The invention relates to a material shaping device and more particularly relates to a roll-drawing machine.
The existing technique for processing metal elongated materials is basically to draw a metal wire of a larger diameter into one of a smaller diameter. Such elongated material is drawn to pass through a through hole mold by a strong force, such that the mold having a profile that is large on the inlet and small on the outlet can press the elongated material to shape it.
However, the size of the hole wall and the surface condition of the mold directly affect the quality of the elongated material, which imposes difficulty on maintenance and influences the service life of the mold. During the drawing process, the mold and the elongated material are in surface contact, and the friction will generate a lot of heat and affect the surface quality of the elongated material. Particularly, in the case of drawing a hard alloy wire material, it is required to adopt measures, such as lowering cross-section reduction rate of the mold, increasing the drawing force, or reducing the drawing speed, in order to prevent breaking the material during the drawing, but it will lower the efficiency. In addition, if the elongated material is profiled material with irregular cross-section, it will impose burden on the processing of the hole wall of the mold.
The invention provides a roll-drawing machine adapted for easily and efficiently rolling and pressing an elongated material.
A roll-drawing machine according to an embodiment of the invention is adapted for an elongated material for changing a size and a surface profile of the elongated material. The roll-drawing machine includes at least one rolling module and a power source. The rolling module includes a mold frame, a pair of seats, and a pair of rollers, wherein the seats are movably disposed in the mold frame, and the rollers are freely pivoted in the seats and move together with the seats. An end of the elongated material is connected to the power source and is drawn by the power source to pass between the rollers of the rolling module to drive the rollers to rotate and be rolled and pressed by the rollers.
In an embodiment of the invention, the rolling module further includes an adjustment component disposed through the mold frame and movably abutting between the pair of seats to adjust a distance between the pair of seats.
In an embodiment of the invention, the adjustment component includes an adjustment block and a locking part. The adjustment block is disposed through the mold frame to be movable along a first axis and has a pair of wedge surfaces to respectively abut the pair of seats. The locking part is disposed in the mold frame and abuts the adjustment block, wherein the locking part rotates about the first axis and moves, and drives the adjustment block to move along the first axis and drives the pair of seats to move close to or away from each other along a second axis.
In an embodiment of the invention, the pair of rollers is disposed along the second axis to respectively rotate about the first axis, and the elongated material passes between the pair of rollers along a third axis, and the first axis, the second axis, and the third axis are orthogonal to one another.
In an embodiment of the invention, the rolling module further includes a plurality of bearings respectively disposed between the pair of rollers and the pair of seats.
In an embodiment of the invention, the roll-drawing machine further includes a plurality of elastic members respectively abutting between the pair of seats and the mold frame, wherein a deformation direction of each of the elastic members is consistent with a movement direction of each of the pair of seats.
In an embodiment of the invention, the roll-drawing machine includes a base and a plurality of the rolling modules, wherein the rolling modules are stacked on one another and disposed upright in series on the base, and the elongated material is drawn by the power source to pass between the pair of rollers of each of the rolling modules.
In an embodiment of the invention, on a plurality of normal planes formed by a drawing axis of the elongated material, the rollers of the rolling modules respectively roll and press the elongated material in different axial directions.
Based on the above, in the roll-drawing machine, an end of the elongated material is connected to the power source, so as to provide the power for moving (drawing) the elongated material, and at least one rolling module is provided and the elongated material passes between a pair of rollers of the rolling module. Since the rollers are freely pivoted in the seats of the rolling module, as the elongated material is drawn by the power source, the elongated material drives the rollers to rotate and, at the same time, the elongated material is held between the rollers to be rolled and pressed. Thus, adverse effects caused by the existing drawing technique may be prevented. In other words, since the rollers of the rolling module and the elongated material are in a rolling friction state, the possibility of damaging the drawing mold may be significantly reduced and thus the service life is improved. In addition, when dealing with an elongated material that is hard to shape (e.g., a harder material), since the contact area between the rollers and the elongated material is much smaller as compared with the existing drawing mold, it has a larger degree of deformation (i.e., a larger area reduction rate) and thus reduces the number of times of processing the elongated material, and may also be adapted for materials having various irregular cross-sections.
