A seismic exploration detector

CN224708232UActive Publication Date: 2026-09-01RES INST OF COAL GEOPHYSICAL EXPLORATION
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202520501226.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-21
Publication Date
2026-09-01
Estimated Expiration
2035-03-21

AI Technical Summary

Technical Problem

[0003]现有地震勘探检波器安装是直接将装置插入土壤的内部,然后开始记录数据,装置在未能插到一定深度会导致装置发生晃动,这会导致装置记录数据产生偏差,为此,我们提出一种地震勘探检波器

Benefits of technology

[0013] 1. Push the push rod downwards. The push rod pushes the drive plate and push plate to move downwards. The push plate pushes multiple drive rods to move downwards. The drive rods push the drive gear to roll on the upper part of the toothed plate. The drive gear pushes the cutting rod to move outwards and insert it into the soil. This completes the function of the cutting rod fixing device.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224708232U_ABST
    Figure CN224708232U_ABST
Patent Text Reader

Abstract

This utility model relates to the field of seismic exploration technology, specifically a seismic exploration detector, comprising a body, a push plate slidably connected inside the body, a push rod disposed on the upper part of the push plate, a fixing component for fixing the body inside the body, a probe slidably connected inside the lower part of the body, a mounting component for disassembling and installing the probe inside the lower part of the body, a driving component for driving the push rod to move inside the body, and a locking component for locking the push rod inside the body. In this seismic exploration detector, pushing the push rod downwards causes the push rod to push the drive plate and the push plate to move downwards, the push plate to push multiple drive rods downwards, the drive rods to push a drive gear to roll on the upper part of a toothed plate, and the drive gear to push a cutting rod to move outwards and insert it into the soil, thereby completing the function of a cutting rod fixing device.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of seismic exploration technology, specifically to a seismic exploration detector. Background Technology

[0002] Seismic detectors are specialized sensing devices used for geological exploration and engineering surveying. They are devices that convert ground vibrations into electrical signals and record them. The converted electrical signals can be transmitted to recording equipment such as seismographs via cables or other means. After a series of processing steps, the seismic signals collected by the detectors are analyzed to infer information such as the structure of underground strata, lithological changes, and geological structures.

[0003] Existing seismic exploration detectors are installed by directly inserting the device into the soil and then starting to record data. If the device is not inserted to a certain depth, it will shake, which will cause the recorded data to be inaccurate. To address this, we propose a seismic exploration detector. Utility Model Content

[0004] One of the technical problems this application aims to solve is that if the device is inserted to a certain depth without a fixing device, the device will shake, causing deviations in the recorded data.

[0005] To address the aforementioned technical problems, this application provides a seismic exploration detector, comprising a body, a push plate slidably connected inside the body, a push rod disposed on the upper part of the push plate, a fixing component for fixing the body inside the body, a probe slidably connected inside the lower part of the body, a mounting component for disassembling and installing the probe inside the lower part of the body, a driving component for driving the push rod to move inside the body, and a locking component for locking the push rod inside the body.

[0006] Preferably, the fixing member includes a plurality of evenly distributed drive rods rotatably connected to the lower part of the push plate, a drive gear being rotatably connected to the end of the drive rod away from the push plate, a plurality of evenly distributed toothed plates being provided inside the body, a plurality of evenly distributed insert rods being slidably connected inside the body, teeth being provided on the lower part of the insert rods, the toothed plates and the teeth respectively meshing with the drive gear, and a guide member for stabilizing the movement of the insert rods being provided inside the body.

[0007] Preferably, the guide includes a guide block disposed on the side of the insert rod away from the push plate, and the interior of the body has a plurality of evenly distributed guide grooves, the guide block sliding inside the guide grooves.

[0008] Preferably, the driving component includes a driving plate disposed in the middle of the push rod, a second spring disposed at the lower part of the driving plate, the second spring being sleeved on the outer periphery of the push rod, a driving groove being provided inside the body, the driving plate being slidably connected to the inside of the driving groove, and the lower end of the second spring being disposed inside the driving groove.

[0009] Preferably, the locking component includes a locking rod slidably connected to the upper part of the inside of the machine body, a locking plate is provided in the middle of the locking rod, a spring three is sleeved on the outer periphery of the middle of the locking rod, the left end of the spring three abuts against the inside of the machine body, the right end of the spring three is located on the left side of the locking plate, and two evenly distributed locking grooves are opened on the left side of the push rod, with the left end of the locking rod abutting against the inside of the locking groove.

[0010] Preferably, the mounting component includes a magnet slidably connected to the lower part of the body, mounting rods rotatably connected to both sides of the magnet 1, a mounting plate rotatably connected to the end of the mounting rod away from the magnet 1, a magnet 2 provided at the upper end of the probe, a mounting groove 2 opened at the upper end of the probe, the mounting plate abutting against the interior of the mounting groove 2, a mounting groove 1 opened at the lower part of the body, and the magnet 2 sliding inside the mounting groove 1.

