2022
DOI: 10.1002/ese3.1212
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Genetic analysis and identification of low‐resistivity gas reservoirs of southwestern Sulige gas field in China

Abstract: Sulige gas field is the largest natural gas producing area in China. Due to the "water blocking" effect, the gas-water layer significantly influences the development of gas reservoirs. The existence of low-resistivity gas layers in the He 8 member of the Shihezi Formation in the southwestern Sulige gas field makes it challenging to distinguish the gas layers from the gas-water layers using conventional identification methods. To effectively identify the low-resistivity gas layers, their genetic mechanisms are … Show more

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Cited by 3 publications
(7 citation statements)
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References 19 publications
(18 reference statements)
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“…Low resistivity in oil-bearing zones can lead to low contrast with water-bearing zones resulting in water saturation above 50% due to which they can be overlooked and bypassed [1,2]. Low resistivity and low contrasts can be associated with water salinity, clay type and micro-porosity, presence of conductive minerals, anisotropy, bed thickness and bed dip, drilling mud invasion, and logging tool resolution [1][2][3][4][5]. High salinity interstitial water causes low resistivity within the pay zone, while low salinity water can cause low contrast pays.…”
Section: Low Resistivity Reservoirsmentioning
confidence: 99%
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“…Low resistivity in oil-bearing zones can lead to low contrast with water-bearing zones resulting in water saturation above 50% due to which they can be overlooked and bypassed [1,2]. Low resistivity and low contrasts can be associated with water salinity, clay type and micro-porosity, presence of conductive minerals, anisotropy, bed thickness and bed dip, drilling mud invasion, and logging tool resolution [1][2][3][4][5]. High salinity interstitial water causes low resistivity within the pay zone, while low salinity water can cause low contrast pays.…”
Section: Low Resistivity Reservoirsmentioning
confidence: 99%
“…The main features of the low-resistivity pay are the abundant microporosity and high irreducible brine saturation resulting from cementation, clay coating, or clay bridging within pores and in finegrained sandstones [1,3]. Due to the lack of vertical resolution, the tools give an average resistivity measurement over the bedded sequences with laminar shales.…”
Section: Low Resistivity Reservoirsmentioning
confidence: 99%
“…Shifting to the left indicates more water-wet and shifting to the right indicates more oil-wet contact between the rock and fluid. In the result, the following pairs of Kr with the specific crossing points were used to build the cases: Case 1 with Sw = 0.58 for (1, 2); Case 2 with Sw = 0.68 for (3,4); Case 3 with Sw = 0.48 for (5,6); Case 4 with Sw = 0.51 for (5, 2); Case 5 with Sw = 0.63 for (3, 2); Case 6 with Sw = 0.61 for (1,4); and Case 7 with Sw = 0.6 for (7,8). Crossing points and intervals of Sw are shown in Table 2 Thus, in Wells G, C and B, Kv/Kh = 1/1 provides a better match to the observed WPR because of the higher WPR than predicted using 1/10, while using 1/1 predicted a better match in Well G, because of lower WPR.…”
Section: Influence Of Relative Permeability On Water Productionmentioning
confidence: 99%
“…For example, no resistivity contrast between oil and water zones was observed for the reservoirs in Sudan which were bypassed in the past [2]. Low resistivity and low contrasts can be associated with water salinity, clay type, micro-porosity, the presence of conductive minerals, anisotropy, bed thickness, bed dip, drilling mud invasion, and logging tool resolution [1][2][3][4][5]. High-salinity interstitial water causes low resistivity within the pay zone, while low-salinity water can cause low contrast in the pay zone.…”
Section: Introduction 1low Resistivity Reservoirsmentioning
confidence: 99%
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