The present invention relates to a turning tool suitably used to perform high-precise sphericity processing on a high-hardness material such as corrosion-resistant or heat-resistant alloy which is not easily cut, and relates to a sphericity processing method using the tool.
A turning tool includes a holder and a tip (a blade edge). The holder is formed such that a front end of a shank formed of a squared metal having a square cross-section is provided with a clamping portion used to fix the tip thereto. The tip has a size of several millimeters and the shank has a cross-section of 20 mm or 25 mm square. A step (hereinafter, referred to as a “shoulder”) is formed between the tip and the shank based on a difference in dimension.
As the tip, a throw-away (disposable) tip having a triangle shape, a square shape, or a ridge shape is used in many cases, and a corner portion having a small circular-arc portion (a nose R) is used as a cutting edge. In the case of the throw-away tip, when the cutting edge is worn, a new tip is attached and a corner portion thereof is used as a cutting edge. The tip 1a attached to the straight bite or the inclined bite is a tip with such a shape.
In turning, a spherical surface can be processed in a manner such that a cutter holder moves along two axes, that is, an axis (which is the Z axis of a lathe and will be referred to as a “work axis”) parallel to a rotation axis of a work and an axis (the X axis of the lathe) perpendicular thereto and a blade edge of a tool attached to the cutter holder moves in a circular motion. When a spherical surface surpassing a hemisphere is formed on the front end of the work (hereinafter, referred to as “sphericity processing”), as shown in
The sphericity processing is needed to manufacture a component used in a joint of an arm swinging three-dimensionally. In order that the arm swings precisely and high durability is obtained while a large load is applied to the joint, a high-precise spherical surface having wear resistance is needed and high-precise sphericity processing for a high-hardness material is needed.
When the hardness of the work to be processed increases, the abrasion of the cutting edge increases during the processing. When a general tip having a small blade edge circle radius (nose R) is used in the sphericity processing for the high-hardness material, the tip needs to be replaced frequently due to the large abrasion of the cutting edge. Further, the processing precision is degraded due to the abrasion of the cutting edge. That is, since the cutting edge is abraded largely in the tip of the small nose R, a problem arises in that the tip is not suitable in the sphericity processing for the high-hardness material.
Meanwhile, there is known a tip having a circular cutting edge called a circular tip. When sphericity processing is performed by the circular tip, a processing point moves in accordance with the circular motion of the blade edge. Thus, a cutting edge abrasion degree decreases, and hence processing surface precision is improved. For this reason, high-precise sphericity processing can be performed. However, since there is not provided a holder attached with the circular tip for the sphericity processing, there is no attempt for the sphericity processing using the circular tip.
An object of the invention is to provide a turning tool capable of realizing high-precise sphericity processing for a high-hardness material and a high-precise sphericity processing method using the tool.
The inventors found improvement in sphericity by performing sphericity processing for a high-hardness material using the circular tip 1. However, a processing reaction force increased compared to the case of the general tip 1a having a small nose R, and the demanded sphericity could not be realized in the processing using the cutting-off bite holder 2c of the related art.
In a sphericity processing method of the invention, the circular tip 1 of which the radius of the circle of the cutting edge is 2 to 5 mm and desirably 2 to 3 mm is used as a tip in the sphericity processing for the high-hardness material in turning. As a holder holding the tip 1, a holder 2 is used in which a shoulder 5 is provided only at one side surface of a shank 3, the other holder side surface 6 is formed in a straight shape, and a comparatively long protrusion portion 7c (see
In a turning tool for sphericity processing of the invention, the protrusion length of the tip 1 from the shoulder 5 of the front end of the shank 3 is shortened. Accordingly, when a load of 5 kg is applied to the tip 1 in the work axis direction and the shank axis direction during the processing of the work, the displacement of the tip 1 in each direction is set to 8 μm or less and desirably 6 μm or less. Meanwhile, a difference in displacement in both directions is set to 4 μm or less and desirably 2 μm or less.
As understood from the shape of the bite used for turning, a bending deformation occurs due to an external force in the work axis direction, and a compression deformation occurs due to an external force in the shank axis direction. Generally, the compression deformation is smaller than the bending deformation. Accordingly, in general, the deformation of the shank 3 considered as one of factors causing degradation in sphericity during sphericity processing is large in the work axis direction and is small in the shank axis direction.
Here, when the sphericity processing of the work is performed by an NC machine, a correction value corresponding to the deformation of the shank 3 in the work axis direction and the shank axis direction is set in the NC machine and is used for the processing. Accordingly, a difference in deformation of the shank 3 in the work axis direction and the shank axis direction is removed, and hence the sphericity processing can be performed with higher precision.
In the sphericity processing for the high-hardness material, particularly, the sphericity processing with a curvature radius of about 10 to 40 mm, the circular tip 1 can be used in which the cutting edge is circular and the radius of the circle is about 2 to 3 mm. Thus, the lifetime of the tip is increased and the precision of the processed spherical surface can be improved.
And, since the holder 2 is formed in the shape in which a deformation for the processing reaction force in the work axis direction is small and a difference in deformation in the work axis direction and the shank axis direction is small, there is an effect that the high-precise sphericity processing can be realized even when a large cutting reaction force is exerted.
According to the examination of the inventors based on the test of the sphericity processing for the high-hardness material, the sphericity was limited to about 40 μm in the sphericity processing using the ridge tip having a nose R of 0.3 mm. On the contrary, when the holder was formed in the above-described shape by using the circular tip of which the radius of the circle of the cutting edge was 2.5 mm, the sphericity was largely improved to 9 μm, and the lifetime of the blade edge was improved about 8 times.
Hereinafter, the invention will be described in detail by referring to the drawings illustrating a bite of the related art used in a lathe and a bite of the invention.
The sphericity of a spherical surface was limited to about 40 μm when sphericity processing was performed on a high-hardness material by a bite having a structure in which a ridge tip having a nose R of 0.3 mm was attached as a tip 1a to a bite holder of the related art shown in
Then, when sphericity processing was performed on a work of a high-hardness material by the bite 11, the sphericity was about 15 μm. As a result, the sphericity of the spherical surface was largely improved compared to sphericity processing using a ridge tip having a nose R of 0.3 mm.
When a load of 5 kg was applied to the tip 1 of the bite 10 of the embodiment in the Z-axis direction, the X-axis direction, and the main component force direction, the displacement of the tip 1 was 6 μm in the ±Z-axis direction, 4 μm in the X-axis direction, and 4 μm in the main component force direction.
Then, the sphericity was 9 μm when sphericity processing was performed on a high-hardness material by using the bite 10 of the embodiment shown in
As described above, in the bite 10 shown in
According to the examination of the inventors, the sphericity of the work obtained by the sphericity processing using the bite 10 shown in
As described above, according to the invention, it is possible to realize the high-precise sphericity processing which is not realized in the related art during the sphericity processing for the high-hardness material.
1: circular tip
1
a: tip
2: holder
2
c: cutting-off bite holder
3: shank
4: clamping portion
5: shoulder
6: holder side surface
7
c: protrusion portion
Number | Date | Country | Kind |
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2015-001032 | Jan 2015 | JP | national |