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China Professional DC Brush Mini Electric Vacuum Pump wholesaler

Descrizione del prodotto

DC Brush Mini Electric Vacuum Pump

Descrizione:
CHINAMFG micro diaphragm pumps and compressors are based on a simple principal, the circular power from the motor is converted into oscillating movement by an eccentric, which moves up and down its central point, this motion is then transferred to a diaphragm by means of a connecting rod, an elastic diaphragm, which in conjunction with an inlet and outlet valve creates a pumping action.

The TM 40 Series offers multiple component configurations allowing them to be used for either vacuum operation, pressure operation, or alternating vacuum and pressure operations.The innovative, compact design incorporates leading edge technologies that allow it to operate harder, quieter and longer, reliabler, highly efficient.

TM 40 pumps can be mounted in any position and can deliver up to 13 l/min, 16L/min (dual head) depending on the model and will operate against pressures of up to 280Kpa.

Specification:

 
 
Modello
Pressure Pump Pompa a vuoto Rated Voltage No-load Current Max Pressure Max Vacuum Max Flow
  (Item Number) (Item Number) (Vdc) (A) (KPa) (KPa) (L/min)
TM40-B TM40A-B01-12-P22013 TM40A-B01-12-V8013 12 0.7 220 -80 13
  TM40-B02-12-P28016 TM40A-B02-12-V8016 12 1.2 280 -80 16
” P ” means pressure pump, ” V ” means vacuum pump, “12/24” means different voltages optional.
Pump Weight:280g; Pump Size:86*mm*65mm*40.5mm; Inlet&Outlet:OD 6.5mm/ID 3.4mm,hose suggestion:ID 5.0mm
Materials:pump head Nylon, membrane EPDM, valve EPDM
Motor type and code:”B”means economical brush DC motor (reference lifetime ≥1,000hours)

Caratteristiche:
Highest Performance/Size Ratio
Innovative and efficient engineering designs enable the TM 40 Series to push the performance envelope in a lightweight, compact size.
Performs Quieter
Optimized head, chamber, and flow path reduce noise without compromising performance.
Lasts Reliably Longer

Uncontaminated flow
no contamination of the media due to oil-free operation
Little vibration
Because of leading edge technologies, top quality bearing, superior brushless motor
High level of gas tightness
thanks to stress-optimised structured diaphragm, newly-designed valves and sealing systems, precise placement of the pump head
Extreme chemical resistance
The use of chemically resistant materials optional such as PTFE FKM or other ,material combinations for the parts which allows the corrosive gas to be pumped.
Optimal solution for your application
a wide standard range of materials, motors , voltages configurates multiple components system selected
 

Typical Application:
Industrial pressure and vacuum applications
Portable Analytical Instruments
Medical Diagnostic Equipment
Air Quality Sampling Monitors
Respiration Monitors
Gas or Odor Leak Detectors  

Dimension(mm) & Curve:

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Olio o no: Senza olio
Struttura: Membrane Pump
Metodo di scarico: Pressure ,Suction,Vacuum
Grado di vuoto: Alto vuoto
Motor: DC Brush,Motor
Materials: Pump Head Nylon, Membrane EPDM / PTFE, Valve EPDM
Personalizzazione:
Disponibile

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pompa a vuoto

Che cos'è il livello di vuoto e come si misura nelle pompe per vuoto?

Il livello di vuoto si riferisce al grado di pressione inferiore alla pressione atmosferica in un sistema a vuoto. Indica il livello di "vuoto" o l'assenza di molecole di gas nel sistema. Ecco una spiegazione dettagliata della misurazione del livello di vuoto nelle pompe per vuoto:

Il livello di vuoto viene tipicamente misurato utilizzando unità di pressione che rappresentano la differenza tra la pressione nel sistema di vuoto e la pressione atmosferica. L'unità di misura più comune per il livello di vuoto è il Pascal (Pa), che è l'unità SI. Altre unità comunemente utilizzate sono il Torr, il millibar (mbar) e i pollici di mercurio (inHg).

