The present invention relates to a table and, more particularly, to a telescopic post for a table.
A table can be equipped with a telescopic post to allow adjustment of the elevation of the table. The telescopic post includes an internal tube inserted in the external tube. The telescopic post can be equipped with a lifting apparatus that includes a worm unit for connecting a driver to a transmission unit. The worm unit includes a worm engaged with a worm gear. The transmission unit includes a single threaded rod for translating the internal tube relative to the external tube, thereby lifting or lowering the table.
The threaded rod is made long to render the range of the elevation of the table large. However, it takes a long period of time to adjust the elevation of the table when the threaded rod is long.
The present invention is therefore intended to obviate or at least alleviate the problems encountered in prior art.
It is the primary objective of the present invention to provide a table with telescopic post of which the length is efficiently adjustable.
To achieve the foregoing objective, the telescopic post includes a tube set, a power unit, a rotation unit, a threaded tube unit and a threaded rod unit. The tube set includes internal tube inserted in an intermediate tube inserted in an external tube. The power unit is supported on the internal tube. The rotation unit is inserted in the internal tube. The rotation unit is connected to the power unit so that the power unit drives the rotation unit. The threaded tube unit is connected to the rotation unit so that the rotation unit rotates the threaded tube unit. The threaded tube unit is connected to the internal tube so that the threaded tube unit translates the internal tube. The threaded rod unit is connected to the threaded tube unit and the intermediate tube so that the threaded tube unit rotates the threaded rod unit and the threaded rod unit translates the intermediate tube.
Other objectives, advantages and features of the present invention will be apparent from the following description referring to the attached drawings.
The present invention will be described via detailed illustration of the preferred embodiment referring to the drawings wherein:
Referring to
Referring to
The internal tube 11 includes slots 112 extending throughout a wall thereof. The intermediate tube 12 includes slots 122 extending throughout a wall thereof. The external tube 13 includes a bottom plate 132 attached to a lower end thereof, thereby closing the lower end of the external tube 13.
Referring to
The motor set 22 is inserted in the space 212. Referring to
The cover 23 is provided on the box 21, thereby closing the open upper end of the space 212.
The joint 24 includes several bosses 242 and a non-circular insert 244. The non-circular insert 244 includes splines for example. The bosses 242 and the non-circular insert 244 are located on two opposite sides of the joint 24. Each of the bosses 242 is inserted in a corresponding one of the recesses 2262 so that the joint 24 is rotatable together with the warm gear 226.
The bearing 25 is provided around a section of the joint 24 near the non-circular insert 244. The bearing 25 is operable to render the rotation of the joint 24 smooth.
The supporting element 26 includes a bowl 262 and a flange 264. The flange 264 extends around an upper edge of the bowl 262. The bowl 262 is inserted in the aperture 214. The joint 24 and the bearing 25 are inserted in the bowl 262. The non-circular insert 244 of the joint 24 extends throughout the bowl 262. The flange 264 is located on an upper face of the lower portion of the box 21. The flange 264 is connected to the lower portion of the box 21 by screws for example.
Referring to
The hollow shaft 42 includes a splined passage 422 axially extending throughout the hollow shaft 42. The splined passage 422 is made in compliance with the splined section 416 of the plug 41 so that the hollow shaft 42 is rotatable together with the plug 41 when the splined section 416 of the plug 41 is inserted in the splined passage 422 of the hollow shaft 42.
The collar 43 is provided around and connected to a lower section of the hollow shaft 42.
Referring to
The threaded tube 52 includes a non-circular section 522 and a thread 524. The non-circular section 522 is formed on an upper section of an external face of the thread 524. The thread 524 is preferably a left-hand thread extending on an internal face of the threaded tube 52. The non-circular section 522 is inserted in the non-circular aperture 514, thereby rendering the threaded tube 52 not rotatable relative to the ring 51.
The carrier 53 is inserted in a lower section of the internal tube 11, and includes a screw hole 532, a holder 534 and several slots 536. The screw hole 532 extends throughout the carrier 53. The screw hole 532 is preferably a left-hand screw hole engaged with the thread 524 of the threaded tube 52. The holder 534 extends from an upper face of the carrier 53, coaxial with the screw hole 532. The holder 534 receives the collar 43. The slots 536 are made in the periphery of the carrier 53, corresponding to the slots 112.
Each of the wear-proof plates 54 includes several anchors 542 formed on the periphery thereof. The wear-proof plates 54 are located around the internal tube 11. The anchors 542 are inserted in the slots 112 and the slots 536, thereby attaching the wear-proof plates 54 and the carrier 53 to the internal tube 11.
Referring to
The carrier 63 is inserted in a lower section of the intermediate tube 12, and includes an axial aperture 632, a socket 634 and several slots 636. The axial aperture 632 extends throughout the carrier 63. The socket 634 extends on an upper face of the carrier 63, coaxial with the axial aperture 632. The socket 634 receives the bearing 25. The slots 636 are made in the periphery of the intermediate tube carrier 63, corresponding to the slots 122.
Each of the wear-proof plates 64 includes several anchors 642. The wear-proof plates 64 are located around the intermediate tube 12. The anchors 642 are inserted in the slots 122 and the slots 636, thereby attaching the wear-proof plates 64 and the carrier 63 to the intermediate tube 12.
The nut 65 includes a screw hole 652 and a flange 654. The screw hole 652 is axially made in the nut 65. The screw hole 652 is preferably a right-hand screw hole. The flange 654 extends around a middle section of an eternal face of the nut 65. An upper section of the nut 65 is fitted in the lower section of the threaded tube 52 so that the nut 65 is not rotatable relative to the threaded tube 52. A lower section of the nut 65 is inserted in the bearing 25.
The cover 66 includes an aperture 662. The cover 66 is connected to an upper end of the socket 634, thereby keeping the lower section of the nut 65 and the flange 654 in the carrier 63, yet allowing the nut 65 to rotate relative to the carrier 63. The aperture 662 is coaxial with the axial aperture 632. The upper section of the nut 65 is fitted in the lower section of the threaded tube 52 through the aperture 662, thereby rendering the nut 65 rotatable together with the threaded tube 52.
The features of the elements of the telescopic post and their interconnection have been described above. The operation of the telescopic post will be described.
Referring to
Referring to
The threaded tube 52 rotates the nut 65 because the upper section of the nut 65 is fitted in the lower section of the threaded tube 52. The nut 65 rotates and descends relative to the threaded rod 61. The nut 65 lowers the carrier 63 since the nut 65 is kept in the carrier 63 by the cover 66. The carrier 63 lowers the intermediate tube 12 since the intermediate tube 12 is connected to the carrier 63 by the anchors 642 of the wear-proof plates 64.
Synchronously, the threaded tube 52 rotates relative to the carrier 53 so that the carrier 53 descends relative to the threaded tube 52. The carrier 53 lowers the internal tube 11 because the internal tube 11 is connected to the carrier 53 by the anchors 542 of the wear-proof plates 54.
To lift the table 70, the motor 222 of the power unit 20 is actuated to drive the joint 24 in an opposite sense of direction.
The present invention has been described via the illustration of the preferred embodiment. Those skilled in the art can derive variations from the preferred embodiment without departing from the scope of the present invention. Therefore, the preferred embodiment shall not limit the scope of the present invention defined in the claims.
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