Leave Your Message

AAAC BS EN 50182 All Aluminum Alloy Conductor from China Suppliers and Factory - Superior Strength & Durability

,

Execution Standard: BS EN 50182 (Former Standard: BS 324)

,

Material: Our AAAC (All-Aluminum Alloy Conductor) utilizes high-quality 6201-AL3 and 6201-AL5 aluminum-magnesium-silicon alloy, ensuring optimal performance and durability.

,

Product Advantages: The AAAC is renowned for its exceptional corrosion resistance, making it ideal for harsh environments such as coastal areas and industrial locations. This aluminum alloy product guarantees a longer service life with reduced maintenance costs, proving to be a cost-effective solution.

,

As a leading manufacturer based in China, our factory specializes in producing robust transmission solutions. The AAAC conductor not only provides superior conductivity but also offers enhanced mechanical resilience, effectively resisting corrosion and fatigue. This makes it an excellent choice for medium to high-voltage lines, particularly in challenging weather conditions or industrial settings. Choose us as your trusted suppliers for high-performance AAAC conductors.

,
    container

    heading-type-1

    div容器

    Aluminum Alloy Conductor (AAAC) Specifications
    Code Name Old Code Name Sectional Area Wire Diameter & Stranding Diameter of Conductor Nominal Breaking Load Linear Mass Maximum Resistance at 20℃
    mm² mm No. mm kN kg/km Ω/km
    19-AL3 BOX 18.8 1.85 7 5.55 5.55 51.5 1.748
    24-AL3 ACACIA 23.8 2.08 7 6.24 7.02 65.1 1.3828
    30-AL3 ALMOND 30.1 2.34 7 7.02 8.88 82.4 1.0926
    35-AL3 CEDAR 35.5 2.54 7 7.62 10.46 97.1 0.9273
    42-AL3 DEODAR 42.2 2.77 7 8.31 12.44 115.5 0.7797
    48-AL3 FIR 47.8 2.95 7 8.85 14.11 131.0 0.6875
    60-AL3 HAZE 59.9 3.30 7 9.9 17.66 164.0 0.5494
    72-AL3 PINE 71.6 3.61 7 10.83 21.14 196.2 0.4591
    84-AL3 HOLLY 84.1 3.91 7 11.73 24.79 230.2 0.3913
    90-AL3 WILLOW 89.7 4.04 7 12.12 26.47 245.7 0.3665
    119-AL3 OAK 118.9 4.65 7 13.95 35.07 325.5 0.2767
    151-AL3 MULBERRY 150.9 3.18 19 15.9 44.52 415.2 0.2192
    181-AL3 ASH 180.7 3.48 19 17.4 53.31 497.3 0.1830
    211-AL3 ELM 207.6 3.73 19 18.65 62.24 571.3 0.1568
    239-AL3 POPLAR 239.4 2.87 37 20.09 70.61 660.2 0.1387
    303-AL3 SYCAMORE 303.2 3.23 37 22.61 89.4 836.2 0.1095
    362-AL3 UPAS 362.1 3.53 37 24.71 106.82 998.8 0.0917
    422-AL3 WALNUT 421.8 3.81 37 26.67 118.17 1163.5 0.0786
    479-AL3 YEW 479.0 4.06 37 28.42 141.31 1321.2 0.0693
    498-AL3 TOTARA 498.1 4.14 37 28.98 146.93 1373.8 0.0666
    587-AL3 RUBUS 586.9 3.50 61 31.5 173.13 1620.9 0.0567
    659-AL3 SORBUS 659.4 3.71 61 33.39 194.53 1821.3 0.0505
    821-AL3 ARAUCARIA 821.1 4.14 61 37.26 242.24 2267.9 0.0406
    996-AL3 REDWOOD 996.2 4.56 61 41.04 293.88 2751.5 0.0334
    Note: The outermost layer is twisted to the right (Z).
    Frequently Asked Questions (FAQ)

    1. What is AAAC (All Aluminum Alloy Conductor)?

    AAAC is a high-strength concentric-lay-stranded conductor made from aluminum-magnesium-silicon alloy (typically 6201-T81). It is designed to provide a better strength-to-weight ratio and improved electrical properties compared to traditional AAC conductors.

    2. What are the key advantages of using AAAC over ACSR?

    AAAC offers superior corrosion resistance, especially in coastal or industrial environments, because it contains no steel core. It also has lower electrical losses, a higher strength-to-weight ratio, and is easier to install and splice than ACSR.

    3. What does "outermost layer twisted to the right (Z)" mean?

    This specifies the lay direction of the outer wires of the conductor. A "Z-lay" indicates a right-hand lay, which is the standard direction required for compatibility with most standard line fittings and tension clamps.

    4. How is the nominal breaking load (kN) determined for AAAC?

    The Nominal Breaking Load (NBL) is calculated based on the minimum tensile strength of the individual aluminum alloy wires and the total cross-sectional area, adjusted by a stranding factor. It represents the maximum tension the conductor can withstand before failure.

    5. Why do AAAC conductors have code names like "ALMOND", "CEDAR", or "OAK"?

    These code names are standard industry designations (often based on tree names in British standards) used to simplify ordering and specifications. Each code name corresponds to a specific cross-sectional area, stranding configuration, and physical dimensions.

    Leave Your Message

    AI Helps Write