Metal product having internal space formed therein and method of manufacturing thereof
10479010 ยท 2019-11-19
Assignee
Inventors
Cpc classification
B21D37/20
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B29C45/7312
PERFORMING OPERATIONS; TRANSPORTING
B22F5/10
PERFORMING OPERATIONS; TRANSPORTING
B23P17/00
PERFORMING OPERATIONS; TRANSPORTING
Y10T29/49826
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
B22F10/28
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
B22F10/25
PERFORMING OPERATIONS; TRANSPORTING
B29C33/3842
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
Y10T428/12
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
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B23P17/00
PERFORMING OPERATIONS; TRANSPORTING
B22F5/10
PERFORMING OPERATIONS; TRANSPORTING
B22F3/105
PERFORMING OPERATIONS; TRANSPORTING
B22F3/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
B21D37/20
PERFORMING OPERATIONS; TRANSPORTING
B23P15/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
There is provided a metal product having an internal space formed therein, allowing for improvements in the flow of a coolant in the internal space, such as a cooling channel and an increase in cooling efficiency, and a method of manufacturing thereof. The metal product includes a body part having a first space formed therein; a space formation member having a second space formed therein, mounted on the body part to be communicated with the first space; and a finishing part forming an exterior by covering the space formation member in a state in which the space formation member is mounted on the body part.
Claims
1. A metal product having an internal space formed therein, the metal product comprising: a body part having a first space formed therein; a space formation member having a second space formed therein, mounted on the body part to be communicated with the first space of body part to form the internal space therein; and a finishing part forming an exterior by covering the space formation member in a state in which the space formation member is mounted on the body part; wherein the body part includes a mounting groove having the space formation member mounted therein, and the space formation member has only a part thereof mounted in the mounting groove and a remaining part thereof exposed outwardly of the body part, wherein the body part and the finishing part form an exterior of the metal product, the space formation member is not exposed to an external surface of the body part and the finishing part, and the finishing part is built up to be metallically bonded to the body part and the space formation member.
2. The metal product of claim 1, wherein the space formation member is made as a single member having the second space formed therein.
3. The metal product of claim 1, wherein the space formation member is formed by coupling two or more separation members, and has the second space formed therein by the coupling of the more than two separation members.
4. The metal product of claim 1, wherein the space formation member has the second space formed in a lower portion thereof in communication with the first space of body part to form the internal space, to thereby form an overhang structure having an empty space formed therebelow.
5. The metal product of claim 1, wherein the metal product is a mold or a variety of metal products requiring cooling, the space formation member is made of a metallic material, and the first space and the second space are a cooling channel.
6. The metal product of claim 5, wherein the space formation member forms a curvature portion in which a direction of the cooling channel is altered, or an overhang portion having an empty space formed in a lower side in the cooling channel.
7. The metal product of claim 1, wherein the space formation member is made of a material identical to that of the body part or a material having corrosion resistance higher than the body part.
8. The metal product of claim 1, wherein the finishing part is formed by at least one of a direct metal fabrication (DMF) technique, a multilayer laser cladding technique, a selective laser sintering (SLS) technique, and a selective laser melting (SLM) technique.
9. A metal product having an internal space formed therein, the metal product comprising: a body part having a first space formed therein; a space formation member having a second space formed therein, mounted on the body part to be communicated with the first space of body part to form the internal space therein; and a finishing part forming an exterior by covering the space formation member in a state in which the space formation member is mounted on the body part; wherein the body part includes a mounting groove having the space formation member mounted therein, and the space formation member is not exposed outwardly of the mounting groove, wherein the body part and the finishing part form an exterior of the metal product, the space formation member is not exposed to an external surface of the body part and the finishing part, and the finishing part is built up to be metallically bonded to the body part and the space formation member.
10. The metal product of claim 9, wherein the space formation member is made as a single member having the second space formed therein.
11. The metal product of claim 9, wherein the space formation member is formed by coupling two or more separation members, and has the second space formed therein by the coupling of the more than two separation members.
12. The metal product of claim 9, wherein the space formation member has the second space formed in a lower portion thereof in communication with the first space of body part to form the internal space, to thereby form an overhang structure having an empty space formed therebelow.
13. The metal product of claim 9, wherein the metal product is a mold or a variety of metal products requiring cooling, the space formation member is made of a metallic material, and the first space and the second space are a cooling channel.
14. The metal product of claim 13, wherein the space formation member forms a curvature portion in which a direction of the cooling channel is altered, or an overhang portion having an empty space formed in a lower side in the cooling channel.
15. The metal product of claim 9, wherein the space formation member is made of a material identical to that of the body part or a material having corrosion resistance higher than the body part.
16. The metal product of claim 9, wherein the finishing part is formed by at least one of a direct metal fabrication (DMF) technique, a multilayer laser cladding technique, a selective laser sintering (SLS) technique and a selective laser melting (SLM) technique.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
Mode for the Invention
(11) Terms used in the specification are merely used for the explanation of specific embodiments according to the present invention, and are not intended to limit the scope of the present invention. In addition, a singular expression may include a plural expression in the specification.
