Method of manufacturing preliminary formed body and axisymmetrical component
10632522 ยท 2020-04-28
Assignee
Inventors
- Yoshihide Imamura (Kobe, JP)
- Yuto Sakane (Kobe, JP)
- Kohei Mikami (Akashi, JP)
- Yoshiro Kabe (Kobe, JP)
- Hayato Iwasaki (Kobe, JP)
- Hiroshi Kitano (Kobe, JP)
Cpc classification
B21H1/04
PERFORMING OPERATIONS; TRANSPORTING
B21H1/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B21H1/00
PERFORMING OPERATIONS; TRANSPORTING
B21H1/04
PERFORMING OPERATIONS; TRANSPORTING
H05B6/10
ELECTRICITY
Abstract
A method of manufacturing a preliminary formed body includes an ironing step and a thickening step. In the ironing step, a predetermined range of a plate is formed into a tapered shape in such a manner that while rotating the plate, a transform target portion of the plate is locally heated by induction heating, and a processing tool is pressed against the transform target portion. In the thickening step, a peripheral portion that is a distal end of the tapered shape of the plate is expanded inward in such a manner that while rotating the plate, the peripheral portion is locally heated, and a forming roller is pressed against the peripheral portion to push the peripheral portion in a direction orthogonal to a thickness direction of the peripheral portion.
Claims
1. A method of manufacturing a preliminary formed body for an axisymmetrical component including a tapered portion and a flange portion, the tapered portion being tubular and increasing in diameter from a first side to a second side opposite the first side in an axial direction, the flange portion projecting inward from a large-diameter portion of the tapered portion, the method comprising: an ironing step of forming a predetermined range of a plate into a tapered shape in such a manner that while rotating the plate, a transform target portion of the plate is locally heated, and a processing tool is pressed against the transform target portion; and a thickening step of expanding inward a peripheral portion that is a distal end of the tapered shape of the plate in such a manner that while rotating the plate, the peripheral portion is locally heated, and while making a forming roller move obliquely toward a rotation axis of the plate, the forming roller is pressed against the peripheral portion to push the peripheral portion in a direction orthogonal to a thickness direction of the peripheral portion.
2. The method according to claim 1, wherein the predetermined range is from a specific position of the plate to the peripheral portion of the plate.
3. The method according to claim 1, wherein the predetermined range is from a specific position of the plate to a vicinity of the peripheral portion of the plate, the method further comprising a cutting step of cutting a portion of the plate which portion is located outside the predetermined range, the cutting step being performed between the ironing step and the thickening step.
4. The method according to claim 1, wherein: in the ironing step, the transform target portion of the plate is heated by induction heating; and in the thickening step, the peripheral portion of the plate is heated by the induction heating.
5. The method according to claim 1, wherein in the ironing step, the transform target portion is heated by a rear-side heater disposed at an opposite side of the processing tool across the plate and a front-side heater disposed at a same side as the processing tool relative to the plate.
6. The method according to claim 5, wherein each of the front-side heater and the rear-side heater includes a coil portion extending in a rotational direction of the plate and having a doubled circular-arc shape facing the plate.
7. The method according to claim 5, wherein in the thickening step, the peripheral portion of the plate is heated by the rear-side heater or the front-side heater.
8. The method according to claim 1, wherein the forming roller includes: a cylindrical press surface extending in a rotation axis direction of the forming roller; and a ring-shaped guide surface spreading from one end portion of the press surface outward in a radial direction of the forming roller.
9. The method according to claim 1, wherein the plate is made of a titanium alloy.
10. The method according to claim 1, wherein the axisymmetrical component is an aircraft component.
11. The method according to claim 1, further comprising a step of removing residual stress of the plate by a heat treatment, the step being performed between the ironing step and the thickening step.
12. A method of manufacturing an axisymmetrical component, the method comprising: removing, by a heat treatment, residual stress of the preliminary formed body obtained by the method according to claim 1; and then cutting the preliminary formed body by machine work to form the axisymmetrical component.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(11) Embodiment 1
(12) In Embodiment 1, a preliminary formed body 98 shown in
(13) Specifically, a method of manufacturing the preliminary formed body 98 according to Embodiment 1 includes an ironing step shown in
(14) (1) Axisymmetrical Component
(15) The axisymmetrical component 8 has a shape symmetrical around a central axis 80. More specifically, the axisymmetrical component 8 includes a tapered portion 81 and a flange portion 82 projecting inward from a large-diameter portion of the tapered portion 81. The axisymmetrical component 8 is, for example, an aircraft component. One example of such aircraft component is, for example, a passage wall used in a gas turbine engine of an aircraft.
