Produktbeschreibung
Produktbeschreibung
| Modell | MDSH900S-YC | |||||||||
| Kompressor | Luft delivery |
m³/min | 26.12 | |||||||
| cu.ft/min | 936 | |||||||||
| Discharge pressure | Bar | 16 | ||||||||
| psig | 232 | |||||||||
| Capacity of pressure Reserrvoir | L | 168 | ||||||||
| Diesel Engine |
Manufacture&Model | YUCHAI-YC6MK400L-K20 | ||||||||
| Cylinder Number | 6 | |||||||||
| Displacement(L) | 10.338 | |||||||||
| Rotation speed(Rmp) | Operating | 2200 | ||||||||
| Idle speed(r/min) | 1400 | |||||||||
| Rated power(KW) | 295 | |||||||||
| Fuel Capacity(L) | 555 | |||||||||
| Voltage of Battery | 24V | |||||||||
| Pipe Size×No | 2″*1PCS 3/4″*2PCS | |||||||||
| Others | Dimension | L(mm) | 5700 | |||||||
| W(mm) | 2100 | |||||||||
| H(mm) | 2286 | |||||||||
| Gewicht (kg) | 5350 | |||||||||
Standard Configuration
| Suction valve | Lubricating oil filter | Oil thermostatic valve | Solenoid valve |
| Vertical air/oil tank | 50°C radiator | Pressure regular valve | Air/oil separator |
| Lubricating oil radiator | Safety valve | Emergency stop button | Air filter of engine |
| Minimum pressure valve | Lockable battery isolator switch | Air filter of compressor | Vent valve |
| Powder coated canopy | Shuttle valve | 24V sealed for life maintenance free battery | Fuel tank for 8 hours running |
Structure diagram
General Features
Unternehmensinformationen
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Versandkosten:
Geschätzte Frachtkosten pro Einheit. |
To be negotiated |
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| Kundendienst: | Online |
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| Garantie: | 2 Years |
| Schmierstil: | Geschmiert |
| Anpassung: |
Verfügbar
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Wie werden Luftkompressoren in der pharmazeutischen Produktion eingesetzt?
Luftkompressoren spielen eine entscheidende Rolle in der pharmazeutischen Produktion und werden dort für verschiedene kritische Anwendungen eingesetzt. Die pharmazeutische Industrie benötigt eine zuverlässige Quelle für saubere Druckluft, um die Sicherheit, Effizienz und Qualität ihrer Prozesse zu gewährleisten. Hier ein Überblick über die Verwendung von Luftkompressoren in der pharmazeutischen Produktion:
1. Fertigungsprozesse:
Luftkompressoren werden in zahlreichen Fertigungsprozessen der pharmazeutischen Industrie eingesetzt. Druckluft dient unter anderem zum Mischen und Vermengen von Inhaltsstoffen, zur Granulierung, Tablettenpressung, Beschichtung und Verkapselung von Arzneimitteln. Die kontrollierte Zufuhr von Druckluft ermöglicht präzise und gleichbleibende Fertigungsprozesse und gewährleistet so die Herstellung hochwertiger Arzneimittel.
2. Instrumentierungs- und Steuerungssysteme:
Pharmazeutische Produktionsanlagen benötigen Druckluft für den Betrieb von Mess- und Regelsystemen. Druckluft dient zum Ansteuern von pneumatischen Ventilen, Aktuatoren und Steuergeräten, die den Durchfluss von Flüssigkeiten regulieren, Temperatur und Druck steuern und verschiedene Prozesse automatisieren. Dank ihrer Reinheit und Trockenheit eignet sich Druckluft ideal, um die Integrität und Genauigkeit dieser kritischen Regelmechanismen zu gewährleisten.
3. Verpackung und Abfüllung:
Luftkompressoren werden in der pharmazeutischen Verpackungs- und Abfülltechnik eingesetzt. Druckluft treibt Maschinen und Anlagen zur Flaschenreinigung, Etikettierung, zum Verschließen und Versiegeln von Arzneimitteln an. Sie liefert die notwendige Kraft und Präzision für eine effiziente und zuverlässige Verpackung und gewährleistet so Produktsicherheit und Konformität.
4. Reinraumumgebungen:
Die pharmazeutische Produktion findet häufig in Reinräumen statt, um Kontaminationen zu vermeiden und die Produktqualität zu gewährleisten. Luftkompressoren versorgen diese Reinräume mit sauberer und gefilterter Druckluft und schaffen so eine kontrollierte und sterile Umgebung für die Arzneimittelherstellung. Druckluft wird auch in Reinraumduschen und Luftschleiern zur Dekontamination von Personal und Material eingesetzt.
5. Laboranwendungen:
In pharmazeutischen Laboren werden Luftkompressoren für vielfältige Anwendungen eingesetzt. Druckluft wird in Laborinstrumenten wie Gaschromatographen, Massenspektrometern und anderen Analysegeräten verwendet. Sie kommt auch in Reinraumwerkbänken, Abzügen und Laminarströmungswerkbänken zum Einsatz und sorgt so für eine kontrollierte und saubere Umgebung für Tests, Analysen und Forschung.