(12) Hereinafter, embodiments of the present invention will now be described in detail with reference to the accompanying drawings.
(13)
(14) The invention may, however, be embodied in many different forms and should not be construed as being limited to the embodiments illustrated in the drawings. In particular, while
(15) As illustrated in
(16) Referring to
(17) First, as illustrated in
(18) The metal product 100 according to the embodiment of the present invention may be a mold or a variety of metal products requiring surface and/or volume cooling (for example, a machine tool and a device having a cooling channel, or the like), and the use or the shape of the metal product 100 is not particularly limited as long as it has an internal space formed therein.
(19) For convenience of explanation, the metal product 100 functioning as a mold and the internal space used as a cooling channel will be mainly described by way of example.
(20) The body part 110 constituting the majority of the metal product 100 has the first space 111 formed therein.
(21) The body part 110 is formed by a conventional manufacturing process (for example, cutting, casting, or the like), AF processing (DMF processing, multilayer laser cladding processing, or the like), or any combination of processing processes thereof, and has the first space 111 formed therein, such as a cooling channel.
(22) In this case, the first space 111 formed in the body part 110 may have a rectilinear figure or a simple shape, and may be formed through simple machining, such as drilling.
(23) Therefore, the body part 110 constituting the majority of the metal product 100 can be easily formed by a conventional manufacturing process or AF processing, and the first space 111 can be formed easily therein through simple processing. As a result, the manufacturing of the body part 110 can be facilitated, thereby leading to a reduction in manufacturing costs and time.
(24) In particular, in the metal product 100, an overhang structure or a portion in which the direction of a fluid flow is altered can be formed as the space formation member 120 as described later. Therefore, since the body part 110 does not include the overhang structure, the body part 110 having the first space 111 formed therein can be manufactured through an AF technique, such as a DMF technique, a multilayer laser cladding technique, or the like.
(25) In addition, as illustrated in
(26) In addition, as the mounting groove 112 is exposed to the surface of the body part 110, the mounting groove 112 can be easily formed through simple cutting.
(27) Furthermore, the space formation member 120 may have the second space 125 formed therein and connected to the first space 111 formed in the body part 110, and may be mounted in the mounting groove 112 of the body 110.
(28) In this case, the second space 125 may have a cross-sectional area and a cross-sectional shape identical to those of the first space 111, in order to minimize passage resistance applied to a coolant flowing through the first space 111 and the second space 125. In addition, all of the first space 111 and the second space 125 may have a circular cross-sectional structure.
(29) As illustrated in
(30) In this manner, when the space formation member 120 is formed to be divided into a plurality of portions, the second space 125 having a complex shape can be manufactured. That is, when the space formation member 120 is formed to be divided into a plurality of portions, the curved portion (a portion having a curved surface) of the internal space, in which the direction of a cooling channel is altered, can be easily formed, as illustrated in
(31) The space formation member 120 may be formed by a conventional manufacturing process (for example, cutting, casting, or the like), AF processing (DMF processing, multilayer laser cladding processing, or the like), or any combination of processing processes thereof, similarly to the body part 110. In addition, as the second space 125 may be exposed to the outside of separation members 121 and 122 forming the space formation member 120 as illustrated in
(32) In this manner, the second space 125 formed in the space formation member 120 may have a curved surface portion communicating with the first space 111, whereby an internal space having a complex configuration, as well as simple configuration can be easily formed in the metal product 100.
(33) In addition, when the space formation member 120 is made of a material identical to that of the body part 110, or that has corrosion resistance higher than the body part 110, corrosion defects caused by the mounting of the space formation member 120 on the body part 110 can be solved. That is, in the case of manufacturing a mold by using a SLS technique and a SLM technique according to the related art, a corrosion rate of the manufactured cooling channel is rapid due to the rough surface thereof. Furthermore, in the case of using additional low-melting point metal powder in order to form a cooling channel through the DMF and multilayer laser cladding techniques, the low-melting point metal remains in the cooling channel without being completely removed, thereby causing corrosion (in particular, galvanic corrosion). However, according to an embodiment of the present invention, since the material of the space formation member 120 is identical to that of the body part 110 or has excellent corrosion resistance, corrosion problems can be solved.
(34) The finishing part 130 forms the exterior of the metal product 100 by covering the space formation member 120 mounted on the body part 110.
(35) The finishing part 130 may be metallically bonded to the body part 110 and the space formation member 120 in such a manner that the space formation member 120 is not detached from the body part 110 and the finishing part 130 is entirely coupled to the space formation member 120.
(36) That is, when the finishing part 130 is metallically bonded to the body part 110 and the space formation member 120, the space formation member 120 is entirely coupled to the finishing part 130 to thereby prevent the detachment of the space formation member 120 and allow for an efficient thermal transfer between a coolant flowing through the second space 125 and the surface of the finishing part 130.
