气相中不同颗粒结构与可磁化纤维脱离的实验研究

IF 2.5 4区 工程技术 Q3 CHEMISTRY, ANALYTICAL Separations Pub Date : 2023-11-22 DOI:10.3390/separations10120579
Julia Szabadi-Fuchs, J. Meyer, Achim Dittler
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引用次数: 0

摘要

目前的一个研究课题是在气体颗粒分离中应用磁效应来分离纤维收集器中的积聚颗粒。初步研究已经表明,在单根纤维发生单次偏转后,紧凑的颗粒结构会在磁力诱导下发生脱离行为。在本研究中,研究了在一定参数范围内,不同形态的颗粒结构从单根纤维上的脱离行为与纤维上的颗粒装载阶段、外部磁通密度、流入速度和纤维再生次数的函数关系。具有非磁性的扩散性和更紧凑的粒子结构沉积在可磁化的单根光纤上。通过施加外部磁场,光纤被磁化并产生扭转力矩。沉积在纤维上的粒子结构在加速力的作用下脱离。使用高速照相机观察颗粒结构的脱离,并对图像序列进行分析。通过确定纤维偏转前后的投影面积,可以计算出再生程度。通过磁力诱导再生,可以实现接近 100% 的高再生度。重复的光纤偏转可以改善颗粒结构的分离。磁诱导再生适用于无法逆流的应用场合,可在线或离线进行。由于再生过程温和,与喷射脉冲清洗等方式相比,清洁气体侧产生的排放物更少。这使得更容易达到排放限制,并简化了产品回收。
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Experimental Investigations of the Detachment of Different Particle Structures from a Magnetizable Fiber in the Gas Phase
A current subject of research is the application of magnetic effects for the detachment of accumulated particles of fibrous collectors in gas particle separation. Initial studies have already shown the magnetically induced detachment behavior of a compact particle structure after a single deflection from a single fiber. In this study, the detachment behavior of particle structures with different morphologies from a single fiber is investigated as a function of the particle loading stage on the fiber, the external magnetic flux density, the inflow velocity and the number of regenerations of the fiber for a certain parameter range. Diffusive and more compact particle structures with non-magnetic properties are deposited on the magnetizable single fiber. By applying an external magnetic field, the fiber is magnetized and experiences a torsional moment. The deposited particle structures on the fiber are detached by the acceleration forces. The detachment of the particle structures is observed using a high-speed camera and the image sequences are analyzed. By determining the projection area before and after the fiber deflection, a degree of regeneration is calculated. With magnetic-induced regeneration, high degrees of regeneration close to 100% can be achieved. Repetitive fiber deflections improve the detachment of the particle structures. The magnetic-induced regeneration is suitable for applications where flow reversal is not possible and can be performed either online or offline. Due to the gentle regeneration, fewer emissions are produced on the clean gas side than, for example, with jet pulse cleaning. It makes it easier to achieve emission limits and simplifies product recovery.
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来源期刊
Separations
Separations Chemistry-Analytical Chemistry
CiteScore
3.00
自引率
15.40%
发文量
342
审稿时长
12 weeks
期刊介绍: Separations (formerly Chromatography, ISSN 2227-9075, CODEN: CHROBV) provides an advanced forum for separation and purification science and technology in all areas of chemical, biological and physical science. It publishes reviews, regular research papers and communications. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. There are, in addition, unique features of this journal: Manuscripts regarding research proposals and research ideas will be particularly welcomed. Electronic files and software regarding the full details of the calculation and experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material. Manuscripts concerning summaries and surveys on research cooperation and projects (that are funded by national governments) to give information for a broad field of users. The scope of the journal includes but is not limited to: Theory and methodology (theory of separation methods, sample preparation, instrumental and column developments, new separation methodologies, etc.) Equipment and techniques, novel hyphenated analytical solutions (significantly extended by their combination with spectroscopic methods and in particular, mass spectrometry) Novel analysis approaches and applications to solve analytical challenges which utilize chromatographic separations as a key step in the overall solution Computational modelling of separations for the purpose of fundamental understanding and/or chromatographic optimization
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