Fabrication method of magnetic device
10259172 ยท 2019-04-16
Assignee
Inventors
- Wei-Chin Huang (Tainan, TW)
- Chuan-Sheng Chuang (Tainan, TW)
- Chih-Hsien Wu (Changhua County, TW)
- Ching-Chih Lin (Tainan, TW)
- Wen-Hsi Lee (Kaohsiung, TW)
- Kai-Jyun Jhong (Kaohsiung, TW)
Cpc classification
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y70/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C67/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/153
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A fabrication method of magnetic device is provided. A magnetic material is provided. A portion of the magnetic material is selectively irradiated by an energy beam, and reactive gas is introduced simultaneously. The magnetic material being irradiated is melted and solidified to form a solidified layer. An outer layer of the solidified layer reacts with the reactive gas to form a barrier layer, so as to form a magnetic unit including the solidified layer and the barrier layer. It is determined whether the manufacturing process of the same layer is finished, if not, the energy beam is moved to the other portion of the magnetic material. The above step is repeated to overlap multiple magnetic units to form a magnetic layer. If yes, the flow returns to the 1.sup.st step to provide another magnetic material to the magnetic layer. The above steps are repeated to form a 3D magnetic device.
Claims
1. A fabrication method of a magnetic device, comprising: providing a magnetic material; selectively irradiating a portion of the magnetic material by using an energy beam, and introducing a reacting gas externally and simultaneously, such that during a process that the energy beam melts and solidifies the magnetic material, the magnetic material is in an environment filled with the reacting gas, and the portion of the magnetic material being irradiated is melted and solidified to form a solidified layer, wherein an outer layer of the solidified layer reacts with the reacting gas to form a barrier layer on a surface of the solidified layer, so as to form a magnetic unit composed of the solidified layer and the barrier layer; determining whether a manufacturing process of a same layer is ended, wherein if not, a path of the energy beam is controlled to move the energy beam to another portion of the magnetic material, and the step of forming the magnetic unit having the barrier layer coated on the surface of the solidified layer is repeated, and a plurality of magnetic units each having the barrier layer coated on the surface of the solidified layer are mutually overlapped to form a magnetic layer, and if the manufacturing process of the same layer is ended, the flow returns to the step of providing another layer of the magnetic material to a surface of the magnetic layer; and repeating the steps of forming the magnetic layer to form a three-dimensional (3D) magnetic device.
2. The fabrication method of the magnetic device as claimed in claim 1, wherein the reacting gas comprises a reactive gas and a protective gas.
3. The fabrication method of the magnetic device as claimed in claim 2, wherein the reactive gas comprises at least one of hydrogen, oxygen, chlorine, fluorine, hydrogen chloride, hydrogen bromide and nitrous oxide.
4. The fabrication method of the magnetic device as claimed in claim 2, wherein the protective gas comprises at least one of nitrogen, argon, helium, neon and krypton.
5. The fabrication method of the magnetic device as claimed in claim 1, wherein a concentration of the reacting gas in the environment filled with the reacting gas is 1.5% to 25%.
6. The fabrication method of the magnetic device as claimed in claim 1, wherein in each of the magnetic layers, the magnetic units are arranged in parallel along an arranging direction, and are mutually connected through peripheral surfaces.
7. The fabrication method of the magnetic device as claimed in claim 6, wherein in each of the magnetic layers, the path of the energy beam is parallel to an extending direction of the magnetic device.
8. The fabrication method of the magnetic device as claimed in claim 6, wherein the arranging directions of adjacent magnetic layers are parallel to each other, and the magnetic units in the adjacent magnetic layers are stacked through peripheral surfaces.
9. The fabrication method of the magnetic device as claimed in claim 6, wherein the extending direction of the magnetic device is parallel to the arranging direction of the magnetic units.
10. The fabrication method of the magnetic device as claimed in claim 6, wherein the paths of different magnetic layers are intersected to each other.
