Diamond Cutting Tool and Manufacturing Method Thereof
A manufacturing method of a diamond cutting tool is characterized in that the metal coated diamond particles are arranged on a region of a steel body portion intended to be used as a cutting edge, and then adhered to the body portion through the electro-deposition whereby the manufacturing time is reduced, the diamond particles are securely adhered to the body portion, and the lifetime of the cutting tool is prolonged as well.
The present invention relates to a diamond cutting tool and a manufacturing method thereof, and more particularly to diamond cutting tool which can be shortened in manufacturing time and prolonged in lifetime and a manufacturing method thereof.
BACKGROUND ARTIn general, the diamond cutting tool has been used as a cutting tool for cutting a hard material such as stone, metal, concrete, and the like in the construction field or engineering works.
As a manufacturing method of the diamond cutting tool, there has been known a method in which a plurality of cutting segments that is manufactured by a blending, a forming, and a sintering of diamond particles and metal powders is welded around a body portion made of a high speed tool steel such as a carbon tool steel, a low carbon steel, and the like.
However, in such welding method, the processes of blending, forming, and sintering and the welding process for the cutting segments should be independently performed in the separate devices. This causes a problem of complicated manufacturing process so that manufacturing cost and time are increased.
In order to solve this problem, it has been developed an electro-deposition process by which diamond particles are deposited around the steel body portion.
As set forth before, when the body portion 1 is negative-biased and the metal plate 4 is positive-biased, the metal ions contained in the electrolyte 5 are reduced and precipitated on the negative-biased body portion 1. Although the metal ions in the electrolyte are exhausted through the precipitation, other metal ions are continuously supplied therein from the metal plate 4 through electrolysis, thereby acting on the reaction continuously. With the procedure of such reaction taking a sufficient time, as shown in
However, according to this conventional manufacturing method, there was a problem in that it takes so much plating time in order to thicken a plating thickness for secure adhesion of the diamond particles. In addition, according to the conventional manufacturing method, there was another problem in that the diamond particles are moved to be in disarray in the course of electro-deposition of the diamond particles after the arrangement of the diamond particles on the body portion.
DISCLOSURE OF INVENTION Technical ProblemAccordingly, the present invention has been made to solve the above-mentioned problems occurring in the prior art, and an object of the present invention is to provide a diamond cutting tool in which the diamond particles are securely adhered to a disc type body portion and a manufacturing time is shortened, and a manufacturing method thereof.
Another object of the present invention is to provide a diamond cutting tool in which the diamond particles are coated with magnetic metal and a body portion is magnetized so that the diamond particles coated with metal are fixed to the magnetized body portion through a magnetic force therebetween, thereby preventing the diamond particles from being in disarray, and a manufacturing method thereof.
Still another object of the present invention is to provide a diamond cutting tool in which the diamond particles coated with metal are arranged in multi-layer using a magnetic force and electro-deposited on a body portion, thereby prolonging a lifetime of the cutting tools, and a manufacturing method thereof.
Technical SolutionIn order to accomplish the above objects, there is provided a method for manufacturing a diamond cutting tool, comprising the steps of:
coating the diamond particles with metal;
arranging the metal coated diamond particles on a region of a steel body portion intended to be used as a cutting edge;
immersing the body portion in a plating bath filled with an electrolyte; and
performing the electro-deposition in such a manner that the body portion is negative-biased and a separate metal plate installed in the plating bath for plating is positive-biased, thereby adhering the metal coated diamond particles to the body portion.
The diamond particles may be arranged in multi-layer and electro-deposited so that the diamond particles are thickened to prolong a lifetime of the cutting tool.
The metal coating the diamond particles may be iron or cobalt with excellent magnetic property. In case where the diamond particles are coated with the metal with excellent magnetic property, when the metal coated diamond particles are arranged on the body portion, the diamond particles can be fixed to the body portion by a magnetic force generated between the metal coating layer and the body portion through magnetization of the body portion.
In the mean time, the diamond particles may be coated with metal by means of electro-deposition or fusion welding.
The above and other objects, features and advantages of the present invention will be more apparent from the following detailed description taken in conjunction with the accompanying drawings, in which:
Hereinafter, preferred embodiments of the present invention will be described with reference to the accompanying drawings.
Description will be made in detail to the steps of the manufacturing method for the diamond cutting tool according to the present invention.
The metal constituting the metal coating layer 22 may be a metal with excellent magnetic property, for example, iron (Fe), cobalt (Co) and the like. When the diamond particles are coated with the metal with excellent magnetic property and a body portion 10 (See
A worker coats the diamond particles 20 and arranges the diamond particles coated with the metal coating 22 on the surface of the disc type body portion 10 forming a cutting edge. At this time, in order to maintain cutting performance of the cutting tool constantly, it is preferable to arrange the diamond particles 20 at regular intervals.