[0011] Preferably, a slider is slidably connected inside the body, a locking block 1 is provided at the upper part of the slider, a locking block 2 is slidably connected inside the slider, a spring 1 is provided inside the body, and the left end of the spring 1 is located on the right side of the slider. The slider, the locking block 1 and the locking block 2 all slide inside the drive groove.

[0012] This utility model has at least the following beneficial effects:

[0013] 1. Push the push rod downwards. The push rod pushes the drive plate and push plate to move downwards. The push plate pushes multiple drive rods to move downwards. The drive rods push the drive gear to roll on the upper part of the toothed plate. The drive gear pushes the cutting rod to move outwards and insert it into the soil. This completes the function of the cutting rod fixing device.

[0014] 2. Insert magnet two into the interior of mounting slot one and push it upward. Magnet two pushes magnet one to move upward. Magnet one pulls the mounting rod to move. The mounting rod drives the mounting plate to move towards mounting slot two. Rotate the probe to insert the mounting plate into the protruding part of mounting slot two. Rotate the probe to make the mounting plate and mounting slot two misalign. Then pull the probe downward. This can realize the function of quick installation and removal of the probe. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0016] Figure 2 This is a schematic diagram of the body structure of this utility model;

[0017] Figure 3 This is a schematic diagram of the insertion rod structure of this utility model;

[0018] Figure 4 This is a schematic diagram of the locking rod structure of this utility model;

[0019] Figure 5 This is a schematic diagram of the second mounting slot structure of this utility model;

[0020] Figure 6 This is a schematic diagram of the structure of Embodiment 2 of this utility model.

[0021] In the diagram: 1. Body; 11. Probe; 12. Push rod; 13. Push plate; 14. Slider; 15. Locking block one; 16. Locking block two; 17. Spring one; 2. Fixing component; 21. Insertion rod; 22. Drive gear; 23. Drive rod; 24. Gear plate; 25. Gear; 3. Drive component; 31. Drive plate; 32. Spring two; 33. Drive groove; 4. Locking component; 41. Locking rod; 42. Locking plate; 43. Spring three; 44. Locking groove; 5. Guide component; 51. Guide block; 52. Guide groove; 6. Mounting component; 61. Magnet one; 62. Mounting rod; 63. Mounting plate; 64. Magnet two; 65. Mounting groove one; 66. Mounting groove two. Detailed Implementation

[0022] 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.

[0023] Example 1: Please refer to Figures 1-5 This utility model provides a technical solution: a seismic exploration detector, including a body 1, a push plate 13 slidably connected inside the body 1, a push rod 12 provided on the upper part of the push plate 13, a fixing member 2 for fixing the body 1 inside the body 1, a probe 11 slidably connected inside the lower part of the body 1, an installation member 6 for disassembling and installing the probe 11 inside the lower part of the body 1, a driving member 3 for driving the push rod 12 to move inside the body 1, and a locking member 4 for locking the push rod 12 inside the body 1;

[0024] The body 1 provides structural support for the device. The probe 11 can be inserted into the soil to collect data. The push rod 12 is used to push the push plate 13 to move. The push plate 13 can cooperate with the fixing part 2 to fix the position of the body 1.

[0025] Furthermore, the fixing member 2 includes a plurality of evenly distributed drive rods 23 rotatably connected to the lower part of the push plate 13. The end of the drive rod 23 away from the push plate 13 is rotatably connected to a drive gear 22. The interior of the body 1 is provided with a plurality of evenly distributed toothed plates 24. The interior of the body 1 is slidably connected with a plurality of evenly distributed insert rods 21. The lower part of the insert rod 21 is provided with teeth 25. The toothed plates 24 and the teeth 25 respectively mesh with the drive gear 22. The interior of the body 1 is provided with a guide member 5 for stabilizing the movement of the insert rod 21.

[0026] The toothed plate 24 and the teeth 25 provide structural support for the drive gear 22. The cutting rod 21 can slide outward and be inserted into the surrounding soil. The drive gear 22 is used to cooperate with the toothed plate 24 and the teeth 25 to push the cutting rod 21 to move. The drive rod 23 is used to push the drive gear 22 to move.

[0027] Furthermore, the guide 5 includes a guide block 51 disposed on the side of the insert rod 21 away from the push plate 13, and the body 1 has a plurality of evenly distributed guide grooves 52 inside, and the guide block 51 slides inside the guide grooves 52.

[0028] With the cooperation of guide block 51 and guide groove 52, the insertion rod 21 can slide smoothly inside the body 1.

