Experimental study on hydrate saturation evaluation based on complex electrical conductivity of porous media
العنوان: | Experimental study on hydrate saturation evaluation based on complex electrical conductivity of porous media |
---|---|
المؤلفون: | Lanchang Xing, Weifeng Han, Bin Wang, Shengchang Cao, Jiale Niu, Shuli Zhang, Wei Zhoutuo, Wei Wei, Liyun Lao, Xinmin Ge |
المصدر: | Journal of Petroleum Science and Engineering. 208:109539 |
بيانات النشر: | Elsevier BV, 2022. |
سنة النشر: | 2022 |
مصطلحات موضوعية: | Materials science, Phase angle, Clathrate hydrate, Thermodynamics, Conductivity, Geotechnical Engineering and Engineering Geology, Frequency dispersion, Fuel Technology, Critical frequency, Electrical resistivity and conductivity, Conductance, Polarization, Complex electrical conductivity, Information fusion, Hydrate saturation, Hydrate, Saturation (chemistry), Porous medium |
الوصف: | The hydrate saturation is a critical parameter in the evaluation of gas hydrate reservoirs. The complex characteristics of hydrate-bearing sediments pose challenges to the reliability of conventional geophysical techniques for hydrate saturation evaluation. In this paper, we present a study on developing a novel approach to characterize the electrical properties of hydrate-bearing porous media and to evaluate the hydrate saturation quantitatively based on parameters of the complex electrical conductivity. In the laboratory experiments we prepared samples with the tetrahydrofuran hydrate forming in sands to simulate the hydrate-bearing sediments and for measuring the complex conductivity at frequencies from 20 Hz to 100 kHz. The frequency-dispersion characteristics of complex conductivity of the hydrate-bearing samples with different saturations were analyzed, and then three types of hydrate-saturation evaluation models, denoted as the conductance-based, polarization-based and fusion models, were developed based on the in-phase conductivity, frequency-dispersion characteristic parameters of the phase angle and the combination of those two, respectively. A critical frequency (fc = 2 kHz) can be identified, where both the phase angle and imaginary component of the complex conductivity reach their minima. The Archie's formula shows its capability to model the relationship between the in-phase conductivity and hydrate saturation (i.e., conductance-based model), but the frequency higher than fc is preferred because stable Archie parameters can only be obtained in that frequency range. Linear correlations between the hydrate saturation and frequency-dispersion characteristic parameters (i.e., the logarithms of FE (frequency effect) and slope of the relation between FE and FR (frequency ratio) of the phase angle can be obtained, serving as the polarization-based models in the frequency range higher than fc. The fusion model performs the best in the perspective of low errors and high reliability for predicting the hydrate saturation, because more parameters of the complex conductivity and underlying physics of the conductance and polarization have been incorporated. In the frequency range lower than fc in contrast to that of the phase angle, the quadrature conductivity shows remarkable frequency-dispersion characteristics with the variation of the hydrate saturation, showing the great potential for developing new saturation-evaluation models in future. |
تدمد: | 0920-4105 |
DOI: | 10.1016/j.petrol.2021.109539 |
URL الوصول: | https://explore.openaire.eu/search/publication?articleId=doi_dedup___::97358dec4a3a5b6845f29f75036a65fe https://doi.org/10.1016/j.petrol.2021.109539 |
