Classification Performance of a Novel Hydraulic Classifier Equipped with a W-Shaped Reflector
Abstract
:1. Introduction
2. Materials and Methods
2.1. Geometric Modeling and Grid Division
2.2. Boundary Conditions and Solutions Using Numerical Simulations
2.3. Materials
3. Simulation Results and Discussion
Classification Performances of a Classifier Embedded with a W-Shaped Reflector and a Traditional Classifier
4. Experimental Study
4.1. Experimental System
4.2. Classification Performances of the Two Classifiers
4.3. Effects of Structural Dimensions of a W-Shaped Reflector on Classification Performance
5. Conclusions
- (1)
- Differently from a traditional classifier, the new classifier proposed in this paper was set up with a W-shaped reflector at the bottom of the feed port, the purpose of which was to make the slurry re-fold back twice through the reflection of the W-shaped reflector and mix with upwelling water to form an interference settlement, thereby improving the grading accuracy. Through simulation and comparative experiments, it was shown that the W plate classifier was an improvement over the traditional classifier in terms of the yield and grading efficiency.
- (2)
- Compared with the traditional classifier, the tangential speed of the W-shaped classifier increased, while the axial velocity, turbulence kinetic energy, and turbulence dissipation rate decreased. This indicates that the particles were subjected to greater centrifugal force in the W-shaped classifier, the residence time was longer, and the flow field was more stable.
- (3)
- The gap size of the W-shaped reflector and the sorting chamber had a significant impact on the grading efficiency and grading accuracy of the classifier, and the gap being too large or too small adversely affected the grading performance. In this experiment, the bottom miscarriage rate, overflow yield rate, and the grading efficiency of particles of −45 μm were best obtained at a gap of 25 mm. Therefore, a reasonable structural size was conducive to the generation of suspended layers and improved the grading performance.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Structure | Value | Structure | Value |
---|---|---|---|
Length of feed pipe h1 (mm) | 550 | Diameter of overflow inlet d2 (mm) | 30 |
Length of classification cavity H1 (mm) | 500 | Diameter of water inlet d3 (mm) | 4 |
Diameter of feed pipe D (mm) | 30 | Diameter of tangential inlet d4 (mm) | 15 |
Diameter of underflow inlet do (mm) | 20 | Diameter of reflector bottom d5 (mm) | 90 |
Diameter of water inlet bin d1 (mm) | 20 | Diameter of reflector top d6 (mm) | 165 |
Particle Size (μm) | Interval Content (%) | Accumulated Content (%) |
---|---|---|
0–15 | 1.32 | 1.32 |
15–30 | 5.63 | 6.95 |
30–45 | 15.15 | 22.1 |
45–75 | 16.35 | 38.45 |
75–90 | 13.34 | 51.79 |
90–125 | 19.51 | 71.3 |
125–150 | 9.61 | 80.91 |
150–180 | 6.35 | 87.26 |
180–212 | 5.24 | 92.5 |
212–250 | 3.26 | 95.76 |
250–300 | 4.24 | 100 |
Size Range | Traditional Classifier | Classifier with W-Shaped Reflector | |||
---|---|---|---|---|---|
Underflow | Overflow | Underflow | Overflow | ||
Content (%) | 60.32 | 8.32 | 62.35 | 9.21 | |
Productivity (%) | 0–45 μm | 8.35 | 24.21 | 4.68 | 30.24 |
45–125 μm | 11.62 | 16.83 | 10.37 | 14.36 | |
125–300 μm | 25.34 | 13.65 | 31.69 | 8.66 | |
Yield (%) | 13.68 | 86.32 | 11.35 | 88.68 |
Classifier | The Content of 100–125 μm Particles/% | Classification Efficiency/% | ||
---|---|---|---|---|
Feed | Overflow | Underflow | ||
Traditional classifier | 71.3 | 90.62 | 45.32 | 54.14 |
Classifier embedded with a W-shaped reflector | 71.3 | 95.34 | 41.18 | 65.33 |
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Zhang, Y.; Duan, Y.; Jiang, L.; Cao, J. Classification Performance of a Novel Hydraulic Classifier Equipped with a W-Shaped Reflector. Separations 2022, 9, 212. https://doi.org/10.3390/separations9080212
Zhang Y, Duan Y, Jiang L, Cao J. Classification Performance of a Novel Hydraulic Classifier Equipped with a W-Shaped Reflector. Separations. 2022; 9(8):212. https://doi.org/10.3390/separations9080212
Chicago/Turabian StyleZhang, Yuekan, Yaoxu Duan, Lanyue Jiang, and Jingzhen Cao. 2022. "Classification Performance of a Novel Hydraulic Classifier Equipped with a W-Shaped Reflector" Separations 9, no. 8: 212. https://doi.org/10.3390/separations9080212
APA StyleZhang, Y., Duan, Y., Jiang, L., & Cao, J. (2022). Classification Performance of a Novel Hydraulic Classifier Equipped with a W-Shaped Reflector. Separations, 9(8), 212. https://doi.org/10.3390/separations9080212