6. Heizungs-, Lüftungs- und Klimaanlagen:
Luftkompressoren spielen eine zentrale Rolle in Heizungs-, Lüftungs- und Klimaanlagen (HLK) von pharmazeutischen Produktionsstätten. Die Druckluft versorgt HLK-Steuerungen, Klappen, Aktuatoren und Luftaufbereitungsanlagen mit Druckluft und gewährleistet so eine optimale Luftzirkulation, Temperaturregelung und die Einhaltung der Umgebungsbedingungen in den verschiedenen Produktionsbereichen.
Durch den Einsatz von Luftkompressoren in der pharmazeutischen Produktion kann die Industrie strenge Qualitätsstandards einhalten, die betriebliche Effizienz steigern und die Sicherheit und Wirksamkeit der pharmazeutischen Produkte gewährleisten.
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Can air compressors be integrated into automated systems?
Yes, air compressors can be integrated into automated systems, providing a reliable and versatile source of compressed air for various applications. Here’s a detailed explanation of how air compressors can be integrated into automated systems:
Pneumatic Automation:
Air compressors are commonly used in pneumatic automation systems, where compressed air is utilized to power and control automated machinery and equipment. Pneumatic systems rely on the controlled release of compressed air to generate linear or rotational motion, actuating valves, cylinders, and other pneumatic components. By integrating an air compressor into the system, a continuous supply of compressed air is available to power the automation process.
Control and Regulation:
In automated systems, air compressors are often connected to a control and regulation system to manage the compressed air supply. This system includes components such as pressure regulators, valves, and sensors to monitor and adjust the air pressure, flow, and distribution. The control system ensures that the air compressor operates within the desired parameters and provides the appropriate amount of compressed air to different parts of the automated system as needed.
Sequential Operations:
Integration of air compressors into automated systems enables sequential operations to be carried out efficiently. Compressed air can be used to control the timing and sequencing of different pneumatic components, ensuring that the automated system performs tasks in the desired order and with precise timing. This is particularly useful in manufacturing and assembly processes where precise coordination of pneumatic actuators is required.
Energy Efficiency:
Air compressors can contribute to energy-efficient automation systems. By incorporating energy-saving features such as Variable Speed Drive (VSD) technology, air compressors can adjust their power output according to the demand, reducing energy consumption during periods of low activity. Additionally, efficient control and regulation systems help optimize the use of compressed air, minimizing waste and improving overall energy efficiency.
Monitoring and Diagnostics:
Integration of air compressors into automated systems often includes monitoring and diagnostic capabilities. Sensors and monitoring devices can be installed to collect data on parameters such as air pressure, temperature, and system performance. This information can be used for real-time monitoring, preventive maintenance, and troubleshooting, ensuring the reliable operation of the automated system.
When integrating air compressors into automated systems, it is crucial to consider factors such as the specific requirements of the automation process, the desired air pressure and volume, and the compatibility of the compressor with the control and regulation system. Consulting with experts in automation and compressed air systems can help in designing an efficient and reliable integration.
In summary, air compressors can be seamlessly integrated into automated systems, providing the necessary compressed air to power and control pneumatic components, enabling sequential operations, and contributing to energy-efficient automation processes.
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How does an air compressor work?
An air compressor works by using mechanical energy to compress and pressurize air, which is then stored and used for various applications. Here’s a detailed explanation of how an air compressor operates:
1. Air Intake: The air compressor draws in ambient air through an intake valve or filter. The air may pass through a series of filters to remove contaminants such as dust, dirt, and moisture, ensuring the compressed air is clean and suitable for its intended use.
2. Compression: The intake air enters a compression chamber, typically consisting of one or more pistons or a rotating screw mechanism. As the piston moves or the screw rotates, the volume of the compression chamber decreases, causing the air to be compressed. This compression process increases the pressure and reduces the volume of the air.
3. Pressure Build-Up: The compressed air is discharged into a storage tank or receiver where it is held at a high pressure. The tank allows the compressed air to be stored for later use and helps to maintain a consistent supply of compressed air, even during periods of high demand.
4. Pressure Regulation: Air compressors often have a pressure regulator that controls the output pressure of the compressed air. This allows the user to adjust the pressure according to the requirements of the specific application. The pressure regulator ensures that the compressed air is delivered at the desired pressure level.
5. Release and Use: When compressed air is needed, it is released from the storage tank or receiver through an outlet valve or connection. The compressed air can then be directed to the desired application, such as pneumatic tools, air-operated machinery, or other pneumatic systems.
6. Continued Operation: The air compressor continues to operate as long as there is a demand for compressed air. When the pressure in the storage tank drops below a certain level, the compressor automatically starts again to replenish the compressed air supply.
Additionally, air compressors may include various components such as pressure gauges, safety valves, lubrication systems, and cooling mechanisms to ensure efficient and reliable operation.
In summary, an air compressor works by drawing in air, compressing it to increase its pressure, storing the compressed air, regulating the output pressure, and releasing it for use in various applications. This process allows for the generation of a continuous supply of compressed air for a wide range of industrial, commercial, and personal uses.


editor by CX 2023-09-27