Rights: | OPEN |
رقم الانضمام: | edsair.doi.dedup.....97358dec4a3a5b6845f29f75036a65fe |
قاعدة البيانات: | OpenAIRE |
ResultId |
1 |
---|---|
Header |
edsair OpenAIRE edsair.doi.dedup.....97358dec4a3a5b6845f29f75036a65fe 840 3 unknown 839.59912109375 |
PLink |
https://search.ebscohost.com/login.aspx?direct=true&site=eds-live&scope=site&db=edsair&AN=edsair.doi.dedup.....97358dec4a3a5b6845f29f75036a65fe&custid=s6537998&authtype=sso |
FullText |
Array
(
[Availability] => 0
)
Array ( [0] => Array ( [Url] => https://explore.openaire.eu/search/publication?articleId=doi_dedup___::97358dec4a3a5b6845f29f75036a65fe# [Name] => EDS - OpenAIRE [Category] => fullText [Text] => View record in OpenAIRE [MouseOverText] => View record in OpenAIRE ) ) |
Items |
Array
(
[Name] => Title
[Label] => Title
[Group] => Ti
[Data] => Experimental study on hydrate saturation evaluation based on complex electrical conductivity of porous media
)
Array ( [Name] => Author [Label] => Authors [Group] => Au [Data] => <searchLink fieldCode="AR" term="%22Lanchang+Xing%22">Lanchang Xing</searchLink><br /><searchLink fieldCode="AR" term="%22Weifeng+Han%22">Weifeng Han</searchLink><br /><searchLink fieldCode="AR" term="%22Bin+Wang%22">Bin Wang</searchLink><br /><searchLink fieldCode="AR" term="%22Shengchang+Cao%22">Shengchang Cao</searchLink><br /><searchLink fieldCode="AR" term="%22Jiale+Niu%22">Jiale Niu</searchLink><br /><searchLink fieldCode="AR" term="%22Shuli+Zhang%22">Shuli Zhang</searchLink><br /><searchLink fieldCode="AR" term="%22Wei+Zhoutuo%22">Wei Zhoutuo</searchLink><br /><searchLink fieldCode="AR" term="%22Wei+Wei%22">Wei Wei</searchLink><br /><searchLink fieldCode="AR" term="%22Liyun+Lao%22">Liyun Lao</searchLink><br /><searchLink fieldCode="AR" term="%22Xinmin+Ge%22">Xinmin Ge</searchLink> ) Array ( [Name] => TitleSource [Label] => Source [Group] => Src [Data] => <i>Journal of Petroleum Science and Engineering</i>. 208:109539 ) Array ( [Name] => Publisher [Label] => Publisher Information [Group] => PubInfo [Data] => Elsevier BV, 2022. ) Array ( [Name] => DatePubCY [Label] => Publication Year [Group] => Date [Data] => 2022 ) Array ( [Name] => Subject [Label] => Subject Terms [Group] => Su [Data] => <searchLink fieldCode="DE" term="%22Materials+science%22">Materials science</searchLink><br /><searchLink fieldCode="DE" term="%22Phase+angle%22">Phase angle</searchLink><br /><searchLink fieldCode="DE" term="%22Clathrate+hydrate%22">Clathrate hydrate</searchLink><br /><searchLink fieldCode="DE" term="%22Thermodynamics%22">Thermodynamics</searchLink><br /><searchLink fieldCode="DE" term="%22Conductivity%22">Conductivity</searchLink><br /><searchLink fieldCode="DE" term="%22Geotechnical+Engineering+and+Engineering+Geology%22">Geotechnical Engineering and Engineering Geology</searchLink><br /><searchLink fieldCode="DE" term="%22Frequency+dispersion%22">Frequency dispersion</searchLink><br /><searchLink fieldCode="DE" term="%22Fuel+Technology%22">Fuel Technology</searchLink><br /><searchLink fieldCode="DE" term="%22Critical+frequency%22">Critical frequency</searchLink><br /><searchLink fieldCode="DE" term="%22Electrical+resistivity+and+conductivity%22">Electrical resistivity and conductivity</searchLink><br /><searchLink fieldCode="DE" term="%22Conductance%22">Conductance</searchLink><br /><searchLink fieldCode="DE" term="%22Polarization%22">Polarization</searchLink><br /><searchLink fieldCode="DE" term="%22Complex+electrical+conductivity%22">Complex electrical conductivity</searchLink><br /><searchLink fieldCode="DE" term="%22Information+fusion%22">Information