| 1 | High-Alumina Ceramic Slurry Hose | High-volume transport of abrasive mineral slurry, tailings, and mill discharge | Alumina ceramic tiles or cylinders, commonly selected for high hardness and wear resistance | Natural or synthetic rubber tube with abrasion-resistant outer cover | Approximately 50–600 mm internal diameter | Usually about -30°C to 80°C, depending on rubber compound and service conditions | Often selected for medium-pressure slurry lines; the allowable pressure must be confirmed from the hose assembly design | Excellent resistance to sliding abrasion from dense mineral particles | Rigid ceramic sections can be damaged by sharp impact, severe bending, or mishandling |
| 2 | Ceramic-Button Discharge Hose | Discharge points, pump outlets, and short flexible connections exposed to concentrated wear | Small alumina ceramic buttons or wear inserts embedded in the rubber tube | Heavy-duty abrasion-resistant rubber construction | Approximately 50–300 mm internal diameter | Usually about -30°C to 80°C | Suitable pressure depends on reinforcement, end connections, and operating temperature | Flexible construction with localized protection at high-wear zones | Wear life may be less uniform than a fully ceramic-tiled liner in continuous, highly abrasive flow |
| 3 | Ceramic Tile-Lined Pump Connection Hose | Flexible connections around slurry pumps, cyclones, screens, and vibrating equipment | Interlocking or closely spaced alumina tiles bonded into the tube | Reinforced rubber body designed to tolerate movement and vibration | Approximately 50–500 mm internal diameter | Usually about -30°C to 80°C | Commonly used in low- to medium-pressure flexible sections; surge pressure must be considered | Combines strong abrasion resistance with useful flexibility near moving equipment | Minimum bend radius must be respected to prevent liner stress and premature failure |
| 4 | Ceramic-Lined Tailings Hose | Longer tailings transfer routes and abrasive waste-slurry handling systems | High-alumina tiles, cylinders, or engineered ceramic segments | Thick abrasion-resistant rubber tube with reinforced outer cover | Approximately 75–600 mm internal diameter | Usually about -30°C to 80°C | Pressure rating varies widely with hose diameter, reinforcement, length, and coupling system | Well suited to continuous transport of abrasive tailings over extended operating periods | Heavy construction increases handling weight and may require stronger supports |
| 5 | Ceramic-Lined Hydrocyclone Feed Hose | Feed lines carrying abrasive slurry into hydrocyclones and classification equipment | Fine-grain alumina ceramic lining selected for high particle-impact and sliding-wear resistance | Oil-resistant or general-purpose synthetic rubber, depending on process fluid | Approximately 50–250 mm internal diameter | Usually about -30°C to 80°C | Often used in higher-pressure process circuits; verify the hose assembly rating and pressure-surge allowance | Supports reliable service where high flow velocity accelerates liner wear | Incorrect alignment or excessive pulsation can shorten service life at the couplings |
| 6 | Impact-Resistant Ceramic Rubber Hose | Drop points, transfer chutes, and areas where coarse ore creates repeated impact | Thicker ceramic blocks or impact-rated ceramic segments set in resilient rubber | Energy-absorbing rubber tube with a reinforced outer cover | Approximately 75–400 mm internal diameter | Usually about -30°C to 80°C | Pressure selection depends on the reinforcement and the connection method; impact duty does not define pressure capacity | Better protection against combined abrasion and moderate particle impact | May be heavier and less flexible than thin-lined ceramic hose designs |
| 7 | Chemical-Resistant Ceramic Slurry Hose | Mineral processing circuits involving acidic or chemically aggressive slurry | Alumina or chemically compatible ceramic lining selected for the process chemistry | Specialized synthetic rubber tube chosen for chemical compatibility, with abrasion-resistant cover | Approximately 50–300 mm internal diameter | Commonly about -20°C to 80°C, depending on the rubber compound and chemical service | Pressure rating must be checked against chemical exposure, temperature, reinforcement, and coupling design | Provides a combined barrier against abrasive solids and selected process chemicals | Ceramic compatibility alone is not sufficient; the rubber compound must also match the chemical medium |