Characterisation of fused deposition modeling 3D printers for pharmaceutical and medical applications

被引:39
作者
Feuerbach, Tim [1 ]
Kock, Stefanie [1 ]
Thommes, Markus [1 ]
机构
[1] TU Dortmund Univ, Dept Biochem & Chem Engn, Emil Figge St 68, D-44227 Dortmund, Germany
关键词
3D printing; fused deposition modeling; FDM; qualification; temperature; residence time; volume flow; printing velocity; positioning; RELEASE; FABRICATION; IMMEDIATE; IMPLANTS; DEVICES; TABLETS; DESIGN;
D O I
10.1080/10837450.2018.1492618
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Fused deposition modeling (FDM) is a promising 3D printing technique for the fabrication of personalized drug dosage forms and patient-specific implants. However, there are no market products produced by FDM available at this time. One of the reasons is the lack of a consistent and harmonized approval procedure. In this study, three FDM printers have been characterised with respect to printing parameters relevant for pharmaceutical and medical applications, namely the positioning, hot-end temperature, material residence time, printing velocity and volumetric material flow. The printers are the Ultimaker 2 (UM2), the PRotos v3 (PR3) as well as an in-house developed printer (IDP). The positioning results showed discrepancies between the printers, which are mainly based on different types of drive systems. Due to comparable utilised hot-ends and nozzle geometries, the results for the temperature and residence time distribution measurements were quite similar. The IDP has a high positioning accuracy but is limited with respect to printing velocity, while the achievable material volume flows were different for all printers. The presented characterisation method aims to contribute to the development of a harmonized equipment qualification framework for FDM printers, which could lead to an acceleration and facilitation of an approval procedure for 3D printed products.
引用
收藏
页码:1136 / 1145
页数:10
相关论文
共 36 条
[1]   Emergence of 3D Printed Dosage Forms: Opportunities and Challenges [J].
Alhnan, Mohamed A. ;
Okwuosa, Tochukwu C. ;
Sadia, Muzna ;
Wan, Ka-Wai ;
Ahmed, Waqar ;
Arafat, Basel .
PHARMACEUTICAL RESEARCH, 2016, 33 (08) :1817-1832
[2]  
Bharath V, 2000, SOL FREEF FABR P SOL
[3]   3D Printing of CT Dataset: Validation of an Open Source and Consumer-Available Workflow [J].
Bortolotto, Chandra ;
Eshja, Esmeralda ;
Peroni, Caterina ;
Orlandi, Matteo A. ;
Bizzotto, Nicola ;
Poggi, Paolo .
JOURNAL OF DIGITAL IMAGING, 2016, 29 (01) :14-21
[4]  
Cogswell FN, 1982, POLYM MELT RHEOLOGY
[5]   Fused deposition modeling of patient-specific polymethylmethacrylate implants [J].
Espalin, David ;
Arcaute, Karina ;
Rodriguez Sanz, David ;
Medina, Francisco ;
Posner, Matthew ;
Wicker, Ryan .
RAPID PROTOTYPING JOURNAL, 2010, 16 (03) :164-173
[6]   Ethylene vinyl acetate (EVA) as a new drug carrier for 3D printed medical drug delivery devices [J].
Genina, Natalja ;
Hollander, Jenny ;
Jukarainen, Harri ;
Makila, Ermei ;
Salonen, Jarno ;
Sandler, Niklas .
EUROPEAN JOURNAL OF PHARMACEUTICAL SCIENCES, 2016, 90 :53-63
[7]   Effect of geometry on drug release from 3D printed tablets [J].
Goyanes, Alvaro ;
Martinez, Pamela Robles ;
Buanz, Asma ;
Basit, Abdul W. ;
Gaisford, Simon .
INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2015, 494 (02) :657-663
[8]   3D printing of modified-release aminosalicylate (4-ASA and 5-ASA) tablets [J].
Goyanes, Alvaro ;
Buanz, Asma B. M. ;
Hatton, Grace B. ;
Gaisford, Simon ;
Basit, Abdul W. .
EUROPEAN JOURNAL OF PHARMACEUTICS AND BIOPHARMACEUTICS, 2015, 89 :157-162
[9]   Fused-filament 3D printing (3DP) for fabrication of tablets [J].
Goyanes, Alvaro ;
Buanz, Asma B. M. ;
Basit, Abdul W. ;
Gaisford, Simon .
INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2014, 476 (1-2) :88-92
[10]   Three-Dimensional Printed PCL-Based Implantable Prototypes of Medical Devices for Controlled Drug Delivery [J].
Hollander, Jenny ;
Genina, Natalja ;
Jukarainen, Harri ;
Khajeheian, Mohammad ;
Rosling, Ari ;
Makila, Ermei ;
Sandler, Niklas .
JOURNAL OF PHARMACEUTICAL SCIENCES, 2016, 105 (09) :2665-2676