fusion</searchLink><br /><searchLink fieldCode="DE" term="%22Hydrate+saturation%22">Hydrate saturation</searchLink><br /><searchLink fieldCode="DE" term="%22Hydrate%22">Hydrate</searchLink><br /><searchLink fieldCode="DE" term="%22Saturation+%28chemistry%29%22">Saturation (chemistry)</searchLink><br /><searchLink fieldCode="DE" term="%22Porous+medium%22">Porous medium</searchLink> ) Array ( [Name] => Abstract [Label] => Description [Group] => Ab [Data] => The hydrate saturation is a critical parameter in the evaluation of gas hydrate reservoirs. The complex characteristics of hydrate-bearing sediments pose challenges to the reliability of conventional geophysical techniques for hydrate saturation evaluation. In this paper, we present a study on developing a novel approach to characterize the electrical properties of hydrate-bearing porous media and to evaluate the hydrate saturation quantitatively based on parameters of the complex electrical conductivity. In the laboratory experiments we prepared samples with the tetrahydrofuran hydrate forming in sands to simulate the hydrate-bearing sediments and for measuring the complex conductivity at frequencies from 20 Hz to 100 kHz. The frequency-dispersion characteristics of complex conductivity of the hydrate-bearing samples with different saturations were analyzed, and then three types of hydrate-saturation evaluation models, denoted as the conductance-based, polarization-based and fusion models, were developed based on the in-phase conductivity, frequency-dispersion characteristic parameters of the phase angle and the combination of those two, respectively. A critical frequency (fc = 2 kHz) can be identified, where both the phase angle and imaginary component of the complex conductivity reach their minima. The Archie's formula shows its capability to model the relationship between the in-phase conductivity and hydrate saturation (i.e., conductance-based model), but the frequency higher than fc is preferred because stable Archie parameters can only be obtained in that frequency range. Linear correlations between the hydrate saturation and frequency-dispersion characteristic parameters (i.e., the logarithms of FE (frequency effect) and slope of the relation between FE and FR (frequency ratio) of the phase angle can be obtained, serving as the polarization-based models in the frequency range higher than fc. The fusion model performs the best in the perspective of low errors and high reliability for predicting the hydrate saturation, because more parameters of the complex conductivity and underlying physics of the conductance and polarization have been incorporated. In the frequency range lower than fc in contrast to that of the phase angle, the quadrature conductivity shows remarkable frequency-dispersion characteristics with the variation of the hydrate saturation, showing the great potential for developing new saturation-evaluation models in future. ) Array ( [Name] => ISSN [Label] => ISSN [Group] => ISSN [Data] => 0920-4105 ) Array ( [Name] => DOI [Label] => DOI [Group] => ID [Data] => 10.1016/j.petrol.2021.109539 ) Array ( [Name] => URL [Label] => Access URL [Group] => URL [Data] => <link linkTarget="URL" linkTerm="https://explore.openaire.eu/search/publication?articleId=doi_dedup___::97358dec4a3a5b6845f29f75036a65fe" linkWindow="_blank">https://explore.openaire.eu/search/publication?articleId=doi_dedup___::97358dec4a3a5b6845f29f75036a65fe</link><br /><link linkTarget="URL" linkTerm="https://doi.org/10.1016/j.petrol.2021.109539" linkWindow="_blank">https://doi.org/10.1016/j.petrol.2021.109539</link> ) Array ( [Name] => Copyright [Label] => Rights [Group] => Cpyrght [Data] => OPEN ) Array ( [Name] => AN [Label] => Accession Number [Group] => ID [Data] => edsair.doi.dedup.....97358dec4a3a5b6845f29f75036a65fe ) |
