Hydrogeological borehole water level real-time telemeter

CN224785699UActive Publication Date: 2026-09-22SHAANXI YIBALIU COALFIELD GEOLOGY
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Patent Information

Application Number
CN202522399009.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-12
Publication Date
2026-09-22
Estimated Expiration
2035-11-12

AI Technical Summary

Benefits of technology

1、本实用新型中,通过设置的收纳壳、支撑架、箱门、通槽、控制主体、连接主体、检测主体和限位主体,可以直接通过连接主体将检测主体装入到钻孔内,之后控制主体通过连接主体控制检测主体对水位进行实时检测,方便检测水位,通过限位主体可以对连接主体进行收纳,便于此实时遥测仪在户外使用;

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Abstract

The utility model relates to hydrogeology borehole detection technical field especially is a kind of hydrogeology borehole water level real-time telemeter, including storage shell, connecting main part and limit main part, the storage shell bottom is fixedly connected with control main part, the storage shell bottom outside is fixedly connected with support frame, the storage shell front side is equipped with box door, the storage shell is equipped with the limit main part of being evenly distributed in, the control main part top is equipped with connecting main part, the connecting main part is through the through slot of the storage shell being set, in the utility model, through the storage shell, support frame, box door, through slot, control main part, connecting main part, detection main part and limit main part being set, can directly through connecting main part and be loaded into the detection main part in borehole, after control main part controls detection main part and carries out real-time detection to water level by connecting main part, it is convenient to detect water level, through limit main part, connecting main part can be received, it is convenient for this real-time telemeter to use outdoors.
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Description

Technical Field

[0001] This utility model relates to the field of hydrogeological borehole detection technology, specifically a real-time remote sensing instrument for water level in hydrogeological boreholes. Background Technology

[0002] Hydrogeological boreholes are holes drilled for hydrogeological surveys and explorations. They are widely used in regional hydrogeological surveys and groundwater resource exploration. According to their tasks, hydrogeological boreholes are roughly divided into regional hydrogeological survey boreholes, water resource hydrogeological exploration boreholes, hydrogeological and engineering geological boreholes for large structures, and boreholes for farmland underground and geothermal water resources. After drilling, water levels can be monitored using real-time telemetry instruments.

[0003] Traditional real-time telemetry instruments typically involve directly inserting the probe into the hydrogeological borehole. However, this makes it impossible to observe the inside of the borehole, and the probe's flexible wires prevent the probe from being moved downwards, making its use inconvenient. Therefore, to address these issues, a real-time telemetry instrument for water level in hydrogeological boreholes is proposed. Utility Model Content

[0004] The purpose of this utility model is to provide a real-time remote sensing instrument for water level in hydrogeological boreholes, so as to solve the problems that the inside of hydrogeological boreholes cannot be observed, the soft wires cannot push the detection probe downwards, and the use of the detection probe is inconvenient.

[0005] To achieve the above objectives, this utility model provides the following technical solution: A real-time remote sensing instrument for water level in a hydrogeological borehole includes a housing, a connecting body, and a limiting body. A control body is fixedly connected to the bottom of the housing, and a support frame is fixedly connected to the outer side of the bottom of the housing. A door is installed on the front side of the housing. Limiting bodies are evenly distributed inside the housing. A connecting body is installed on the top of the control body. The connecting body passes through a through slot in the housing and a detection body is installed at one end of the connecting body.

[0006] Preferably, the connecting body includes a connecting wire, a support rod, a fixing block, an elastic band, a threaded rod, a connecting block, and a first screw. One end of the connecting wire is fixedly connected to the detection body. The inner and outer sides of the end of the connecting wire fixedly connected to the detection body are fixedly connected to the fixing block. The bottom of the fixing block is fixedly connected to the detection body. A support rod is provided on one side of the connecting wire. An elastic band is provided on the outer side of the connecting wire. A threaded rod is fixedly connected to the bottom end of the support rod. A threaded rod is threadedly connected to the top of the fixing block. A threaded rod is threadedly connected to the top of the support rod below. Connecting blocks are fixedly connected to both ends of the elastic band. First screws threadedly connected to the support rod are provided through the upper and lower sides of the connecting block.

[0007] Preferably, one end of the connecting wire passes through the slot opened in the housing and is disposed inside the housing, and the end of the connecting wire away from the detection body is fixedly connected to the control body.

