] In the second step, the above-mentioned raw...

Embodiment 3

[0036] Embodiment 3, a mineral oxygen barrier material composition for flexible mineral insulated cables, specifically includes the following components in parts by weight: 40 parts of inorganic adhesive, 45 parts of flame retardant, and 15 parts of inorganic filler.

[0037] Specifically, the inorganic adhesive is one of silicates or modified products thereof.

[0038] Specifically, the flame retardant is any one of aluminum hydroxide, magnesium hydroxide, zinc borate or a modified product thereof.

[0039] Specifically, the inorganic filler is any one or a mixture of vermiculite powder, bentonite, graphite powder, talc powder, chlorite powder, silicon carbide powder and the like.

[0040] A preparation method of a mineral oxygen barrier material composition for a flexible mineral insulated cable, specifically comprising the following steps:

[0041] The first step is to weigh the above-mentioned appropriate amount of raw materials;

[0042] In the second step, the above-me...