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High-speed spindle bearings further improve the mechanical and thermodynamic load-bearing capacity of the electric spindle through optimized design, and greatly improve the productivity and competitiveness of customers. High-speed spindle bearings perfectly combine the high-speed performance of the small ball series with the rigidity and load-bearing capacity of the large ball series by selecting the appropriate ball diameter, tightness and internal radial clearance. The small ball bearing series usually used in motor spindle have a large contact angle, which can effectively prevent thermal limitation during operation. Bearing with 25° contact angle can support higher axial forces than 15° contact angle.

While the CNC machine tool  spindle is developing in the direction of high speed and precision, it is required to improve its processing accuracy and production efficiency. The key to realizing these technologies is closely related to high-speed precision bearing technology. At the same time, in order to meet the requirements of high stiffness and low temperature rise of the spindle, the multi-link back-to-back assembly structure of angular contact ball bearings is often used to increase the support span and stiffness of the spindle bearing. In order to achieve more superior performance of the electric spindle, hybrid ceramic ball bearings are widely used in electric spindles. Because of their own special properties, such as the use of silicon nitride ceramic balls for rolling elements and high nitride alloy steel for bearing rings, they are cheap, have low weight and long life. More importantly, the changes to the machine tool mechanism are not significant, and the high degree of standardization also facilitates later maintenance, so this type of bearing is more suitable for high-speed electric spindles. As mentioned in the previous cooling technology, reducing the total friction torque, that is, reducing the friction between the rolling element and the raceway, can control the temperature rise of the bearing, thereby achieving high-speed performance of the spindle, so hybrid ceramic ball bearings are the first choice for realizing this series of technologies. With the development of machine tool technology, the speed of the spindle is getting higher and higher. A key link in achieving high-speed cutting is the development of high-speed precision spindle bearings. Common high-speed rolling bearings have contact angles of 15° and 25°. One is a small steel ball bearing with a reduced steel ball diameter and increased number of steel balls; the other is a small ceramic ball bearing; there are also ceramic ball bearings with the same size as ordinary bearing balls. This type of bearing is only a ceramic ball, and the inner and outer rings are still made of bearing steel, so it is called a hybrid ceramic ball bearing. High-speed electric spindles have very strict and even harsh requirements for their bearing and motor performance. High-speed bearings need to have good rigidity, damping resistance and long service life. There are usually three options: dynamic and static pressure bearings, composite ceramic bearings or electromagnetic suspension bearings. Among them, composite ceramic bearings use hot-pressed ceramic balls and steel bearing rings. Because of their heat resistance and wear resistance, high standardization and easy maintenance, they are most widely used in electric spindle units.

Our company has professional sales and technical engineers who are responsible for providing users with technical consultation, technical services and product technical training on precision bearing information and installation and use. Perfect pre-sales, sales and after-sales services constitute a guarantee system for high-quality services, providing users with reliable bearing products and creating excellent user experience and rich benefits for every customer.

If you have any questions about products and services, please contact the company's service department directly.


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SelectDownloadInquiry Bearing Code Dimensions(mm)Preloading Force FVUnloading Force KaEAxial Rigidity Sa (N/µm)Weight
dDBsmin1sminLMHLMHLMHkg
Download PDF XCB7016C.T.P4S 80 125 22 1.1 1.1 185 643 1345 564 2077 4585 74.5 124.8 175.8 0.71
Download PDF XCB7016E.T.P4S 80 125 22 1.1 1.1 250 967 2089 734 2902 6423 175.2 285.5 384.2 0.71
Download PDF HS7016C.T.P4S 80 125 22 1.1 1.1 109 328 657 323 1024 2150 59.1 93.2 127.9 0.96
Download PDF HS7016E.T.P4S 80 125 22 1.1 1.1 175 524 1049 502 1530 3127 147.9 220 287 0.96
Download PDF HC7016C.T.P4S 80 125 22 1.1 1.1 74 222 445 219 682 1418 57.7 88.7 119.3 0.89
Download PDF HC7016E.T.P4S 80 125 22 1.1 1.1 123 368 736 355 1079 2185 148.4 219.2 282.8 0.89
Download PDF XC7016C.T.P4S 80 125 22 1.1 1.1 74 222 445 219 682 1418 57.7 88.7 119.3 0.89
Download PDF XC7016E.T.P4S 80 125 22 1.1 1.1 123 368 736 355 1079 2185 148.4 219.2 282.8 0.89
Download PDF B7216C.T.P4S 80 140 26 2 2 553 1761 3602 1730 5976 13149 94.8 161.2 233.8 1.47
Download PDF B7216E.T.P4S 80 140 26 2 2 839 2783 5750 2474 8475 18117 222.2 351.3 475 1.47
Download PDF HCB7216C.T.P4S 80 140 26 2 2 290 964 1992 888 3127 6823 81.9 135.2 190 1.21
Download PDF HCB7216E.T.P4S 80 140 26 2 2 423 1511 3197 1247 4558 9859 197.1 313.2 418.6 1.21
Download PDF B71817C.TPA.P4 85 110 13 1 0.3 93 344 739 281 1129 2603 59.5 106.2 156.2 0.27
Download PDF B71817E.TPA.P4 85 110 13 1 0.3 113 507 1142 325 1508 3507 131.7 230 319.4 0.27
Download PDF HCB71817C.TPA.P4 85 110 13 1 0.3 48 205 457 143 650 1532 51.8 93.4 135.2 0.27
Download PDF HCB71817E.TPA.P4 85 110 13 1 0.3 89 279 678 258 823 2048 137.5 207.1 290.5 0.27
Download PDF B71917C.T.P4S 85 120 18 1.1 1.1 239 804 1672 739 2687 5982 80.3 138 200 0.53
Download PDF B71917E.T.P4S 85 120 18 1.1 1.1 336 1232 2631 983 3716 8205 185.3 301.8 411.4 0.53
Download PDF HCB71917C.T.P4S 85 120 18 1.1 1.1 120 438 934 363 1405 3160 68.6 116.5 164.9 0.45
Download PDF HCB71917E.T.P4S 85 120 18 1.1 1.1 148 642 1436 433 1921 4389 157.3 266.2 361.7 0.45
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