(16) An angle of the tapered portion 81 is not especially limited. A cross-sectional shape of the tapered portion 81 does not necessarily have to be a linear shape and may be a curved shape or a step shape. An angle between the flange portion 82 and the tapered portion 81 is not especially limited and may be any one of an acute angle, a right angle, and an obtuse angle. A cross-sectional shape of the flange portion 82 does not necessarily have to be a linear shape and may be a curved shape or a step shape.
(17) (2) Ironing Step
(18) In the ironing step, a predetermined range A (see
(19) In the present embodiment, the local heating of the transform target portion 92 is performed by induction heating using a rear-side heater 4 and a front-side heater 5. The rear-side heater 4 is disposed at an opposite side of the processing tool 10 across the plate 9, and the front-side heater 5 is disposed at the same side as the processing tool 10 relative to the plate 9. It should be noted that the local heating of the transform target portion 92 may be performed by any one of the rear-side heater 4 and the front-side heater 5. To be specific, the preliminary formed body manufacturing device 1A may include any one of the rear-side heater 4 and the front-side heater 5. Further, the local heating of the transform target portion 92 may be performed by, for example, a gas burner.
(20) The preliminary formed body manufacturing device 1A includes: a rotating shaft 21 that rotates the plate 9; a receiving jig 22 attached to the rotating shaft 21 and supporting a central portion 91 of the plate 9; and a fixing jig 31 that sandwiches the plate 9 together with the receiving jig 22. The transform target portion 92 is a ring-shaped portion located away from a center axis 20 of the rotating shaft 21 by a predetermined distance R and having a predetermined width (see
(21) As shown in
(22) The plate 9 is, for example, a flat circular plate. In the present embodiment, as shown in
(23) In the present embodiment, the plate 9 is made of a titanium alloy. Examples of the titanium alloy include anticorrosion alloys (such as Ti-0.15Pd), alloys (such as Ti-5A1-2.5Sn), + alloys (such as Ti-6A1-4V), and alloys (Ti-15V-3Cr-3Sn-3Al). However, a material of the plate 9 is not limited to the titanium alloy and may be, for example, stainless steel, steel, or an aluminum alloy.
(24) The receiving jig 22 has a size within a circle defined by a forming start position of the plate 9. To be specific, the plate 9 is not transformed by being pressed against a radially outer side surface of the receiving jig 22. However, when the preliminary formed body manufacturing device 1A includes only the front-side heater 5, a mandrel including a side surface as a forming surface for the plate may be used instead of the receiving jig 22.
(25) When the plate 9 is a thick plate (for example, when a thickness of the plate 9 is not less than 20 mm), the heating of the plate 9 only from a front side or a rear side may not adequately heat the transform target portion 92 of the plate 9 to such a degree that the ironing (the forming of the tapered shape 95 by the pressing of the processing tool 10) can be performed. From this viewpoint, when the plate 9 is thick, the preliminary formed body manufacturing device 1A desirably includes both the rear-side heater 4 and the front-side heater 5. Further, to dispose the rear-side heater 4, the preliminary formed body manufacturing device 1A desirably includes the receiving jig 22 instead of the mandrel. With this, the thick plate 9 can be satisfactorily processed.
(26) The fixing jig 31 is attached to a pressurizing rod 32. The pressurizing rod 32 is rotatably supported by a supporting portion 33. The supporting portion 33 is driven by a driving portion 34 in an upward/downward direction. The driving portion 34 is attached to a frame 12 disposed above the rotating shaft 21. It should be noted that the fixing jig 31 may be omitted, and the plate 9 may be directly fixed to the receiving jig 22 by, for example, bolts.
(27) The processing tool 10 that presses the transform target portion 92 of the plate 9 is disposed above the plate 9, and the plate 9 is formed in a downwardly opening shape that accommodates the receiving jig 22. However, the processing tool 10 may be disposed under the plate 9, and the plate 9 may be formed in an upwardly opening shape that accommodates the fixing jig 31.
(28) The processing tool 10 is moved by a radial direction movement mechanism 14 in a radial direction of the rotating shaft 21 and is also moved by an axial direction movement mechanism 13 through the radial direction movement mechanism 14 in the axial direction of the rotating shaft 21. The axial direction movement mechanism 13 extends so as to couple the base 11 and the frame 12. In the present embodiment, used as the processing tool 10 is a roller that follows the rotation of the plate 9 to rotate. However, the processing tool 10 is not limited to the roller and may be, for example, a spatula. Further, a plurality of processing tools 10 may be used.
