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药典级凡士林稠度变异性的阐释。

Elucidation of the variability in consistency of pharmacopoeia quality petrolatum.

作者信息

van Heugten Anton Joris Pancras, Versluijs-Helder Marjan, Vromans Herman

机构信息

a Department of Pharmaceutics , Utrecht Institute for Pharmaceutical Sciences, Utrecht University , Utrecht , The Netherlands.

b Department of Research & Development , Tiofarma B.V , Oud-Beijerland , The Netherlands.

出版信息

Drug Dev Ind Pharm. 2017 Apr;43(4):595-599. doi: 10.1080/03639045.2016.1274902. Epub 2017 Jan 8.

Abstract

The Pharmacopeia monograph for petrolatum poorly defines the material's physical properties. Indeed, differences between petrolatum grades can be substantial; yield stress varies between 65 and 280 Pa which can be compared with the consistency of respectively thin cream or thick ointment. This variation is not only due to differences in composition or refining process but also as a result of different processing; for example, thermal history influences petrolatum structure considerably. Slow cooling of petrolatum resulted in a yield stress of 26 Pa and fast cooling in 79 Pa. X-ray showed that crystallinity was 0.7% for the first cooling case and 1.5% for the second one. Crystallite size was estimated to be 20-50 nm. To investigate if this relatively small difference in crystallinity may induce the difference in consistency, 15 nm SiO particles were added to petrolatum. Indeed, a small increase in SiO concentration led to a major increase in yield stress. This was argued to be due to the small size of the particles, resulting in a large increase in absolute number of particles. The Pharmacopeia does not unambiguously define the pharmaceutical excipient petrolatum. As a consequence, the formulator has to take care of selecting the appropriate grade as well as to carefully control the processing of the material in order to achieve a consistent pharmaceutical product.

摘要

《药典》中凡士林的专论对该物质的物理性质定义不明确。实际上,不同等级的凡士林之间差异可能很大;屈服应力在65至280帕之间变化,这可分别与稀乳膏或稠软膏的稠度相比较。这种变化不仅是由于成分或精炼过程的差异,还由于不同的加工方式;例如,热历史对凡士林结构有很大影响。凡士林缓慢冷却时屈服应力为26帕,快速冷却时为79帕。X射线显示,第一种冷却情况的结晶度为0.7%,第二种为1.5%。微晶尺寸估计为20 - 50纳米。为研究这种结晶度相对较小的差异是否会导致稠度差异,向凡士林中添加了15纳米的二氧化硅颗粒。确实,二氧化硅浓度的小幅增加导致屈服应力大幅增加。据认为这是由于颗粒尺寸小,导致颗粒绝对数量大幅增加。《药典》并未明确界定药用辅料凡士林。因此,配方设计师必须注意选择合适的等级,并仔细控制该物质的加工过程,以获得质量稳定的药品。

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