(37) In this case, the mounting groove 112 of the body part 110 may be formed to have a minimum depth such that the space formation member 120 can be positioned therein. Therefore, the majority of the area of the space formation member 120 is exposed outwardly of the mounting groove 112 and entirely coupled to the finishing part 130, thereby leading to maximized cooling efficiency. Meanwhile, in the case of forming a cooling channel by using a copper tube according to the related art, as illustrated in
(38) In addition, when an internal space (a cooling channel) is formed by using a copper tube according to the related art, as illustrated in
(39) In the meantime, in order to achieve the forgoing metallic bonding, a DMF technique or multilayer laser cladding technique may be used. In this case, the DMF technique or the multilayer laser cladding technique may also be advantageously used in the event that the surfaces of the space formation member 120 and/or the body part 110 have a 3D curved shape.
(40) However, in the event that the surfaces of the space formation member 120 and/or the body part 110, provided to have the finishing part formed thereon, have a planar 2D shape, a SLS or SLM technique can also be used in order to form the finishing part 130.
(41) In addition to the AF technique as described above, a well-known method of welding, plating, depositing, thermal spraying, or the like, can be used, in order to form the finishing part 130.
(42) Moreover, before the formation of the finishing part 130, the space formation member 120 may be mounted in the mounting groove 112 and continuously fixed thereto through a method, such as DMF, multilayer laser cladding, welding, or the like. When the space formation member 120 is formed of the at least two separation members 121 and 122, in order to stably maintain the shape of the second space (cooling channel) 125 during the formation of the finishing part 130, a boundary part L may be bonded to the space formation member 120 through DMF, multilayer laser cladding, welding, or the like, before or after mounting the space formation member 120 in the mounting groove 112.
(43) After the formation of the finishing part 130, a post machining process for obtaining the smooth surface of the finishing part 130 may be added.
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(45) Next, a metal product 100 having an internal space formed therein according to another embodiment of the present invention will be explained with reference to
(46)
(47) As illustrated in
(48) Alternatively, as illustrated in
(49) In addition, in the case of
(50) In this manner, the finishing part 130 covers the space formation member 120, such that the cooling channel can be configured to allow the metal product 100 to have a uniform surface temperature and therefore efficient surface cooling can be achieved. In particular, metallic bonding between the majority of the space formation member 120 exposed from the body part 110 and the finishing part 130 is attained by minimizing the depth of the mounting groove 112, allowing for maximized cooling efficiency.
(51) The metal product 100 having an internal space formed therein according to another embodiment of the present invention will be explained with reference to
(52) In the case of
(53) As illustrated in detail in
(54) In addition, in the case of the metal product 100 having an internal space formed therein as illustrated in
(55) Next, the metal product 100 having an internal space formed therein according to another embodiment of the present invention will be explained with reference to
(56)
(57) In the case of
(58) However, in a portion of the metal product, in which cooling is not required or the direction of a cooling channel only needs to be diverted (for example, a portion apart from the surface of the metal product), the space formation member 120 can be mounted in the state of being sunk in the mounting groove 112, similarly to
(59) Finally,
(60) As illustrated in
(61) However, the shape of the metal product illustrated in
(62) Next, referring to
(63) The method (S100) of manufacturing the metal product 100 having an internal space formed therein comprises preparing (S120) the body part 110 having the first space 111 formed therein, preparing (S130) the space formation member 120 made of a metallic material and having the second space 125 formed therein, mounting (S140) the space formation member 120 on the body part 110 such that the first space 111 and the second space 125 are in communication with each other, and forming (S150) the finishing part 130 corresponding to the exterior of the metal product 100 by covering the space formation member 120. The method (S100) may further comprise trimming or post machining (S160) for obtaining the smooth surface of the finishing part 130, after the forming of the finishing part 130.
(64) In this case, the order of the operations of preparing (S120) the body part 110 and the preparing (S130) the space formation member 120 may be changed.
(65) First, the preparing (S120) of the body part 110 includes forming (S110) the exterior of the body part 110 by using a conventional manufacturing process (for example, cutting, casting, or the like), AF processing (DMF processing, multilayer laser cladding processing, or the like), or any combination of processing processes thereof (
(66) Meanwhile, in the metal product 100, since an overhang structure or a portion in which the direction of a channel is altered may be formed as the space formation member 120 as previously described, the shape of the body part 110 can be very simple and easily manufactured by using an AF technique, such as a DMF or multilayer laser cladding technique. In this case, since the body part 110 does not have the overhang structure as mentioned, the body part 110 having the first space 111 and the mounting groove 112 also formed therein, can be easily manufactured by using an AF technique.
(67) In addition, in the preparing (S130) of the space formation member 120, the exterior of the space formation member 120 can be formed by using a conventional manufacturing process (for example, cutting, casting, or the like), AF processing (DMF processing, multilayer laser cladding processing, or the like), or any combination of processing processes thereof, and then the second space 125 is formed through additional cutting process (
(68) Thereafter, the space formation member 120 is mounted in the mounting groove 112 of the body part 110 (S140,
(69) In this manner, the finishing part 130 is formed in a state in which the space formation member 120 is mounted on the body part 110, to thereby form the exterior of the metal product (
(70) Further, as illustrated in
(71) While the present invention has been shown and described in connection with the embodiments, it will be apparent to those skilled in the art that modifications and variations can be made without departing from the spirit and scope of the invention as defined by the appended claims.