Method and device for extruding pipes with different thicknesses

The extrusion molding method using a mandrel and sleeve in a container with specific inner diameter regions addresses the challenge of forming pipes with large diameter differences and arbitrary axial lengths, achieving efficient and strong differential thickness pipes.

JP7744524B2Active Publication Date: 2025-09-25SANGO CO LTD
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Patent Information

Application Number
JP2024539824
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2023-02-08
Filing Date
2024-01-26
Publication Date
2025-09-25
Estimated Expiration
2044-01-26

AI Technical Summary

Technical Problem

Existing methods for extruding differential thickness pipes face challenges in setting a large diameter difference between large and small diameter portions without excessively increasing processing load, and in arbitrarily setting the axial length of these pipes.

Method used

An extrusion molding method using a mandrel and sleeve to expand and reduce the diameter of a mother tube within a container with specific inner diameter regions, allowing for the formation of pipes with varying thicknesses by expanding the proximal end and reducing the distal end.

Benefits of technology

This method enables the formation of pipes with large diameter differences and arbitrary axial lengths without excessive processing load, suitable for applications requiring high mechanical strength in the large diameter portion.

✦ Generated by Eureka AI based on patent content.

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Abstract

In the present invention, a raw pipe is set on a container (dice) that includes, on a tip end side and a base end side, respectively, a small inner diameter region having an inner diameter smaller than an outer diameter of the raw pipe and a large inner diameter region having an inner diameter larger than the outer diameter of the raw pipe. A mandrel (core metal) includes, on a tip end side and a base end side, respectively, a small outer diameter region having an outer diameter corresponding to an inner diameter of the raw pipe and a large outer diameter region having an outer diameter larger than the inner diameter of the raw pipe. After the mandrel is pressed into the raw pipe and the end of the base end side of the raw pipe is expanded, the end of the base end side of the raw pipe is pressed using a sleeve, and the raw pipe into which the mandrel is inserted is pressed into the small inner diameter region of the container and contracted. Due to this configuration, a method for extrusion-molding a different-thickness pipe and a device for extrusion-molding same are provided, which make it possible to set the diameter difference between the large diameter part (ear part) and the small diameter part (contracted different-thickness part) to a large value without excessively increasing the machining load, and which also make it possible to set the length in the axial direction as desired.
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Description

[Technical Field]

[0001] The present invention relates to a method for extruding a pipe with different thicknesses and an apparatus for extruding a pipe with different thicknesses. [Background technology]

[0002] In the technical field, a differential thickness pipe (also called a "butted pipe" or "butted tube") is known in which a thick-walled portion is formed in a portion of the axial direction of the pipe in order to achieve a desired mechanical strength in the thick-walled portion while reducing the weight in the thin-walled portion (portion other than the thick-walled portion).

[0003] One known extrusion molding method for obtaining the above-described differential thickness pipe is disclosed in Japanese Patent No. 6933762 (Patent Document 1) filed by the present applicant. This method integrally forms, from a mother tube having a constant outer diameter and wall thickness, a large diameter portion (lug portion) that maintains the outer diameter of the mother tube and a small diameter portion that is reduced in diameter and extends in the axial direction (extrusion direction), and also forms two portions (differential thickness portions) with different wall thicknesses in the small diameter portion.

[0004] In the above-described method, to obtain a pipe with a large diameter portion having a larger outer diameter, the outer diameter of the blank pipe must be increased accordingly. In this case, if the outer diameter of the small diameter portion of the blank pipe is maintained unchanged, the resulting diameter reduction ratio (diameter reduction amount) during extrusion molding of the pipe with a large outer diameter increases, resulting in an increased processing load. Therefore, depending on the processing limitations of the extrusion molding device, which are determined by factors such as the material of the blank pipe, the materials of the components constituting the extrusion molding device, and the extrusion performance of the extrusion molding device, it may be difficult or impossible to achieve the desired diameter reduction ratio. Furthermore, even if the diameter reduction processing (extrusion processing) is performed within the processing limitations, the extrusion resistance increases with the diameter reduction amount, which inevitably requires a reduced extrusion rate. This may make it difficult or impossible to form a small diameter portion with the desired shape (e.g., axial length, etc.).

[0005] On the other hand, Japanese Patent No. 6256668 (Patent Document 2) proposes a forming method in which a plug is forced into a mother tube from the base end of the mother tube, while the end of the mother tube closest to the tip end in the plug-pushing direction is blocked to prevent it from moving further toward the tip end, and the relative position of the mother tube in the longitudinal direction with respect to the die is fixed (see, for example, paragraph

[0022] , etc.). According to this method, the end of the mother tube closest to the base end is made into an expanded diameter portion with an expanded outer diameter, and the portion of the mother tube closer to the tip end than the expanded diameter portion (non-expanded diameter portion) is subjected to an ironing process in which the inner diameter of a region adjacent to the tip end of the expanded diameter portion is expanded while maintaining the outer diameter, thereby making it possible to change the wall thickness of the non-expanded diameter portion (to achieve a different thickness).

[0006] However, in this method, because the tip-side end of the mother tube is blocked, the material constituting the non-expanded diameter portion, whose inside diameter expands as the plug advances, flows toward the base end, which is the opposite direction to the direction of advancement of the plug, causing the non-expanded diameter portion to extend toward the base end and increase its contact area with the plug. As a result, the working load increases as the plug advances due to an increase in frictional force between the non-expanded diameter portion and the plug, and therefore the method is not suitable for forming long products (axially long pipes with different thicknesses). [Prior art documents] [Patent documents]

[0007] [Patent Document 1] Patent No. 6933762 [Patent Document 2] Patent No. 6256668 Summary of the Invention [Problem to be solved by the invention]

[0008] As described above, in the relevant technical field, there is a need for an extrusion molding method for a differential thickness pipe that allows the diameter difference between the large diameter portion (ear portion) and the small diameter portion (reduced diameter differential thickness portion) to be set large without excessively increasing the processing load, and also allows the axial length to be set arbitrarily. [Means for solving the problem]

[0009] In view of the above problems, the present inventors conducted extensive research and found that the above problems can be solved by: inserting a mandrel (cored bar) into a mother tube set in a container (die), the container having a small inner diameter region with an inner diameter smaller than the outer diameter of the mother tube and a large inner diameter region with an inner diameter larger than the outer diameter of the mother tube, at its distal end and proximal end, respectively, to expand the diameter of the proximal end of the mother tube; and then pressing the proximal end of the mother tube with a sleeve to compress the mother tube with the mandrel inserted into the small inner diameter region of the container to reduce its diameter.

[0010] Specifically, the extrusion molding method for a differential thickness pipe according to the present invention (hereinafter sometimes referred to as the "method of the present invention") includes steps 1 to 3 carried out in an extrusion molding apparatus. The extrusion molding apparatus includes a mandrel, which is a core metal having a predetermined shape, a sleeve, which is a tubular member arranged coaxially around the mandrel, a container, which is a die having a container hole, which is a through hole having a predetermined shape, and a drive mechanism configured to push the mandrel and sleeve into the container hole.

[0011] The first step is to set a blank tube having a predetermined shape at a predetermined position inside the container hole. The second step is to use a drive mechanism to push a mandrel into the blank tube, thereby expanding the diameter of the base end, which is the upstream side in the extrusion direction of the blank tube. The third step is to perform an extrusion process after the first time point, at which the second step is started, by pressing the base end of the blank tube with a sleeve to force the blank tube into the tip end, which is the downstream side in the extrusion direction of the container hole, thereby reducing the diameter of the tip end of the blank tube.

[0012] The mother pipe is a cylindrical member having a first outer diameter, a first inner diameter, and a first thickness. The differential thickness pipe formed by the method of the present invention includes, in order from the distal end to the proximal end, a first small diameter region, a second small diameter region, and a large diameter region. The first small diameter region is a region having a second outer diameter, a second inner diameter, an inner diameter, and a second thickness, which is a predetermined thickness smaller than the first thickness. The second small diameter region is a region having a third outer diameter, a third outer diameter, and a third thickness, which is a predetermined thickness smaller than the second thickness. The large diameter region is a region having a fourth outer diameter, a fourth outer diameter, and a predetermined thickness larger than the first outer diameter.

[0013] The mandrel includes a small cross-sectional region, a large cross-sectional region, and an expanding cross-sectional region. The small cross-sectional region is a cylindrical region formed on the distal end side and having a first cross-sectional surface that is a circular cross-section with a fifth outer diameter that is an outer diameter corresponding to the first inner diameter and the second inner diameter. The large cross-sectional region is a cylindrical region formed on the proximal end side and having a second cross-sectional surface that is a cross-section corresponding to the cross-section of the internal space of the second small diameter region and the large diameter region. The expanding cross-sectional region is formed between the small cross-sectional region and the large cross-sectional region and has a cross-sectional surface that expands from the first cross-sectional surface to the second cross-sectional surface as the small cross-sectional region approaches the large cross-sectional region.

[0014] The sleeve includes a pressing region that is a cylindrical region formed on the tip side and has a columnar internal space with a seventh outer diameter that is an outer diameter equal to the fourth outer diameter and a third cross section that is a cross section corresponding to the second cross section.

[0015] The cross-sectional shapes of the internal spaces of the second small diameter region and the large diameter region of the differential thickness pipe are not particularly limited, and can be a wide variety of shapes, such as polygonal, elliptical, circular, etc. In other words, the shapes of the internal spaces of the second small diameter region and the large diameter region are not particularly limited, and can be a wide variety of shapes, such as polygonal cylinder, elliptical cylinder, cylindrical, etc.

[0016] For example, the second small-diameter region may have a cylindrical internal space with a third inner diameter greater than the first inner diameter, and the large-diameter region may have a cylindrical internal space with a fourth inner diameter equal to the third inner diameter. In this case, the large cross-sectional region of the mandrel has a cylindrical internal space with a sixth outer diameter corresponding to the fourth inner diameter, and the enlarged cross-sectional region of the mandrel has a truncated conical external space with an outer diameter that increases from a fifth outer diameter, which is the outer diameter of the small cross-sectional region, to a sixth outer diameter, which is the outer diameter of the large cross-sectional region, as it approaches the large cross-sectional region. The pressing region of the sleeve has a cylindrical internal space with a seventh outer diameter and a seventh inner diameter equal to the third and fourth inner diameters.

[0017] The container bore includes a large inner diameter region, a small inner diameter region, and a decreasing inner diameter region. The large inner diameter region is formed on the base end side and has a sixth inner diameter corresponding to the fourth outer diameter. The small inner diameter region is formed on the tip end side and has a seventh inner diameter corresponding to the second outer diameter and the third outer diameter. The decreasing inner diameter region is formed between the large inner diameter region and the small inner diameter region and has a diameter that decreases from the sixth inner diameter to the seventh inner diameter as the large inner diameter region approaches the small inner diameter region.

[0018] Furthermore, in the method of the present invention, at the second point in time when the third step is started, the tip end of the mandrel in the extrusion direction has reached the tip end of the mother tube or closer to the tip than the tip end of the mother tube, and the base end of the small cross-sectional area of ​​the mandrel is located closer to the base end than the base end of the small inner diameter area of ​​the container hole.

[0019] Another aspect of the present invention is a method for extrusion molding a differential thickness pipe having a predetermined shape, in which a blank tube having a predetermined shape is forced into a container bore by a sleeve in an extrusion molding apparatus, to form a differential thickness pipe having a predetermined shape. The extrusion molding apparatus used in the method of the present invention according to this aspect includes a mandrel which is a core metal having a predetermined shape, a sleeve which is a tubular member disposed coaxially outside the mandrel, a container which is a die having a container bore which is a through hole having a predetermined shape, and a drive mechanism configured to force at least the sleeve into the container bore.

[0020] The mother tube is a cylindrical member having an 11th outer diameter, an 11th inner diameter, and an 11th wall thickness. The differential thickness pipe includes an 11th small outer diameter region, an 11th large outer diameter region, and an 11th increasing outer diameter region. The 11th small outer diameter region is formed at the tip end, i.e., downstream in the pressing direction, which is the direction in which the mother tube is pressed into the container hole, and has a 12th outer diameter, which is a predetermined outer diameter smaller than the 11th outer diameter, a 12th inner diameter, which is an inner diameter equal to the 11th inner diameter, and a 12th wall thickness, which is a predetermined wall thickness smaller than the 11th wall thickness. The 11th large outer diameter region is formed at the base end, i.e., upstream in the pressing direction, and has a 13th outer diameter, which is a predetermined outer diameter larger than the 11th outer diameter, a 13th inner diameter, which is an inner diameter equal to the 11th inner diameter, and a 13th wall thickness, which is a predetermined wall thickness larger than the 11th wall thickness. The 11th increasing outer diameter region is formed between the 11th small outer diameter region and the 11th large outer diameter region, and as it approaches the 11th large outer diameter region from the 11th small outer diameter region, the outer diameter increases from the 12th outer diameter to the 13th outer diameter, the wall thickness increases from the 12th wall thickness to the 13th wall thickness, and the inner diameter is constant at a 14th inner diameter equal to the 11th inner diameter.

[0021] The mandrel includes a base outer diameter region formed on the distal end side and which is a cylindrical region having a 14th outer diameter corresponding to the 11th inner diameter. The sleeve includes an 11th pressing region formed on the distal end side and which is a tubular region having a cylindrical internal space with a 15th outer diameter equal to the 13th outer diameter and a 15th inner diameter corresponding to the 14th outer diameter. The container bore includes an 11th large inner diameter region, an 11th small inner diameter region, and an 11th reduced inner diameter region. The 11th large inner diameter region is formed on the proximal end side and has a 16th inner diameter corresponding to the 13th outer diameter. The 11th small inner diameter region is formed on the distal end side and has a 17th inner diameter corresponding to the 12th outer diameter. The 11th inner diameter decreasing region is formed between the 11th large inner diameter region and the 11th small inner diameter region, and is a region in which the inner diameter decreases from the 16th inner diameter to the 17th inner diameter as it approaches the 11th small inner diameter region from the 11th large inner diameter region.

[0022] The method of the present invention according to this embodiment includes the 11th to 13th steps listed below. The eleventh step is a step of setting the blank tube at a predetermined position inside the container hole by abutting the tip end of the blank tube against the eleventh inner diameter reduced region of the container hole. The twelfth step is a step in which, with the mandrel inserted into the mother tube, the base end of the mother tube is pressed with a sleeve, causing the material constituting the mother tube to plastically flow and fill the space between the container and the mandrel in the eleventh large inner diameter region and the eleventh reduced inner diameter region of the container hole, thereby expanding the outer diameter of the mother tube to a thirteenth outer diameter while maintaining the inner diameter of the mother tube at the eleventh inner diameter. The thirteenth step is a step of reducing the diameter of the tip end of the mother tube by performing an extrusion process in which, while the mandrel is inserted into the mother tube, the base end of the mother tube is further pressed with a sleeve, and the material constituting the mother tube is extruded into the eleventh small inner diameter region of the container hole through the gap between the base end of the eleventh small inner diameter region of the container hole and the mandrel.

[0023] Furthermore, at time 11, when step 12 is started, the tip end of the mandrel has reached position 11, which is the same position in the pushing direction as the base end of the 11th small inner diameter region of the container hole, or further tip than position 11. In addition, at time 12, when step 13 is started, the tip end of the mandrel has reached position 12, which is a position a predetermined distance further tip than the base end of the 11th small inner diameter region of the container hole in the pushing direction, or further tip than position 12.

[0024] The present invention also relates to an extrusion molding apparatus for a pipe with different thicknesses (hereinafter, sometimes referred to as the "apparatus of the present invention") that molds a pipe with different thicknesses by carrying out the method of the present invention described above. [Effects of the Invention]

[0025] In the method of the present invention, as described above, in the first step, a mother tube is set in a container having a container hole formed therein, the container hole having a small inner diameter region having an inner diameter smaller than the outer diameter of the mother tube and a large inner diameter region having an inner diameter larger than the outer diameter of the mother tube, respectively, at its distal and proximal ends. Then, in the second step, a mandrel having a small outer diameter region having an outer diameter corresponding to the inner diameter of the mother tube and a large outer diameter region having an outer diameter larger than the inner diameter of the mother tube, respectively, is forced into the mother tube to expand the proximal end of the mother tube. Furthermore, in the third step, the proximal end of the mother tube is pressed with a sleeve, and the mother tube with the mandrel inserted therein is forced into the small inner diameter region of the container to reduce its diameter.

[0026] Therefore, according to the present invention, it is possible to reduce the increase in processing load compared to when the outer diameter of the mother tube is increased to increase the diameter difference between the large-diameter portion and the small-diameter portion of the differential-thickness pipe. Furthermore, as will be described in detail later, it is possible to reduce the increase in processing load that accompanies the lengthening of the differential-thickness pipe to be formed. In other words, according to the present invention, it is possible to provide an extrusion molding method and extrusion molding apparatus for a differential-thickness pipe, which enable the diameter difference between the large-diameter portion (ear portion) and the small-diameter portion (reduced-diameter differential-thickness portion) to be set large without excessively increasing the processing load, and also enable the axial length to be set arbitrarily.

[0027] In a differential-thickness pipe formed by the method of the present invention according to another aspect, the eleventh large outer diameter region is formed by increasing the wall thickness of the mother tube, and the eleventh small outer diameter region is formed by reducing the wall thickness of the mother tube. Therefore, a larger diameter difference can be achieved with a smaller processing load than when the large outer diameter region is formed while maintaining the outer diameter of the mother tube and then the small outer diameter region is formed by significantly reducing the outer diameter of the mother tube. Furthermore, because the wall thickness of the large outer diameter region can be increased, a differential-thickness pipe suitable for applications requiring high mechanical strength in the large diameter portion can be formed.

[0028] In addition, the axial lengths of the 11th large outer diameter region and the 11th small outer diameter region vary depending on the axial length of the mother tube, the amount of diameter expansion in step 12, the amount of diameter reduction in step 13, and the amount of pressing of the mother tube by the sleeve. That is, the axial lengths of the 11th large outer diameter region and the 11th small outer diameter region of the differential thickness pipe can be set as desired.

[0029] Other objects, other features and attendant advantages of the present invention will be readily apparent from the following description of the embodiments of the present invention which will be given with reference to the drawings. [Brief explanation of the drawings]

[0030] [Figure 1] 1 is a flowchart showing the flow of each step included in the extrusion molding method (first method) for a pipe with different thicknesses according to the first embodiment of the present invention. [Figure 2] 1 is a schematic cross-sectional view showing an example of the configuration of a mother pipe used in a first method and a differential thickness pipe formed from the mother pipe. FIG. [Figure 3] FIG. 2 is a schematic cross-sectional view showing an example of the configuration of a mandrel, a sleeve, and a container used in the first method. [Figure 4] FIG. 2 is a schematic cross-sectional view showing an example of a change in the shape of a raw tube resulting from the execution of the first method. [Figure 5] 4 is a photograph showing smoothing of the inner peripheral surface of a raw tube in accordance with the execution of the second step included in the first method. [Figure 6] FIG. 10 is a schematic cross-sectional view showing an example of a change in the shape of a mother pipe when a differential thickness pipe having a second small diameter region including two portions with different shapes is formed by a first method according to a modified example. [Figure 7] FIG. 10 is a schematic cross-sectional view of a container used in the first method according to another modified example and a differential thickness pipe formed using the container.

[0031] [Figure 8] FIG. 10 is a schematic cross-sectional view showing an example of the configuration of a mother pipe used in an extrusion molding method (fifth method) for a differential thickness pipe according to a fifth embodiment of the present invention, and a differential thickness pipe molded from the mother pipe. [Figure 9] FIG. 10 is a schematic cross-sectional view showing an example of the configuration of a mandrel, a sleeve, and a container used in a fifth method. [Figure 10] 10 is a flowchart showing the steps included in the fifth method. [Figure 11] 10 is a schematic cross-sectional view showing an example of changes in the positional relationship and shape of the mother pipe, mandrel, sleeve, container, and differential thickness pipe as the fifth method progresses. FIG. [Figure 12] 10 is a schematic cross-sectional view showing another example of changes in the positional relationship and shape of the mother pipe, mandrel, sleeve, container, and differential thickness pipe as the fifth method progresses. FIG. [Figure 13]FIG. 10 is a schematic cross-sectional view showing an example of the configuration of a base pipe used in one aspect of the extrusion molding method (sixth method) for a differential thickness pipe according to the sixth embodiment of the present invention and a differential thickness pipe molded from the base pipe. [Figure 14] FIG. 10 is a schematic cross-sectional view showing an example of the configuration of a mandrel, a sleeve, and a container used in a sixth method according to the first embodiment. [Figure 15] FIG. 10 is a schematic cross-sectional view showing an example of changes in the positional relationship and shape of the mother pipe, mandrel, sleeve, container, and differential thickness pipe as the sixth method according to the first embodiment progresses. [Figure 16] FIG. 10 is a schematic cross-sectional view showing an example of changes in the positional relationship and shape of the mother tube, mandrel, sleeve, container, and differential thickness pipe as the modified sixth method according to the first embodiment progresses. [Figure 17] FIG. 10 is a schematic cross-sectional view showing an example of the configuration of a mother pipe used in a sixth method according to the second embodiment and a differential thickness pipe formed from the mother pipe. [Figure 18] FIG. 10 is a schematic cross-sectional view showing an example of the configuration of a mandrel, a sleeve, and a container used in a sixth method according to the second embodiment. [Figure 19] FIG. 10 is a schematic cross-sectional view showing an example of changes in the positional relationship and shape of the mother pipe, mandrel, sleeve, container, and differential thickness pipe as the sixth method according to the second embodiment progresses.

