Optical effects of 3D printed items

公开(公告)号:
EP4084944B1
公开(公告)日:
2023-08-30
申请号:
EP2020835823
申请日:
2020-12-21
授权日:
2023-08-30
受理局:
欧洲专利局
专利类型:
授权发明
简单法律状态:
有效
法律状态/事件:
授权
IPC分类号:
B29C64/118 | B29C64/393 | B33Y10/00 | B33Y80/00 | F21K9/90
战略新兴产业分类:
先进石化化工新材料
国民经济行业分类号:
C3523 | C3522
当前申请(专利权)人:
SIGNIFY HOLDING B.V.
原始申请(专利权)人:
SIGNIFY HOLDING B.V.
当前申请(专利权)人地址:
High Tech Campus 48, AE Eindhoven, NL
工商统一社会信用代码:
-
工商登记状态:
-
工商注册地址:
-
工商成立日期:
-
工商企业类型:
-
发明人:
GOMMANS, HENDRIKUS, HUBERTUS, PETRUS | VAN OS, JACOBUS, PETRUS, JOHANNES | HIKMET, RIFAT, ATA, MUSTAFA | LEE, WEI, PIEN
代理机构:
VERWEIJ, PETRONELLA DANIËLLE
代理人:
-
摘要:
The invention provides a method for producing a 3D item (1) by means of fused deposition modelling, the method comprising a 3D printing stage comprising layer- wise depositing an extrudate (321) from 3D printable material (201), to provide the 3D item (1) comprising 3D printed material (202), wherein the 3D item (1) comprises a plurality of layers (322) of 3D printed material (202), wherein each layer (322) has a layer height (H) and a layer width (W), wherein the 3D printing stage comprises generating a stack (1322) of the layers (322) of the 3D printed material (202), wherein at a fixed first x,y-position the layer height (H) is varied layer by layer for a subset of a total number of layers (322), wherein either (i) the layer height (H) increases for consecutive layers (322) and then the layer height (H) decreases for consecutive layers (322), or (ii) the layer height (H) decreases for consecutive layers and then the layer height (H) increases for consecutive layers (322); and wherein at least part of the 3D printable material (201) comprises light transmissive polymeric thermoplastic material (401).
技术问题语段:
The patent text describes different methods for controlling the deposition rate of materials during the 3D printing process. One method involves varying the deposition rate to create a surface with periodic protrusions. Another method involves using layers of different materials with different transmissivity to create a 3D item. The technical problem addressed by the patent text is how to control the deposition rate to create complex and precise 3D objects.
技术功效语段:
The patent text describes a method for producing 3D items using fused deposition modelling, which involves layer-wise depositing material to create a 3D structure. The method includes a 3D printing stage where a stack of layers is generated by depositing material in a non-constant manner. The resulting 3D item has a unique appearance and feel, and can also have optical effects. The method can be used with various 3D printing techniques, such as FDM and Fused Deposition Modeling (FDM). The invention provides an alternative to current 3D printing methods and can allow for controlling optical effects. The printed items can also have wavy edges or other decorative features. The method can be used to produce e.g. lamp shades with unique edges. The printed object does not necessarily have straight surfaces, but can have conical, spherical, or bented edges. The invention provides a method for producing 3D items with unique appearance and feel using fused deposition modelling.
