1. Field of the Invention
The present invention relates to a bearing installer for hub.
2. Description of the Prior Art
A bearing is usually installed to a hub by a striking tool. However, the balls inside the bearing may be damaged, and relationship of distance between the balls, the inner ring, and the outer ring is changed so that the bearing is unable to operate smoothly.
To solve the previous problem, a conventional bearing installing tool has a threaded rod for inserting through the axle hole of the hub. The bearing and a pushing element are sleeved onto the threaded rod, and the pushing element is rotated to move along the threaded rod and further pushes the bearing to a predetermined position.
However, when the bearing is being moved into the hub or when removing the threaded rod, the bearing may be abraded by the threaded rod to result damage.
Moreover, the threaded rod has an external diameter smaller than the internal diameter of the axle hole of the hub so that the threaded rod is unable to be positioned in the axle hole and may be shaken. That is, the bearing is unable to be moved into the hub easily.
Besides, the pushing element is ring-shaped and is unable to be operated easily. Usually, the threaded rod forms a head portion at an end, and a tool is inserted into the head portion to drive the threaded rod to rotate with respect to the pushing element. Thereby, the bearing is pushed into the hub. That is, without appropriate tools, the bearing is unable to be installed into the hub.
The main object of the present invention is to provide a bearing installer for hub whose threaded rod may not contact the bearing.
Another object of the present invention is to provide a bearing installer for hub whose threaded rod may not be shaken with respect to the hub so that the bearing is able to be moved into the hub easily.
To achieve the above and other objects, a bearing installer for hub of the present invention is provided. The bearing installer for hub is adapted for installing a bearing into a hub including a receiving room and axle hole wherein the receiving room is formed at an end of the hub and communicates with the axle hole. The bearing installer for hub of the present invention includes a sleeve tube, a threaded rod, and a pushing device.
The sleeve tube is detachably inserted into the receiving room and the axle hole. At least one end of the sleeve tube is protruded above an end of the hub and is adapted for a bearing to be sleeved onto. The sleeve tube forms a through hole.
The threaded rod is inserted into the through hole of the sleeve tube and has an external diameter substantially equal to an internal diameter of the sleeve tube.
The pushing device is screwed to the threaded rod. The pushing device is able to be moved along the threaded rod so that the bearing can be pushed by the pushing device along the sleeve tube into the receiving room of the hub.
Another bearing installer for hub of the present invention is provided. The bearing installer is adapted for installing a bearing into a hub including a receiving room, an axle, and an axle hole. The receiving room is formed at an end of the hub. The axle is axially protruded from a face of the receiving room near the axle hole and surrounds the axle hole. The bearing is slidably sleeved onto the axle. The axle forms a through hole communicating with the axle hole. The bearing installer for hub includes a threaded rod and a pushing device.
The threaded rod is inserted into the through hole of the axle and the axle hole of the hub.
The pushing device includes a pushing element and a rotating element. The pushing element forms a large hole and a reduced hole wherein the large hole communicates with the reduced hole. The axle is inserted through the large hole, and the threaded rod is inserted through the large hole and the reduced hole. The rotating element is screwed to the threaded rod and is able to move along the threaded rod toward the bearing or away from the bearing. The rotating element is able to be moved along the threaded rod so that the pushing element is pushed by the rotating element to move along the axle toward the bearing until the bearing is pushed into the receiving room. Specifically, an internal diameter of the reduced hole is substantially equal to an external diameter of the threaded rod.
Thereby, the bearing and the pushing element may not contact the threaded rod because they are sleeved onto the sleeve tube and the axle respectively. Thus, inner surfaces of the bearing and the pushing element and threads of the threaded rod may not be abraded. In addition, the sleeve tube and the pushing element help stabilize the whole structure to prevent the hub from shaking. Thus, the bearing is easier to be positioned into the receiving room.
The present invention will become more obvious from the following description when taken in connection with the accompanying drawings, which show, for purpose of illustrations only, the preferred embodiment(s) in accordance with the present invention.
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The sleeve tube 30 is detachably disposed into the two receiving rooms 122 and the axle hole 111. Two ends of the sleeve tube 30 are protruded above two ends of the hub 10, the two disk members 12. The two bearings 20 are sleeved onto the two ends of the sleeve tube 30. Preferably, the sleeve tube 30 has a smooth outer surface without protrusions such as threads. The sleeve tube has an external diameter substantially equal to an internal diameter of the axle hole 111. Thereby, the sleeve tube 30 is positioned at the axle hole 111 to be prevented from being shaken. In addition, the sleeve tube 30 forms a through hole 31.
The threaded rod 40 is inserted into the through hole 31 of the sleeve tube 30 and has an external diameter substantially equal to an internal diameter of the through hole 31 of the sleeve tube 30. Thereby, the threaded rod 40 is positioned in the sleeve tube 30 to be prevented from being shaken.
The pushing device includes two pushing elements 51 and two rotating elements 52. Each pushing element 51 is slidably disposed to the sleeve tube 31. Each rotating element 52 includes a rotating body 521 and two shafts 522. Each rotating body 521 is screwed to the threaded rod 40 and is able to move along the threaded rod 40 toward or away from one of the bearings 20. Each shaft 522 is protruded above an end of the rotating body 521. The two shafts 522 extend parallely and are both perpendicular to an axial direction of the rotating body 521.
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As disclosed previously, the hub 10′ is shown in
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The bearings 20 and the pushing elements 51 are sleeved onto the sleeved tube 30 or the axes 13 respectively to prevent from contacting the threaded rod 40. Thereby, internal surfaces of the bearings 20, internal surfaces of the pushing elements 51, and the threads on the threaded rod 40 may not be abraded. Specifically, the smooth surface of the first embodiment is most preferred.
On the other hand, the sleeve tube 30 and the second column 514 help stabilize the threaded rod to prevent from being shaken with respect to the hub 10, 10′ so that the bearing 20 is able to be pushed into the receiving room 122 easily.
Moreover, the two shafts 522 are adapted for being held to rotate the rotating bodies 521 so that the bearings 20 can be pushed into the receiving rooms 122 without any other tools.
Besides, in the second embodiment, the first column 513 and the second column 514 are able to be separated from each other. Thereby, the first column 513 in appropriate size can be utilized according to sizes of the bearings 20 so that the force by the first column 513 is able to be distributed over the bearings 20. Thus, the bearing 20 may not deform. In other possible embodiments, the first column 513 and the second column 514 can be formed integrally.