Le pompe per vuoto sono dotate di sensori di pressione o manometri che misurano la pressione all'interno del sistema del vuoto. Questi manometri sono progettati specificamente per misurare le basse pressioni che si incontrano nelle applicazioni del vuoto. Esistono diversi tipi di manometri utilizzati per misurare i livelli di vuoto:

1. Misuratore Pirani: I misuratori Pirani funzionano in base alla conduttività termica dei gas. Sono costituiti da un elemento riscaldato esposto al vuoto. Quando le molecole di gas si scontrano con l'elemento riscaldato, trasferiscono il calore, provocando una variazione di temperatura. Misurando la variazione di temperatura, è possibile dedurre la pressione e determinare il livello di vuoto.

2. Misuratore a termocoppia: I misuratori a termocoppia sfruttano la conducibilità termica dei gas, come i misuratori Pirani. Sono costituiti da due fili metallici dissimili uniti insieme, che formano una termocoppia. Quando le molecole di gas si scontrano con la termocoppia, causano una differenza di temperatura tra i fili, generando una tensione. La tensione è proporzionale alla pressione e può essere calibrata per fornire una lettura del livello di vuoto.

3. Manometro a capacità: I manometri a capacità misurano la pressione rilevando la variazione di capacità tra due elettrodi causata dalla deflessione di un diaframma flessibile. Al variare della pressione nel sistema di vuoto, il diaframma si sposta, modificando la capacità e fornendo una misura del livello di vuoto.

4. Misuratore di ionizzazione: I misuratori a ionizzazione funzionano ionizzando le molecole di gas nel sistema di vuoto e misurando la corrente elettrica risultante. La corrente ionica è proporzionale alla pressione e consente di determinare il livello di vuoto. Esistono diversi tipi di misuratori a ionizzazione, come quelli a catodo caldo, a catodo freddo e di Bayard-Alpert.

5. Misuratore di Baratron: I misuratori di Baratron utilizzano il principio della manometria capacitiva, ma con un design diverso. Sono costituiti da una membrana sensibile alla pressione separata da un piccolo spazio da un elettrodo di riferimento. La differenza di pressione tra il sistema di vuoto e l'elettrodo di riferimento provoca la deflessione del diaframma, modificando la capacità e fornendo una misura del livello di vuoto.

È importante notare che i diversi tipi di pompe per vuoto possono avere intervalli di pressione diversi e possono richiedere manometri specifici adatti alle loro condizioni operative. Inoltre, le pompe per vuoto sono spesso dotate di manometri multipli per fornire informazioni sulla pressione in diverse fasi del processo di pompaggio o in diverse parti del sistema.

In sintesi, il livello di vuoto si riferisce alla pressione inferiore alla pressione atmosferica in un sistema a vuoto. Viene misurato utilizzando manometri progettati specificamente per ambienti a bassa pressione. I tipi più comuni di manometri utilizzati nelle pompe per vuoto sono i manometri Pirani, i manometri a termocoppia, i manometri a capacità, i manometri a ionizzazione e i manometri Baratron.

\pompa a vuoto

How Do Vacuum Pumps Assist in Freeze-Drying Processes?

Freeze-drying, also known as lyophilization, is a dehydration technique used in various industries, including pharmaceutical manufacturing. Vacuum pumps play a crucial role in facilitating freeze-drying processes. Here’s a detailed explanation:

During freeze-drying, vacuum pumps assist in the removal of water or solvents from pharmaceutical products while preserving their structure and integrity. The freeze-drying process involves three main stages: freezing, primary drying (sublimation), and secondary drying (desorption).

1. Freezing: In the first stage, the pharmaceutical product is frozen to a solid state. Freezing is typically achieved by lowering the temperature of the product below its freezing point. The frozen product is then placed in a vacuum chamber.

2. Primary Drying (Sublimation): Once the product is frozen, the vacuum pump creates a low-pressure environment within the chamber. By reducing the pressure, the boiling point of water or solvents present in the frozen product is lowered, allowing them to transition directly from the solid phase to the vapor phase through a process called sublimation. Sublimation bypasses the liquid phase, preventing potential damage to the product’s structure.

The vacuum pump maintains a low-pressure environment by continuously removing the water vapor or solvent vapor generated during sublimation. The vapor is drawn out of the chamber, leaving behind the freeze-dried product. This process preserves the product’s original form, texture, and biological activity.

