Middle-deep geothermal heating device and using method thereof
By designing blocking components and monitoring mechanisms in the medium-deep geothermal heat extraction device, the problems of heat insulation and leakage at the connection point are solved, ensuring the safety of the display and timely detection of leaks, thus improving the device's performance.
Patent Information
- Application Number
- CN202410480708.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-04-22
- Publication Date
- 2025-10-24
AI Technical Summary
Existing medium-deep geothermal heat extraction devices lack effective insulation at the connection points, and leaks cannot be detected in a timely manner.
A device including a heat extraction box, a control box, a display, a connector and a monitoring mechanism is designed. Leakage is prevented by insulating the components and using the monitoring mechanism to monitor the connections in real time.
It achieves effective heat insulation protection for the display and can promptly detect leaks at the connection points, improving the safety and reliability of the device.
Smart Images

Figure CN120830944A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of mid-deep geothermal heat extraction, and in particular relates to a mid-deep geothermal heat extraction device and a method of using the same. Background Art
[0002] Deep geothermal energy is renewable heat from deep within the Earth, arising from the decay of molten magma and radioactive materials.
[0003] In order to meet market demand, heating devices are generally optimized in terms of how to better obtain heat and how to make it more convenient for users to use them, but whether the leakage at the connection can be well monitored is often ignored. The heating device has the advantages of better heat extraction effect and more convenient use for users, but there are certain limitations. During normal use, high temperature will be generated at the connection. If heat insulation is not performed, it is easy to cause damage to the display screen. At the same time, when leakage occurs at the connection, it cannot be quickly discovered.
[0004] The existing technology has the following problems: it cannot provide good heat insulation and cannot detect leakage in time when it occurs. Summary of the Invention
[0005] In response to the problems existing in the prior art, the present invention provides a mid-deep geothermal heat extraction device and a method of using the same.
[0006] The present invention is implemented as follows: a mid-deep geothermal heat extraction device includes a heat extraction device for extracting heat and a connector for connecting pipes, the heat extraction device includes a heat extraction box, a control box and a collection box are fixedly installed on the right side of the heat extraction box, the collection box is located at the bottom of the control box, a display is embedded in the front side of the heat extraction box, the rear side of the connector is fixedly connected to the front side of the heat extraction box, the connector is located directly below the display, and a blocking component is provided on the front side of the control box; The blocking assembly includes a T-shaped slot, which is opened on the front side of the heat extraction box, a T-shaped block is slidably connected inside the T-shaped slot, a square plate is fixedly installed on the front side of the T-shaped block, a storage mechanism is provided inside the square plate, and a monitoring mechanism is fixedly installed on the bottom of the square plate; The storage mechanism includes a storage slot, the storage slot is opened on the front side of the square plate, a storage box is slidably connected to the interior of the storage slot, a lifting groove is opened on the front side of the storage box, a partition plate is fixedly installed inside the storage box, a first magnet is embedded on the rear side of the inner wall of the storage slot, a second magnet is embedded on the rear side of the storage box, and the rear side of the second magnet is magnetically connected to the front side of the first magnet; The monitoring mechanism includes a processor and a signal receiver. The top of the processor is fixedly connected to the bottom of the square plate. The front side of the processor is used in conjunction with a signal transmitter. The bottom of the processor is used in conjunction with a connecting wire. The end of the connecting wire away from the processor is used in conjunction with a U-shaped sensor. The signal receiver is arranged inside the display and is used in conjunction with the signal transmitter.
[0007] As a preferred embodiment of the present invention, a cavity is provided inside the T-shaped block, and two square blocks are slidably connected inside the cavity. A toggle handle is fixedly installed on the left side of the two square blocks, and the ends of the two toggle handles away from the square blocks pass through the cavity and extend to the left side of the T-shaped block. An extrusion spring is fixedly installed between the two square blocks, and square positioning blocks are fixedly installed on the opposite ends of the two square blocks, and the ends of the two square positioning blocks away from the square blocks pass through the cavity and extend to the top and bottom of the T-shaped block. Positioning grooves are provided on the top and bottom of the inner wall of the T-slot, and the ends of the two square positioning blocks away from the square block cooperate with the inside of the positioning groove.
[0008] As a preferred embodiment of the present invention, a limiting groove is provided at the bottom of the inner wall of the storage groove, a limiting block is fixedly installed at the bottom of the storage box, and the end of the limiting block away from the storage box is slidably connected to the inside of the limiting groove.
