This application claims the benefit of Japanese Patent Application No. 2017-104498 filed on May 26, 2017 with the Japan Patent Office, the entire disclosure of which is incorporated herein by reference.
The present disclosure relates to a manufacturing method for forming a cylindrical portion integrally with a plate-like portion.
For example, as described in Japanese Unexamined Patent Application Publication No. 2015-20205 a processed product made from a metal plate is mostly manufactured by a press-forming method that excels in terms of mass production capability (productivity).
In case that high accuracy with respect to an outer circumferential diameter of the cylindrical portion and cylindricality (see JIS B 0021) thereof are required, machining such as cutting and the like is commonly conducted to the cylindrical portion. However, the machining is generally inferior to the press-forming method in terms of the mass production capability (productivity). Thus, the present disclosure provides one example of a manufacturing method applicable to a case where the high accuracy with respect to the outer circumferential diameter of a cylindrical portion and the cylindricality thereof are required.
One aspect of the present disclosure is a manufacturing method for a cylindrical portion in a cylindrical shape protruding in a plate thickness direction of a plate-like portion made of metal, the cylindrical portion being formed integrally with the plate-like portion. The manufacturing method comprises a plastic forming step using a manufacturing device comprising: a first metal mold provided with an inner circumferential surface that comes in contact with an outer circumferential surface of the cylindrical portion to be formed; a second metal mold coming in contact with a protruding tip of the cylindrical portion to be formed; and a third metal mold disposed on an opposite side of the second metal mold with a workpiece therebetween, the third metal mold coming into press contact with the workpiece toward a side of the second metal mold. In the plastic forming step, the third metal mold is displaced toward the side of the second metal mold and a portion of the workpiece undergoes plastic flow toward the inner circumferential surface, whereby the portion that underwent the plastic flow comes into press contact with the inner circumferential surface.
In such a manner, a metal structure that underwent the plastic flow toward the inner circumferential surface is formed to be the cylindrical portion to which a shape of the inner circumferential surface is transferred. Accordingly, an outer circumferential diameter of the cylindrical portion and cylindricality thereof become identical to a dimension of the first metal mold. As a result, high accuracy in the outer circumferential diameter of the cylindrical portion and in the cylindricality thereof can be achieved.
The manufacturing method may be the following method.
When the plastic forming step is a second plastic forming step, it is desirable that the manufacturing method comprise a first plastic forming step that is performed before the second plastic forming step is performed. In the first plastic forming step, it is desirable that a portion of the plate-like portion come into press contact so as to undergo plastic flow, thereby forming a protruding portion that protrudes toward the side of the second metal mold. In the second plastic forming step, it is desirable that a portion of the protruding portion undergo plastic flow toward a side of the inner circumferential surface.
In such a manner, since the metal structure constituting the protruding portion undergoes the plastic flow in the first plastic forming step and then the cylindrical portion is formed, the second plastic forming step is certainly performed. In other words, the first plastic forming step is performed, whereby, for example, problems such as a shortage of the metal structure that must undergo the plastic flow in the second plastic forming step, and the like, can be inhibited from occurring.
“Protrudes toward the side of the second metal mold” appeared above is referred to as “protrudes toward a side at which the second metal mold is disposed”. For example, the “protruding toward the side of the second metal mold” in a case that will be described in the following embodiments corresponds to “protrudes downward”.
It is desirable that a third plastic forming step where a tooth profile is formed on an outer side in a radial direction of the cylindrical portion in the plate-like portion be performed after the second plastic forming step is completed.
The present disclosure further provides one example of a manufacturing device applicable to a case where the high accuracy with respect to the outer circumferential diameter of a cylindrical portion and the cylindricality thereof are required. One aspect of the present disclosure is a manufacturing device of a cylindrical portion in a cylindrical shape protruding in a plate thickness direction of a plate-like portion made of metal, the cylindrical portion being formed integrally with the plate-like portion. The manufacturing device comprises: a first metal mold provided with an inner circumferential surface that comes in contact with an outer circumferential surface of the cylindrical portion to be formed; a second metal mold disposed at a protruding tip of the cylindrical portion to be formed; a projecting portion disposed in the second metal mold, the projecting portion projecting toward a side of a workpiece; and a third metal mold disposed on an opposite side of the second metal mold with the workpiece therebetween, the third metal mold coming into press contact with the workpiece toward a side of the second metal mold. In the manufacturing device, the third metal mold is displaced toward the side of the second metal mold and a portion of the workpiece undergoes plastic flow toward the inner circumferential surface, whereby the portion that underwent the plastic flow comes into press contact with the inner circumferential surface.
