Underground environment parameter monitoring device, system and method and electronic equipment
By designing a monitoring device for downhole environmental parameters, including downhole parameter measurement module and downhole data reading module, the problems of resistance and low construction efficiency in downhole environmental parameter monitoring are solved, and safe and efficient downhole environmental parameter monitoring are achieved.
Patent Information
- Application Number
- CN202311475319.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-11-07
- Publication Date
- 2025-05-09
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The prior art has problems of monitoring resistance and low construction efficiency in downhole environmental parameter monitoring, making it difficult to obtain data on downhole environmental parameters safely and efficiently.
A monitoring device for downhole environmental parameters is designed, including downhole parameter measurement module and downhole data reading module. The downhole parameter measurement module is used to monitor and store data of downhole environmental parameters, and the downhole data reading module is used to separate settings and obtain and read stored data information. The device realizes data acquisition and transmission through wireless transmission and power supply units.
It realizes safe and efficient monitoring of downhole environmental parameters, avoids monitoring obstacles, improves construction efficiency, and meets the requirements of completion technology for inner diameter.
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Figure CN119957208A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of oilfield development, and in particular to a monitoring device, system, method and electronic equipment for downhole environmental parameters. Background Art
[0002] In the related art, there are many solutions to monitor the environmental parameters (e.g., temperature, pressure, etc.) underground (e.g., oil wells or water wells, etc.), but all of them have certain limitations. For example, instruments can be lowered into oil wells and water wells to monitor the environmental parameters underground. This solution may encounter monitoring obstacles due to the well conditions and other factors, resulting in the inability to obtain the original data. For another example, a control mechanism that is lowered in advance can be used to realize underground well switching, and then a special pressure measuring tool that is lowered along with the oil pipe can be used for measurement. However, the inner diameter of this type of tool is relatively small and cannot meet the inner diameter requirements of the completion technology. After the test is completed, the tubing needs to be pulled out before the next construction operation can be carried out, which will affect the construction efficiency.
[0003] Therefore, how to monitor underground environmental parameters safely and efficiently is a technical problem that needs to be solved urgently. Summary of the invention
[0004] The embodiments of the present application provide a device, system, method and electronic equipment for monitoring underground environmental parameters, which are used to monitor underground environmental parameters safely and efficiently.
[0005] One of the embodiments of the present application provides a monitoring device for downhole environmental parameters, the device comprising: a downhole parameter measuring module, which is placed at a preset downhole position of a well to be measured when in working state, and monitors and stores data information of downhole environmental parameters of the well to be measured; a downhole data reading module, which is set within a preset range of the downhole parameter measuring module, and obtains the stored data information of downhole environmental parameters from the downhole parameter measuring module, and the downhole data reading module is set separately from the downhole parameter measuring module.
[0006] In some embodiments, the downhole parameter measurement module includes: a signal processing unit for monitoring data information of downhole environmental parameters at a preset position of the well to be measured; a first data storage unit for acquiring and storing data information of downhole environmental parameters monitored by the signal processing unit from the signal processing unit; a first wireless transmission unit for sending the data information of downhole environmental parameters stored in the data storage unit to the downhole data reading module; and in response to a sampling interval adjustment instruction issued by the downhole data reading module, acquiring a value of an adjusted sampling interval from the downhole data reading module, so that the downhole parameter measurement module monitors and stores data information of downhole environmental parameters of the well to be measured with the adjusted sampling interval; and a first power supply unit for providing electrical energy to the downhole parameter measurement module.
[0007] In some embodiments, the downhole environmental parameters include temperature and pressure, and the signal processing unit includes: a temperature sensor for obtaining temperature data information at a preset downhole position of the well to be tested; and a pressure sensor for obtaining pressure data information at a preset downhole position of the well to be tested.
[0008] In some embodiments, the downhole data reading module includes: a second wireless transmission unit, used to obtain data information of downhole environmental parameters stored in the downhole parameter measurement module from the downhole parameter measurement module; a second data storage unit, used to obtain and store data information of the downhole environmental parameters from the second wireless transmission unit; and a second power supply unit, used to provide electrical energy to the downhole data reading module.
[0009] In some embodiments, the downhole parameter measurement module also includes a positioning unit, and the downhole data reading module also includes a guiding unit; the positioning unit is used to dock with the guiding unit to determine the relative position between the downhole parameter measurement module and the downhole data reading module; the guiding unit is used to send the location information of the downhole data reading module to the positioning unit in response to the docking instruction of the guiding unit.