[0029] Furthermore, the driving component 3 includes a driving plate 31 disposed in the middle of the push rod 12, a second spring 32 disposed at the lower part of the driving plate 31, the second spring 32 being sleeved on the outer periphery of the push rod 12, a driving groove 33 being opened inside the body 1, the driving plate 31 being slidably connected to the inside of the driving groove 33, and the lower end of the second spring 32 being disposed inside the driving groove 33.

[0030] The drive plate 31 is used to compress the second spring 32 to retract, and the drive groove 33 provides the movement space for the drive plate 31 and the second spring 32. The second spring 32 can rebound to push the drive plate 31 to move.

[0031] Furthermore, the locking component 4 includes a locking rod 41 that is slidably connected to the upper part of the inside of the body 1. A locking plate 42 is provided in the middle of the locking rod 41. A spring 43 is sleeved on the outer periphery of the middle of the locking rod 41. The left end of the spring 43 abuts against the inside of the body 1. The right end of the spring 43 is provided on the left side of the locking plate 42. Two evenly distributed locking grooves 44 are opened on the left side of the push rod 12. The left end of the locking rod 41 abuts against the inside of the locking grooves 44.

[0032] The locking lever 41 is used to lock the position of the push rod 12 by cooperating with the locking groove 44. The locking plate 42 is used to compress the spring 3 43 to retract. The spring 3 43 can rebound to push the locking plate 42 and the locking lever 41 to move back to their original positions.

[0033] Furthermore, the mounting component 6 includes a magnet 61 that is slidably connected to the lower part of the body 1. Mounting rods 62 are rotatably connected to both sides of the magnet 61. Mounting plate 63 is rotatably connected to the end of the mounting rod 62 away from the magnet 61. A magnet 64 is provided at the upper end of the probe 11. A mounting groove 66 is provided at the upper end of the probe 11. The mounting plate 63 abuts against the inside of the mounting groove 66. A mounting groove 65 is provided at the lower part of the body 1. The magnet 64 slides inside the mounting groove 65.

[0034] Magnet 61 and Magnet 64 have their two magnetic poles facing each other. Magnet 61 can pull the mounting rod 62 to move and rotate. The mounting rod 62 can pull the mounting plate 63 to slide closer to each other. Magnet 64 can push Magnet 61 to move upward. Mounting groove 65 provides sliding space for Magnet 64. Mounting groove 66 provides space for mounting plate 63 to abut and push mounting plate 63 to move.

[0035] After the machine body 1 is inserted into the soil, the push rod 12 is pushed downwards. The push rod 12 pushes the drive plate 31 and the push plate 13 to move downwards. The drive plate 31 compresses the spring 32, and the push plate 13 pushes multiple drive rods 23 downwards. The drive rods 23 push the drive gear 22 to roll on the upper part of the toothed plate 24. When the drive gear 22 rolls, it can push the insertion rod 21 to move outwards and insert it into the soil. After the push rod 12 moves downwards, it will push the locking rod 41 to move to the left. When the cutting rod 21 is fully inserted into the soil, the left end of the locking rod 41 aligns with the upper locking groove 44. At this point, the spring 43 rebounds, pushing the locking plate 42 and the locking rod 41 to slide to the right. The left end of the locking rod 41 is then engaged inside the locking groove 44, thus completing the function of fixing the cutting rod 21. Pushing the locking rod 41 to the left causes the left end of the locking rod 41 to disengage from the locking groove 44. Spring 32 rebounds and pushes drive plate 31 and push rod 12 upward. Push plate 13 pulls drive rod 23 back to its original position, and drive rod 23 pulls drive gear 22 back to its original position. This allows insertion rod 21 to retract into the body 1, and then the body 1 can be pulled outward. When installing probe 11, magnet 64 needs to be inserted into mounting slot 65 and pushed upward. Magnet 64 will push magnet 61 upward. Magnet 61 will pull mounting rod 62 to move. Mounting rod 62 will drive mounting plate 63 to move into mounting slot 66. Rotate probe 11 to insert mounting plate 63 into the protruding part of mounting slot 66, and then release. At this time, probe 11 can be quickly installed. Rotate probe 11 to make mounting plate 63 and mounting slot 66 misaligned. Then pull probe 11 downward. At this time, the force between magnet 61 and magnet 64 decreases. Magnet 61 can push mounting rod 62 and mounting plate 63 back to their original positions. This can realize the function of quick installation and removal of probe 11.

[0036] Example 2: Please refer to Figure 6 Based on Embodiment 1, this utility model provides another technical solution: a slider 14 is slidably connected inside the body 1, a locking block 15 is provided on the upper part of the inside of the slider 14, a locking block 16 is slidably connected inside the slider 14, a spring 17 is provided inside the body 1, and the left end of the spring 17 is provided on the right side of the slider 14. The slider 14, the locking block 15 and the locking block 16 all slide inside the drive groove 33.