11. The fabrication method of the magnetic device as claimed in claim 6, wherein the arranging directions of the adjacent magnetic layers form an included angle not equal to zero therebetween, and the magnetic units in the adjacent magnetic layers are stacked through peripheral surfaces.
12. The fabrication method of the magnetic device as claimed in claim 6, wherein the energy beam scans in a dot manner.
13. The fabrication method of the magnetic device as claimed in claim 1, wherein in the magnetic layer, an overlapping region of the adjacent magnetic units is 30% to 80% of a line width of the energy beam.
14. The fabrication method of the magnetic device as claimed in claim 1, wherein the fabrication method of the magnetic device comprises one of selective laser sintering (SLS), selective laser melting (SLM), direct metal laser sintering (DMLS) and electro beam melting (EBM).
15. The fabrication method of the magnetic device as claimed in claim 1, wherein the fabrication method of the magnetic device comprises one of laser engineering net shaping (LENS) and three-dimensional laser cladding.
16. The fabrication method of the magnetic device as claimed in claim 1, wherein the energy beam comprises a laser beam, an electron beam, an electric arc, or composite energy combined with two or more of the above beams.
17. The fabrication method of the magnetic device as claimed in claim 1, wherein an energy density of the energy beam is below 10.sup.12 W/cm.sup.3.
18. The fabrication method of the magnetic device as claimed in claim 1, wherein the magnetic material comprises metal, ceramics, semiconductor, polymer or a composite material of the above materials.
19. The fabrication method of the magnetic device as claimed in claim 1, wherein the magnetic material comprises a permanent magnetic material.
20. The fabrication method of the magnetic device as claimed in claim 1, wherein the magnetic material comprises a plurality of magnetic powder.
21. The fabrication method of the magnetic device as claimed in claim 1, wherein the magnetic material is a magnetic plate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings are included to provide a further understanding of the disclosure, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the disclosure and, together with the description, serve to explain the principles of the disclosure.
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DESCRIPTION OF EMBODIMENTS
(13) The disclosure provides a fabrication method of a magnetic device, which is capable of decreasing an eddy current area of an electromagnetic induction current, and a proportion of eddy current loss, so as to improve magnetic permeability and stability of the magnetic device, and produce a customized appearance.
(14) The disclosure is described below with reference of the accompanying drawings, in which exemplary embodiments of the disclosure are shown. The disclosure may, however, be embodied in many different forms and should not be construed as being limited to the exemplary embodiments set forth herein. In these drawings, for clarity's sake, sizes and relative sizes of each layer and each region can be exaggeratedly depicted.
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(16) In the present embodiment, a three-dimensional (3D) printing technique and an additive manufacturing technique are taken as an example for description, though the disclosure is not limited thereto. To be specific, a technical principle of selective laser sintering (SLS) is to lay down the material (for example, the powder) on a working platform, and focus the laser energy beam to a specific position of the material to implement powder sintering, and then the steps of laying down the powder and laser sintering are repeated to a 3D workpiece by stacking layer-by-layer. Compared to the conventional subtractive processing technique, the additive manufacturing technique has advantages in efficiency and cost, and may shorten a production duration of complex articles, by which multiple processes and the time required for replacing a processing machine are saved, and mass production and customization are achieved, so as to greatly improve manufacturing efficiency and overcome a shaping limitation of the existing manufacturing process. The disclosure is further described below with reference of drawings.
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(18) Referring to steps S1 and S2 of
(19) After one layer of the magnetic material 200 is provided to the target surface 100, as shown in steps S3, S4 of
(20) The plurality of magnetic powder 210 in the magnetic material 200 partially irradiated by the energy beam L is melted to form a magnetic liquid, and the magnetic liquid is solidified to form the solidified layer 214. Moreover, since the magnetic liquid is in the environment filled with the reacting gas G, some reactions are taken place between the adjacent solidified layers 214 and on the surface of the solidified layer 214 to generate the barrier layer 212 with a high resistance property.
