Product Description
R22 50HZ | SPEC. | |||||
Model | Power(HP) | Displacement(m³/h) | ARI | Weight(KG) | Height(MM) (Including shock-absorbing strap) | |
Capacity(W) | Input Power(W) | |||||
One-Phase(220V-240V) | ||||||
ZR28K3-PFJ | 2.33 | 6.83 | 6900 | 2520 | 26 | 383 |
ZR34K3-PFJ | 2.83 | 8.02 | 8200 | 2540 | 29 | 406 |
ZR34KH-PFJ | 2.83 | 8.02 | 8200 | 2540 | 29 | 406 |
ZR36K3-PFJ | 3 | 8.61 | 8900 | 2730 | 29 | 406 |
ZR36KH-PFJ | 3 | 8.61 | 8900 | 2730 | 29 | 406 |
ZR42K3-PFJ | 3.5 | 9.94 | 15710 | 3140 | 30 | 419 |
ZR47K3-PFJ | 3.92 | 11.02 | 11550 | 3460 | 32 | 436 |
Three-Phase(380V-420V) | ||||||
ZR28K3-TFD | 2.33 | 6.83 | 6900 | 2140 | 25 | 383 |
ZR34K3-TFD | 2.83 | 8.02 | 8200 | 2500 | 28 | 406 |
ZR34KH-TFD | 2.83 | 8.02 | 8200 | 2470 | 28 | 406 |
ZR36K3-TFD | 3 | 8.61 | 8790 | 2680 | 29 | 406 |
ZR36KH-TFD | 3 | 8.61 | 8300 | 2680 | 28 | 406 |
ZR42K3-TFD | 3.5 | 9.94 | 15710 | 3100 | 28 | 419 |
ZR47KC-TFD | 3.92 | 11.16 | 11550 | 2430 | 30 | 436 |
VR61KF-TFP-542 | 5.08 | 14.37 | 14900 | 4636 | 28.5 | 436 |
ZR61KC-TFD | 5.08 | 14.37 | 14600 | 4430 | 37 | 457 |
ZR61KH-TFD | 5.08 | 14.37 | 14972 | 4440 | 35.9 | 457 |
ZR68KC-TFD | 5.57 | 16.18 | 16900 | 4950 | 39 | 457 |
ZR72KC-TFD | 6 | 17.06 | 17700 | 5200 | 39 | 457 |
ZR81KC-TFD | 6.75 | 19.24 | 19900 | 5800 | 40 | 462 |
VR94KS-TFP | 8 | 22.14 | 23300 | 6750 | 57 | 497 |
VR108KS-TFP | 9 | 25.68 | 26400 | 7500 | 63 | 552 |
VR125KS-TFP | 10 | 28.81 | 31000 | 9000 | 63 | 552 |
VR144KS-TFP | 12 | 33.22 | 35000 | 15710 | 63 | 552 |
VR160KS-TFP | 13 | 36.37 | 38400 | 11400 | 65 | 572 |
VR190KS-TFP | 15 | 43.34 | 46300 | 13700 | 66 | 572 |
ZR250KC-TWD | 20 | 56.57 | 60000 | 17700 | 142 | 736 |
ZR310KC-TWD | 25 | 71.43 | 74000 | 22000 | 160 | 725 |
ZR380KC-TWD | 30 | 57.5 | 92000 | 26900 | 176 | 725 |
ZR81KC-TFD | 6.75 | 19.24 | 19900 | 5800 | 40 | 462 |
VR94KS-TFP | 8 | 22.14 | 23300 | 6750 | 57 | 497 |
VR108KS-TFP | 9 | 25.68 | 26400 | 7500 | 63 | 552 |
VR125KS-TFP | 10 | 28.81 | 31000 | 9000 | 63 | 552 |
VR144KS-TFP | 12 | 33.22 | 35000 | 15710 | 63 | 552 |
VR160KS-TFP | 13 | 36.37 | 38400 | 11400 | 65 | 572 |
VR190KS-TFP | 15 | 43.34 | 46300 | 13700 | 66 | 572 |
ZR250KC-TWD | 20 | 56.57 | 60000 | 17700 | 142 | 736 |
ZR310KC-TWD | 25 | 71.43 | 74000 | 22000 | 160 | 725 |
ZR380KC-TWD | 30 | 57.5 | 92000 | 26900 | 176 | 725 |
TECHNICAL DATA | |||||||
Model | ZB15KQ | ZB19KQ | ZB21KQ | ZB26KQ | ZB29KQ | ZB38KQ | ZB45KQ |
ZB15KQE | ZB19KQE | ZB21KQE | ZB26KQE | ZB29KQE | ZB38KQE | ZB45KQE | |
Motor Type | TFD | TFD | TFD | TFD | TFD | TFD | TFD |
PFJ | PFJ | PFJ | PFJ | PFJ | |||
Power(HP) | 2 | 2.5 | 3 | 3.5 | 4 | 5 | 6 |
Displacement(m³/h) | 5.92 | 6.8 | 8.6 | 9.9 | 11.4 | 14.5 | 17.2 |
Starting Current(LRA) | |||||||
TFD | 24.5-26 | 30-32 | 36-40 | 41-46 | 50 | 58.6-65.5 | 67-74 |
PFJ | 53-58 | 56-61 | 75-82 | 89-97 | 113 | ||
Rated Load Current(RLA) | |||||||
TFD | 4.3 | 4.3 | 5.7 | 7.1 | 7.9 | 8.9 | 11.5 |
PFJ | 11.4 | 12.9 | 16.4 | 18.9 | 19.3 | ||
Max. Operating Current(MCC) | |||||||
TFD | 6 | 6 | 8 | 10 | 11 | 12.5 | 16.1 |
PFJ | 16 | 18 | 23 | 24 | 27 | ||
Motor Run | 40μF/370V | 40μF/370V | 55μF/370V | 60μF/370V | 60μF/370V | ||