[0010] One of the embodiments of the present application provides a downhole environmental parameter monitoring system, the system comprising: the above-mentioned downhole environmental parameter monitoring device; a ground data reading device for obtaining data information of the downhole environmental parameters stored in the downhole data reading module from the downhole data reading module.
[0011] In some embodiments, the ground data reading device is also used to communicate with the downhole parameter measurement module and send the value of the adjusted preset sampling interval to the downhole parameter measurement module to instruct the downhole parameter measurement module to monitor and store data information of the downhole environmental parameters of the well to be measured with the adjusted preset sampling interval.
[0012] One of the embodiments of the present application provides a method for monitoring downhole environmental parameters, the method comprising: using a downhole data reading module to obtain data information of downhole environmental parameters of the well to be measured within a preset time period from the downhole parameter measurement module; using a ground data reading device to obtain data information of downhole environmental parameters of the well to be measured within a preset time period from the downhole data reading module.
[0013] An embodiment of the present application provides an electronic device, which includes a memory and a processor. The memory stores a computer program, and the processor executes the method described above when running the program.
[0014] An embodiment of the present application provides a storage medium for storing a computer-readable program. When the computer-readable program is executed, the method described above is executed.
[0015] The above technical solution provided by the embodiment of the present application has at least the following advantages compared with the prior art:
[0016] The monitoring device for downhole environmental parameters provided by the present application comprises a downhole parameter measuring module which is placed at a preset downhole position of a well to be measured when in working state, and monitors and stores data information of downhole environmental parameters of the well to be measured; a downhole data reading module which is set within a preset range of the downhole parameter measuring module, and obtains the stored data information of downhole environmental parameters from the downhole parameter measuring module; the downhole data reading module is set separately from the downhole parameter measuring module. Thus, downhole environmental parameters can be monitored safely and efficiently. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The present application will be further described in the form of exemplary embodiments, which will be described in detail by way of the accompanying drawings. These embodiments are not restrictive, and in these embodiments, the same number represents the same structure, wherein:
[0018] Figure 1 is an exemplary schematic diagram of a monitoring device for downhole environmental parameters according to some embodiments of the present application;
[0019] Figure 2 is an exemplary schematic diagram of a downhole environmental parameter monitoring system according to some embodiments of the present application;
[0020] Figure 3 is an exemplary flow chart of a method for monitoring downhole environmental parameters according to some embodiments of the present application;
[0021] Figure 4 It is a schematic diagram of an exemplary structure of an electronic device according to some embodiments of the present application. DETAILED DESCRIPTION
[0022] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following is a brief introduction to the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some examples or embodiments of the present application. For ordinary technicians in this field, the present application can also be applied to other similar scenarios based on these drawings without creative work. Unless it is obvious from the language environment or otherwise explained, the same reference numerals in the figures represent the same structure or operation.
[0023] It should be understood that the "system", "device", "unit" and / or "module" used herein are a method for distinguishing different components, elements, parts, portions or assemblies at different levels. However, if other words can achieve the same purpose, the words can be replaced by other expressions.
[0024] As shown in this application and claims, unless the context clearly indicates an exception, the words "a", "an", "an" and / or "the" do not refer to the singular and may also include the plural. Generally speaking, the terms "comprises" and "includes" only indicate the inclusion of the steps and elements that have been clearly identified, and these steps and elements do not constitute an exclusive list. The method or device may also include other steps or elements.
[0025] Flowcharts are used in the present application to illustrate the operations performed by the system according to the embodiments of the present application. It should be understood that the preceding or following operations are not necessarily performed accurately in order. On the contrary, the various steps may be processed in reverse order or simultaneously. At the same time, other operations may also be added to these processes, or one or more operations may be removed from these processes.
[0026] For ease of understanding, the technical solution of the present application is introduced below in conjunction with the accompanying drawings and embodiments.
[0027] Figure 1 is an exemplary schematic diagram of a monitoring device for underground environmental parameters according to some embodiments of the present application. Figure 1 As shown, the downhole environmental parameter monitoring device includes a downhole parameter measurement module and a downhole data reading module:
[0028] The downhole parameter measurement module is used to monitor and store data information of downhole environmental parameters of the well to be measured.
[0029] Downhole environmental parameters are parameters used to reflect the downhole environment, and may include but are not limited to: temperature, pressure, etc.
