A sampling device for building surveying and mapping quality inspection
The sampling device for construction surveying and mapping quality inspection, which integrates the clutch component and the puller component, solves the fatigue problem caused by the independent operation of the puller, realizes automated sampling and efficient soil sampling, and maintains the integrity of the soil sample.
Patent Information
- Application Number
- CN202411744451.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-30
- Publication Date
- 2025-10-21
- Estimated Expiration
- 2044-11-30
AI Technical Summary
In the existing building surveying and sampling device, the puller is independent of the impact host, is large in size and needs to be manually operated, which causes fatigue to the user and has poor applicability.
A sampling device for architectural surveying and quality inspection is designed. The clutch assembly and the extraction assembly are integrated into the body. Automatic extraction is achieved through structures such as a key sleeve, a ratchet plate, and a shift fork. Combined with the impact assembly, continuous impact force is provided, reducing the number of accessories and manual operation.
It realizes automated sampling, reduces manual operation fatigue, improves soil sampling efficiency and soil sample integrity, and enhances the applicability and portability of the device.
Smart Images

Figure CN119860940B_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of building geological surveying and mapping equipment, and in particular relates to a sampling device for building surveying and mapping quality inspection. Background Art
[0002] Before the construction of a building project, it is necessary to sample and analyze the geology to be constructed in order to judge the geological conditions in advance, so as to facilitate the selection of appropriate construction equipment and the most appropriate construction technology during the construction process.
[0003] The commonly used soil sampling methods in the prior art are impact soil sampling and rotary soil sampling. Among them, rotary soil sampling generally requires water and causes the soil to be disturbed, which is not effective for strict soil testing. Impact sampling does not use water, is disturbance-free, maintains the integrity of the soil sample, and has a more standardized soil testing effect. Therefore, general testing companies or units basically use impact soil sampling. The portable soil drilling rig widely used in the prior art is usually composed of a drill rod, a split sampling tube, an impact host, a puller and other accessories. The impact host drives the drill rod and the sampling tube into the predetermined depth underground, and the puller pulls out the sampling tube to complete the soil sampling.
[0004] However, the extractor in the above-mentioned prior art needs to be used independently of the impact host. The extractor is usually large in size and weight, and requires manual operation, which can easily cause fatigue to the user, and is not very applicable. Summary of the Invention
[0005] The object of the present invention is to provide a sampling device for building surveying and quality inspection to solve the problems raised in the above background technology.
[0006] To achieve the above object, the present invention provides the following technical solutions:
[0007] A sampling device for building surveying and mapping quality inspection includes a body and a clutch assembly, a prime mover is fixed to the middle end of the top of the body, and the clutch assembly is arranged at the middle end inside the body. The clutch assembly includes a key sleeve, and clutch ratchet discs are coaxially fixed at the upper and lower ends of the key sleeve, and a key shaft is slidably inserted inside the key sleeve, and the key shaft is fixed to the output end of the prime mover. A shift fork is clamped on the side of the key sleeve, and the opposite surface of the end of the shift fork is rollingly engaged with the middle area of the key sleeve through a roller. The shift fork is externally connected to a shift rod, and the shift rod extends to the outside of the body through a side groove, and the shift rod is rotationally engaged with the side groove of the body through a damping shaft.
[0008] Furthermore, a pulling assembly is provided at the upper end of the interior of the body, and the pulling assembly includes a cone disk and an upper ratchet disk. The cone disk is rotatably installed at the top end of the interior of the body, and the upper ratchet disk is coaxially fixed to the bottom of the cone disk, and the upper ratchet disk is engaged with the clutch ratchet disk at the upper end of the key sleeve for transmission. A through hole is opened in the middle of the upper ratchet disk, and the inner diameter of the through hole in the middle of the upper ratchet disk is larger than the outer diameter of the key shaft.
[0009] Furthermore, the pulling assembly also includes an umbrella wheel, a bearing seat, a shell and a pulling sleeve. The side of the cone disk is engaged with the umbrella wheel, and the umbrella wheel is rotatably installed inside the bearing seat on the side wall of one side of the machine body. The bearing seat is connected to the shell, and the pulling sleeve is connected to the side of the rear end of the shell.
[0010] Furthermore, the lifting assembly also includes a transmission rod, a ratchet and a pawl. The umbrella wheel is coaxially connected to the transmission rod, and a ratchet is coaxially fixed to the middle of the transmission rod. The ratchet teeth on the outer edge of the ratchet cooperate with the pawl, and the pawl is rotatably installed on the outside of the shell through a spring.
[0011] Furthermore, the pulling assembly also includes a gear, the gear is coaxially fixed to the end of the transmission rod, and the gear teeth on the outer edge of the gear extend to the inner cavity through the side wall of the pulling sleeve.
[0012] Furthermore, the body is fixed with two handles, and the bottom side of the body is fixed with a connecting sleeve.