[0009] As a preferred embodiment of the present invention, connecting rods are fixedly installed on both the left and right sides of the top of the U-shaped sensor, and one end of the connecting rod away from the U-shaped sensor is detachably connected to the bottom of the square plate.
[0010] As a preferred embodiment of the present invention, U-shaped hanging blocks are fixedly installed on the left and right sides of the bottom of the square plate, and a matching block is fixedly installed on the top of the connecting rod, and the outer surface of the matching block is used in conjunction with the inner part of the U-shaped hanging block.
[0011] As a preferred embodiment of the present invention, support oblique blocks are fixedly installed on the left and right sides of the bottom of the square plate, and the ends of the two support oblique blocks away from the square plate are in contact with the front side of the heat extraction box.
[0012] As a preferred embodiment of the present invention, a circular groove is opened on the top of the square plate, and the circular grooves are multiple and evenly distributed.
[0013] As a preferred embodiment of the present invention, a method for using a medium-deep geothermal heat extraction device is provided, wherein the medium-deep geothermal heat extraction device is a medium-deep geothermal heat extraction device according to any one of claims 1 to 7, and the method for using the device comprises the following steps: S1: First connect the connector to the geothermal output pipe; S2: After the connection is completed, use a square plate to separate the pipe and the display to prevent heat damage to the display; S3: After protection, the connection of the pipeline is monitored by the monitoring mechanism to prevent leakage; S4: When connecting, tools are needed, and the storage box is used to store the tools.
[0014] 1、The application realizes the collection of geothermal energy by setting a heat extraction box, controls the heat extraction box by using a control box, blocks the heat after the pipeline connection is completed by using a blocking component, thereby protecting the display, and monitors the connection of the pipeline by using the monitoring mechanism arranged below the display while protecting, to prevent leakage.
[0015] 2、The application drives the square block to move inside the cavity by manually actuating the actuating handle, and gives the compression spring a deforming force, so that the square positioning block can be pulled into the cavity, when pulled into the cavity, the T-shaped block is inserted into the T-shaped slot by human force, after insertion is completed, the hand releases the actuating handle, because the force is mutual, the compression spring also gives the square positioning block a same counterforce, so that the square positioning block and the positioning slot can be used in cooperation, thereby positioning the T-shaped block in the T-shaped slot, the installation effect of the square plate is better, and the heat insulation effect is also better.
[0016] 3、The application sets the limiting groove, and the limiting block is slidably connected inside the limiting groove, so that the position of the storage box can be well limited, and the movement track of the storage box is more stable.
[0017] 4、The application sets the connecting rod, so that the positioning of the U-shaped inductor can be realized, so that the U-shaped inductor can be prevented from moving and being damaged when being touched by external force.
[0018] 5、The application sets the U-shaped hanging block, and the matching block is used in cooperation inside the U-shaped hanging block, so that the positioning of the connecting rod can be realized, so that the positioning effect is better, and when the U-shaped inductor is damaged, the U-shaped inductor can be quickly removed, so that the replacement effect is better.
[0019] 6、The application sets the supporting inclined block, so that the square plate can be supported, and the working effect of the square plate is better.
[0020] 7、The application sets the circular grooves, the number of which is multiple, and the circular grooves are uniformly distributed, so that the storage effect is better, when the worker needs to store the water cup, the water cup only needs to be placed in the circular grooves. BRIEF DESCRIPTION OF DRAWINGS
[0021] Figure 1 It is a structural schematic diagram provided by the embodiment of the application. Figure 2 This is a schematic diagram of the rear structure of the heat extraction box provided in an embodiment of the present invention; Figure 3 This is a schematic diagram of the rear structure of the heat extraction box with the T-block removed provided by an embodiment of the present invention; Figure 4 This is a schematic diagram of the T-block structure provided by an embodiment of the present invention; Figure 5 is a schematic diagram of the internal structure of the cavity provided by an embodiment of the present invention; Figure 6 This is a schematic diagram of the square plate structure provided by an embodiment of the present invention; Figure 7 This is a schematic diagram of the open structure of the storage box provided by an embodiment of the present invention; Figure 8 The embodiment of the present invention provides Figure 2 Enlarged view of point A in the middle; Figure 9 The embodiment of the present invention provides Figure 3 Enlarged view of point B in the middle.
