HIGH SPEED ADDITIVE MANUFACTURING APPARATUS
20230158742 · 2023-05-25
Inventors
- Jeng-Ywan Jeng (Taipei, TW)
- Chih-Hua Hsieh (Taipei, TW)
- Hou-Ching Lee (Taipei, TW)
- Yi-Chia Chen (Taipei, TW)
- Shaou-Chi Liu (Taipei, TW)
- Tzu-Yu Hsieh (Taipei, TW)
- Zhi-Kai Huang (Taipei, TW)
Cpc classification
B29C64/236
PERFORMING OPERATIONS; TRANSPORTING
B29C64/282
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B22F12/38
PERFORMING OPERATIONS; TRANSPORTING
B22F12/224
PERFORMING OPERATIONS; TRANSPORTING
B22F2999/00
PERFORMING OPERATIONS; TRANSPORTING
B22F12/90
PERFORMING OPERATIONS; TRANSPORTING
B22F10/28
PERFORMING OPERATIONS; TRANSPORTING
B29C64/277
PERFORMING OPERATIONS; TRANSPORTING
B22F12/224
PERFORMING OPERATIONS; TRANSPORTING
B29C64/268
PERFORMING OPERATIONS; TRANSPORTING
B22F12/47
PERFORMING OPERATIONS; TRANSPORTING
B22F2999/00
PERFORMING OPERATIONS; TRANSPORTING
B22F12/90
PERFORMING OPERATIONS; TRANSPORTING
B22F12/38
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
B29C64/153
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C64/282
PERFORMING OPERATIONS; TRANSPORTING
B29C64/153
PERFORMING OPERATIONS; TRANSPORTING
B29C64/236
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A high-speed additive manufacturing apparatus includes a main body, a sintering module, a product carrying member, a raw material carrying member, and a raw material wiper. The main body includes a printing tank and a raw material tank adjacent to the printing tank. The sintering module is arranged on the main body. The sintering module includes a plurality of sintering light source assemblies. Each of the sintered light source assemblies has a light beam emitting end. The light beam emitting end emits a sintering light beam. The light beam emitting ends of the sintering light source assemblies are arranged in a plurality of rows. Each light beam emitting end in one row is unaligned with the light beam emitting end in adjacent rows along a direction in which the light beam emitting end moves.
Claims
1. A high-speed additive manufacturing apparatus, comprising: a main body comprising a printing tank and a raw material tank adjacent to the printing tank; a sintering module comprising a plurality of sintering light source assemblies, wherein each of the sintering light source assemblies has a light beam emitting end disposed in the main body, the light beam emitting end emits a sintering light beam, the light beam emitting end is configured to move above the printing tank along a first direction, the light beam emitting ends of the sintering light source assemblies are arranged in a plurality of rows oriented along a second direction perpendicular to the first direction, and each of the light beam emitting ends in one row is unaligned with the light beam emitting ends in adjacent rows along the first direction; a product carrying member disposed in the printing tank, wherein a product is formed on the product carrying member, and the product carrying member is configured to move along a third direction in the printing tank; a raw material carrying member disposed in the raw material tank, wherein the raw material carrying member is configured to move along the third direction in the raw material tank; and a raw material wiper configured to move in the printing tank and the raw material tank.
2. The high-speed additive manufacturing apparatus as claimed in claim 1, wherein each of the sintering light source assemblies comprises a light emitting member, a light beam guiding member and an optical collimator disposed at the light beam emitting end, the light emitting member emits a light guided by the light beam guiding member to pass through the optical collimator so as to form the sintering light beam.
3. The high-speed additive manufacturing apparatus as claimed in claim 2, wherein each of the sintering light source assemblies further comprises an adapter, the light beam guiding member comprises a first guiding section connected to the light emitting member at one end, and a second guiding section connected to the optical collimator at one end, the first guiding section is connected to the adapter at the other end, and the second guiding section is connected to the adapter at the other end.
4. The high-speed additive manufacturing apparatus as claimed in claim 2, wherein the sintering module further comprises a collimator holder parallel to the product carrying member, the collimator holder has a plurality of first positioning holes in which the optical collimators are disposed respectively, the first positioning holes are arranged in a plurality of rows, and each of the first positioning holes in one row is unaligned with the first positioning holes in adjacent rows in the first direction.
5. The high-speed additive manufacturing apparatus as claimed in claim 4, wherein the sintering module further comprises a guiding member holder having a plurality of second positioning holes, each of the second positioning holes corresponds to a plurality of the first positioning holes, and each of the second positioning holes accommodates a plurality of light beam guiding members.
6. The high-speed additive manufacturing apparatus as claimed in claim 5, wherein the guiding member holder is disposed above the collimator holder, the guiding member holder comprises a plurality of securing plates correspondingly disposed in the second positioning holes, the sintering module further comprises a plurality of bundling members corresponding to the second positioning holes, a plurality of the light beam guiding members are bundled by one of the bundling members and disposed in one of the second positioning holes, and each of the securing plates secures one of the bundling members in one of the second positioning holes.
7. The high-speed additive manufacturing apparatus as claimed in claim 5, wherein the sintering module further comprises a movable seat configured to move along the first direction on the main body, the collimator holder and the guiding member holder are disposed on the movable seat, the movable seat has a light-passing opening corresponding to the first positioning holes, and the raw material wiper is disposed on one side of the movable seat.
8. The high-speed additive manufacturing apparatus as claimed in claim 2, further comprising a control module, wherein the control module comprises a controller, a plurality of converters and a plurality of driving circuits, the controller has a plurality of input-output ports, the converters are connected to the input-output ports and the driving circuits, the driving circuits drive the light emitting members, the controller outputs control signals through the input-output ports according to a timing scheme, and the control signals are converted to driving signals transmitted to the driving circuits to drive the light emitting members.