Hereinafter, an embodiment of the present disclosure will be described below with reference to the accompanying drawings, in which:
“Embodiments” to be described below are example embodiments within the technical scope of the present disclosure. In other words, invention-specifying-matters and so on recited in the accompanying claims are not limited to specific configurations, structures, and the like, shown in the below-described embodiments.
Arrows and marks that indicate directions shown in the drawings are provided for easy understanding of mutual relationships between the drawings. The present disclosure is not limited by the directions shown in the drawings.
1. Outline
A manufacturing method for an external tooth plate 1 shown in
The external tooth plate 1 (hereinafter referred to as a workpiece 1) comprises: a plate-like portion 2; a cylindrical portion 3; and a tooth portion 4. The external tooth plate 1 is preferably a member made of metal. The cylindrical portion 3 is a cylindrical portion protruding in a plate thickness direction of the plate-like portion 2.
The tooth portion 4 constitutes an external tooth gear formed on an outer side in a radial direction of the cylindrical portion 3 in the plate-like portion 2. The plate-like portion 2, the cylindrical portion 3, and the tooth portion 4 are, as described later, preferably made of metal and integrally formed by plastic forming.
2. Manufacturing Method for Workpiece
In
The manufacturing device comprises a first stage to a third stage. In the first stage, first plastic forming of the first plastic forming step is performed. In the second stage, second plastic forming of the second plastic forming step and punching of the punching step are performed. In the third stage, third plastic forming of the third plastic forming step is performed.
In the manufacturing device, the workpiece 1 is transferred from the first stage to the second stage and to the third stage in sequence, and therein, the first plastic forming through the third plastic forming are performed to the workpiece 1 sequentially.
<First Plastic Forming Step>
In
A top surface of the first die 13 is lower than a top surface of the second die 14. Thus, at the first die 13, a first hollow 14A in a cylindrical concave shape with respect to the second die 14 is formed.
The first movable punch 11 is a substantially cylindrical metal mold that is displaceable (vertically along a central axis line L0) with respect to the first immovable punch 12, the first die 13, and the second die 14. Specifically, the first immovable punch 12 is provided with a through-hole 12B where the first movable punch 11 is stored in a displaceable manner.
The first movable punch 11 stored in the through-hole 12B is displaceable in vertical directions so as to come close to and go apart from the first die 13 and the second die 14. An end of an outer circumferential portion of the first movable punch 11 comprises a first taper portion 11A.
The first taper portion 11A is a sloping surface in a substantially truncated conical shape sloping with respect to a contact surface 12A between the first immovable punch 12 and the workpiece 1. In other words, the first taper portion 11A is substantially a truncated cone so as to slope and come closer to the first die 13 as the truncated cone approaches the central axis line L0 of the first movable punch 11.
When moving toward the first die 13 (vertically downward in
Specifically, in the first plastic forming step, the target portion of the workpiece 1 undergoes plastic flow and flows into the first hollow 14A so that the protruding portion 1A having a substantially cylindrical shape is formed. When the first plastic forming is completed, the workpiece 1 is transferred to the second stage.
<Second Plastic Forming Step>
In
The second movable punch 21 is disposed to be opposed to the third die 23 with the workpiece 1 therebetween. The second movable punch 21 is a substantially cylindrical metal mold that comes into press contact with a second target portion of the workpiece 1, and presses the second target portion downward toward an upper surface of the third die 23. The second immovable punch 22 is provided with a through-hole 22B where the second movable punch 21 is stored in a displaceable manner.
The second movable punch 21 stored in the through-hole 22B is displaceable in vertical directions so as to come close to and go apart from the third die 23 and the fourth die 24. A diameter of the second movable punch 21 is smaller than a diameter of the first movable punch 11 disposed in the first stage.
In other words, the diameter of the second movable punch 21 is smaller than an outer diameter of the protruding portion 1A. The diameter of the second movable punch 21 is substantially identical to an inner circumferential diameter of the cylindrical portion 3 (see
The third die 23 is a cylindrical metal mold that comes in contact with a protruding tip of the protruding portion 1A which will be the cylindrical portion 3 after the forming. A diameter of the third die 23 is substantially identical to an outer diameter of the cylindrical portion 3 and larger than a diameter of the second movable punch 21.