[0032] [Figure 20] FIG. 13 is a schematic cross-sectional view showing an example of the configuration of a mother pipe used in a method for extrusion molding a differential thickness pipe (seventh method) according to a seventh embodiment of the present invention, and a differential thickness pipe molded from the mother pipe. [Figure 21] FIG. 13 is a schematic cross-sectional view showing an example of the configuration of a mandrel, a sleeve, and a container used in a seventh method. [Figure 22] 10 is a schematic cross-sectional view showing an example of changes in the positional relationship and shape of the mother pipe, mandrel, sleeve, container, and differential thickness pipe as the seventh method progresses. FIG. [Figure 23]FIG. 10 is a schematic cross-sectional view showing an example of changes in the positional relationship and shape of a mother tube, a mandrel, a sleeve, a container, and a differential thickness pipe as the process progresses when the seventh method is applied to the sixth method according to the second embodiment. [Figure 24] FIG. 24 is a schematic front view showing the appearance of the blank pipe 111′ and the variable thickness pipe 121′ illustrated in FIG. 23. [Figure 25] 25 is a cross-sectional view of a portion surrounded by a thick dashed line in FIG. 24. [Figure 26] FIG. 13 is a schematic cross-sectional view showing an example of the configuration of a mother pipe used in an extrusion molding method (eighth method) for a differential thickness pipe according to an eighth embodiment of the present invention, and a differential thickness pipe molded from the mother pipe. [Figure 27] FIG. 10 is a schematic cross-sectional view showing an example of changes in the positional relationship and shape of the mother pipe, mandrel, sleeve, container, and differential thickness pipe as the eighth method progresses. DETAILED DESCRIPTION OF THE INVENTION

[0033] First Embodiment Hereinafter, a method for extrusion molding a pipe with different thicknesses according to a first embodiment of the present invention (hereinafter, sometimes referred to as "first method") will be described with reference to the drawings.

[0034] <composition> The first method includes first to third steps carried out in an extrusion molding apparatus including a mandrel, which is a core metal having a predetermined shape, a sleeve, which is a cylindrical member disposed coaxially around the mandrel, a container, which is a die having a container hole, which is a through hole having a predetermined shape, and a drive mechanism configured to push the mandrel and sleeve into the container hole.

[0035] The basic configuration of an extrusion molding apparatus is well known to those skilled in the art and will not be described in detail here. However, the components, including the mandrel, sleeve, and container, are made of materials having properties (e.g., mechanical strength and durability) that enable them to withstand processing conditions, such as the load acting on the components during the extrusion process described below. The drive mechanism for forcing the mandrel and sleeve into the container hole can be appropriately selected from various drive mechanisms well known in the art, depending on the properties (e.g., mechanical strength and hardness) of the material constituting the blank tube to be extruded. Typically, a press, such as a hydraulic press, is used as the drive mechanism.

[0036] 1 is a flowchart showing the flow of each step included in the first method. The first step, performed in step S01, is a step of setting a blank tube having a predetermined shape at a predetermined position inside a container hole. Specifically, in the first step, the blank tube is set at a predetermined position inside a container hole by abutting the tip end of the blank tube against an inner diameter reduced region formed between a large inner diameter region and a small inner diameter region of the container hole formed in the container (each of these regions will be described later).

[0037] In order to form a pipe with a predetermined thickness by the first method, it is necessary to set the mother pipe coaxially with the mandrel, sleeve, and container. The method for setting the mother pipe in this manner is not particularly limited, but, for example, the mandrel may be provided with a tapered portion at the end portion near the tip end thereof, and the tapered portion may be inserted into the mother pipe when the diameter expansion of the mother pipe is about to begin in the second step, thereby setting the mother pipe coaxially with the mandrel, sleeve, and container.

[0038] The second step, performed in step S02, involves using a drive mechanism to push a mandrel into the mother tube, thereby expanding the diameter of the base end, which is the upstream side in the extrusion direction of the mother tube. The third step, performed in step S03, involves using a sleeve to press the base end of the mother tube after the first time point, at which the second step is started, to force the mother tube into the tip end, which is the downstream side in the extrusion direction of the container hole, thereby performing an extrusion process and thereby reducing the diameter of the tip end of the mother tube. As will be described in detail later, by performing these first to third steps included in the first method, a differential thickness pipe having a predetermined shape can be formed.

[0039] The mother pipe, mandrel, sleeve and container used in the first method, as well as the differential thickness pipe formed by carrying out the first method, will be described in detail below with reference to the drawings.

[0040] 2A and 2B are schematic cross-sectional views showing an example of the configuration of a mother pipe used in the first method and a differential thickness pipe formed from the mother pipe. As shown in Fig. 2A, the mother pipe 11 is a cylindrical member having a first outer diameter DO1, a first inner diameter DI1, and a first thickness T1.

[0041] The shape of the mother pipe is not necessarily limited to the simple cylindrical shape exemplified in Fig. 2. For example, a portion having a different structure may be provided at the end portion near the tip end of the mother pipe, as long as it does not interfere with the implementation of the first method. Specifically, for example, a cylindrical portion having a predetermined outer diameter smaller than the outer diameter of the small inner diameter region of the container hole, a predetermined inner diameter equal to or smaller than a first inner diameter DI1 which is the inner diameter of the mother pipe, and a predetermined wall thickness smaller than a first wall thickness T1 which is the wall thickness of the mother pipe may be provided at the end portion near the tip end of the mother pipe.

[0042] Moreover, the material constituting the raw tube 11 is not particularly limited as long as it can be formed into a desired shape by plastic deformation in extrusion. Typically, the material constituting the raw tube 11 is a metal such as, for example, lead, tin, aluminum, copper, zirconium, titanium, molybdenum, vanadium, niobium, and steel.

[0043] Next, as shown in (b) of FIG. 2, the thickness-varying pipe 21 formed by the first method includes, in order from the tip side (lower side in the drawing) to the base end side (upper side in the drawing), a first small-diameter region RSD1, a second small-diameter region RSD2, and a large-diameter region RLD. The first small-diameter region RSD1 is a region having a second outer diameter DO2 (DO2 < DO1), which is a predetermined outer diameter smaller than the first outer diameter DO1, a second inner diameter DI2 (DI2 = DI1), which is equal to the first inner diameter DI1, and a second wall thickness T2 (T2 < T1), which is a predetermined wall thickness smaller than the first wall thickness T1. The second small-diameter region RSD2 is a region having a third outer diameter DO3 (DO3 = DO2), which is equal to the second outer diameter DO2, and a third wall thickness T3 (T3 < T2), which is a predetermined wall thickness smaller than the second wall thickness T2. The large-diameter region RLD is a region having a fourth outer diameter DO4 (DO4 > DO1), which is a predetermined outer diameter larger than the first outer diameter DO1, and a fourth wall thickness T4. Note that since the internal spaces of the second small-diameter region RSD2 and the large-diameter region RLD are both formed by expanding the internal space of the raw tube 11 by the large cross-sectional region of the mandrel described later, the cross-sectional shapes of the internal spaces of the second small-diameter region RSD2 and the large-diameter region RLD are the same.

[0044] Between the first small diameter region RSD1 and the second small diameter region RSD2, there is formed a first tapered region RtDI1, in which the thickness decreases from the second thickness T2 to the third thickness T3 and the cross section of the internal space expands (however, the outer diameter does not change) as one approaches the second small diameter region RSD1 from the first small diameter region RSD1 to the second small diameter region RSD2. Furthermore, between the second small diameter region RSD2 and the large diameter region RLD, there is formed a second tapered region RtDI2, in which the thickness increases from the third thickness T3 to the fourth thickness T4 and the outer diameter increases (however, the cross section of the internal space does not change) as one approaches the second small diameter region RSD2 from the second small diameter region RSD2 to the large diameter region RLD. Details of the first tapered region RtDI1 and the second tapered region RtDI2 will be described later.

[0045] As described above, the cross-sectional shapes of the internal spaces of the second small diameter region RSD2 and the large diameter region RLD are not particularly limited and can be a variety of shapes, such as polygonal, elliptical, and circular. In other words, the cross-sectional shapes of the internal spaces of the second small diameter region RSD2 and the large diameter region RLD are not particularly limited and can be a variety of shapes, such as polygonal, elliptical, and cylindrical. Therefore, the shape of the internal space of the first tapered region RtDI1 is also not particularly limited, as long as the cross-sectional shape expands from the circular cross-sectional shape of the internal space of the first small diameter region RSD1 to the cross-sectional shape of the internal space of the second small diameter region RSD2 as it approaches the first small diameter region RSD1. As described above, the cross-sectional shapes of the internal spaces of the second small diameter region RSD2 and the large diameter region RLD are the same. Therefore, the cross-sectional shape of the internal space of the second tapered region RtDI2 formed between the second small diameter region RSD2 and the large diameter region RLD is also identical over the entire area to the cross-sectional shapes of the internal spaces of the second small diameter region RSD2 and the large diameter region RLD.

[0046] The mandrel includes a small cross-sectional region, a large cross-sectional region, and an expanding cross-sectional region. The small cross-sectional region is a cylindrical region formed on the distal end side and having a first cross-sectional surface that is a circular cross-section with a fifth outer diameter that is an outer diameter corresponding to the second inner diameter. The large cross-sectional region is a cylindrical region formed on the proximal end side and having a second cross-sectional surface that is a cross-section corresponding to the cross-section of the internal space of the second small diameter region and the large diameter region. The expanding cross-sectional region is formed between the small cross-sectional region and the large cross-sectional region and has a cross-sectional surface that expands from the first cross-sectional surface to the second cross-sectional surface as the small cross-sectional region approaches the large cross-sectional region.

[0047] The sleeve includes a pressing region that is a cylindrical region formed on the tip side and has a columnar internal space with a seventh outer diameter that is an outer diameter equal to the fourth outer diameter and a third cross section that is a cross section corresponding to the second cross section.

[0048] The container bore includes a large inner diameter region, a small inner diameter region, and a decreasing inner diameter region. The large inner diameter region is formed on the base end side and has a sixth inner diameter corresponding to the fourth outer diameter. The small inner diameter region is formed on the tip end side and has a seventh inner diameter corresponding to the second outer diameter and the third outer diameter. The decreasing inner diameter region is formed between the large inner diameter region and the small inner diameter region and has a diameter that decreases from the sixth inner diameter to the seventh inner diameter as the large inner diameter region approaches the small inner diameter region.

[0049] As described above, the shapes of the internal spaces of the second small diameter region RSD2 and the large diameter region RLD of the differential thickness pipe 21 are not particularly limited and can be a variety of shapes, such as a polygonal prism, an elliptical cylinder, or a circular cylinder. However, in the following description, for the purpose of facilitating understanding of the present invention, a case will be described in which the internal spaces of the second small diameter region RSD2 and the large diameter region RLD of the differential thickness pipe 21 each have a cylindrical shape. Specifically, as shown in parentheses in FIG. 2B, a case will be described in which the internal space of the second small diameter region RSD2 of the differential thickness pipe 21 has a cylindrical shape with a third inner diameter DI3 (DI3 > DI1) that is a predetermined inner diameter larger than the first inner diameter DI1, and the internal space of the large diameter region RLD of the differential thickness pipe 21 has a cylindrical shape with a fourth inner diameter DI4 (DI4 = DI3) that is an inner diameter equal to the third inner diameter DI3. In this case, as will be described below with reference to FIG. 3(a), the shape of the large cross-sectional area of ​​the mandrel and the shape of the internal space of the sleeve also have a cylindrical shape.

[0050] FIG. 3 is a schematic cross-sectional view showing an example of the configuration of the mandrel, sleeve, and container used in the first method. FIG. 3(a) is a schematic cross-sectional view showing an example of the configuration of the mandrel and sleeve used in the first method. As shown in FIG. 3(a), the mandrel 31 includes a small cross-sectional region RSC, a large cross-sectional region RLC, and an enlarged cross-sectional region ReC. The small cross-sectional region RSC is a cylindrical region formed on the distal end side and having a first cross-sectional surface that is a circular cross-section with a fifth outer diameter DO5 corresponding to the second inner diameter DI2. The large cross-sectional region RLC is a cylindrical region formed on the proximal end side and having a second cross-sectional surface that is a circular cross-section with a sixth outer diameter DO6 corresponding to the third inner diameter DI3 and the fourth inner diameter DI4 (i.e., a cross-sectional surface corresponding to the cross-sectional surface of the internal space of the second small diameter region RSD2 and the large diameter region RLD). The enlarged cross-sectional region ReC is a region having a truncated cone shape formed between the small cross-sectional region RSC and the large cross-sectional region RLC, and whose outer diameter increases from a fifth outer diameter DO5 to a sixth outer diameter DO6 as it approaches the small cross-sectional region RSC toward the large cross-sectional region RLC (i.e., a region whose cross section expands from the first cross section to the second cross section). In the second step, the small cross-sectional region RSC of the mandrel 31 having such a shape is inserted into the internal space of the mother tube 11 from the base end side (upper side in the drawing) and the enlarged cross-sectional region ReC and the large cross-sectional region RLC are pressed toward the tip side (lower side in the drawing), thereby expanding the diameter of the base end side of the mother tube 11 and forming the large diameter region RLD of the differential thickness pipe 21.

[0051] The sleeve 41 includes a pressing region RP formed at its tip end and having a cylindrical shape with a seventh outer diameter DO7 equal to the fourth outer diameter DO4 and a fifth inner diameter DI5 corresponding to the sixth outer diameter DO6 (i.e., a cylindrical region having a columnar internal space with a third cross section corresponding to the second cross section). In the third step, the tip end (lower side in the drawing) of the pressing region RP having such a shape presses the base end (upper side in the drawing) of the mother tube 11 to force the mother tube 11 into the tip end of the container hole, thereby performing the extrusion process.

[0052] Next, (b) of Fig. 3 is a schematic cross-sectional view showing an example of the configuration of a container used in the first method. As shown in (b) of Fig. 3, a container hole 51a formed in a container 51 includes a large inner diameter region RLDI, a small inner diameter region RSDI, and a decreasing inner diameter region RsDI. The large inner diameter region RLDI is formed on the base end side and has a sixth inner diameter DI6 that corresponds to the fourth outer diameter DO4. The small inner diameter region RSDI is formed on the tip end side and has a seventh inner diameter DI7 that corresponds to the second outer diameter DO2 and the third outer diameter DO3. The decreasing inner diameter region RsDI is formed between the large inner diameter region RLDI and the small inner diameter region RSDI and is a region whose inner diameter decreases from the sixth inner diameter DI6 to the seventh inner diameter DI7 as it approaches the small inner diameter region RSDI from the large inner diameter region RLDI. In the third step, the base tube 11 is forced into the container hole 51a having such a shape by the sleeve 41, thereby forming the first small diameter region RSD1, the first tapered region RtDI1, the second small diameter region RSD2 and the second tapered region RtDI2 of the differential thickness pipe 21.

[0053] During the formation of the first small diameter region RSD1 of the differential thickness pipe 21, the extrusion must be performed through a gap corresponding to the second thickness T2, which is the wall thickness of the first small diameter region RSD1. Therefore, in the first method, at the second point in time when the third step is started, the leading end of the mandrel 31 in the extrusion direction reaches the leading end of the mother tube 11 or is closer to the leading end of the mother tube 11. In other words, when the leading end of the sleeve 41 abuts against the base end of the mother tube 11, the leading end of the mandrel 31 has reached the leading end of the mother tube 11 or has already passed the leading end of the mother tube 11. Additionally, at the second point in time, the base end of the small cross-sectional region RSC of the mandrel 31 is located closer to the base end than the base end of the small inner diameter region RSDI of the container bore 51a. This allows the material to form the first small diameter region RSD1 of the differential thickness pipe 21 to be extruded distally through the gap between the small cross-sectional region RSC of the mandrel 31 and the small inner diameter region RSDI of the container bore 51a, which gap corresponds to the second thickness T2 of the first small diameter region RSD1. That is, it is possible to perform the extrusion process of the first small diameter region RSD1 of the differential thickness pipe 21. The distance between the base end of the small cross-sectional region RSC of the mandrel 31 and the base end of the small inner diameter region RSDI of the container bore 51a can be determined appropriately based on, for example, the length in the extrusion direction of the first small diameter region RSD1 of the differential thickness pipe 21 to be formed and the second thickness T2, which is the wall thickness of the first small diameter region RSD1.

[0054] The length of the small cross-sectional area RSC of the mandrel 31 can also be determined appropriately based on, for example, the length in the extrusion direction of the first small diameter area RSD1 of the differential thickness pipe 21 to be formed. Specifically, for example, if the length of the small cross-sectional area RSC of the mandrel 31 is excessively short, and the tip end of the small cross-sectional area RSC of the mandrel 31 has not reached the base end of the small inner diameter area RSDI of the container hole 51a when the material for forming the first small diameter area RSD1 of the differential thickness pipe 21 reaches the base end end of the small inner diameter area RSDI of the container hole 51a, the material may wrap around further tip-side than the small cross-sectional area RSC of the mandrel 31, causing the wall thickness of the tip end of the first small diameter area RSD1 of the differential thickness pipe 21 to become thicker than the second wall thickness T2. In order to avoid such problems, it is preferable that at the latest when the material to form the first small diameter region RSD1 of the differential thickness pipe 21 reaches the base end of the small inner diameter region RSDI of the container hole 51a, the tip end of the small cross-sectional region RSC of the mandrel 31 has reached the base end of the small inner diameter region RSDI of the container hole 51a or further tip-side than the base end of the small inner diameter region RSDI of the container hole 51a.

[0055] Figure 4 is a schematic cross-sectional view showing an example of changes in the shape of a blank tube that accompany the execution of the first method. Note that, in Figure 4, the reference numerals assigned to the components shown in Figures 2 and 3 have been omitted for the sake of simplicity. However, in the following explanation of Figure 4, the reference numerals shown in Figures 2 and 3 will be used for accuracy, so please refer to Figures 2 and 3 as necessary.

[0056] 4(a) shows a state in which the first step of the first method has been completed, in which the mother tube 11 is inserted into the large inner diameter region RLDI of the container bore 51a formed in the container 51, and the tip end of the mother tube 11 abuts the reduced inner diameter region RSDI. That is, the mother tube 11 is set at a predetermined position inside the container bore 51a. In the example shown in FIG. 4(a), the small cross-sectional region RSC of the mandrel 31 is inserted into the mother tube 11, so that the mother tube 11 is set coaxially with the mandrel 31, sleeve 41, and container 51.

[0057] 4(b), in the second step included in the first method, the mandrel 31 is pressed into the mother tube 11 by a driving mechanism (not shown), the large cross-sectional region RLC of the mandrel 31 expands the diameter of the base end of the mother tube 11, and the tip end of the sleeve 41 abuts against the base end of the mother tube 11. That is, FIG. 4(b) shows the state at a second point in time when the third step is about to be started. In the example shown in FIG. 4(b), the tip end of the mandrel 31 has reached a position closer to the tip than the tip end of the mother tube 11. Therefore, during the period in which the first small diameter region RSD1 of the differential thickness pipe 21 is formed in the subsequent third step, the first small diameter region RSD1 of the differential thickness pipe 21 is extruded through the gap between the small cross-sectional region RSC of the mandrel 31 and the small inner diameter region RSDI of the container hole 51a, which is the gap corresponding to the second wall thickness T2 of the first small diameter region RSD1. Therefore, as described above, it is possible to avoid the problem that the wall thickness of the first small diameter region RSD1 of the differential thickness pipe 21 at the distal end becomes thicker than the second wall thickness T2 due to the material for forming the first small diameter region RSD1 of the differential thickness pipe 21 wrapping around further distally than the small cross-sectional region RSC of the mandrel 31. In addition, the base end of the small cross-sectional region RSC of the mandrel 31 is located proximal to the base end of the small inner diameter region RSDI of the container hole 51a. Therefore, the material for forming the first small diameter region RSD1 of the differential thickness pipe 21 can be extruded distally through the gap between the small cross-sectional region RSC of the mandrel 31 and the small inner diameter region RSDI of the container hole 51a to form the first small diameter region RSD1 of the differential thickness pipe 21.

[0058] In the second step, as the mandrel 31 and sleeve 41 are pushed further toward the tip and the extrusion process progresses further, the material constituting the mother tube 11 is pushed toward the tip through the gap between the enlarged cross-sectional region ReC of the mandrel 31 and the small inner diameter region RSDI of the container hole 51a, forming the first tapered region RtDI1 of the differential thickness pipe 21. Thereafter, the material constituting the mother tube 11 is pushed toward the tip through the gap between the large cross-sectional region RLC of the mandrel 31 and the small inner diameter region RSDI of the container hole 51a, forming the second small diameter region RSD2 of the differential thickness pipe 21.

[0059] 4(c) shows the state after the extrusion of the first small diameter region RSD1 and the second small diameter region RSD2 of the differential thickness pipe 21 in the third step has been completed, completing the formation of the differential thickness pipe 21. As shown in the area surrounded by the thick dashed line in FIG. 4(c), the slope of the inner circumferential surface of the first tapered region RtDI1 of the differential thickness pipe 21 is gentler than the slope of the outer circumferential surface of the enlarged cross-sectional region ReC of the mandrel 31. This is because, as the enlarged cross-sectional region ReC of the mandrel 31 passes a position facing the base end of the small inner diameter region RSDI of the container hole 51a, the gap between the base end of the small inner diameter region RSDI and the mandrel 31 gradually narrows, increasing the flow rate of the material being extruded toward the tip side. As a result, the slope of the inner circumferential surface of the first tapered region RtDI1 is longer and more gentle in the extrusion direction than the slope of the outer circumferential surface of the enlarged cross-sectional region ReC.

[0060] Furthermore, a gap is generated between the portion of the differential thickness pipe 21 adjacent to the base end of the first tapered region RtDI1 and the mandrel 31. This is because, as the enlarged cross-sectional region ReC of the mandrel 31 passes a position facing the base end of the small inner diameter region RSDI of the container hole 51a, the gap between the base end of the small inner diameter region RSDI and the mandrel 31 gradually narrows, and the cross-sectional area of ​​the gap between the large cross-sectional region RLC of the mandrel 31 and the small inner diameter region RSDI of the container hole 51a becomes smaller than the cross-sectional area of ​​the blank tube 11 (expanded in diameter as the large diameter region RLD of the differential thickness pipe 21) pushed into the gap. As a result, the flow rate of the material extruded toward the tip side increases, and the first tapered region RtDI1 and the second small diameter region RSD2 of the differential thickness pipe 21 become longer in the extrusion direction.

[0061] The gap lengthens as the extrusion processing of the second small diameter region RSD2 of the differential thickness pipe 21 progresses in the third step, and the contact area between the differential thickness pipe 21 and the mandrel 31 decreases. As a result, according to the first method, the processing load decreases as the extrusion processing of the second small diameter region RSD2 of the differential thickness pipe 21 progresses in the third step, so this method is suitable for forming long objects (axially long differential thickness pipes).

