Understanding die compaction of hollow spheres using the multi-particle finite element method (MPFEM)

被引:12
作者
Demirtas, Ahmet [1 ]
Klinzing, Gerard R. [1 ]
机构
[1] Merck & Co Inc, Kenilworth, NJ 07033 USA
关键词
Multi-particle finite element analysis; Hollow particle compaction; Particle size; Particle shell thickness; Powder compaction behavior; NONLOCAL CONTACT FORMULATION; MECHANICAL-BEHAVIOR; POWDER COMPRESSION; PHARMACEUTICAL POWDERS; ROLLER COMPACTION; PARTICLE-SIZE; SIMULATION; DENSITY; FUNDAMENTALS; MODEL;
D O I
10.1016/j.powtec.2021.06.004
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Powder compaction is a complex manufacturing process, even though the procedural description is simple. While different methods are used in the literature, it is still challenging to understand the governing principles. It is especially challenging for empirical studies to investigate particle-level interactions. Thus, computational analyses are required for particle-level understanding. A wide range of computational methods has been developed, such as the discrete element method (DEM) and the multi-particle finite element method (MPFEM), to characterize powder compaction at the particle level. However, a limited number of studies in the literature have analyzed powder compaction using the 3D multi-particle finite element method. Historically, these studies focus only on solid particles. The compaction behavior of hollow spheres, common to pharmaceutical spray drying, was investigated both computationally and experimentally. In the computational analysis, two different particle sizes with different shell-thicknesses were examined using the 3D multi-particle finite element method. In the experimental study, polymer hydroxypropyl methylcellulose acetate succinate (HPMCAS) particles spray dried at two different outlet temperatures (45 degrees C and 80 degrees C) were used. The results showed that particle diameter/shell-thickness (d/w) plays an essential role in powder compaction behavior. Regardless of the particle size, reducing shell-thickness reduced the required global axial stress to reach equivalent levels of relative density. However, with a constant ratio of d/w, changes to particle size (d) did not significantly influence the global compaction behavior. Similar results were observed in experimental studies. Simulation results showed that thinner-shell particles yield early in the compaction stage. Additionally, both experimentally and computationally, a spherical hollow particle buckling effect was observed. In summary, this study provides new information on how powder compaction behavior was influenced by particle size and particle shell-thickness. (c) 2021 Elsevier B.V. All rights reserved.
引用
收藏
页码:34 / 45
页数:12
相关论文
共 61 条
[1]   A study on the uniqueness of the plastic flow direction for granular assemblies of ductile particles using discrete finite-element simulations [J].
Abdelmoula, Nouha ;
Harthong, Barthelemy ;
Imbault, Didier ;
Doremus, Pierre .
JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2017, 109 :142-159
[2]   Contact radius and curvature corrections to the nonlocal contact formulation accounting for multi-particle interactions in elastic confined granular systems [J].
Agarwal, Ankit ;
Gonzalez, Marcial .
INTERNATIONAL JOURNAL OF ENGINEERING SCIENCE, 2018, 133 :26-46
[3]  
Baroutaji A., 2017, Mechanics and Computational Modeling of Pharmaceutical Tabletting Process, Reference Module in Materials Science and Materials Engineering
[4]   Numerical simulation of cold compaction of 3D granular packings [J].
Chen, Y. ;
Imbault, D. ;
Doremus, P. .
PROGRESS IN POWDER METALLURGY, PTS 1 AND 2, 2007, 534-536 :301-+
[5]   Analysis of tablet compaction. I. Characterization of mechanical behavior of powder and powder/tooling friction [J].
Cunningham, JC ;
Sinka, IC ;
Zavaliangos, A .
JOURNAL OF PHARMACEUTICAL SCIENCES, 2004, 93 (08) :2022-2039
[6]   Assessment of the multifactorial causes of atypical femoral fractures using a novel multiscale finite element approach [J].
Demirtas, Ahmet ;
Rajapakse, Chamith S. ;
Ural, Ani .
BONE, 2020, 135
[7]   Finite Element Method (FEM) modeling of the powder compaction of cosmetic products: Comparison between simulated and experimental results [J].
Diarra, H. ;
Mazel, V. ;
Boillon, A. ;
Rehault, L. ;
Busignies, V. ;
Bureau, S. ;
Tchoreloff, P. .
POWDER TECHNOLOGY, 2012, 224 :233-240
[8]   SOIL MECHANICS AND PLASTIC ANALYSIS OR LIMIT DESIGN [J].
DRUCKER, DC ;
PRAGER, W .
QUARTERLY OF APPLIED MATHEMATICS, 1952, 10 (02) :157-165
[9]   Particle size and density in spray drying - Effects of carbohydrate properties [J].
Elversson, J ;
Millqvist-Fureby, A .
JOURNAL OF PHARMACEUTICAL SCIENCES, 2005, 94 (09) :2049-2060
[10]   Droplet and particle size relationship and shell thickness of inhalable lactose particles during spray drying [J].
Elversson, J ;
Millqvist-Fureby, A ;
Alderborn, G ;
Elofsson, U .
JOURNAL OF PHARMACEUTICAL SCIENCES, 2003, 92 (04) :900-910