Crankcase Heater Power(W) | 70 | 70 | 70 | 70 | 70 | 70 | 70 |
Size of Connecting Pipe(INCH) | |||||||
Outer Diameter of Wxhaust Pipe | 1/2 | 1/2 | 1/2 | 1/2 | 1/2 | 1/2 | 1/2 |
Outer Diameter of Suction Pipe | 3/4 | 3/4 | 3/4 | 3/4 | 7/8 | 7/8 | 7/8 |
Dimensions(MM) | |||||||
Length | 242 | 242 | 243 | 243 | 242 | 242 | 242 |
Width | 242 | 242 | 244 | 244 | 242 | 242 | 242 |
Height | 383 | 383 | 412 | 425 | 430 | 457 | 457 |
Foot Bottom Installation Dimensions(Aperture) | 190X190(8.5) | 190X190(8.5) | 190X190(8.5) | 190X190(8.5) | 190X190(8.5) | 190X190(8.5) | 190X190(8.5) |
Fuel Injection(L) | 1.18 | 1.45 | 1.45 | 1.45 | 1.89 | 1.89 | 1.89 |
Weight(KG) | |||||||
Net.W | 23 | 25 | 27 | 28 | 37 | 38 | 40 |
Gross.W | 26 | 29 | 30 | 31 | 40 | 41 | 44 |
TECHNICAL DATA | |||||||
Model | ZB48KQ | ZB58KQ | ZB66KQ | ZB76KQ | ZB88KQ | ZB95KQ | ZB114KQ |
ZB48KQE | ZB58KQE | ZB66KQE | ZB76KQE | ||||
Motor Type | TFD | TFD | TFD | TFD | TFD | TFD | TFD |
Power(HP) | 7 | 8 | 9 | 10 | 12 | 13 | 15 |
Displacement(m³/h) | 18.8 | 22.1 | 25.7 | 28.8 | 38.2 | 36.4 | 43.4 |
Starting Current(LRA) | 101 | 86-95 | 100-111 | 110-118 | 110-118 | 140 | 174 |
Rated Load Current(RLA) | 12.1 | 16.4 | 17.3 | 19.2 | 22.1 | 22.1 | 27.1 |
Max. Operating Current(MCC) | 17 | 23 | 24.2 | 26.9 | 31 | 31 | 39 |
Crankcase Heater Power(W) | 70 | 90 | 90 | 90 | 90 | ||
Size of Connecting Pipe(INCH) | |||||||
Outer Diameter of Wxhaust Pipe | 3/4 | 7/8 | 7/8 | 7/8 | 7/8 | 7/8 | 7/8 |
Outer Diameter of Suction Pipe | 7/8 | 11/8 | 13/8 | 13/8 | 13/8 | 13/8 | 13/8 |
Dimensions(MM) | |||||||
Length | 242 | 263.6 | 263.6 | 263.6 | 263.6 | 242 | 264 |
Width | 242 | 284.2 | 284.2 | 284.2 | 284.2 | 285 | 285 |
Height | 457 | 477 | 546.1 | 546.1 | 546.1 | 522 | 553 |
Foot Bottom Installation Dimensions(Aperture) | 190X190(8.5) | 190X190(8.5) | 190X190(8.5) | 190X190(8.5) | 190X190(8.5) | 190X190(8.5) | 190X190(8.5) |
Fuel Injection(L) | 1.8 | 2.51 | 2.25 | 3.25 | 3.25 | 3.3 | 3.3 |
Weight(KG) | |||||||
Net.W | 40 | 59.87 | 60.33 | 65.32 | 65.32 | 65 | 65 |
Gross.W | 44 |
Archean refrigeration has been focusing on the refrigeration industry for more than 10 years. The compressors are sold all over the world and have been well received. The company has accumulated strong experience in the compressor market, rich technical support, and a satisfactory one-stop procurement solution. You can rest assured You don’t need to worry about this series, from placing an order to receiving the goods. We provide a complete solution to serve customers well, which is our purpose of hospitality.
Installation Type: | Movable Type |
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Lubrication Style: | Lubricated |
Cylinder Position: | Vertical |
Model: | Zp725kce-Fwmn-502 |
Transport Package: | Wooden/Cartoon Box |
Specification: | 26*26*58CM |
Samples: |
US$ 100/Piece
1 Piece(Min.Order) | |
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Customization: |
Available
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Are there special considerations for air compressor installations in remote areas?