[0062] <effect> As described above, in the first method, in a first step, a mother tube is set in a container having a container hole formed therein, the container hole having a small inner diameter region having an inner diameter smaller than the outer diameter of the mother tube and a large inner diameter region having an inner diameter larger than the outer diameter of the mother tube, respectively, at its distal and proximal ends. Then, in a second step, a mandrel having a small outer diameter region having an outer diameter corresponding to the inner diameter of the mother tube and a large outer diameter region having an outer diameter larger than the inner diameter of the mother tube, respectively, is forced into the mother tube to expand the proximal end of the mother tube. Furthermore, in a third step, the proximal end of the mother tube is pressed with a sleeve, and the mother tube with the mandrel inserted therein is forced into the small inner diameter region of the container to reduce its diameter.

[0063] Therefore, according to the first method, it is possible to reduce the increase in processing load compared to when the outer diameter of the mother pipe is increased to increase the diameter difference between the large diameter portion and the small diameter portion of the differential thickness pipe. Also, it is possible to reduce the increase in processing load that accompanies the lengthening of the differential thickness pipe to be formed. In other words, according to the first method, it is possible to set the diameter difference between the large diameter portion (ear portion) and the small diameter portion (reduced diameter differential thickness portion) to be large without an excessive increase in processing load, and it is also possible to set the axial length as desired.

[0064] In addition to the above, in the second step included in the first method, as described above, a mandrel is pressed into the mother tube, and the large cross-sectional area of ​​the mandrel expands the diameter of the base end of the mother tube. During this process, the inner circumferential surface of the mother tube is treated by the mandrel, which smooths the inner circumferential surface of the mother tube by eliminating machining marks (tool marks) that may have occurred, for example, when drilling a hole (internal space) in the mother tube. Figure 5 shows photographs illustrating the smoothing of the inner circumferential surface of the mother tube resulting from the second step included in the first method. Figure 5(a) is a photograph of the inner circumferential surface of the mother tube before the second step is performed or in a method in which the base end of the mother tube is not expanded by the large cross-sectional area of ​​the mandrel, and shows machining marks that occurred when drilling a hole in the mother tube. These machining marks may become the starting point for defects such as cracks when the mother tube is subjected to stresses such as tensile stress during the subsequent extrusion process performed in the third step and / or during use after forming a differential-thickness pipe. On the other hand, Fig. 5(b) is a photograph of the inner peripheral surface of the first small diameter region of the differential thickness pipe formed by the first method, and it can be seen that the inner peripheral surface is smooth and has no processing marks as shown in Fig. 5(a). In other words, the first method can reduce the risk of defects such as cracks occurring when the pipe is subjected to stress such as tensile stress during the extrusion process performed in the third step and / or during use after the formation of the differential thickness pipe.

[0065] <Variations> 2(b), the differential-thickness pipe 21 formed by the first method includes, in order from the distal end to the proximal end, a first small-diameter region RSD1, a second small-diameter region RSD2, and a large-diameter region RLD. The second small-diameter region RSD2 of the differential-thickness pipe 21 is composed of a single part having a third outer diameter DO3 equal to a second outer diameter DO2 that is smaller than a first outer diameter DO1 that is the outer diameter of the mother tube 11, an internal space having a cross-section corresponding to the cross-section of the large cross-sectional region RLC of the mandrel 31, and a third thickness T3 that is smaller than the second thickness T2 that is the wall thickness of the first small-diameter region RSD1. However, the second small-diameter region of the differential-thickness pipe 21 does not necessarily have to be composed of a single part, and may include multiple parts whose internal space has different cross-sectional shapes.

[0066] FIG. 6 is a schematic cross-sectional view showing an example of the change in the shape of a blank pipe when a differential pipe having a second small-diameter region including two portions with different shapes is formed by the first method according to the modified example. (a) to (c) of FIG. 6 show the states corresponding to (a) to (c) of FIG. 4, which were referred to in the description of the first method. In FIG. 6, as in FIG. 4, the reference numerals assigned to the components shown in FIGS. 2 and 3 have been omitted for simplicity's sake. However, in the following description of FIG. 6, the reference numerals shown in FIGS. 2 and 3 will be used for accuracy, so please refer to FIGS. 2 and 3 as necessary. (d) of FIG. 6 is a schematic cross-sectional view of a differential pipe 21′ formed by the first method according to the modified example.

[0067] In the example shown in Fig. 6, the large cross-sectional region RLC of the mandrel 31' includes a portion formed at the base end having a cross-section corresponding to the cross-section of the internal space of the large diameter region RLD of the differential thickness pipe 21' to be formed, and a portion formed at the tip end having a cross-section corresponding to the cross-section of the internal space of the second small diameter region RSD2 of the differential thickness pipe 21' to be formed. Therefore, as illustrated in Fig. 6(b), the base end region of the blank tube 11 expanded in diameter by the large cross-sectional region RLC of the mandrel 31' in the second step included in the first method is formed with two portions having internal spaces with different cross-sections (and a portion formed between these two portions where the cross-section of the internal space expands from the tip end to the base end). Subsequently, the first small diameter region RSD1 and the second small diameter region RSD2 of the differential thickness pipe 21' are formed by extrusion in the third step, and the forming of the differential thickness pipe 21' is completed as illustrated in Fig. 6(c).

[0068] 6(d), the second small diameter region RSD2 of the differential thickness pipe 21' formed as described above has a portion PSD2 formed on the base end side, which has a columnar internal space having a cross section identical to that of the internal space of the large diameter region RLD (a cylindrical internal space having a fourth inner diameter DI4 if the cross section is circular), and a portion PSD1 formed on the tip end side, which has a columnar internal space having a cross section intermediate between that of the internal space of the large diameter region RLD and that of the internal space of the first small diameter region RSD1 (a cylindrical internal space if both cross sections are circular). Between these two portions PSD1 and PSD2, a tapered portion PtDI is formed, whose internal space cross section expands from that of the internal space of portion PSD1 to that of portion PSD2 as it approaches the base end. That is, the second small diameter region RSD2 of the differential thickness pipe 21' illustrated in FIG. 6(d) is multi-staged by these two portions PSD1 and PSD2 and the tapered portion PtDI.

[0069] As described above, the first method according to the modified example makes it possible to form a pipe having a second small-diameter region including a plurality of portions with different cross-sectional shapes of the internal space. When forming a plurality of portions with different cross sections in the large cross-sectional region RLC of the mandrel 31' as described above, it is of course necessary to form the large cross-sectional region RLC so that the cross section of the tip end portion is smaller than the cross section of the base end portion.

[0070] In the above-mentioned modified example, the second small diameter region of the variable thickness pipe is multi-staged to include a plurality of portions having different cross-sectional shapes of the internal space. However, the multi-staged variable thickness pipe is not limited to the above. For example, depending on the mechanical strength, degree of work hardening, and / or ease of plastic flow of the material constituting the mother pipe, and / or the mechanical strength of the members constituting the extrusion molding apparatus and / or the processing capacity of the extrusion molding apparatus, it is also possible to form a multi-staged outer surface of the first small diameter region, second small diameter region, and / or large diameter region of the variable thickness pipe by providing a plurality of portions having different inner diameters in the large inner diameter region and / or small inner diameter region of the container.

[0071] 7A and 7B are schematic cross-sectional views of a container used in the first method according to another modified example and a differential-thickness pipe formed using the container. In a container hole 51a' formed in a container 51' shown in Fig. 7A, the large inner diameter region RLDI is multi-staged (two-staged), with a portion having a sixth inner diameter DI6 formed on the tip end side and a portion having an inner diameter DI6' larger than the sixth inner diameter DI6 formed on the base end side. By carrying out the first method using a container 51' having such a configuration and a sleeve (not shown) corresponding to the container 51', it is possible to form a differential thickness pipe 21" having a multi-stage (two-stage) large diameter region RLD, consisting of a portion having a fourth outer diameter DO4 formed on the tip end side and a portion having an outer diameter DO4' larger than the fourth outer diameter DO4 formed on the base end side, as illustrated in (b) of Figure 7. Although not shown, by making the small inner diameter region RSDI of the container multi-stage in the same manner as above, it is also possible to form a differential thickness pipe 21" having a multi-stage first small diameter region RSD1 and / or second small diameter region RSD2.

[0072] Second Embodiment Hereinafter, a method for extrusion molding a pipe with different thicknesses according to a second embodiment of the present invention (hereinafter, sometimes referred to as the "second method") will be described with reference to the drawings.

[0073] As described above in the description of the first method, in the third step, as the enlarged cross-sectional region of the mandrel passes a position facing the base end of the small inner diameter region of the container hole, the gap between the base end of the small inner diameter region and the mandrel gradually narrows. Furthermore, the cross-sectional area of ​​the gap between the large cross-sectional region of the mandrel and the small inner diameter region of the container hole is smaller than the cross-sectional area of ​​the blank tube (expanded to form the large diameter region of the differential thickness pipe) being forced into the gap. As a result, the flow rate of the material extruded from the gap between the large cross-sectional region of the mandrel and the small inner diameter region of the container hole toward the tip side increases, and the first tapered region and second small diameter region of the differential thickness pipe become longer in the extrusion direction. This creates a gap between the mandrel and the portion of the differential thickness pipe adjacent to the base end of the first tapered region.

[0074] In the above process, the first tapered region and second small-diameter region of the differential-thickness pipe extend toward the tip side faster than the mandrel, so the mandrel is pulled toward the tip side by the first small-diameter region of the differential-thickness pipe. Therefore, if the mandrel is fixed to the sleeve so that the mandrel does not advance toward the tip side faster than the sleeve, the sleeve is pulled toward the tip side by the first tapered region and second small-diameter region of the differential-thickness pipe via the mandrel. In other words, part of the processing load required to perform extrusion by pressing the blank tube with the sleeve in the third step can be covered by the tensile stress of the first tapered region and second small-diameter region of the differential-thickness pipe, which extend toward the tip side more quickly.

[0075] <composition> Therefore, the second method is the above-mentioned first method, which is an extrusion molding method for a differential thickness pipe, in which the mandrel and the sleeve are fixed so that the distance between the tip end of the mandrel and the tip end of the sleeve in the extrusion direction is not greater than the distance between the tip end of the mandrel and the tip end of the sleeve at the second point in time.

[0076] Here, reference is again made to FIG. 3(a), which was referred to in the description of the first method. The mandrel 31 illustrated in FIG. 3(a) is inserted into a columnar internal space formed in the sleeve 41. That is, the sleeve 41 is coaxially disposed outside the mandrel 31. The proximal end of the mandrel 31 is formed with a portion having a cross section larger than the cross section of the internal space of the sleeve 41 (an outer diameter larger than the fifth inner diameter DI5), and this portion abuts against the sleeve 41 at the proximal end of the internal space of the sleeve 41. Therefore, the mandrel 31 cannot advance further distally relative to the sleeve 41 than the position illustrated in FIG. 3(a). That is, the mandrel 31 and the sleeve 41 are fixed so that the distance between the distal end of the mandrel 31 and the distal end of the sleeve 41 does not become further large.

[0077] <effect> As a result, when the first tapered region and the second small-diameter region of the differential-thickness pipe are extruded in the third step, the mandrel is pulled toward the tip by the first small-diameter region of the differential-thickness pipe, as described above, and the mandrel 31 drives the sleeve 41 toward the tip. As a result, part of the processing load required to perform the extrusion process by pressing the blank pipe with the sleeve 41 in the third step can be covered by the tensile stress of the first tapered region and the second small-diameter region of the differential-thickness pipe, which extend more rapidly toward the tip, thereby reducing the processing load in the third step. This effect is extremely effective when attempting to form a long differential-thickness pipe.

[0078] To achieve the above effect, it is sufficient that the mandrel and the sleeve are fixed so that the distance between the tip end of the mandrel and the tip end of the sleeve in the extrusion direction is not greater than the distance between the tip end of the mandrel and the tip end of the sleeve at the second point in time. However, the positional relationship between the mandrel and the sleeve may be fixed throughout, for example, from the perspective of reducing manufacturing costs by simplifying the configuration of the extrusion molding device.

[0079] Third Embodiment As mentioned at the beginning of this specification, the present invention relates not only to the extrusion molding method for a pipe with different thicknesses, including the first and second methods described above, but also to an extrusion molding apparatus for a pipe with different thicknesses. Therefore, the extrusion molding apparatus for a pipe with different thicknesses according to various embodiments of the present invention will be described below.

[0080] First, an extrusion molding device for a pipe with different thicknesses according to a third embodiment of the present invention (hereinafter, sometimes referred to as "third device") will be described.

[0081] <composition> The third device is an extrusion molding device for a differential thickness pipe, comprising a mandrel which is a core metal having a predetermined shape, a sleeve which is a tubular member arranged coaxially around the mandrel, a container which is a die having a container hole which is a through hole having a predetermined shape, and a drive mechanism configured to push the mandrel and sleeve into the container hole. The third device is configured to mold a differential thickness pipe having a predetermined shape by performing the first to third steps.

[0082] The first to third steps and the mandrel, sleeve, and container have already been described in detail with reference to FIGS. 1 to 4 in the description of the first method, and therefore will not be described here.

[0083] As mentioned above, the cross-sectional shapes of the internal spaces of the second small diameter region RSD2 and the large diameter region RLD of the differential thickness pipe 21 are not particularly limited and can be a variety of shapes, such as polygonal, elliptical, and circular. Typically, as described in the first method with reference to Figures 2 and 3, the internal space of the second small diameter region RSD2 of the differential thickness pipe 21 has a cylindrical shape with a third inner diameter DI3 (DI3 > DI1) that is a predetermined inner diameter larger than the first inner diameter DI1, and the internal space of the large diameter region RLD of the differential thickness pipe 21 has a cylindrical shape with a fourth inner diameter DI4 (DI4 = DI3) that is an inner diameter equal to the third inner diameter DI3. In this case, the large cross-sectional region RLC of the mandrel 31 and the internal space of the sleeve 41 also each have a cylindrical shape.

[0084] <effect> By performing the first to third steps in the third apparatus having the above-described configuration, it is possible to reduce the increase in processing load compared to when the outer diameter of the mother pipe is increased to increase the diameter difference between the large-diameter portion and the small-diameter portion of the differential-thickness pipe. Furthermore, it is possible to reduce the increase in processing load that accompanies the lengthening of the differential-thickness pipe to be formed. In other words, the third apparatus makes it possible to set a large diameter difference between the large-diameter portion (the lug portion) and the small-diameter portion (the reduced-diameter differential-thickness portion) without an excessive increase in processing load, and also to set the axial length as desired.

[0085] Fourth Embodiment Next, an extrusion molding device for a pipe with different thicknesses according to a fourth embodiment of the present invention (hereinafter, sometimes referred to as the "fourth device") will be described.

[0086] <composition> The fourth device is the third device described above, which is an extrusion molding device for a differential thickness pipe, in which the mandrel and the sleeve are fixed so that the distance between the tip end of the mandrel and the tip end of the sleeve in the extrusion direction is not greater than the distance between the tip end of the mandrel and the tip end of the sleeve at the second point in time.

[0087] <effect> According to the fourth device, when the first tapered region and the second small-diameter region of the differential-thickness pipe are extruded in the third step, the mandrel is pulled toward the tip by the first small-diameter region of the differential-thickness pipe as described above, and the mandrel 31 drives the sleeve 41 toward the tip. As a result, part of the processing load required to perform the extrusion process by pressing the blank pipe with the sleeve 41 in the third step can be covered by the tensile stress of the first tapered region and the second small-diameter region of the differential-thickness pipe, which extend more rapidly toward the tip, thereby reducing the processing load in the third step. This effect is extremely effective when attempting to form a long differential-thickness pipe.

[0088] To achieve the above effect, it is sufficient that the mandrel and the sleeve are fixed so that the distance between the tip end of the mandrel and the tip end of the sleeve in the extrusion direction is not greater than the distance between the tip end of the mandrel and the tip end of the sleeve at the second point in time. However, the positional relationship between the mandrel and the sleeve may be fixed throughout, for example, from the perspective of reducing manufacturing costs by simplifying the configuration of the extrusion molding device.

[0089] Fifth Embodiment Next, we will explain a method for extrusion molding a pipe with different thicknesses according to a fifth embodiment of the present invention (hereinafter, sometimes referred to as the "fifth method"). Please note that the drawings referred to in the following explanation are merely schematic diagrams used for the purpose of explaining the present invention, and that the dimensions, size relationships, and positional relationships of the individual components depicted in each drawing do not strictly and accurately represent the constituent elements of the present invention. The same applies to other embodiments of the present invention described below.

[0090] In the extrusion molding methods for a differential thickness pipe according to the first and second embodiments of the present invention (first method and second method), a mandrel including a region having an outer diameter larger than the inner diameter of the mother pipe is forced into the mother pipe to expand the diameter of the base end of the mother pipe, and then the base end of the mother pipe is pressed with a sleeve to force the mother pipe into the small inner diameter region of the container and reduce the diameter. This makes it possible to increase the diameter difference between the large diameter portion and the small diameter portion (reduced diameter differential thickness portion) and to set the axial length as desired without excessively increasing the processing load, compared to when the outer diameter of the mother pipe is increased to increase the diameter difference between the large diameter portion and the small diameter portion of the differential thickness pipe.

[0091] In the above-described method, however, not only the outer diameter but also the inner diameter of the large-diameter portion is expanded by the mandrel, which naturally reduces the wall thickness of the large-diameter portion. However, in applications where high mechanical strength is required in the large-diameter portion, for example, it is preferable to maintain the wall thickness of the large-diameter portion at the same level as that of the mother tube or to increase the wall thickness of the large-diameter portion beyond that of the mother tube.

[0092] <composition> Therefore, the fifth method is a method for extrusion molding a differential thickness pipe having a predetermined shape, in which a blank tube having a predetermined shape is forced into a container hole using a sleeve in an extrusion molding apparatus, thereby forming a differential thickness pipe having a predetermined shape. The extrusion molding apparatus used in the fifth method includes a mandrel which is a core metal having a predetermined shape, a sleeve which is a tubular member arranged coaxially around the mandrel, a container which is a die in which a container hole which is a through hole having a predetermined shape is formed, and a drive mechanism configured to force at least the sleeve into the container hole.

[0093] As described in the explanation of the first method, the basic configuration of an extrusion molding apparatus is well known to those skilled in the art and will not be described in detail here. However, the components, including the mandrel, sleeve, and container, are made of materials having properties (e.g., mechanical strength and durability) that enable them to withstand processing conditions, such as the loads acting on the components in each step described below. Furthermore, the drive mechanism for forcing the mandrel and sleeve into the container hole can be appropriately selected from various drive mechanisms well known in the art, depending on the properties (e.g., mechanical strength and hardness) of the material constituting the blank tube to be extruded. Typically, a press, such as a hydraulic press, is used as the drive mechanism.

[0094] The details of the mother pipe, mandrel, sleeve and container used in the fifth method, as well as the differential thickness pipe formed by carrying out the fifth method, will be described below with reference to the drawings.

[0095] 8A and 8B are schematic cross-sectional views showing an example of the configuration of a mother pipe used in the fifth method and a differential thickness pipe formed from the mother pipe. As shown in Fig. 8A, the mother pipe 111 is a cylindrical member having an eleventh outer diameter DO11, an eleventh inner diameter DI11, and an eleventh wall thickness T11.

[0096] Furthermore, the shape of the base pipe is not necessarily limited to the simple cylindrical shape illustrated in FIG. 8. For example, as long as it does not interfere with the execution of the fifth method, portions having different structures may be provided at the tip side and / or the base end side of the base pipe. A method for forming a differential thickness pipe having a predetermined shape from such a base pipe will be described in detail later in the description of other embodiments of the extrusion molding method of the differential thickness pipe according to the present invention (the method of the present invention).

[0097] The material constituting the base pipe 111 is not particularly limited as long as it can be formed into a desired shape by plastic deformation in extrusion, similar to the base pipe 11 used in the first method. Typically, the material constituting the base pipe 111 is a metal such as, for example, lead, tin, aluminum, copper, zirconium, titanium, molybdenum, vanadium, niobium, and steel.

[0098] Next, as shown in FIG. 8(b), the differential thickness pipe 121 formed by the fifth method includes an eleventh small outer diameter region RSDO11, an eleventh large outer diameter region RLDO11, and an eleventh outer diameter increasing region ReDO11. The eleventh small outer diameter region RSDO11 is formed on the tip side, which is the downstream side in the pressing direction, which is the direction in which the base pipe 111 is pushed into the container hole, and has a twelfth outer diameter DO12 (DO12 < DO11) that is a predetermined outer diameter smaller than the eleventh outer diameter DO11, a twelfth inner diameter DI12 (DI12 = DI11) that is equal to the eleventh inner diameter DI11, and a twelfth wall thickness T12 (T12 < T11) that is a predetermined wall thickness smaller than the eleventh wall thickness T11. The eleventh large outer diameter region RLDO11 is formed on the base end side, which is the upstream side in the pressing direction, and has a thirteenth outer diameter DO13 (DO13 > DO11) that is a predetermined outer diameter larger than the eleventh outer diameter DO11, a thirteenth inner diameter DI13 (DI13 = DI11) that is equal to the eleventh inner diameter DI11, and a thirteenth wall thickness T13 (T13 > T11) that is a predetermined wall thickness larger than the eleventh wall thickness T11.

[0099] The eleventh increasing outer diameter region ReDO11 is formed between the eleventh small outer diameter region RSDO11 and the eleventh large outer diameter region RLDO11, and as it approaches the eleventh small outer diameter region RSDO11, the outer diameter increases from the twelfth outer diameter DO12 to the thirteenth outer diameter DO13, the wall thickness increases from the twelfth wall thickness T12 to the thirteenth wall thickness T13, and the inner diameter is constant at a fourteenth inner diameter DI14 (DI14 = DI11) that is equal to the eleventh inner diameter DI11. That is, the cross section of the internal space of the differential thickness pipe 121 is constant and identical to the cross section of the internal space of the mother tube 111 throughout the eleventh small outer diameter region RSDO11, the eleventh increasing outer diameter region ReDO11, and the eleventh large outer diameter region RLDO11.

[0100] Therefore, by performing the fifth method, the wall thickness of the mother tube 111 is reduced from the eleventh wall thickness T11 to the twelfth wall thickness T12, thereby reducing the outer diameter of the mother tube 111 from the eleventh outer diameter DO11 to the twelfth outer diameter DO12, and this region is the eleventh small outer diameter region RSDO11 of the differential thickness pipe 121. Furthermore, by performing the fifth method, the wall thickness of the mother tube 111 is increased from the eleventh wall thickness T11 to the thirteenth wall thickness T13, thereby increasing the outer diameter of the mother tube 111 from the eleventh outer diameter DO11 to the thirteenth outer diameter DO13, and this region is the eleventh large outer diameter region RLDO11 of the differential thickness pipe 121. Thus, according to the fifth method, it is possible to increase the outer diameter of the mother tube 111 by increasing the wall thickness while maintaining the inner diameter in the eleventh large outer diameter region RLDO11 of the differential thickness pipe 121. Therefore, the fifth method is suitable for forming a pipe with a different thickness that is used in applications where high mechanical strength is required in the large diameter portion, for example.

