The present invention relates to a glue applying mechanism of an edge banding machine and more particularly, to a glue applying mechanism of an edge banding machine for applying glue to a workpiece having an oblique surface, and the edge banding machine using the aforementioned glue applying mechanism.
The traditional edge banding machine is adapted to apply glue to a workpiece to be processed, and attach an edge band to the workpiece applied with the glue. The surface of the workpiece can be protected by the edge band and attain an embellished effect.
However, the edge banding process sometimes has to be performed to the workpiece of special specifications. For example,
For performing the edge banding process to the aforementioned workpiece W, especially gluing edge bands to the oblique surface F1 and the adjacent vertical surface F2 of the aforementioned workpiece W, the traditional edge banding machine should use two sets of glue applying mechanism to apply glue to the aforementioned oblique surface F1 and vertical surface F2 respectively. In this way, however, it has to spare the limited inner space of the edge banding machine for the installation of another set of glue applying mechanism. If it uses a same drive motor to drive two sets of glue applying mechanism at the same time for saving space and cost, the drive motor should be relatively higher in rated maximum power. That will raise the entire manufacturing cost of the edge banding machine, so the traditional glue applying mechanism of the edge banding machine needs improvement.
It is one of the objectives of the present invention to make an improvement for the deficiencies of the conventional glue applying mechanism of the edge banding machine, so as to provide a new glue applying mechanism of the edge banding machine, which enables the glue applying process to be performed to the oblique surface and vertical surface of the workpiece at the same time in the condition of using only one glue applying mechanism, so as to save the limited inner space of the edge banding machine and the entire manufacturing cost.
Therefore, the present invention provides a glue applying mechanism of an edge banding machine, which includes a base and a glue applying unit. The base includes a glue tub. The glue tub is adapted for accommodating glue. The glue applying unit is rotatably disposed on the glue tub of the base and includes a glue shaft and an obliquely glue applying member. The top end of the glue shaft is coaxially connected with the obliquely glue applying member. The aforementioned obliquely glue applying member has a glue applying surface which is a tapered surface with a wide top and a narrow bottom. At least a part of the top of the glue shaft and the glue applying surface of the obliquely glue applying member are exposed outside the glue tub. The glue applying unit is able to be driven to rotate to extract the glue in the glue tub to the outer surface of the glue shaft and the glue applying surface of the obliquely glue applying member, so that the glue applying unit of the glue applying mechanism can apply the glue to the oblique surface and the vertical surface of the workpiece by the outer surface of the glue shaft and the glue applying surface of the obliquely glue applying member at the same time, thereby enabling the glue applying process to be performed to the oblique surface and vertical surface of the workpiece at the same time in the condition of using only one glue applying mechanism.
In an aspect, for performing the glue applying process to workpieces of different heights, in structure, a threaded rod is coaxially fixed on the top surface of the glue shaft. The obliquely glue applying member is provided with a large hole portion and a small hole portion. The large hole portion is located below the small hole portion and communicates with the small hole portion. A shoulder surface is defined between the large hole portion and the small hole portion. The large hole portion is sleeved onto the top end of the glue shaft. The small hole portion is sleeved onto the threaded rod. The glue applying unit has a nut and a first elastic member. The nut is screwed onto the threaded rod and abutted against the top surface of the small hole portion. The first elastic member is abutted between the shoulder surface and the top surface of the top end of the glue shaft. The glue applying surface is located on the outer surface of the large hole portion. Therefore, tightening or loosening the nut to compress or release the elastic restoring force accumulated by the first elastic member can make the obliquely glue applying member approach or leave the glue shaft to be adapted for the workpieces of different heights.
In another aspect, for making the whole glue applying unit relatively more stable, the base structurally includes a fixed seat, and the glue applying unit includes a bearing. The fixed seat is connected above the glue tub and has a through hole. The small hole portion of the obliquely glue applying member is located in the aforementioned through hole. The bearing is sleeved onto the outer wall of the small hole portion. The inner and outer end surfaces of the bearing are abutted against the outer wall of the small hole portion and the inner wall of the through hole respectively.
