BENDING DIE AND METHOD FOR MANUFACTURING BENDING DIE
20200361134 ยท 2020-11-19
Inventors
- Jining LIU (Koga-shi, Ibaraki, JP)
- Kazuhiko NAKAZATO (Koga-shi, Ibaraki, JP)
- Takaaki HABU (Koga-shi, Ibaraki, JP)
Cpc classification
B29C53/083
PERFORMING OPERATIONS; TRANSPORTING
B22F10/38
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B22F10/85
PERFORMING OPERATIONS; TRANSPORTING
B29C33/3835
PERFORMING OPERATIONS; TRANSPORTING
B29C64/393
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
B29C33/3842
PERFORMING OPERATIONS; TRANSPORTING
B29C33/02
PERFORMING OPERATIONS; TRANSPORTING
B33Y50/02
PERFORMING OPERATIONS; TRANSPORTING
B29C33/42
PERFORMING OPERATIONS; TRANSPORTING
Y02P10/25
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
B29C53/08
PERFORMING OPERATIONS; TRANSPORTING
B29C33/38
PERFORMING OPERATIONS; TRANSPORTING
B29C33/42
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y50/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An object of the present invention is to propose a bending die capable of creating a product without causing buckling, even if the shape of the product is long or bent freely in three-dimensional space. The bending die according to the present invention is a bending die having a smooth shape formed by virtually and continuously moving, in three-dimensional space, a profile including a substantially circular-shaped first closed curve having a recess portion, wherein an opening width b of the recess portion is shorter than a groove width a of the recess portion, a tube insetting portion is formed by the recess portion, and the smooth shape is realized and created in real space using a three-dimensional printing technique.
Claims
1. A bending die for inset molding of a tube, the bending die having a smooth shape formed by virtually and continuously moving, in three-dimensional space, a profile including a substantially circular-shaped first closed curve having a recess portion, wherein an opening width of the recess portion is shorter than a groove width of the recess portion, a tube insetting portion is formed by the recess portion, and the smooth shape is realized and created in real space using a three-dimensional printing technique.
2. The bending die according to claim 1, wherein the virtual, continuous movement in three-dimensional space is simple parallel translation of the profile, a turning or tilting movement which is a combination of a change in a direction of a profile surface and parallel translation, a twisting movement which is a combination of in-plane rotation and parallel translation of the profile surface, or a combination of all these movements.
3. The bending die according to claim 1, wherein two regions adjacent to both sides of an opening of the recess portion of the profile are gentle curves or straight lines, and two regions adjacent to both sides of a rear-side section of the opening of the recess portion of the profile are gentle curves or straight lines.
4. The bending die according to claim 1, which is formed by connecting a plurality of unit bending dies in series, wherein each of the unit bending dies has, at an end portion thereof, a connection for connecting each of the unit bending dies to a unit bending die adjacent thereto.
5. The bending die according to claim 1, wherein the profile including the first closed curve internally includes a second closed curve composed of a closed curve, and a heat medium hole is formed by the second closed curve.
6. The bending die according to claim 5, wherein the second closed curve has a protrusion therein.
7. The bending die according to claim 1, which is created by a three-dimensional printing technique using metal.
8. A method for manufacturing a bending die, comprising the steps of: designing a smooth shape of a bending die for inset-molding of a tube, the smooth shape being formed by virtually and continuously moving, in three-dimensional space, a profile including a substantially circular-shaped first closed curve having a recess portion; obtaining data of the smooth shape; and creating a bending die having the smooth shape based on the data by using a three-dimensional printing technique.
9. The method for manufacturing a bending die according to claim 8, further comprising the steps of: creating a number of bending dies by means of the three-dimensional printing technique; and creating a bending die for a long product by connecting these bending dies.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
DESCRIPTION OF EMBODIMENTS
[0036] A bending die and a method for manufacturing the bending die according to the present invention are described hereinafter with reference to the drawings.
[0037]
[0038] Note that in this specification, to avoid complication, corresponding members in different examples of the embodiment are described using the same reference numerals.
