Pneumatic Components
part#
description
manufacturer
151211
length compensation VAL-1/4-20 For vacuum suction cups. Height compensator for suction-cup holder: 20 mm, Design structure: Vacuum connection at top, suction cup mounting: G 1/4, Vacuum connection: G1/4, Materials note: Free of copper and PTFE
customer-12
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150241
panel frame PZVT-FR Materials note: Conforms to RoHS
customer-12
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152617
vacuum switch VPEV-W-S-LED-GH For mounting on G or H rail. Authorisation: RCM Mark, CE mark (see declaration of conformity): to EU directive for EMC, Materials note: (* Contains PWIS substances, * Conforms to RoHS), Measured variable: Relative pressure, M
customer-12
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159603
flanged pressure gauge FMA-63-16-1/4-EN With display unit in bar and psi. Indicating range [bar]: 0 - 16 bar, Conforms to standard: EN 837-1, Nominal size of pressure gauge: 63, Design structure: Bourdon-tube pressure gauge, Mounting type: Front panel ins
customer-12
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173430
solenoid valve MOEH-3/2-1/8-P-B With solenoid coil and manual override, without plug socket. Valve function: 3/2 open, monostable, Type of actuation: electrical, Width: 17,8 mm, Standard nominal flow rate: 500 l/min, Operating pressure: 2 - 8 bar
customer-12
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161839
angled plug socket MPPE-3-B Connection frequency: 500, Mounting type: With sleeve nut, Assembly position: Any, Product weight: 65 g, Electrical connection: (* 8-pin, * Plug socket angled, * Solderable)
customer-12
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197443
manifold block MHP2-PR4-3 For semi in-line valve MHP2-...-HC/TC Max. number of valve positions: 4, Corrosion resistance classification CRC: 2 - Moderate corrosion stress, Mounting method for sub-base: (* with through hole, * with top-hat rail), Mounting m
customer-12
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173054
solenoid valve JMEBH-5/2-1/8-P-B-110AC With solenoid coils and manual override, without plug sockets. Valve function: 5/2 bistable, Type of actuation: electrical, Width: 17,8 mm, Standard nominal flow rate: 650 l/min, Operating pressure: 1,5 - 8 bar
customer-12
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535905
solenoid valve MOFH-3-1/2-EX With manual override, without solenoid coil or socket. Solenoid coil and socket should be ordered separately. Valve function: 3/2 open, monostable, Type of actuation: electrical, Width: 52 mm, Standard nominal flow rate: 3700
customer-12
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537811
vacuum gauge VAM-63-V1/0-R1/4-EN With display unit in bar. Nominal size of pressure gauge: 63, Position of connection: Rear side central, Based on the standard: DIN EN 837-1, Type of seal on screw-in stud: coating, Assembly position: Any
customer-12
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537707
diffuse sensor SOEG-RTH-M18-NS-S-2L With background suppression, round design Design: Round, Conforms to standard: EN 60947-5-2, Authorisation: (* RCM Mark, * c UL us - Listed (OL)), CE mark (see declaration of conformity): to EU directive for EMC, Materi
customer-12
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525227
sub-base MHA4-AS-3-1/4 For sub-base valves MHA4-... Corrosion resistance classification CRC: 2 - Moderate corrosion stress, Product weight: 310 g, Mounting method for sub-base: with through hole, Mounting method for valve: with internal (female) thread, P
customer-12
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539079
solenoid valve JMDDH-5/2-D-1-M12-C With M12 plug connection. Valve function: 5/2 bistable-dominant, Type of actuation: electrical, Width: 42 mm, Standard nominal flow rate: 1200 l/min, Operating pressure: 2 - 10 bar
customer-12
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539081
solenoid valve JMDDH-5/2-D-3-M12-C With M12 plug connection. Valve function: 5/2 bistable-dominant, Type of actuation: electrical, Width: 65 mm, Standard nominal flow rate: 4500 l/min, Operating pressure: 2 - 10 bar
customer-12
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538236
colour sensor SOEC-RT-Q50-PS-S-7L Block design Design: Block design, Conforms to standard: EN 60947-5-2, Authorisation: (* RCM Mark, * c UL us - Listed (OL)), CE mark (see declaration of conformity): to EU directive for EMC, Materials note: Free of copper
customer-12
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541669
plate MPL-TC-3-14 Corrosion resistance classification CRC: 2 - Moderate corrosion stress, Materials note: Conforms to RoHS
customer-12
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184586
manual override HAB-1/4 For exhaust air. Nominal size: 7 mm, Assembly position: Any, Valve function: exhaust component, Operating pressure: 0 - 10 bar, Standard nominal flow rate, exhaust: 165 l/min
customer-12
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549432
gear unit EMGA-80-P-G3-SST-87 Suitable for stepper motors. Gear unit flange size: 80 mm, Motor flange size: 87 mm, Torsional backlash: 0,12 deg, Type of gear unit: Planetary gear unit, Gear unit ratio: 3:1
customer-12
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547912
diffuse sensor SOEG-RT-M18-PA-K-2L Round design Design: Round, Conforms to standard: EN 60947-5-2, Authorisation: (* RCM Mark, * c UL us - Listed (OL)), CE mark (see declaration of conformity): to EU directive for EMC, Materials note: (* Free of copper an
customer-12
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537812
vacuum gauge FVAM-40-V1/0-G1/8-EN With display unit in bar. Nominal size of pressure gauge: 40, Position of connection: Rear side central, Based on the standard: DIN EN 837-1, Type of seal on screw-in stud: coating, Assembly position: Any
customer-12
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Pneumatic Components
General Guide & Overview
Pneumatic components are essential parts of a pneumatic system that utilizes compressed air to control movements and perform various tasks in industries such as manufacturing, construction, and automation. These components are designed to optimize automation and control and are favored by many industries for their cost-effectiveness and reliability.
