Real-time remote monitoring device for geosteering drilling data

By designing a real-time remote monitoring device for geological steering drilling data, the problem of low efficiency in traditional drilling monitoring methods has been solved, enabling real-time monitoring and remote transmission of data, and improving the stability and adaptability of the equipment.

CN223806130UActive Publication Date: 2026-01-16ZHANJIANG RUIFAN PETROLEUM TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202521184729.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-06-11
Publication Date
2026-01-16
Estimated Expiration
2035-06-11

AI Technical Summary

Technical Problem

Traditional drilling monitoring methods rely on manual on-site monitoring, which is inefficient, makes it difficult to achieve real-time data transmission and remote analysis, and the equipment is easily affected by the environment under complex geological conditions, leading to deviations in drilling trajectory and increased costs.

Method used

A real-time remote monitoring device for geological steering drilling data was designed. It adopts heat dissipation fins, a cooling fan and a detachable shell structure, combined with a sliding baffle and limit rod system to ensure the heat dissipation, protection and stability of the equipment, and realize real-time monitoring and remote transmission of data.

Benefits of technology

It improves the efficiency of real-time monitoring of drilling data and the stability of equipment, reduces the risk of equipment damage, and enhances adaptability and service life in complex environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of drilling equipment, in particular to a geosteering drilling data real-time remote monitoring device which comprises a bottom plate, a data remote monitoring device is fixedly installed on the top of the bottom plate, and cooling fins are further fixedly installed on the top of the data remote monitoring device. A shell is detachably arranged at the top of the bottom plate in an inserted mode through an inserting groove, a first telescopic rod, a mounting frame and a heat dissipation fan are arranged in the shell through a heat dissipation shell, a heat dissipation net plate is further fixedly installed on the shell, and a baffle is further arranged on the shell in a sliding mode. According to the device, the first telescopic rods are connected with the mounting frame, the cooling fan is fixed to the mounting frame, and the first springs arranged on the outer sides of the first telescopic rods in a sleeving mode enable the cooling fan to be tightly attached to the cooling fins, so that heat can be efficiently discharged, the cooling effect is greatly improved, the situation that the device is influenced by external factors can be reduced in cooperation with the baffles for use, and the service life of the device is prolonged. And the use efficiency of the device is ensured.
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Description

TECHNICAL FIELD

[0001] The utility model relates to drilling equipment technical field, concretely is a geological direction drilling data real -time remote monitoring device. BACKGROUND

[0002] In the exploration and exploitation process of oil, natural gas and other resources, the geological direction drilling technology plays a vital role. This technology can adjust the drilling trajectory in real time according to the geological conditions, improve the drilling efficiency, reduce the exploitation cost and ensure the safety of the drilling process. However, with the deepening of drilling operation, the geological conditions become more and more complex, and higher requirements are put forward for real-time monitoring and accurate control of the drilling process.

[0003] The traditional drilling monitoring mode often relies on artificial field monitoring and recording, which is not only inefficient, but also difficult to realize real-time transmission and remote analysis of data. Under complex geological conditions, artificial monitoring may not be able to capture key data changes in time, leading to deviation of the drilling trajectory from the expected value, increasing the drilling risk and cost. In addition, the traditional monitoring equipment also has deficiencies in heat dissipation, protection and other aspects, which is easily affected by the harsh environment on site, such as high temperature, dust, etc., thereby affecting the stability and service life of the equipment. Therefore, we propose a geological direction drilling data real-time remote monitoring device. UTILITY MODEL CONTENT

[0004] The utility model aims at providing a geological direction drilling data real-time remote monitoring device to solve the problems raised in the above background technology.

[0005] To achieve the above purpose, the utility model provides the following technical scheme: a bottom plate is provided, a data remote monitoring device is fixedly installed on the top of the bottom plate, a heat dissipation fin is also fixedly installed on the top of the data remote monitoring device, a plurality of insertion slots are uniformly provided on the top of the bottom plate, an outer shell is detachably arranged on the insertion slot through insertion, a heat dissipation shell is fixedly installed on the inner wall of the upper part of the inner part of the outer shell, a plurality of first telescopic rods are uniformly fixedly installed on the bottom of the heat dissipation shell, an installation frame is fixedly installed on the end of the telescopic arm of the first telescopic rod, a heat dissipation fan is fixedly installed on the installation frame, a heat dissipation mesh plate is also fixedly installed on the outer shell, a baffle is slidably arranged on the outer shell, two fixed blocks are fixedly installed on the top of the outer shell, a handle is fixedly installed on the top of the baffle, and the handle is movably connected with the two fixed blocks through fixed bolts.