[0008] Preferably, the connecting body further includes a support plate, a first washer, and bolts. The support plate is provided on the top of the upper support rod, and the first washer is provided on the top of the support plate. Bolts that are threadedly connected to the support rod are provided through the support plate and the first washer.

[0009] Preferably, the limiting body includes a fixed rod, a vertical rod, a sliding plate, a second screw, and a second washer. One end of the fixed rod is fixedly connected to the storage shell. A longitudinally arranged sliding groove is opened in the fixed rod. A sliding plate is arranged in the sliding groove of the fixed rod. A vertical rod is fixedly connected to the top of the sliding plate. A second screw is threaded to the bottom of the sliding plate. A second washer is arranged on the outside of the second screw. The top of the second washer is tightly fitted with the fixed rod.

[0010] Compared with the prior art, the beneficial effects of this utility model are: 1. In this utility model, by setting up a storage shell, support frame, box door, through groove, control body, connecting body, detection body and limiting body, the detection body can be directly installed into the borehole through the connecting body. Then the control body controls the detection body to detect the water level in real time through the connecting body, which is convenient for water level detection. The limiting body can store the connecting body, which is convenient for this real-time telemetry instrument to be used outdoors. 2. In this utility model, by setting up a connecting wire, support rod, fixing block, elastic band, threaded rod, connecting block, first screw, support plate, first washer, and bolt, the connecting wire can be shaped and supported under the action of the support rod. Under the action of the threaded rod, the support rod is installed on the top of the fixing block. At the same time, the threaded rod can assemble multiple support rods to adapt to different drilling depths. The elastic band can be installed on the outside of the support rod and the connecting wire through the connecting block and the first screw, so that the connecting wire and the support rod fit together, which facilitates the support rod to shape and support the connecting wire. The shape of the support rod itself remains stable and does not change. At this time, the support rod can be used to insert the detection body into the drill hole through the fixing block. At the same time, the support plate fixed to the top of the top support rod by the bolt and the first washer can prevent the support rod and the detection body from falling into the drill hole, thereby restricting the position of the detection body. 3. In this utility model, the connecting wire can be wound around the outside of the fixed rod by the fixed rod, the sliding groove, the vertical rod, the sliding plate, the second screw, and the second washer, thereby storing the connecting wire. When winding, by selecting different numbers of fixed rods, the connecting wire can be stored in a targeted manner. The vertical rod can prevent the connecting wire from falling off the fixed rod. The sliding plate can move within the sliding groove opened on the fixed rod. Then, the second screw passes through the second washer and is threadedly connected to the sliding plate. At this time, the vertical rod is clamped on the upper and lower sides of the fixed rod by the second screw and the second washer, thereby positioning the vertical rod. It is convenient to adjust the position of the vertical rod according to the effect of storing the connecting wire, which facilitates the storage of the connecting wire. Attached Figure Description

[0011] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram of the main connecting structure of this utility model; Figure 3 This utility model Figure 2 A schematic diagram of the structure at point A; Figure 4 This is a schematic diagram of the installation structure of the first screw of this utility model; Figure 5 This is a schematic diagram of the installation structure of the connecting wire of this utility model; Figure 6 This is a schematic diagram of the installation structure of the limiting body of this utility model; Figure 7 This is a schematic diagram of the installation structure of the skateboard of this utility model.

[0012] In the diagram: 1. Storage shell; 2. Support frame; 3. Box door; 4. Through groove; 5. Control body; 6. Connecting body; 601. Connecting wire; 602. Support rod; 603. Fixing block; 604. Elastic band; 605. Threaded rod; 606. Connecting block; 607. First screw; 608. Support plate; 609. First washer; 610. Bolt; 7. Detection body; 8. Limiting body; 801. Fixing rod; 802. Slide groove; 803. Vertical rod; 804. Slide plate; 805. Second screw; 806. Second washer. Detailed Implementation

[0013] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0014] Please see Figure 1-7 This utility model provides a technical solution: A real-time remote sensing instrument for water level in a hydrogeological borehole includes a housing 1, a connecting body 6, and a limiting body 8. A control body 5 is fixedly connected to the bottom of the housing 1, and a support frame 2 is fixedly connected to the outer side of the bottom of the housing 1. A door 3 is installed on the front side of the housing 1. The limiting bodies 8 are evenly distributed inside the housing 1. The connecting body 6 is installed on the top of the control body 5. The connecting body 6 passes through a through slot 4 opened in the housing 1. A detection body 7 is installed at one end of the connecting body 6. With this setting, the detection body 7 can be directly inserted into the borehole through the connecting body 6. Then, the control body 5 controls the detection body 7 to detect the water level in real time through the connecting body 6, which is convenient for water level detection. The limiting body 8 can store the connecting body 6, which is convenient for outdoor use of this real-time remote sensing instrument.