[0101] 9A and 9B are schematic cross-sectional views showing an example of the configuration of a mandrel, a sleeve, and a container used in the fifth method. Fig. 9A is a schematic cross-sectional view showing an example of the configuration of a mandrel and a sleeve used in the fifth method. As shown in Fig. 9A, the mandrel 131 includes a basic outer diameter region RBDO, which is a cylindrical region formed on the tip side and has a fourteenth outer diameter DO14 that is an outer diameter corresponding to an eleventh inner diameter DI11 that is the inner diameter of the mother tube 111.

[0102] The sleeve 141 includes an 11th pressing region RP11 which is a cylindrical region having a cylindrical internal space formed at the tip side and having a 15th outer diameter DO15 which is an outer diameter equal to the 13th outer diameter DO13 which is the outer diameter of the 11th large outer diameter region RLD11 of the differential thickness pipe 121, and a 15th inner diameter DI15 which is an inner diameter corresponding to the 14th outer diameter DO14 which is the outer diameter of the basic outer diameter region RBDO of the mandrel 131.

[0103] Next, (b) of Fig. 9 is a schematic cross-sectional view showing an example of the configuration of a container used in the fifth method. As shown in (b) of Fig. 9, a container hole 151a formed in a container 151 includes an eleventh large inner diameter region RLDI11, an eleventh small inner diameter region RSDI11, and an eleventh reduced inner diameter region RsDI11. The eleventh large inner diameter region RLDI11 is a region formed on the base end side and has a sixteenth inner diameter DI16 that corresponds to the thirteenth outer diameter DO13. The eleventh small inner diameter region RSDI11 is a region formed on the tip end side and has a seventeenth inner diameter DI17 that corresponds to the twelfth outer diameter DO12. The 11th inner diameter decreasing region RsDI11 is formed between the 11th large inner diameter region RLDI11 and the 11th small inner diameter region RSDI11, and is a region in which the inner diameter decreases from the 16th inner diameter DI16 to the 17th inner diameter DI17 as it approaches from the 11th large inner diameter region RLDI11 to the 11th small inner diameter region RSDI11.

[0104] In the fifth method, by carrying out steps 11 to 13 described below, the mandrel 131 is inserted into the internal space of the mother tube 111 from the base end side (top side in the drawing), and the base end side of the mother tube 111 is pressed by the 11th pressing region RP11 of the sleeve 141 to force the mother tube 111 into the container hole 151a, thereby forming the above-mentioned differential thickness pipe 121.

[0105] 10 is a flowchart showing the steps included in the fifth method. The eleventh step, performed in step S11, is a step of setting a blank tube having a predetermined shape at a predetermined position inside a container bore. Specifically, in the eleventh step, the blank tube 111 is set at a predetermined position inside the container bore 151a by abutting the tip end of the blank tube 111 against a first inner diameter reduced region RsDI11 formed between an eleventh large inner diameter region RLDI11 and an eleventh small inner diameter region RSDI11 of a container bore 151a formed in the container 151.

[0106] Next, in step S12, a twelfth step is performed in which, with the mandrel inserted into the mother tube, the base end of the mother tube is pressed with a sleeve to expand the diameter of the mother tube. Specifically, in step S12, with the mandrel 131 inserted into the mother tube 111, the base end of the mother tube 111 is pressed with a sleeve 141. This causes the material constituting the mother tube 111 to plastically flow and fill the space between the container 151 and the mandrel 131 in the eleventh large inner diameter region RLDI11 and the eleventh reduced inner diameter region RsDI11 of the container bore 151a. As a result, the outer diameter of the mother tube 111 can be expanded to a thirteenth outer diameter DO13 while maintaining the inner diameter of the mother tube 111 at the eleventh inner diameter DI11.

[0107] Next, in step S13, a thirteenth step is performed in which the base end of the blank tube is further pressed by a sleeve to force the tip end of the blank tube into the eleventh small inner diameter region of the container hole, thereby reducing the diameter. Specifically, while the mandrel 131 is inserted into the blank tube 111, the base end of the blank tube 111 is further pressed by the sleeve 141. This performs an extrusion process in which the material constituting the blank tube 111 is extruded into the eleventh small inner diameter region RSDI11 of the container hole 151a through the gap between the base end of the eleventh small inner diameter region RSDI11 of the container hole 151a and the mandrel 131. As a result, the diameter of the tip end of the blank tube 111 can be reduced. By performing steps 11 to 13 included in the fifth method in this manner, a differential thickness pipe having a predetermined shape can be formed.

[0108] As described above, both the 12th step and the 13th step are performed with the mandrel 131 inserted into the mother tube 111. Insertion of the mandrel 131 into the mother tube 111 only needs to be completed by the time the 12th step is started at the latest. Therefore, the mandrel 131 may be inserted into the mother tube 111 after the mother tube 111 is set inside the container hole 151a in the 11th step, or the mother tube 111 with the mandrel 131 inserted therein may be set inside the container hole 151a in the 11th step.

[0109] Furthermore, as described above, in order to press the base end side of the mother tube 111 with the sleeve 141 in the 12th step, thereby filling the space between the container 151 and the mandrel 131 with the material that will form the mother tube 111 and expanding the diameter of the mother tube 111, the tip of the mandrel must reach the base end of the 11th small inner diameter region of the container hole in the pressing direction. Therefore, in the fifth method, at the 11th point in time when the 12th step is started, the tip end of the mandrel has reached the 11th position, which is the same position in the pressing direction as the base end of the 11th small inner diameter region of the container hole, or a position further forward than the 11th position.

[0110] Furthermore, in the 13th step, as described above, the base end side of the mother tube 111 is further pressed by the sleeve 141, and the front end side of the mother tube 111 is forced into the 11th small inner diameter region RSDI11 of the container bore 151a through the gap between the base end side of the 11th small inner diameter region RSDI11 of the container bore 151a and the mandrel 131, thereby reducing the diameter. At this time, if the amount by which the mandrel 131 protrudes from the base end side of the 11th small inner diameter region RSDI11 in the pressing direction is too small, the material of the mother tube 111 forced into the 11th small inner diameter region RSDI11 may bend inward in the radial direction, and the 11th small outer diameter region RSDO11 of the variable-thickness pipe 121 may not be formed into the desired shape.

[0111] Therefore, in the fifth method, at a twelfth time point, when the thirteenth step is initiated, the distal end of the mandrel reaches a twelfth position, which is a predetermined distance distal to the base end of the eleventh small inner diameter region of the container hole in the pressing direction, or a position distal to the twelfth position. Note that the "predetermined distance" here refers to a distance that prevents the material constituting the blank tube 111 pressed into the eleventh small inner diameter region RSDI11 from flowing inward in the radial direction, thereby enabling the eleventh small outer diameter region RSDO11 of the variable-thickness pipe 121 to be formed into a desired shape. The specific size of this distance can be determined as appropriate, for example, based on the results of preliminary experiments and / or simulation analysis using the finite element method, in which various distances are changed in the pressing direction by which the distal end of the mandrel protrudes distally beyond the base end of the eleventh small inner diameter region of the container hole.

[0112] The arrangement of the mandrel in steps 12 and 13 of the fifth method is not particularly limited as long as the above conditions are met. For example, the mandrel and sleeve may be integrally formed and driven integrally by a drive mechanism. Conversely, if the mandrel and sleeve are formed separately, they may be driven integrally by a drive mechanism, or each may be driven individually. Alternatively, the mandrel may be fixed in a position that satisfies the above conditions, and only the sleeve may be driven by a drive mechanism.

[0113] Figure 11 is a schematic cross-sectional view showing an example of changes in the positional relationships and shapes of the mother pipe, mandrel, sleeve, container, and differential-thickness pipe as the fifth method progresses. Note that, for the sake of simplicity, the reference numerals assigned to the various components shown in Figures 8 and 9 have been omitted from Figure 11. However, in the following explanation of Figure 11, the reference numerals shown in Figures 8 and 9 will be used for accuracy, so please refer to Figures 8 and 9 as necessary.

[0114] 11(a) shows a state in which, as a result of the 11th step, the blank tube 111 is set at a predetermined position inside the container bore 151a and the mandrel 131 is inserted into the blank tube 111. FIG. 11(b) shows a state in which, as a result of the 12th step, the base end of the blank tube 111 is pressed by the sleeve 141, filling the space between the container 151 and the mandrel 131 with the material that will form the blank tube 111 and expanding the diameter of the blank tube 111. FIG. 11(c) shows a state in which, as a result of the 13th step, the base end of the blank tube 111 is further pressed by the sleeve 141, forcing the tip end of the blank tube 111 into the 11th small inner diameter region RSDI11 of the container bore 151a through the gap between the base end of the 11th small inner diameter region RSDI11 and the mandrel 131, thereby reducing the diameter of the blank tube 111.

[0115] 11 , in the fifth method, the wall thickness of the mother tube 111 is increased from the eleventh wall thickness T11 to the thirteenth wall thickness T13, thereby expanding the outer diameter of the mother tube 111 from the eleventh outer diameter DO11 to the thirteenth outer diameter DO13, and this region becomes the eleventh large outer diameter region RLDO11 of the differential thickness pipe 121. In addition, the wall thickness of the mother tube 111 is reduced from the eleventh wall thickness T11 to the twelfth wall thickness T12, thereby reducing the outer diameter of the mother tube 111 from the eleventh outer diameter DO11 to the twelfth outer diameter DO12, and this region becomes the eleventh small outer diameter region RSDO11 of the differential thickness pipe 121. In this way, in the fifth method, the outer diameter of the mother tube 111 can be increased by increasing the wall thickness while maintaining the inner diameter of the mother tube 111 in the eleventh large outer diameter region RLDO11 of the differential thickness pipe 121. Therefore, according to the fifth method, it is possible to form a differential thickness pipe having a diameter difference (between the eleventh large outer diameter region RLDO11 and the eleventh small outer diameter region RSDO11) that is suitable for applications requiring high mechanical strength in the large diameter portion, for example, without excessively increasing the processing load, compared to when the diameter difference between the large diameter portion and the small diameter portion of the differential thickness pipe is increased by increasing the outer diameter of the mother tube.

[0116] The axial lengths of the eleventh large outer diameter region RLDO11 and the eleventh small outer diameter region RSDO11 vary depending on the axial length of the mother tube 111, the amount of diameter expansion in the twelfth step (the difference between the eleventh outer diameter DO11, which is the outer diameter of the mother tube 111, and the sixteenth inner diameter DI16, which is the inner diameter of the eleventh large inner diameter region RLDI11 of the container hole 151a), the amount of diameter reduction in the thirteenth step (the difference between the eleventh outer diameter DO11, which is the outer diameter of the mother tube 111, and the seventeenth inner diameter DI17, which is the inner diameter of the eleventh small inner diameter region RSDI11 of the container hole 151a), and the amount of pressing of the mother tube 111 by the sleeve 141. That is, according to the fifth method, the axial lengths of the eleventh large outer diameter region RLDO11 and the eleventh small outer diameter region RSDO11 of the variable-thickness pipe 121 can be set as desired.

[0117] 11(b), when the expansion of the mother tube 111 is completed by performing the 12th step, the material constituting the mother tube 111 has not yet begun to flow into the 11th small-inner-diameter region RSDI11 of the container bore 151a. However, depending on, for example, the ease of plastic flow of the material constituting the mother tube 111, the configuration of the mandrel, sleeve, and container provided in the extrusion molding apparatus used in the fifth method, and the pressing speed of the sleeve by the drive mechanism, the material constituting the mother tube 111 may begin to flow into the 11th small-inner-diameter region RSDI11 of the container bore 151a before the expansion of the mother tube 111 is completed. In other words, the 13th step may begin before the completion of the 12th step.

[0118] 11, in the fifth method illustrated in Fig. 11, the mandrel 131 is fixed at a position (the 12th position described above) that is a predetermined distance d1 toward the tip end of the base end of the 11th small inner diameter region RSDI11 of the container hole 151a in the pressing direction, and only the sleeve 141 is driven by a drive mechanism (not shown). However, as described above, the mandrel 131 and the sleeve 141 may be driven integrally by the drive mechanism.

[0119] Figure 12 is a schematic cross-sectional view showing another example of changes in the positional relationships and shapes of the mother pipe, mandrel, sleeve, container, and differential-thickness pipe as the fifth method progresses. In Figure 12, the reference numerals assigned to the various components shown in Figures 8 and 9 have been omitted for the sake of simplicity. However, in the following explanation of Figure 12, the reference numerals shown in Figures 8 and 9 will be used for accuracy, so please refer to Figures 8 and 9 as necessary.

[0120] The left side of the central axis AX in Figure 12(a) shows the state of each component at time 11, when the blank tube 111 is set at a predetermined position inside the container bore 151a through the execution of the 11th step, the mandrel 131 is inserted into the blank tube 111, and the 12th step is started. The right side of the central axis AX in Figure 12(a) shows the state after the 12th and 13th steps, when the base end of the blank tube 111 is pressed by the sleeve 141, the material for the blank tube 111 is filled into the space between the container 151 and the mandrel 131, the blank tube 111 is expanded in diameter, and the front end of the blank tube 111 is forced into the 11th small inner diameter region RSDI11 of the container bore 151a through the gap between the base end of the 11th small inner diameter region RSDI11 and the mandrel 131, thereby reducing the diameter, and the desired differential-thickness pipe 121 is formed.

[0121] In the example shown in Fig. 12, the amount by which the sleeve 141 presses the mother tube 111 is greater than in the example shown in Fig. 11. As a result, the axial length of the eleventh large outer diameter region RLDO11 of the differential thickness pipe 121 is shorter than in the example shown in Fig. 11, and a flange-shaped eleventh large outer diameter region RLDO11 is formed. In the example shown in Fig. 12, the mandrel 131 and sleeve 141, which are formed as separate bodies, are driven integrally by a drive mechanism (not shown).

[0122] Figure 12(b) is an enlarged view of the area surrounded by the thick dashed line in Figure 12(a). However, in Figure 12(b), the mandrel 131 and sleeve 141 are omitted to clearly illustrate the change in shape from the mother tube 111 to the variable-thickness pipe 121. As illustrated in Figure 12(b), by performing the fifth method, the eleventh large outer diameter region RLDO11 of the variable-thickness pipe 121 is expanded from the eleventh outer diameter DO11, which is the outer diameter of the mother tube 111 depicted by the thin dashed line, to a thirteenth outer diameter DO13 (diameter expansion amount = ΔDe). Meanwhile, the eleventh small outer diameter region RSDO11 of the variable-thickness pipe 121 is reduced from the eleventh outer diameter DO11, which is the outer diameter of the mother tube 111 depicted by the thin dashed line, to a twelfth outer diameter DO12 (diameter reduction amount = ΔDs).

[0123] Figure 12(c) is an enlarged view of the area surrounded by the thick dashed line in Figure 12(b). However, in Figure 12(c), not only the mandrel 131 and sleeve 141 but also the container 151 are omitted in order to clearly show the change in shape from the mother tube 111 to the differential-thickness pipe 121. As illustrated in Figure 12(c), by performing the fifth method, the wall thickness of the differential-thickness pipe 121 in the eleventh large outer diameter region RLDO11 is increased from the eleventh wall thickness T11 of the mother tube 111, which is depicted by the thin dashed line, to a thirteenth wall thickness T13 (wall thickness increase amount = ΔTe). On the other hand, the wall thickness of the eleventh small outer diameter region RSDO11 of the differential-thickness pipe 121 is decreased from the eleventh wall thickness T11 of the mother tube 111, which is depicted by the thin dashed line, to a twelfth wall thickness T12 (wall thickness reduction amount = ΔTs).

[0124] <effect> As described above, in a differential thickness pipe formed by the fifth method, the 11 large outer diameter region is formed by increasing the wall thickness of the mother tube, and the 11 small outer diameter region is formed by decreasing the wall thickness of the mother tube. Therefore, a larger diameter difference can be achieved with a smaller processing load than when the large outer diameter region is formed while maintaining the outer diameter of the mother tube and then the small outer diameter region is formed by significantly reducing the outer diameter of the mother tube. Furthermore, according to the fifth method, the wall thickness of the large outer diameter region can be increased, making it possible to form a differential thickness pipe that is suitable for applications where, for example, high mechanical strength is required in the large diameter portion.

[0125] In addition, as described above, the axial lengths of the 11th large outer diameter region and the 11th small outer diameter region vary depending on the axial length of the mother tube, the amount of diameter expansion in step 12, the amount of diameter reduction in step 13, and the amount of pressing of the mother tube by the sleeve. That is, according to the fifth method, the axial lengths of the 11th large outer diameter region and the 11th small outer diameter region of the differential thickness pipe can be set as desired.

[0126] Sixth Embodiment Next, a method for extrusion molding a pipe with different thicknesses according to a sixth embodiment of the present invention (hereinafter, sometimes referred to as the "sixth method") will be described.

[0127] The 11th small outer diameter region of the differential thickness pipe formed by the fifth method described above is a region having a straight pipe shape with a 12th outer diameter, a 12th inner diameter, and a 12th wall thickness. However, depending on the application of the differential thickness pipe, it may be necessary to form two portions (differential thickness portions) with different wall thicknesses in the small diameter portion (small outer diameter region), as in the differential thickness pipe formed by the first method described above.

[0128] <composition> Therefore, the sixth method is the fifth method described above, wherein a twelfth small outer diameter region is formed at the distal end of the differential thickness pipe, and the mandrel further includes a thirteenth small outer diameter region and a twelfth increasing outer diameter region. The twelfth small outer diameter region is a region having a sixteenth outer diameter equal to the twelfth outer diameter, an eighteenth inner diameter smaller than the twelfth inner diameter, and a fourteenth wall thickness larger than the twelfth wall thickness. The thirteenth small outer diameter region is a cylindrical region formed distally of the basic outer diameter region of the mandrel and having an eighteenth outer diameter corresponding to the eighteenth inner diameter of the twelfth small outer diameter region of the differential thickness pipe. The twelfth increasing outer diameter region is a region formed between the thirteenth small outer diameter region and the basic outer diameter region of the mandrel, and the outer diameter increases from the eighteenth outer diameter to the fourteenth outer diameter as the thirteenth small outer diameter region approaches the basic outer diameter region.

[0129] Furthermore, in the sixth method, at time 12, when step 13 is initiated, the base end of the thirteenth small outer diameter region of the mandrel is located closer to the base end in the pressing direction than position 11, which is the position of the base end of the eleventh small inner diameter region of the container hole. As described above, the thirteenth small outer diameter region is formed toward the tip end of the mandrel. That is, at time 12, the base end of the eleventh small inner diameter region of the container hole faces the thirteenth small outer diameter region of the mandrel. Therefore, at time 12, the material constituting the blank tube 111 begins to flow into the eleventh small inner diameter region RSDI11 of the container hole 151a through the gap between the base end of the eleventh small inner diameter region of the container hole and the thirteenth small outer diameter region of the mandrel. This results in the formation of a 12th small outer diameter region at the tip end of the differential thickness pipe, which has a 16th outer diameter which is an outer diameter equal to the 12th outer diameter, an 18th inner diameter which is a predetermined inner diameter smaller than the 12th inner diameter, and a 14th thickness which is a predetermined thickness larger than the 12th thickness.

[0130] <Sixth Method According to First Aspect> The shape of the differential thickness pipe formed by the sixth method varies depending on the position of the mandrel at time 13, when step 13 is completed. For example, in the sixth method according to the first aspect, at time 13, the distal end of the basic outer diameter region of the mandrel is located distal to position 11, which is the position of the proximal end of the eleventh small inner diameter region of the container hole. The resulting differential thickness pipe includes an eleventh large outer diameter region, an eleventh increasing outer diameter region, an eleventh small outer diameter region, a twelfth small outer diameter region formed distal to the eleventh small outer diameter region, and an eleventh increasing inner diameter region. The 11th increasing inner diameter region is formed between the 12th small outer diameter region and the 11th small outer diameter region of the differential thickness pipe, and as it approaches the 12th small outer diameter region from the 12th small outer diameter region, the inner diameter increases from the 18th inner diameter to the 12th inner diameter, the wall thickness decreases from the 14th wall thickness to the 12th wall thickness, and the outer diameter is constant at the 17th outer diameter which is equal to the 12th outer diameter.

[0131] Fig. 13 is a schematic cross-sectional view showing an example of the configuration of a mother pipe used in the sixth method according to the first aspect and a differential thickness pipe formed from the mother pipe. The mother pipe 111 shown in Fig. 13(a) is a cylindrical member having an eleventh outer diameter DO11, a predetermined inner diameter DI11, and a predetermined wall thickness T11, similar to the mother pipe 111 shown in Fig. 8(a) referred to in the explanation of the fifth method.

[0132] Next, as shown in (b) of FIG. 13, the thickness-varying pipe 121 formed by the sixth method according to the first aspect has the same configuration as the thickness-varying pipe 121 illustrated in (b) of FIG. 8 referred to in the description of the fifth method, except that it further includes a twelfth small outer diameter region RSDO12 and an eleventh inner diameter increasing region ReDI11 on the tip side of the eleventh small outer diameter region RSDO11. As described above, the twelfth small outer diameter region RSDO12 is formed on the tip side of the eleventh small outer diameter region RSDO11 of the thickness-varying pipe 121 and has a sixteenth outer diameter DO16 (DO16 = DO12) equal to the twelfth outer diameter DO12, an eighteenth inner diameter DI18 (DI18 < DI12) smaller than the twelfth inner diameter DI12, and a fourteenth wall thickness T14 (T14 > T12) larger than the twelfth wall thickness T12.

[0133] The eleventh inner diameter increasing region ReDI11 is formed between the twelfth small outer diameter region RSDO12 and the eleventh small outer diameter region RSDO11 of the thickness-varying pipe 121, and the inner diameter increases from the eighteenth inner diameter DI18 to the twelfth inner diameter DI12 as it approaches from the twelfth small outer diameter region RSDO12 to the eleventh small outer diameter region RSDO11, the wall thickness decreases from the fourteenth wall thickness T14 to the twelfth wall thickness T12, and the outer diameter is constant at a seventeenth outer diameter DO17 (DO17 = DO12) equal to the twelfth outer diameter DO12.