[0039] A unit bending die 1 of
[0040] A tube insetting recess portion 2a is formed in the tube insetting portion 2. It is preferred that the cross-sectional shape of the recess portion 2a be substantially constant throughout the entire recess portion 2a in order to inset an unshown tube whose cross-sectional shape is substantially constant throughout the entire tube. Therefore, cross-sectional shapes (particularly the cross-sectional shape of the insetting recess portion 2a) perpendicular to a longitudinal direction of the unit bending die 1 are substantially constant at all times. Specifically, cross sections 5a, 5b, 5c, 5d, 5e of different parts of the unit bending die 1 shown in
[0041] The shapes of the unit bending dies 1, 1 illustrated in
[0042] As shown in
[0043] In order to make the following description more easily understandable, two orthogonal directions are set within a plane 11 including the profile 5. As shown in
[0044] The parallel translation of the profile within three-dimensional space means simply moving the plane 11 including the profile 5 in the z direction. A turning movement Ry means rotating the direction of the plane 11 of the profile about the direction of the opening 7 of the profile 5 (y direction) or a combination of this rotation and parallel translation. A tilting movement Rx means rotating the direction of the plane 11 of the profile about the direction perpendicular to the direction of the opening 7 of the profile 5 (x direction) or a combination of this rotation and parallel translation. In-plane rotation Rz of the profile surface means rotating the profile about the direction (x direction) perpendicular to the direction of the opening 7 of the profile 5 without changing the direction of the plane 11 of the profile, and the twisting movement is a combination of the in-plane rotation Rz and parallel translation.
[0045] The movements of the profile in the present invention are not limited to the movements described above, and may be any movement that is continuous, smooth, and unidirectional without changing the shape of the profile 5. For example, movements or the like that combine the movements described above are included as well.
[0046] For example, a section from the profile surface 5a to the next profile surface 5b at the left end of
[0047] Moreover, a section from the profile surface 5f to the next profile 5g at the left end of
[0048] These movements are virtually executed during a design process of the bending die. Based on these virtual movements, the shape of the bending die is determined, to create a design drawing thereof, numerical data concerning the shape, and the like. Based on the design drawing and the data, the bending die or unit bending die is created by a three-dimensional printing technique using metal (such as aluminum, stainless steel), a heat resistant resin, or the like. Since the three-dimensional printing technique using metal and other materials is well-known, a detailed description thereof is omitted herein.
[0049] Since the three-dimensional printing technique is employed, the tube insetting portion 2, the attachment 3, the connection 4, and other members accompanying the unit bending die 1 shown in
[0050] The unit bending die 1 of
[0051]
[0052] When insetting a thermoplastic resin tube into the bending die 1, the tube is often preheated, and the tube is often cooled in order to promptly remove the formed product from the bending die 1. If the temperature of the bending die 1 is low even after preheating the tube, the temperature of the tube drops. Consequently, the tube cannot be formed as planned. In addition, even when trying to promptly cool the product, cooling may take a long time if the temperature of the bending die 1 is high. Therefore, it is preferred that the temperature of the bending die 1 be controlled in order to avoid such issues.
[0053] The bending die 1 according to the present invention can be provided therein with a heat medium hole 13 in which a temperature control medium (liquid or gas) for heating or cooling the bending die.
[0054]
[0055] Since the heat medium hole 13 does not function without connecting the bending dies 1, 1 adjacent to each other, the heat medium hole 13 is formed in the connection 4 as well. As shown in
[0056] An O-ring seat 13c is provided in the opening 13b of the heat medium hole 13 in the connection of the bending die 1 shown in
[0057] Supply/discharge ports 14 for supplying or discharging the heat medium to the heat medium holes 13 are formed in the unit bending dies that are located at both ends of a series of unit bending dies forming the bending die. An example of the supply/discharge ports 14 is illustrated in
[0058] The series of unit bending dies connected serially by the connections 4 is fixed to a frame, not shown, which supports the device at all or a part of sections of the connections 4 or the attachments 3. The unit bending dies are attached to the frame, not shown, as appropriate by means of screws, clipping, or welding depending on the condition of the site.
[0059]
[0060] When insetting the thermoplastic resin tube into bent portions of the tube insetting portions 2, the tube often becomes flat or buckles. Such a phenomenon tends to occur when the y-direction of the profile surface of each tube insetting portion (referred to as opening direction) is not present in a plane that includes the center line of the tube insetting portions on both sides of the bent portions of the bending die (referred to as bending plane). On the other hand, such a phenomenon does not occur often when the angle between the bending plane and the opening direction (referred to as insertion angle) is 0 or 180.
[0061] When creating a product having a complex shape such as the one shown in
[0062] Furthermore, the bending die 1 according to the present invention has the effect of enabling the use of a self-propelled tube insetting device. To explain this effect, a correspondence relationship in shapes between the profile 5 and the bending die or unit bending die 1 is explained first. The recess portion 6 and the opening 7 of the first closed curve C1 of the profile 5 of
[0063] The shape formed by moving the profile 5 of
[0064] Instead of a hand or a slider, a slider can be moved along these upper rails 17, 17 and the lower rails 18, 18. For example, a slider sliding on the upper rails 17, 17 and a roller rolling on the lower rails 18, 18 can be provided, and a traveling body that insets the tube can be moved by rotating the roller while holding the bending die 1 between the slider and the roller; in this manner, the tube can be insetted without using a human hand.
