Scalable, Transparent, and Micro: 3D-Printed Rapid Tooling for Injection Molded Microfluidics

被引:1
|
作者
Menezes, Pedro Duarte [1 ]
Hunter, Alysha [1 ]
Dickson, Thomas [1 ]
Hecht, Soren [1 ]
Kumar, Charchit [1 ]
Busek, Mathias [2 ,3 ]
Krauss, Stefan [2 ,3 ]
Gadegaard, Nikolaj [1 ]
机构
[1] Univ Glasgow, James Watt Sch Engn, Div Biomed Engn, Univ Ave, Glasgow G12 8QQ, Scotland
[2] Univ Oslo, Inst Basic Med Sci, Hybrid Technol Hub Ctr Excellence, POB 1110, N-0317 Oslo, Norway
[3] Oslo Univ Hosp, Dept Immunol & Transfus Med, POB 4950, N-0424 Oslo, Norway
关键词
3D printing; injection molding; microfluidics; scalability; thermoplastics; MOLDING PROCESS PARAMETERS; STEREOLITHOGRAPHY; OPTIMIZATION; CHAIN;
D O I
10.1002/adem.202400276
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The fast-growing 3D printing industry is improving its hardware at an accelerated pace. This includes higher-resolution printing combined with a wider range of photosensitive resins. The parallel development of rapid tooling (RT) for injection molding enables upscaling 3D-printed designs. Within microfluidics, where prototyping and scalability are key, the development of 3D-printed RT for injection molding can prove a competitive alternative to more traditional tooling methods. Herein, the dominating parameters impacting 3D-printed RT for injection molding are investigated, enabling the delivery of durable, high-resolution, and optically transparent microfluidics. It is found that reducing the sidewall waviness to 1.9 +/- 0.4 mu m and the interlocking angle to 1.9 +/- 0.8 degrees enhances the mold release success rate to 100 +/- 0.0%. The surface roughness is reduced from 1.1 +/- 0.1 mu m to 0.2 +/- 0.0 mu m by increasing layer exposure during printing. In turn, this improves the optical transparency of molded replicas to >228 lp mm(-1) line resolution and increased image contrast and amplitude. Ultimately, the established procedure proves capable of running a small-scale production (approximate to 500 parts) of a droplet generator with 50 mu m channels, with a lead production time of under 3 h from computer-aided design to a functional device.
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Recent Progress of 3D Printed Microfluidics Technologies
    Fan Yi-Qiang
    Wang Mei
    Zhang Ya-Jun
    CHINESE JOURNAL OF ANALYTICAL CHEMISTRY, 2016, 44 (04) : 551 - 561
  • [32] 3D-Printed Biosensor Arrays for Medical Diagnostics
    Sharafeldin, Mohamed
    Jones, Abby
    Rusling, James F.
    MICROMACHINES, 2018, 9 (08):
  • [33] 3D-Printed Ceramics with Aligned Micro-Platelets
    Myles, Ashley
    Griffith, Adam
    Riyad, M. Faisal
    Jiao, Yuxin
    Mahmoudi, Mohammadreza
    Minary-Jolandan, Majid
    ACS APPLIED ENGINEERING MATERIALS, 2023, 1 (07): : 1892 - 1902
  • [34] Progress in 3D-printed micromachines
    Maruo S.
    Seimitsu Kogaku Kaishi/Journal of the Japan Society for Precision Engineering, 2021, 87 (09): : 734 - 739
  • [35] 3D-printed bioanalytical devices
    Bishop, Gregory W.
    Satterwhite-Warden, Jennifer E.
    Kadimisetty, Karteek
    Rusling, James F.
    NANOTECHNOLOGY, 2016, 27 (28)
  • [36] 3D-Printed MEMS in Italy
    Aronne, Matilde
    Bertana, Valentina
    Schimmenti, Francesco
    Roppolo, Ignazio
    Chiappone, Annalisa
    Cocuzza, Matteo
    Marasso, Simone Luigi
    Scaltrito, Luciano
    Ferrero, Sergio
    MICROMACHINES, 2024, 15 (06)
  • [37] 3D-printed microfluidics on thin poly(methyl methacrylate) substrates for genetic applications
    Bertana, Valentina
    Potrich, Cristina
    Scordo, Giorgio
    Scaltrito, Luciano
    Ferrero, Sergio
    Lamberti, Andrea
    Perrucci, Francesco
    Pirri, Candido Fabrizio
    Pederzolli, Cecilia
    Cocuzza, Matteo
    Marasso, Simone Luigi
    JOURNAL OF VACUUM SCIENCE & TECHNOLOGY B, 2018, 36 (01):
  • [38] Self-Sustaining Water Microdroplet Resonators Using 3D-Printed Microfluidics
    Awerkamp, Parker A.
    Hill, David
    Fish, Davin
    Wright, Kimi
    Bashaw, Brandt
    Nordin, Gregory P.
    Camacho, Ryan M.
    MICROMACHINES, 2024, 15 (04)
  • [39] Microfluidics-based 3D-Printed 4 x 4 Butler Matrix in Coaxial Technology for Applications up to K Band
    Palazzi, V.
    Mezzanotte, P.
    Alimenti, F.
    Tentzeris, M.
    Roselli, L.
    2019 IEEE MTT-S INTERNATIONAL MICROWAVE SYMPOSIUM (IMS), 2019, : 1371 - 1374
  • [40] Towards pathogen detection with 3D-printed micro-optics in microfluidic systems
    Doth, Kathrin
    Haist, Tobias
    Reichelt, Stephan
    LASER 3D MANUFACTURING XI, 2024, 12876