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Wettability alteration of oil‐wet carbonate rocks by chitosan derivatives for application in enhanced oil recovery II: High‐temperature and high‐pressure conditions—Core flooding tests
Biopolymers, serving as Enhanced Oil Recovery (EOR) agents, are posing challenges and opportunities within the oil industry, particularly in demanding operational conditions. The assessment of trimethyl chitosan (TMC) and its hydrophobized derivative with myristoyl chloride (TMC‐C14) becomes crucial...
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Published in: | Journal of applied polymer science 2024-05, Vol.141 (20), p.n/a |
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description | Biopolymers, serving as Enhanced Oil Recovery (EOR) agents, are posing challenges and opportunities within the oil industry, particularly in demanding operational conditions. The assessment of trimethyl chitosan (TMC) and its hydrophobized derivative with myristoyl chloride (TMC‐C14) becomes crucial in these rigorous scenarios, presenting a significant challenge for polymer flooding. The study subjected TMC and TMC‐C14 to comprehensive evaluations as EOR agents, employing contact angle measurements, interfacial tension tests using the Drop Shape Analyzer (DSA), and core flood tests under conditions of 60°C, 1000 psi, and elevated salinity. Relative permeabilities were deduced from the results, while spontaneous imbibition tests provided insights into rock wettability. Amott cell tests underscored that both TMC and TMC‐C14 induced accelerated spontaneous oil production within a span of 30 days. Notably, TMC‐C14 exhibited superior interfacial activity compared to TMC, attributed to its hydrophobic segments. The impact on rock wettability was distinct: TMC shifted it towards water‐wet, while TMC‐C14 induced a neutral‐wet condition. This transformation was corroborated by contact angle measurements, imbibition tests, and relative permeability curves. Capillary forces, computed from DSA data and spontaneous imbibition tests, further validated the wettability‐altering tendencies of the chitosan derivatives on the rock. In core flooding tests and relative permeability curves, TMC demonstrated a notable improvement in the recovery factor (RF) compared to seawater. Specifically, RFTMC achieved 69%, surpassing RFbrine at 49%, affirming that the primary mechanism of action for chitosan derivatives lies in their ability to modify rock wettability. This study shows the potential of TMC and TMC‐C14 as effective EOR agents, shedding light on their interfacial activities, impact on rock wettability, and enhanced recovery factors in challenging operational conditions. |
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The assessment of trimethyl chitosan (TMC) and its hydrophobized derivative with myristoyl chloride (TMC‐C14) becomes crucial in these rigorous scenarios, presenting a significant challenge for polymer flooding. The study subjected TMC and TMC‐C14 to comprehensive evaluations as EOR agents, employing contact angle measurements, interfacial tension tests using the Drop Shape Analyzer (DSA), and core flood tests under conditions of 60°C, 1000 psi, and elevated salinity. Relative permeabilities were deduced from the results, while spontaneous imbibition tests provided insights into rock wettability. Amott cell tests underscored that both TMC and TMC‐C14 induced accelerated spontaneous oil production within a span of 30 days. Notably, TMC‐C14 exhibited superior interfacial activity compared to TMC, attributed to its hydrophobic segments. The impact on rock wettability was distinct: TMC shifted it towards water‐wet, while TMC‐C14 induced a neutral‐wet condition. This transformation was corroborated by contact angle measurements, imbibition tests, and relative permeability curves. Capillary forces, computed from DSA data and spontaneous imbibition tests, further validated the wettability‐altering tendencies of the chitosan derivatives on the rock. In core flooding tests and relative permeability curves, TMC demonstrated a notable improvement in the recovery factor (RF) compared to seawater. Specifically, RFTMC achieved 69%, surpassing RFbrine at 49%, affirming that the primary mechanism of action for chitosan derivatives lies in their ability to modify rock wettability. This study shows the potential of TMC and TMC‐C14 as effective EOR agents, shedding light on their interfacial activities, impact on rock wettability, and enhanced recovery factors in challenging operational conditions.</description><identifier>ISSN: 0021-8995</identifier><identifier>EISSN: 1097-4628</identifier><identifier>DOI: 10.1002/app.55372</identifier><language>eng</language><publisher>Hoboken, USA: John Wiley & Sons, Inc</publisher><subject>Biopolymers ; biopolymers and renewable polymers ; Carbonate rocks ; Chitosan ; Contact angle ; Enhanced oil recovery ; Flooding tests ; Imbibition ; oil and gas ; Permeability ; Polymer flooding ; polysaccharides ; Seawater ; Surface tension ; Tension tests ; Wettability</subject><ispartof>Journal of applied polymer science, 2024-05, Vol.141 (20), p.n/a</ispartof><rights>2024 Wiley Periodicals LLC.