RecordInfo |
Array
(
[BibEntity] => Array
(
[Identifiers] => Array
(
[0] => Array
(
[Type] => doi
[Value] => 10.1016/j.petrol.2021.109539
)
)
[Languages] => Array
(
[0] => Array
(
[Text] => Undetermined
)
)
[PhysicalDescription] => Array
(
[Pagination] => Array
(
[PageCount] => 1
[StartPage] => 109539
)
)
[Subjects] => Array
(
[0] => Array
(
[SubjectFull] => Materials science
[Type] => general
)
[1] => Array
(
[SubjectFull] => Phase angle
[Type] => general
)
[2] => Array
(
[SubjectFull] => Clathrate hydrate
[Type] => general
)
[3] => Array
(
[SubjectFull] => Thermodynamics
[Type] => general
)
[4] => Array
(
[SubjectFull] => Conductivity
[Type] => general
)
[5] => Array
(
[SubjectFull] => Geotechnical Engineering and Engineering Geology
[Type] => general
)
[6] => Array
(
[SubjectFull] => Frequency dispersion
[Type] => general
)
[7] => Array
(
[SubjectFull] => Fuel Technology
[Type] => general
)
[8] => Array
(
[SubjectFull] => Critical frequency
[Type] => general
)
[9] => Array
(
[SubjectFull] => Electrical resistivity and conductivity
[Type] => general
)
[10] => Array
(
[SubjectFull] => Conductance
[Type] => general
)
[11] => Array
(
[SubjectFull] => Polarization
[Type] => general
)
[12] => Array
(
[SubjectFull] => Complex electrical conductivity
[Type] => general
)
[13] => Array
(
[SubjectFull] => Information fusion
[Type] => general
)
[14] => Array
(
[SubjectFull] => Hydrate saturation
[Type] => general
)
[15] => Array
(
[SubjectFull] => Hydrate
[Type] => general
)
[16] => Array
(
[SubjectFull] => Saturation (chemistry)
[Type] => general
)
[17] => Array
(
[SubjectFull] => Porous medium
[Type] => general
)
)
[Titles] => Array
(
[0] => Array
(
[TitleFull] => Experimental study on hydrate saturation evaluation based on complex electrical conductivity of porous media
[Type] => main
)
)
)
[BibRelationships] => Array
(
[HasContributorRelationships] => Array
(
[0] => Array
(
[PersonEntity] => Array
(
[Name] => Array
(
[NameFull] => Lanchang Xing
)
)
)
[1] => Array
(
[PersonEntity] => Array
(
[Name] => Array
(
[NameFull] => Weifeng Han
)
)
)
[2] => Array
(
[PersonEntity] => Array
(
[Name] => Array
(
[NameFull] => Bin Wang
)
)
)
[3] => Array
(
[PersonEntity] => Array
(
[Name] => Array
(
[NameFull] => Shengchang Cao
)
)
)
[4] => Array
(
[PersonEntity] => Array
(
[Name] => Array
(
[NameFull] => Jiale Niu
)
)
)
[5] => Array
(
[PersonEntity] => Array
(
[Name] => Array
(
[NameFull] => Shuli Zhang
)
)
)
[6] => Array
(
[PersonEntity] => Array
(
[Name] => Array
(
[NameFull] => Wei Zhoutuo
)
)
)
[7] => Array
(
[PersonEntity] => Array
(
[Name] => Array
(
[NameFull] => Wei Wei
)
)
)
[8] => Array
(
[PersonEntity] => Array
(
[Name] => Array
(
[NameFull] => Liyun Lao
)
)
)
[9] => Array
(
[PersonEntity] => Array
(
[Name] => Array
(
[NameFull] => Xinmin Ge
)
)
)
)
[IsPartOfRelationships] => Array
(
[0] => Array
(
[BibEntity] => Array
(
[Dates] => Array
(
[0] => Array
(
[D] => 01
[M] => 01
[Type] => published
[Y] => 2022
)
)
[Identifiers] => Array
(
[0] => Array
(
[Type] => issn-print
[Value] => 09204105
)
[1] => Array
(
[Type] => issn-locals
[Value] => edsair
)
[2] => Array
(
[Type] => issn-locals
[Value] => edsairFT
)
)
[Numbering] => Array
(
[0] => Array
(
[Type] => volume
[Value] => 208
)
)
[Titles] => Array
(
[0] => Array
(
[TitleFull] => Journal of Petroleum Science and Engineering
[Type] => main
)
)
)
)
)
)
)
|
IllustrationInfo |