(21) To be specific, referring to the steps S3, S4 of
(22) Then, referring to steps S31, S32 of
(23) As shown in
(24) Then, after the step S32 of forming the magnetic layer 240 having a plurality of the magnetic units 220 mutually overlapped is completed, the flow returns to the step S31 to determine whether the manufacturing process of the same layer is ended, and if not, the step S32 is repeated, by which the energy beam L moves along another path P in the region of the magnetic powder 210 that is not irradiated, so as to form another magnetic unit 220 according to the above mechanism. In the step S31, if it is determined that the manufacturing process of the same layer is ended (i.e., a single layer of the magnetic layer 240 is completed), the flow returns to the step S2, by which another layer of the magnetic material 200 is provided and laid down on the top of the magnetic layer 240, and the aforementioned steps S3, S4 to S31 and S32 for forming the magnetic layer 240 are repeated to combine the magnetic layers 240 layer-by-layer and produce a predetermined 3D magnetic device 300 as depicted in steps S5 and S6 of
(25) To be specific, the 3D magnetic device 300 produced according to the steps S1-S6 of
(26) The fabrication method of the magnetic device of the disclosure can be an additive manufacturing technique of powder bed melting, which includes selective laser sintering (SLS), selective laser melting (SLM), direct metal laser sintering (DMLS) and electron beam melting (EBM). Moreover, the fabrication method of the magnetic device of the disclosure can also be an additive manufacturing technique of direct energy deposition, which includes laser engineering net shaping (LENS) and 3D laser cladding.
(27) In the present embodiment, the 3D printing technique and the additive manufacturing techniques are taken as an example for description, though the disclosure is not limited thereto. The above techniques belong to one of rapid prototyping techniques, by which a required product can be directly produced according to a digital model image data designed by the user, and the product can be a 3D entity of any shape.
(28) By comparing a difference between the fabrication method of the magnetic device of the disclosure and the conventional manufacturing method, it is known that the fabrication method of the magnetic device of the disclosure may further meet the current demands on customized design and development of the magnetic device. To be specific, the current SMC material is formed by compressing the mixture of magnetic powder and a polymer material, and a product thereof has a great limitation in geometric shape, strength and heat dissipation effect. Moreover, a current lamination process of the silicon steel sheets is also limited by a manufacturing process of the silicon steel sheets, which results in a fact that that compression shaping of the silicon steel sheets is not easy. Comparatively, the fabrication method of the magnetic material of the disclosure may adjust and control a degree of oxidation according to different material properties, so as to fabricate complicated geometric shapes.
(29) For example, in the present embodiment, the fabrication method of the magnetic device 300 may effectively breakthrough a barrier of the existing manufacturing technique, by which besides the magnetic device with a complicated geometric shape can be shaped, the fabrication method of the magnetic device 300 may also effectively cut the magnetic material of the same layer into smaller units compared to that of the existing technique, so as to effectively improve the performance of the magnetic material and mitigate the heating phenomenon of the magnetic material. Therefore, the fabrication method of the magnetic device of the disclosure can be well adapted to design of magnetic devices applied in motors, etc., in the future, so as to accomplish a development trend of miniaturization, high performance, high speed, low heating amount, etc.
(30) To be specific, the 3D printing technique of the embodiment has different shaping mechanisms according to different apparatuses and materials, which is, for example, the aforementioned 3D printing technique of SLS or SLM, by which metal powder or ceramic powder is melted under irradiation of a laser light source for sintering a required 3D entity.
(31) Regarding the 3D magnetic device formed by the aforementioned fabrication method, a method for adjusting a spatial distribution of the barrier layers in the magnetic device is, for example, to control an arranging order, an arranging pitch, and an arranging direction of the barrier layers, which are described in detail in the following embodiments.