[0134] 14A and 14B are schematic cross-sectional views showing an example of the configuration of the mandrel, sleeve, and container used in the sixth method according to the first embodiment. FIG. 14A is a schematic cross-sectional view showing an example of the configuration of the mandrel and sleeve used in the sixth method according to the first embodiment. As shown in FIG. 14A, the mandrel 131 used in the sixth method according to the first embodiment has a configuration similar to the mandrel 131 shown in FIG. 9A, which was referred to in the description of the fifth method, except that it further includes a thirteenth small outer diameter region RSDO13 and a twelfth increasing outer diameter region ReDO12. As described above, the thirteenth small outer diameter region RSDO13 is a cylindrical region formed distally of the basic outer diameter region RBDO of the mandrel 131 and having an eighteenth outer diameter DO18 corresponding to the eighteenth inner diameter DI18 of the twelfth small outer diameter region RSDO12 of the differential thickness pipe 121. The 12th outer diameter increasing region ReDO12 is formed between the 13th smaller outer diameter region RSDO13 and the basic outer diameter region RBDO of the mandrel 131, and is a region in which the outer diameter increases from the 18th outer diameter to the 14th outer diameter as it approaches from the 13th smaller outer diameter region RSDO13 to the basic outer diameter region RBDO.

[0135] The sleeve 141 used in the sixth method according to the first aspect includes an 11th pressing region RP11, which is a cylindrical region having a cylindrical internal space, formed at the tip end and having a 15th outer diameter DO15 that is an outer diameter equal to the 13th outer diameter DO13 that is the outer diameter of the 11th large outer diameter region RLD11 of the differential thickness pipe 121, and a 15th inner diameter DI15 that is an inner diameter corresponding to the 14th outer diameter DO14 that is the outer diameter of the basic outer diameter region RBDO of the mandrel 131, similar to the mandrel 131 illustrated in (a) of Figure 9, which was referenced in the explanation of the fifth method.

[0136] Next, (b) of Fig. 14 is a schematic cross-sectional view showing an example of the configuration of a container used in the sixth method according to the first aspect. The container hole 151a formed in the container 151 shown in (b) of Fig. 14 includes an eleventh large inner diameter region RLDI11, an eleventh small inner diameter region RSDI11, and an eleventh reduced inner diameter region RsDI11, similar to the container hole 151a formed in the container 151 shown in (b) of Fig. 9, which was referred to in the description of the fifth method. Details of each region of the container hole 151a have already been described in the description of the fifth method, so further description will be omitted here.

[0137] In the sixth method relating to the first aspect, by carrying out steps 11 to 13 similar to those of the fifth method, the mandrel 131 is inserted into the internal space of the mother tube 111 from the base end side (top side in the drawing), and the base end side of the mother tube 111 is pressed by the eleventh pressing region RP11 of the sleeve 141 to force the mother tube 111 into the container hole 151a, thereby forming the above-mentioned differential thickness pipe 121.

[0138] Figure 15 is a schematic cross-sectional view showing an example of changes in the positional relationships and shapes of the mother pipe, mandrel, sleeve, container, and differential-thickness pipe as the sixth method according to the first embodiment progresses. Note that, for the sake of simplicity, the reference numerals assigned to the various components shown in Figures 13 and 14 have been omitted from Figure 15. However, in the following description of Figure 15, the reference numerals shown in Figures 13 and 14 will be used for accuracy, so please refer to Figures 13 and 14 as necessary.

[0139] 15(a) shows the state in which, by performing the 11th step, the mandrel 131 is about to be inserted into the mother tube 111 set at a predetermined position inside the container hole 151a. The outer diameter DO18 of the 13th small outer diameter region RSDO13 formed at the tip of the mandrel 131 is smaller than the 11th inner diameter DI11 of the mother tube 111, and the inner diameter DI18 of the 11th large inner diameter region RLDI11 of the container hole 151a is larger than the 11th outer diameter DO11 of the mother tube 111. Therefore, in the state shown in FIG. 15(a), there are voids on both the outside of the outer peripheral surface and the inside of the inner peripheral surface of the mother tube 111.

[0140] Figure 15(b) shows a state in which the 12th step has begun, in which the base end of the mother tube 111 is pressed by the sleeve 141, filling the space between the container 151 and the mandrel 131 with the material for the mother tube 111 and expanding the diameter of the mother tube 111. In the state shown in Figure 15(b), the material for the mother tube 111 has not yet filled the gap between the 13th small outer diameter region RSDO13 formed at the front end of the mandrel 131 and the inner circumferential surface of the mother tube 111, and the gap between the vicinity of the front end of the 11th large inner diameter region RLDI11 of the container hole 151a and the outer circumferential surface of the mother tube 111. However, as the base end of the mother tube 111 is further pressed by the sleeve 141, the material for the mother tube 111 is also filled into these gaps, completing the diameter expansion of the mother tube 111 and completing the 12th step.

[0141] (c) of Figure 15 shows a state in which, as a result of performing the 13th step, the base end side of the mother tube 111 is further pressed by the sleeve 141, and the tip side of the mother tube 111 is forced into the 11th small inner diameter region RSDI11 of the container hole 151a through the gap between the base end side end of the 11th small inner diameter region RSDI11 of the container hole 151a and the mandrel 131, thereby reducing the diameter. As illustrated in (c) of Figure 15, the material constituting the base tube 111 that flows into the 11th small inner diameter region RSDI11 of the container hole 151a through the gap between the base end of the 11th small inner diameter region RSDI11 of the container hole 151a and the 13th small outer diameter region RSDO13 and the 12th increasing outer diameter region ReDO12 formed at the tip of the mandrel 131 forms the 12th small outer diameter region RSDO12 and the 11th increasing inner diameter region ReDI11, which are thicker than the 11th small outer diameter region RSDO11, on the tip side of the 11th small outer diameter region RSDO11 of the differential thickness pipe 121. In other words, in the differential thickness pipe 121 formed by the sixth method according to the first embodiment, the outer diameter of the large diameter portion (large outer diameter region) is expanded as a whole by increasing the thickness outward while the inner diameter remains unchanged, the outer diameter of the base end side of the small diameter portion (small outer diameter region) is reduced by reducing the thickness while the inner diameter remains unchanged, and the outer diameter of the portion from the middle of the small diameter portion to the tip end side is reduced by reducing the thickness while the inner diameter is reduced by increasing the thickness.

[0142] As described above, the mandrel used in the sixth method further includes a thirteenth small outer diameter region, which is a cylindrical region thinner than the basic outer diameter region and formed distally of the basic outer diameter region, and a twelfth increasing outer diameter region, which is a region formed between the thirteenth small outer diameter region and the basic outer diameter region and whose outer diameter increases as it approaches the basic outer diameter region. Furthermore, in the sixth method, at a twelfth point in time when the thirteenth step is started, the base-end end of the thirteenth small outer diameter region of the mandrel is proximal to an eleventh position, which is the position of the base-end end of the eleventh small inner diameter region of the container hole in the pressing direction. Additionally, in the sixth method according to the first aspect, at a thirteenth point in time, the tip-end end of the basic outer diameter region of the mandrel is distal to an eleventh position, which is the position of the base-end end of the eleventh small inner diameter region of the container hole. As a result, according to the sixth method of the first aspect, it is possible to form a differential thickness pipe having a 12th small outer diameter region thicker than the 11th small outer diameter region and an 11th increased inner diameter region formed at the tip.

[0143] <Modification of the Sixth Method According to the First Aspect> As described with reference to Figures 13 to 15, the mandrel used in the sixth method according to the first embodiment further includes a thirteenth small outer diameter region, which is a cylindrical region thinner than the basic outer diameter region and formed distally of the basic outer diameter region, and a twelfth increasing outer diameter region, which is a region formed between the thirteenth small outer diameter region and the basic outer diameter region and in which the outer diameter increases as the region approaches the basic outer diameter region. As a result, the small diameter portion (small outer diameter region) of the differential thickness pipe 121 illustrated in Figures 13 and 15 has two small outer diameter regions with different inner diameters and wall thicknesses. However, the small diameter portion (small outer diameter region) of the differential thickness pipe formed by the sixth method according to the first embodiment may have three or more small outer diameter regions, as in the differential thickness pipe formed by the modified sixth method according to the first embodiment illustrated in Figure 16.

[0144] Figure 16 is a schematic cross-sectional view showing an example of changes in the positional relationships and shapes of the mother tube, mandrel, sleeve, container, and differential-thickness pipe as the modified sixth method according to the first embodiment progresses. To simplify the drawing, the reference numerals assigned to the various components shown in Figures 13 and 14, etc., are omitted in Figure 16 as well. However, in the following explanation of Figure 16, the reference numerals shown in Figures 13 and 14, etc., will be used for accuracy, so please refer to Figures 13 and 14, etc., as necessary.

[0145] 16(a), in the mandrel 131 used in the above-described sixth method according to the modified example, the thirteenth small outer diameter region is divided into the aforementioned RSDO13 and an RSDO13' that is formed further distally than RSDO13 and is even thinner than RSDO13. When the thirteenth step is performed using the mandrel 131 having such a configuration, as the material for the mother tube 111 flows into the eleventh small inner diameter region RSDI11 of the container bore 151a, the portion of the mandrel 131 facing the base end of the eleventh small inner diameter region RSDI11 changes from the thirteenth small outer diameter region RSDO13' to the basic outer diameter region RBDO via RSDO13. As a result, the size of the gap between the base end of the 11th small inner diameter region RSDI11 and the mandrel 131 gradually decreases, and as illustrated to the right of the central axis AX in Figure 16(a), the thickness of the small diameter portion (reduced diameter difference thickness portion) of the differential thickness pipe 121 also gradually decreases as it progresses from the tip side to the base side.

[0146] Fig. 16(b) is an enlarged view of the portion surrounded by the thick dashed line in Fig. 16(a). As illustrated in Fig. 16(b), the small diameter portion (reduced diameter small diameter portion) of the differential thickness pipe 121 formed by the above-described sixth method according to the modified example includes, in order from the tip end to the base end, a small diameter region RSDO12' having the largest wall thickness T14', a twelfth small diameter region RSDO12 having an intermediate wall thickness T14, and an eleventh small diameter region RSDO11 having the smallest wall thickness T12.

[0147] As described above, according to the modified sixth method of the first aspect, it is possible to form a "multi-stage" differential thickness pipe having a small-diameter portion (reduced diameter differential thickness portion) divided into a plurality of small-diameter regions having different wall thicknesses and inner diameters. The multi-stage differential thickness pipe is not limited to the above. For example, depending on the mechanical strength, degree of work hardening, and / or ease of plastic flow of the material constituting the mother pipe, and / or the mechanical strength of the members constituting the extrusion molding apparatus and / or the processing capacity of the extrusion molding apparatus, it is also possible to form a multi-stage outer surface of the eleventh small outer diameter region, the twelfth small outer diameter region, and / or the eleventh large outer diameter region of the resulting differential thickness pipe by providing a plurality of portions having different inner diameters in the eleventh large inner diameter region and / or the eleventh small inner diameter region of the container, as illustrated in FIG. 7 , which was referred to in the description of the first method of another modified example.

[0148] <Sixth Method According to Second Aspect> As described above, the shape of the differential thickness pipe formed by the sixth method varies depending on the position of the mandrel at time 13, when step 13 is completed. For example, in the sixth method according to the second aspect, at time 13, the base end of the thirteenth smaller outer diameter region of the mandrel is closer to the base end than position 11, which is the position of the base end of the eleventh smaller inner diameter region of the container hole. The resulting differential thickness pipe includes a twelfth smaller outer diameter region, an eleventh larger outer diameter region, a twelfth larger outer diameter region, a thirteenth increasing outer diameter region, and a twelfth increasing inner diameter region.

[0149] The 12th large outer diameter region is formed between the 12th small outer diameter region and the 11th large outer diameter region, and has a 19th outer diameter that is an outer diameter equal to the 13th outer diameter, a 19th inner diameter that is an inner diameter equal to the 18th inner diameter, and a 15th thickness that is a predetermined thickness greater than the 13th thickness. The 13th increasing outer diameter region is formed between the 12th small outer diameter region and the 12th large outer diameter region, and as it approaches the 12th small outer diameter region, the outer diameter increases from the 16th outer diameter to the 19th outer diameter and the wall thickness increases from the 14th thickness to the 15th thickness, and the inner diameter is constant at a 20th inner diameter that is equal to the 18th inner diameter. The 12th increasing inner diameter region is formed between the 12th larger outer diameter region and the 11th larger outer diameter region, and as it approaches the 11th larger outer diameter region from the 12th larger outer diameter region, the inner diameter increases from the 19th inner diameter to the 13th inner diameter, the wall thickness decreases from the 15th thickness to the 13th thickness, and the outer diameter remains constant at the 20th outer diameter which is equal to the 13th outer diameter.

[0150] Fig. 17 is a schematic cross-sectional view showing an example of the configuration of a mother pipe used in the sixth method according to the second aspect and a differential thickness pipe formed from the mother pipe. The mother pipe 111 shown in Fig. 17(a) is a cylindrical member having an eleventh outer diameter DO11, an eleventh inner diameter DI11, and an eleventh wall thickness T11, similar to the mother pipe 111 shown in Fig. 8(a) and Fig. 13(a) referred to in the description of the fifth and sixth methods.

[0151] Next, as shown in (b) of Figure 17, the differential thickness pipe 121 formed by the sixth method relating to the second aspect includes a twelfth small outer diameter region RSDO12, an eleventh large outer diameter region RLDO11, a twelfth large outer diameter region RLDO12, a thirteenth increasing outer diameter region ReDO13, and a twelfth increasing inner diameter region ReDI12.

[0152] The 12th large outer diameter region RLDO12 is a region formed between the 12th small outer diameter region RSDO12 and the 11th large outer diameter region RLDO11 and has a 19th outer diameter DO19 (DO19 = DO13) that is an outer diameter equal to the 13th outer diameter DO13, a 19th inner diameter DI19 (DI19 = DI18) that is an inner diameter equal to the 18th inner diameter DI18, and a 15th thickness T15 (T15 > T13) that is a predetermined thickness greater than the 13th thickness T13. The 13th outer diameter increasing region ReDO13 is formed between the 12th small outer diameter region RSDO12 and the 12th large outer diameter region RLDO12, and as it approaches from the 12th small outer diameter region RSDO12 to the 12th large outer diameter region RLDO12, the outer diameter increases from the 16th outer diameter DO16 to the 19th outer diameter DO19, the thickness increases from the 14th thickness T14 to the 15th thickness T15, and the inner diameter is constant at a 20th inner diameter DI20 (DI20 = DI18) that is equal to the 18th inner diameter DI18. The 12th inner diameter increasing region ReDI12 is formed between the 12th large outer diameter region RLDO12 and the 11th large outer diameter region RLDO11, and as it approaches the 11th large outer diameter region RLDO11 from the 12th large outer diameter region RLDO12, the inner diameter increases from the 19th inner diameter DIO19 to the 13th inner diameter DI13, the thickness decreases from the 15th thickness T15 to the 13th thickness T13, and the outer diameter is constant at the 20th outer diameter DO20 (DO20 = DO13) which is equal to the 13th outer diameter DO13.

[0153] Fig. 18 is a schematic cross-sectional view showing an example of the configuration of a mandrel, a sleeve, and a container used in the sixth method according to the second embodiment. Fig. 18(a) is a schematic cross-sectional view showing an example of the configuration of a mandrel and a sleeve used in the sixth method according to the second embodiment. As shown in Fig. 18(a), the mandrel 131 used in the sixth method according to the second embodiment has a similar configuration to the mandrel 131 illustrated in Fig. 14(a) referred to in the description of the sixth method according to the first embodiment, except that the proportion of the thirteenth small outer diameter region RSDO13 in the total axial length is high (long) and the proportion of the basic outer diameter region RBDO is low (short).

[0154] The sleeve 141 used in the sixth method of the second embodiment, like the sleeve 141 illustrated in (a) of Figure 9 and (a) of Figure 14, respectively, referenced in the explanations of the fifth method and the sixth method of the first embodiment, includes an 11th pressing region RP11 which is a cylindrical region formed at the tip side and having a cylindrical internal space with a 15th outer diameter DO15 which is an outer diameter equal to the 13th outer diameter DO13 which is the outer diameter of the 11th large outer diameter region RLD11 of the differential thickness pipe 121, and a 15th inner diameter DI15 which is an inner diameter corresponding to the 14th outer diameter DO14 which is the outer diameter of the basic outer diameter region RBDO of the mandrel 131.

[0155] Next, (b) of Fig. 18 is a schematic cross-sectional view showing an example of the configuration of a container used in the sixth method according to the second aspect. The container hole 151a formed in the container 151 shown in (b) of Fig. 18 includes an eleventh large inner diameter region RLDI11, an eleventh small inner diameter region RSDI11, and an eleventh inner diameter decreasing region RsDI11, similar to the container holes 151a formed in the containers 151 shown in (b) of Fig. 9 and (b) of Fig. 14, respectively, which were referred to in the explanations of the fifth method and the sixth method according to the first aspect. The details of each region of the container hole 151a have already been described in the explanation of the fifth method, so further description here will be omitted.

[0156] In the sixth method relating to the second aspect, by carrying out steps 11 to 13 similar to those of the fifth method, the mandrel 131 is inserted into the internal space of the mother tube 111 from the base end side (the upper side in the drawing), and the base end side of the mother tube 111 is pressed by the eleventh pressing region RP11 of the sleeve 141 to force the mother tube 111 into the container hole 151a, thereby forming the above-mentioned differential thickness pipe 121.

[0157] Figure 19 is a schematic cross-sectional view showing an example of changes in the positional relationships and shapes of the mother pipe, mandrel, sleeve, container, and differential-thickness pipe as the sixth method according to the second embodiment progresses. Note that, for the sake of simplicity, the reference numerals assigned to the various components shown in Figures 17 and 18 have been omitted from Figure 19. However, in the following description of Figure 19, the reference numerals shown in Figures 17 and 18 will be used for accuracy, so please refer to Figures 17 and 18 as necessary.

[0158] 19(a) shows the state in which, after the 11th step, the mandrel 131 is inserted into the mother tube 111 set at a predetermined position inside the container hole 151a. The outer diameter DO18 of the 13th small outer diameter region RSDO13 formed at the tip of the mandrel 131 is smaller than the 11th inner diameter DI11 of the mother tube 111, and the inner diameter DI18 of the 11th large inner diameter region RLDI11 of the container hole 151a is larger than the 11th outer diameter DO11 of the mother tube 111. Therefore, in the state shown in FIG. 19(a), there are voids on both the outside of the outer peripheral surface and the inside of the inner peripheral surface of the mother tube 111.

[0159] 19(b) shows a state in which the 12th step has begun, in which the base end of the mother tube 111 is pressed by the sleeve 141, filling the space between the container 151 and the mandrel 131 with the material for the mother tube 111 and expanding the diameter of the mother tube 111. In the state shown in FIG. 19(b), the material for the mother tube 111 has not yet filled the gap between the 13th small outer diameter region RSDO13 formed at the front end of the mandrel 131 and the inner circumferential surface of the mother tube 111, and the gap between the vicinity of the front end of the 11th large inner diameter region RLDI11 of the container hole 151a and the outer circumferential surface of the mother tube 111. However, as the base end of the mother tube 111 is further pressed by the sleeve 141, the material for the mother tube 111 is filled into these gaps, completing the diameter expansion of the mother tube 111 and completing the 12th step.

[0160] 19(c) shows a state after the 13th step is completed, in which the base end of the mother tube 111 is further pressed by the sleeve 141, and the tip end of the mother tube 111 is forced into the 11th small inner diameter region RSDI11 of the container bore 151a through the gap between the base end of the 11th small inner diameter region RSDI11 of the container bore 151a and the mandrel 131, thereby reducing the diameter. As described above, in the sixth method according to the second aspect, at the 13th point when the 13th step is completed, the base end of the 13th small outer diameter region RSDO13 of the mandrel 131 is located closer to the base than the 11th position, which is the position of the base end of the 11th small inner diameter region RSDI11 of the container bore 151a.

[0161] Therefore, in the sixth method according to the second aspect, throughout the entire period of the thirteenth step, the material for forming the mother tube 111 flows into the eleventh small inner diameter region RSDI11 of the container bore 151a through the gap between the base end of the eleventh small inner diameter region RSDI11 of the container bore 151a and the thirteenth small outer diameter region RSDO13 formed at the tip of the mandrel 131. Therefore, the small diameter portion (small outer diameter region) of the differential thickness pipe 121 is formed only by the twelfth small outer diameter region RSDO12, which is a region having a sixteenth outer diameter DO16 that is smaller than the eleventh outer diameter DO11 that is the outer diameter of the mother tube 111, an eighteenth inner diameter DI18 that is smaller than the eleventh inner diameter DI11 that is the inner diameter of the mother tube 111, and a predetermined fourteenth wall thickness T14.

[0162] Furthermore, because the base-side end of the thirteenth small outer diameter region RSDO13 of the mandrel 131 is still closer to the base end than the eleventh position, which is the position of the base-side end of the eleventh small inner diameter region RSDI11 of the container hole 151a, the tip-side portion of the large diameter section (large outer diameter region) of the differential thickness pipe 121 is also thickened inward to form the twelfth large outer diameter region RLDO12. In other words, in the differential thickness pipe 121 formed by the sixth method according to the second aspect, the base-side portion of the large diameter section (large outer diameter region) has its outer diameter expanded by outward thickening and its inner diameter remains unchanged, the portion from the middle of the large diameter section to the tip-side has its outer diameter expanded by outward thickening and its inner diameter reduced by inward thickening, and the small diameter section (small outer diameter region) as a whole has its outer diameter reduced by thinning and its inner diameter reduced by thickening.

[0163] As described above, the mandrel used in the sixth method further includes a thirteenth small outer diameter region, which is a cylindrical region thinner than the basic outer diameter region and formed distally of the basic outer diameter region, and a twelfth increasing outer diameter region, which is a region formed between the thirteenth small outer diameter region and the basic outer diameter region and whose outer diameter increases as it approaches the basic outer diameter region. Furthermore, in the sixth method, at a twelfth point in time when the thirteenth step is initiated, the base-side end of the thirteenth small outer diameter region of the mandrel is closer to the base than an eleventh position, which is the base-side end of the eleventh small inner diameter region of the container hole in the pressing direction. Additionally, in the sixth method according to the second aspect, at a thirteenth point in time, the base-side end of the thirteenth small outer diameter region of the mandrel is closer to the base than an eleventh position, which is the base-side end of the eleventh small inner diameter region RSDI11 of the container hole 151a. As a result, according to the sixth method of the second aspect, the inner diameter of the range extending from the middle of the large diameter portion (large outer diameter region) whose outer diameter has been expanded by increasing the thickness outward to the tip end of the small diameter portion (small outer diameter region) can be reduced by increasing the thickness.

