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China Synthetic Fiber Medium Pocket Filter Suppliers - EN 779 Compliant, Aluminum Frame, High Efficiency Factory Products

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Introducing our high-quality air filters, crafted from durable aluminum sheets and galvanized steel sheets, tailored for optimal performance in various applications. As a leading factory in China, we prioritize using premium materials like synthetic fiber in our filters to ensure superior efficiency.

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Our frames come in multiple thickness options: 21mm, 25mm, and 46mm, catering to different needs. With exceptional filtration efficiency ratings of up to 95% at 0.5μm, our products meet stringent standards, including EN 779 classifications M5, M6, F7, F8, and F9.

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Designed to operate under demanding conditions, our air filters maintain functionality in temperatures up to 90℃ and humidity levels of 90% RH. As trusted suppliers in the market, we ensure that our products provide reliable performance and contribute to cleaner, healthier environments.

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    Application Area
    🏢 Central Air Conditioning 💊 Pharmaceutical 🏥 Hospital ⚡ Electronics 🍎 Food Industry

    Pocket filters are widely used in central air conditioning ventilation systems, pharmaceutical, hospital, electronics, food and other industrial applications, and can also serve as the medium filter for high-efficiency air filters.

    Filter Media Materials

    This is the key component that determines filtration efficiency, primarily made from synthetic chemical fibers.

    Main Types

    Synthetic Fiber: This is the most commonly used and mainstream material. It offers good strength, stable performance, and high cost-effectiveness.

    Polypropylene Fiber: This material possesses good chemical corrosion resistance, remains stable especially in humid environments, and is not prone to mold.

    Material Form and Manufacturing Process

    Non-woven Fabric: The vast majority of synthetic fiber bag filters utilize the non-woven fabric process. Fibers are randomly interlocked through methods like needle punching, melt blowing, or spun bonding, forming a three-dimensional web of varying depth.

    Structural Characteristics: This disordered structure creates countless curved, intricate micron-sized channels that capture particulate matter through the following mechanisms:

    • 1 Interception Effect: Particles are directly trapped on the fibers.
    • 2 Inertial Impact: Larger particles deviate from the air streamlines due to inertia and collide with the fibers.
    • 3 Diffusion Effect: Very small particles randomly collide with fibers due to Brownian motion.
    • 4 Electrostatic Effect: Some synthetic filter media carry an electrostatic charge, which enhances the adsorption capacity for fine particles.

    Support and Structural Frame Materials

    To enable the soft filter media to function stably, the following structural materials are required:

    Bag Support Frame: Inside each filter bag, there is typically a V-shaped or U-shaped support frame made of galvanized steel wire or plastic.

    Function: Prevents the filter from collapsing under airflow during operation, ensuring each filter bag remains fully expanded. This guarantees maximum effective filtration area and lower system resistance.

    Frame Materials

    Galvanized Steel Sheet: The most common choice, offering good strength and low cost, meeting the requirements for most air handling units.

    Aluminum Profile: Lighter in weight with good corrosion resistance, often used in weight-sensitive applications or special environments.

    EN 779 Synthetic Fiber Medium Pocket Filter (1)EN 779 Synthetic Fiber Medium Pocket Filter (1)
    The Efficiency of Pocket Filter
    ⚡ The efficiency of pocket filters ranges from 45% to 95%, and they can be selected based on specific requirements. The rational selection of filter efficiency and face velocity contributes to comprehensive economic benefits.

    For filters made of the same material, higher efficiency typically results in greater resistance and higher cost, while lower efficiency leads to reduced resistance and cost. Altering the air velocity will also affect resistance, efficiency, and the number of filters required, so appropriate selection should be made according to specific conditions.

    EN 779 Synthetic Fiber Medium Pocket Filter (2)EN 779 Synthetic Fiber Medium Pocket Filter (3)
    Service Life of Filters

    As dust accumulates on the filter media, the resistance increases. When the resistance reaches an unreasonable level, the filter must be discarded. Sometimes, excessive resistance can cause previously captured dust to become dislodged and re-enter the airflow; when this risk arises, the filter should also be replaced.

    💡 The resistance of a filter increases with higher airflow rates. By increasing the surface area of the filter media, the relative velocity of air passing through the filter can be reduced, thereby decreasing the resistance.
    Wind Velocity Relationship Diagram
    Wind Velocity Relationship Diagram (1)
    Product Parameters
    Wind Velocity Relationship Diagram (2)
    📌 Remarks: (1) Initial resistance tolerance of ±10%    (2) Support customer size
    Frequently Asked Questions (FAQ)
    Q What industries are pocket filters commonly used in?
    Pocket filters are widely applied in central air conditioning ventilation systems, as well as pharmaceutical, hospital, electronics, and food processing industries. They can also function as the medium-efficiency pre-filter stage before high-efficiency (HEPA) filters.
    Q What is the filtration efficiency range of pocket filters?
    The efficiency of pocket filters ranges from 45% to 95%. Selection depends on specific application requirements. Higher efficiency generally results in greater airflow resistance and higher cost, while lower efficiency offers reduced resistance and lower cost.
    Q What filter media materials are used in pocket filters?
    The primary materials are synthetic chemical fibers, with synthetic fiber and polypropylene fiber being the most common types. These are typically processed into non-woven fabric using needle punching, melt blowing, or spun bonding techniques to form a three-dimensional filtration structure.
    Q How do pocket filters capture particles from the air?
    Pocket filters capture particulate matter through four key mechanisms: (1) Interception Effect — particles are trapped directly on fibers; (2) Inertial Impact — larger particles collide with fibers due to inertia; (3) Diffusion Effect — tiny particles contact fibers via Brownian motion; (4) Electrostatic Effect — charged media attract and adsorb fine particles.
    Q When should a pocket filter be replaced?
    A pocket filter should be replaced when the accumulated dust causes resistance to rise to an unreasonable level, or when there is a risk that excessive resistance causes previously captured dust to become dislodged and re-enter the airflow. Regular monitoring of pressure drop is recommended to determine the optimal replacement schedule.
    Q Does airflow velocity affect the performance of pocket filters?
    Yes. Higher airflow rates increase the resistance of the filter. By increasing the surface area of the filter media, the relative air velocity through the filter can be reduced, which lowers resistance. Selecting the appropriate face velocity also directly impacts filtration efficiency, system resistance, and the number of filter units required.