Серия 7400B

  • Серия 7400B
выбиратьРасследованиеНомер подшипника.Граничные размеры (мм) Базовая нагрузка (кН)Предельная скорость (об/мин)Масса
дДБДинамический(Cr)Статический (Кор)СмазкаМасло(Кг)
7406B 30 90 23 51.4 30.1 6000 8000 0.9
7407B 35 100 25 60.2 37.9 5000 7500 1.1
7408B 40 110 27 70.1 49.1 5000 6500 1.35
7409B 45 120 29 80.7 44.1 4500 6000 1.75
7410B 50 130 31 105.3 71.2 4000 5500 2.1
7411B 55 140 33 110 76.3 3800 5200 2.55
7412B 60 150 35 119.3 86.1 3500 4700 3.2
7413B 65 160 37 128.7 96.4 3200 4500 4
7414B 70 180 42 138.7 109.6 3000 4200 5.55
7415B 75 190 45 148.4 120.4 2800 4000 6.8
7416B 80 200 48 158.4 132.4 2600 3700 8.18
7417B 85 210 52 168.6 145 2400 3400 9.3
7418B 90 225 54 179.1 159.2 2300 3200 10.8

Основные требования к конструкции высокоскоростных радиально-упорных шарикоподшипников

Радиально-упорные шарикоподшипники можно разделить на три категории в зависимости от применения:

1. Целью проектирования является максимальная динамическая нагрузка.

2. Целью разработки является сверхвысокая скорость.

3. Целью проектирования является высокая скорость и динамическая нагрузка.


When maximum dynamic load rating is the goal: Rolling element diameter Dw = (D-d)/2 x 0.618

When ultra-high speed is the goal: Rolling element diameter Dw = (D-d)/2 x 0.384≈0.4

When both high speed and load capacity are considered: Rolling element diameter Dw = (D-d)/2 x 0.5

The cage retaining rib coefficient is selected from Table 2.


Phenolic laminated fabric cages are very important for high-speed bearings. There are three cage guiding methods - inner land riding, outer land riding, and roller riding. Inner land riding has smaller moment of inertia and saves material but allows fewer rolling elements compared to outer land riding. Outer land riding has higher moment of inertia and can accommodate more rolling elements than inner riding. Roller riding generates less heat and noise at the same speed compared to inner and outer riding, but the structure is complex and difficult to manufacture, only suitable for molded plastic cages. For high-speed bearings, the cage radial wall thickness and width should be minimized, as long as strength permits. This not only reduces moments of inertia, but more importantly benefits heat dissipation and lubrication.


In summary, cage design is critical for high-speed angular contact ball bearings. Structural optimization helps meet strength, guidance, and inertia requirements while enabling heat dissipation, lubrication, and high-speed operation.



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