[0037] Slider 14 can slide inside the body 1. Lock block 15 can move along with slider 14. Lock block 2 16 engages with lock block 15 to facilitate contact locking of drive plate 31. Spring 17 retracts when slider 14 moves and rebounds to push slider 14 back to its original position. When push plate 13 moves downwards, it pushes lock block 15 and slider 14 to slide to the right. Slider 14 compresses spring 17, causing it to retract. When drive plate 31 slides to the lower part of lock block 15, spring 17 rebounds, pushing slider 14 and lock block 15 back to their original positions. Lock block 15 will then lock onto the upper part of drive plate 31. When the drive plate 31 descends again, it can push the second locking block 16 and the slider 14 to slide to the right. When the right side of the drive plate 31 abuts against the lower part of the second locking block 16, the drive plate 31 will be pushed upward by the second spring 32. At this time, the second locking block 16 will be pushed by the drive plate 31 to move towards the first locking block 15. When the second locking block 16 and the first locking block 15 abut together, the drive plate 31 will push the first locking block 15 and the second locking block 16 to move to the right together. When the upper part of the drive plate 31 disengages from contact with the second locking block 16, the lock of the drive plate 31 can be released. This makes it convenient to lock and unlock the drive plate 31.

[0038] It should be noted that, in this document, relational terms such as "first" and "second" are used only 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. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0039] 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.

Claims

1. A seismic exploration detector, comprising a body (1), characterized in that: The body (1) is slidably connected to a push plate (13), and a push rod (12) is provided on the upper part of the push plate (13). The body (1) is provided with a fixing part (2) for fixing the body (1). The lower part of the body (1) is slidably connected to a probe (11). The lower part of the body (1) is provided with a mounting part (6) for disassembling and installing the probe (11). The body (1) is provided with a driving part (3) for driving the push rod (12) to move. The body (1) is provided with a locking part (4) for locking the push rod (12). The fixing member (2) includes a plurality of evenly distributed drive rods (23) rotatably connected to the lower part of the push plate (13). The end of the drive rod (23) away from the push plate (13) is rotatably connected to a drive gear (22). The interior of the body (1) is provided with a plurality of evenly distributed toothed plates (24). The interior of the body (1) is slidably connected with a plurality of evenly distributed insert rods (21). The lower part of the insert rod (21) is provided with teeth (25). The toothed plates (24) and the teeth (25) respectively mesh with the drive gear (22). The interior of the body (1) is provided with a guide member (5) for stabilizing the movement of the insert rod (21). The guide (5) includes a guide block (51) disposed on the side of the insert rod (21) away from the push plate (13). The body (1) has a plurality of evenly distributed guide grooves (52) inside, and the guide block (51) slides inside the guide grooves (52).

2. The seismic exploration detector according to claim 1, characterized in that: The driving component (3) includes a driving plate (31) disposed in the middle of the push rod (12), a second spring (32) disposed at the lower part of the driving plate (31), the second spring (32) being sleeved on the outer periphery of the push rod (12), a driving groove (33) being opened inside the body (1), the driving plate (31) being slidably connected to the inside of the driving groove (33), and the lower end of the second spring (32) being disposed inside the driving groove (33); The locking component (4) includes a locking rod (41) slidably connected to the upper part of the body (1). A locking plate (42) is provided in the middle of the locking rod (41). A spring three (43) is sleeved on the outer periphery of the middle part of the locking rod (41). The left end of the spring three (43) abuts against the inside of the body (1). The right end of the spring three (43) is located on the left side of the locking plate (42). Two evenly distributed locking grooves (44) are opened on the left side of the push rod (12). The left end of the locking rod (41) abuts against the inside of the locking groove (44).

3. The seismic exploration detector according to claim 1, characterized in that: The mounting component (6) includes a magnet (61) slidably connected to the lower part of the body (1). Mounting rods (62) are rotatably connected to both sides of the magnet (61). A mounting plate (63) is rotatably connected to the end of the mounting rod (62) away from the magnet (61). A magnet (64) is provided at the upper end of the probe (11). A mounting groove (66) is opened at the upper end of the probe (11). The mounting plate (63) abuts against the interior of the mounting groove (66). A mounting groove (65) is opened at the lower part of the body (1). The magnet (64) slides inside the mounting groove (65).

4. The seismic exploration detector according to claim 2, characterized in that: The body (1) is internally connected to a slider (14), and the upper part of the slider (14) is provided with a locking block (15). The slider (14) is internally connected to a locking block (16). The body (1) is internally provided with a spring (17), and the left end of the spring (17) is located on the right side of the slider (14). The slider (14), the locking block (15) and the locking block (16) all slide inside the drive groove (33).