9. The high-speed additive manufacturing apparatus as claimed in claim 7, wherein the control signals are digital signals, and the driving signals are pulse width modulation signals.
10. The high-speed additive manufacturing apparatus as claimed in claim 7, further comprising a position detector disposed in the main body and configured to detect a position of the light beam emitting end and generate a detecting signal transmitted to the controller, the controller generates the control signals according to the detecting signal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:
[0020]
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DETAILED DESCRIPTION OF THE INVENTION
[0031] The following description is of the best-contemplated mode of carrying out the invention. This description is made for the purpose of illustrating the general principles of the invention and should not be taken in a limiting sense. The scope of the invention is best determined by reference to the appended claims.
[0032] Referring to
[0033] The high-speed additive manufacturing apparatus of the present embodiment further includes a product carrying member 30 and a raw material carrying member 40. The product carrying member 30 is disposed in the printing tank 11 and constitute a bottom of the printing tank 11. The product carrying member 30 is moved along a third direction Z by a second servo motor 31 disposed on a bottom of the main body 10. The raw material carrying member 40 is disposed in the raw material tank 12 and constitute a bottom of the raw material tank 12. The raw material carrying member 40 is moved along the third direction Z by a third servo motor 41 disposed on a bottom of the main body 10. The product carrying member 30 and the raw material carrying member 40 are moved in opposite directions during the additive manufacturing process. The product carrying member 30 moves downwards (in the −Z direction) as the product is formed layer by layer, whereby the powdery raw material can be supplied to spread on the printing tank 11 layer by layer. The raw material carrying member 40 move upwards (in the +Z direction) for the supplement of the powdery raw material to the printing tank 11. The high-speed additive manufacturing apparatus of the present embodiment further includes a raw material wiper 50 disposed on the movable seat 20. The raw material wiper 50 is exemplarily a powder roller disposed at one side of the movable seat 20 and moved with the movable seat 20. The raw material wiper 50 is disposed on the right side of the movable seat 20. The movable seat 20 moves across the raw material tank 12 and the printing tank 11 sequentially from the left side of raw material tank 12, whereby the raw material wiper 50 moves across the raw material tank 12 and the printing tank 11 sequentially along with the movable seat 20 to spread the powdery raw material to the printing tank 11 from the raw material tank 12.
[0034] The high-speed additive manufacturing apparatus of the present embodiment further includes a sintering module 60. The sintering module 60 includes a plurality of sintering light source assemblies 61. Each of the sintering light source assemblies 61 includes a light beam emitting end 611 disposed on the movable seat 20 and located on the right side of the raw material wiper 50. The light beam emitting end 611 is moved with the movable seat 20 above the printing tank 11 along the first direction X. When the movable seat 20 moves from left to right, the raw material wiper 50 pushes the powdery raw material from the raw material tank 12 into the printing tank 11, and afterwards the light beam emitting end 611 moves thereacross and scans the printing tank 11. The light beam emitting end 611 emits a sintering light beam. The sintering light beam passes through a light-passing opening 22 formed on the movable seat 20 (referring to
[0035] Referring to
[0036] Referring to
[0037] Referring to
[0038] The sintering module 60 further includes a guiding member holder 63 disposed on the movable seat 20 and located above the collimator holder 62. The guiding member holder 63 has a plurality of second positioning holes 631. One second positioning hole 631 corresponds to a plurality of first positioning holes 621. A plurality of the light beam guiding members 612 connected to a plurality of the optical collimators 614 are collectively accommodated in one second positioning hole 631. Therefore, each second positioning hole 631 accommodates a plurality of the light beam guiding members 612. In the present embodiment, each second positioning hole 631 accommodates eight pieces of the light beam guiding member 612. Moreover, the sintering module 60 further includes a plurality of bundling members 64. Each bundling member 64 bundles a plurality of light beam guiding members 613 in one second positioning hole 631. The guiding member holder 63 further includes a plurality of securing plates 632. Slots 633 are formed on opposite inner walls of each second positioning hole 631, and the securing plate 632 is inserted into the slots 633, whereby the securing plate 632 and the inner walls of the second positioning hole 631 hold the bundling member 64 to secure the bundling member 64 in the second positioning hole 631.
[0039] The sintering module 60 further includes an assistant holder 65 disposed above the collimator holder 62 and located between the collimator holder 62 and the guiding member holder 63. The assistant holder 65 has a plurality of third positioning holes 651 aligned with the first positioning holes 621. The end of the optical collimator 614 connected to the light beam guiding member 613 is disposed in the third positioning hole 651, whereby the optical collimator 614 is positioned in the collimator holder 62 and the assistant holder 65.
[0040] Referring to
[0041] Referring to
[0042] The high-speed additive manufacturing apparatus of the present embodiment further includes a human-machine interface including a stepping mode and a moving mode. The human-machine interface is executed by application program installed in the apparatus and displayed on a display device. A user can input operation parameters through the human-machine interface, such as the moving speeds and displacements of the movable seat 20, the product carrying member 30 and the raw material carrying member 40 in each stroke.
[0043] The high-speed additive manufacturing apparatus of the present invention includes a two-dimensional array of sintering light source assemblies of which the light beam emitting ends in adjacent rows are unaligned, and the light beam emitting ends can scan multiple linear regions constituting one designed layer. After the two-dimensional array of the light beam emitting ends of the sintering module moves along the first direction only in one stroke, one designed layer of the product is accomplished. Therefore, the product is manufactured by the high-speed additive manufacturing apparatus of the present invention at a very high forming rate.
[0044] While the invention has been described by way of example and in terms of preferred embodiment, it is to be understood that the invention is not limited thereto. To the contrary, it is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.