[0030] The well to be tested is a well whose downhole environmental parameters need to be obtained. The well to be tested may be an oil well, a water well, etc., and is not limited by the description in this specification.
[0031] In the specific implementation process, when the downhole parameter measurement module is in working state, it is placed at a preset position underground in the well to be tested. For example, when testing is required, the sampling interval of the downhole parameter measurement module can be set on the ground, and it can be connected to the oil pipe and lowered to the predetermined position, so that it can monitor and record the data information of the downhole environmental parameters at the preset sampling interval; when the test is completed and the downhole parameter measurement module needs to be pulled out, the downhole parameter measurement module can be taken out from the well to be tested using the oil pipe; if the downhole parameter measurement module cannot be pulled out due to the well conditions of the well to be tested (such as self-flowing production, etc.), the downhole parameter measurement module can be placed underground for a long time to monitor and record the data information of the downhole environmental parameters.
[0032] In some embodiments, the downhole parameter measurement module includes: a signal processing unit, a first data storage unit, a first wireless transmission unit, and a first power supply unit.
[0033] The signal processing unit is used to monitor the data information of the downhole environmental parameters at the preset position of the well to be tested.
[0034] In some embodiments, the downhole environmental parameters include temperature and pressure, and the signal processing unit includes a temperature sensor and a pressure sensor. The temperature sensor is used to obtain temperature data information at a preset downhole position of the well to be tested; the pressure sensor is used to obtain pressure data information at a preset downhole position of the well to be tested.
[0035] In a specific implementation process, one temperature sensor or multiple temperature sensors may be provided in the signal processing unit, which is not limited by the description of this specification.
[0036] The temperature sensor may be a sensor for measuring temperature underwater, for example, a CCL (methyl chloride) sensor.
[0037] In a specific implementation process, one pressure sensor or multiple pressure sensors may be provided in the signal processing unit, which is not limited by the description of this specification.
[0038] The pressure sensor may be a sensor used for measuring annular pressure underwater.
[0039] The first data storage unit is used to obtain and store data information of downhole environmental parameters monitored by the signal processing unit from the signal processing unit.
[0040] Wherein, the first wireless transmission unit is used to send the data information of the downhole environmental parameters stored in the data storage unit to the downhole data reading module.
[0041] The first wireless transmission unit is also used to obtain the value of the adjusted sampling interval from the downhole data reading module in response to the sampling interval adjustment instruction issued by the downhole data reading module, so that the downhole parameter measurement module can adjust the sampling interval to monitor and store the data information of the downhole environmental parameters of the well to be measured.
[0042] During the specific implementation process, the first wireless transmission unit has a built-in transmission module (for example, a Bluetooth transmission module, etc.) to realize a duplex transmission function and can send out data. At the same time, the first wireless transmission unit can receive instructions and change the sampling rate of the signal processing unit according to test requirements.
[0043] The first power supply unit is used to provide power to the downhole parameter measurement module. In the specific implementation process, a large-capacity battery pack can be configured in the first power supply unit to provide sufficient power for the downhole parameter measurement module to work continuously in the downhole for a long time.
[0044] The downhole data reading module is used to be set within the preset range of the downhole parameter measurement module to obtain the data information of the stored downhole environmental parameters from the downhole parameter measurement module. The downhole data reading module is set separately from the downhole parameter measurement module.
[0045] In some embodiments, the downhole data reading module includes: a second wireless transmission unit, a second data storage unit, and a second power supply unit.
[0046] The second wireless transmission unit is used to obtain data information of downhole environmental parameters stored in the downhole parameter measurement module from the downhole parameter measurement module.
[0047] During the specific implementation process, the second wireless transmission unit has a built-in transmission module (for example, a Bluetooth transmission module, etc.) to realize a duplex transmission function and is capable of receiving data. At the same time, the second wireless transmission unit can send a sampling interval adjustment instruction to send the value of the adjusted sampling interval to the downhole parameter measurement module according to the test requirements.
[0048] The second data storage unit is used to obtain and store data information of underground environmental parameters from the second wireless transmission unit.
[0049] In a specific implementation process, a storage device may be provided in the second data storage unit, and the data information of the downhole environmental parameters acquired by the second wireless transmission unit may be transferred to the storage device.
[0050] The second power supply unit is used to provide power to the downhole data reading module.
