Applying variable viscosity to numerical simulation of slurry flow

Author(s):  
João Rodolfo Januário ◽  
Cristiana Maia
2018 ◽  
Vol 169 ◽  
pp. 393-404 ◽  
Author(s):  
GuangChun Song ◽  
YuXing Li ◽  
WuChang Wang ◽  
Kai Jiang ◽  
Zhengzhuo Shi ◽  
...  

2020 ◽  
Vol 10 (9) ◽  
pp. 3027
Author(s):  
Cong Lu ◽  
Li Ma ◽  
Zhili Li ◽  
Fenglan Huang ◽  
Chuhao Huang ◽  
...  

For the development of tight oil reservoirs, hydraulic fracturing employing variable fluid viscosity and proppant density is essential for addressing the problems of uneven placement of proppants in fractures and low propping efficiency. However, the influence mechanisms of fracturing fluid viscosity and proppant density on proppant transport in fractures remain unclear. Based on computational fluid dynamics (CFD) and the discrete element method (DEM), a proppant transport model with fluid–particle two-phase coupling is established in this study. In addition, a novel large-scale visual fracture simulation device was developed to realize the online visual monitoring of proppant transport, and a proppant transport experiment under the condition of variable viscosity fracturing fluid and proppant density was conducted. By comparing the experimental results and the numerical simulation results, the accuracy of the proppant transport numerical model was verified. Subsequently, through a proppant transport numerical simulation, the effects of fracturing fluid viscosity and proppant density on proppant transport were analyzed. The results show that as the viscosity of the fracturing fluid increases, the length of the “no proppant zone” at the front end of the fracture increases, and proppant particles can be transported further. When alternately injecting fracturing fluids of different viscosities, the viscosity ratio of the fracturing fluids should be adjusted between 2 and 5 to form optimal proppant placement. During the process of variable proppant density fracturing, when high-density proppant was pumped after low-density proppant, proppants of different densities laid fractures evenly and vertically. Conversely, when low-density proppant was pumped after high-density proppant, the low-density proppant could be transported farther into the fracture to form a longer sandbank. Based on the abovementioned observations, a novel hydraulic fracturing method is proposed to optimize the placement of proppants in fractures by adjusting the fracturing fluid viscosity and proppant density. This method has been successfully applied to more than 10 oil wells of the Bohai Bay Basin in Eastern China, and the average daily oil production per well increased by 7.4 t, significantly improving the functioning of fracturing. The proppant settlement and transport laws of proppant in fractures during variable viscosity and density fracturing can be efficiently revealed through a visualized proppant transport experiment and numerical simulation study. The novel fracturing method proposed in this study can significantly improve the hydraulic fracturing effect in tight oil reservoirs.


Fuel ◽  
2021 ◽  
pp. 122426
Author(s):  
Xiang Liu ◽  
An Yuan ◽  
Yuxing Li ◽  
Zhihua Wang ◽  
Zhiyuan Wang ◽  
...  

2010 ◽  
Vol 136 (2) ◽  
pp. 50-57
Author(s):  
Samuel Frimpong ◽  
Oluropo Rufus Ayodele ◽  
Kwame Awuah-Offei ◽  
Osei Brown

2020 ◽  
Vol 25 (3) ◽  
pp. 319
Author(s):  
Shupeng Yao ◽  
Yuxing Li ◽  
Wuchang Wang ◽  
Guangchun Song ◽  
Kai Jiang ◽  
...  

2019 ◽  
Vol 5 (10) ◽  
pp. 20462-20477
Author(s):  
João Rodolfo Januário ◽  
Cristiana Brasil Maia

2006 ◽  
Vol 2006.59 (0) ◽  
pp. 81-82
Author(s):  
Hirofumi MORISHITA ◽  
Katsuya NAGAYAMA ◽  
Keiichi KIMURA ◽  
Kazuhiro TANAKA

2020 ◽  
Vol 306 ◽  
pp. 01007
Author(s):  
Jinchao Fan ◽  
Benchun Yao ◽  
Yi Hao ◽  
Shimin Zhang ◽  
Xiaoxiao Zhu

In this paper, we propose a novel pipeline cleaning method utilizing slurry. The reason why slurry can be used for pipeline cleaning is that the collisions between the particles and the contaminant in the pipe wall can enhance the cleaning effect. A slurry with polypropylene particles embedded in water is used to cleaning a horizontal pipe is conducted to realize this method. Because the flow characteristics of the slurry is crucial for the cleaning process, it is valuable to conduct a simulation and investigate the influence of several different factors including the convey velocity and the particle size. A 3D CFD-DEM model has been established. The indicators including pressure loss, particle accumulation level at the top of the pipe are choses to characterize the slurry flow and the influence of convey velocity and particle size has been investigated accordingly. In addition, an effective method is proposed to determine the critical convey velocity for each size of the particle.


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