1. Technical Field
The disclosure relates to a manufacturing method of a bearing device, and particularly to a manufacturing method of a bearing device having good lubricant retention.
2. Description of the Related Art
At present, bearings are widely used in spindle motors in devices, such as compact disc (CD) drivers, digital video disc (DVD) drivers, hard disk drivers, laser beam printers, floppy disk drivers or in heat-dissipation fans. Spindle motors require bearings with small size, high rotational accuracy and long life. A related bearing defines a bearing hole therein. A shaft is rotatably received in the bearing hole. Lubricant is often used between an inner circumferential surface of the bearing and an external circumferential surface of the shaft to reduce abrasion of the bearing and the shaft. However, the lubricant is prone to leak out of the related bearing so that the bearing cannot work normally due to lack of lubricant. Thus, lubricant retention becomes a problem in the related bearing.
A related method for manufacturing a bearing comprises following processes of : (a1) manufacturing a bearing preform with a bearing hole therein; and (a2) defining a plurality of hydrodynamic pressure generating grooves in an inner surface of the bearing preform in the bearing hole by chemical etching or electrolysis electric discharge. However, the small size of the bearing results in difficulties particularly in the making of the grooves in the bearing hole of the bearing preform. This makes manufacturing of the bearing both time-consuming and expensive. Therefore, the related method is not suitable for mass-production of the bearing.
Therefore, it is desirable to provide a manufacturing method of a bearing device having good lubricant retention and a long operating life.
The components of the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the embodiments of the display device. Moreover, in the drawings, like reference numerals designate corresponding parts throughout several views.
Referring to
Referring to
The cover 20 includes a top circular wall 21, and an annular wall 23 extending perpendicularly downward from a periphery of the top circular wall 21. The circular wall 21 defines a central hole 210. The circular wall 21 has an engaging surface 230 at a bottom thereof. The engaging surface 230 gradually decreases from outer edge to inner edge thereof. When the cover 20 is mounted on the body 10, the engaging surface 230 is correspondingly engaged on the inclined surface 112 of the body 10.
Referring to
During rotation of the shaft 40, the lubricant is driven flowing from the first storing room 50 to the gap between the body 10 and the shaft 40. Accordingly, a fluid dynamic pressure is generated in the gap between the body 10 and the shaft 40 to prevent the shaft 40 directly contacting the body 10. Part of the lubricant flows out along the bore 18 and the corresponding guiding groove 16 to the second storing room 60, and returns to the first storing room 50 via the through groove 15. A circumfluence of the lubricant flowing through the first storing room 50, the gap between the body 10 and the shaft 40, the bore 18, the guiding groove 16, the second storing room 60 and the through groove 15 in sequence, prevents the lubricant from flowing to a top of the body 10 and leaking out of the bearing device 100.
Referring to
step 301: providing a hollow mold (not shown), then injecting a feedstock of powder and molten binder into the mold under pressure, thus forming a desired perform of the body 10 and a desired perform of the cover 20, the desired perform of the body 10 defining an axial hole 17, two vertical guiding grooves 16 at two outer walls thereof, and a bore 18 communicating the axial hole 17 and the top end of one of the guiding grooves 16. The molten binder of the feedstock is required to be easily removable by debinding or extraction. The binder can be polyethylene (PE).
step 302: separating the binder from the desired perform of the body 10 and the desired perform of the cover 20.
step 303: sintering the desired perform of the body 10 and the desired perform of the cover 20.
step 304: performing a precision machining to the desired perform of the body 10 and the desired perform of the cover 20, thereby forming the body 10 and the cover 20.
step 305: mounting the cover 20 on the body 10 and sintering the cover 20 and the body 10 together, thereby forming the bearing device 100.
The bearing device 100 is configured (i.e., structured and arranged) for mass-production by the method in accordance with the preferred embodiment of the present disclosure. Also, the bearing device 100 manufactured by the present method has good lubricant retention.
Referring to
It is to be further understood that even though numerous characteristics and advantages have been set forth in the foregoing description of the embodiment(s), together with details of the structures and functions of the embodiment(s), the disclosure is illustrative only; and that changes may be made in detail, especially in the matters of shape, size, and arrangement of parts within the principles of the disclosure to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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101106039 | Feb 2012 | TW | national |