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China Spherical Roller Bearings - Powerful, Self-Aligning Solutions from Trusted Suppliers and Factory

Spherical roller bearings are essential components in many industrial applications, featuring a robust design that includes an inner ring with two rows of raceways, an outer ring with a spherical raceway, and barrel-shaped rolling elements. This unique configuration allows the center of the outer ring raceway to align perfectly with the bearing center, promoting enhanced performance and reliability, As leading suppliers in China, our factory specializes in high-quality spherical roller bearings that meet rigorous industry standards. Our commitment to excellence ensures that you receive durable and efficient bearings tailored for your specific needs, enhancing the overall performance of your machinery. Trust our China-based factory for your spherical roller bearing requirements and experience the difference in quality and performance

    Product Introduction

    Spherical roller bearings incorporate a large number of long, symmetrical, and large-diameter rollers, allowing them to withstand heavy concentrated loads. The unique raceway geometry and optimal surface finish of Type C and CA bearings minimize friction. Compared to traditional spherical roller bearings, these designs operate at lower temperatures, support heavier axial loads, and achieve higher speeds.

    HRB spherical roller bearings are available with cylindrical or tapered bores. Bearings of series 240 and 241 have a tapered bore with a taper of 1:30 (suffix code K30), while other bearings feature a tapered bore with a taper of 1:12 (suffix code K).


    Design

    Type C and EC Designs

    These bearings feature symmetrical rollers and a stamped steel cage. The guide ring is centered on the inner ring. Type EC bearings incorporate reinforced rollers for increased load capacity. Type C bearings employ optimized surface finishing on rollers and raceways to improve roller guidance and reduce friction.

    Type CA and ECA Designs

    These bearings feature symmetrical rollers and flanges on the inner ring. The guide ring is positioned between the two rows of rollers and centered on the inner ring. The cage is a one-piece machined brass or steel design. Type CA and ECA bearings utilize the same surface finishing as Type C bearings. Type ECA bearings incorporate reinforced rollers for enhanced load capacity.


    Oil Grooves and Holes

    For effective lubrication, standard HRB spherical roller bearings include annular oil grooves and three oil holes on the outer ring, except for Type C bearings with an outer diameter below 150 mm or 180 mm (varies by series) and all series 213 bearings.

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    The suffix code W33 denotes bearings (Types C, EC, CA, and ECA) with oil grooves and holes on the outer ring.


    Angular Misalignment

    The design of spherical roller bearings enables self-alignment, allowing them to compensate for angular misalignment between the inner and outer rings. Under normal load and operating conditions, the permissible misalignment values during inner ring rotation are provided in the table on the right.


    Tolerances

    Spherical roller bearings with cylindrical or tapered bores are manufactured with standard (normal) tolerances, as listed in Table 9.4.


    Internal Clearance

    Standard spherical roller bearings are supplied with normal radial internal clearance. However, most applications require bearings with C3 clearance, and some even require larger C4 clearance. Certain sizes are available with C2 clearance (smaller than normal).

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    The limits for various clearance grades are listed in Tables 5.25 and 5.26 (Pages 67–68) and comply with ISO 5753:1981. These values apply to unloaded bearings in an unmounted state.


    Effect of Operating Temperature on Bearing Materials

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    Standard spherical roller bearings undergo special heat treatment, ensuring no significant dimensional changes occur at operating temperatures exceeding +200°C.


    Minimum Load

    To ensure satisfactory operation, bearings must be subjected to a minimum load. Spherical roller bearings are no exception. Without sufficient load, inertial forces of the rollers and cage, along with lubricant friction, may adversely affect rolling behavior at high speeds, potentially causing destructive sliding between rollers and raceways.

    The minimum required radial load can be estimated using the formula:

    Minimum Radial Load Formula
    Frm = 0.02 × Cr
    • Frm — Minimum radial load (N)
    • Cr — Basic dynamic load rating (N)
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    The weight of supported components combined with external forces often exceeds the minimum load requirement. If not, supplemental radial loads (e.g., increased belt tension or idle torque) must be applied.


    Dynamic Equivalent Bearing Load

    Dynamic Load Formulas
    Condition: Fa / Fr ≤ e
    P = Fr + Y1 · Fa
    Condition: Fa / Fr > e
    P = 0.67 · Fr + Y2 · Fa

    The calculation coefficients e, Y1, and Y2 for each bearing are provided in the bearing tables.


    Static Equivalent Bearing Load

    Static Load Formula
    P0 = Fr + Y0 · Fa

    The calculation coefficient Y0 for each bearing is provided in the bearing tables.


    Frequently Asked Questions
    Q What are the main differences between Type C and Type CA spherical roller bearings?
    A Type C bearings use a stamped steel cage with the guide ring centered on the inner ring, while Type CA bearings feature flanges on the inner ring and a one-piece machined brass or steel cage, with the guide ring positioned between the two rows of rollers. Both types use the same optimized surface finishing to reduce friction and improve roller guidance.
    Q What does the suffix code W33 mean on HRB spherical roller bearings?
    A The suffix code W33 indicates that the bearing (Types C, EC, CA, or ECA) is equipped with annular oil grooves and three oil holes on the outer ring, enabling effective lubrication for demanding applications.
    Q Which internal clearance grade is most commonly required for spherical roller bearing applications?
    A Most applications require bearings with C3 clearance (greater than normal), and some demanding applications may even require C4 clearance. C2 clearance (smaller than normal) is available for certain sizes where tighter fits are needed.
    Q How do I calculate the minimum radial load for a spherical roller bearing?
    A The minimum required radial load is estimated using the formula Frm = 0.02 × Cr, where Frm is the minimum radial load in Newtons and Cr is the basic dynamic load rating in Newtons. If the weight of supported components does not meet this threshold, supplemental radial loads such as increased belt tension must be applied.
    Q What is the tapered bore taper ratio for HRB series 240 and 241 bearings?
    A HRB series 240 and 241 bearings have a tapered bore with a taper ratio of 1:30, denoted by the suffix code K30. All other HRB spherical roller bearing series with tapered bores use a standard taper of 1:12, denoted by the suffix code K.
    Q Can spherical roller bearings handle angular misalignment between the shaft and housing?
    A Yes. The self-aligning design of spherical roller bearings allows them to compensate for angular misalignment between the inner and outer rings. The permissible misalignment values under normal load and operating conditions during inner ring rotation are specified in the manufacturer's bearing tables.