First Embodiment
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(33) In the present embodiment, as shown in
(34) As shown in
(35) According to
Second Embodiment
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(37) To be specific, as shown in
Third Embodiment
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(39) To be specific, in the first embodiment and the second embodiment, the arranging directions of each of the magnetic units 220 are formed through continuous scan paths P of the energy beam L. However, in the third embodiment, the scan paths P of the energy beam L are not continuous, but are implemented in a dot manner. The magnetic units 220 of the adjacent magnetic layers 240A, 240B and 240C are mutually stacked through the peripheral surface thereof to form the block structure distribution of the magnetic units 220, such that the magnetic layers have a small distribution in an internal space to achieve the effect of decreasing the eddy current loss. In the magnetic device 300C of the present embodiment, the eddy current E of each of the magnetic layers 240A, 240B and 240C is limited within a range of the solidified layer 214 of each of the magnetic units 220.
(40) In the aforementioned three embodiments, the magnetic devices can be used in collaboration to achieve good magnetic permeability and decrease the eddy current loss according to different applications and winding methods.
(41) Compared to the conventional SMC material or the compression shaped silicon steel sheet, in the magnetic device 300A, the magnetic device 300B and the magnetic device 300C, each of the magnetic layers can be cut into the magnetic units with a small size, where the solidified layer 214 of each magnetic unit 220 is coated with the barrier layer 212, and the magnetic units 220 are stacked to form the 3D magnetic device 300. Since the barrier layer 212 may effectively decrease the effect of eddy current loss, compared to the conventional technique, the magnetic device 300A, the magnetic device 300B and the magnetic device 300C all have the technical effects of effectively decreasing the eddy current loss and the heating amount of the magnetic material, and avoiding damaging the produced product such as a motor due to overheat, etc.
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(43) As shown in
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(46) TABLE-US-00001 TABLE 1 High frequency Heat Intensity of magnetic loss dissipation magnetization PL(W/kg) 10K Intensity coefficient (emu/g) 100mT (MPa) (W/mk) Silicon steel 170-210 2000 300-400 10-15 sheet SMC 55 1256 20 1.2 400B of the 285 312 800 15 embodiment
(47) According to table 1, it is known that compared to the magnetic device fabricated through the conventional SMC material or the silicon steel sheet compression shaping, the magnetic device fabricated according to the fabrication method of the magnetic device of the disclosure is improved in the effect of magnetic permeability by at least 35%, and particularly, by about 4 times (improved from 55 emu/g to 285 emu/g) compared to the magnetic device fabricated through the SMC material. In view of the eddy current loss intensity, the intensity of the present embodiment is twice or more of that of the conventional silicon steel sheet, and is 40 times of that of the conventional SMC material. In view of the heat conductivity, the heat conductivity of the magnetic device of the present embodiment is superior to the heat conductivity of the conventional silicon steel sheet, and is further 10 times greater than the heat conductivity of the conventional SMC material. Moreover, compared to the conventional subtractive processing technique, the fabrication method of the magnetic device of the disclosure may effectively breakthrough a barrier of the existing manufacturing technique to provide a customized appearance, which has more advantages in efficiency and cost.
Fourth Embodiment
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(50) According to the above descriptions, the fabrication method of the magnetic device of the disclosure provides an innovative additive manufacturing technique, in which by adjusting the reacting gas, during a solidification shaping process of the magnetic material, the magnetic material reacts with the reacting gas to form a barrier layer with high resistance property on the surface of the solidified layer, so as to decrease an eddy current area of an electromagnetic induction current and a proportion of the eddy current loss, and accordingly decrease a heating amount to improve efficiency and stability of the magnetic device applied in motors, etc., and provide the fabrication method of the magnetic device with a more free shaping characteristic.
(51) In light of above, according to the fabrication method of the magnetic device of the disclosure, besides that the magnetic permeability is improved, the problems in eddy current loss and heat dissipation are greatly mitigated, so as to overcome the long term problems of high heating amount and poor performance of the magnetic device. Moreover, the additive manufacturing technique can be adopted to fabricate various miniature, thin and geometrically complex magnetic devices, so as to provide a novel technical solution for additive manufacturing and magnetic material industry.
(52) It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the disclosure without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the disclosure cover modifications and variations of this disclosure provided they fall within the scope of the following claims and their equivalents.