建立了基于灭菌参数的蒸汽灭菌器空间实时解析CFD模型,以预测负载温度和细菌的理论灭活

Q3 Medicine
Manuel Feurhuber , Paul Burian , Marino Magno , Marco Miranda , Christoph Hochenauer
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引用次数: 10

摘要

本文提出了一个CFD模型,用于预测现代蒸汽灭菌器中的流体流量、流体温度、负载温度和细菌的理论失活,与目前最先进的蒸汽灭菌器模拟相比,该模型进行了三处重大修改。1)研究了未包裹载荷下的流体和载荷温度。通过对流体温度和载荷温度的测量来验证CFD模型。模拟温度与实测值的平均误差在0.4 k以下。2)研究了未包裹载荷下蒸汽灭菌器内的蒸汽质量。利用所建立的CFD模型,可以对蒸汽消毒器内的蒸汽质量进行时空分解预测。3)在CFD模型中加入一级反应动力学方法,根据灭菌参数预测蒸汽灭菌器中两种不同类型细菌的理论失活,以及未包裹载荷表面的理论失活。结果表明,CFD模型能够基于灭菌参数预测负载表面细菌的理论灭活量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of a spatially and timely resolved CFD model of a steam sterilizer to predict the load temperature and the theoretical inactivation of bacteria based on sterilization parameters

This paper presents a CFD model to predict the fluid flow, fluid temperature, load temperature and the theoretical inactivation of bacteria in a modern steam sterilizer, with three significant modifications compared to current state-of-the-art simulations of steam sterilizers. 1) The fluid and the load temperature was investigated for unwrapped load. Measurements of the fluid temperature and the load temperature were performed to validate the CFD model. The average error between the simulated and the measured temperatures was below 0.4 K. 2) The steam quality inside a steam sterilizer was investigated for unwrapped load. With the developed CFD model it is possible to predict the steam quality inside the steam sterilizer spatially and temporally resolved. 3) A first order reaction kinetic approach was added to the CFD model to predict the theoretical inactivation of two different types of bacteria in the steam sterilizer, as well as on the surface of the unwrapped load based on sterilization parameters. The results indicate that the CFD model is able to predict the theoretical inactivation of bacteria on the surface of the load, based on sterilization parameters.

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来源期刊
Physics in Medicine
Physics in Medicine Physics and Astronomy-Instrumentation
CiteScore
2.60
自引率
0.00%
发文量
9
审稿时长
12 weeks
期刊介绍: The scope of Physics in Medicine consists of the application of theoretical and practical physics to medicine, physiology and biology. Topics covered are: Physics of Imaging Ultrasonic imaging, Optical imaging, X-ray imaging, Fluorescence Physics of Electromagnetics Neural Engineering, Signal analysis in Medicine, Electromagnetics and the nerve system, Quantum Electronics Physics of Therapy Ultrasonic therapy, Vibrational medicine, Laser Physics Physics of Materials and Mechanics Physics of impact and injuries, Physics of proteins, Metamaterials, Nanoscience and Nanotechnology, Biomedical Materials, Physics of vascular and cerebrovascular diseases, Micromechanics and Micro engineering, Microfluidics in medicine, Mechanics of the human body, Rotary molecular motors, Biological physics, Physics of bio fabrication and regenerative medicine Physics of Instrumentation Engineering of instruments, Physical effects of the application of instruments, Measurement Science and Technology, Physics of micro-labs and bioanalytical sensor devices, Optical instrumentation, Ultrasound instruments Physics of Hearing and Seeing Acoustics and hearing, Physics of hearing aids, Optics and vision, Physics of vision aids Physics of Space Medicine Space physiology, Space medicine related Physics.
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