Dropwise Additive Manufacturing using Particulate Suspensions: Feasible Operating Space and Throughput Rates

被引:6
|
作者
Radcliffe, Andrew J. [1 ]
Reklaitis, Gintaras V. [1 ]
机构
[1] Purdue Univ, Davidson Sch Chem Engn, W Lafayette, IN 47906 USA
关键词
drop formation; non-Brownian suspension; drug printing; process development; PHARMACEUTICAL PRODUCTS; DOSAGE FORMS;
D O I
10.1016/B978-0-444-63965-3.50203-8
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
In dropwise additive manufacturing, particularly in pharmaceutical application, process performance depends critically on stable formation of individual drops of reproducible volume and with a desired trajectory, as determined by the interaction of fluid properties and processing conditions (Basaran, et al., 2013). Current additive manufacturing techniques employ solvent-or melt-based printing inks, with which colloidal particles have been used (Hirshfield, et al., 2014, Icten, et al., 2015, Wang, et al., 2012). However, work with non-Brownian suspensions with particle concentrations relevant to practical application has yet to appear in the literature. Such suspensions involve particle sizes in the 10-200 micron range (Denn, et al., 2014) that are readily produced by conventional crystallization and milling operations. This focuses on elucidating the effects of particle size and aspect ratio distribution as well as particle concentration in suspensions which are used in a dropwise additive manufacturing process for production of pharmaceutical dosage forms. Results with drops produced from non-Brownian particle suspensions consisting of active pharmaceutical ingredient crystals and Newtonian carrier fluids indicate that such suspensions offer substantial advantages in mass-based production rate in comparison to solvent-or melt-based printing formulations. Based on the range of dimensionless parameters accessed in this work, a feasible operating space is developed for drop-on-demand drop formation with non-Brownian suspensions. Process monitoring capabilities sufficient to confirm that the resulting dosages meet quality metrics are also discussed.
引用
收藏
页码:1207 / 1212
页数:6
相关论文
共 23 条
  • [1] Dropwise Additive Manufacturing of Pharmaceutical Products Using Particle Suspensions
    Radcliffe, Andrew J.
    Hilden, Jon L.
    Nagy, Zoltan K.
    Reklaitis, Gintaras V.
    JOURNAL OF PHARMACEUTICAL SCIENCES, 2019, 108 (02) : 914 - 928
  • [2] THE ADDITIVE MANUFACTURING PROCESS SETTING FEASIBLE SPACE EXPLORATION AND ASSOCIATION WITH VARIABLE PRODUCT PLATFORM
    Yao, Xiling
    Moon, Seung Ki
    Bi, Guijun
    INTERNATIONAL DESIGN ENGINEERING TECHNICAL CONFERENCES AND COMPUTERS AND INFORMATION IN ENGINEERING CONFERENCE, 2015, VOL 1A, 2016,
  • [3] Rheological Behavior of Alumina Suspensions for Additive Manufacturing Using Digital Light Processing
    Alves, P. L. A.
    Verza, J. R.
    Luz, A. P.
    MATERIALS RESEARCH-IBERO-AMERICAN JOURNAL OF MATERIALS, 2023, 26
  • [4] Process control of a dropwise additive manufacturing system for pharmaceuticals using polynomial chaos expansion based surrogate model
    Icten, Elcin
    Nagy, Zoltan K.
    Reklaitis, Gintaras V.
    COMPUTERS & CHEMICAL ENGINEERING, 2015, 83 : 221 - 231
  • [5] High-Throughput Aluminum Alloy Discovery Using Laser Additive Manufacturing
    Pan, Qingyu
    Kapoor, Monica
    Mileski, Sean
    Carsley, John
    Lou, Xiaoyuan
    LIGHT METALS 2021, 50TH EDITION, 2021, : 140 - 146
  • [6] Small-Scale Continuous Drug Product Manufacturing using Dropwise Additive Manufacturing and Three Phase Settling for Integration with Upstream Drug Substance Production
    Sundarkumar, Varun
    Nagy, Zoltan K.
    V. Reklaitis, Gintaras
    JOURNAL OF PHARMACEUTICAL SCIENCES, 2022, 111 (08) : 2330 - 2340
  • [7] Multiple Spot Beam Reflector Antenna for High Throughput Satellites using Additive Manufacturing Technology
    Sommer, A.
    Schinagl-Weiss, A.
    Hartwanger, C.
    Kilian, M.
    Schneider, M.
    2019 13TH EUROPEAN CONFERENCE ON ANTENNAS AND PROPAGATION (EUCAP), 2019,
  • [8] A new high-throughput method using additive manufacturing for alloy design and heat treatment optimization
    Zhao, Yunhao
    Sargent, Noah
    Li, Kun
    Xiong, Wei
    MATERIALIA, 2020, 13 (13):
  • [9] Evaluating design uncertainties in additive manufacturing using design artefacts: examples from space industry
    Dordlofva, Christo
    Torlind, Peter
    DESIGN SCIENCE, 2020, 6
  • [10] High-Throughput Alloy Development Using Advanced Characterization Techniques During Directed Energy Deposition Additive Manufacturing
    Sommer, Niklas
    Bauer, Andre
    Kahlmeyer, Martin
    Wegener, Thomas
    Degener, Sebastian
    Liehr, Alexander
    Bolender, Artjom
    Vollmer, Malte
    Holz, Hendrik
    Zeiler, Stefan
    Merle, Benoit
    Niendorf, Thomas
    Boehm, Stefan
    ADVANCED ENGINEERING MATERIALS, 2023, 25 (15)