To make the aforementioned and other features and advantages of the invention more comprehensible, several embodiments accompanied with drawings are described in detail as follows.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments of the invention and, together with the description, serve to explain the principles of the invention.
Referring to
In the beginning, a cross-sectional diameter of an end of the elongated material 20A is changed via a mechanical process to be less than a gap of the rollers 131 and 134, such that the end of the elongated material 20A passes though the rollers 131 and 134 to be connected to the power source 200. Accordingly, when the user puts the elongated material 20A connected to the power source 200 (along the Z axis) between the rollers 131 and 134 of the rolling module 100A, as the elongated material 20A is in contact with and is rolled between the rollers 131 and 134, the elongated material 20A drives the rollers 131 and 134 to rotate about the X axis, and meanwhile, the elongated material 20A is rolled and shaped by the pressure of the rollers 131 and 134 along the Y axis, such that the elongated material 20B that has been rolled and pressed is moved out of the rolling module 100A.
In addition, the elastic component 160 includes a plurality of elastic members 161, 162, 163, and 164, which respectively abut between the seats 121 and 122 and the members 111 and 112 of the mold frame 110, and a deformation axial direction of each of the elastic members 161, 162, 163, and 164 is consistent with the movement axial direction of the seats 121 and 122. Specifically, when the locking parts 152, 153, 156, and 157 are respectively locked into the members 111 and 112 of the mold frame 110, the locking parts 152, 153, 156, and 157 pass through the seats 121 and 122 to provide a guidance function along the Y axis, and the elastic members 161, 162, 163, and 164 are respectively disposed on the locking parts 152, 153, 156, and 157, such that, for the seats 121 and 122, the combination of the locking parts 152, 153, 156, and 157 and the elastic members 161, 162, 163, and 164 keeps the seats 121 and 122 in a floating state that the seats 121 and 122 are movable along the Y axis.
Based on the above, the seats 121 and 122 are guided by the locking parts 152, 153, 156, and 157 in the Y axis and abut on the elastic members 161, 162, 163, and 164 in the floating state, and meanwhile structurally abut the adjustment blocks 141 and 143 in the X axis. Accordingly, the user may smoothly drive the seats 121 and 122 close to or away from each other by adjusting the positions of the adjustment blocks 141 and 142 in the mold frame 110, so as to adjust a gap G1 (shown in
Since the mold frame 110 of this embodiment has a substantially square profile, the relative rotation angles of the rollers of different rolling modules are 90 degrees. Moreover, in an embodiment not shown here, the mold frame may be replaced by a turntable structure that is rotatable about the Z axis, such that the rollers of different rolling modules are capable of rolling and pressing the elongated material in any axial direction.
It should also be noted that the above description of this embodiment should not be construed as a limitation to the size and (cross-sectional) profile of the elongated material. The profile may be changed by properly adjusting the corresponding profiles of the rollers, and thus the roll-drawing machine is suitable for processing elongated materials with various irregular profiles. As to the size, since the gap G1 between the rollers is adjustable, any elongated object, such as wires, bars, and rods may be processed by the roll-drawing machine 10 of this embodiment.
To sum up, regarding the roll-drawing machine according to the above embodiment of the invention, an end of the elongated material is connected to the power source, so as to provide the power for moving the elongated material, and at least one rolling module is provided and the elongated material passes between a pair of rollers of the rolling module. Since the rollers are freely pivoted in the seats of the rolling module, as the elongated material is drawn by the power source, the elongated material drives the rollers to rotate and, at the same time, the elongated material is held between the rollers to be rolled and pressed. Thus, adverse effects caused by the existing drawing technique may be prevented. In other words, since the rollers of the rolling module and the elongated material are in a rolling friction state, the possibility of damaging the drawing mold may be significantly reduced and thus the service life is improved. In addition, when dealing with an elongated material that is hard to shape (e.g., a harder material), since the contact area between the rollers and the elongated material is much smaller as compared with the existing drawing mold, it has a larger degree of deformation (i.e., a larger area reduction rate) and thus reduces the number of times of processing the elongated material, and may also be adapted for materials having various irregular cross-sections, e.g., welding rods for welding or track strips having irregular cross-sections required for linear slides.
It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed embodiments without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the invention covers modifications and variations provided that they fall within the scope of the following claims and their equivalents.