[0006] Preferably, a plurality of installation cavities are uniformly provided in the inner part of the bottom plate, a sliding plate is slidably arranged in the inner part of the installation cavity, a limiting rod is fixedly installed on the side wall of the sliding plate, and a limiting groove matched with the limiting rod is formed in the side wall of the outer shell.

[0007] Preferably, the first telescopic rod is sleeved with a first spring, one end of the first spring is fixedly connected with the mounting frame, and the other end of the first spring is fixedly connected with the heat dissipation shell.

[0008] Preferably, the second telescopic rod is fixedly installed inside the mounting cavity, and the telescopic arm of the second telescopic rod is fixedly connected with the sliding plate.

[0009] Preferably, the second telescopic rod is sleeved with a second spring, one end of the second spring is fixedly connected with the mounting cavity, and the other end of the second telescopic rod is fixedly connected with the sliding plate.

[0010] Preferably, the data remote monitoring device comprises a monitoring module, a signal receiving module and a signal sending module.

[0011] Compared with the prior art, the data remote monitoring device has the advantages that: the heat dissipation fins arranged at the top of the data remote monitoring device can effectively lead out the heat generated during work, guaranteeing normal operation of the device; the heat dissipation shell installed on the inner wall of the upper portion of the shell is connected with the mounting frame through the first telescopic rod, the mounting frame is fixed with the heat dissipation fan, and the first spring sleeved outside the first telescopic rod makes the heat dissipation fan closely adhere to the heat dissipation fins, so that the heat can be efficiently discharged, the heat dissipation effect is greatly improved, and the service life and stability of the data remote monitoring device are prolonged; meanwhile, under the action of the heat dissipation mesh plate, dust and the like can be reduced from entering the inside of the device, the use efficiency of the data remote monitoring device is further guaranteed; in addition, the baffle slidingly arranged on the shell and the handle movably connected with the fixed block through the fixing bolt can conveniently seal the heat dissipation mesh plate in rainy days and the like, rainwater and the like can be reduced from entering the inside of the shell, the data remote monitoring device is effectively prevented from being damaged due to the entry of rainwater, and the adaptability of the device in complex environments is improved.

[0012] In addition, the sliding plate, the limiting rod arranged in the mounting cavity in the bottom plate and the limiting groove matched with the limiting rod on the side wall of the shell, in combination with the second telescopic rod and the second spring sleeved outside the second telescopic rod in the mounting cavity, guarantee the firmness and stability of the connection between the shell and the bottom plate, ensure the structural integrity of the whole device, and make the device more reliable during operation. BRIEF DESCRIPTION OF DRAWINGS

[0013] Figure 1 It is a whole structure schematic view of the utility model;

[0014] Figure 2 It is an internal structure schematic view of the shell of the utility model;

[0015] Figure 3 It is an internal structure schematic view of the bottom plate of the utility model;

[0016] Figure 4 It is a structure enlarged view of A in the utility model; Figure 2 ​

[0017] Figure 5 The utility model discloses a Figure 3 The structure amplification diagram of B in the middle.

[0018] In the drawings, the component list represented by each sign is as follows: 1, bottom plate;2, data remote monitoring device;3, heat dissipation fin;4, shell;5, heat dissipation shell;6, first telescopic link;7, first spring;8, mounting bracket;9, heat dissipation fan;10, heat dissipation net plate;11, baffle;12, fixed block;13, handle;14, fixed bolt;15, slot;16, mounting cavity;17, sliding plate;18, limiting rod;19, second telescopic link;20, second spring. DETAILED DESCRIPTION

[0019] The technical scheme in the embodiments of the utility model will be described clearly and completely below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by the person skilled in the art without creative labor fall within the protection scope of the utility model.

