Effect of Shear Flow on Drag Reducer Performance and Its Microscopic Working Mechanism
Abstract
:1. Introduction
2. Experiment Apparatus and Materials
2.1. Experiment Apparatus
2.2. Experimental Materials
3. Experimental Principle and Method
3.1. Experimental Principle
3.2. Experimental Method
3.2.1. Effect of Flow Shear on Drag-Reduction Performance of Drag Reducer
3.2.2. Effects of Flow Shear on Grain Size and Rheological Properties of Drag Reducer Solution
3.2.3. Effect of Flow Shear on Micro-Structure of the Drag Reducer Solution
4. Results and Discussion
4.1. Effect of Flow Shear on Drag-Reduction Performance
4.1.1. Effect of Low-Rate Shear Flow on the Performance of Drag Reducer Solution
4.1.2. Effect of High Shear Rate Flow on Performance of the Drag Reducer Solution
4.2. Variation Patterns of Grain Sizes and Rheological Behavior of Drag Reducer Solution under Shear Flow
4.3. Variation Pattern of Micro-Structure of the Drag Reducer Solution
5. Conclusions
- With the increase in shear rate, the drag-reduction rate of the drag reducer solution will first rise to a peak value and then fall gradually. Then, with the increase in cumulative shear flow time, the drag-reduction rate will drop more significantly. Meanwhile, the shear rate causing drag-reduction drop has a critical value; only when the flow shear rate reaches this value will the performance of the drag reducer start to be damaged.
- When subjected to flow shear higher than the critical rate, polymer agglomerates in the drag reducer solution will decrease in size. The higher the flow shear rate, the smaller the peak values of grain sizes and the higher the peak intensity of agglomerates in the solution.
- The drag reducer solution shows typical characteristics of non-Newtonian fluid, which can be weakened by flow shear. The stronger the flow shear, the weaker the non-Newtonian fluid characteristics and the poorer the rheological behavior of the solution.
- The damage of the net-like structure of the drag reducer is the main cause of degeneration of drag-reduction performance. Micro-mechanism research shows that the destruction of net-like structure caused by shear failure makes the polymer solution weaker in non-Newtonian fluid features (drop in viscoelasticity), leads to an increase in turbulent dissipation, and eventually results in the deterioration of drag-reduction capability.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Liu, Z.; Tian, Z.; Yuan, H.; Li, Y.; Ge, H.; Zhou, F. Effect of Shear Flow on Drag Reducer Performance and Its Microscopic Working Mechanism. Processes 2022, 10, 1485. https://doi.org/10.3390/pr10081485
Liu Z, Tian Z, Yuan H, Li Y, Ge H, Zhou F. Effect of Shear Flow on Drag Reducer Performance and Its Microscopic Working Mechanism. Processes. 2022; 10(8):1485. https://doi.org/10.3390/pr10081485
Chicago/Turabian StyleLiu, Zhiyu, Zaifu Tian, Haoren Yuan, Yuan Li, Hongkui Ge, and Fujian Zhou. 2022. "Effect of Shear Flow on Drag Reducer Performance and Its Microscopic Working Mechanism" Processes 10, no. 8: 1485. https://doi.org/10.3390/pr10081485
APA StyleLiu, Z., Tian, Z., Yuan, H., Li, Y., Ge, H., & Zhou, F. (2022). Effect of Shear Flow on Drag Reducer Performance and Its Microscopic Working Mechanism. Processes, 10(8), 1485. https://doi.org/10.3390/pr10081485