Ürün Açıklaması
Refrigerated Compressed Air Dryer (Built-In Pre-Cooler)
Detailed Photos
Principle of working :
The amount of water vapor in the air compression by compressed air temperature determined: in case of compressed air pressure is basically the same, reduce the temperature of the air compressed compression to reduce the amount of water vapor in the air, and the excess water vapor will condense into liquid.
Freezing dryer is according to the corresponding relationship between the saturation water vapor pressure and temperature, use refrigeration device makes the compressed air is cooled to a certain dew point temperature, precipitation containing water, through the steam water separator and electric drainage device will discharge water, so that the compressed air can be dry.
Product Parameters
| Model |
Air Capacity (Nm3/min) |
Gerilim (V) |
Fan Power (W) |
Air connector dia | Net weight (Kg) |
Lenghth (mm) |
Wideth (mm) |
Height (mm) |
Air flow (Nm3/n) |
| SDLF-0.5HT | 0.65 | 220 | 80 | G1" | 54 | 400 | 560 | 730 | 820 |
| SDLF-1HT | 1.2 | 220 | 80 | G1" | 57 | 400 | 560 | 730 | 820 |
| SDLF-2HT | 2.5 | 220 | 100 | G1" | 66 | 520 | 640 | 890 | 1640 |
| SDLF-3HT | 3.6 | 220 | 135 | G1" | 79 | 520 | 640 | 890 | 2670 |
| SDLF-4.5HT | 5.0 | 220 | 250 | G1-1/2″ | 86 | 540 | 700 | 1000 | 4650 |
| SDLF-6HT | 6.8 | 220 | 250 | G1-1/2″ | 90 | 540 | 700 | 1000 | 4650 |
| SDLF-8HT | 8.5 | 220 | 270 | G2" | 99 | 610 | 900 | 1070 | 5700 |
| SDLF-10HT | 10.9 | 380/220 | 260 | G2" | 113 | 610 | 900 | 1070 | 5700 |
| SDLF-12HT | 12.8 | 380/200 | 260 | G2" | 113 | 610 | 900 | 1070 | 5700 |
Note: The above models use plate/plate-fin heat exchangers.
Şirket Profili
Sertifikalar
Packaging & Shipping
SSS
| Satış Sonrası Hizmet: | Ok |
|---|---|
| Garanti: | 1 Year |
| Flow: | Cross Flow |
| Material Status: | Bulk |
| Drying Medium: | Air |
| Structure: | All Kinds |
| Örnekler: |
US$ 400/Piece
1 Adet (Minimum Sipariş) | |
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| Özelleştirme: |
Mevcut
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How does variable speed drive technology improve air compressor efficiency?
Variable Speed Drive (VSD) technology improves air compressor efficiency by allowing the compressor to adjust its motor speed to match the compressed air demand. This technology offers several benefits that contribute to energy savings and enhanced overall system efficiency. Here’s how VSD technology improves air compressor efficiency:
1. Matching Air Demand:
Air compressors equipped with VSD technology can vary the motor speed to precisely match the required compressed air output. Traditional fixed-speed compressors operate at a constant speed regardless of the actual demand, leading to energy wastage during periods of lower air demand. VSD compressors, on the other hand, ramp up or down the motor speed to deliver the necessary amount of compressed air, ensuring optimal energy utilization.
2. Reduced Unloaded Running Time:
Fixed-speed compressors often run unloaded during periods of low demand, where they continue to consume energy without producing compressed air. VSD technology eliminates or significantly reduces this unloaded running time by adjusting the motor speed to closely follow the air demand. As a result, VSD compressors minimize energy wastage during idle periods, leading to improved efficiency.
3. Soft Starting:
Traditional fixed-speed compressors experience high inrush currents during startup, which can strain the electrical system and cause voltage dips. VSD compressors utilize soft starting capabilities, gradually ramping up the motor speed instead of instantly reaching full speed. This soft starting feature reduces mechanical and electrical stress, ensuring a smooth and controlled startup, and minimizing energy spikes.