(29) In the present embodiment, the processing tool 10 is moved by the radial direction movement mechanism 14 from a specific position of the plate 9 to a peripheral portion 93 of the plate 9 while being pressed downward by the axial direction movement mechanism 13 against the plate 9. To be specific, the predetermined range A formed into the tapered shape 95 is from the specific position of the plate 9 to the peripheral portion 93.
(30) The specific position that is an inside end of the predetermined range A is desirably a position located away from a peripheral portion of the receiving jig 22 outward in the radial direction such that the rear-side heater 4 can be disposed at a position immediately under the specific position. However, if the heating at the specific position can be adequately performed even when the rear-side heater 4 is disposed at a position displaced outward in the radial direction from the position immediately under the specific position, the specific position may coincide with the peripheral portion of the receiving jig 22. When a mandrel is used, the specific position coincides with a corner portion between a forming surface that is a side surface of the mandrel and a supporting surface that receives the plate 9.
(31) The rear-side heater 4 and the front-side heater 5 are moved by a radial direction movement mechanism 16 in the radial direction of the rotating shaft 21 and are also moved by an axial direction movement mechanism 15 through the radial direction movement mechanism 16 in the axial direction of the rotating shaft 21. The axial direction movement mechanism 15 extends so as to couple the base 11 and the frame 12.
(32) For example, a displacement meter (not shown) is attached to at least one of the rear-side heater 4 and the front-side heater 5. The displacement meter measures a distance to the transform target portion 92 of the plate 9. The rear-side heater 4 and the front-side heater 5 are moved in the axial direction and radial direction of the rotating shaft 21 such that a measured value of the displacement meter becomes constant.
(33) The positional relationship between the rear-side and front-side heaters 4 and 5 and the processing tool 10 is not especially limited as long as they are located on substantially the same circumference around the center axis 20 of the rotating shaft 21. For example, the rear-side and front-side heaters 4 and 5 may be separated from the processing tool 10 in a circumferential direction of the rotating shaft 21 by 180.
(34) As shown in
(35) Similarly, as shown in
(36) As described above, each of the rear-side heater 4 and the front-side heater 5 includes the coil portion (42 or 52) extending in the rotational direction of the plate 9. Therefore, the local heating of the transform target portion 92 of the plate 9 can be continuously performed in the rotational direction of the plate 9. Thus, excellent formability can be obtained.
(37) An alternating voltage is applied to the electric conducting pipe 41 of the rear-side heater 4 and the electric conducting pipe 51 of the front-side heater 5. A frequency of the alternating voltage is not especially limited but is desirably a high frequency of 5 k to 400 kHz. To be specific, the induction heating performed by the rear-side heater 4 and the front-side heater 5 is desirably high frequency induction heating.
(38) (3) Thickening Step
(39) In the thickening step, the peripheral portion 93 that is a distal end of the tapered shape 95 of the plate 9 is expanded inward while rotating the plate 9 by a preliminary formed body manufacturing device 111 shown in
(40) The preliminary formed body manufacturing device 1B shown in
(41) The forming roller 6 is attached to the radial direction movement mechanism 14 through a bracket 7. Specifically, as shown in
(42) More specifically, the forming roller 6 includes a cylindrical press surface 61 and a guide surface 62. The press surface 61 extends in a rotation axis direction X of the forming roller 6. The guide surface 62 spreads outward in the radial direction from one end portion of the press surface 61. In the present embodiment, the guide surface 62 forms an obtuse angle together with the press surface 61. However, the guide surface 62 may be vertical to the press surface 61 or may form an acute angle together with the press surface 61.
(43) For example, the forming roller 6 is pressed against the peripheral portion 93 in a state where the rotation axis direction X is made parallel to the thickness direction of the peripheral portion 93 of the plate 9 such that the guide surface 62 faces an obliquely lower side. At this time, the forming roller 6 is moved by the radial direction movement mechanism 14 and the axial direction movement mechanism 13 in, for example, a direction slightly close to a horizontal direction relative to a direction orthogonal to the thickness direction of the peripheral portion 93. With this, as shown in
(44) The preliminary formed body 98 shown in
(45) It should be noted that a step of removing the residual stress from the plate 9 by the heat treatment may be performed between the ironing step and the thickening step. According to this configuration, risks such as deformation and breaks of the plate 9 in the thickening step can be reduced.
