Influence of size and surface acidity of silica nanoparticles on inhibition of the formation damage by bentonite-free water-based drilling fluids. Part II: dynamic filtration

2020 ◽  
Vol 11 (1) ◽  
pp. 015011 ◽  
Author(s):  
Johanna Vargas Clavijo ◽  
Leidy J Roldán ◽  
Laura Valencia ◽  
Sergio H Lopera ◽  
Richard D Zabala ◽  
...  
2019 ◽  
Author(s):  
Johanna Vargas ◽  
Leidy Johanna Roldán ◽  
Sergio Hernando Lopera ◽  
José Carlo Cardenas ◽  
Richard Disney Zabala ◽  
...  

Author(s):  
Erfan Veisi ◽  
Mastaneh Hajipour ◽  
Ebrahim Biniaz Delijani

Cooling the drill bit is one of the major functions of drilling fluids, especially in high temperature deep drilling operations. Designing stable drilling fluids with proper thermal properties is a great challenge. Identifying appropriate additives for the drilling fluid can mitigate drill-bit erosion or deformation caused by induced thermal stress. The unique advantages of nanoparticles may enhance thermal characteristics of drilling fluids. The impacts of nanoparticles on the specific heat capacity, thermal conductivity, rheological, and filtration control characteristics of water‐based drilling fluids were experimentally investigated and compared in this study. Al2O3, CuO, and Cu nanoparticles were used to prepare the water-based drilling nanofluid samples with various concentrations, using the two-step method. Transmission Electron Microscopy (TEM) and X-Ray Diffraction (XRD) were utilized to study the nanoparticle samples. The nanofluids stability and particle size distribution were, furthermore, examined using Dynamic Light Scattering (DLS). The experimental results indicated that thermal and rheological characteristics are enhanced in the presence of nanoparticles. The best enhancement in drilling fluid heat capacity and thermal conductivity was obtained as 15.6% and 12%, respectively by adding 0.9 wt% Cu nanoparticles. Furthermore, significant improvement was observed in the rheological characteristics such as the apparent and plastic viscosities, yield point, and gel strength of the drilling nanofluids compared to the base drilling fluid. Addition of nanoparticles resulted in reduced fluid loss and formation damage. The permeability of filter cakes decreased with increasing the nanoparticles concentration, but no significant effect in filter cake thickness was observed. The results reveal that the application of nanoparticles may reduce drill-bit replacement costs by improving the thermal and drilling fluid rheological characteristics and decrease the formation damage due to mud filtrate invasion.


2016 ◽  
Author(s):  
Mojtaba Kalhor Mojammadi ◽  
Shervin Taraghikhah ◽  
Koroush Tahmasbi Nowtaraki

2008 ◽  
Author(s):  
Prasad B. Kerkar ◽  
Shirish Liladhar Patil ◽  
Godwin Amajuoyi Chukwu ◽  
Abhijit Yeshwant Dandekar ◽  
Santanu Khataniar

2011 ◽  
Vol 347-353 ◽  
pp. 1627-1632
Author(s):  
Jiao Jiao Geng ◽  
Jie Nian Yan ◽  
Wen Yi Chen ◽  
Chun Yao Peng ◽  
Jing Jie Zuo ◽  
...  

Formation damage is prone to occur during drilling into the formations with medium/high permeability in Jabung Oilfield, Indonesia. To prevent formation damage and enhance productivity of oil wells, a novel low-damage drilling fluid was developed on the basis of the modification of currently used KCl polymer drilling fluid using a special technology. By virtue of the synergistic effect of ideal packing agents and film-forming agents, a sealing layer with high pressure bearing capability can be formed on the rock surface of borehole, so as to prevent drilling fluids from invading into formations effectively. It is shown from the results of numerous experiments that this drilling fluid has excellent rheological properties, very low filtration rates (API filtration rate<4mL and HTHP filtration rate≤12.5mL), good lubricity, and strongly inhibitive character to shale. Also, it exhibits remarkable effectiveness of formation protection indicated by the returned permeability as high as 88.11% and extremely low dynamic filtration rate lower than 4mL.


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