[0164] <effect> As described above, according to the sixth method, the range of the inner diameter reduction due to wall thickness increase in a differentially thickened pipe formed by the sixth method can be changed by appropriately adjusting the size and / or length of the twelfth smaller outer diameter region, which is a portion formed on the tip side of the mandrel that is narrower than the inner diameter of the mother tube, and the position of the mandrel at the time of completing the thirteenth step. Therefore, for example, the shape and wall thickness distribution of the differentially thickened pipe can be designed with a high degree of freedom depending on the application.

[0165] Seventh Embodiment Next, a method for extrusion molding a pipe with different thicknesses according to a seventh embodiment of the present invention (hereinafter, sometimes referred to as the "seventh method") will be described.

[0166] As described above, the shape of the mother pipe used in the extrusion molding methods for differential thickness pipes according to the fifth and sixth embodiments of the present invention (fifth method and sixth method) is not necessarily limited to the simple cylindrical shapes exemplified in Figures 8, 13, 17, etc. For example, a portion having a different structure may be provided at the distal end and / or proximal end of the mother pipe, as long as it does not interfere with the execution of the fifth and sixth methods. By molding a differential thickness pipe from such a mother pipe, the structure provided at the distal end and / or proximal end of the mother pipe can be incorporated into the differential thickness pipe.

[0167] <composition> Therefore, the seventh method is a method for extrusion molding a differential-thickness pipe by the fifth or sixth method using a mother tube having, at its base-side end, a portion having an outer diameter smaller than the outer diameter of the mother tube and an inner diameter equal to or greater than the inner diameter of the mother tube. Specifically, the seventh method is a method for extrusion molding a differential-thickness pipe by performing the eleventh to thirteenth steps using a mother tube further having, at its base-side end, an eleventh outer diameter that is a predetermined outer diameter smaller than the eleventh outer diameter of the mother tube, a 21st inner diameter that is a predetermined inner diameter equal to or greater than the eleventh inner diameter of the mother tube, and an eleventh thin-wall portion that is a portion having a predetermined wall thickness smaller than the eleventh wall thickness of the mother tube.

[0168] The sleeve used in the seventh method includes a housing portion which is a space that opens to the end face on the tip side and has a shape corresponding to the eleventh thin-walled portion. In the seventh method, by performing the twelfth step and the thirteenth step in a state where the eleventh thin-walled portion of the base pipe is housed in the housing portion of the sleeve, the eleventh thin-walled portion is left at the end portion on the base end side of the base pipe. As a result, the differential thickness pipe formed by the seventh method further includes the eleventh thin-walled portion at the end portion on the base end side.

[0169] FIG. 20 is a schematic cross-sectional view showing an example of the configuration of the base pipe used in the seventh method and the differential thickness pipe formed from the base pipe. The base pipe 111' illustrated in (a) of FIG. 20 has the same configuration as the base pipes 111 illustrated in (a) of FIG. 8, (a) of FIG. 13, and (a) of FIG. 17 referred to in the descriptions regarding the fifth and sixth methods, except that it further includes the eleventh thin-walled portion PST11 at the end portion on the base end side. The eleventh thin-walled portion PST11 has an outer diameter of the twenty-first outer diameter DO21 (DO21 < DO11) which is smaller than the eleventh outer diameter DO11 which is the outer diameter of the base pipe 111', an inner diameter of the twenty-first inner diameter DI21 (DI21 ≧ DI11. However, in FIG. 20, DI21 = DI11) which is equal to or greater than the eleventh inner diameter DI11 which is the inner diameter of the base pipe 11 '', and a sixteenth wall thickness T16 (T16 < T11) which is a predetermined wall thickness smaller than the eleventh wall thickness T11 which is the wall thickness of the base pipe 111'. Further, as shown in (b) of FIG. 20, the differential thickness pipe 121' formed by the seventh method has the same configuration as the differential thickness pipe 121 illustrated in (b) of FIG. 8 referred to in the description regarding the fifth method, except that it further includes the eleventh thin-walled portion PST11 at the end portion on the base end side.

[0170] Figure 21 is a schematic cross-sectional view showing an example of the configuration of a mandrel, sleeve, and container used in the seventh method. Figure 21(a) is a schematic cross-sectional view showing an example of the configuration of a mandrel and sleeve used in the seventh method. As shown in Figure 21(a), the mandrel 131 used in the seventh method, like the mandrel 131 illustrated in Figure 9(a) referred to in the description of the first method, includes a basic outer diameter region RBDO that is a cylindrical region formed on the tip side and has a fourteenth outer diameter DO14 that is an outer diameter corresponding to an eleventh inner diameter DI11 that is the inner diameter of the mother tube 111'.

[0171] The sleeve 141' used in the seventh method has a configuration similar to that of the sleeve 141 illustrated in Figures 9(a), 14(a), and 18(a) respectively referred to in the explanations of the fifth and sixth methods, except that it has a storage section PC which is a space that opens to the end face on the tip side and has a shape corresponding to the eleventh thin-walled section PST11.

[0172] Next, Figure 21(b) is a schematic cross-sectional view showing an example of the configuration of a container used in the seventh method. The container hole 151a formed in the container 151 shown in Figure 21(b) includes an eleventh large inner diameter region RLDI11, an eleventh small inner diameter region RSDI11, and an eleventh reduced inner diameter region RsDI11, similar to the container holes 151a formed in the containers 151 shown in Figures 9(b), 14(b), and 18(b) respectively, which were referenced in the explanations of the fifth and sixth methods. The details of each region of the container hole 151a have already been described in the explanation of the fifth method, so further description will be omitted here.

[0173] In the seventh method, the above-described mother tube 111′, mandrel 131, sleeve 141′, and container 151 are used, and steps 11 to 13 are performed in the same manner as in the fifth method. With the mandrel 131 inserted into the interior space of the mother tube 111′ from the base end (top side in the drawing), the base end of the mother tube 111′ is pressed by the eleventh pressing region RP11 of the sleeve 141′, forcing the mother tube 111′ into the container hole 151a, thereby forming the above-described differential-thickness pipe 121′. As described above, in the seventh method, steps 12 and 13 are performed with the eleventh thin-wall portion PST11 of the mother tube 111′ housed in the housing portion PC of the sleeve 141′. This leaves the eleventh thin-wall portion PST11 at the base end of the mother tube 111′. As a result, the differential thickness pipe 121' formed by the seventh method further includes an eleventh thin-walled portion PST11 at the end on the base end side.

[0174] Figure 22 is a schematic cross-sectional view showing an example of changes in the positional relationships and shapes of the mother pipe, mandrel, sleeve, container, and differential-thickness pipe as the seventh method progresses. For the sake of simplicity, the reference numerals assigned to the various components shown in Figures 20 and 21 have been omitted from Figure 22. However, in the following explanation of Figure 22, the reference numerals shown in Figures 20 and 21 will be used for accuracy, so please refer to Figures 20 and 21 as necessary.

[0175] 22 shows a state in which, as a result of the execution of the 11th step, the mother tube 111′ having the 11th thin-wall portion PST11 at its base end is set at a predetermined position inside the container bore 151a, the mandrel 131 is inserted into the mother tube 111′, and the 11th thin-wall portion PST11 is received in the receiving portion PC of the sleeve 141′. In this state, the 12th step is started, and the base end of the mother tube 111′ is pressed by the sleeve 141′. As a result, the material constituting the mother tube 111' plastically flows and fills the space between the container 151 and the mandrel 131 in the eleventh large inner diameter region RLDI11 and the eleventh reduced inner diameter region RsDI11 of the container hole 151a, thereby maintaining the inner diameter of the mother tube 111' at the eleventh inner diameter DI11 while expanding the outer diameter of the mother tube 111' from the eleventh outer diameter DO11 to the thirteenth outer diameter DO13.

[0176] In the 13th step, the base end of the mother tube 111' is further pressed by the sleeve 141', forcing the tip end of the mother tube 111' into the 11th small inner diameter region RSDI11 of the container hole 151a and reducing the diameter. As a result, the outer diameter of the tip end portion of the mother tube 111' is reduced from the 11th outer diameter DO11 to the 12th outer diameter DO12. The right side of the central axis AX in Figure 22 shows the state after the 13th step is completed, in which the desired differential thickness pipe 121' has been formed. As illustrated in Figure 22, according to the seventh method, a differential thickness pipe 121' having the 11th thin-wall portion PST11 at its base end can be easily and reliably formed from a mother tube 111' having the 11th thin-wall portion PST11 at its base end.

[0177] 22, the thickness (sixteenth thickness T16) of the eleventh thin-wall portion PST11 formed at the base end and the thickness (twelfth thickness T12) of the eleventh small outer diameter region RSDO11 formed at the tip end appear to be approximately equal, but the sixteenth thickness T16 and the twelfth thickness T12 may be the same or different, and both can be designed appropriately depending on the application of the differential thickness pipe 121'. Furthermore, the inner diameter of the differential thickness pipe 121' illustrated in FIG. 22 is constant throughout the eleventh small outer diameter region RSDO11, the eleventh increased outer diameter region ReDO11, the eleventh large outer diameter region RLDO11, and the eleventh thin-wall portion PST11, and is the same as the eleventh inner diameter DI11, which is the inner diameter of the blank pipe 111'. However, for example, the seventh method may be applied to the sixth method described above to form multiple regions with different inner diameters in the variable-thickness pipe 121'. Alternatively, as described with reference to Figure 7 in relation to the first method according to another modified example, the large inner diameter region and / or small inner diameter region of the container hole may be multi-staged to form multiple regions with different outer diameters in the variable-thickness pipe 121'.

[0178] 23 is a schematic cross-sectional view showing an example of changes in the positional relationship and shape of the blank pipe, mandrel, sleeve, container, and differential thickness pipe that occur as the process progresses when the seventh method is applied to the sixth method according to the second embodiment. The states shown on the left and right sides of the central axis AX in FIG. 23 are similar to the states shown on the left and right sides of the central axis AX in FIG. 22, respectively, and therefore will not be described here. In the differential thickness pipe 121′ shown in FIG. 23, by applying the seventh method to the sixth method according to the second embodiment, the inner diameter of the differential thickness pipe 121′ in the range from the eleventh large outer diameter region RLDO11 to the tip end is reduced by increasing the wall thickness.

[0179] Figure 24 is a schematic front view showing the appearance of the mother tube 111' and the variable thickness pipe 121' illustrated in Figure 23. By using the seventh method illustrated in Figure 23, it is possible to form a variable thickness pipe 121' having an eleventh thin wall portion PST11 at the end on the base end side as illustrated in Figure 24(b) from an eleventh mother tube 111' having an eleventh thin wall portion PST11 at the end on the base end side as illustrated in Figure 24(a). In the variable thickness pipe 121' illustrated in Figures 23 and 24, the eleventh large outer diameter region RLDO11 has a short axial length and has a flange-like shape.

[0180] Figure 25 is a cross-sectional view of the portion surrounded by the thick dashed line in Figure 24. Figure 25(a) is a cross-sectional view of the mother pipe 111' illustrated in Figure 24(a), and Figure 25(b) is a cross-sectional view of the variable-thickness pipe 121' illustrated in Figure 24(b). As described above, in the seventh method, steps 12 and 13 are performed with the eleventh thin-wall portion PST11 of the mother pipe 111' housed in the housing portion PC of the sleeve 141'. As a result, the eleventh thin-wall portion PST11 is maintained at the end of the variable-thickness pipe 121' on the base end side.

[0181] As described above, in the example shown in FIG. 23 , by applying the seventh method to the sixth method according to the second aspect, the inner diameter of the differentially-thickened pipe 121′ from the eleventh large outer diameter region RLDO11 to the tip end is reduced by increasing the thickness. Therefore, as illustrated in FIG. 25 ( b ), in the eleventh large outer diameter region RLDO11 of the differentially-thickened pipe 121′, the outer diameter is increased by increasing the thickness outward, and the inner diameter is reduced by increasing the thickness inward, resulting in a significant increase in wall thickness. Furthermore, in the eleventh small outer diameter region RSDO11 located distally of the eleventh large outer diameter region RLDO11 of the differentially-thickened pipe 121′, the outer diameter is reduced by the extrusion processing performed in the third step, and the inner diameter is reduced by increasing the thickness inward, resulting in a wall thickness greater than that of the blank pipe 111′. Thus, the differentially-thickened pipe forming method according to the present invention, including the fifth to seventh methods, can form differentially-thickened pipes having a wide variety of configurations.

[0182] <effect> As described above, in the seventh method, steps 11 to 13 are performed using a mother pipe further including, at its base-side end, an 11th thin-wall portion having a 21st outer diameter (a predetermined outer diameter smaller than the 11th outer diameter), a 21st inner diameter (a predetermined inner diameter equal to or greater than the 11th inner diameter), and a 16th wall thickness (a predetermined wall thickness smaller than the 11th wall thickness). The sleeve used in the seventh method includes a receiving portion that is a space that opens at its tip-side end face and has a shape corresponding to the 11th thin-wall portion. Therefore, in the seventh method, steps 12 and 13 are performed with the 11th thin-wall portion of the mother pipe accommodated in the receiving portion of the sleeve, thereby leaving the 11th thin-wall portion at the base-side end of the mother pipe. As a result, the seventh method makes it possible to easily and reliably form a differential-thickness pipe further including an 11th thin-wall portion at its base-side end.

[0183] Eighth Embodiment Next, an extrusion molding method for a pipe with different thicknesses according to an eighth embodiment of the present invention (hereinafter, sometimes referred to as the "eighth method") will be described.

[0184] As mentioned above, the shape of the base tube used in the extrusion molding methods for differential thickness pipes according to the fifth and sixth embodiments of the present invention (fifth method and sixth method) is not necessarily limited to a simple cylindrical shape as illustrated in Figures 8, 13, 17, etc. For example, as long as it does not interfere with the execution of the fifth and sixth methods, a portion having a different structure may be provided at the tip and / or base end of the base tube.

[0185] Furthermore, as mentioned above, the shape of the mother tube used in the extrusion molding method for a differential thickness pipe according to the first embodiment of the present invention (first method) is not necessarily limited to the simple cylindrical shape as exemplified in Fig. 2. For example, a portion having a different structure may be provided at the distal end of the mother tube, as long as it does not interfere with the execution of the first method. By molding a differential thickness pipe from such a mother tube, the structure provided at the distal and / or proximal end of the mother tube can be incorporated into the differential thickness pipe.

[0186] <composition> Therefore, the eighth method is a method for forming a differential thickness pipe by any one of the first, second, and fifth to seventh methods using a mother pipe having a portion at its tip end that has an outer diameter smaller than the smallest inner diameter of the container hole and an inner diameter equal to or larger than the inner diameter of the mother pipe. Specifically, the eighth method is a method for forming a differential thickness pipe by any one of the first, second, and fifth to seventh methods using a mother pipe having a portion at its tip end that has an outer diameter smaller than the smallest inner diameter of the container hole and an inner diameter equal to or larger than the inner diameter of the mother pipe. Or the second method The 22nd outer diameter is a predetermined outer diameter equal to or smaller than the outer diameter corresponding to the smallest inner diameter of the container hole, and the 23rd outer diameter is an inner diameter of the mother tube. No. 1 The inner diameter is equal to or larger than the specified inner diameter of the 22nd pipe and the wall thickness of the mother pipe. No. 1 A blank pipe further including a 12th thin-walled portion at the tip end, the 17th thin-walled portion being a portion having a predetermined wall thickness smaller than the wall thickness of the blank pipe. No. 1 From the process Third This is a method for extrusion molding a pipe with different thicknesses, in which the steps are carried out. Alternatively, the eighth method is any one of the fifth to seventh methods described above, in which steps 11 to 13 are performed using a mother tube that further includes, at its tip end, a 12th thin-walled portion having a 22nd outer diameter that is a predetermined outer diameter equal to or smaller than the outer diameter corresponding to the smallest inner diameter of the container hole, a 22nd inner diameter that is a predetermined inner diameter equal to or larger than the 11th inner diameter that is the inner diameter of the mother tube, and a 17th thickness that is a predetermined thickness smaller than the 11th thickness that is the wall thickness of the mother tube.

[0187] In the eighth method, if the twelfth thin-walled portion provided at the tip end of the blank pipe satisfies the above requirements, the blank pipe can be used to make a pipe without requiring any particular structural changes to the mandrel, sleeve, and container. Steps 1 to 3 or By carrying out the 11th to 13th steps, a differential thickness pipe can be formed that further includes a 12th thin-walled portion at the end on the tip side.

[0188] Figure 26 shows According to the fifth method described aboveIt is a schematic cross-sectional view showing an example of the structure of a base pipe used in the eighth method and a differential thickness pipe formed from the base pipe. The base pipe 111” illustrated in (a) of FIG. 26 has the same structure as the base pipe 111 illustrated in (a) of FIG. 8, (a) of FIG. 13, and (a) of FIG. 17 referred to in the description regarding the fifth and sixth methods, except that it further includes a twelfth thin-wall portion PST12 at the end on the tip side. The twelfth thin-wall portion PST12 has a twenty-second outer diameter DO22 (DO22 ≤ DI17), which is a predetermined outer diameter not exceeding the outer diameter corresponding to the minimum inner diameter (for example, the seventeenth inner diameter DI17) in the container hole 151a, a twenty-second inner diameter DI22 (DI22 ≥ DI11. However, in FIG. 26, DI22 = DI11), which is an inner diameter not less than the inner diameter of the base pipe 111”, and a seventeenth wall thickness T17 (T17 < T11), which is a predetermined wall thickness smaller than the eleventh wall thickness T11 of the base pipe 111”. Also, as shown in (b) of FIG. 26, the differential thickness pipe 121” formed by the eighth method has the same structure as the differential thickness pipe 121 illustrated in (b) of FIG. 8 referred to in the description regarding the fifth method, except that it further includes the twelfth thin-wall portion PST12 at the end on the tip side. [[ID=​​​​​In the eighth method, the above-mentioned blank tube 111″, mandrel 131, sleeve 141, and container 151 are used, and steps 11 to 13 are performed in the same manner as in the fifth method. With the mandrel 131 inserted into the internal space of the blank tube 111″ from the base end side (top side in the drawing), the base end side of the blank tube 111″ is pressed by the eleventh pressing region RP11 of the sleeve 141, thereby forcing the blank tube 111″ into the container hole 151a, thereby forming the above-mentioned differential thickness pipe 121″. In other words, the differential thickness pipe 121″ formed by the eighth method further includes a twelfth thin-wall portion PST12 at the tip side end.

[0191] Figure 27 is a schematic cross-sectional view showing an example of changes in the positional relationships and shapes of the mother pipe, mandrel, sleeve, container, and differential-thickness pipe as the eighth method progresses. In Figure 27, for the sake of simplicity, the reference numerals assigned to the various components shown in Figures 26, 9, etc. are omitted. However, in the following explanation of Figure 27, the reference numerals shown in Figures 26, 9, etc. will be used for accuracy, so please refer to Figures 26, 9, etc. as necessary.

[0192] The left side of the central axis AX in Figure 27 shows a state in which, as a result of the 11th step, the mother tube 111″ having the 12th thin-wall portion PST12 at its distal end is set at a predetermined position inside the container bore 151a, and the mandrel 131 is inserted into the mother tube 111′. In this state, the 12th step is started, and the proximal end of the mother tube 111″ is pressed by the sleeve 141. As a result, the material of the mother tube 111″ plastically flows and fills the space between the container 151 and the mandrel 131 in the 11th large inner diameter region RLDO11 and the 11th inner diameter reduced region RsDI11 of the container bore 151a. As a result, the outer diameter of the mother tube 111″ is expanded from the 11th outer diameter DO11 to the 13th outer diameter DO13 while the inner diameter of the mother tube 111″ is maintained at the 11th inner diameter DI11.

[0193] Then, in the 13th step, the base end side of the mother tube 111" is further pressed by the sleeve 141, and the tip end side of the mother tube 111" is forced into the 11th small inner diameter region RSDI11 of the container hole 151a, thereby reducing the diameter. As a result, the outer diameter of the tip end portion of the mother tube 111" is reduced from the 11th outer diameter DO11 to the 12th outer diameter DO12. The right side of the central axis AX in Figure 27 shows the state after the 13th step is completed, in which the desired differential thickness pipe 121" has been formed. As illustrated in Figure 27, according to the eighth method, a differential thickness pipe 121" having the 12th thin-wall portion PST12 at its tip end can be easily and reliably formed from a mother tube 111" having the 12th thin-wall portion PST12 at its tip end.

[0194] The inner diameter of the differential thickness pipe 121" illustrated in FIG. 27 is constant throughout the twelfth thin-wall portion PST12, the eleventh small outer diameter region RSDO11, the eleventh increasing outer diameter region ReDO11, and the eleventh large outer diameter region RLDO11, and is the same as the eleventh inner diameter DI11, which is the inner diameter of the mother tube 111". However, for example, by applying the eighth method to the sixth method described above, a plurality of regions with different inner diameters may be formed in the differential thickness pipe 121". Alternatively, as described with reference to FIG. 7 in relation to the first method according to another modification, the large inner diameter region and / or the small inner diameter region of the container hole may be multi-staged to form a plurality of regions with different outer diameters in the differential thickness pipe 121".

[0195] <effect> As described above, in the eighth method, the 22nd outer diameter is a predetermined outer diameter equal to or smaller than the outer diameter corresponding to the smallest inner diameter of the container hole, and the 23rd outer diameter is a predetermined outer diameter equal to or smaller than the outer diameter corresponding to the smallest inner diameter of the container hole. More than the inner diameter The specified inner diameter is the 22nd inner diameter and the base pipe than thickness A blank tube is used, which further includes a 12th thin-walled portion at the end on the tip side, which is a portion having a 17th wall thickness that is a small predetermined wall thickness. Steps 1 to 3 or In the eighth method, when the twelfth thin-walled portion provided at the tip end of the mother tube satisfies the above-mentioned requirements, the mother tube can be used without any particular structural changes to the mandrel, sleeve, and container. Steps 1 to 3 orThe 12th thin-wall portion remains at the tip-side end of the mother pipe even when steps 11 to 13 are performed. As a result, according to the eighth method, a differential-wall pipe further including the 12th thin-wall portion at the tip-side end can be easily and reliably formed.