(46) As explained above, according to the method of manufacturing the preliminary formed body of the present embodiment, a portion of the preliminary formed body 98 which portion includes the tapered portion 81 of the axisymmetrical component 8 can be formed by the ironing step, and a portion of the preliminary formed body 98 which portion includes the inward flange portion 82 of the axisymmetrical component 8 can be formed by the thickening step. Therefore, the preliminary formed body 98 for the axisymmetrical component 8 including the inward flange portion 82 can be manufactured from the plate 9.
(47) Regarding steel, an aluminum alloy, and the like, as the temperature increases, the yield strength (stress at which plastic deformation begins) gradually decreases. However, regarding the titanium alloy, as shown in
(48) Modified Example
(49) In the ironing step, an auxiliary tool that supports a portion of the plate 9 which portion is located outside the transform target portion 92 may be used. The auxiliary tool may be disposed at the rear side of the plate 9 so as to prevent downward deformation of the portion of the plate 9 which portion is located outside the transform target portion 92 or may be disposed at the front side of the plate 9 so as to prevent upward deformation of the portion of the plate 9 which portion is located outside the transform target portion 92. Or, the auxiliary tools may be disposed at both the rear side and front side of the plate 9 so as to sandwich the portion of the plate 9 which portion is located outside the transform target portion 92. One example of the auxiliary tool is a roller.
(50) In the thickening step, the auxiliary roller may be auxiliarily pressed against the peripheral portion 93 from the front side of the plate 9 so as to prevent the peripheral portion 93 of the plate 9 from being expanded outward by the pressing of the forming roller 6. For example, a rotation axis direction of the auxiliary roller may be orthogonal to the thickness direction of the peripheral portion 93 such that an outer peripheral surface of the auxiliary roller contacts the peripheral portion 93 or may be parallel to the thickness direction of the peripheral portion 93 such that one of both end surfaces of the auxiliary roller contacts the peripheral portion 93.
(51) Embodiment 2
(52) In Embodiment 2, the preliminary formed body 98 shown in
(53) In the present embodiment, since the cutting step is performed, the shape of the plate 9 is not limited to a circular shape. For example, the shape of the plate 9 may be a polygonal shape such as a triangular shape or a trapezoidal shape or may be an elongated shape such as a rectangular shape or an oval shape.
(54) The ironing step of the present embodiment is different from the ironing step of Embodiment 1 regarding the predetermined range A formed into the tapered shape 95 in the plate 9. Specifically, in the present embodiment, as shown in
(55) In the cutting step, the portion of the plate 9 which portion is located outside the predetermined range A is cut. A direction of this cutting may be a horizontal direction as shown in
(56) The thickening step of the present embodiment is the same as the thickening step of Embodiment 1, and the reference sign of the peripheral portion of the plate 9 in
(57) The present embodiment can obtain the same effects as Embodiment 1. Further, according to the method of manufacturing the preliminary formed body 98 of the present embodiment, the peripheral portion 93 of the plate 9 remains in the ironing step, so that the ironing can be easily performed. It should be noted that when the predetermined range A is from the specific position of the plate 9 to the peripheral portion 93 as in Embodiment 1, the diameter of the plate 9 can be reduced. As a result, the amount of material used can be reduced to a minimum amount.
(58) Other Embodiments
(59) The present invention is not limited to the above embodiments, and various modifications may be made within the scope of the present invention.
(60) For example, as shown in
(61) In the thickening step, the forming roller 6 is pressed against the peripheral portion (93 or 95a) that is the distal end of the tapered shape while swinging the forming roller 6 on a vertical surface spreading through the center axis 20 of the rotating shaft 21. With this, the peripheral portion can be expanded in not only the thickness direction of the peripheral portion as shown in
(62) Each of the rear-side heater 4 and the front-side heater 5 does not necessarily have to include the coil portion (42 or 52) having the doubled circular-arc shape. For example, one or each of the rear-side heater 4 and the front-side heater 5 may include a plurality of circular coil portions arranged in a circular-arc shape or may include only one circular coil portion.
INDUSTRIAL APPLICABILITY
(63) The present invention is useful when manufacturing a preliminary formed body for an axisymmetrical component used in various machines and is extremely useful especially when the axisymmetrical component is an aircraft component.
REFERENCE SIGNS LIST
(64) 10 processing tool
(65) 4 rear-side heater
(66) 42 coil portion
(67) 5 front-side heater
(68) 52 coil portion
(69) 6 forming roller
(70) 61 press surface
(71) 62 guide surface
(72) 8 axisymmetrical component
(73) 81 tapered portion
(74) 82 flange portion
(75) 9 plate
(76) 92 transform target portion
(77) 93 peripheral portion
(78) 95 tapered shape
(79) 95a peripheral portion