Improved High-Pressure, High-Temperature (HPHT) Materials Qualification Using Dissolved H2S Concentration as the Sour Service Scalable Metric

被引:3
|
作者
Sherar, Brent W. A. [1 ]
Ellis, Peter [1 ]
Ning, Jing [1 ]
机构
[1] 11201 Greens Crossing Blvd, Houston, TX 77067 USA
关键词
ANSI/NACE MR0175/ISO 15156; ensemble Henry's law; fugacity; H2S activity; high-pressure; high-temperature wells; ionic-equation-of-state; material qualification; nonideal thermodynamics; partial pressure; sulfide stress cracking; sour service; HYDROGEN-SULFIDE; THERMODYNAMIC MODEL; AQUEOUS-SOLUTIONS; SOLUBILITY DATA; PHASE-BEHAVIOR; PURE WATER; ENTHALPY; CHLORIDE; DIOXIDE; PH;
D O I
10.5006/3867
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Gas phase H2S partial pressure (P-H2S) is associated with sulfide stress cracking (SSC) and is routinely used as the "scalable" parameter to qualify materials for high-pressure, high-temperature (HPHT) wells. Candidate materials for HPHT wells routinely require ANSI/NACE MR0175/ ISO 15156 compliance because a few mole ppm of H2S at high pressure may place the well beyond the 0.05 psia (0.3 kPa) sour service threshold. P-H2S has been accepted historically as the scalable sour severity parameter. However, as the total pressure increases, the relationship between PH2S and the dissolved H2S concentration becomes nonlinear. This limits the robustness of P-H2S as the sour severity metric. Thus, ISO 15156-1:2020 now permits the use of H2S fugacity (f(H2S)), H2S activity (a(H2S)), and H2S aqueous concentration (C-H2S) as alternatives for sour testing. This recent revision is based on evidence that f(H2S) and CH2S each provide better correlations to SSC at elevated total pressures than P-H2S. This paper will address the merits and challenges of using f(H2S) or C-H2S to define sour severity: we argue that C-H2S is a practical, experimentally verifiable approach, which can be used to validate ionic-equation of state frameworks used to characterize mildly sour HPHT environments.
引用
收藏
页码:1218 / 1232
页数:15
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