| Mini ADSS Cable | 2–24 fibers | Up to approximately 80–120 m | Small loose-tube or central-tube design with a compact cable diameter | Aramid yarn strength members; polyethylene outer sheath | Short spans in access networks, residential distribution, and urban aerial routes | Low weight Small diameter Fast installation Select a higher-rated design where wind, ice, or installation tension is significant. |
| Standard-Span ADSS Cable | 12–144 fibers | Approximately 100–200 m | Stranded loose tubes around a central strength member | Aramid yarns or equivalent non-metallic tensile elements; PE or track-resistant sheath | General utility pole lines, metropolitan networks, and medium-distance aerial links | Balanced cost General-purpose High availability Verify rated tensile load, sag, cable diameter, and clearance requirements. |
| Long-Span ADSS Cable | 24–288 fibers | Approximately 200–600 m | Reinforced stranded loose-tube structure with increased mechanical strength | Higher-strength aramid or non-metallic reinforcement; often uses an anti-tracking outer sheath | River crossings, valleys, highways, rail corridors, and widely spaced poles | High tensile rating Controlled sag The design must be checked against span length, wind pressure, ice load, temperature range, and pole strength. |
| High-Voltage-Corridor ADSS | 24–144 fibers | Approximately 100–300 m, depending on line conditions | ADSS structure with an electrical-track-resistant outer jacket | All-dielectric reinforcement; anti-tracking polyethylene or equivalent jacket material | Routes installed on or near medium-voltage and high-voltage transmission structures | Electrical resistance Pollution tolerance Specify the required electrical field rating and maintain the prescribed separation from energized conductors. |
| Single-Jacket ADSS Cable | 2–144 fibers | Approximately 80–250 m | One outer jacket over loose tubes or a central tube | Aramid yarn strength members; single PE or anti-tracking jacket | Normal aerial distribution where moderate mechanical and environmental protection is sufficient | Lightweight Flexible Economical Confirm crush resistance and jacket performance before using it in areas with heavy ice or severe abrasion. |
| Double-Jacket ADSS Cable | 24–288 fibers | Approximately 150–500 m | Two protective jacket layers with a reinforced core and loose fiber tubes | Enhanced aramid reinforcement; PE or anti-tracking outer jacket | Longer spans, harsh weather, high mechanical loading, and routes requiring additional protection | Improved protection Higher crush resistance The larger diameter and weight may require stronger hardware and greater pole loading capacity. |
| Central-Tube ADSS Cable | 2–24 fibers | Approximately 80–150 m | Fibers placed in one central buffer tube surrounded by strength members | Aramid yarns with a compact PE outer sheath | Compact access networks, short aerial drops, and routes with limited available space | Compact design Low fiber count Check fiber bend performance, tube filling method, and whether the cable supports the required installation temperature. |
| Stranded Loose-Tube ADSS Cable | 12–288 fibers | Approximately 100–600 m | Multiple gel-filled or dry loose tubes stranded around a central member | Aramid yarns or non-metallic strength elements; PE or anti-tracking jacket | High-capacity backbone, regional distribution, and long-term network expansion | High fiber capacity Good fiber protection Review tube identification, water-blocking method, minimum bend radius, and available termination hardware. |
| Dry-Water-Blocked ADSS Cable | 12–288 fibers | Approximately 100–500 m | Loose tubes or core wrapped with water-blocking yarns, tapes, or swellable materials instead of filling compound | Non-metallic tensile elements; PE or anti-tracking sheath | Installations prioritizing cleaner preparation, rapid splicing, and reduced maintenance contamination | Cleaner handling Reduced gel cleanup Confirm longitudinal water penetration performance and compatibility with the local splicing and closure system. |