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医药釜中微槽密封的流体动力润滑效果研究。

Investigation on hydrodynamic lubrication effect of micro groove seal in pharmaceutical kettle.

机构信息

School of Medicine, Jiangsu University, Zhenjiang, Jiangsu, China.

School of Automotive and Traffic Engineering, Jiangsu University, Zhenjiang, Jiangsu, China.

出版信息

PLoS One. 2023 Sep 11;18(9):e0291360. doi: 10.1371/journal.pone.0291360. eCollection 2023.

Abstract

To improve the lubrication conditions of the seal in the pharmaceutical kettles, a specific shape groove with micrometer level on the sealing end face is set up to fully utilize the fluid dynamic pressure effect under given working conditions. A numerical model is developed to solve the pressure distribution in the micro groove, where any groove shape can be used. The numerical form of the model is derived using the principle of mass conservation without considering the film thickness derivative term, and the coordinate transformation is introduced to adapt to the curved shape of the groove. The cavitation phenomenon is taken into account in the flow field of the seal, and the JFO cavitation model is introduced to modify the Reynolds equation. The diversity of groove shapes is considered, and the node adsorption method is adopted to approximate the groove shape. The model is established based on the principle of mass conservation, which can adapt to any different groove shapes and has a strong scalability. By mathematical modeling and solving, the performances of the micro groove seal under different groove shapes are analyzed, providing a basis for the micro groove design of seal in pharmaceutical kettles.

摘要

为改善制药釜用密封的润滑条件,在密封端面上设置具有微米级水平的特定形状的凹槽,以充分利用给定工况下的流体动压效应。开发了一个数值模型来求解微槽中的压力分布,其中可以使用任何槽形。模型的数值形式是根据质量守恒原理推导出来的,不考虑膜厚导数项,并引入坐标变换以适应槽的弯曲形状。在密封的流场中考虑了空化现象,并引入 JFO 空化模型来修正雷诺方程。考虑了槽形的多样性,并采用节点吸附法来近似槽形。该模型基于质量守恒原理建立,可适应任何不同的槽形,具有很强的可扩展性。通过数学建模和求解,分析了不同槽形下微槽密封的性能,为制药釜用密封的微槽设计提供了依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7074/10495019/672846892638/pone.0291360.g001.jpg

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