[0051] During the specific implementation process, due to the simple structure of the downhole data reading module, it can be transported by tools such as steel wire. When the downhole parameter measurement module cannot be removed, or the downhole parameter measurement module still needs to continue monitoring, the downhole data reading module can be lowered into the downhole parameter measurement module, and the data information of the downhole environmental parameters stored in the downhole parameter measurement module can be read through the communication between the second wireless transmission unit and the first wireless transmission unit. After the reading is completed, the downhole data reading module can be removed.
[0052] In some embodiments, the downhole parameter measurement module further includes a positioning unit, and the downhole data reading module further includes a guiding unit.
[0053] The positioning unit is used to dock with the guiding unit to determine the relative position between the downhole parameter measurement module and the downhole data reading module; the guiding unit is used to respond to the docking instruction of the guiding unit and send the position information of the downhole data reading module to the positioning unit.
[0054] In the specific implementation process, the downhole parameter measurement module can be designed as a large-diameter tubular structure, and a dedicated positioning mechanism (for example, a magnetic positioning device) is designed inside its inner diameter. The positioning mechanism can locate the tubular position of the downhole parameter measurement module. The positioning unit of the downhole parameter measurement module is docked with the guide unit of the downhole data reading module, and the relative position between the downhole parameter measurement module and the downhole data reading module can be accurately determined.
[0055] The monitoring device of downhole environmental parameters provided by the present application is provided with a downhole parameter measurement module for monitoring and storing data information of downhole environmental parameters of the well to be measured, and a downhole data reading module for obtaining data information of downhole environmental parameters stored in the downhole parameter measurement module from the downhole parameter measurement module, which are separately set. In the process of oil field development, when some conventional means cannot monitor the environmental parameters under the well to be measured (for example, the well to be measured is a new well or some operating wells where it is difficult to lower the oil-thick instrument), the downhole parameter measurement module can be lowered into the downhole parameter measurement module with the pipe string by oil pipe connection, without the risk of encountering obstacles, and the large diameter design does not affect other operating procedures, and the pressure in the oil pipe and the annulus can be monitored; if the downhole parameter measurement module cannot be pulled out due to the reason of the well to be measured, the downhole parameter measurement module can be placed in the well to be measured for a long time, and the downhole data reading module can be lowered into the downhole data reading module when data needs to be obtained. After the downhole data reading module is successfully docked with the downhole parameter measurement module, the data information of the environmental parameters stored in the downhole parameter measurement module can be read, so that the downhole environmental parameters can be monitored safely and efficiently.
[0056] Figure 2 is an exemplary schematic diagram of a monitoring system for downhole environmental parameters according to some embodiments of the present application. Figure 2As shown, the monitoring system includes: a monitoring device for underground environmental parameters and a surface data reading device.
[0057] For a detailed description of the monitoring device for underground environmental parameters, see Figure 1 The relevant content in will not be repeated here.
[0058] The surface data reading device is used to obtain data information of downhole environmental parameters stored in the downhole data reading module from the downhole data reading module.
[0059] In the specific implementation process, Figure 2 As shown, the ground data reading device includes a third data storage unit, and data reading software is installed on the ground data reading device.
[0060] In the specific implementation process, the data reading software can be a commonly used data reading software, such as serial port data software, USB data reading software, etc. The data reading software can be used to transmit and store the data information of the downhole environmental parameters stored in the downhole data reading module to the third data reading unit of the surface data reading device. In some embodiments, the data reading software can be used to play back the data in the downhole data reading module and convert it into a decompilable data format.
[0061] In some embodiments, the ground data reading device can also be used to communicate with the downhole parameter measurement module, and send the value of adjusting the preset sampling interval to the downhole parameter measurement module to instruct the downhole parameter measurement module to adjust the preset sampling interval, monitor and store data information of the downhole environmental parameters of the well to be measured.
[0062] In the downhole environmental parameter monitoring system provided in the present application, a ground data reading device is used to obtain the downhole environmental parameters monitored in the downhole to be tested from the downhole environmental parameter monitoring device, so that the downhole environmental parameters can be monitored safely and efficiently.
[0063] Figure 3 is an exemplary flow chart of a method for monitoring downhole environmental parameters according to some embodiments of the present application. Figure 3 As shown, the method comprises the following steps:
[0064] Step S310: using the downhole data reading module, obtain data information of downhole environmental parameters of the well to be measured within a preset time period from the downhole parameter measurement module.
[0065] Step S320, using a surface data reading device to obtain data information of downhole environmental parameters of the well to be measured within a preset time period from a downhole data reading module.
