The present invention relates to a pressure controlled fluid pressure extrusion method. The term “fluid pressure extrusion method” defines a method in which extrusion is conducted under the action of fluid pressure. Pressure control describes the adjustment of this fluid pressure in order to conduct proper extrusion. These extrusions can be used to make parts for automobiles such as helical gears and the like.
Examples of the prior art include forward extrusion methods as shown in
Referring to
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The first object of the present invention is to lengthen the life of the die.
The second object is to improve product precision.
In the present invention, a fluid pressure is disposed between the die and the material.
When molding the material, a suitable fluid pressure acts upon the material.
Briefly stated, the present invention provides a fluid pressure molding method in which the lower part of a material to be molded forms a lower seal with a die. A punch applying a molding force to the material forms an upper seal with the perimeter of the die. The space between the upper and lower seals forms a pressure chamber that is filled with a fluid. As the punch descends into the die, the fluid is pressurized. The lower seal is a complete seal to prevent leakage of fluid into the die. The upper seal is given a clearance with the die that permits controlled leakage of fluid therepast at a rate that limits the maximum pressure in the pressure chamber while permitting the development of an adequate pressure on the material being molded.
Described in more detail, according to an embodiment of the invention, a suitable fluid pressure acts on the outer perimeter surface of a material. The material is pushed directly by a punch into a die for molding, whereby the material is molded into a desired, shape.
According to a feature of the invention, the fluid is suitably sealed by the material, the die, and the punch. The action of the die and the punch compresses and pressurizes the fluid. The fluid pressure acts on the material to form the product.
According to an additional feature of the invention, the fluid pressure is adjusted by a clearance of the die and the punch. The clearance between the die and the punch is formed by machining. The machined dimension of the clearance between the die and the punch takes into account the elastic deformation in the radial direction of the die and the punch at a predetermined fluid pressure. Since the upper seal is machined to tolerance to form the seal, the upper seal does not require an additional O-ring. The machining process also alleviates the need for sleeves or the like that are inserted into the die. The sleeves are disposable forms of the die that can form the seal.
The above, and other objects, features and advantages of the present invention will become apparent from the following description read in conjunction with the accompanying drawings, in which like reference numerals designate the same elements.
Referring to
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Next, punch 3 is lowered into cavity 10. The lower end surface of punch 3 contacts the upper surface of material 1. As punch 3 descends further, a fluid pressure chamber 6 is sealed between the punch 3 and the lower portion of the material 1. With further descent of punch 3 the fluid inside cavity 10 is compressed. In other words, the fluid is sealed by a first seal 7 at the contact surface between material 1 and punch 3, a second seal 8 at the insertion surface between die 2 and punch 3, and a third seal 9 at the insertion surface between die 2 and the lower end of material 1.
Seal 9 must completely seal to prevent leakage of fluid from fluid pressure chamber 6 to the portion of the cite 2 containing the teeth 2a. If the pressurized fluid from fluid pressure chamber 6 penetrates into teeth 2a, the presence of the material 1 may produce partial depressions in teeth 5a of molded product 5. This would prevent achieving the desired shape.
Seal 7 may have some leakage without producing any problems. In the present embodiment, because teeth 2a are a helical gear, while molding, material 1 rotates with respect to punch 3. As punch 3 advances, a film of fluid penetrates between the teeth 2a and the teeth 5a being formed. The resulting lubrication reduces the frictional force that accompanies this rotation.
With seal 8, the pressurized fluid must be actively released. If the fluid pressure in fluid pressure chamber 6 rises without limit, there can be problems such as the rupture of members such as die 2 and the like. However, if a large amount of fluid in fluid pressure chamber 6 leaks from seal 8, material 1 expands radially. This can cause problems such as incomplete molding action of material 1. Taking these points into account, it is necessary to determine the clearance for the restriction of seal 8. Seal 8 acts as a relief valve.
As described above, the clearance of seal 8 is determined so that an optimal fluid pressure of fluid pressure chamber 6 is achieved. The clearance between die 2 and punch 3 is formed by machining. The machined dimension of the clearance between die 2 and punch 3 takes into account the elastic deformation in the radial direction of die 2 and punch 3 at a predetermined fluid pressure. Since seal 8 is machined to tolerance to form the seal, seal 8 does not require an additional O-ring.
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In the present embodiment, a tiered material is used, but the present invention can be used for a straight material as well. Although there is a hole in the center of the molded product, the present invention does not require a hole. In the present embodiment, the molded product is a helical gear, but the present invention can be used for molded parts with super gears or with no gears as well.
According to the present invention, because there is no associated frictional force, the load needed for molding is reduced. As a result, the stress on the die is reduced, and product precision is improved. There are advantages such as having a die with a long life and conserving energy. Furthermore, even if there is a space between the die and the material, there is no deformation of the material. As a result, extrusion of tiered materials becomes possible. As a result, the cross-section reduction rate for the extrusion is small, and the molding load is further reduced.
The fluid pressure in fluid pressure chamber 6 is controlled by the clearance of seal 8. As a result, control is easy and stable. The present invention permits molding of parts that have heretofore been considered difficult to process.
Having described preferred embodiments of the invention with reference to the accompanying drawings, it is to be understood that the invention is not limited to those precise embodiments, and that various changes and modifications may be effected therein by one skilled in the art without departing from the scope or spirit of the-invention as defined in the appended claims.
Number | Date | Country | Kind |
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2000-173006 | Jun 2000 | JP | national |
This application is a continuation-in-part of U.S. patent application Ser. No. 09/827,699 filed Apr. 6, 2001, now abandoned, which is hereby incorporated by reference in its entirety.
Number | Name | Date | Kind |
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796970 | Hoopes | Aug 1905 | A |
2781016 | Livermont | Feb 1957 | A |
3382691 | Green | May 1968 | A |
3765222 | Lundback | Oct 1973 | A |
3768344 | Feldcamp | Oct 1973 | A |
3983730 | Fiorentino | Oct 1976 | A |
Number | Date | Country |
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1215452 | Dec 1970 | GB |
Number | Date | Country | |
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20040035168 A1 | Feb 2004 | US |
Number | Date | Country | |
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Parent | 09827699 | Apr 2001 | US |
Child | 10431114 | US |