Gottschalk Tobias, Özbay Cihangir, Feuerbach Tim, Thommes Markus
Laboratory of Solids Process Engineering, Department of Biochemical and Chemical Engineering, TU Dortmund University, Emil-Figge-Str. 68, 44227 Dortmund, Germany.
INVITE GmbH, Drug Delivery Innovation Center, Chempark Building W32, 51368 Leverkusen, Germany.
Pharmaceutics. 2022 Aug 23;14(9):1757. doi: 10.3390/pharmaceutics14091757.
Even though hot melt extrusion (HME) is a commonly applied process in the pharmaceutical area, determination of the optimal process parameters is demanding. The goal of this study was to find a rational approach for predetermining suitable extrusion parameters, with a focus on material temperature and throughput. A two-step optimization procedure, called scale-independent optimization strategy (SIOS), was applied and developed further, including the use of an autogenic extrusion mode. Three different polymers (Plasdone S-630, Soluplus, and Eudragit EPO) were considered, and different optimal process parameters were assessed. The maximum barrel load was dependent on the polymers' bulk density and the extruder size. The melt temperature was influenced by the screw speed and the rheological behavior of the polymer. The melt viscosity depended mainly on the screw speed and was self-adjusted in the autogenic extrusion. A new approach, called SIOS 2.0, was suggested for calculating the extrusion process parameters (screw speed, melt temperature and throughput) based on the material data and a few extrusion experiments.
尽管热熔挤出(HME)是制药领域常用的工艺,但确定最佳工艺参数颇具挑战性。本研究的目的是找到一种合理的方法来预先确定合适的挤出参数,重点关注物料温度和产量。应用并进一步开发了一种两步优化程序,称为无尺度优化策略(SIOS),包括使用自生挤出模式。考虑了三种不同的聚合物(聚维酮S-630、固体分散体和丙烯酸树脂EPO),并评估了不同的最佳工艺参数。最大料筒负载取决于聚合物的堆积密度和挤出机尺寸。熔体温度受螺杆转速和聚合物流变行为的影响。熔体粘度主要取决于螺杆转速,并在自生挤出过程中自我调节。提出了一种新的方法,称为SIOS 2.0,用于根据物料数据和一些挤出实验计算挤出工艺参数(螺杆转速、熔体温度和产量)。