</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><cites>FETCH-LOGICAL-c2572-d2971c2aeba764a710cddfe01afa8e7d01626f098e5a411a129b2b3dc9dae0163</cites><orcidid>0000-0003-4712-6869</orcidid></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail></links><search><creatorcontrib>Santos Francisco, Agatha Densy</creatorcontrib><creatorcontrib>Maia, Kelly Cristina Bastos</creatorcontrib><creatorcontrib>Almeida Cavadas, Leandro</creatorcontrib><creatorcontrib>Eler, Felipe Moreira</creatorcontrib><creatorcontrib>Grasseschi, Daniel</creatorcontrib><creatorcontrib>Couto, Paulo</creatorcontrib><creatorcontrib>Nascimento, Regina Sandra Veiga</creatorcontrib><title>Wettability alteration of oil‐wet carbonate rocks by chitosan derivatives for application in enhanced oil recovery II: High‐temperature and high‐pressure conditions—Core flooding tests</title><title>Journal of applied polymer science</title><description>Biopolymers, serving as Enhanced Oil Recovery (EOR) agents, are posing challenges and opportunities within the oil industry, particularly in demanding operational conditions. The assessment of trimethyl chitosan (TMC) and its hydrophobized derivative with myristoyl chloride (TMC‐C14) becomes crucial in these rigorous scenarios, presenting a significant challenge for polymer flooding. The study subjected TMC and TMC‐C14 to comprehensive evaluations as EOR agents, employing contact angle measurements, interfacial tension tests using the Drop Shape Analyzer (DSA), and core flood tests under conditions of 60°C, 1000 psi, and elevated salinity. Relative permeabilities were deduced from the results, while spontaneous imbibition tests provided insights into rock wettability. Amott cell tests underscored that both TMC and TMC‐C14 induced accelerated spontaneous oil production within a span of 30 days. Notably, TMC‐C14 exhibited superior interfacial activity compared to TMC, attributed to its hydrophobic segments. The impact on rock wettability was distinct: TMC shifted it towards water‐wet, while TMC‐C14 induced a neutral‐wet condition. This transformation was corroborated by contact angle measurements, imbibition tests, and relative permeability curves. Capillary forces, computed from DSA data and spontaneous imbibition tests, further validated the wettability‐altering tendencies of the chitosan derivatives on the rock. In core flooding tests and relative permeability curves, TMC demonstrated a notable improvement in the recovery factor (RF) compared to seawater. Specifically, RFTMC achieved 69%, surpassing RFbrine at 49%, affirming that the primary mechanism of action for chitosan derivatives lies in their ability to modify rock wettability. This study shows the potential of TMC and TMC‐C14 as effective EOR agents, shedding light on their interfacial activities, impact on rock wettability, and enhanced recovery factors in challenging operational conditions.</description><subject>Biopolymers</subject><subject>biopolymers and renewable polymers</subject><subject>Carbonate rocks</subject><subject>Chitosan</subject><subject>Contact angle</subject><subject>Enhanced oil recovery</subject><subject>Flooding tests</subject><subject>Imbibition</subject><subject>oil and gas</subject><subject>Permeability</subject><subject>Polymer flooding</subject><subject>polysaccharides</subject><subject>Seawater</subject><subject>Surface tension</subject><subject>Tension tests</subject><subject>Wettability</subject><issn>0021-8995</issn><issn>1097-4628</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2024</creationdate><recordtype>article</recordtype><recordid>eNp1kcFu1DAQhi0EEkvhwBuMxIlDWtvZJGtu1YrSlSrRA4hjNLEnXZfUDrZ3q9z6CBz6QH2WPgkO4cpppH---f_RDGPvBT8VnMszHMfTqiob-YKtBFdNsa7l5iVb5Z4oNkpVr9mbGG85F6Li9Yo9_aCUsLODTRPgkChgst6B78Hb4fnh9z0l0Bg67zARBK9_Rugm0HubfEQHhoI95pkjReh9gLzAYPViYh2Q26PTZGY3CKT9kcIEu90nuLQ3--yf6G6cQw-BAJ2B_SKPgWKcNe2dsbNbfH543Pqs9IP3xrobSBRTfMte9ThEevevnrDvF5-_bS-Lq69fdtvzq0LLqpGFkaoRWiJ12NRrbATXxvTEBfa4ocZwUcu652pDFa6FQCFVJ7vSaGUwU3V5wj4svmPwvw45ub31h-ByZFvyUuV7NmqmPi6UDj7GQH07BnuHYWoFb-cHtfk-7d8HZfZsYe_tQNP_wfb8-nqZ-APAyZvh</recordid><startdate>20240520</startdate><enddate>20240520</enddate><creator>Santos Francisco, Agatha Densy</creator><creator>Maia, Kelly Cristina Bastos</creator><creator>Almeida Cavadas, Leandro</creator><creator>Eler, Felipe Moreira</creator><creator>Grasseschi, Daniel</creator><creator>Couto, Paulo</creator><creator>Nascimento, Regina Sandra Veiga</creator><general>John Wiley & Sons, Inc</general><general>Wiley Subscription Services, Inc</general><scope>AAYXX</scope><scope>CITATION</scope><scope>7SR</scope><scope>8FD</scope><scope>JG9</scope><orcidid>https://orcid.org/0000-0003-4712-6869</orcidid></search><sort><creationdate>20240520</creationdate><title>Wettability alteration of oil‐wet carbonate rocks by chitosan derivatives for application in enhanced oil recovery