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    <subfield code="a">A simple correlation for the viscosity of heavy oils from Liaohe Basin, NE China</subfield>
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    <subfield code="c">abril 2007</subfield>
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    <subfield code="a">04/12/2008 ; 12/04/2008</subfield>
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    <subfield code="a">Transcripci&#xF3;n del resumen publicado por el autor: Viscosity values (&#xB5;) were measured at different temperatures (40, 50, 60, 70, 80 and 90&#xB0;C) for a set of dead oils from the Liaohe basin, NE China, covering a viscosity range from 76 to 34,590 mPa.s at 50&#xB0;C. A good relationship emerges between temperature and viscosity and a corresponding viscosity-temperature correlation with a high coefficient was obtained for every oil sample. Detailed investigations revealed that &#xB5; (viscosity values at temperature T = 60, 70, 80 and 90&#xB0;C) shows a strong function of &#xB5;50 (viscosity value at 50'C) in the form of &#xB5; = a&#xB5;50b in which the parameters a and b show a function of temperature [a =f(T) and b = f1(T)] with high coefficients. Therefore, a new simple correlation for predicting oil viscosity has been deduced as a function of temperature and &#xB5;50in the form of &amp;#xB5; =(T) &#xB5;50f1(T) with only two input parameters: temperature and viscosity at 50&#xB0;C. The validity of the model for Liaohe heavy oils has been tentatively confirmed by a set of experimental data from the laboratory of the Liaohe Oil Field with most errors less than 10% for the viscosity prediction at 100&#xB0;C. The correlation reported in this paper may provide an alternative method to predict the viscosity for dead oils, especially for heavy oils with &#xB5;50 even up to 160,000 mPa&#xB7;s in the Liaohe basin.</subfield>
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    <subfield code="a">TRANSCRIPCI&#xD3;N DEL RESUMEN PUBLICADO POR EL AUTOR: Viscosity values (&#xB5;) were measured at different temperatures (40, 50, 60, 70, 80 and 90&#xB0;C) for a set of dead oils from the Liaohe basin, NE China, covering a viscosity range from 76 to 34,590 mPa.s at 50&#xB0;C. A good relationship emerges between temperature and viscosity and a corresponding viscosity-temperature correlation with a high coefficient was obtained for every oil sample. Detailed investigations revealed that &#xB5; (viscosity values at temperature T = 60, 70, 80 and 90&#xB0;C) shows a strong function of &#xB5;50 (viscosity value at 50'C) in the form of &#xB5; = a&#xB5;50b in which the parameters a and b show a function of temperature [a =f(T) and b = f1(T)] with high coefficients. Therefore, a new simple correlation for predicting oil viscosity has been deduced as a function of temperature and &#xB5;50in the form of &#xB5; =(T) &#xB5;50f1(T) with only two input parameters: temperature and viscosity at 50&#xB0;C. The validity of the model for Liaohe heavy oils has been tentatively confirmed by a set of experimental data from the laboratory of the Liaohe Oil Field with most errors less than 10% for the viscosity prediction at 100&#xB0;C. The correlation reported in this paper may provide an alternative method to predict the viscosity for dead oils, especially for heavy oils with &#xB5;50 even up to 160,000 mPa&#xB7;s in the Liaohe basin.</subfield>
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    <subfield code="a">Zhang, C.</subfield>
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    <subfield code="t">Journal of Canadian Petroleum Technology</subfield>
    <subfield code="g">46</subfield>
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