The present invention relates to a bearing retaining structure, and more particularly to a fan bearing retaining structure that effectively retains a bearing in a bearing cup at reduced manufacturing cost to avoid the problem of a loose bearing in the bearing cup of a fan.
Many devices, such as fans, use a motor to achieve the purpose of transmission. Therefore, the quality of a motor plays a very important role in the performance of a motor-driven device. A motor failing to work stably would no doubt adversely affect the whole operation of the device. Among others, the bearing is one of the most important factors that have influence on the quality of a motor.
Conventionally, a fan is formed by injection molding a plastic material. In the manufacturing process of the fan, a central tube of the fan is integrally injection molded along with a bearing, so that the bearing is fixedly held in the central tube to allow stable operation of a motor of the fan. While the bearing can be held in the central tube when the fan is injection molded with a plastic material, the bearing is not held in the central tube in a desired condition good for stable motor operation. This is because the plastic material is subject to thermal expansion and cold contraction, and it is therefore difficult to control correct fitting tightness and required range of fitting allowance between the bearing and the central tube in the process of manufacturing the bearing and the central tube. That is, it is uneasy to achieve proper fit between the bearing and the central tube. For example, in the event the bearing is too tightly fitted in the central tube, it would result in the formation of shrinkage holes on the bearing. On the other hand, in the event the bearing is too loosely fitted in the central tube, it would not be able to effectively hold the bearing in place in the central tube and result in low fitting accuracy and poor fitting allowance. Thus, the conventional way of forming a fan through plastic injection-molding fails to effectively hold the bearing in place in the central tube, and it is uneasy to control the fitting accuracy between the bearing and the central tube in the manufacturing process. These drawbacks in turn cause unstable operation of the fan motor.
In another type of fan structure, the central tube is made of a metal material and is integrally formed with the frame of the fan through insert molding. The metal central tube is processed by machining and therefore has relatively high process precision, which enables proper fitting of the bearing in the metal central tube to overcome the drawbacks in the plastic injection-molded fan. However, the metal central tube involves relatively complicated structure and machining procedures. For example, the metal central tube must be additionally machined to provide a shoulder portion therein for supporting the bearing in the central tube. Therefore, the use of the metal central tube inevitably increases the overall manufacturing cost of the fan.
In brief, the prior art fan bearing retaining structures have the following disadvantages: (1) having low fitting accuracy and poor fitting allowance between the bearing and the plastic central tube; (2) failing to effectively hold the bearing in place to thereby cause vibration of motor; (3) requiring increased cost for manufacturing a metal central tube for stably holding a bearing therein; and (4) involving complicated manufacturing processes and accordingly increased labor and time.
It is therefore tried by the inventor to develop an improved fan bearing retaining structure to overcome the disadvantages in the prior art.
A primary object of the present invention is to provide a fan bearing retaining structure for effectively retaining a bearing in a bearing cup of a fan.
Another object of the present invention is to provide a fan bearing retaining structure that enables improved fitting accuracy and fitting allowance between a bearing and a bearing cup.
A further object of the present invention is to provide a fan bearing retaining structure that enables reduced assembling time and labor and accordingly reduced manufacturing cost of a fan.
To achieve the above and other objects, the fan bearing retaining structure according to the present invention includes a base and a ring member. The base has a bearing cup projected from one side thereof, and the bearing cup internally defines an axial bore for receiving a bearing therein. The ring member is fitted around an outer side of the bearing cup and defines an opening, such that an inner side of the opening tightly contacts with the outer side of the bearing cup to apply a radially inward compression on the axial bore. With these arrangements, a portion of the axial bore corresponding to the ring member fitted around the bearing cup has a reduced inner diameter to thereby effectively retain the bearing in the bearing cup, enabling a fan to be manufactured at lowered cost.
The structure and the technical means adopted by the present invention to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings, wherein
The present invention will now be described with some preferred embodiments thereof and with reference to the accompanying drawings. For the purpose of easy to understand, elements that are the same in the preferred embodiments are denoted by the same reference numerals.
Please refer to
The bearing cup 101 has a first end 1011 fixedly connected to a center of the base 10, and a second end 1012 formed by axially extending from the first end 1011. The ring member 14 can be made of a metal material, a plastic material or a polymeric material, and is externally fitted around the bearing cup 101. The ring member 14 defines an opening 141 therein, such that the ring member 14 is fitted around the bearing cup 101 with an inner side of the opening 141 in contact with an outer side of the bearing cup 101 to thereby inward compress the axial bore 1014 of the bearing cup 101. That is, when the ring member 14 is externally fitted around the second end 1012 of the bearing cup 101, the opening 141 of the ring member 14 radially inward compresses or pushes against the second end 1012 to thereby elastically deform the second end 1012 and reduce the diameter of the axial bore 1014 at the second end 1012, so that the bearing 12 is retained in the bearing cup 101 behind the second end 1012.
In practical implementation of the present invention, a user may adjust the depth by which the ring member 14 fitted around the bearing cup 101 is to be axially pushed along onto the second end 1012 according to the required tightness in which the bearing 12 is to be retained in the bearing cup 101. As can be seen in
In the first preferred embodiment, with the ring member 14 fitted around the second end 1012 of the bearing cup 101, the first end 1011 has an inner diameter larger than that at the second end 1012 and the bearing cup 101 has a substantially forward tapered shape. In practical implementation of the present invention, the user may change the shape of the bearing cup 101 in advance according to required fitting accuracy and fitting allowance between the bearing 12 and the bearing cup 101. For example, in a variant of the first embodiment as shown in
Therefore, by externally tightly fitting the ring member 14 around the bearing cup 101 projected from the base 10, the present invention not only effectively prevents the bearing 12 from loosening from the bearing cup 101 to thereby achieve the effect of retaining the bearing 12 in the bearing cup 101, but also enables improved fitting accuracy and fitting allowance between the bearing 12 and the bearing cup 101.
Further, with the ring member 14 externally tightly fitted around the bearing cup 101 during the manufacturing process of a fan, time needed for assembling the fan can be reduced to thereby lower the manufacturing cost of the fan.
In the illustrated second preferred embodiment, the protrusions 142 are equally spaced along the inner side of the opening 141. However, in practical implementation of the present invention, the protrusions 142 are not necessarily equally spaced but can be irregularly spaced along the inner side of the opening 141.
Please refer to
In conclusion, the fan bearing retaining structure according to the present invention is superior to the prior art due to the following advantages: (1) capable of retaining the bearing in the bearing cup and effectively improving the fitting accuracy and fitting allowance between the bearing and the bearing cup; (2) enabling reduced manufacturing cost; and (3) enabling reduced assembling time and labor.
The present invention has been described with some preferred embodiments thereof and it is understood that many changes and modifications in the described embodiments can be carried out without departing from the scope and the spirit of the invention that is intended to be limited only by the appended claims.
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Number | Date | Country | |
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20130309086 A1 | Nov 2013 | US |