[0196] Ninth Embodiment As mentioned at the beginning of this specification, the present invention relates not only to the methods for extruding pipes with different thicknesses, including the fifth to eighth methods described above, but also to an extrusion molding apparatus for extruding pipes with different thicknesses. Therefore, the extrusion molding apparatus for extruding pipes with different thicknesses according to various embodiments of the present invention will be described below.

[0197] First, an extrusion molding apparatus for a pipe with different thicknesses according to a ninth embodiment of the present invention (hereinafter, sometimes referred to as "ninth apparatus") will be described.

[0198] <composition> The ninth apparatus is an extrusion molding apparatus for a differential thickness pipe, comprising a mandrel which is a core metal having a predetermined shape, a sleeve which is a tubular member arranged coaxially around the mandrel, a container which is a die having a container hole which is a through hole having a predetermined shape, and a drive mechanism configured to push at least the sleeve into the container hole. The ninth apparatus is configured to mold a differential thickness pipe having the predetermined shape by pushing a blank tube having the predetermined shape into the container hole with the sleeve.

[0199] The configurations of the mother tube, mandrel, sleeve, and container have already been described in detail with reference to FIGS. 8 to 12 in the description of the fifth method, and therefore will not be described here.

[0200] Furthermore, the ninth apparatus is configured to form a pipe with different thicknesses by executing steps 11, 12, and 13. Steps 11 to 13 have already been described in detail in the explanation of the fifth method, so a detailed explanation of these steps will be omitted here.

[0201] Furthermore, the ninth device is configured so that, at an eleventh time point when the twelfth step is started, the distal end of the mandrel reaches an eleventh position, which is the same position in the pushing direction as the base end of the eleventh small inner diameter region of the container hole, or closer to the distal end than the eleventh position. Additionally, the ninth device is configured so that, at a twelfth time point when the thirteenth step is started, the distal end of the mandrel reaches a twelfth position, which is a predetermined distance further distal than the base end of the eleventh small inner diameter region of the container hole, or closer to the distal end than the twelfth position.

[0202] <effect> By performing steps 11 to 13 in the ninth apparatus having the above-described configuration, the eleventh large outer diameter region is formed by increasing the wall thickness of the mother tube, and the eleventh small outer diameter region is formed by reducing the wall thickness of the mother tube. Therefore, a larger diameter difference can be achieved with a smaller processing load than when the large outer diameter region is formed while maintaining the outer diameter of the mother tube and then the small outer diameter region is formed by significantly reducing the outer diameter of the mother tube. Furthermore, since the ninth apparatus can increase the wall thickness of the large outer diameter region, it is possible to form a differential-thickness pipe suitable for applications requiring high mechanical strength in the large diameter portion, for example.

[0203] In addition, the axial lengths of the 11th large outer diameter region and the 11th small outer diameter region vary depending on the axial length of the mother tube, the amount of diameter expansion in step 12, the amount of diameter reduction in step 13, and the amount of pressing of the mother tube by the sleeve. That is, according to the 9th apparatus, the axial lengths of the 11th large outer diameter region and the 11th small outer diameter region of the differential thickness pipe can be set as desired.

[0204] Tenth Embodiment Next, an extrusion molding apparatus for a pipe with different thicknesses according to a tenth embodiment of the present invention (hereinafter, sometimes referred to as "tenth apparatus") will be described.

[0205] <composition> The tenth apparatus is the ninth apparatus described above, and is configured to form a differential thickness pipe having a twelfth small outer diameter region that is thickened inward and has a wall thickness greater than that of the eleventh small outer diameter region, located distally of the eleventh small outer diameter region, by performing the sixth method described above. The distal end of the differential thickness pipe formed by the tenth apparatus is formed with a twelfth small outer diameter region that is a region having a sixteenth outer diameter that is equal to the twelfth outer diameter, an eighteenth inner diameter that is a predetermined inner diameter smaller than the twelfth inner diameter, and a fourteenth thickness that is a predetermined thickness greater than the twelfth thickness.

[0206] In order to form the twelfth smaller outer diameter region as described above, the mandrel provided in the tenth apparatus further includes a thirteenth smaller outer diameter region and a twelfth increasing outer diameter region. The thirteenth smaller outer diameter region is a cylindrical region formed distally of the basic outer diameter region and having an 18th outer diameter corresponding to the 18th inner diameter. The twelfth increasing outer diameter region is formed between the thirteenth smaller outer diameter region and the basic outer diameter region and has an outer diameter that increases from the 18th outer diameter to the 14th outer diameter as it approaches the basic outer diameter region.

[0207] Furthermore, the tenth device is configured such that, at a twelfth time point, the proximal end of the thirteenth small outer diameter region is located closer to the proximal end than the eleventh position.

[0208] The tenth device may be configured to carry out the sixth method according to the first aspect described above. In this case, the tenth device is configured so that the distal end of the basic outer diameter region is located distal to the eleventh position at a thirteenth time point, when the thirteenth step is completed.

[0209] The differential thickness pipe formed by carrying out the sixth method according to the first aspect using the tenth apparatus includes an eleventh large outer diameter region, an eleventh increasing outer diameter region, an eleventh small outer diameter region, a twelfth small outer diameter region formed distally of the eleventh small outer diameter region, and an eleventh increasing inner diameter region. The eleventh increasing inner diameter region is formed between the twelfth small outer diameter region and the eleventh small outer diameter region, and is a region in which the inner diameter increases from an 18th inner diameter to a 12th inner diameter as the eleventh small outer diameter region approaches the eleventh small outer diameter region, the wall thickness decreases from a 14th wall thickness to a 12th wall thickness, and the outer diameter is constant at a 17th outer diameter equal to the 12th outer diameter.

[0210] The tenth device may be configured to carry out the sixth method according to the second aspect, in which the proximal end of the thirteenth small outer diameter region is located proximal to the eleventh position at a thirteenth time point, when the thirteenth step is completed.

[0211] The differential thickness pipe formed by carrying out the sixth method according to the second aspect using the tenth apparatus includes a twelfth small outer diameter region, an eleventh large outer diameter region, a twelfth large outer diameter region, a thirteenth increasing outer diameter region, and a twelfth increasing inner diameter region. The twelfth large outer diameter region is formed between the twelfth small outer diameter region and the eleventh large outer diameter region, and has a 19th outer diameter equal to the 13th outer diameter, a 19th inner diameter equal to the 18th inner diameter, and a 15th wall thickness greater than the 13th wall thickness. The 13th increasing outer diameter region is formed between the 12th small outer diameter region and the 12th large outer diameter region, and as it approaches the 12th small outer diameter region, the outer diameter increases from the 16th outer diameter to the 19th outer diameter, the wall thickness increases from the 14th wall thickness to the 15th wall thickness, and the inner diameter remains constant at the 20th inner diameter equal to the 18th inner diameter. The 12th increasing inner diameter region is formed between the 12th large outer diameter region and the 11th large outer diameter region, and as it approaches the 12th large outer diameter region, the inner diameter increases from the 19th inner diameter to the 13th inner diameter, and the wall thickness decreases from the 15th wall thickness to the 13th wall thickness, and the outer diameter remains constant at the 20th outer diameter equal to the 13th outer diameter.

[0212] Details of the sixth method performed in the tenth apparatus and the differential thickness pipe formed by performing the sixth method in the tenth apparatus have already been described in detail in the explanation of the sixth method with reference to Figures 13 to 19, so further explanation will be omitted here.

[0213] <effect> As described above, with the tenth apparatus, the size and / or length of the twelfth smaller outer diameter region, which is a portion formed on the tip side of the mandrel that is narrower than the inner diameter of the mother tube, and the position of the mandrel at the time of completing the thirteenth step, can be appropriately adjusted to change the range of reduction in the inner diameter due to wall thickening in the differentially-thickened pipe formed by executing the sixth method with the tenth apparatus. Therefore, for example, the shape and wall thickness distribution of the differentially-thickened pipe can be designed with a high degree of freedom depending on the application.

[0214] Eleventh Embodiment Next, an extrusion molding apparatus for a pipe with different thicknesses according to an eleventh embodiment of the present invention (hereinafter, sometimes referred to as "eleventh apparatus") will be described.

[0215] <composition> The 11th apparatus is the 9th or 10th apparatus described above, and is configured to form a differential thickness pipe having an 11th thin-walled portion at its base end from a blank tube having an 11th thin-walled portion of a predetermined shape at its base end by performing the 7th method described above.

[0216] The 11th apparatus is the 9th or 10th apparatus described above, and is configured to perform the 11th to 13th steps using a mother tube further including an 11th thin-walled portion at its base end. The 11th thin-walled portion is a portion having a 21st outer diameter that is a predetermined outer diameter smaller than the 11th outer diameter, a 21st inner diameter that is a predetermined inner diameter equal to or larger than the 11th inner diameter, and a 16th thickness that is a predetermined thickness smaller than the 11th thickness.

[0217] The sleeve provided by the 11th device has a receiving portion that is a space that opens to the end face on the tip side and has a shape corresponding to the 11th thin-walled portion. Furthermore, the 11th device is configured to perform the 12th and 13th steps while the 11th thin-walled portion is received in the receiving portion of the sleeve. This leaves the 11th thin-walled portion at the end on the base end side of the mother pipe. As a result, the differential thickness pipe formed by the 11th device further includes the 11th thin-walled portion at the end on the base end side.

[0218] Details of the seventh method performed in the eleventh device and the differential thickness pipe formed by performing the seventh method in the eleventh device have already been described in detail in the explanation of the seventh method with reference to Figures 20 to 25, so further explanation will be omitted here.

[0219] <effect> As described above, in the 11th device, steps 11 to 13 are performed using a mother pipe further including, at its proximal end, an 11th thin-wall portion having a 21st outer diameter (a predetermined outer diameter smaller than the 11th outer diameter), a 21st inner diameter (a predetermined inner diameter equal to or greater than the 11th inner diameter), and a 16th wall thickness (a predetermined wall thickness smaller than the 11th wall thickness). The sleeve included in the 11th device includes a receiving portion that is a space opening at its distal end and having a shape corresponding to the 11th thin-wall portion. Therefore, in the 11th device, steps 12 and 13 are performed with the 11th thin-wall portion of the mother pipe accommodated in the receiving portion of the sleeve, thereby leaving the 11th thin-wall portion at the proximal end of the mother pipe. As a result, the 11th device can easily and reliably form a differential-thickness pipe further including an 11th thin-wall portion at its proximal end.

[0220] Twelfth Embodiment Next, an extrusion molding apparatus for a pipe with different thicknesses according to a twelfth embodiment of the present invention (hereinafter, sometimes referred to as "twelfth apparatus") will be described.

[0221] <composition> The 12th apparatus is any of the above-mentioned 3rd apparatus, 4th apparatus, 9th apparatus and 10th apparatus, and is configured to form a differential thickness pipe having a 12th thin-walled portion at its tip end from a mother tube having a 12th thin-walled portion of a predetermined shape at its tip end by executing the above-mentioned 8th method.

[0222] In the 12th device related to the above-mentioned 3rd or 4th device, the 12th thin-walled portion is a portion having a 22nd outer diameter which is a predetermined outer diameter equal to or smaller than the outer diameter corresponding to the smallest inner diameter of the container hole, a 22nd inner diameter which is a predetermined inner diameter equal to or larger than the first inner diameter, and a 17th thickness which is a predetermined thickness smaller than the first thickness. The 12th device is configured to perform the 1st to 3rd steps using a mother tube which further has a 12th thin-walled portion at its tip end. On the other hand, in the 12th device related to the above-mentioned 9th or 10th device, The 12th thin-walled portion is a portion having a 22nd outer diameter, which is a predetermined outer diameter equal to or smaller than the outer diameter corresponding to the smallest inner diameter of the container hole, a 22nd inner diameter, which is a predetermined inner diameter equal to or larger than the 11th inner diameter, and a 17th thickness, which is a predetermined thickness smaller than the 11th thickness. The relevant The 12th device , th The 11th to 13th steps are performed using a mother tube further having a 12th thin-walled portion at the end portion near the tip end. As a result, the differential thickness pipe formed by the 12th device further includes a 12th thin-walled portion at the end portion near the tip end.

[0223] Details of the 8th method performed in the 12th device and the differential thickness pipe formed by performing the 8th method in the 12th device have already been described in detail in the explanation of the 8th method with reference to Figures 26 and 27, so they will not be explained here.

[0224] <effect> As described above, in the 12th device, the 22nd outer diameter is a predetermined outer diameter that is equal to or smaller than the outer diameter corresponding to the smallest inner diameter of the container hole, and the 23rd outer diameter is a predetermined outer diameter of the mother tube. More than the inner diameter The specified inner diameter is the 22nd inner diameter and the base pipe than thickness A blank tube is used, which further includes a 12th thin-walled portion at the end on the tip side, which is a portion having a 17th wall thickness that is a small predetermined wall thickness. Steps 1 to 3 or Steps 11 to 13 are carried out. In the 12th device, if the 12th thin-walled portion provided at the tip end of the blank tube satisfies the above requirements, the blank tube can be used without requiring any particular structural changes to the mandrel, sleeve, and container. Steps 1 to 3 orThe 12th thin-walled portion remains at the tip-side end of the mother pipe even after steps 11 to 13 are performed. As a result, the 12th device can easily and reliably form a differential-walled pipe that further includes the 12th thin-walled portion at the tip-side end.

[0225] For the purpose of explaining the present invention, several embodiments and modifications having specific configurations have been described above, sometimes with reference to the accompanying drawings. However, the scope of the present invention should not be construed as being limited to these exemplary embodiments and modifications, and it goes without saying that modifications can be made as appropriate within the scope of the claims and the matters described in the specification. [Explanation of symbols]

[0226] 11...Elemental tube DO1…1st outer diameter DI1...First inner diameter T1...First thickness 21, 21', 21"...different thickness pipe RSD1…1st small diameter area DO2…2nd outer diameter DI2...Second inner diameter T2…Second wall thickness RSD2…Second small diameter area DO3…3rd outer diameter DI3...Third inner diameter T3…Third wall thickness PSD1, PSD2... section (multi-stage second small diameter area RSD2) PtDI...Tapered section (multi-stage second small diameter region RSD2) RLD…Large diameter area DO4…4th outer diameter DI4...Fourth inner diameter T4…4th wall thickness RtDI1: First taper region RtDI2: Second taper region 31,31'...Mandrel RSC…Small cross-sectional area DO5…5th outer diameter RLC…Large cross-sectional area DO6…6th outer diameter ReC: Cross-sectional expansion region 41...Sleeve RP: Pressed area DO7…7th outer diameter DI5...5th inner diameter 51,51'...Container 51a, 51a'...container hole RLDI: Large inner diameter range DI6...6th inner diameter RSDI…Small inner diameter area DI7...7th inner diameter RsDI…Inner diameter reduction area 111, 111', 111"...Elemental pipe DO11…11th outer diameter DI11...11th inner diameter T11...11th thickness PST11...11th thin section DO21…21st outer diameter DI21...21st inner diameter T16…16th wall thickness PST12…12th thin section DO22…22nd outer diameter DI22...22nd inner diameter T17...17th thickness 121, 121', 121"...different thickness pipe RSDO11...11th small outer diameter area DO12...12th outer diameter DI12...12th inner diameter T12...12th thickness RSDO12,RSDO12'...12th small outer diameter area DO16…16th outer diameter DI18...18th inner diameter T14, T14'...14th thickness RLDO11…11th large outer diameter area DO13...13th outer diameter DI13...13th inner diameter T13…13th wall thickness RLDO12…12th large outer diameter area DO19…19th outer diameter DI19...19th inner diameter T15…15th wall thickness ReDO11: 11th outer diameter increase region DI14...14th inner diameter ReDO13: 13th outer diameter increase region DI20...20th inner diameter ReDi11: 11th inner diameter increase region DO17…17th outer diameter ReDi12: 12th inner diameter increase region DO20…20th outer diameter 131...Mandrel RBDO…Basic outer diameter area DO14…14th outer diameter RSDO13,RSDO13'...13th small outer diameter area DO18…18th outer diameter ReDO12: 12th outer diameter increase region 141,141'...Sleeve RP11: 11th pressing area DO15…15th outer diameter DI15...15th inner diameter PC…Storage section 151...Container 151a...Container hole RLDI11...11th large inner diameter range DI16...16th inner diameter RSDI11…11th small inner diameter area DI17...17th inner diameter RsDI11…11th inner diameter reduction area

Claims

1. An extrusion molding apparatus comprising: a mandrel which is a core metal having a predetermined shape; a sleeve which is a tubular member disposed coaxially around the mandrel; a container which is a die having a container hole which is a through hole having a predetermined shape; and a drive mechanism configured to push the mandrel and the sleeve into the container hole, a first step of setting a blank tube having a predetermined shape at a predetermined position inside the container hole; a second step of pushing the mandrel into the mother tube by the driving mechanism to expand the diameter of the base end side of the mother tube, which is the upstream side in the extrusion direction; a third step in which, after the first time point at which the second step is started, the sleeve presses the base end side of the mother tube to push the mother tube into the tip side of the container hole, which is downstream in the extrusion direction, thereby performing an extrusion process and reducing the diameter of the tip side of the mother tube; A method for extrusion molding a pipe with different thicknesses, comprising: the blank tube is a cylindrical member having a first outer diameter that is a predetermined outer diameter, a first inner diameter that is a predetermined inner diameter, and a first wall thickness that is a predetermined wall thickness, The differential thickness pipe includes, in order from the tip side to the base end side, a first small diameter region which is a region having a second outer diameter that is a predetermined outer diameter smaller than the first outer diameter, a second inner diameter that is an inner diameter equal to the first inner diameter, and a second thickness that is a predetermined thickness smaller than the first thickness; a second small diameter region which is a region having a third outer diameter that is an outer diameter equal to the second outer diameter and a third thickness that is a predetermined thickness smaller than the second thickness; and a large diameter region which is a region having a fourth outer diameter that is a predetermined outer diameter larger than the first outer diameter and a fourth thickness that is a predetermined thickness, the mandrel includes: a small cross-sectional region formed on the distal end side, which is a cylindrical region having a first cross-section that is a circular cross-section having a fifth outer diameter that is an outer diameter corresponding to the second inner diameter; a large cross-sectional region formed on the proximal end side, which is a cylindrical region having a second cross-section that is a cross-section corresponding to a cross-section of an internal space of the second small diameter region and the large diameter region; and an expanding cross-sectional region formed between the small cross-sectional region and the large cross-sectional region, which is a region whose cross-section expands from the first cross-section to the second cross-section as it approaches the large cross-sectional region from the small cross-sectional region, the sleeve includes a pressing region that is a cylindrical region having a columnar internal space formed on the tip side and having a seventh outer diameter that is equal to the fourth outer diameter and a third transverse cross section that is a transverse cross section corresponding to the second transverse cross section, the container hole includes: a large inner diameter region formed on the base end side and having a sixth inner diameter corresponding to the fourth outer diameter; a small inner diameter region formed on the tip end side and having a seventh inner diameter corresponding to the second outer diameter and the third outer diameter; and a decreasing inner diameter region formed between the large inner diameter region and the small inner diameter region and having an inner diameter that decreases from the sixth inner diameter to the seventh inner diameter as the container hole approaches the small inner diameter region; at a second time point when the third step is started, the tip end of the mandrel in the extrusion direction reaches the tip end of the mother tube or is closer to the tip than the tip end of the mother tube, and the base end of the small cross section region is located closer to the base end than the base end of the small inner diameter region. A method for extruding pipes with different thicknesses.

2. The method for extrusion molding a pipe with different thicknesses according to claim 1, an internal space of the second small diameter region of the differential thickness pipe has a cylindrical shape having a third inner diameter that is a predetermined inner diameter larger than the first inner diameter; an internal space of the large diameter region of the differential thickness pipe has a cylindrical shape having a fourth inner diameter that is equal to the third inner diameter; the large cross-sectional region of the mandrel has a cylindrical shape having a sixth outer diameter corresponding to the fourth inner diameter; the enlarged cross-sectional region of the mandrel has a frusto-conical shape with an outer diameter increasing from the fifth outer diameter to the sixth outer diameter as the enlarged cross-sectional region approaches the smaller cross-sectional region; The pressing region of the sleeve has a cylindrical shape having a fifth inner diameter that is an inner diameter corresponding to the seventh outer diameter and the sixth outer diameter. A method for extruding pipes with different thicknesses.

3. The method for extrusion molding a pipe having different thicknesses according to claim 1 or 2, the mandrel and the sleeve are fixed so that the distance between the tip end of the mandrel and the tip end of the sleeve in the extrusion direction is not greater than the distance between the tip end of the mandrel and the tip end of the sleeve at the second point in time. A method for extruding pipes with different thicknesses.

