Numerical Investigation of the Influence of a Splitter Plate on Mixing Transfer in the Ducts of a Rotary Energy Recovery Device
Abstract
:1. Introduction
Reference | Volumetric Mixing Rate | Method |
---|---|---|
Zhou et al. [18] | 3~16% | Adjusting operational parameters |
Liu et al. [19] | 3~6% | Adjusting operational parameters |
Xu et al. [20] | 2~10% | Adjusting operational parameters |
Wu et al. [21] | 2~9% | Endcover with groove-textured surface |
Xu et al. [22] | 2~9% | Adjusting operational parameters |
Yin et al. [23] | 2~6% | Adjusting operational and structural parameters |
Cao et al. [24] | 1–4% | Endcover with extended angle |
2. Numerical Methods
3. Results
3.1. Results of Volumetric Mixing Rate
3.2. The Control Effect of Splitter Plates on the “Entrance Effect”
3.3. The Control Effect of Splitter Plates on the Liquid Piston
4. Conclusions
- (1)
- Flow structure and vortex formation control: Effective suppression of swirling flows at the entrance was achieved when horizontal splitter plates were positioned at the duct inlet (as seen in experimental case C2). Moreover, the control of flow-induced vortices generated by the “entrance effect” was efficiently executed by splitter plates positioned at the center of the duct (as seen in experimental cases C4 and C5), preventing their propagation into the central duct region.
- (2)
- Salinity distribution and mass transfer: By efficiently suppressing the ‘entrance effect’ and flow-induced vortices, as observed in experimental case C2 and experimental cases C4 and C5, respectively, these configurations resulted in decreased flow intensity and the establishment of a more uniform salinity distribution. Consequently, the mass transfer between brine and seawater streams was significantly minimized.
- (3)
- Effect of splitter plates on volumetric mixing rate: The utilization of splitter plates consistently reduced the volumetric mixing rate across all experimental cases compared to the control case. This reduction was most notable when utilizing cross-spread splitter plates positioned at the center of the duct, as evidenced in experimental case C5, where a remarkable 57% decrease in volumetric mixing rate was achieved compared to the control case.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Liu, K.; Liu, X.; Wu, L.; Zhang, X.; Shi, B.; Zheng, L. Numerical Investigation of the Influence of a Splitter Plate on Mixing Transfer in the Ducts of a Rotary Energy Recovery Device. J. Mar. Sci. Eng. 2023, 11, 1804. https://doi.org/10.3390/jmse11091804
Liu K, Liu X, Wu L, Zhang X, Shi B, Zheng L. Numerical Investigation of the Influence of a Splitter Plate on Mixing Transfer in the Ducts of a Rotary Energy Recovery Device. Journal of Marine Science and Engineering. 2023; 11(9):1804. https://doi.org/10.3390/jmse11091804
Chicago/Turabian StyleLiu, Kai, Xuyu Liu, Lijuan Wu, Xingkai Zhang, Baocheng Shi, and Lixing Zheng. 2023. "Numerical Investigation of the Influence of a Splitter Plate on Mixing Transfer in the Ducts of a Rotary Energy Recovery Device" Journal of Marine Science and Engineering 11, no. 9: 1804. https://doi.org/10.3390/jmse11091804
APA StyleLiu, K., Liu, X., Wu, L., Zhang, X., Shi, B., & Zheng, L. (2023). Numerical Investigation of the Influence of a Splitter Plate on Mixing Transfer in the Ducts of a Rotary Energy Recovery Device. Journal of Marine Science and Engineering, 11(9), 1804. https://doi.org/10.3390/jmse11091804