[0022] In the figure: 1. Heat extraction box; 2. Control box; 3. Collection box; 4. Display; 5. T-slot; 6. T-block; 7. Square plate; 8. Storage slot; 9. Storage box; 10. Pulling slot; 11. Partition plate; 12. First magnet; 13. Second magnet; 14. Processor; 15. Signal transmitter; 16. Connecting wire; 17. U-shaped sensor; 18. Signal receiver; 19. Limiting slot; 20. Limiting block; 21. Cavity; 22. Square block; 23. Toggle handle; 24. Extrusion spring; 25. Square positioning block; 26. Positioning slot; 27. Connecting rod; 28. U-shaped hanging block; 29. Matching block; 30. Support oblique block; 31. Circular groove. DETAILED DESCRIPTION
[0023] In order to further understand the content, features and effects of the present invention, the following embodiments are given as examples and described in detail with reference to the accompanying drawings.
[0024] The structure of the present invention is described in detail below with reference to the accompanying drawings.
[0025] like Figures 1 to 9 As shown, an embodiment of the present invention provides a mid-deep geothermal heat extraction device, comprising a heat extraction device for extracting heat and a connector for connecting a pipeline. The heat extraction device comprises a heat extraction box 1, a control box 2 and a collection box 3 are fixedly installed on the right side of the heat extraction box 1, the collection box 3 is located at the bottom of the control box 2, a display 4 is embedded on the front side of the heat extraction box 1, the rear side of the connector is fixedly connected to the front side of the heat extraction box 1, the connector is located directly below the display 4, and a blocking component is provided on the front side of the control box 2. The blocking assembly comprises a T-shaped groove 5 opened on the front side of the heat extraction box 1, a T-shaped block 6 slidably connected in the T-shaped groove 5, a square plate 7 fixedly installed on the front side of the T-shaped block 6, a storage mechanism arranged in the square plate 7, and a monitoring mechanism fixedly installed on the bottom of the square plate 7; The storage mechanism comprises a storage groove 8 opened on the front side of the square plate 7, a storage box 9 slidably connected in the storage groove 8, a pull groove 10 opened on the front side of the storage box 9, a partition plate 11 fixedly installed in the storage box 9, a first magnet 12 embedded on the rear side of the inner wall of the storage groove 8, and a second magnet 13 embedded on the rear side of the storage box 9 and magnetically connected with the front side of the first magnet 12. The monitoring mechanism comprises a processor 14, a signal transmitter 15 used in cooperation with the front side of the processor 14, a connecting wire 16 used in cooperation with the bottom of the processor 14, a U-shaped inductor 17 used in cooperation with the end of the connecting wire 16 away from the processor 14, and a signal receiver 18 arranged in the display 4 and used in cooperation with the signal transmitter 15.
[0026] Reference Figure 5 The T-shaped block 6 is internally provided with a cavity 21, two square blocks 22 are slidably connected in the cavity 21, a turning handle 23 is fixedly installed on the left side of each of the square blocks 22, the end of each of the turning handles 23 away from the square block 22 penetrates through the cavity 21 and extends to the left side of the T-shaped block 6, an extrusion spring 24 is fixedly installed between the two square blocks 22, a square positioning block 25 is fixedly installed on the end of each of the square blocks 22 away from each other, the end of each of the square positioning blocks 25 away from the square block 22 penetrates through the cavity 21 and extends to the top and the bottom of the T-shaped block 6, a positioning groove 26 is formed in the top and the bottom of the inner wall of the T-shaped groove 5, and the end of each of the square positioning blocks 25 away from the square block 22 is used in cooperation with the inside of the positioning groove 26.
[0027] By turning the turning handle 23 by hand to drive the square block 22 to move in the cavity 21 and give the extrusion spring 24 a deforming force, the square positioning block 25 can be pulled into the cavity 21, when the square positioning block 25 is pulled into the cavity 21, the T-shaped block 6 is inserted into the T-shaped groove 5 by hand, after the insertion is completed, the turning handle 23 is released, since the forces are mutual, the extrusion spring 24 also gives the square positioning block 25 an equal and opposite force, so that the square positioning block 25 is used in cooperation with the positioning groove 26, thereby positioning the T-shaped block 6 in the T-shaped groove 5, the installation effect of the square plate 7 is better, and the heat insulation effect is also better.
[0028] Reference Figure 7The bottom of the inner wall of the storage tank 8 is provided with a limiting groove 19, and the bottom of the storage box 9 is fixedly provided with a limiting block 20, and the end of the limiting block 20 away from the storage box 9 is slidably connected with the inside of the limiting groove 19.
