Acoustic Optimization of a Flow Through Ultrasonic Cavitation Reactor for Treatment of Cellulose Fibers

Taraka R K Pamidi, Örjan Johansson, Torbjörn Löfqvist
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Abstract

In pulp and paper manufacturing cellulose fibers are modified in various process steps to obtain an end product with certain specifications. In this chain of interlinked processes, the mechanical refining stage has a significant impact on modifying the properties of the fiber wall. However, refining is identified as the most energy intensive process in paper manufacturing and in order to reduce the energy use for a more sustainable process, the development of alternative refining methods are of increasing interest. Ultrasound cavitation has proved to be a efficient refining process but so far it is limited to small volumes and batch process’s. The developed ultrasonic reactor is capable of handling larger fiber volumes in a continuous, scalable, flow process. The proposed method could therefore be an alternative and efficient way of processing fibers to minimize energy usage and waste. In this study, both numerical simulations and experiments are combined and analysed to establish a design of a scalable, flow-through ultrasound reactor. The implemented model is based on the linearized wave equation in the frequency domain with appropriate addition of nonlinear attenuation by cavitation bubbles. The influence of ultrasound cavitation was experimentally verified by characterization of the modification of CTMP softwood cellulose fiber properties. Results shows that the proposed method using ultrasound cavitation can modify the fiber’s mechanical properties at energy levels of 804 kWh/bdt. However, there was no significant change in paper strength properties as per ISO 1924-3.
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超声空化反应器处理纤维素纤维的声学优化研究
在制浆造纸中,纤维素纤维在不同的工艺步骤中进行改性,以获得具有一定规格的最终产品。在这一系列相互关联的过程中,机械精炼阶段对纤维壁性能的改变有着重要的影响。然而,精炼被认为是造纸过程中最耗能的过程,为了减少能源的使用以实现更可持续的过程,开发替代精炼方法日益引起人们的兴趣。超声空化已被证明是一种有效的精炼工艺,但目前仅限于小批量和批量工艺。所开发的超声波反应器能够在连续的、可扩展的、流动的过程中处理更大的纤维体积。因此,所提出的方法可能是加工纤维的一种替代和有效的方法,以尽量减少能源的使用和浪费。在这项研究中,数值模拟和实验相结合,分析建立了一个可扩展的,流动超声反应器的设计。所实现的模型基于频域线性化波动方程,并适当加入了空化气泡的非线性衰减。通过表征超声空化对CTMP软木纤维素纤维性能的影响,验证了超声空化的影响。结果表明,采用超声空化的方法可以在804 kWh/bdt的能量水平上改变纤维的力学性能。然而,按照ISO 1924-3标准,纸张强度特性没有显著变化。
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