II: High‐temperature and high‐pressure conditions—Core flooding tests</title><author>Santos Francisco, Agatha Densy ; Maia, Kelly Cristina Bastos ; Almeida Cavadas, Leandro ; Eler, Felipe Moreira ; Grasseschi, Daniel ; Couto, Paulo ; Nascimento, Regina Sandra Veiga</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c2572-d2971c2aeba764a710cddfe01afa8e7d01626f098e5a411a129b2b3dc9dae0163</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2024</creationdate><topic>Biopolymers</topic><topic>biopolymers and renewable polymers</topic><topic>Carbonate rocks</topic><topic>Chitosan</topic><topic>Contact angle</topic><topic>Enhanced oil recovery</topic><topic>Flooding tests</topic><topic>Imbibition</topic><topic>oil and gas</topic><topic>Permeability</topic><topic>Polymer flooding</topic><topic>polysaccharides</topic><topic>Seawater</topic><topic>Surface tension</topic><topic>Tension tests</topic><topic>Wettability</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Santos Francisco, Agatha Densy</creatorcontrib><creatorcontrib>Maia, Kelly Cristina Bastos</creatorcontrib><creatorcontrib>Almeida Cavadas, Leandro</creatorcontrib><creatorcontrib>Eler, Felipe Moreira</creatorcontrib><creatorcontrib>Grasseschi, Daniel</creatorcontrib><creatorcontrib>Couto, Paulo</creatorcontrib><creatorcontrib>Nascimento, Regina Sandra Veiga</creatorcontrib><collection>CrossRef</collection><collection>Engineered Materials Abstracts</collection><collection>Technology Research Database</collection><collection>Materials Research Database</collection><jtitle>Journal of applied polymer science</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Santos Francisco, Agatha Densy</au><au>Maia, Kelly Cristina Bastos</au><au>Almeida Cavadas, Leandro</au><au>Eler, Felipe Moreira</au><au>Grasseschi, Daniel</au><au>Couto, Paulo</au><au>Nascimento, Regina Sandra Veiga</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Wettability alteration of oil‐wet carbonate rocks by chitosan derivatives for application in enhanced oil recovery II: High‐temperature and high‐pressure conditions—Core flooding tests</atitle><jtitle>Journal of applied polymer science</jtitle><date>2024-05-20</date><risdate>2024</risdate><volume>141</volume><issue>20</issue><epage>n/a</epage><issn>0021-8995</issn><eissn>1097-4628</eissn><abstract>Biopolymers, serving as Enhanced Oil Recovery (EOR) agents, are posing challenges and opportunities within the oil industry, particularly in demanding operational conditions. The assessment of trimethyl chitosan (TMC) and its hydrophobized derivative with myristoyl chloride (TMC‐C14) becomes crucial in these rigorous scenarios, presenting a significant challenge for polymer flooding. The study subjected TMC and TMC‐C14 to comprehensive evaluations as EOR agents, employing contact angle measurements, interfacial tension tests using the Drop Shape Analyzer (DSA), and core flood tests under conditions of 60°C, 1000 psi, and elevated salinity. Relative permeabilities were deduced from the results, while spontaneous imbibition tests provided insights into rock wettability. Amott cell tests underscored that both TMC and TMC‐C14 induced accelerated spontaneous oil production within a span of 30 days. Notably, TMC‐C14 exhibited superior interfacial activity compared to TMC, attributed to its hydrophobic segments. The impact on rock wettability was distinct: TMC shifted it towards water‐wet, while TMC‐C14 induced a neutral‐wet condition. This transformation was corroborated by contact angle measurements, imbibition tests, and relative permeability curves. Capillary forces, computed from DSA data and spontaneous imbibition tests, further validated the wettability‐altering tendencies of the chitosan derivatives on the rock. In core flooding tests and relative permeability curves, TMC demonstrated a notable improvement in the recovery factor (RF) compared to seawater. Specifically, RFTMC achieved 69%, surpassing RFbrine at 49%, affirming that the primary mechanism of action for chitosan derivatives lies in their ability to modify rock wettability. This study shows the potential of TMC and TMC‐C14 as effective EOR agents, shedding light on their interfacial activities, impact on rock wettability, and enhanced recovery factors in challenging operational conditions.</abstract><cop>Hoboken, USA</cop><pub>John Wiley & Sons, Inc</pub><doi>10.1002/app.55372</doi><tpages>13</tpages><orcidid>https://orcid.org/0000-0003-4712-6869</orcidid></addata></record> |
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subjects | Biopolymers biopolymers and renewable polymers Carbonate rocks Chitosan Contact angle Enhanced oil recovery Flooding tests Imbibition oil and gas Permeability Polymer flooding polysaccharides Seawater Surface tension Tension tests Wettability |
title | Wettability alteration of oil‐wet carbonate rocks by chitosan derivatives for application in enhanced oil recovery II: High‐temperature and high‐pressure conditions—Core flooding tests |
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