4. Energy Savings at Partial Load:
In many applications, compressed air demand varies throughout the day or during different production cycles. VSD compressors excel in such scenarios by operating at lower speeds during periods of lower demand. Since power consumption is proportional to motor speed, running the compressor at reduced speeds significantly reduces energy consumption compared to fixed-speed compressors that operate at a constant speed regardless of the demand.
5. Elimination of On/Off Cycling:
Fixed-speed compressors often use on/off cycling to adjust the compressed air output. This cycling can result in frequent starts and stops, which consume more energy and cause mechanical wear. VSD compressors eliminate the need for on/off cycling by continuously adjusting the motor speed to meet the demand. By operating at a consistent speed within the required range, VSD compressors minimize energy losses associated with frequent cycling.
6. Enhanced System Control:
VSD compressors offer advanced control capabilities, allowing for precise monitoring and adjustment of the compressed air system. These systems can integrate with sensors and control algorithms to maintain optimal system pressure, minimize pressure fluctuations, and prevent excessive energy consumption. The ability to fine-tune the compressor’s output based on real-time demand contributes to improved overall system efficiency.
By utilizing variable speed drive technology, air compressors can achieve significant energy savings, reduce operational costs, and enhance their environmental sustainability by minimizing energy wastage and optimizing efficiency.
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Modern hava kompresörlerinin enerji verimliliği nedir?
Teknoloji ve tasarım alanındaki gelişmeler sayesinde modern hava kompresörlerinin enerji verimliliği önemli ölçüde artmıştır. İşte modern hava kompresörlerinin verimliliğine katkıda bulunan enerji verimliliği özellikleri ve faktörlerine dair ayrıntılı bir bakış:
Değişken Hızlı Sürücü (VSD) Teknolojisi:
Birçok modern hava kompresörü, Değişken Hız Sürücüsü (VSD) veya Değişken Frekans Sürücüsü (VFD) olarak da bilinen teknolojiyi kullanmaktadır. Bu teknoloji, kompresör motorunun hızını basınçlı hava talebine göre ayarlamasına olanak tanır. Motor hızını gerekli hava akışına uyarlayarak, VSD kompresörler düşük talep dönemlerinde aşırı enerji tüketimini önleyebilir ve bu da sabit hızlı kompresörlere kıyasla önemli enerji tasarrufu sağlar.
Hava Kaçağı Azaltma:
Basınçlı hava sistemlerinde hava kaçağı yaygın bir sorundur ve önemli enerji israfına yol açabilir. Modern hava kompresörleri, hava kaçaklarını en aza indirmek için genellikle geliştirilmiş sızdırmazlık ve gelişmiş kontrol sistemlerine sahiptir. Hava kaçağını azaltarak, kompresör optimum basınç seviyelerini daha verimli bir şekilde koruyabilir ve bu da enerji tasarrufu sağlar.
Verimli Motor Tasarımı:
Hava kompresörünün motoru, enerji verimliliğinde çok önemli bir rol oynar. Modern kompresörler, belirlenmiş enerji verimliliği standartlarını karşılayan veya aşan yüksek verimli elektrik motorları içerir. Bu motorlar, enerji kayıplarını en aza indirgemek ve daha verimli çalışarak toplam güç tüketimini azaltmak üzere tasarlanmıştır.
Optimize Edilmiş Kontrol Sistemleri:
Modern hava kompresörlerine, performanslarını ve enerji tüketimlerini optimize etmek için gelişmiş kontrol sistemleri entegre edilmiştir. Bu kontrol sistemleri, hava basıncı, sıcaklık ve hava akışı gibi çeşitli parametreleri izler ve kompresörün çalışmasını buna göre ayarlar. Kompresörün çıkışını talebe göre hassas bir şekilde kontrol ederek, bu sistemler verimli ve enerji tasarruflu bir çalışma sağlar.
Hava Depolama ve Dağıtımı:
Verimli hava depolama ve dağıtım sistemleri, basınçlı hava sistemlerinde enerji kayıplarını en aza indirmek için çok önemlidir. Modern hava kompresörleri genellikle uygun boyutlarda ve yalıtımlı hava depolama tankları ve basınç düşüşlerini azaltan ve ısı transferini en aza indiren iyi tasarlanmış boru sistemleri içerir. Bu önlemler, sistem boyunca tutarlı ve verimli bir basınçlı hava tedarikini sağlamaya ve enerji israfını azaltmaya yardımcı olur.