[0015] The connecting body 6 includes a connecting wire 601, a support rod 602, a fixing block 603, an elastic band 604, a threaded rod 605, a connecting block 606, and a first screw 607. One end of the connecting wire 601 is fixedly connected to the detection body 7. The fixing block 603 is fixedly connected to the inner and outer sides of the end of the connecting wire 601 that is fixedly connected to the detection body 7. The bottom of the fixing block 603 is fixedly connected to the detection body 7. A support rod 602 is provided on one side of the connecting wire 601. An elastic band 604 is provided on the outer side of the connecting wire 601. A threaded rod 605 is fixedly connected to the bottom end of the support rod 602. A threaded rod 605 is threadedly connected to the top of the fixing block 603. A threaded rod 605 is threadedly connected to the top of the lower support rod 602. Connecting blocks 607 are fixedly connected to both ends of the elastic band 604. 06. The connecting block 606 has first screws 607 threadedly connected to the support rod 602 on both its upper and lower sides. One end of the connecting wire 601 passes through the through slot 4 opened in the housing 1 and is disposed within the housing 1. The end of the connecting wire 601 away from the detection body 7 is fixedly connected to the control body 5. The connecting body 6 also includes a support plate 608, a first washer 609, and bolts 610. A support plate 608 is provided on the top of the upper support rod 602, and a first washer 609 is provided on the top of the support plate 608. Bolts 610 threadedly connected to the support rod 602 are threadedly installed in both the support plate 608 and the first washer 609. Through this arrangement, the connecting wire 601 can be shaped and supported under the action of the support rod 602, and under the action of the threaded rod 605... The support rod 602 is installed on top of the fixing block 603. Simultaneously, the threaded rod 605 can assemble multiple support rods 602 to accommodate different drilling depths. The elastic band 604, via the connecting block 606 and the first screw 607, can be installed on the outside of the support rod 602 and the connecting wire 601, allowing the connecting wire 601 to fit snugly against the support rod 602. This facilitates the support rod 602 in shaping and supporting the connecting wire 601, while maintaining the stable shape of the support rod 602. At this point, the detection body 7 can be inserted into the drill hole via the fixing block 603. Simultaneously, the support plate 608 at the top of the top support rod 602, secured by bolts 610 and the first washer 609, prevents the support rod 602 and the detection body 7 from falling into the drill hole. The hole restricts the position of the detection body 7. The limiting body 8 includes a fixing rod 801, a vertical rod 803, a sliding plate 804, a second screw 805, and a second washer 806. One end of the fixing rod 801 is fixedly connected to the housing 1. A longitudinally arranged sliding groove 802 is opened in the fixing rod 801. The sliding plate 804 is arranged in the sliding groove 802 of the fixing rod 801. The vertical rod 803 is fixedly connected to the top of the sliding plate 804. The second screw 805 is threadedly connected to the bottom of the sliding plate 804. The second washer 806 is arranged on the outside of the second screw 805. The top of the second washer 806 is tightly fitted with the fixing rod 801. With this arrangement, the connecting wire 601 can be wound around the outside of the fixing rod 801 to store the connecting wire 601.By selecting different numbers of fixing rods 801, the connecting wire 601 can be selectively stored. The vertical rod 803 prevents the connecting wire 601 from falling off the fixing rod 801. The sliding plate 804 can move within the groove 802 opened in the fixing rod 801. Then, the second screw 805 passes through the second washer 806 and is threadedly connected to the sliding plate 804. At this time, the vertical rod 803 is clamped on the upper and lower sides of the fixing rod 801 by the second screw 805 and the second washer 806, thus positioning the vertical rod 803. This allows for adjustment of the position of the vertical rod 803 according to the storage effect of the connecting wire 601, facilitating the storage of the connecting wire 601.