In another aspect, for extracting the glue to the glue applying surface of the obliquely glue applying member relatively more effectively, the glue applying surface of the obliquely glue applying member is provided with a concave and convex structure. The concave and convex structure may be a cone-shaped spiral groove or embossed structure, but the present invention is unlimited thereto. In this way, the applied glue will have undulate surface, which is relatively more effective in filling the gap between the edge band and the workpiece in the follow-up step of attaching the edge band, so that the products will be manufactured with relatively higher quality.
The present invention will become more fully understood from the detailed description given herein below and the accompanying drawings which are given by way of illustration only, and thus are not limitative of the present invention, and wherein:
The technique and features of the present invention will be detailedly specified in the instanced embodiment given herein below and the accompanying drawings. The directional terms mentioned in this specification, such as ‘above’, ‘below’, ‘inner’, ‘outer’, ‘top’ and ‘bottom’, are just for illustrative description on the basis of normal usage direction, not intended to limit the claimed scope.
For the detailed description of the technical features of the present invention, an illustrative embodiment and the accompanying drawings are given herein below.
As shown in
As shown in
The glue applying unit 30 is rotatably disposed on the glue tub 21 of the base 20 and structurally includes a glue shaft 31 and an obliquely glue applying member 32. The glue shaft 31 is provided on the outer surface thereof with an embossed structure P. The bottom end of the glue shaft 31 protrudes out of the glue tub 21, and the bottom end of the glue shaft 31 is connected with a chain wheel 311, enabling the edge banding machine 1 that the glue shaft 31 is driven to rotate through a motor and a chain (not shown), the technique of that can be referred to Taiwan Patent No. I691365. As shown in
The obliquely glue applying member 32 is coaxially connected to the top of the glue shaft 31. The obliquely glue applying member 32 has a glue applying surface 321. The glue applying surface 321 is a tapered surface with a wide top and a narrow bottom. The glue applying surface 321 in this embodiment is an inverted conical surface. The glue applying surface 321 is provided thereon with a concave and convex structure 322. In this embodiment, the concave and convex structure 322 is a cone-shaped spiral groove H, as shown in
At least a part of the top of the glue shaft 31, especially a part of the large radius portion 312, and the glue applying surface 321 of the obliquely glue applying member 32 are protruded and exposed outside the glue tub 21. Therefore, when the glue applying unit 30 is driven by the motor to rotate, the glue applying unit 30 can extract the molten glue in the glue tub 21 to the outer surface of the large radius portion 312 of the glue shaft 31 and the glue applying surface 321 of the obliquely glue applying member 32, so that the glue applying unit 30 can apply the glue to the oblique surface F1 and vertical surface F2 of the workpiece W at the same time by the outer surface of the glue shaft 31 and the glue applying surface 321 of the obliquely glue applying member 32.
By the above-described configuration of the edge banding machine 1, when the workpiece W is conveyed to the glue applying mechanism 10, the glue applying unit 30 of the glue applying mechanism 10 can apply the glue to the oblique surface F1 and vertical surface F2 of the workpiece W at the same time by the glue shaft 31 and the obliquely glue applying member 32, so as to attach edge bands to the oblique surface F1 and vertical surface F2 of the workpiece W, attaining protecting and embellishing effects. Therefore, it can be seen in this embodiment that the glue applying process can be performed to different outer surfaces of the workpiece W at the same time in the condition of using only one glue applying mechanism 10, that can save the limited inner space of the edge banding machine 1 and the entire manufacturing cost.
Besides, it is adapted for performing the glue applying process to the workpieces W of different sizes. For example, the workpiece W as shown in
In addition, because of different requirements, the oblique surface F1 of the workpiece W may be a concave surface as shown in
The invention being thus described, it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention, and all such modifications as would be obvious to one skilled in the art are intended to be included within the scope of the following claims.
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