133.25.500

133.25.500 · Product image

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133.25.500 · Technical drawing

Brand
QIBR
Rolling element type
Roller
Measurement system
Metric
Outer diameter
634 mm
Inner diameter
366 mm
Total width
148 mm
External hole circle diameter
598 mm
Internal hole circle diameter
402 mm
Number of holes
24
Diameter of through holes
18 mm
Bolt size
M16 mm
Depth
32 mm
Number of grease holes
4
Width of inner ring
138 mm
Distance at top outer ring/inner ring
32 mm
Tooth width
80 mm
Module
5 mm
Number of teeth
68
Tip diameter
337 mm
Gear type
Internal gear
Temperature
-20 ℃ to +100 ℃
Seal type
Closed type
Ring material
42CrMo or 50Mn
Sealing material
NBR
Ball material
AISI 52100
Cage material
Nylon

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Description

The internally toothed three-row roller slewing bearing is well-suited for a wide range of heavy machinery applications including bucket wheel excavators, wheeled cranes, marine cranes, port cranes, molten steel running tables, and large-tonnage truck cranes. This bearing type excels in handling significant axial and radial loads while providing precise rotational control, essential for equipment operating under demanding conditions. Its robust design and internal gearing enable efficient power transmission and reliable performance in industries where durability and operational efficiency are paramount.

QIBR - 133.25.500 Slewing Bearing Advantages and Applications

133.25.500 Slewing Bearing, strong load-bearing capacity, high manufacturing precision, Inner diameter is 366 mm,Outer diameter is 634 mm,Total width is 148 mm,suitable for CNC machine tools, dismantling machines, tamping machines, graders and rotating towers, etc., is the most widely used bearing in working conditions requiring high precision.

QIBR - 133.25.500 Slewing Bearing Characteristics

133.25.500 Slewing Bearing, high durability, easy maintenance and installation. 133.25.500 Slewing Bearing, can withstand radial load, axial load and overturning moment at the same time, suitable for mechanical equipment that requires stable operation.

133.25.500 Slewing Bearing Features and Advantages

Compact design: Compact structure, it can be installed in space-constrained environments, and has a wider range of applications.

High load capacity: It can withstand axial, radial and overturning moments at the same time, suitable for heavy-duty applications.

Superior precision: Maintain high precision during use and reduce errors in equipment operation.

High temperature and wear resistance: Made of high-temperature bearing steel, with good wear resistance and strength.

Application: Widely used in lifting machinery, engineering machinery, transportation machinery, mining machinery, metallurgical machinery, medical equipment, ships, warships, radar, wind power generation and other fields.

QIBR - 133.25.500 Slewing Bearing Optimization

Grease replacement: Replace grease with other greases such as SFK, Mobil, Krupp, etc. to optimize the working performance and use conditions of the bearing.

Coating optimization: Provide other coatings such as zinc plating or nickel plating to enhance corrosion resistance and wear resistance and extend its service life in harsh environments.

Process optimization: Optimize the bearing production process, increase the bearing operating temperature range, and improve the bearing accuracy and stability.

More customization: QIBR can optimize the bearing structure design according to customers’ drawings or equipment requirements to meet equipment needs.

QIBR - 133.25.500 Slewing support bearing quality control

Dimension measurement: Use a variety of professional high-precision instruments to measure multiple dimensions of the bearing, with the highest accuracy up to 0.01mm.

Rotation accuracy: Use a dial indicator to measure small flaws or deviations on the bearing surface, with a measurement accuracy of up to 0.01mm.

Hardness measurement: Use a Leeb hardness tester to measure the bearing surface hardness, with a measurement accuracy of ±6HLD.

Metallographic analysis: Use a professional metallographic microscope to analyze the internal metallographic structure of the metal.

Geometric tolerance: Use a roundness meter to measure the bearing geometry and relative position.

Noise monitoring: Use a vibration meter to monitor the vibration during operation and obtain noise data.

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