[0029] By setting the limiting groove 19 and the limiting block 20 slidably connected inside, the position of the storage box 9 can be well limited, and the movement track of the storage box 9 is more stable.
[0030] Reference Figure 6 The top of the U-shaped inductor 17 is fixedly provided with a connecting rod 27 on the left and right sides, and the end of the connecting rod 27 away from the U-shaped inductor 17 is detachably connected with the bottom of the square plate 7.
[0031] By setting the connecting rod 27, the U-shaped inductor 17 can be positioned, which can prevent the U-shaped inductor 17 from moving and being damaged when being touched by external force.
[0032] Reference Figure 6 The bottom of the square plate 7 is fixedly provided with a U-shaped hanging block 28 on the left and right sides, and the top of the connecting rod 27 is fixedly provided with a matching block 29, and the outer surface of the matching block 29 is matched with the inside of the U-shaped hanging block 28.
[0033] By setting the U-shaped hanging block 28 and the matching block 29 matched inside, the connecting rod 27 can be positioned, so that the positioning effect is better, and the U-shaped inductor 17 can be quickly removed when it is damaged, so that the replacement effect is better.
[0034] Reference Figure 1 The bottom of the square plate 7 is fixedly provided with a support inclined block 30 on the left and right sides, and the end of the two support inclined blocks 30 away from the square plate 7 is attached to the front side of the heat taking box 1.
[0035] By setting the support inclined block 30, the square plate 7 can be supported, so that the working effect of the square plate 7 is better.
[0036] Reference Figure 1 , Figure 2 and Figure 3 The top of the square plate 7 is provided with a circular groove 31, and the number of the circular grooves 31 is multiple and uniformly distributed.
[0037] By setting the circular grooves 31, the number of which is multiple and uniformly distributed, the storage effect is better, and when the worker needs to store the water cup, the water cup can be placed in the circular groove 31.
[0038] The application discloses a method for using a medium-deep geothermal heat extraction device, and relates to the technical field of geothermal heat extraction devices. S1: first, connect the connector with the geothermal output pipeline; S2: after the connection is completed, use the square plate 7 to separate the pipeline from the display 4 to prevent heat from damaging the display 4; S3: after the protection, use the monitoring mechanism to monitor the connection of the pipeline to prevent leakage; S4: during the connection, tools are needed, and the storage box 9 is used to store the tools.
[0039] In use, first, the square block 22 is moved in the cavity 21 by manually pushing the push handle 23, and a deformation force is given to the compression spring 24, so that the square positioning block 25 is pulled into the cavity 21; when the square positioning block 25 is pulled into the cavity 21, the T-shaped block 6 is inserted into the T-shaped groove 5, after the insertion is completed, the hand releases the push handle 23, because the forces are mutual, the compression spring 24 also gives the square positioning block 25 a same counterforce, so that the square positioning block 25 is used in cooperation with the positioning groove 26, thereby positioning the T-shaped block 6 in the T-shaped groove 5, the installation effect of the square plate 7 is better, and the heat insulation effect is also better; second, the U-shaped inductor 17 is placed at the connection position of the connector and the pipeline to perform induction, after the induction, the information sensed is transmitted into the processor 14 through the connecting wire 16 to be processed, after the processing, the signal transmitter 15 sends out the information, after the sending out, the signal receiver 18 receives the signal and processes the signal, and then the display 4 displays the information, so that leakage can be found in time; finally, the storage box 9 is moved by manually pulling the pull slot 10, so that the storage box 9 is pulled out of the storage slot 8, thereby achieving storage of the tools, and the classification storage of the tools is realized by using the internal partition plate 11, so that the storage effect is better.
[0040] It should be noted that, in the present document, the terms such as first and second, etc. are merely used to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. In addition, the terms "include", "contain" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device 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 device.
[0041] While embodiments of the application have been shown and described, it is to be understood that the embodiments described are merely exemplary of the principles and application of the present application. Numerous modifications and adaptions can be effected without departing from the spirit and scope of the present application, which is not limited to the exact construction and arrangement described. It is intended, therefore, to cover all modifications and adaptions that fall within the scope of the claims and their equivalents.
