Our advanced air technology solutions serve a wide range of applications, optimizing efficiency and performance across multiple sectors. Here, we explore key uses of compressed air in telecommunications, sewage treatment, water purification, and landfill management.
In telecommunications, compressed air is employed to blow fibre optic cables into existing pipelines using high-velocity airstreams. This process, utilizing cable jets or micro jets, eliminates the need for costly digging operations, making installations quicker and more cost-effective.
In sewage treatment plants, compressed air plays a vital role in controlling sewage flow and enhancing the air oxidation process in sewage tanks. This technology helps maintain optimal conditions for effective waste treatment.
In water treatment applications, compressed air is introduced into water systems to prevent stagnation, particularly in fish farms. This process activates water treatment divert valves for additional filtration when contaminants are detected.
In landfill management, compressed air is released into the ground to flush out toxic gases. This method is essential for sour gas cleaning and pumping operations, mitigating environmental hazards and enhancing safety.
Our commitment to leveraging air technology across various applications ensures enhanced efficiency, safety, and environmental sustainability. Contact us today to learn more about our innovative solutions tailored to your industry needs!
Piping Material Features Comparison |
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Piping Features | Stainless Steel(Type 304L) | Mild Steel | Blue anodized Aluminum Alloy |
Weight (Dia 6inch, Length 6m) | 127.2 | 169.6 | 29.142 |
Corrosion Resistant | Yes | No | Yes(100%) |
Pressure drop (Dia 2 inch Length= 20m,Airflow=3 cubic metres/Minute, Pressure=10 bar) | 0.25 | 0.4 Bar | 0.1 |
Energy Efficiency | High | Low-moderate | High( Potential Cost savings of 34%) |
Mechanical Strength | Very Strong | Very Strong | Strong |
High-Temperature Rating | Yes | Yes | Yes |
Installation Ease | Less Difficult | Difficult | Easy(High Flexibility and Modularity) |
Installation Time | Approx 6 feet length per hour | Approx 6 feet length per hour | Approx 45 feet Length per hour |
Work Hours/Manpower Required for a 2″ pipe and a 3000 feet piping | Approx 600 man-hours/8 men for 2 weeks | Approx 600 man-hours/8 men for 2 weeks | Approx 100 man-hours /8 men for less than 2 days |
Annual Cost(Installation, Commissioning, and operation) | Approx 3000 dollars | Approx 7820 dollars | Approx 1300 dollars |
Installation Cost Material%/Labor% | 30% / 70% | 25% / 75% | 80% / 20% |
Surface roughness | 0.03 | 0.05 | 0.001 |
Special Tools Required (welder, threader, groove cutter) | Yes | Yes | No |
Air Quality | High(Should the application require it, these pipe systems can help meet the requirements of ISO 8573-1: 2010 air quality standards. | Low( Not according to !SO 8573-2010 air quality standards) | High(Should the application require it, these pipe systems can help meet the requirements of ISO 8573-1: 2010 air quality standards. |
Cost per meter | Almost 2 less than Aluminum | 3 Times less than Aluminum | 163.64 Dollars(Parker Transair) |
Life Span( Will vary according to environmental factors, Pipe design, and Pipe grade. | 30 years | 40 years | 20 years |
Initial Cost of installations | Material : 30% Labor:70% | Material : 25% Labor:75% | Material : 80% Labor:20% |
Maintenance | Difficult(Accumulation of rust under pipes and fittings which travels to machinery, may require preventive maintenance every week) | Difficult (Accumulation of rust under pipes and fittings which travels to machinery may require preventive maintenance every 3-4 days) | Easy (No accumulation of rust, may require preventive maintenance every 4 Weeks) |