[0066] In the above-mentioned embodiment of the method for monitoring underground environmental parameters, the specific processing of each step and the technical effect brought about by it can be referred to the relevant description in the corresponding system or device embodiment, and will not be repeated here.
[0067] Figure 4 It is a schematic diagram of an exemplary structure of an electronic device according to some embodiments of the present application.
[0068] As shown in 4, the electronic device includes: at least one processor 401, at least one communication interface 402, at least one memory 403 and at least one communication bus 404; optionally, the communication interface 402 can be an interface of a communication module, such as an interface of a GSM module; the processor 401 may be a processor CPU, or an application-specific integrated circuit ASIC (Application Specific Integrated Circuit), or one or more integrated circuits configured to implement the embodiments of the present invention. The memory 403 may include a high-speed RAM memory, and may also include a non-volatile memory (non-volatile memory), such as at least one disk storage. Among them, the memory 403 stores a program, and the processor 401 calls the program stored in the memory 403 to execute part or all of the above-mentioned method embodiments.
[0069] The present application relates to a storage medium for storing a computer-readable program. When the computer-readable program is executed, part or all of the above-mentioned method embodiments are executed.
[0070] Alternatively, the storage medium may be a non-transitory computer-readable storage medium, for example, the non-transitory computer-readable storage medium may be a ROM, a random access memory (RAM), a CD-ROM, a magnetic tape, a floppy disk, an optical data storage device, and the like.
[0071] Based on the same inventive concept, an embodiment of the present application further provides a computer program product, including a computer program, which implements part or all of the above-mentioned method embodiments when executed by a processor.
[0072] The basic concepts have been described above. Obviously, for those skilled in the art, the above detailed disclosure is only for example and does not constitute a limitation of the present application. Although not explicitly stated herein, those skilled in the art may make various modifications, improvements and amendments to the present application. Such modifications, improvements and amendments are suggested in the present application, so such modifications, improvements and amendments still belong to the spirit and scope of the exemplary embodiments of the present application.
[0073] At the same time, the present application uses specific words to describe the embodiments of the present application. For example, "one embodiment", "an embodiment", and / or "some embodiments" refer to a certain feature, structure or characteristic related to at least one embodiment of the present application. Therefore, it should be emphasized and noted that "one embodiment" or "an embodiment" or "an alternative embodiment" mentioned twice or multiple times in different positions in the present application does not necessarily refer to the same embodiment. In addition, some features, structures or characteristics in one or more embodiments of the present application can be appropriately combined.
[0074] In addition, unless explicitly stated in the claims, the order of the processing elements and sequences described in this application, the use of alphanumeric characters, or the use of other names are not intended to limit the order of the processes and methods of this application. Although the above disclosure discusses some invention embodiments that are currently considered useful through various examples, it should be understood that such details are only for illustrative purposes, and the attached claims are not limited to the disclosed embodiments. On the contrary, the claims are intended to cover all modifications and equivalent combinations that are consistent with the essence and scope of the embodiments of this application. For example, although the system components described above can be implemented by hardware devices, they can also be implemented only by software solutions, such as installing the described system on an existing server or mobile device.
[0075] Similarly, it should be noted that in order to simplify the description of the disclosure of this application and thus help understand one or more embodiments of the invention, in the above description of the embodiments of this application, multiple features are sometimes combined into one embodiment, figure or description thereof. However, this disclosure method does not mean that the features required by the object of this application are more than the features mentioned in the claims. In fact, the features of the embodiments are less than all the features of the single embodiment disclosed above.
[0076] In some embodiments, numbers describing the number of components and attributes are used. It should be understood that such numbers used in the description of the embodiments are modified by the modifiers "about", "approximately" or "substantially" in some examples. Unless otherwise specified, "about", "approximately" or "substantially" indicate that the numbers are allowed to vary by ±20%. Accordingly, in some embodiments, the numerical parameters used in the specification and claims are approximate values, which may change according to the required features of individual embodiments. In some embodiments, the numerical parameters should take into account the specified significant digits and adopt the general method of retaining digits. Although the numerical domains and parameters used to confirm the breadth of their range in some embodiments of the present application are approximate values, in specific embodiments, the setting of such numerical values is as accurate as possible within the feasible range.
