The present invention relates to a hydraulic cut-off press for cutting metal sheet members and more specifically, to an angle adjustment structure used in a hydraulic cut-off press for adjusting the angular position of the worktable.
A hydraulic cut-off press may be used in a metal processing machine for cutting the processed metal product such as U-shaped steel product, Z-shaped steel product, corrugated metal sheet product, or enameled metal tile product. As shown in
The present invention has been accomplished under the circumstances in view. It is therefore the main object of the present invention to provide an angle adjustment structure for use in a hydraulic cut-off press, which enables the operator to conveniently adjust the angular position of the worktable of the hydraulic cut-off press. It is another object of the present invention to provide an angle adjustment structure for use in a hydraulic cut-off press, which does not require an additional external installation space. It is still another object of the present invention to provide an angle adjustment structure for use in a hydraulic cut-off press, which can be operated by hand or by a motor drive.
According to one aspect of the present invention, the angle adjustment structure is installed in a hydraulic cut-off press between a worktable and a machine base for adjusting the angular position of the worktable relative to the machine base, comprising a plurality of arched rails fixedly symmetrically provided at two opposite upright peripheral walls of the worktable at the bottom side, a plurality of arched sliding grooves respectively formed in two opposite upright peripheral walls of the machine base at the top side for supporting the arched rails, a worm pivotally mounted in the machine base, and an arched worm gear fixedly mounted in the worktable at the bottom side and meshed with the worm for moving the worktable relative to the machine base along the arched sliding grooves upright rotation of the worm to adjust the angular position of the worktable by an external biasing force. According to another aspect of the present invention, the worm has a worm shaft terminating in a coupling portion for driving manually through a hand tool or automatically by a motor drive.
Referring to
Further, reinforcing bars 13 are connected between the two opposite upright peripheral walls 11 of the worktable 1 and fastened to the at least one arched worm gear 12 to reinforce the structural strength of the at least one arched worm gear 12 and the worktable 1.
As indicated above, the invention has the following features:
1. The worktable 1 has fixed arched bottom rails 111 disposed at the bottom of two opposite upright peripheral walls 11 thereof and respectively supported in the respective arched sliding grooves 211 at the top of two opposite upright peripheral walls 21 of the machine base 2 so that the worktable 1 can be turned relative to the machine base 2 along the arched sliding grooves 211 to change the angular position.
2. The whole angle adjustment structure is simple and does not require an additional external installation space.
3. The shaft 241 of the worm 24 has one end terminating in a coupling portion 2411 for driving manually through a hand tool or automatically by a motor drive.
Number | Name | Date | Kind |
---|---|---|---|
2107174 | Boice | Feb 1938 | A |
3239169 | Sloyan | Mar 1966 | A |
3368596 | Comer | Feb 1968 | A |
6378348 | Katsube | Apr 2002 | B1 |
6474125 | Denis et al. | Nov 2002 | B1 |
7243518 | Chuang | Jul 2007 | B1 |
7267038 | Parks et al. | Sep 2007 | B2 |
20060104731 | Etter et al. | May 2006 | A1 |
20090178530 | Osgood | Jul 2009 | A1 |