Industrial pneumatic systems typically consist of a compressor, receiver, valves, and actuators. The compressor converts the air into compressed air, which is then stored in a receiver. Valves control the direction and flow of the air, while actuators are responsible for the required movement of the system.
Additionally, air preparation components such as filters, regulators, and lubricators play a crucial role in maintaining the performance and longevity of the pneumatic system.
Understanding the functions and applications of pneumatic components is key to harnessing the power of pneumatic systems effectively. In this guide, we will explore the various components of a pneumatic system and their functions, providing you with a comprehensive overview.
Advantages and Limitations of Pneumatic Systems
Pneumatic systems offer several advantages that make them popular in various industries. These include simplicity of design and control, reliability, and safety.
One of the key advantages of pneumatic systems is their simplicity. They can be easily designed and operated using standard components, making them cost-effective and efficient. This makes them a popular choice for industries that require automated processes.
Pneumatic systems are also known for their reliability. They can continue to function even if there is a loss of electrical power, ensuring uninterrupted operation. This is especially important in critical applications, where downtime can be costly and disruptive.
Additionally, pneumatic systems are considered safe to use. They are less prone to shock damage compared to hydraulic systems, reducing the risk of accidents. They also have a low risk of fire, making them suitable for applications where fire hazards are a concern.
However, it's significant to note that pneumatic systems also have limitations that need to be taken into account. One limitation is that they are prone to leakage. Air can escape from the system, leading to a decrease in performance and efficiency. Regular maintenance checks are necessary to detect and address any leakage issues in order to prevent potential problems.
Pneumatic systems also require maintenance and repairs to ensure their optimal functioning. Before any repairs, the system needs to be depressurized correctly to avoid accidents. Temperature and vibration changes can affect the performance of pneumatic systems, so it's important to consider these factors and take appropriate measures.
Components and Design of a Pneumatic System
A pneumatic system is composed of several essential components that work together to optimize its performance. The key components of a pneumatic system include an air compressor that converts the air into compressed air, an air tank that stores the compressed air, and an air filter that removes contaminants from the air before it enters the system.
To ensure stable and controlled operation, a regulator is used to adjust and maintain the desired pressure of the air within the system. Additionally, a lubricator is employed to provide lubrication, reducing friction and wear on the components, thus prolonging their lifespan.
The control valve is responsible for controlling the flow of air within the system, allowing for precision and flexibility in the movement of the actuators. These actuators, which can be in the form of cylinders or motors, convert the compressed air into mechanical movement, enabling the system to perform the desired tasks.
In designing a pneumatic system, careful consideration must be given to the arrangement and placement of these components. Proper positioning ensures an efficient and logical flow of air, reducing energy loss and optimizing performance. By strategically positioning the components, operators can achieve smooth operation and enhance the system's overall effectiveness.
FAQ
What are pneumatic components?
Pneumatic components are essential parts of a pneumatic system that utilize compressed air to control movements and perform various tasks in industries such as manufacturing, construction, and automation.
What are the main components of a pneumatic system?
The main components of a pneumatic system include an air compressor, an air tank, an air filter, a regulator, a lubricator, control valves, and actuators.
What are the advantages of pneumatic systems?
Pneumatic systems offer advantages such as simplicity of design and control, reliability, and safety. They are easy to design and operate, even without electrical power, and are less prone to shock damage and fire.
What are the limitations of pneumatic systems?
Pneumatic systems can be prone to leakage and require regular maintenance checks. The system needs to be depressurized correctly before repairs, and temperature and vibration changes can affect its performance.