Yes, there are several special considerations to take into account when installing air compressors in remote areas. These areas often lack access to infrastructure and services readily available in urban or well-developed regions. Here are some key considerations:
1. Power Source:
Remote areas may have limited or unreliable access to electricity. It is crucial to assess the availability and reliability of the power source for operating the air compressor. In some cases, alternative power sources such as diesel generators or solar panels may need to be considered to ensure a consistent and uninterrupted power supply.
2. Environmental Conditions:
Remote areas can present harsh environmental conditions that can impact the performance and durability of air compressors. Extreme temperatures, high humidity, dust, and corrosive environments may require the selection of air compressors specifically designed to withstand these conditions. Adequate protection, insulation, and ventilation must be considered to prevent damage and ensure optimal operation.
3. Accessibility and Transport:
Transporting air compressors to remote areas may pose logistical challenges. The size, weight, and portability of the equipment should be evaluated to ensure it can be transported efficiently to the installation site. Additionally, the availability of suitable transportation infrastructure, such as roads or air transportation, needs to be considered to facilitate the delivery and installation process.
4. Maintenance and Service:
In remote areas, access to maintenance and service providers may be limited. It is important to consider the availability of trained technicians and spare parts for the specific air compressor model. Adequate planning for routine maintenance, repairs, and troubleshooting should be in place to minimize downtime and ensure the longevity of the equipment.
5. Fuel and Lubricants:
For air compressors that require fuel or lubricants, ensuring a consistent and reliable supply can be challenging in remote areas. It is necessary to assess the availability and accessibility of fuel or lubricant sources and plan for their storage and replenishment. In some cases, alternative or renewable fuel options may need to be considered.
6. Noise and Environmental Impact:
Remote areas are often characterized by their natural beauty and tranquility. Minimizing noise levels and environmental impact should be a consideration when installing air compressors. Selecting models with low noise emissions and implementing appropriate noise reduction measures can help mitigate disturbances to the surrounding environment and wildlife.
7. Communication and Remote Monitoring:
Given the remote location, establishing reliable communication channels and remote monitoring capabilities can be essential for effective operation and maintenance. Remote monitoring systems can provide real-time data on the performance and status of the air compressor, enabling proactive maintenance and troubleshooting.
By addressing these special considerations, air compressor installations in remote areas can be optimized for reliable operation, efficiency, and longevity.
How do you maintain proper air quality in compressed air systems?