[0020] The utility model provides a technical scheme: as Figures 1-5 The utility model discloses a geological orientation drilling data real -time remote monitoring device, including bottom plate 1, bottom plate 1 top fixed mounting has data remote monitoring device 2, data remote monitoring device 2 includes monitoring module, signal receiving module and signal sending module, and monitoring module can monitor the data of drilling, and signal receiving module can receive information, and signal sending module can send the information of monitoring remotely, and cooperate remote monitoring system can carry out real -time monitoring to the data of drilling, and bottom plate 1 top still fixed mounting has heat dissipation fin 3, under the action of heat dissipation fin 3, can lead out the heat generated when data remote monitoring device 2 works, to guarantee the use efficiency of data remote monitoring device 2.

[0021] The bottom plate 1 is uniformly provided with a plurality of insertion slots 15 on the top, and the shell 4 is detachably arranged on the insertion slot 15 through insertion. The shell 4 is internally and upwardly provided with a heat dissipation shell 5 fixedly installed on the inner wall. The heat dissipation shell 5 is uniformly provided with a plurality of first extension rods 6 fixedly installed on the bottom. The first extension rod 6 is fixedly installed with a mounting rack 8 at the end of the extension arm. The mounting rack 8 is fixedly installed with a heat dissipation fan 9. Under the action of the heat dissipation fan 9, the generated heat can be discharged, thereby better performing heat dissipation work on the data remote monitoring device 2. The first extension rod 6 is externally sleeved with a first spring 7. One end of the first spring 7 is fixedly connected with the mounting rack 8, and the other end of the first spring 7 is fixedly connected with the heat dissipation shell 5. At this time, under the action of the first spring 7, the heat dissipation fan 9 can better adhere to the heat dissipation fin 3, thereby ensuring the heat dissipation quality. The shell 4 is further fixedly installed with a heat dissipation mesh plate 10. Under the action of the heat dissipation mesh plate 10, the occurrence of the situation that dust and the like enters the device can be reduced, thereby ensuring the use efficiency of the data remote monitoring device 2. The shell 4 is further slidably provided with a baffle 11. Under the action of the baffle 11, heat dissipation holes can be sealed. When it is rainy and the like, the heat dissipation mesh plate 10 can be closed, thereby reducing the occurrence of the situation that rainwater and the like enters the shell 4 and causes damage to the data remote monitoring device 2. The shell 4 is fixedly installed with two fixed blocks 12 on the top. The baffle 11 is fixedly installed with a handle 13 on the top. The handle 13 is movably connected with the two fixed blocks 12 through the fixed bolts 14. At this time, under the action of the fixed bolts 14 and the handle 13, the closing and opening functions of the heat dissipation mesh plate 10 can be realized.

[0022] The bottom plate 1 is internally and uniformly provided with a plurality of installation cavities 16. The installation cavity 16 is slidably provided with a sliding plate 17 internally. The sliding plate 17 is fixedly installed with a limiting rod 18 on the side wall. The shell 4 is provided with a limiting slot cooperatively used with the limiting rod 18 on the side wall. At this time, under the action of the limiting rod 18 and the limiting slot, the connection quality of the shell 4 and the bottom plate 1 is ensured, thereby ensuring the installation quality of the shell 4. The installation cavity 16 is further fixedly installed with a second extension rod 19 internally. The second extension rod 19 is fixedly connected with the sliding plate 17 at the end of the extension arm. The second extension rod 19 is externally sleeved with a second spring 20. One end of the second spring 20 is fixedly connected with the installation cavity 16. The other end of the second extension rod 19 is fixedly connected with the sliding plate 17. At this time, under the action of the second spring 20, the connection quality of the limiting rod 18 and the limiting slot is ensured.

[0023] Working principle: The data remote monitoring device 2 is fixedly installed on the top of the bottom plate 1. The monitoring module thereof monitors the drilling data in real time. The signal receiving module receives external information. The signal sending module remotely sends the monitoring information. The data is monitored in real time in cooperation with the remote monitoring system. The device generates heat during work. The heat is led out by the heat dissipation fin 3, thereby ensuring the use efficiency of the device.

[0024] The shell 4 is detachably inserted on the bottom plate 1 through the slot 15. In the shell 4, the bottom of the heat dissipation shell 5 is connected with the mounting frame 8 through the first telescopic rod 6, the heat dissipation fan 9 is mounted on the mounting frame 8, the first spring 7 is sleeved outside the first telescopic rod 6, and two ends of the first spring 7 are connected with the heat dissipation shell 5 and the mounting frame 8 respectively, so that the heat dissipation fan 9 is tightly attached to the heat dissipation fin 3, heat is discharged, and good heat dissipation is ensured. The heat dissipation mesh plate 10 on the shell 4 reduces the entry of dust and ensures the use efficiency of the device.

