细粉在振动斜面上摩擦电团聚制备软粒:干粉吸入的方法及应用

IF 4.5 2区 工程技术 Q2 ENGINEERING, CHEMICAL
Eva Gresse , Thomas Gemine , Lena Renauld , Brigitte Evrard , Geoffroy Lumay , Anna Lechanteur
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引用次数: 0

摘要

在许多工业应用中需要细粉末,但其流动性差使处理和加工具有挑战性。例如,在干粉吸入(DPI)中,吸入颗粒的空气动力学直径必须在1到5 μm之间,以确保治疗效果。然而,这些细粉末很难操作,特别是在胶囊或储层填充期间。为了解决这个问题,我们提出了一种形成脆性团聚体的装置,称为软粒,它具有增强的流动性,同时在需要时保持破碎的能力。我们的方法是基于一个振动的不锈钢斜面,细颗粒在控制振动下流动,导致团聚。经筛分后配粉,并对工艺参数进行了优化。为此,使用了两种粉末:一种是精乳糖(Inhalac®500),另一种是自制的工程喷雾干粉。实验结果表明,摩擦电荷在颗粒凝聚、驱动团聚中起着关键作用。所得软球为球形,直径约为800 μm,与初始粉末相比,流动性显著提高。在不同的压力下,使用质地分析仪和激光衍射来评估它们的机械坚固性。最后,低吸气流量冲击分析证实,凝聚体有效地从胶囊装置中释放并在吸入时解离,达到近60%的细颗粒分数。本研究展示了一种有前途的策略,以提高流动性的微粉不添加粘合剂或其他赋形剂。虽然这种概念验证是为DPI配方开发的,但该方法可以扩展到其他制药或工业粉末应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Manufacturing softpellets using triboelectric agglomeration of fine powders on a vibrated inclined plane: Method and application to dry powder inhalion

Manufacturing softpellets using triboelectric agglomeration of fine powders on a vibrated inclined plane: Method and application to dry powder inhalion
Fine powders are required in many industrial applications, but their poor flow properties make handling and processing challenging. In Dry Powder Inhalation (DPI), for instance, inhaled particles must have an aerodynamic diameter between 1 and 5 μm to ensure therapeutic efficiency. However, these fine powders are difficult to manipulate, particularly during capsule or reservoir filling. To address this issue, we propose a set-up to form brittle agglomerates, referred to as softpellets, which exhibit enhanced flowability while maintaining the ability to break up when needed. Our method is based on a vibrating stainless steel inclined plane on which fine particles flow under controlled vibration, leading to agglomeration. The powder is dispensed after being sieved, and the process parameters have been optimized. For that, two powders were used: a fine lactose (Inhalac® 500) and a homemade engineered spray-dried powder. Experimental results suggest that triboelectric charging plays a key role in particle cohesion, driving agglomeration. The resulting softpellets are spherical, approximately 800 μm in diameter, and exhibit significantly improved flowability compared to the initial powder. Their mechanical robustness was assessed using a texture analyzer and laser diffraction under varying pressures. Finally, low-inspiratory flow impactor analyses confirm that the agglomerates are effectively released from the capsule device and dissociate upon inhalation, achieving a fine particle fraction of nearly 60 %. This study demonstrates a promising strategy for enhancing the flowability of micronized powders without the addition of binders or other excipients. While this proof-of-concept was developed for DPI formulations, the approach could be extended to other pharmaceutical or industrial powder applications.
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来源期刊
Powder Technology
Powder Technology 工程技术-工程:化工
CiteScore
9.90
自引率
15.40%
发文量
1047
审稿时长
46 days
期刊介绍: Powder Technology is an International Journal on the Science and Technology of Wet and Dry Particulate Systems. Powder Technology publishes papers on all aspects of the formation of particles and their characterisation and on the study of systems containing particulate solids. No limitation is imposed on the size of the particles, which may range from nanometre scale, as in pigments or aerosols, to that of mined or quarried materials. The following list of topics is not intended to be comprehensive, but rather to indicate typical subjects which fall within the scope of the journal's interests: Formation and synthesis of particles by precipitation and other methods. Modification of particles by agglomeration, coating, comminution and attrition. Characterisation of the size, shape, surface area, pore structure and strength of particles and agglomerates (including the origins and effects of inter particle forces). Packing, failure, flow and permeability of assemblies of particles. Particle-particle interactions and suspension rheology. Handling and processing operations such as slurry flow, fluidization, pneumatic conveying. Interactions between particles and their environment, including delivery of particulate products to the body. Applications of particle technology in production of pharmaceuticals, chemicals, foods, pigments, structural, and functional materials and in environmental and energy related matters. For materials-oriented contributions we are looking for articles revealing the effect of particle/powder characteristics (size, morphology and composition, in that order) on material performance or functionality and, ideally, comparison to any industrial standard.
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