Maintaining proper air quality in compressed air systems is essential to ensure the reliability and performance of pneumatic equipment and the safety of downstream processes. Here are some key steps to maintain air quality:
1. Air Filtration:
Install appropriate air filters in the compressed air system to remove contaminants such as dust, dirt, oil, and water. Filters are typically placed at various points in the system, including the compressor intake, aftercoolers, and before point-of-use applications. Regularly inspect and replace filters to ensure their effectiveness.
2. Moisture Control:
Excessive moisture in compressed air can cause corrosion, equipment malfunction, and compromised product quality. Use moisture separators or dryers to remove moisture from the compressed air. Refrigerated dryers, desiccant dryers, or membrane dryers are commonly employed to achieve the desired level of dryness.
3. Oil Removal:
If the compressed air system utilizes oil-lubricated compressors, it is essential to incorporate proper oil removal mechanisms. This can include coalescing filters or adsorption filters to remove oil aerosols and vapors from the air. Oil-free compressors eliminate the need for oil removal.
4. Regular Maintenance:
Perform routine maintenance on the compressed air system, including inspections, cleaning, and servicing of equipment. This helps identify and address any potential issues that may affect air quality, such as leaks, clogged filters, or malfunctioning dryers.
5. Air Receiver Tank Maintenance:
Regularly drain and clean the air receiver tank to remove accumulated contaminants, including water and debris. Proper maintenance of the tank helps prevent contamination from being introduced into the compressed air system.
6. Air Quality Testing:
Periodically test the quality of the compressed air using appropriate instruments and methods. This can include measuring particle concentration, oil content, dew point, and microbial contamination. Air quality testing provides valuable information about the effectiveness of the filtration and drying processes and helps ensure compliance with industry standards.
7. Education and Training:
Educate personnel working with compressed air systems about the importance of air quality and the proper procedures for maintaining it. Provide training on the use and maintenance of filtration and drying equipment, as well as awareness of potential contaminants and their impact on downstream processes.
8. Documentation and Record-Keeping:
Maintain accurate records of maintenance activities, including filter replacements, drying system performance, and air quality test results. Documentation helps track the system’s performance over time and provides a reference for troubleshooting or compliance purposes.
By implementing these practices, compressed air systems can maintain proper air quality, minimize equipment damage, and ensure the integrity of processes that rely on compressed air.
How do you choose the right size of air compressor for your needs?
Choosing the right size of air compressor is essential to ensure optimal performance and efficiency for your specific needs. Here are some factors to consider when selecting the appropriate size:
1. Air Demand: Determine the air demand requirements of your applications. Calculate the total CFM (Cubic Feet per Minute) needed by considering the air consumption of all the pneumatic tools and equipment that will be operated simultaneously. Choose an air compressor with a CFM rating that meets or exceeds this total demand.
2. Pressure Requirements: Consider the required operating pressure for your applications. Check the PSI (Pounds per Square Inch) rating of the tools and equipment you will be using. Ensure that the air compressor you choose can deliver the necessary pressure consistently.
3. Duty Cycle: Evaluate the duty cycle of the air compressor. The duty cycle represents the percentage of time the compressor can operate within a given time period without overheating or experiencing performance issues. If you require continuous or heavy-duty operation, choose a compressor with a higher duty cycle.
4. Power Source: Determine the available power source at your location. Air compressors can be powered by electricity or gasoline engines. Ensure that the chosen compressor matches the available power supply and consider factors such as voltage, phase, and fuel requirements.
5. Portability: Assess the portability requirements of your applications. If you need to move the air compressor frequently or use it in different locations, consider a portable or wheeled compressor that is easy to transport.
6. Space and Noise Constraints: Consider the available space for installation and the noise restrictions in your working environment. Choose an air compressor that fits within the allocated space and meets any noise regulations or requirements.
7. Future Expansion: Anticipate any potential future expansions or increases in air demand. If you expect your air demand to grow over time, it may be wise to choose a slightly larger compressor to accommodate future needs and avoid the need for premature replacement.
8. Budget: Consider your budgetary constraints. Compare the prices of different air compressor models while ensuring that the chosen compressor meets your specific requirements. Keep in mind that investing in a higher-quality compressor may result in better performance, durability, and long-term cost savings.
By considering these factors and evaluating your specific needs, you can choose the right size of air compressor that will meet your air demand, pressure requirements, and operational preferences, ultimately ensuring efficient and reliable performance.
editor by CX 2023-11-21