A Method to Investigate Sterilization Processes and the Bacterial Inactivation Resolved in Time and Space.

Manuel Feurhuber, Thomas Taupitz, Frank Mueller, Carsten Frank, Christoph Hochenauer, Valentin Schwarz
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Abstract

In this study, a computational fluid dynamics (CFD) model was developed to predict all relevant phenomena occurring during a moist heat sterilization process at a high level of temporal and spatial resolution. The developed CFD model was used to simulate the distribution of, for example, pressure, temperature, and residual air within a large-scale industrial steam autoclave (multiphase flow models), which was not published until now. Moreover, the thermodynamic behavior and distribution of fluids and temperatures inside the sterilization load were simulated and were verified with measurements. Based on the obtained sterilization temperature profiles in connection with the sterilization environment (e.g., non-condensable gases, natural convection), bacterial inactivation could be simulated. A complete moist heat sterilization process was simulated, including all relevant phenomena inside an autoclave chamber and a Peritoneal Dialysis Bag System (PDBS), which represents a complex sterilization item. To verify the simulation results, simulated pressures and temperatures were compared with measurement data for both the autoclave chamber and the PDBS. The results show that the simulated and measured values were in excellent accordance. By using the novel CFD model, the distribution of steam and residual air inside the autoclave chamber, as well as the natural convection inside the sterilization load, could be precisely predicted. To predict the inactivation of Geobacillus stearothermophilus inside different moist heat environments, the CFD model was extended with bacterial inactivation kinetics based on measurement data. The simulation results clearly indicate that our developed CFD model can be used to predict the inactivation kinetics of bacteria, depending on the sterilization temperature profile of the sterilization process as well as the moist heat sterilization environment, and to resolve the kinetics in time and space. Therefore, the developed CFD model represents a powerful tool that might be used in the future to predict, for example, "worst case" locations for any given autoclave and sterilization load or any other relevant process parameter, enabling the operator to develop an effective sterilization process.

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一种在时间和空间上研究灭菌过程和细菌灭活的方法。
在本研究中,建立了一个计算流体动力学(CFD)模型,以高时间和空间分辨率预测湿热灭菌过程中发生的所有相关现象。所建立的CFD模型用于模拟大型工业蒸汽高压釜内的压力、温度和残余空气的分布(多相流模型),该模型至今尚未发表。此外,还模拟了灭菌负荷内流体和温度的热力学行为和分布,并进行了实测验证。根据获得的灭菌温度曲线与灭菌环境(如NCGs、自然对流)的关系,可以模拟细菌的灭活。模拟了一个完整的湿热灭菌过程,包括高压灭菌室和腹膜透析袋系统(PDBS)内的所有相关现象,这是一个复杂的灭菌项目。为了验证模拟结果,将模拟的压力和温度与高压灭菌器腔室和PDBS的测量数据进行了比较。结果表明,模拟值与实测值吻合良好。利用新的CFD模型,可以精确地预测高压灭菌器腔内蒸汽和残余空气的分布以及灭菌负荷内的自然对流。为了预测嗜热硬脂地杆菌在不同湿热环境下的失活,基于实测数据对CFD模型进行了细菌失活动力学扩展。仿真结果表明,所建立的CFD模型可以根据灭菌过程的温度分布和湿热灭菌环境来预测细菌的灭活动力学,并在时间和空间上求解动力学。因此,所开发的CFD模型代表了一个强大的工具,可以在未来用于预测,例如,对于任何给定的高压灭菌器和灭菌负荷或任何其他相关工艺参数,″最坏情况″位置,使操作人员能够开发有效的灭菌工艺。
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CiteScore
1.90
自引率
0.00%
发文量
34
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