Enerji Yönetimi ve İzleme:
Bazı modern hava kompresörlerinde, enerji tüketimi ve performans hakkında gerçek zamanlı veri sağlayan enerji yönetim ve izleme sistemleri bulunur. Bu sistemler, operatörlerin enerji verimsizliklerini belirlemelerine, kompresör ayarlarını optimize etmelerine ve enerji tasarrufu uygulamalarını hayata geçirmelerine olanak tanır.
Hava kompresörünün enerji verimliliğinin, model, boyut ve kullanım alanı gibi faktörlere de bağlı olduğunu belirtmek önemlidir. Üreticiler genellikle kompresörleri için enerji verimliliği derecelendirmeleri veya teknik özellikler sunarlar; bu da farklı modelleri karşılaştırmaya ve belirli bir uygulama için en verimli seçeneği belirlemeye yardımcı olabilir.
Genel olarak, modern hava kompresörleri verimliliklerini artırmak için çeşitli enerji tasarrufu teknolojileri ve tasarım unsurları içermektedir. Enerji verimli bir hava kompresörüne yatırım yapmak, yalnızca işletme maliyetlerini düşürmekle kalmaz, aynı zamanda enerji tüketimini en aza indirerek ve karbon emisyonlarını azaltarak sürdürülebilirlik çabalarına da katkıda bulunur.
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What are the safety considerations when operating an air compressor?
Operating an air compressor requires careful attention to safety to prevent accidents, injuries, and equipment damage. Here are some important safety considerations to keep in mind:
1. Read the Manual: Before operating an air compressor, thoroughly read and understand the manufacturer’s instruction manual. Familiarize yourself with the specific safety guidelines, recommended operating procedures, and any specific precautions or warnings provided by the manufacturer.
2. Proper Ventilation: Ensure that the area where the air compressor is operated has adequate ventilation. Compressed air can produce high levels of heat and exhaust gases. Good ventilation helps dissipate heat, prevent the buildup of fumes, and maintain a safe working environment.
3. Personal Protective Equipment (PPE): Always wear appropriate personal protective equipment, including safety glasses or goggles, hearing protection, and non-slip footwear. Depending on the task, additional PPE such as gloves, a dust mask, or a face shield may be necessary to protect against specific hazards.
4. Pressure Relief: Air compressors should be equipped with pressure relief valves or devices to prevent overpressurization. Ensure that these safety features are in place and functioning correctly. Regularly inspect and test the pressure relief mechanism to ensure its effectiveness.
5. Secure Connections: Use proper fittings, hoses, and couplings to ensure secure connections between the air compressor, air tools, and accessories. Inspect all connections before operation to avoid leaks or sudden hose disconnections, which can cause injuries or damage.
6. Inspect and Maintain: Regularly inspect the air compressor for any signs of damage, wear, or leaks. Ensure that all components, including hoses, fittings, and safety devices, are in good working condition. Follow the manufacturer’s recommended maintenance schedule to keep the compressor in optimal shape.
7. Electrical Safety: If the air compressor is electric-powered, take appropriate electrical safety precautions. Use grounded outlets and avoid using extension cords unless approved for the compressor’s power requirements. Protect electrical connections from moisture and avoid operating the compressor in wet or damp environments.
8. Safe Start-Up and Shut-Down: Properly start and shut down the air compressor following the manufacturer’s instructions. Ensure that all air valves are closed before starting the compressor and release all pressure before performing maintenance or repairs.
9. Training and Competence: Ensure that operators are adequately trained and competent in using the air compressor and associated tools. Provide training on safe operating procedures, hazard identification, and emergency response protocols.
10. Emergency Preparedness: Have a clear understanding of emergency procedures and how to respond to potential accidents or malfunctions. Know the location of emergency shut-off valves, fire extinguishers, and first aid kits.
By adhering to these safety considerations and implementing proper safety practices, the risk of accidents and injuries associated with operating an air compressor can be significantly reduced. Prioritizing safety promotes a secure and productive working environment.


editor by CX 2023-10-16