In the third die 23, provided at a center of a portion (hereinafter, referred to as a first contact portion 23B) that comes in contact with the protruding tip of the protruding portion 1A is a projecting portion 23A that has a cylindrical shape and projects toward a side of the second movable punch 21. In other words, the projecting portion 23A is disposed in a portion that is opposed to the second movable punch 21 within the first contact portion 23B.
A diameter of the projecting portion 23A is smaller than the diameter of the third die 23. Accordingly, assuming that images of the projecting portion 23A and the second movable punch 21 are projected on a virtual flat surface orthogonal to a direction in which the second movable punch 21 comes into press contact (a vertical direction in
In the second immovable punch 22, a taper portion 22A is provided around an outer circumferential side of the second movable punch 21. The taper portion 22A, disposed at a position corresponding to that of the first taper portion 11A disposed in the first stage, is a sloping surface in a substantially truncated conical shape sloping in the same direction as the first taper portion 11A.
A top surface of the third die 23 is disposed to be lower than a top surface of the fourth die 24. Thus, at the third first die 23, a second hollow 24B in a cylindrical concave shape with respect to the fourth die 24 is formed. And the protruding portion 1A of the workpiece 1 transferred from the first stage fits into the second hollow 24B.
Specifically, in the second stage, the protruding portion 1A fits into the second hollow 24B so as to protrude on the side of the third die 23. An inner circumferential surface 24A of the fourth die 24 comes in contact with the outer circumferential surface of the cylindrical portion 3 after the forming (in other words, the outer circumferential surface of the protruding portion 1A).
Then, in the second plastic forming step, the second movable punch 21 is displaced toward the side of the third die 23 and a portion of the workpiece 1 undergoes plastic flow toward the inner circumferential surface 24A so that the portion that underwent the plastic flow comes into press contact with the inner circumferential surface 24A.
That is, when the second movable punch 21 is displaced toward the side of the third die 23, the protruding portion 1A partially undergoes the plastic flow toward a side of the inner circumferential surface 24A, in other words, toward an outer side in a radial direction of the protruding portion 1A. Since a metal structure that underwent the plastic flow is pressed against the inner circumferential surface 24A, a shape of the inner circumferential surface 24A is transferred to the outer circumferential surface of the protruding portion 1A as shown in
Then, the second movable punch 21 comes close to the third die 23 and when a distance between the second movable punch 21 and the third die 23 becomes equal to or less than a predetermined distance or when the second movable punch 21 comes in contact with the third die 23, the third die 23 starts receding from the protruding tip of the protruding portion 1A.
<Punching Step>
In the punching, as shown in
In the punching step, instead of the third die 23, a fifth die 25 in a tubular shape is used. The fifth die 25 is a tubular metal mold and comprises a hollow 25A into which the second movable punch 21 can fit.
An outer diameter of the fifth die 25 is substantially identical to (or slightly larger than, as shown in
<Third Plastic Forming Step>
The third plastic forming is for forming a tooth profile that constitutes the tooth portion 4 on the outer side in the radial direction of the cylindrical portion 3 in the plate-like portion 2 as shown in
The third stage (of the manufacturing device) where the third plastic forming is performed comprises a third movable punch 31, a third immovable punch 32, a sixth die 33, a seventh die 34, and so forth as shown in
Through displacement toward sides of the sixth die 33 and the seventh die 34, the third movable punch 31 and the third immovable punch 32 come into press contact with the workpiece 1 so that the workpiece 1 partially undergoes plastic flow and the tooth portion 4 is formed. Further, in the third plastic forming, other portions than the tooth portion 4 may also be processed.
3. Features of Manufacturing Method According to Present Embodiment
In the second plastic forming, the metal structure that underwent the plastic flow toward the inner circumferential surface 24A is formed to be the cylindrical portion 3 to which the shape of the inner circumferential surface 24A is transferred. Accordingly, an outer circumferential diameter of the cylindrical portion 3 and cylindricality thereof become identical to the diameter and cylindricality of the inner circumferential surface 24A formed on the fourth die 24. As a result, high accuracy in the outer circumferential diameter of the cylindrical portion 3 and in the cylindricality thereof can be achieved.
