000 03326nam a2200301 4500
005 20260520010403.0
008 260224s2018 xxu esp
041 _aEspañol
082 _a068.82 553.28 C62 2018 0015650
245 0 0 _aEnsayo de barrido para mejorar la recuperación de petróleo con un fluido multipropósito
260 _a
_b
_c2018
270 _a02/09/2025 ; 28/03/2019
300 _a17 p. ; 397-414
520 _aThe recovery of heavy crude oil with high reservoir temperatures represents a challenge for improved oil recovery (EOR) with the application of chemical products (CEOR) as it is necessary to develop new polymers and / or their byproducts that will provide greater resistance to thermal degradation.This work focuses on the development of a multipurpose fluid consisting of a polyacrylamide (P), a mixture of surfactants (S) and an additive (A), resulting in a PSA fluid whose objective is to become a viscosifying agent, with ability to decrease the interfacial tension oil-brine and with the distinctive feature of decreasing the viscosity of the crude oil stored in the reservoir rock.The first step was to analyze the effect of the additive (A) on the rheology of the polymer-surfactant (SP) with an Anton Paar rheometer and on the interfacial tension between oil and brine with a Spinning Drop. The effect of the additive in individual form was analyzed on two heavy crude g the rheological behavior in a wide range of cut-off rates (1 to 1000 s-1) and in a temperature range (35 °C to 80 °C). From the results, a crude oil was selected and a dynamic laboratory-scale sweep test was carried out in a Triaxial cell, using a berea plugsandstone core as rock, under conditions of reservoir pressure and temperature. Petrophysical determinations carried out in the laboratory allow to have the characteristics of the porous medium, such as porosity (F), pore volume (VP) and absolute permeability (kabsw).As a strategy of the sweep, it was established to inject different displacing fluids having conditioned the porous medium to the residual oil saturation (Sor). The sequential injection for this test was 0.35 VP of the Polymer-Surfactant-Additive (PSA) formulation, 4 VP of the Polymer-Additive (PA) formulation and 10 VP of brine. With this injection strategy in the application of the CEOR process it was possible to recover 66.40% of Sor. With reference to the OOIP, the total recovery achieved by secondary and sequentially by tertiary was 81.50%.Resistance factors of the order of 2 are usual values for these processes and the retention of the polymer in the rock of 0.034 mg / g is within the economic margin.io
773 _g
942 _cCONGTP
100 1 _aGonzález, Esteban
_96174
100 1 _aFernández, Laura
_955781
100 1 _aAbrigo, Sergio
_955779
100 1 _aPizarro, Agustín
_958699
100 1 _aPrieto, José
_958700
111 2 _aCongreso de Exploración y Desarrollo de Hidrocarburos (10mo. : 2018 nov. 5 - 9 : Mendoza)
_9573
111 2 _aSimposio de Desarrollo de Hidrocarburos (2018 nov. 5 - 9 : Mendoza)
_9692
650 0 _aPoliacrilamidas
_958701
650 0 _aSurfactantes
_939905
999 _c192792
_d192792
856 _uhttps://biblioteca.iapg.org.ar/ArchivosAdjuntos/Conexplor2018/SDH/1680.pdf