Salt-corrosion-resistant torsion-resistant communication cable for offshore wind power and method for manufacturing the same
A technology for communication cables and manufacturing methods, applied in the direction of cable/conductor manufacturing, conductor/cable insulation, cables with twisted strands/four strands strands, etc., which can solve the problems that are not conducive to the insulation and sheath of cable ends Separation, lack of seawater salt resistance, seawater moisture resistance and impregnation performance, not suitable for marine wind power environment, etc., to achieve the effect of enhancing the impregnation against moisture, facilitating continuous transmission, and eliminating voids
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Embodiment 1
[0023] Such as figure 1 As shown, the salt-corrosion-resistant and torsion-resistant communication cable for marine wind power of the present invention includes the following steps in turn: the outer periphery of the stranded copper conductor 1a is evenly extruded with a salt-rot-resistant and torsion-resistant rubber insulating layer 1b to form an insulating core 1, and the insulating core 1 Two pairs of twisted wires are twisted to form a pair of twisted wires. The gaps of the pair of twisted wires are filled with flame-retardant non-hygroscopic fiber filler 2. Each pair of twisted wires adopts different twisting pitches. Multiple pairs of twisted wires are twisted Synthesize the cable core, then wrap the low-strength non-woven longitudinal cladding 3 on the outer periphery of the cable core, and finally extrude the sheath 4 on the outer periphery of the low-strength non-woven longitudinal cladding 3, and the sheath 4 wraps the low-strength non-woven fabric The longitudinal ...
Embodiment 2
[0028] Such as figure 1As shown, the salt-corrosion-resistant and torsion-resistant communication cable for marine wind power of the present invention includes the following steps in turn: the outer periphery of the stranded copper conductor 1a is evenly extruded with a salt-rot-resistant and torsion-resistant rubber insulating layer 1b to form an insulating core 1, and the insulating core 1 Two pairs of twisted wires are twisted to form a pair of twisted wires. The gaps of the pair of twisted wires are filled with flame-retardant non-hygroscopic fiber filler 2. Each pair of twisted wires adopts different twisting pitches. Multiple pairs of twisted wires are twisted Synthesize the cable core, then wrap the low-strength non-woven longitudinal cladding 3 on the outer periphery of the cable core, and finally extrude the sheath 4 on the outer periphery of the low-strength non-woven longitudinal cladding 3, and the sheath 4 wraps the low-strength non-woven fabric The longitudinal c...
Embodiment 3
[0033] Such as figure 1 As shown, the salt-corrosion-resistant and torsion-resistant communication cable for marine wind power of the present invention includes the following steps in turn: the outer periphery of the stranded copper conductor 1a is evenly extruded with a salt-rot-resistant and torsion-resistant rubber insulating layer 1b to form an insulating core 1, and the insulating core 1 Two pairs of twisted wires are twisted to form a pair of twisted wires. The gaps of the pair of twisted wires are filled with flame-retardant non-hygroscopic fiber filler 2. Each pair of twisted wires adopts different twisting pitches. Multiple pairs of twisted wires are twisted Synthesize the cable core, then wrap the low-strength non-woven longitudinal cladding 3 on the outer periphery of the cable core, and finally extrude the sheath 4 on the outer periphery of the low-strength non-woven longitudinal cladding 3, and the sheath 4 wraps the low-strength non-woven fabric The longitudinal ...
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