Claims
1. A medium-deep geothermal heat extraction device comprising a heat extraction device for extracting heat and a connection head for pipe connection, characterized in that: The heat extraction device includes a heat extraction box (1), a control box (2) and a collection box (3) are fixedly installed on the right side of the heat extraction box (1), the collection box (3) is located at the bottom of the control box (2), a display (4) is embedded on the front side of the heat extraction box (1), the rear side of the connecting head is fixedly connected with the front side of the heat extraction box (1), the connecting head is located directly below the display (4), and the front side of the control box (2) is provided with a blocking assembly; The blocking assembly includes a T-shaped groove (5) which is opened on the front side of the heat extraction box (1), a T-shaped block (6) which is slidably connected in the T-shaped groove (5), a square plate (7) which is fixedly installed on the front side of the T-shaped block (6), a storage mechanism which is arranged in the square plate (7), and a monitoring mechanism which is fixedly installed at the bottom of the square plate (7). The storage mechanism includes a storage groove (8) which is opened on the front side of the square plate (7), a storage box (9) which is slidably connected in the storage groove (8), a pull groove (10) which is opened on the front side of the storage box (9), a partition plate (11) which is fixedly installed in the storage box (9), a first magnet (12) which is embedded on the rear side of the inner wall of the storage groove (8), and a second magnet (13) which is embedded on the rear side of the storage box (9) and magnetically connected with the front side of the first magnet (12). The monitoring mechanism includes a processor (14) and a signal receiver (18), the top of the processor (14) is fixedly connected with the bottom of the square plate (7), the front side of the processor (14) is used in cooperation with a signal transmitter (15), the bottom of the processor (14) is used in cooperation with a connecting wire (16), the end of the connecting wire (16) away from the processor (14) is used in cooperation with a U-shaped inductor (17), the signal receiver (18) is arranged in the display (4), and the signal receiver (18) is used in cooperation with the signal transmitter (15).
2. A medium-deep geothermal heat extraction apparatus as claimed in claim 1, characterized in that: A cavity (21) is opened in the T-shaped block (6), two square blocks (22) are slidably connected in the cavity (21), a turning handle (23) is fixedly installed on the left side of each of the two square blocks (22), one end of each of the two turning handles (23) away from the square block (22) penetrates through the cavity (21) and extends to the left side of the T-shaped block (6), an extrusion spring (24) is fixedly installed between the two square blocks (22), a square positioning block (25) is fixedly installed on the end of each of the two square blocks (22) away from each other, one end of each of the two square positioning blocks (25) away from the square block (22) penetrates through the cavity (21) and extends to the top and the bottom of the T-shaped block (6), and positioning grooves (26) are opened in the top and the bottom of the inner wall of the T-shaped groove (5).
3. A medium-deep geothermal heat extraction apparatus as claimed in claim 1, characterized in that: The bottom of the inner wall of the storage tank (8) is provided with a limiting groove (19), the bottom of the storage box (9) is fixedly provided with a limiting block (20), and the end, away from the storage box (9), of the limiting block (20) is slidably connected with the inside of the limiting groove (19).
4. A medium-deep geothermal heat extraction apparatus as claimed in claim 1, characterized in that: The top of the U-shaped inductor (17) is fixedly provided with a connecting rod (27) on the left and right sides, and the end, away from the U-shaped inductor (17), of the connecting rod (27) is detachably connected with the bottom of the square plate (7).
5. A medium-deep geothermal heat extraction apparatus as claimed in claim 1, characterized in that: The bottom of the square plate (7) is fixedly provided with a U-shaped hanging block (28) on the left and right sides, the top of the connecting rod (27) is fixedly provided with a matching block (29), and the outer surface of the matching block (29) is matched with the inside of the U-shaped hanging block (28).
6. A medium-deep geothermal heat extraction apparatus as claimed in claim 1, characterized in that: The bottom of the square plate (7) is fixedly provided with a supporting inclined block (30) on the left and right sides, and the end, away from the square plate (7), of the two supporting inclined blocks (30) is attached to the front side of the heat extraction box (1).
7. A medium-deep geothermal heat extraction apparatus as claimed in claim 1, characterized in that: The top of the square plate (7) is provided with a plurality of circular grooves (31) which are uniformly distributed.
8. A method of using a medium-depth geothermal heat extraction device, characterized by: The kind of medium deep geothermal heat extraction device is the kind of medium deep geothermal heat extraction device in any one of claims 1-7, and the use method comprises the following steps: S1: first, connect the connector with the geothermal output pipeline; S2: after the connection is completed, the square plate (7) is used to separate the pipeline from the display (4) to prevent the damage of heat to the display (4); S3: after the protection, the monitoring mechanism is used to monitor the connection of the pipeline to prevent leakage; S4: when connecting, tools are needed, and the storage box (9) is used to store the tools.