TY - JOUR
T1 - Measurements of intra-diffusion coefficients for gaseous binary mixtures
AU - Kobeissi, Sam
AU - Ling, Nicholas N. A.
AU - May, Eric F.
AU - Johns, Michael L.
PY - 2025/1/1
Y1 - 2025/1/1
N2 - Benchtop pulsed field gradient (PFG) nuclear magnetic resonance (NMR) measurements of the intra-diffusion coefficient (D*i ) for binary gaseous mixtures are presented as a function of composition, for temperature and pressure conditions broadly relevant to industrial and geological processes. This required the design, construction, and application of a novel NMR-compatible sapphire sample cell. Measurements were performed for methane-nitrogen, methane-helium, and methane-hydrogen mixtures, with compositions down to 0.5 mol% methane that were resolvable in a reasonable time frame. Consequently, extrapolation to infinite dilution was enabled, with the resultant values of D * i (xi = 0) compared with relevant mutual diffusion coefficients (D12) from both literature and as estimated using kinetic theory (Thorne-Enskog equation). In the case of methane-helium mixtures, agreement was overwhelmingly within experimental uncertainty across the temperature-pressure parameter space explored, whereas in the case of methane-nitrogen, the determined values of D * i (xi = 0) were slightly larger than D 12 data as predicted by kinetic theory. In the case of methane-hydrogen mixtures, simultaneous measurements of both methane and hydrogen intra-diffusion coefficients were possible. Agreement between D * i (xi = 0) and kinetic theory was comfortably within experimental uncertainty in the case of hydrogen but deviated in the case of methane.
AB - Benchtop pulsed field gradient (PFG) nuclear magnetic resonance (NMR) measurements of the intra-diffusion coefficient (D*i ) for binary gaseous mixtures are presented as a function of composition, for temperature and pressure conditions broadly relevant to industrial and geological processes. This required the design, construction, and application of a novel NMR-compatible sapphire sample cell. Measurements were performed for methane-nitrogen, methane-helium, and methane-hydrogen mixtures, with compositions down to 0.5 mol% methane that were resolvable in a reasonable time frame. Consequently, extrapolation to infinite dilution was enabled, with the resultant values of D * i (xi = 0) compared with relevant mutual diffusion coefficients (D12) from both literature and as estimated using kinetic theory (Thorne-Enskog equation). In the case of methane-helium mixtures, agreement was overwhelmingly within experimental uncertainty across the temperature-pressure parameter space explored, whereas in the case of methane-nitrogen, the determined values of D * i (xi = 0) were slightly larger than D 12 data as predicted by kinetic theory. In the case of methane-hydrogen mixtures, simultaneous measurements of both methane and hydrogen intra-diffusion coefficients were possible. Agreement between D * i (xi = 0) and kinetic theory was comfortably within experimental uncertainty in the case of hydrogen but deviated in the case of methane.
KW - Binary gaseous mixtures
KW - Intra-diffusion
KW - Mutual-diffusion
KW - Nmr pfg
UR - https://www.webofscience.com/api/gateway?GWVersion=2&SrcApp=uwapure5-25&SrcAuth=WosAPI&KeyUT=WOS:001369140200001&DestLinkType=FullRecord&DestApp=WOS_CPL
U2 - 10.1016/j.ces.2024.120952
DO - 10.1016/j.ces.2024.120952
M3 - Article
SN - 0009-2509
VL - 303
JO - Chemical Engineering Science
JF - Chemical Engineering Science
M1 - 120952
ER -