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首页> 外文期刊>Journal of Petroleum Science & Engineering >The use of RFID technology to measure the compositions of diethyl ether-oil-brine mixtures in enhanced imbibition experiments
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The use of RFID technology to measure the compositions of diethyl ether-oil-brine mixtures in enhanced imbibition experiments

机译:使用RFID技术测量增强的吸收实验中的二乙醚 - 油盐混合物的组合物

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摘要

Recent developments in Radio Frequency (800 MHz-1000 MHz) Identification (RFID) devices suggest that it is possible to use them for wireless laboratory measurements of the dielectric coefficients (or compositions) of fluid mixtures with possible spin-off for their use in the petroleum engineering practice. The advantage of RFID devices is their small size (0.095 x 0.008 x 0.001 m(3)), the developments to make them increasingly smaller and that they do not require the use of leak prone connecting cables. RFID measures the response of a sample volume of interest irradiated by a radio frequency electromagnetic (EM) wave. The response can be expressed in terms of various response functions, e.g. two scattering functions (S-11 and S-21) or the minimum irradiated power (P-min).The response functions can be measured using a state-of-the-art RFID device (CISC RFID Xplorer-200), which operates in the range between 800 and 1000 MHz. The effect of the dielectric coefficient on the RFID response was tested by placing the RFD) tag in different media with various dielectric coefficients epsilon ranging from 1 to 80. The overall purpose is to develop a work-flow to relate the response functions obtained with RFID technology to the dielectric coefficient and thus the composition of fluid mixtures in which an RFID tag can be immersed. An application is to measure fluid compositions during a spontaneous imbibition experiment in an Amott-cell. As an intermediate step we measure the composition dependence of the partial molar volume of diethyl ether (DEE) in brine and the partial molar volume of DEE in oil by using an Anton Paar density meter. The relation between the dielectric coefficients and the volume fraction can be obtained with the Bottcher mixing rule. The DEE volume fraction range of interest is 0-8% volume fraction in the aqueous solution whereas DEE volume fraction range of interest is 0-100% volume fraction in oleic solutions. For better understanding of the measurement results, we used COMSOL (TM) simulations, which show that the response functions depend on the dielectric coefficient in a vessel of appropriate dimensions filled with a fluid of choice. The measurements show that the minimum power at the tag position P-min is the preferred response function and that the sensitivity of was highest at 915 and 868 MHz for aqueous (8.547x10(-6)) and oleic (1.905x10(-4)) solutions respectively. The measurement error is of the same order of magnitude as the errors mentioned above (Hon, 1989) ensuing from evaporation of DEE during the preparation of the calibration fluids or the approximate nature of the Bottcher mixing rule. We conclude that it is possible to use RFID technology for contact-less measurements of the compositions of fluids in imbibition experiments.
机译:射频(800MHz-1000MHz)识别(RFID)器件的最新进展表明,可以将它们用于流体混合物的介电系数(或组合物)的无线实验室测量,以便它们在其中使用石油工程实践。 RFID器件的优点是它们的小尺寸(0.095×0.008×0.001米(3)),使它们越来越小,并且它们不需要使用泄漏易于连接电缆。 RFID测量通过射频电磁(EM)波照射照射的样本体积的响应。响应可以以各种响应函数表示,例如,两个散射功能(S-11和S-21)或最小辐照功率(P-min)。可以使用现有的RFID设备(CISC RFID XPlorer-200)来测量响应功能,操作在800到1000 MHz之间的范围内。通过将RFD)标签放置在不同介质中的RFD)标签来测试介电系数对RFID响应的影响,其中各种介电系数epsilon从1到80的范围。总体目的是开发工作流程以涉及用RFID获得的响应功能技术到介电系数,从而浸入其中RFID标签的流体混合物的组成。申请是在Amott细胞中的自发性吸收实验期间测量流体组合物。作为中间步骤,通过使用Anton Paar密度计测量盐水中盐水和矿物的部分摩尔体积的部分摩尔体积的组成依赖性。通过瓶子混合规则可以获得介质系数和体积分数之间的关系。感兴趣的Dee体积分数是水溶液中0-8%体积分数,而Dee体积分数的感兴趣范围是油溶液中的0-100%体积分数。为了更好地理解测量结果,我们使用COMSOL(TM)模拟,表明响应功能取决于填充有选择的流体的适当尺寸的血管中的介电系数。测量结果表明,标签位置P-min的最小功率是优选的响应功能,并且在915和868MHz的含水水溶液(8.547×10(-6))和油酸(1.905x10(-4)的灵敏度)分别解决方案。测量误差与上述误差相同,随着上述错误(1989年),在制备校准流体或瓶装混合规则的近似性质期间随后被随之而来。我们得出结论,可以使用RFID技术进行吸收实验中的流体组合物的接触测量。

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