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    • 4. 发明申请
    • MONITORING INJECTED NONHYDROCARBON AND NONAQUEOUS FLUIDS THROUGH DOWNHOLE FLUID ANALYSIS
    • 通过井下流体分析监测注射的非氢氟酸和非水溶性液体
    • US20080135237A1
    • 2008-06-12
    • US11753863
    • 2007-05-25
    • Francois DubostOliver C. MullinsLalitha VenkataramananChristopher HarrisonNeil BostromRobert Kleinberg
    • Francois DubostOliver C. MullinsLalitha VenkataramananChristopher HarrisonNeil BostromRobert Kleinberg
    • E21B47/06
    • E21B47/10E21B41/0064Y02C10/14
    • A method of monitoring a nonhydrocarbon and nonaqueous fluid injected into the earth's subsurface through a first wellbore that involves positioning a fluid analysis tool within a second wellbore and determining the presence of the injected nonhydrocarbon and nonaqueous fluid by making a measurement downhole on the injected nonhydrocarbon and nonaqueous fluid using the fluid analysis tool. Also a related method of enhancing hydrocarbon production from a subsurface area having first and second wellbores that involves injecting a nonhydrocarbon and nonaqueous fluid into the subsurface through the first wellbore, positioning a fluid analysis tool within the second wellbore, and determining the presence of the injected nonhydrocarbon and nonaqueous fluid by making a measurement downhole on the injected nonhydrocarbon and nonaqueous fluid using the fluid analysis tool. Further, a related method of determining the relative or absolute quantity of a nonhydrocarbon and nonaqueous fluid injected into the earth's subsurface through a first wellbore that involves positioning a fluid analysis tool within a second wellbore, measuring the near-infrared spectroscopy signature of fluid downhole using the fluid analysis tool, measuring the downhole temperature and pressure using the fluid analysis tool, and estimating a relative or absolute quantity of the injected nonhydrocarbon and nonaqueous fluid within said downhole fluid using the measured near-infrared spectroscopy signature, the temperature, and the pressure to estimate a partial pressure of hydrocarbon constituents of the downhole fluid.
    • 一种通过第一井筒监测注入到地球表层内的非烃和非水液体的方法,该第一井筒涉及将流体分析工具定位在第二井筒内,并且通过在注入的非烃上进行测量并确定注入的非烃类和非水性流体的存在,以及 非流体使用流体分析工具。 还有一种从具有第一和第二井眼的地下区域提高烃生产的相关方法,其包括通过第一井孔将非烃和非水流体注入到地下,将流体分析工具定位在第二井眼内,并确定注入的 通过使用流体分析工具在注入的非烃和非水溶液上进行井下测量来测量非烃和非水的流体。 此外,一种确定通过第一井筒注入地球表层内的非烃和非水流体的相对或绝对量的相关方法,其涉及将流体分析工具定位在第二井筒内,使用以下方法测量井下流体的近红外光谱特征: 流体分析工具,使用流体分析工具测量井下温度和压力,并且使用所测量的近红外光谱特征,温度和压力估计所述井下流体内注入的非烃和非水性流体的相对或绝对量 以估计井下流体的烃组分的分压。
    • 6. 发明授权
    • Method and apparatus for the detection of bubble point pressure
    • 用于检测泡点压力的方法和装置
    • US06758090B2
    • 2004-07-06
    • US10206499
    • 2002-07-26
    • Neil BostromDouglas D. GriffinRobert L. Kleinberg
    • Neil BostromDouglas D. GriffinRobert L. Kleinberg
    • E21B4908
    • E21B34/08E21B43/12E21B49/08E21B49/081G01N33/2823
    • The present invention discloses a method and apparatus to detect bubbles in a fluid sample to determine if gases are present, wherein an ultrasonic source is used and its properties monitored. Fluctuations in the ultrasonic source's electrical properties indicate the presence of bubbles/gas. Alternatively, the ultrasonic source may be used to cavitate the sample and induce the nucleation of bubbles. In such a system/method, bubbles may be detected by either (1) monitoring the ultrasonic source properties, (2) monitoring the compressibility of the sample, (3) monitoring the sample properties, including harmonics and subharmonics. The method and apparatus disclosed herein may be used in a borehole such as with a sampling means (including either a flowing sample or a stationary sample) or in a surface lab.
    • 本发明公开了一种检测流体样品中气泡以确定是否存在气体的方法和装置,其中使用超声波源并监测其性质。 超声波源的电气特性的波动表明存在气泡/气体。 或者,可以使用超声波源来空化样品并引起气泡的成核。 在这种系统/方法中,可以通过(1)监测超声波源性质,(2)监测样品的压缩性,(3)监测样品性质,包括谐波和次谐波来检测气泡。 本文公开的方法和装置可以用于诸如采样装置(包括流动样品或固定样品)或表面实验室中的钻孔中。
    • 8. 发明申请
    • Self-contained chromatography system
    • 独立色谱系统
    • US20070125233A1
    • 2007-06-07
    • US11296150
    • 2005-12-07
    • Neil BostromRobert Kleinberg
    • Neil BostromRobert Kleinberg
    • B01D53/02
    • G01N30/32E21B2049/085G01N33/24G01N33/28G01N2030/025G01N2030/326H01M8/0681
    • A self-contained chromatography system is provided and includes a chromatography column, a carrier gas reservoir containing a carrier gas and an analyte stream processing device, wherein the carrier gas reservoir is disposed upstream from the chromatography column and wherein the analyte stream processing device is disposed downstream from the chromatography column. A method for implementing the self-contained chromatography system is also provided and includes generating a first system pressure upstream from the chromatography column and a second system pressure downstream from the chromatography column to cause the carrier gas to flow between the carrier gas reservoir and the analyte stream processing device. The method further includes combining a sample material with the carrier gas, introducing the combined sample to the chromatography column to generate the analyte stream and processing the analyte stream via the analyte stream processing device.
    • 提供了独立的色谱系统,包括色谱柱,含有载体气体的载气储存器和分析物流处理装置,其中载气储存器设置在色谱柱的上游,并且其中处理分析物流处理装置 在色谱柱下游。 还提供了一种用于实施独立色谱系统的方法,包括从色谱柱上游产生第一系统压力和在色谱柱下游产生第二系统压力,以使载气在载气储存器和分析物之间流动 流处理设备。 该方法还包括将样品材料与载气组合,将组合的样品引入色谱柱以产生分析物流并经由分析物流处理装置处理分析物流。