[0016] Workflow: When using this real-time telemetry instrument, first install the support frame 2 in a suitable position, then connect the power supply to the real-time telemetry instrument. At this time, thread the threaded rod 605 at the bottom of one support rod 602 to the fixing block 603, and install the support rod 602 on top of the fixing block 603. Then, wrap the elastic band 604 around the outside of the connecting wire 601. Then, insert the first screw 607 into the connecting block 606 and thread it to the support rod 602, thus installing the connecting wire 601 on one side of the support rod 602. Then, thread the threaded rod 605 at the bottom of the other support rod 602 to the lower support rod 602. Install the elastic band 604 in the above manner. At this time, the detection body 7 can be lowered into the ground through a drilled hole. By continuously adjusting the two support rods 602... The connection is made between the two parts to move the detection body 7 to a suitable position. Then, the support plate 608 and the first gasket 609 are installed on the top of the support rod 602 by bolts 610. At this time, the support plate 608 contacts the ground to limit the support rod 602 and the detection body 7. The detection body 7 is started by the control body 5. The detection body 7 detects the water level in real time and transmits the data back to the control center via wireless network. At this time, the connecting wires 601 that are not inserted into the borehole can be wrapped around the outside of several fixed rods 801. The connecting wires 601 are wrapped around the outside of different fixed rods 801 according to their length. At this time, the vertical rod 803 can limit the connecting wires 601 to prevent them from falling off and facilitate the storage of connecting wires 601 of different lengths.

[0017] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A real-time remote sensing instrument for water level in a hydrogeological borehole, comprising a housing (1), a connecting body (6), and a limiting body (8), characterized in that: The storage shell (1) is fixedly connected to a control body (5) at the bottom. The storage shell (1) is fixedly connected to a support frame (2) on the outer side of the bottom. The storage shell (1) is equipped with a door (3) on the front side. The storage shell (1) is equipped with evenly distributed limiting bodies (8). The control body (5) is equipped with a connecting body (6) on the top. The connecting body (6) passes through the through slot (4) opened in the storage shell (1). The connecting body (6) is equipped with a detection body (7) at one end. The connecting body (6) includes a connecting wire (601), a support rod (602), a fixing block (603), an elastic band (604), a threaded rod (605), a connecting block (606), and a first screw (607). One end of the connecting wire (601) is fixedly connected to the detection body (7). The inner and outer sides of the end of the connecting wire (601) that is fixedly connected to the detection body (7) are fixedly connected to the fixing block (603). The bottom of the fixing block (603) is fixedly connected to the detection body (7). A screw is provided on one side of the connecting wire (601). The support rod (602) has an elastic band (604) on the outside of the connecting wire (601). The bottom end of the support rod (602) is fixedly connected to a threaded rod (605). The top of the fixing block (603) is threadedly connected to a threaded rod (605). The top of the support rod (602) below is threadedly connected to a threaded rod (605). Both ends of the elastic band (604) are fixedly connected to connecting blocks (606). The upper and lower sides of the connecting block (606) are provided with first screws (607) that are threadedly connected to the support rod (602).

2. The real-time remote sensing instrument for water level in hydrogeological boreholes according to claim 0, characterized in that: One end of the connecting wire (601) passes through the through slot (4) opened in the storage shell (1) and is set inside the storage shell (1). The end of the connecting wire (601) away from the detection body (7) is fixedly connected to the control body (5).

3. The real-time remote sensing instrument for water level in hydrogeological boreholes according to claim 1, characterized in that: The connecting body (6) also includes a support plate (608), a first washer (609) and a bolt (610). The support rod (602) above is provided with a support plate (608) at the top, and the support plate (608) is provided with a first washer (609) at the top. Bolts (610) that are threadedly connected to the support rod (602) are provided through the support plate (608) and the first washer (609).

4. The real-time remote sensing instrument for water level in a hydrogeological borehole according to claim 1, characterized in that: The limiting body (8) includes a fixing rod (801), a vertical rod (803), a sliding plate (804), a second screw (805), and a second washer (806). One end of the fixing rod (801) is fixedly connected to the storage shell (1). A longitudinally arranged sliding groove (802) is opened in the fixing rod (801). The sliding plate (804) is arranged in the sliding groove (802) of the fixing rod (801). The top of the sliding plate (804) is fixedly connected to the vertical rod (803). The bottom of the sliding plate (804) is threadedly connected to the second screw (805). The second washer (806) is arranged on the outside of the second screw (805). The top of the second washer (806) is tightly fitted to the fixing rod (801).