3. Secondary Drying (Desorption): After the majority of the water or solvents have been removed through sublimation, the freeze-dried product may still contain residual moisture or solvents. In the secondary drying stage, the vacuum pump continues to apply vacuum to the chamber, but at a higher temperature. The purpose of this stage is to remove the remaining moisture or solvents through evaporation.

The vacuum pump maintains the low-pressure environment, allowing the residual moisture or solvents to evaporate at a lower temperature than under atmospheric pressure. This prevents potential thermal degradation of the product. Secondary drying further enhances the stability and shelf life of the freeze-dried pharmaceutical product.

By creating and maintaining a low-pressure environment, vacuum pumps enable efficient and controlled sublimation and desorption during the freeze-drying process. They facilitate the removal of water or solvents while minimizing the potential damage to the product’s structure and preserving its quality. Vacuum pumps also contribute to the overall speed and efficiency of the freeze-drying process by continuously removing the vapor generated during sublimation and evaporation. The precise control provided by vacuum pumps ensures the production of stable and high-quality freeze-dried pharmaceutical products.

pompa a vuoto

What Is a Vacuum Pump, and How Does It Work?

A vacuum pump is a mechanical device used to create and maintain a vacuum or low-pressure environment within a closed system. Here’s a detailed explanation:

A vacuum pump operates on the principle of removing gas molecules from a sealed chamber, reducing the pressure inside the chamber to create a vacuum. The pump accomplishes this through various mechanisms and techniques, depending on the specific type of vacuum pump. Here are the basic steps involved in the operation of a vacuum pump:

1. Sealed Chamber:

The vacuum pump is connected to a sealed chamber or system from which air or gas molecules need to be evacuated. The chamber can be a container, a pipeline, or any other enclosed space.

2. Inlet and Outlet:

The vacuum pump has an inlet and an outlet. The inlet is connected to the sealed chamber, while the outlet may be vented to the atmosphere or connected to a collection system to capture or release the evacuated gas.

3. Mechanical Action:

The vacuum pump creates a mechanical action that removes gas molecules from the chamber. Different types of vacuum pumps use various mechanisms for this purpose:

– Positive Displacement Pumps: These pumps physically trap gas molecules and remove them from the chamber. Examples include rotary vane pumps, piston pumps, and diaphragm pumps.

– Momentum Transfer Pumps: These pumps use high-speed jets or rotating blades to transfer momentum to gas molecules, pushing them out of the chamber. Examples include turbomolecular pumps and diffusion pumps.

– Entrapment Pumps: These pumps capture gas molecules by adsorbing or condensing them on surfaces or in materials within the pump. Cryogenic pumps and ion pumps are examples of entrainment pumps.

4. Gas Evacuation:

As the vacuum pump operates, it creates a pressure differential between the chamber and the pump. This pressure differential causes gas molecules to move from the chamber to the pump’s inlet.

5. Exhaust or Collection:

Once the gas molecules are removed from the chamber, they are either exhausted into the atmosphere or collected and processed further, depending on the specific application.

6. Pressure Control:

Vacuum pumps often incorporate pressure control mechanisms to maintain the desired level of vacuum within the chamber. These mechanisms can include valves, regulators, or feedback systems that adjust the pump’s operation to achieve the desired pressure range.

7. Monitoring and Safety:

Vacuum pump systems may include sensors, gauges, or indicators to monitor the pressure levels, temperature, or other parameters. Safety features such as pressure relief valves or interlocks may also be included to protect the system and operators from overpressure or other hazardous conditions.

It’s important to note that different types of vacuum pumps have varying levels of vacuum they can achieve and are suitable for different pressure ranges and applications. The choice of vacuum pump depends on factors such as the required vacuum level, gas composition, pumping speed, and the specific application’s requirements.

In summary, a vacuum pump is a device that removes gas molecules from a sealed chamber, creating a vacuum or low-pressure environment. The pump accomplishes this through mechanical actions, such as positive displacement, momentum transfer, or entrapment. By creating a pressure differential, the pump evacuates gas from the chamber, and the gas is either exhausted or collected. Vacuum pumps play a crucial role in various industries, including manufacturing, research, and scientific applications.

China Professional DC Brush Mini Electric Vacuum Pump   wholesaler China Professional DC Brush Mini Electric Vacuum Pump   wholesaler
editor by Dream 2024-05-09

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