Application a novel thermo-sensitive copolymer as a potential rheological modifier for deepwater water-based drilling fluids

Author(s):  
Binqiang Xie ◽  
Xianbin Zhang ◽  
Yagang Li ◽  
Wei Liu ◽  
Mingwang Luo
2018 ◽  
Vol 917 ◽  
pp. 134-139
Author(s):  
Fan Liu ◽  
Guang Cheng Jiang ◽  
Kai Wang ◽  
Jin Xi Wang

In this paper, we demonstrated an artificial nanoparticles, Laponite, as a high performance rheological modifier in water-based drilling fluids. We made a comparison between Laponite nanoparticle and bentonite as rheological modifier in polyanionic cellulose (PAC) solution and weitghted water-based drilling fluids. In viscosity-shear rate test, both Laponite and bentonite could translate 0.5 wt.% PAC solution from Newton fluids to yield-pseudoplastic fluid. However, 1 wt.% Laponite was better in improving the shear-thinning behavior compared with 4 wt.% bentonite. In the stress-shear rate test, the results were fit with Bingham model with a high R2, and 1 wt.% Laponite/0.5 wt.% PAC suspension had a yield point of 5.19 Pa, which was higher than that of 4 wt.% bentonite/0.5 wt.% PAC suspension (3.13 Pa). Similarly, 1 wt.% Laponite/0.5 wt.% PAC suspension maintained a G’ of 12 Pa in the oscillation frequency sweep test, whereas G’ of 4%bentonite/0.5%PAC suspension was nearly 5 Pa. Particularly, 0.5 wt.% PAC /Laponite suspensions could maintain higher gel structure, yield point and better shear-thinning behaviors after 120°C hot rolling. The TEM image revealed that nanoscaled Laponite could form a “star network” with PAC in water, which explained the good rheological properties of PAC/LAP mixed suspensions. Besides, in the weighted drilling fluids, 1 wt.% Laponite could maintained a much higher gel strength compared with 4 wt.% bentonite.As the unique rheological properties, Laponite nanoparticles can greatly enhance abilities of water-based drilling fluids in circulating cuttings and making the borehole clean.


2018 ◽  
Vol 792 ◽  
pp. 125-132
Author(s):  
Kai Wang ◽  
Guan Cheng Jiang ◽  
Fan Liu ◽  
He Shi

This work demonstrated a nanosized material, magnesium aluminum silicate (MAS), as a rheological modifier for low-solid water-based drilling fluids (WBDs) to prompt the development of the safe and high-performance low-solid WBDs. To maintain good filtration property, the polyanionic cellulose (PAC) was introduced into the MAS suspension. Meanwhile, a comprehensive comparison between MAS cooperating with PAC and BT mixing with PAC was conducted. The addition of 0.5 wt% PAC increased the yield stress and generated better shear-thinning performance for 1 wt% MAS and 4 wt% bentonite (BT). The 1 wt% MAS/0.5 wt% PAC exhibited higher yield stress and shear-thinning performance than 4 wt% BT/0.5 wt% PAC. In addition, low-concentration MAS and MAS/PAC suspensions showed higher gel strength and rapider recovery performance compared with high-concentration BT and BT/PAC suspensions. MAS and MAS/PAC maintained excellent thermal stability, compared with other common rheological modifiers, such as xanthan gum (XG), hydroxyethyl cellulose (HEC). After hot rolling at 120 °C for 16 h, WBDs prepared by MAS/PAC exhibited a slight decrease of rheological parameters, which indicated high ability to resist high temperature. The XRF, particle size distribution, and TEM analysis revealed the mechanism of low-concentration MAS and MAS/PAC maintaining better shear-thinning performance, higher gel strength and yield stress. As the excellent rheological properties and thermal stability, MAS has the great potential to be a rheological modifier for low-solid WBDs.


2018 ◽  
Vol 161 ◽  
pp. 427-435 ◽  
Author(s):  
Kai Wang ◽  
Guancheng Jiang ◽  
Fan Liu ◽  
Lili Yang ◽  
Xiaoxiao Ni ◽  
...  

Materials ◽  
2021 ◽  
Vol 14 (15) ◽  
pp. 4171
Author(s):  
Rabia Ikram ◽  
Badrul Mohamed Jan ◽  
Akhmal Sidek ◽  
George Kenanakis

An important aspect of hydrocarbon drilling is the usage of drilling fluids, which remove drill cuttings and stabilize the wellbore to provide better filtration. To stabilize these properties, several additives are used in drilling fluids that provide satisfactory rheological and filtration properties. However, commonly used additives are environmentally hazardous; when drilling fluids are disposed after drilling operations, they are discarded with the drill cuttings and additives into water sources and causes unwanted pollution. Therefore, these additives should be substituted with additives that are environmental friendly and provide superior performance. In this regard, biodegradable additives are required for future research. This review investigates the role of various bio-wastes as potential additives to be used in water-based drilling fluids. Furthermore, utilization of these waste-derived nanomaterials is summarized for rheology and lubricity tests. Finally, sufficient rheological and filtration examinations were carried out on water-based drilling fluids to evaluate the effect of wastes as additives on the performance of drilling fluids.


Energies ◽  
2021 ◽  
Vol 14 (6) ◽  
pp. 1644
Author(s):  
Camilo Pedrosa ◽  
Arild Saasen ◽  
Bjørnar Lund ◽  
Jan David Ytrehus

The cuttings transport efficiency of various drilling fluids has been studied in several approaches. This is an important aspect, since hole cleaning is often a bottleneck in well construction. The studies so far have targeted the drilling fluid cuttings’ transport capability through experiments, simulations or field data. Observed differences in the efficiency due to changes in the drilling fluid properties and compositions have been reported but not always fully understood. In this study, the cuttings bed, wetted with a single drilling fluid, was evaluated. The experiments were performed with parallel plates in an Anton Paar Physica 301 rheometer. The results showed systematic differences in the internal friction behaviors between tests of beds with oil-based and beds with water-based fluids. The observations indicated that cutting beds wetted with a polymeric water-based fluid released clusters of particles when external forces overcame the bonding forces and the beds started to break up. Similarly, it was observed that an oil-based fluid wetted bed allowed particles to break free as single particles. These findings may explain the observed differences in previous cutting transport studies.


1993 ◽  
Vol 8 (04) ◽  
pp. 246-252 ◽  
Author(s):  
D.H. Zijsling ◽  
Roland Illerhaus
Keyword(s):  

2011 ◽  
Vol 26 (04) ◽  
pp. 484-491 ◽  
Author(s):  
Jay P. Deville ◽  
Brady Fritz ◽  
Michael Jarrett

Author(s):  
Wei-An Huang ◽  
Jing-Wen Wang ◽  
Ming Lei ◽  
Gong-Rang Li ◽  
Zhi-Feng Duan ◽  
...  

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