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Our advanced Air Conditioning Cooling Towers serve as high-performance heat rejection systems essential for central HVAC operations. Utilizing state-of-the-art evaporative cooling technology, these towers efficiently dissipate waste heat from condensers into the atmosphere, ensuring optimal refrigeration cycles for commercial complexes, hospitals, hotels, and high-density data centers.
Engineered with industrial-grade FRP (Fiber Reinforced Plastic) for superior corrosion resistance, our cooling solutions are designed to handle diverse climate conditions. By integrating high-efficiency fill media and precision fan systems, we deliver a balanced solution that maximizes chiller capacity while minimizing energy consumption and environmental impact.
| Casing Material | FRP (Corrosion-Resistant) / Galvanized Steel | Cooling Capacity | 100 TR to 1,000+ TR (Customizable) |
|---|---|---|---|
| Heat Exchange | Counterflow or Crossflow Configuration | Design Baseline | Ambient Wet-Bulb Temperature (WBT) |
| Fill Media | High-Efficiency PVC or PP Modules | Approach Temp | Typically 3–5°C difference from WBT |
| Fan System | Axial/Centrifugal with VFD Support | Noise Level | ≤65 dB(A) @ 1m (ASHRAE Compliant) |
| Water Distribution | Rotary Nozzles or Fixed Spray Pipes | Standard Compliance | ASHRAE 90.1 / EN 13053 / LEED |
Utilizing premium FRP materials to prevent rust and chemical degradation, significantly extending the equipment lifespan.
VFD-integrated fan systems reduce power consumption by 20–30% compared to traditional fixed-speed motors.
Advanced PVC/PP fill media increases the air-water contact area, boosting heat exchange efficiency by 15%.
IoT-enabled control systems allow for real-time tracking of water levels, pH balance, and fan performance.
High-precision drift eliminators effectively reduce water carry-over, lowering makeup water requirements.
Fully compatible with low-GWP refrigerants and designed to meet strict LEED sustainability credits.
















































































































Automated calculation of water flow based on chiller capacity (TR) to ensure precise thermal matching.
Dynamic fan speed adjustment based on real-time wet-bulb temperature for maximum energy savings.
Automated sensors monitor pH levels (6.5–8.5) and trigger alerts for chemical treatment needs.
IoT vibration sensors detect bearing wear or fan imbalance before critical failure occurs.
Parallel modular design enables easy capacity expansion as facility needs grow.
Digital logging of energy and water conservation metrics for LEED certification audits.
| Capacity Scale | Standard Setup Cost | Estimated OPEX Saving |
|---|---|---|
| 100 TR | 8–15 (10k RMB) | 12% Yearly |
| 500 TR | 40–70 (10k RMB) | 22% Yearly |
| 1,000 TR | 80–150 (10k RMB) | 28% Yearly |
| Custom FRP | Project Based | 35% Life-cycle |
| Modular Set | Project Based | 20% Maintenance |
FRP (Fiber Reinforced Plastic) provides exceptional corrosion resistance against water treatment chemicals and harsh ambient environments, significantly reducing the need for frequent structural repairs compared to steel.
VFDs allow the fan speed to fluctuate based on the actual cooling load and ambient wet-bulb temperature, preventing the motor from running at 100% capacity when not required, reducing power use by 20-30%.
Weekly checks of water pH (6.5–8.5) and water levels are essential. Monthly cleaning of the fill media and filters prevents clogging, which is the leading cause of reduced thermal efficiency.
Yes, our towers are designed to meet ASHRAE 90.1 standards and incorporate water-saving drift eliminators and energy-efficient motors, helping projects earn LEED credits for sustainability.
Counterflow towers are generally more thermally efficient and suitable for high-performance commercial builds, while crossflow models typically have lower pressure drops and are better for space-limited retrofits.
Using the standard formula: Tower Water Flow (m³/h) = [Chiller Capacity (TR) × 3024 × 1.3] ÷ 5000. For example, a 500 TR chiller typically requires approximately 393 m³/h of water flow.





Address
20 Xingyuan South Street, Zaoqiang County, Hengshui City, Hebei Province, China