The application claims priority to Taiwan Application Serial Number 101202555 filed Feb. 13, 2012, which is herein incorporated by reference.
1. Technical Field
The present disclosure relates to a holding device. More particularly, the present disclosure relates to a cutting tool holding device.
2. Description of Related Art
A cutting tool holding device for receiving a cutting tool is configured to be attached to a road planer for cutting, mining, excavating the ground or applying a surface roughness treatment to a road. Conventionally, a cutting tool holding device includes a base and a cutting tool holder for receiving a cutting tool. The base is fixed on a peripheral surface of a working member (such as a roller) of a machinery (such as a road planer), and the cutting tool holder is engaged with the base. The engagement of the cutting tool holder and the base is usually fixed by some fastening members, e.g., screws. The cutting tool received in the cutting tool holder s mounted along a tangent of the base for facilitating the excavating or cutting operations applied to the ground. In the working process of the aforementioned machinery, a excavating operation is first applied to a processed material (such as concrete or asphalt over a road) by the cutting tool; as the roller rotates, a cutting operation is then applied to the ground by the cutting tool so as to destroy the processed material.
In general, the processed material is solid and stiff, and thus the cutting tool working on it only has a rather limited lifetime and needs to he frequently replaced. Furthermore, in the working process a reaction force generated from the processed material is not only exerted on the cutting tool, but also on the base and the cutting tool holder. Therefore, when the base and the cutting tool holder are not firmly engaged, serious damages caused by the reaction force occur in the cutting tool holder and the base. As a result, the cutting tool holder and the base are also in need of the frequent replacement. Consequently, the maintenance cost of the cutting tool holding device is high in the art.
Therefore, it is important to reinforce the engagement between the base and the cutting tool holder for prolonging the life span of the cutting tool holding device so as to reduce the maintenance cost thereof.
According to one aspect of the present disclosure, a cutting tool holding device includes a base, a positioning tube and a positioning member. The base includes a mounting hole and a through hole, and the through hole is formed at a side of the mounting hole and communicated with the mounting hole. The positioning tube includes an axial receiving hole, an accommodated portion and a limiting groove. The axial receiving hole is formed within the positioning tube for receiving a cutting tool. The accommodated portion is disposed at an end of the positioning tube for being installed into the mounting hole. The limiting groove is formed on a side of the accommodated portion. The positioning member is positioned in the through hole of the base, wherein the positioning member abuts against the limiting groove of the positioning tube.
The disclosure can be more fully understood by reading the following detailed description of the embodiments, with reference made to the accompanying drawings as follows:
The base 200 includes a first wall 201 and a second wall 202. A mounting surface 210 is formed on the second wall 202, and a mounting hole 220 is formed at a center of the mounting surface 210. An axial pressing groove 230 is disposed at an upper side of the mounting hole 220. The axial pressing groove 230 can be formed in a V-shape as illustrated in
The positioning tube 300 has an axial receiving hole 310 formed within the positioning tube 300 for receiving the cutting tool A. An accommodated portion 320 is disposed at an end of the positioning tube 300, and a step portion 330 is disposed at the other end of the positioning tube 300. The step portion 330 abuts against the mounting surface 210 for reinforcing an assembling stability between the base 200 and the positioning tube 300. The accommodated portion 320 is installed into the mounting hole 220. A limiting groove 321 is formed on a side of the accommodated portion 320, and a pressing member 340 corresponding to the axial pressing groove 230 is formed on the other side of the accommodated portion 320. The pressing member 340 is a triangular column corresponding to the axial pressing groove 230 for engaging with the axial pressing groove 230. Furthermore, the pressing member 340 has a cross-sectional area reducing gradually from an inner side of the pressing member 340 to an outer side of the pressing member 340, whereby an tightening degree between the positioning tube 300 and the base 200 increases gradually as the positioning tube 300 is installed into the base 200.
The positioning member 400 is a C-shaped elastic tube, and the positioning member 400 is positioned in the through hole 240 by an expanding elasticity thereof. A portion of the positioning member 400 is limited in the limiting groove 321 and the portion of the positioning member 400 abuts against the limiting groove 321. An extending direction of the axial pressing groove 230 is substantially perpendicular to a through direction of the positioning member 400.
The assembling stability between the base 200 and the positioning tube 300 can be reinforced by the aforementioned assembling relationship between the pressing member 340 and the axial pressing groove 230, and a rotating movement of the positioning tube 300 in the base 200 can be avoided, too. The assembling stability between the base 200 and the positioning tube 300 can be further reinforced by the perpendicular relationship between the extending direction of the axial pressing groove 230 and the through direction of the positioning member 400. The assembling stability between the base 200 and the positioning tube 300 can also be reinforced by the expanding elasticity generated from the positioning member 400. Therefore, a load value of the base 200 and a load value of the positioning tube 300 for a reaction force generated by the cutting tool A can be enhanced, and a displacement of the base 200 caused by the reaction force can be avoided, too.
The axial pressing groove 230 can be formed in a U-shape or n a dovetail shape, and the pressing member 340 can be a half cylinder or a dovetail column corresponding to the axial pressing groove 230.
In the embodiment, the tightening degree between the positioning tube 300 and the base 200 is increased gradually by the cross-sectional area of the pressing member 340 reducing gradually from an inner side of the pressing member 340 to an outer side of the pressing member 340. In other embodiment, the tightening degree between the positioning tube 300 and the base 200 can be increased gradually by a cross-sectional area of the axial pressing groove 230 reducing gradually from an outer side of the axial pressing groove 230 to an inner side of the axial pressing groove 230.
The through hole 240 of the base 200 is substantially circular, and a narrow portion 241 and a screw member 242 (shown in
According to the foregoing embodiment, the cutting tool holding device according to the disclosure has advantages as follows.
First, when the press member is disposed on the positioning tube and the axial pressing groove is disposed in the base corresponding to the press member, the rotating movement of the positioning tube in the base can be avoided, and the assembling stability between the base and the positioning tube can be reinforced accordingly. Therefore, the load value of the base and the load value of the positioning tube for the reaction force generated by the cutting tool A can be enhanced, and the maintenance cost of the cutting tool holding device can be reduced.
Second, the cross-sectional area of the pressing member reducing gradually from the inner side of the pressing member to the outer side of the pressing member or the cross-sectional area of the axial pressing groove reducing gradually from the outer side of the axial pressing groove to the inner side of the axial pressing groove both can reinforce the tightening extent between the positioning tube and the base.
Third, when the indentation is formed on the end of the positioning tube and the protruding portion is disposed on the base corresponding to the indentation, the protruding portion is engaged with the indentation, whereby the positioning tube is positioned in the base without rotating around. The assembling stability between the base and the positioning tube can be reinforced accordingly. Therefore, the load value of the base and the load value of the positioning tube for the reaction force generated by the cutting tool A can be enhanced, and the maintenance cost of the cutting tool holding device can be reduced.
Fourth, when the positioning member is the C-shaped elastic tube, the positioning member 400 presses against the limiting groove of the positioning tube due to the expanding elasticity generated from the positioning member. The assembling stability between the base and the positioning tube can be further reinforced.
Fifth, when the cross-sectional area of the positioning member changes gradually along the extending direction thereof, the tightening extent between the positioning member and the positioning tube can be increased gradually. The assembling stability between the base and the positioning tube can be further reinforced.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present disclosure without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the present disclosure cover modifications and variations of this disclosure provided they fall within the scope of the following claims.
Number | Date | Country | Kind |
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101202555 | Feb 2012 | TW | national |