权利要求:
1. A method for producing a 3D item (1) by means of fused deposition modelling using a 3D printer, the method comprising a 3D printing stage during which a stack (1322) of layers (322) of a 3D printed material (202) is generated by layer-wise depositing an extrudate (321) from 3D printable material (201), at least part of the 3D printable material (201) comprising a light transmissive polymeric thermoplastic material (401), wherein each layer (322) of the stack (1322) has a non-constant layer height (H), wherein at a fixed first x,y-position: (i) the layer height (H) increases for consecutive layers (322) and then the layer height (H) decreases for consecutive layers (322), or (ii) the layer height (H) decreases for consecutive layers and then the layer height (H) increases for consecutive layers (322), wherein the stack (1322) has a first stack height (H11) at the fixed first x,y position, and wherein the method comprises generating at a fixed second x,y-position the stack (1322) with layers (322) having a layer height (H), thereby providing the stack (1322) with a second stack height (H12) at the fixed second x,y position, wherein 0.9≤H12/H11≤1.1. 2. The method according to claim 1, wherein a layer (322) from the stack (1322) has a maximum overall height (HL1), wherein the method comprises generating the same layer (322) with a minimum overall height (HL2) of that layer in the stack, wherein |HL1-HL2|/L∗≤1, where L* is a distance between these two points measured parallel to an x,y-plane. 3. The method according to claim 2, comprising 3D printing a plurality of maximum overall heights (HL1) and minimum overall heights (HL2) in the stack (1322), where the maximum overall heights (HL1) and minimum overall heights (HL2) of each layer follow a spiral on a surface of the 3D item (1), and wherein the method comprises printing a concave 3D item (1). 4. The method according to any one of the preceding claims, wherein the method comprises printing the layers (322) for the subset of a total number of layers (322) at the fixed first x,y position with a constant layer width (W). 5. The method according to any one of the preceding claims, wherein the method comprises printing the layers (322) for the subset of a total number of layers (322) at the fixed first x,y-position with layer heights (H) that vary according to a mathematical function selected from the group consisting of sinusoidally, triangularly, saw tooth, and square, or a combination of two or more of these. 6. The method according to any one of the preceding claims, wherein the light transmissive polymeric thermoplastic material (401) is transparent for visible light having a one or more wavelengths selected from the range of 450-650 nm. 7. The method according to any one of the preceding claims, wherein the 3D printable material (201) and the 3D printed material (202) comprise one or more of polycarbonate (PC), polyethylene (PE), polypropylene (PP), polyethylene naphthalate (PEN), styrene-acrylonitrile resin (SAN), polysulfone (PSU), polyphenylene sulfide (PPS), polytethylene terephthalate (PET), poly(methyl methacrylate) (PMMA), polystyrene (PS), styrene acrylic copolymers (SMMA), and polyurethane (PU). 8. A 3D item (1) comprising a stack (1322) of layers (322) of a 3D printed material (202), at least part of the 3D printed material (202) comprising a light transmissive polymeric thermoplastic material (401), wherein each layer (322) of the stack (1322) has a non-constant layer height (H), wherein at a fixed first x,y-position: (i) the layer height (H) increases for consecutive layers (322) and then the layer height (H) decreases for consecutive layers (322), or (ii) the layer height (H) decreases for consecutive layers and then the layer height (H) increases for consecutive layers (322), wherein the stack (1322) has a first stack height (H11) at the fixed first x,y position, and wherein at a fixed second x,y-position the layers (322) of the stack (1322) have a constant layer height (H), wherein the stack (1322) has a second stack height (H12) at the fixed second x,y position, wherein 0.1≤H12/H11≤10. 9. The 3D item (1) according to claim 8, wherein 0.9≤H12/H11≤1.1; and wherein the layers (322) for the subset of a total number of layers (322) at the fixed first x,y position have a constant layer width (W). 10. The 3D item (1) according to any one of the preceding claims 8-9, wherein for the subset of a total number of layers (322) at the fixed first x,y-position the layer heights (H) vary sinusoidally or vary triangularly; wherein the 3D item (1) is a concave 3D item (1); wherein the stack (1322) is a single wall stack. 11. The 3D item (1) according to any one of the preceding claims 8-10, wherein the 3D printed material (202) comprise one or more of polycarbonate (PC), polyethylene (PE), polypropylene (PP), polyethylene naphthalate (PEN), styrene-acrylonitrile resin (SAN), polysulfone (PSU), polyphenylene sulfide (PPS), polytethylene terephthalate (PET), poly(methyl methacrylate) (PMMA), polystyrene (PS), styrene acrylic copolymers (SMMA), and polyurethane (PU), wherein the 3D printed material (202) comprises light transmissive polymeric thermoplastic material (401). 12. A lighting device (1000) comprising the 3D item (1) according to any one of the preceding claims 8-11, wherein the 3D item (1) is configured as one or more of (i) at least part of a lighting device housing, (ii) at least part of a wall of a lighting chamber, and (iii) an optical element. 13. A computer program product comprising instructions which, when the computer program product is executed by a computer which is functionally coupled to or comprised by a fused deposition modelling 3D printer, causes the fused deposition modelling 3D printer to carry out the method as described in any one of the preceding claims 1-7.
技术领域:
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背景技术:
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发明内容:
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具体实施方式:
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