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Research of CWS' Particle Size Distribution based on Ultrasonic Attenuation Theory
Author(s) -
Weidong Wang,
Chenglian Zhang,
Fengge Chu
Publication year - 2010
Publication title -
international journal of information technology and computer science
Language(s) - English
Resource type - Journals
eISSN - 2074-9015
pISSN - 2074-9007
DOI - 10.5815/ijitcs.2010.01.04
Subject(s) - coal , particle size distribution , attenuation , coal water , slurry , computer science , granularity , particle (ecology) , particle size , process engineering , environmental science , materials science , geology , environmental engineering , waste management , optics , physics , paleontology , oceanography , engineering , operating system
the key to reduce coal pollution is the development of clean coal technology and the improvement of the backward coal-burning technology. The coal water slurry (CWS) is the first substitute of the oil. The particle size distribution of CWS plays an important role in the quality control of CWS. Now there are three methods that are used to analysis the particle size distribution of CWS, screening method, settlement method, laser method. These methods produce some disadvantages when be used to forecast the distribution of CWS. Thus, this article proposes an ultrasonic method with effective medium theory model which can be accurately reflected in the acoustic attenuation characteristics of coal-water slurry based on structural average. Experimental simulation proved that effective medium model is fully capable of achieving on-line detection of coal-water slurry particle size, for detection of fine-and coarse-sized particle size distribution. Non-linear relationship between attenuation and particle size, the three-frequency method can be used to inverse calculation of its. Which we can achieve CWS granularity on-line, and continuously control the quality of CWS.

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