[0065] Next is described the shape of the second closed curve C2 for forming the heat medium hole 13 for managing the temperature of the bending die 1. The second closed curve C2 composed of a closed curve is formed inside the first closed curve C1 of the profile 5, and the heat medium hole 13 is formed by the second closed curve C2 as described above. Since the heat medium is for controlling the temperatures of the bending die 1 and the tube insetted therein, it is preferred that the heat medium hole 13 with high heat-exchange efficiency be formed. In order to do so, ridges for increasing the surface area of the heat medium hole 13 are formed on an inner surface of the hole. In other words, it is preferred that the second closed curve C2 be provided with roughness to increase the length of the curve.
[0066]
[0067]
[0068] In this measurement, the temperatures are controlled by feeding the heat medium to the inside of the tube without heating or cooling the bending dies A and B.
[0069] The followings can be understood from
[0070] 1) The temperatures A2 and B2 of the center of the lower surface of the tube drop immediately after insetting the tube and then rise gradually.
[0071] 2) In both bending dies A, B, the difference in temperature between the upper surface and the lower surface of the tube (A3A2), (B3n2) was 40 C. or higher until heating of the tube is completed, affecting the stability of the shape of the tube.
[0072] 3) After the tube is insetted into each bending die, the rate of temperature rise at B2 of the lower surface of the tube is four times the rate of temperature rise at A2.
[0073] In conclusion, it is understood that even when the temperature of the bending die is not controlled, the hollow bending die B has a faster temperature response than the solid bending die A.
[0074] This measurement example indicates that a fast temperature response can be obtained when forming the thermoplastic resin tube using the bending die according to the present invention especially when using the hollow bending die.
[0075]
[0076] The temperature measurement points B1, B2, B3 are the three points shown in
[0077] The followings can be understood from
[0078] 1) When the tube comes into contact with the preheated bending die when insetting the tube into the bending die, the temperature change at B2con is smaller than that of B2non.
[0079] 2) During the period between after insetting the tube and the completion of heating the tube, the temperature difference (B2conB3con) is smaller than the temperature difference (B2nonB3non), making the shape of the tube stable.
[0080] 3) When the tube is cooled, the temperatures B2con, B3con of the entire tube when the temperature of the bending die is controlled (controlled) reach the glass transition temperature of the material (T=46 C.) at a speed 1.5 times faster than the temperatures B2non, B3non of the entire tube when the temperature of the bending die is not controlled (non-controlled). This measurement example indicates that it is possible to realize the effect of being able to prevent unwanted deformation of the tube and shorten the cooling period after forming the tube, because, when forming a thermoplastic resin tube by using the bending die of the present invention that is provided with the heat medium holes, and when the temperature of the forming die is controlled, the tube can be formed while maintaining the condition that the temperature of the tube is uniform.
[0081] Note that the temperature change at each of the points described above naturally changes depending on the types, temperatures, flow rate, and other conditions of the heat medium fed to the inside of the tube and the medium fed into the heat medium holes of the bending die, in order to control the temperature of the tube. However, it is conceivable that the effects described above can be achieved in any case.
[0082] The bending die according to the present invention for forming a tube by bending, insetting, and heating/cooling the tube and the method for manufacturing the bending die were described above in detail. However, needless to say, objects to which the present invention can be applied are not limited to those illustrated in the drawings; the present invention can be implemented as other forms of devices and methods with the same technical idea.
INDUSTRIAL APPLICABILITY
[0083] According to the bending die of the present invention, a product that is created by insetting a thermoplastic resin tube into the bending die can be produced even if the shape of the product exceeds two meters in length or even if the product has a complex shape that is bent freely in three-dimensional space. Thus, the present invention can be widely used for bending a variety of resin or metal pipes and hoses that are used particularly as automobile parts and the like.
REFERENCE SIGNS LIST
[0084] 1 Bending die, unit bending die [0085] 2 Tube insetting portion [0086] 2a Insetting recess portion [0087] 3 Attachment [0088] 4 Connection [0089] 5 Profile [0090] 5a to 5j, Profile surface [0091] 6 Recess portion [0092] 7 Opening [0093] 8 Upper rail portion [0094] 9 Rear-side section of opening [0095] 10 Lower rail portion [0096] 11 Plane including profile [0097] 12a Screw [0098] 12b Nut [0099] 13, 13a Heat medium hole [0100] 13h Opening [0101] 13d O-ring [0102] 14 Supply/discharge hole [0103] 17 Upper rail [0104] 18 Lower rail [0105] C1 First closed curve [0106] C2 Second closed curve [0107] 20 Tube