When the diamond particles 20 are arranged like this, as set forth before, the body portion 10 is magnetized and then the diamond particles 20 are arranged. There may be used various methods for magnetizing the body portion 10. For example, when a permanent magnet is attached to the body portion 10, the body portion 10 is magnetized by the magnetic force of the permanent magnet, having a magnetic property. Like this, the diamond particles 20 are fixed to the body portion 10 by means of a magnetic force generated between the magnetized body portion 10 and the metal coating 22 surrounding the diamond particles 20. In this way, if the diamond particles 20 are arranged and fixed by means of a magnetic force, they are not moved even in the course of plating, thereby manufacturing a cutting tool with the diamond particles 20 arranged at regular intervals.
After the arrangement of the diamond particles 20, the worker immerses the body portion 10 on which the diamond particles 20 are arranged in a plating bath 30 to electro-deposit the diamond particles 20 as shown in
The worker immerses the body portion 10 on which the diamond particles are arranged and a pair of metal plates 32 in the plating bath 30 filled with an electrolyte 34. Herein, the material of the metal plate 32 may be a metal to which the diamond particles 20 are intended to be electro-deposited, such as, for example, Ni, Cu, Co, and the like.
In the mean time, the electrolyte 34 is composed of a solution containing the same metal ions as the metal plate 32. When the metal ions contained in the electrolyte 34 are electro-deposited and precipitated, the metal ions are supplied to the electrolyte 34 through the electrolysis of the metal plate 32. Therefore, the electro-deposition process of the metal ions may be continued so that the plating process of the metal coated diamond particles 20 is performed.
After the body portion 10 and the metal plate 32 are immersed in the plating bath 30, the metal plate 32 is applied with a positive bias and the body portion 10 on which the diamond particles 20 are arranged is applied with a negative bias. With the application of bias, the metal ions such as Ni, Cu, Co, and the like contained in the electrolyte 34 are reduced and precipitated at the negative-biased body portion 10. The metal ions are continuously precipitated at the body portion 10 by the reduction reaction so that the diamond particles 20 arranged on the body portion 10 are bonded to the body portion 10 while being plated by the precipitated metal. Meanwhile, when t he plating of the diamond particles 20 is completed, the body portion 10 is picked out from the plating bath 30 to dry. In this case, if a permanent magnet (not shown) is attached to the body portion 10 to magnetize the same, the permanent magnet is removed and then the body portion 10 is dried.
Referring to
As set forth above, according to a manufacturing method for diamond cutting tool, the diamond particles are coated with metal and then electro-deposited with the plating so that the plating time can be reduced and the diamond particles can be securely attached to the body portion as well.
In addition, according to the present invention, the diamond particles are coated with magnetic metal and the body portion is magnetized so that it is possible to arrange the metal coated diamond particles in multi-layer on the body portion by means of the magnetic force and to electro-deposit the same, thereby prolong the lifetime of the cutting tool.
In addition, according to the present invention, the diamond particles are coated with magnetic metal and the body portion is magnetized so that it is possible to arrange the metal coated diamond particles on the body portion by means of the magnetic force thus to fix the same without movement in the course of the manufacturing process.
Although preferred embodiments of the present invention have been described for illustrative purposes, those skilled in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the scope and spirit of the invention as disclosed in the accompanying claims.
Claims
1. A method for manufacturing a diamond cutting tool, comprising the steps of:
- coating the diamond particles with metal; arranging the metal coated diamond particles on a region of a steel body portion intended to be used as a cutting edge; immersing the body portion in a plating bath filled with an electrolyte; and performing the electro-deposition in such a manner that the body portion is negative-biased and a separate metal plate installed in the plating bath for plating is positive-biased, thereby adhering the metal coated diamond particles to the body portion.
2. The method as claimed in claim 1, wherein the diamond particles are arranged in multi-layer and electro-deposited.
3. The method as claimed in claim 1, wherein the metal coating the diamond particles is iron or cobalt with excellent magnetic property.
4. The method as claimed in claim 3, wherein when the metal coated diamond particles are arranged on the body portion, the diamond particles are fixed to the body portion by a magnetic force generated between the metal coating layer and the body portion through magnetization of the body portion.
5. The method as claimed in claim 1, wherein the diamond particles are coated with metal by means of electro-deposition or fusion welding.
6. A diamond cutting tool manufactured by the method of claim 1.
7. A diamond cutting tool manufactured by the method of claim 4.
Type: Application
Filed: May 12, 2006
Publication Date: Jul 17, 2008
Inventor: Rin-soon Park (Gyeonggi-do)
Application Number: 11/914,589
International Classification: C23C 28/02 (20060101);