[0025] The baffle 11 is slidably arranged on the shell 4, the handle 13 is fixed on the top of the baffle 11, and the handle 13 is movably connected with the two fixed blocks 12 on the top of the shell 4 through the fixed bolt 14. In rainy days, the fixed bolt 14 is screwed, the handle 13 is pushed to drive the baffle 11 to move, the heat dissipation mesh plate 10 is sealed, and the shell 4 is prevented from being damaged by rainwater.

[0026] In the bottom plate 1, the sliding plate 17 in the mounting cavity 16 is connected through the second telescopic rod 19, the second spring 20 is sleeved outside the second telescopic rod 19, the limiting rod 18 is fixed on the side wall of the sliding plate 17, and the limiting slot in the side wall of the shell 4 is matched. Under the action of the second spring 20, the limiting rod 18 and the limiting slot are tightly connected, and the shell 4 and the bottom plate 1 are firmly installed.

[0027] It should be noted that, in the present text, relational terms such as first and second and the like can only be used to distinguish one entity or operation from another entity or operation, without necessarily requiring or implying any such actual relationship or order between these entities or operations. Moreover, the terms "comprises", "comprising", or any other variations thereof are intended to cover non-exclusive inclusions, so that a process, method, article, or equipment including a series of elements not only includes those elements, but also includes other elements not explicitly listed or inherent to such a process, method, article, or equipment.

[0028] Although the embodiments of the present application have been shown and described, it can be understood by those skilled in the art that various changes, modifications, replacements and variations can be made to the embodiments without departing from the principles and spirits of the present application, and the scope of the present application is defined by the appended claims and their equivalents.

Claims

1. A real-time remote monitoring device for geosteering drilling data, comprising a base plate (1), a top of the base plate (1) is fixedly installed with a data remote monitoring device (2), characterized in that: The data remote monitoring device (2) top is also fixedly installed with the heat dissipation fin (3), the bottom plate (1) top is evenly provided with a plurality of insertion slots (15), the insertion slot (15) is detachably provided with the shell (4) by inserting, the shell (4) inside upper wall is fixedly installed with the heat dissipation shell (5), the heat dissipation shell (5) bottom is evenly fixedly installed with a plurality of first telescopic rods (6), the first telescopic rod (6) telescopic arm terminal is fixedly installed with the mounting bracket (8), the mounting bracket (8) is fixedly installed with the heat dissipation fan (9), the shell (4) is also fixedly installed with the heat dissipation mesh plate (10), the shell (4) is also slidably provided with the baffle (11), the shell (4) top is fixedly installed with two fixed blocks (12), the baffle (11) top is fixedly installed with the handle (13), the handle (13) is movably connected with the two fixed blocks (12) by the fixed bolt (14).

2. The device for real-time remote monitoring of geosteering drilling data according to claim 1, characterized in that: The bottom plate (1) is evenly provided with a plurality of installation cavities (16) inside, the installation cavity (16) is slidably provided with the sliding plate (17), the sliding plate (17) side wall is fixedly installed with the limiting rod (18), the shell (4) side wall is provided with the limiting slot for cooperation with the limiting rod (18).

3. The device according to claim 1, characterized in that: The first telescopic rod (6) is provided with the first spring (7) outside, one end of the first spring (7) is fixedly connected with the mounting bracket (8), the other end of the first spring (7) is fixedly connected with the heat dissipation shell (5).

4. The device according to claim 2, wherein: The installation cavity (16) is also fixedly installed with the second telescopic rod (19) inside, the second telescopic rod (19) telescopic arm terminal is fixedly connected with the sliding plate (17).

5. The device for real-time remote monitoring of geosteering drilling data according to claim 4, characterized in that: The second telescopic rod (19) is provided with the second spring (20) outside, one end of the second spring (20) is fixedly connected with the installation cavity (16), the other end of the second telescopic rod (19) is fixedly connected with the sliding plate (17).

6. The device for real-time remote monitoring of geosteering drilling data according to claim 1, characterized in that: The data remote monitoring device (2) includes monitoring module, signal receiving module and signal sending module.