This application claims priority to Russian Application No. 2016126377 filed Jul. 1, 2016, which is incorporated herein by reference in its entirety.
The disclosure relates to the field of geophysics, namely, to performing a series of geophysical logging of vertical, inclined and horizontal oil, gas, gas-condensate and geothermal wells, in particular for measurement, indication, control and transmission of the physical parameters of producing and injection wells to the surface either in a real time via a wireline cable or a delayed transmission through storing data in an autonomous memory.
A wireline logging device is known for well monitoring horizontal wells during development and production stages (Patent RU 2442891), comprising a cylindrical housing, a lever centralizer aligning the tool along a well axis and having at least six levers and a fluid flow temperature sensor and thermal flow sensor located on the tool axis. Fluid phase composition sensors are located on the centralizer levers and distributed along the well bore circumference. An additional fluid phase composition sensor is located on the tool axis. At least one additional fluid flow temperature sensor and at least one additional thermal flow sensor are disposed on each lever and distributed along the well bore circumference and located on the same line with the phase composition sensors parallel to the tool axis. There is an additional upper lever centralizer in the tail part.
The disadvantage of the known tool is the narrow field of application due to limited functionality, since the tool provides measurements exclusively in the conditions of stratified flow typical of marginal horizontal wells.
The disclosure provides for increasing the information content of logging and efficiency of the tool, expanding functionality in conditions of a multiphase flow, including a stratified flow, in sub-vertical, inclined and horizontal wells.
The complex tool according to the disclosure comprises a cylindrical housing and at least two lever centralizers aligning the tool along a well axis. Each centralizer has at least three levers, as well as at least one fluid flow temperature sensor, at least one phase composition sensor and at least one thermal flow velocity sensor, all sensors being located on an axis of the tool. The tool comprises also at least three groups of sensors arranged to be distributed around a perimeter of the wellbore when the levers of at least one centralizer are being opened. Each group of the sensors comprises at least a fluid flow temperature sensor, a fluid phase composition sensor and a thermal flow velocity sensor, disposed on the same line parallel to the axis of the tool.
Any of the thermal fluid flow velocity sensors can operate in a constant, pulse or intermittent heating regime.
In accordance with one embodiment, the at least one fluid flow temperature sensor is combined with the fluid phase composition sensor.
According to another embodiment, the at least one thermal fluid flow velocity sensor is combined with the fluid phase composition sensor.
According to one more embodiment, the temperature sensor in at least one group of sensors is disposed first relatively to fluid flow direction.
The disclosure is explained by the drawings, in which
As shown in
The spring-loaded levers 4 provide alignment of the tool body 1 along the axis of a subvertical, inclined and/or horizontal well 12 (
The levers 2 of the upper centralizer can also be equipped with groups of temperature sensors, phase composition sensors and thermal flow velocity sensors. All sensors of one group are located on the same line parallel to the tool axis. All the groups are distributed (for example, at an equal distance) along the cross-section of the wellbore, similar to the head lever centralizer.
For example, thermal anemometers can be used as the thermal fluid flow velocity sensors, including, but not limited to, thermal anemometers in constant heating power or constant overheating regime, with pulse, intermittent or continuous heating regime.
The presence of a phase composition sensor, a thermal flow velocity sensor and a fluid temperature sensor is necessary.
In accordance with one embodiment of the disclosure, at least one fluid flow temperature sensor can be combined with a fluid phase composition sensor. According to another embodiment, the at least one thermal fluid flow velocity sensor can be combined with a fluid phase composition sensor.
Any of the thermal fluid flow velocity sensors can operate in a constant, pulse or intermittent heating regime.
The thermal flow velocity sensors in different groups can operate in the same or in different heating regime.
All sensors of the same group, positioned relative to the tool axis, can be arranged on the levers of one, two or more different centralizers. If all groups of sensors are located on the levers of one centralizer, all groups of sensors can be located on the same circumference in the cross-section of the well and distributed evenly or unevenly therein. When positioned on two or three centralizers, the sensors of the same group can be located on the same line parallel to the tool axis, their mutual position on the line parallel to the tool axis may be selected randomly, but the temperature sensors should be preferably be placed first relatively to the fluid flow direction.
Each sensor or a group of sensors or all sensors can be arranged on one or more centralizer levers or on a special auxiliary mechanical device for distributing the sensors or groups of sensors over the cross-section of the wellbore in the selected azimuthal and radial positions. Thus, the number of sensors of any type or the number of groups of sensors can be equal to or greater than the number of levers of any centralizer.
The sensors are distributed in the azimuth direction evenly or unevenly. The radial position of each group of sensors is selected at a sufficient distance from the casing wall boundary pipes and from the levers and the housing of the tool to prevent excessive disturbance of fluid velocity and temperature by pipes or casing walls and tool components including the levers and the housing. This arrangement of the group of sensors is provided by auxiliary mechanic devices.
The principle of operation of one of the possible structures of such an auxiliary mechanical device is shown in
When the centralizer is closed, the moving ring 14 is in the position shown in
When the centralizer is opening, the moving ring 14 moves to the position shown in figure
The tool can be combined in one housing or in a measuring logging assembly with any known logging tool or tools and a sensor or sensors, for example, but not limited to, the tool may also include a fluid flow temperature sensor, a phase composition sensor and a thermal flow velocity sensor, all located along the axis of the tool.
The tool may be provided with at least one independent power source (for example, a battery) and at least one storage unit for providing autonomous data acquisition and storage.
One of possible embodiments of the complex well monitoring tool operates as follows.
After lowering the tool into the survey range and bringing it to the operating status, the centralizer's open and physical fields are recorded while the tool is being lowered. The tool position linking to the cross section and to the structure of the production casing is provided by any known linking methods (e.g., GC and CL, but not limited to these methods). Current pressure in the tool location point at the time of measurement is determined by a pressure sensor MN. The tool housing and active centralizer sensors' attitude determination is performed, but not limited to, relative to the gravitational field of the Earth using attitude determination sensor XYZ.
As shown in
The set of all measured parameters is continuously transmitted in real time to a surface recorder by a cable or is accumulated in the built-in memory of the tool. The measuring circuit and the tool as a whole are supplied with power via a cable or from autonomous power supply sources. Transportation of the tool along the subvertical, inclined and horizontal wellbores is carried out by standard devices intended for geophysical logging, including, but not limited to, a geophysical cable or a coiled tubing.
Number | Date | Country | Kind |
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2016126377 | Jul 2016 | RU | national |