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Counterflow Open Cooling Tower

Parameter Value/Range
Cooling Capacity 100 kW – 5 MW
Air Flow Rate 20,000 – 500,000 m³/h
Power Supply Customized
Fan Type Axial, Induced-Draft
Operating Temperature -15°C to 45°C
Fill Material High-Efficiency PVC
Construction Material FRP or Galvanized Steel
Noise Level 60-80 dB(A) at 10m
Dimensions (L x W x H) Varies by model (2m x 1.5m x 3m to 10m x 4m x 6m)
Weight 1,000 kg – 10,000 kg (model-dependent)
Control System PLC-based with Modbus/BACnet integration
Certifications CE, ISO 9001, CTI Certified

Product description

The Counterflow Open Cooling Tower is a highly efficient, space-saving cooling solution designed for industrial, commercial, and HVAC applications. Utilizing advanced counterflow technology, it maximizes thermal performance by directing airflow upward through the fill media in the opposite direction of the downward water flow. Hot process water is distributed through pressurized spray nozzles, cascading over PVC fill media to increase surface area for optimal heat transfer via evaporation. The induced-draft axial fan, located at the top, ensures consistent airflow while minimizing energy consumption. Constructed with corrosion-resistant materials like FRP or galvanized steel, this cooling tower is built for durability and low maintenance. Its compact design makes it ideal for space-constrained installations, and its ability to operate in cold climates with minimal risk of icing enhances reliability. The Counterflow Open Cooling Tower is a cost-effective, high-performance alternative to traditional cooling systems, offering reduced water and energy usage.

Key Features:

Space-Efficient Design: Compact footprint maximizes thermal performance per unit area.
Energy Efficient: Induced-draft fan and optimized water distribution reduce power consumption.
Durable Construction: Corrosion-resistant materials ensure long-term reliability.
Low Maintenance: Minimal fouling and easy access to components simplify upkeep.
Cold Weather Performance: Low icing risk, ideal for cooler environments.

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