Dimensional accuracy of a metal mold is higher than that of a product formed by the metal mold. In the present embodiment, the metal structure that underwent the plastic flow toward the inner circumferential surface 24A is formed to be the cylindrical portion 3 to which the inner circumferential surface 24A is transferred. This can achieve the high accuracy in the outer circumferential diameter of the cylindrical portion 3 and in the cylindricality thereof.
In the manufacturing device, the protruding portion 1A is formed in the first plastic forming, and in the second plastic forming, the metal structure of the protruding portion 1A undergoes the plastic flow toward the side of the inner circumferential surface 24A, which allowing the metal structure constituting the protruding portion 1A to undergo the plastic flow so that the cylindrical portion 3 is formed.
In such a manner, the second plastic forming step 2 can be certainly performed. In other words, the first plastic forming step is performed before the second plastic forming step, whereby, for example, problems such as a shortage of the metal structure that must undergo the plastic flow in the second plastic forming, and the like, can be inhibited from occurring.
After the second plastic forming step is completed, the tooth profile constituting the tooth portion 4 is formed. This can enhance accuracy of a relative dimension of the tooth portion 4 with respect to the cylindrical portion 3. Specifically, since the tooth portion 4 is formed with the cylindrical portion 3 used as a criteria, the accuracy in the relative dimension of the tooth portion 4 with respect to the cylindrical portion 3 can be enhanced.
In the third die 23, the projecting portion 23A is disposed (see
The aspect of the present disclosure is the manufacturing method for the cylindrical portion (3) in a cylindrical shape protruding in the plate thickness direction of the plate-like portion (2) made of metal, the cylindrical portion (3) being formed integrally with the plate-like portion (2). The manufacturing method comprises a plastic forming step using a manufacturing device comprising: a first metal mold (24) provided with the inner circumferential surface (24A) that comes in contact with the outer circumferential surface of the cylindrical portion (3) to be formed; a second metal mold (23) coming in contact with the protruding tip of the cylindrical portion (3) to be formed; and a third metal mold (21) disposed on an opposite side of the second metal mold (23) with the workpiece (1) therebetween, the third metal mold (21) coming into press contact with the workpiece (1) toward the side of the second metal mold (23). In the plastic forming step, the third metal mold (21) is displaced toward the side of the second metal mold (23) and a portion of the workpiece (1) undergoes plastic flow toward the inner circumferential surface (24A), whereby the portion that underwent the plastic flow comes into press contact with the inner circumferential surface (24A).
In the above-described embodiment, the first plastic forming for forming the protruding portion 1A is performed before the second plastic forming is performed. However, the present disclosure is not limited to this. For example, the first plastic forming may be omitted.
The above-described embodiment described an example of forming the external tooth plate 1. However, the present disclosure is not limited to this. For example, the present disclosure is applicable to forming a portion other than the external tooth plate (for example, a portion not comprising the tooth portion 4) as far as such a portion comprises the cylindrical portion 3.
In the above-described embodiment, the projecting portion 23A is disposed in the third die 23. However, the present disclosure is not limited to this. For example, the projecting portion 23A may not be disposed in the third die 23.
The projecting portion 23A according to the above-described embodiment is a cylindrically projecting portion. However, the present disclosure is not limited to this. For example, the projecting portion 23A may be formed to be a conically projecting portion with a sloping portion whose projecting dimension decreases as being closer to the inner circumferential surface 24A.
In the manufacturing device according to the above-described embodiment, when the workpiece 1 is transferred from the first stage to the second stage and to the third stage sequentially, the first plastic forming through the third plastic forming are performed to the workpiece 1 sequentially.
However, the present disclosure is not limited to this. Specifically, the workpiece 1, for example, may not be transferred. Instead, the respective dies and punches may be changed for performing the first plastic forming through the third plastic forming to the workpiece 1 sequentially.
In the manufacturing device according to the above-described embodiment, the first die 13 of the first stage and the third die 23 of the second stage are different metal molds. However, the present disclosure is not limited to this. For example, the first die 13 of the first stage and the third die 23 of the second stage may be identical metal molds.
Further, the present disclosure is not limited to the above-described embodiments as long as it falls within the scope of the invention described in the claims. Accordingly, at least two of the above-described embodiments may be combined together.
Number | Date | Country | Kind |
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Entry |
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Chinese Office Action in counterpart Chinese Application No. 201810516153.X, dated Jul. 31, 2019 (along with English-language translation). |
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Number | Date | Country | |
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20180339330 A1 | Nov 2018 | US |