4. a mandrel which is a core metal having a predetermined shape; a sleeve which is a cylindrical member arranged coaxially around the mandrel; a container which is a die having a container hole which is a through hole having a predetermined shape; and a drive mechanism configured to push the mandrel and the sleeve into the container hole, a first step of setting a blank tube having a predetermined shape at a predetermined position inside the container hole; a second step of pushing the mandrel into the mother tube by the driving mechanism to expand the diameter of the base end side of the mother tube, which is the upstream side in the extrusion direction; a third step in which, after the first time point at which the second step is started, the sleeve presses the base end side of the mother tube to push the mother tube into the tip side of the container hole, which is downstream in the extrusion direction, thereby performing an extrusion process and reducing the diameter of the tip side of the mother tube; The method is configured to form a differential thickness pipe having a predetermined shape by executing the steps. An extrusion molding device for a pipe with different thicknesses, the blank tube is a cylindrical member having a first outer diameter that is a predetermined outer diameter, a first inner diameter that is a predetermined inner diameter, and a first wall thickness that is a predetermined wall thickness, The differential thickness pipe includes, in order from the tip side to the base end side, a first small diameter region which is a region having a second outer diameter that is a predetermined outer diameter smaller than the first outer diameter, a second inner diameter that is an inner diameter equal to the first inner diameter, and a second thickness that is a predetermined thickness smaller than the first thickness; a second small diameter region which is a region having a third outer diameter that is an outer diameter equal to the second outer diameter and a third thickness that is a predetermined thickness smaller than the second thickness; and a large diameter region which is a region having a fourth outer diameter that is a predetermined outer diameter larger than the first outer diameter and a fourth thickness that is a predetermined thickness, the mandrel includes: a small cross-sectional region formed on the distal end side, which is a cylindrical region having a first cross-section that is a circular cross-section having a fifth outer diameter that is an outer diameter corresponding to the second inner diameter; a large cross-sectional region formed on the proximal end side, which is a cylindrical region having a second cross-section that is a cross-section corresponding to a cross-section of an internal space of the second small diameter region and the large diameter region; and an expanding cross-sectional region formed between the small cross-sectional region and the large cross-sectional region, which is a region whose cross-section expands from the first cross-section to the second cross-section as it approaches the large cross-sectional region from the small cross-sectional region, the sleeve includes a pressing region that is a cylindrical region having a columnar internal space formed on the tip side and having a seventh outer diameter that is equal to the fourth outer diameter and a third transverse cross section that is a transverse cross section corresponding to the second transverse cross section, the container hole includes: a large inner diameter region formed on the base end side and having a sixth inner diameter corresponding to the fourth outer diameter; a small inner diameter region formed on the tip end side and having a seventh inner diameter corresponding to the second outer diameter and the third outer diameter; and a decreasing inner diameter region formed between the large inner diameter region and the small inner diameter region and having an inner diameter that decreases from the sixth inner diameter to the seventh inner diameter as the container hole approaches the small inner diameter region; At a second time point when the third step is started, a first position, which is the position of the end of the mandrel on the tip side in the extrusion direction, is equal to a second position, which is the position of the end of the blank tube on the tip side, or is at a third position, which is a position located a predetermined distance toward the tip side from the second position. Extrusion molding equipment for pipes with different thicknesses.

5. The extrusion molding device for a pipe with different thicknesses according to claim 4, an internal space of the second small diameter region of the differential thickness pipe has a cylindrical shape having a third inner diameter that is a predetermined inner diameter larger than the first inner diameter; an internal space of the large diameter region of the differential thickness pipe has a cylindrical shape having a fourth inner diameter that is equal to the third inner diameter; the large cross-sectional region of the mandrel has a cylindrical shape having a sixth outer diameter corresponding to the fourth inner diameter; the enlarged cross-sectional region of the mandrel has a frusto-conical shape with an outer diameter increasing from the fifth outer diameter to the sixth outer diameter as the enlarged cross-sectional region approaches the smaller cross-sectional region; the pressing region of the sleeve has a cylindrical shape having a fifth inner diameter equal to the seventh outer diameter and the third inner diameter and the fourth inner diameter; Extrusion molding equipment for pipes with different thicknesses.

6. The extrusion molding device for a differential thickness pipe according to claim 4 or claim 5, the mandrel and the sleeve are fixed so that the distance between the tip end of the mandrel and the tip end of the sleeve in the extrusion direction is not greater than the distance between the tip end of the mandrel and the tip end of the sleeve at the second point in time. Extrusion molding equipment for pipes with different thicknesses.

7. 1. A method for extruding a differential thickness pipe having a predetermined shape, comprising: an extrusion molding apparatus including a mandrel which is a core metal having a predetermined shape; a sleeve which is a tubular member arranged coaxially around the mandrel; a container which is a die having a container hole which is a through hole having a predetermined shape; and a drive mechanism configured to force at least the sleeve into the container hole, the method comprising: extruding a blank tube having a predetermined shape into the container hole with the sleeve; the blank tube is a cylindrical member having an eleventh outer diameter that is a predetermined outer diameter, an eleventh inner diameter that is a predetermined inner diameter, and an eleventh wall thickness that is a predetermined wall thickness, The differential thickness pipe has an eleventh small outer diameter region formed on a tip end side, which is downstream in a pressing direction, which is a direction in which the blank tube is pressed into the container hole, and having a twelfth outer diameter that is a predetermined outer diameter smaller than the eleventh outer diameter, a twelfth inner diameter that is an inner diameter equal to the eleventh inner diameter, and a twelfth wall thickness that is a predetermined wall thickness smaller than the eleventh wall thickness; and a base end side, which is upstream in the pressing direction, and having a thirteenth outer diameter that is a predetermined outer diameter larger than the eleventh outer diameter, a thirteenth inner diameter that is equal to the eleventh inner diameter, an eleventh large outer diameter region which is a region having a thirteenth inner diameter which is a small inner diameter and a thirteenth thickness which is a predetermined thickness larger than the eleventh thickness; and an eleventh increasing outer diameter region which is formed between the eleventh small outer diameter region and the eleventh large outer diameter region, and which is a region in which the outer diameter increases from the twelfth outer diameter to the thirteenth outer diameter and the thickness increases from the twelfth thickness to the thirteenth thickness as it approaches the eleventh small outer diameter region and the eleventh large outer diameter region, and the inner diameter is constant at a fourteenth inner diameter which is equal to the eleventh inner diameter, the mandrel includes a basic outer diameter region that is a cylindrical region formed on the tip side and has a 14th outer diameter that is an outer diameter corresponding to the 11th inner diameter, the sleeve includes an eleventh pressing region that is a cylindrical region having a cylindrical internal space formed on the tip side and having a fifteenth outer diameter that is an outer diameter equal to the thirteenth outer diameter and a fifteenth inner diameter that is an inner diameter corresponding to the fourteenth outer diameter, the container hole includes: an eleventh large inner diameter region formed on the base end side and having a sixteenth inner diameter corresponding to the thirteenth outer diameter; an eleventh small inner diameter region formed on the tip end side and having a seventeenth inner diameter corresponding to the twelfth outer diameter; and an eleventh inner diameter decreasing region formed between the eleventh large inner diameter region and the eleventh small inner diameter region and having an inner diameter that decreases from the sixteenth inner diameter to the seventeenth inner diameter as the container hole approaches the eleventh small inner diameter region, The method for extrusion molding a pipe with different thicknesses comprises: an eleventh step of abutting the tip end of the blank tube against the eleventh inner diameter reduced region of the container hole to set the blank tube at a predetermined position inside the container hole; a twelfth step of pressing the base end side end of the mother tube with the sleeve while the mandrel is inserted into the mother tube, thereby causing a material constituting the mother tube to plastically flow and fill a space between the container and the mandrel in the eleventh large inner diameter region and the eleventh reduced inner diameter region of the container hole, thereby expanding the outer diameter of the mother tube to the thirteenth outer diameter while maintaining the inner diameter of the mother tube at the eleventh inner diameter; a thirteenth step of further pressing the base end of the mother tube with the sleeve while the mandrel is inserted into the mother tube, thereby performing an extrusion process in which a material constituting the mother tube is extruded into the eleventh small inner diameter region of the container hole through a gap between the base end of the eleventh small inner diameter region of the container hole and the mandrel, thereby reducing the diameter of the front end of the mother tube; Including, at an eleventh time point when the twelfth step is started, the tip end of the mandrel has reached an eleventh position that is the same position as the position of the base end end of the eleventh small inner diameter region of the container hole in the pressing direction, or has reached a position further tip than the eleventh position, at a twelfth time point when the thirteenth step is started, the tip end of the mandrel has reached a twelfth position, which is a position that is a predetermined distance further to the tip end than the base end end of the eleventh small inner diameter region of the container hole in the pressing direction, or has reached a position further to the tip end than the twelfth position, The tip end of the differential thickness pipe is formed with a 12th small outer diameter region having a 16th outer diameter that is an outer diameter equal to the 12th outer diameter, an 18th inner diameter that is a predetermined inner diameter smaller than the 12th inner diameter, and a 14th thickness that is a predetermined thickness larger than the 12th thickness, the mandrel further includes: a thirteenth small outer diameter region that is formed on the tip side of the base outer diameter region and is a cylindrical region having an eighteenth outer diameter that is an outer diameter corresponding to the eighteenth inner diameter; and a twelfth increasing outer diameter region that is formed between the thirteenth small outer diameter region and the base outer diameter region and is a region whose outer diameter increases from the eighteenth outer diameter to the fourteenth outer diameter as it approaches the base outer diameter region from the thirteenth small outer diameter region, At the twelfth time point, the end portion of the thirteenth small outer diameter region on the base end side is located closer to the base end than the eleventh position. A method for extruding pipes with different thicknesses.

8. The method for extrusion molding a pipe with different thicknesses according to claim 7, At a thirteenth time point when the thirteenth step is completed, the tip end side end of the basic outer diameter region is located closer to the tip side than the eleventh position, The differential thickness pipe includes the 11th large outer diameter region, the 11th increasing outer diameter region, the 11th small outer diameter region, the 12th small outer diameter region formed closer to the tip than the 11th small outer diameter region, and an 11th increasing inner diameter region formed between the 12th small outer diameter region and the 11th small outer diameter region, the inner diameter increasing from the 18th inner diameter to the 12th inner diameter as the pipe approaches the 12th small outer diameter region and the 11th small outer diameter region, the wall thickness decreasing from the 14th wall thickness to the 12th wall thickness, and the outer diameter being constant at a 17th outer diameter equal to the 12th outer diameter. A method for extruding pipes with different thicknesses.

9. The method for extrusion molding a pipe with different thicknesses according to claim 7, At a thirteenth time point when the thirteenth step is completed, an end portion of the thirteenth small outer diameter region on the base end side is located closer to the base end than the eleventh position, The differential thickness pipe includes the 12th small outer diameter region, the 11th large outer diameter region, a 12th large outer diameter region formed between the 12th small outer diameter region and the 11th large outer diameter region and having a 19th outer diameter that is an outer diameter equal to the 13th outer diameter, a 19th inner diameter that is an inner diameter equal to the 18th inner diameter, and a 15th thickness that is a predetermined thickness larger than the 13th thickness, and a 12th small outer diameter region formed between the 12th small outer diameter region and the 12th large outer diameter region and having a thickness that changes from the 16th outer diameter to the 19th outer diameter as it approaches the 12th small outer diameter region. a thirteenth increasing outer diameter region, the thickness of which increases from the fourteenth thickness to the fifteenth thickness, and the inner diameter is constant at a twentieth inner diameter equal to the eighteenth inner diameter; and a twelfth increasing inner diameter region, the twelfth increasing inner diameter region, the inner diameter of which increases from the nineteenth inner diameter to the thirteenth inner diameter as it approaches the eleventh large outer diameter region, and the thickness of which decreases from the fifteenth thickness to the thirteenth thickness, and the outer diameter is constant at a twentieth outer diameter equal to the thirteenth outer diameter. A method for extruding pipes with different thicknesses.

10. The method for extrusion molding a differential thickness pipe according to any one of claims 7 to 9, the 11th step to the 13th step are performed using the mother tube further including, at an end portion on the base end side, an 11th thin-wall portion having a 21st outer diameter that is a predetermined outer diameter smaller than the 11th outer diameter, a 21st inner diameter that is a predetermined inner diameter equal to or larger than the 11th inner diameter, and a 16th thickness that is a predetermined thickness smaller than the 11th thickness, the sleeve includes a receiving portion that is a space that opens to an end surface on the tip side and has a shape corresponding to the eleventh thin-walled portion, by performing the twelfth step and the thirteenth step in a state in which the eleventh thin-walled portion is accommodated in the accommodation portion, the eleventh thin-walled portion is left at the end portion on the tip side of the mother tube, The differential thickness pipe further includes the eleventh thin-walled portion at the end portion on the base end side, A method for extruding pipes with different thicknesses.

11. The method for extrusion molding a pipe having different thicknesses according to claim 1 or 2, the first step to the third step are performed using the mother tube, which further includes, at the end portion of the front end side, a 12th thin-wall portion having a 22nd outer diameter that is a predetermined outer diameter equal to or smaller than an outer diameter corresponding to the smallest inner diameter of the container hole, a 22nd inner diameter that is a predetermined inner diameter equal to or larger than the first inner diameter, and a 17th wall thickness that is a predetermined wall thickness smaller than the first wall thickness; The differential thickness pipe further includes the twelfth thin-walled portion at the end portion on the tip side. A method for extruding pipes with different thicknesses.

12. The method for extrusion molding a differential thickness pipe according to any one of claims 7 to 9, the 11th step to the 13th step are performed using the mother tube, which further includes, at the end portion near the tip end thereof, a 12th thin-walled portion having a 22nd outer diameter that is a predetermined outer diameter equal to or smaller than an outer diameter corresponding to the smallest inner diameter of the container hole, a 22nd inner diameter that is a predetermined inner diameter equal to or larger than the 11th inner diameter, and a 12th thin-walled portion that is a portion having a 17th wall thickness that is a predetermined wall thickness smaller than the 11th wall thickness; The differential thickness pipe further includes the twelfth thin-walled portion at the end portion on the tip side. A method for extruding pipes with different thicknesses.

13. 1. An extrusion molding device for a variable thickness pipe, comprising: a mandrel which is a core metal having a predetermined shape; a sleeve which is a tubular member arranged coaxially around the mandrel; a container which is a die having a container hole which is a through hole having a predetermined shape; and a drive mechanism configured to push at least the sleeve into the container hole, wherein the extrusion molding device for a variable thickness pipe is configured to mold a variable thickness pipe having the predetermined shape by pushing a blank tube having the predetermined shape into the container hole with the sleeve, the blank tube is a cylindrical member having an eleventh outer diameter that is a predetermined outer diameter, an eleventh inner diameter that is a predetermined inner diameter, and an eleventh wall thickness that is a predetermined wall thickness, The differential thickness pipe has an eleventh small outer diameter region formed on a tip end side, which is downstream in a pressing direction, which is a direction in which the blank tube is pressed into the container hole, and having a twelfth outer diameter that is a predetermined outer diameter smaller than the eleventh outer diameter, a twelfth inner diameter that is an inner diameter equal to the eleventh inner diameter, and a twelfth wall thickness that is a predetermined wall thickness smaller than the eleventh wall thickness; and a base end side, which is upstream in the pressing direction, and having a thirteenth outer diameter that is a predetermined outer diameter larger than the eleventh outer diameter, a thirteenth inner diameter that is equal to the eleventh inner diameter, an eleventh large outer diameter region which is a region having a thirteenth inner diameter which is a small inner diameter and a thirteenth thickness which is a predetermined thickness larger than the eleventh thickness; and an eleventh increasing outer diameter region which is formed between the eleventh small outer diameter region and the eleventh large outer diameter region, and which is a region in which the outer diameter increases from the twelfth outer diameter to the thirteenth outer diameter and the thickness increases from the twelfth thickness to the thirteenth thickness as it approaches the eleventh small outer diameter region and the eleventh large outer diameter region, and the inner diameter is constant at a fourteenth inner diameter which is equal to the eleventh inner diameter, the mandrel includes a basic outer diameter region that is a cylindrical region formed on the tip side and has a 14th outer diameter that is an outer diameter corresponding to the 11th inner diameter, the sleeve includes an eleventh pressing region that is a cylindrical region having a cylindrical internal space formed on the tip side and having a fifteenth outer diameter that is an outer diameter equal to the thirteenth outer diameter and a fifteenth inner diameter that is an inner diameter corresponding to the fourteenth outer diameter, the container hole includes: an eleventh large inner diameter region formed on the base end side and having a sixteenth inner diameter corresponding to the thirteenth outer diameter; an eleventh small inner diameter region formed on the tip end side and having a seventeenth inner diameter corresponding to the twelfth outer diameter; and an eleventh inner diameter decreasing region formed between the eleventh large inner diameter region and the eleventh small inner diameter region and having an inner diameter that decreases from the sixteenth inner diameter to the seventeenth inner diameter as the container hole approaches the eleventh small inner diameter region, The extrusion molding device for the differential thickness pipe, an eleventh step of abutting the tip end of the blank tube against the eleventh inner diameter reduced region of the container hole to set the blank tube at a predetermined position inside the container hole; a twelfth step of pressing the base end side end of the mother tube with the sleeve while the mandrel is inserted into the mother tube, thereby causing a material constituting the mother tube to plastically flow and fill a space between the container and the mandrel in the eleventh large inner diameter region and the eleventh reduced inner diameter region of the container hole, thereby expanding the outer diameter of the mother tube to the thirteenth outer diameter while maintaining the inner diameter of the mother tube at the eleventh inner diameter; a thirteenth step of further pressing the base end of the mother tube with the sleeve while the mandrel is inserted into the mother tube, thereby performing an extrusion process in which a material constituting the mother tube is extruded into the eleventh small inner diameter region of the container hole through a gap between the base end of the eleventh small inner diameter region of the container hole and the mandrel, thereby reducing the diameter of the front end of the mother tube; The differential thickness pipe is formed by executing at an eleventh time point when the twelfth step is started, the tip end of the mandrel has reached an eleventh position that is the same position as the position of the base end end of the eleventh small inner diameter region of the container hole in the pressing direction, or has reached a position further tip than the eleventh position, at a twelfth time point when the thirteenth step is started, the tip end of the mandrel has reached a twelfth position, which is a position that is a predetermined distance further to the tip end than the base end end of the eleventh small inner diameter region of the container hole in the pressing direction, or has reached a position further to the tip end than the twelfth position, The tip end of the differential thickness pipe is formed with a 12th small outer diameter region having a 16th outer diameter that is an outer diameter equal to the 12th outer diameter, an 18th inner diameter that is a predetermined inner diameter smaller than the 12th inner diameter, and a 14th thickness that is a predetermined thickness larger than the 12th thickness, the mandrel further includes: a thirteenth small outer diameter region that is formed on the tip side of the base outer diameter region and is a cylindrical region having an eighteenth outer diameter that is an outer diameter corresponding to the eighteenth inner diameter; and a twelfth increasing outer diameter region that is formed between the thirteenth small outer diameter region and the base outer diameter region and is a region whose outer diameter increases from the eighteenth outer diameter to the fourteenth outer diameter as it approaches the base outer diameter region from the thirteenth small outer diameter region, At the twelfth time point, the end portion of the thirteenth small outer diameter region on the base end side is located closer to the base end than the eleventh position. Extrusion molding equipment for pipes with different thicknesses.

14. The extrusion molding device for a pipe with different thicknesses according to claim 13, At a thirteenth time point when the thirteenth step is completed, the tip end side end of the basic outer diameter region is located closer to the tip side than the eleventh position, The differential thickness pipe includes the 11th large outer diameter region, the 11th increasing outer diameter region, the 11th small outer diameter region, the 12th small outer diameter region formed closer to the tip than the 11th small outer diameter region, and an 11th increasing inner diameter region formed between the 12th small outer diameter region and the 11th small outer diameter region, the inner diameter increasing from the 18th inner diameter to the 12th inner diameter as the pipe approaches the 12th small outer diameter region and the 11th small outer diameter region, the wall thickness decreasing from the 14th wall thickness to the 12th wall thickness, and the outer diameter being constant at a 17th outer diameter equal to the 12th outer diameter. Extrusion molding equipment for pipes with different thicknesses.

15. The extrusion molding device for a pipe with different thicknesses according to claim 13, At a thirteenth time point when the thirteenth step is completed, an end portion of the thirteenth small outer diameter region on the base end side is located closer to the base end than the eleventh position, The differential thickness pipe includes the 12th small outer diameter region, the 11th large outer diameter region, a 12th large outer diameter region formed between the 12th small outer diameter region and the 11th large outer diameter region and having a 19th outer diameter that is an outer diameter equal to the 13th outer diameter, a 19th inner diameter that is an inner diameter equal to the 18th inner diameter, and a 15th thickness that is a predetermined thickness larger than the 13th thickness, and a 12th small outer diameter region formed between the 12th small outer diameter region and the 12th large outer diameter region and having a thickness that changes from the 16th outer diameter to the 19th outer diameter as it approaches the 12th small outer diameter region. a thirteenth increasing outer diameter region, the thickness of which increases from the fourteenth thickness to the fifteenth thickness, and the inner diameter is constant at a twentieth inner diameter equal to the eighteenth inner diameter; and a twelfth increasing inner diameter region, the twelfth increasing inner diameter region, the inner diameter of which increases from the nineteenth inner diameter to the thirteenth inner diameter as it approaches the eleventh large outer diameter region, and the thickness of which decreases from the fifteenth thickness to the thirteenth thickness, and the outer diameter is constant at a twentieth outer diameter equal to the thirteenth outer diameter. Extrusion molding equipment for pipes with different thicknesses.

16. The extrusion molding device for a differential thickness pipe according to any one of claims 13 to 15, the 11th step to the 13th step are performed using the mother tube further including, at an end portion on the base end side, an 11th thin-wall portion which has a 21st outer diameter that is a predetermined outer diameter smaller than the 11th outer diameter, a 21st inner diameter that is a predetermined inner diameter equal to or larger than the 11th inner diameter, and a 16th thickness that is a predetermined thickness smaller than the 11th thickness, the sleeve includes a receiving portion that is a space that opens to an end surface on the tip side and has a shape corresponding to the eleventh thin-walled portion, By performing the twelfth step and the thirteenth step in a state in which the eleventh thin-walled portion is accommodated in the accommodation portion, the eleventh thin-walled portion remains at the end portion on the tip side of the mother pipe, The differential thickness pipe further includes the eleventh thin-walled portion at the end portion on the base end side, Extrusion molding equipment for pipes with different thicknesses.

17. The extrusion molding device for a differential thickness pipe according to claim 4 or claim 5, the first step to the third step are performed using the mother tube, which further includes, at its tip end, a 12th thin-walled portion having a 22nd outer diameter that is a predetermined outer diameter equal to or smaller than an outer diameter corresponding to the smallest inner diameter of the container hole, a 22nd inner diameter that is a predetermined inner diameter equal to or larger than the first inner diameter, and a 17th wall thickness that is a predetermined wall thickness smaller than the first wall thickness, The differential thickness pipe further includes the twelfth thin-walled portion at the end portion on the tip side. Extrusion molding equipment for pipes with different thicknesses.

18. The extrusion molding device for a differential thickness pipe according to any one of claims 13 to 15, the 11th step to the 13th step are performed using the mother tube, which further includes, at its tip end, a 12th thin-walled portion having a 22nd outer diameter that is a predetermined outer diameter equal to or smaller than an outer diameter corresponding to the smallest inner diameter of the container hole, a 22nd inner diameter that is a predetermined inner diameter equal to or larger than the 11th inner diameter, and a 17th thickness that is a predetermined thickness smaller than the 11th thickness, The differential thickness pipe further includes the twelfth thin-walled portion at the end portion on the tip side. Extrusion molding equipment for pipes with different thicknesses.

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