[0077] Each patent, patent application, patent application disclosure, and other materials, such as articles, books, instructions, publications, documents, etc., cited in this application are hereby incorporated by reference in their entirety. Except for application history documents that are inconsistent with or conflicting with the content of this application, documents that limit the broadest scope of the claims of this application (currently or later attached to this application) are also excluded. It should be noted that if the descriptions, definitions, and / or use of terms in the attached materials of this application are inconsistent or conflicting with the content described in this application, the descriptions, definitions, and / or use of terms in this application shall prevail.
[0078] Finally, it should be understood that the embodiments described in this application are only used to illustrate the principles of the embodiments of the present application. Other variations may also fall within the scope of the present application. Therefore, as an example and not a limitation, the alternative configurations of the embodiments of the present application may be considered to be consistent with the teachings of the present application. Accordingly, the embodiments of the present application are not limited to the embodiments explicitly introduced and described in the present application.
Claims
1. A monitoring device for underground environmental parameters, characterized in that: The device comprises: The downhole parameter measurement module is used to be placed at a preset downhole position of the well to be measured when in working state, and monitor and store data information of downhole environmental parameters of the well to be measured; The downhole data reading module is used to be set within the preset range of the downhole parameter measurement module to obtain the data information of the stored downhole environmental parameters from the downhole parameter measurement module. The downhole data reading module is set separately from the downhole parameter measurement module.
2. The monitoring device according to claim 1, characterized in that: The downhole parameter measurement module comprises: A signal processing unit, used for monitoring data information of downhole environmental parameters at a preset position of the well to be tested; A first data storage unit, used to obtain and store data information of downhole environmental parameters monitored by the signal processing unit from the signal processing unit; A first wireless transmission unit, used to send the data information of the downhole environmental parameters stored in the data storage unit to the downhole data reading module; and In response to the sampling interval adjustment instruction issued by the downhole data reading module, the value of the adjusted sampling interval is obtained from the downhole data reading module, so that the downhole parameter measurement module monitors and stores the data information of the downhole environmental parameters of the well to be measured at the adjusted sampling interval; The first power supply unit is used to provide electrical energy to the downhole parameter measurement module.
3. The monitoring device according to claim 2, characterized in that: The downhole environmental parameters include temperature and pressure, and the signal processing unit includes: A temperature sensor is used to obtain temperature data information at a preset position downhole of the well to be tested; The pressure sensor is used to obtain pressure data information at a preset position downhole of the well to be tested.
4. The monitoring device according to claim 3, characterized in that: The downhole data reading module comprises: A second wireless transmission unit is used to obtain data information of downhole environmental parameters stored in the downhole parameter measurement module from the downhole parameter measurement module; A second data storage unit, used to obtain and store data information of the downhole environmental parameters from the second wireless transmission unit; The second power supply unit is used to provide electrical energy to the downhole data reading module.
5. The monitoring device according to claim 4, characterized in that: The downhole parameter measurement module further includes a positioning unit, and the downhole data reading module further includes a guiding unit; The positioning unit is used to dock with the guiding unit to determine the relative position between the downhole parameter measurement module and the downhole data reading module; The guiding unit is used to send the position information of the downhole data reading module to the positioning unit in response to the docking instruction of the guiding unit.
6. A monitoring system for underground environmental parameters, characterized in that: The system comprises: The device for monitoring underground environmental parameters according to any one of claims 1 to 5; The surface data reading device is used to obtain data information of downhole environmental parameters stored in the downhole data reading module from the downhole data reading module.
7. The monitoring system according to claim 6, characterized in that: The ground data reading device is also used for: Communicate with the downhole parameter measurement module, send the value of the adjusted preset sampling interval to the downhole parameter measurement module, so as to instruct the downhole parameter measurement module to monitor and store the data information of the downhole environmental parameters of the well to be measured at the adjusted preset sampling interval.
8. A method for monitoring underground environmental parameters, characterized in that: The method is applied to the monitoring system of underground environmental parameters according to claim 7, and the method comprises: Using the downhole data reading module, the data information of the downhole environmental parameters of the well to be measured within a preset time period is obtained from the downhole parameter measurement module; The ground data reading device is used to obtain data information of the downhole environmental parameters of the well to be measured within a preset time period from the downhole data reading module.
9. An electronic device, comprising a memory and a processor, wherein the memory stores a computer program, and the processor executes the method according to any one of claims 7 to 8 when running the program.
10. A storage medium for storing a computer-readable program, wherein when the computer-readable program is executed, the method according to any one of claims 7 to 8 is executed.
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