[0013] Furthermore, an impact assembly is provided at the lower end of the body, and the impact assembly includes a cam and a lower ratchet plate. The cam is rotatably installed at the bottom end of the body, and the lower ratchet plate is coaxially fixed to the top of the cam, and the lower ratchet plate is engaged with the clutch ratchet plate at the lower end of the key sleeve for transmission.
[0014] Furthermore, the impact assembly also includes a wobble plate and a connecting pin. The wobble plate is clamped in the middle groove of the cam, and the connecting pin is fixed to the outer edge of the wobble plate's annular structure.
[0015] Furthermore, the impact assembly also includes an impact rod and a guide rod. The connecting pin is clamped in the middle of the impact rod, and the impact rod is located inside the connecting sleeve and reciprocates axially. The tail of the impact rod is slidingly fitted with a guide rod, and the guide rod is fixedly installed on the inner wall of the other side of the body.
[0016] Furthermore, the body is externally connected to a sampling assembly, which includes a split sampling tube, a threaded connector and a connecting gear rod. The upper and lower ends of the split sampling tube are threadedly fastened with threaded connectors, and the threaded connector at the upper end is externally connected to a connecting gear rod. The side wall teeth of the connecting gear rod are engaged with the gear for transmission, and the tail of the connecting gear rod is in abutment with the impact rod.
[0017] The sampling device for building surveying and quality inspection of the present invention has the following beneficial effects:
[0018] 1. During the sampling stage, the present invention uses a coaxial ratchet in the middle of the transmission rod to cooperate with a pawl provided on the outer edge of the ratchet, which can effectively prevent the connecting gear rod from sliding and loosening due to gear reversal, thereby ensuring the continuity of the connecting gear rod extraction process. The present application integrates the manual extractor required to be used independently in the prior art into the machine body. This not only eliminates the need for the user to manually operate the extractor to complete the extraction and sampling of the split sampling tube, but also simplifies the number of accessories of the sampler of the present application for easy portability, reduces the operator's fatigue in manual operation, and effectively improves the work efficiency of soil sampling operations.
[0019] 2. During the sampling stage of the present invention, the impact assembly converts the rotational power output by the prime mover into a high-speed reciprocating impact force of the impact rod, providing continuous impact force for the sampling operation of the split sampling tube. No water is required throughout the process, and the disturbance to the soil can be minimized, effectively maintaining the integrity of the soil sample. In addition, the power supply between the prime mover to the pulling assembly and the impact assembly can be switched through the clutch assembly, so that the present application only requires the setting of one prime mover to meet the functional requirements of the user's impact operation in the sampling stage and the lifting operation in the sampling stage, making the functionality of the present application highly concentrated and improving applicability. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 This is a schematic diagram of the overall left-side structure of the device of the present invention;
[0021] Figure 2 This is a schematic diagram of the overall right side structure of the device of the present invention;
[0022] Figure 3 This is a schematic structural diagram of the sampling assembly of the present invention;
[0023] Figure 4 It is a schematic diagram of the overall cross-sectional structure of the device of the present invention;
[0024] Figure 5 This is a schematic structural diagram of the clutch assembly of the present invention;
[0025] Figure 6 This is a schematic diagram of the external structure of the extraction assembly of the present invention;
[0026] Figure 7 This is a schematic cross-sectional view of the lifting assembly of the present invention;
[0027] Figure 8 It is a schematic cross-sectional view of the impact assembly of the present invention.
[0028] In the figure: 1. body; 2. handle; 3. connecting sleeve; 4. prime mover; 5. clutch assembly; 501. key sleeve; 502. clutch ratchet; 503. key shaft; 504. shift fork; 505. roller; 506. shift lever; 507. damping shaft; 6. extraction assembly; 601. cone disk; 602. upper ratchet; 603. umbrella wheel; 604. bearing seat; 605. housing; 606. extraction sleeve; 607. transmission rod; 608. ratchet; 609. pawl; 610. gear; 7. impact assembly; 701. cam; 702. lower ratchet; 703. pendulum plate; 704. connecting pin; 705. impact rod; 706. guide rod; 8. sampling assembly; 801. split sampling tube; 802. threaded connector; 803. connecting gear rod. DETAILED DESCRIPTION
[0029] The following examples are used to illustrate the present invention, but are not intended to limit the scope of the present invention.
[0030] like Figures 1 to 8 As shown, the sampling device for building surveying and quality inspection provided by the present invention includes a body 1 and a clutch assembly 5. A prime mover 4 is fixed to the middle end of the top of the body 1, and the clutch assembly 5 is arranged in the middle end inside the body 1.
[0031] Specifically, the clutch assembly 5 includes a key sleeve 501, a clutch ratchet 502, a key shaft 503, a shift fork 504, a roller 505, a shift rod 506 and a damping shaft 507. The clutch ratchet 502 is coaxially fixed at the upper and lower ends of the key sleeve 501, and the key shaft 503 is slidably inserted inside the key sleeve 501, and the key shaft 503 is fixed to the output end of the prime mover 4. The shift fork 504 is clamped on the side of the key sleeve 501, and the opposite surface of the end of the shift fork 504 is rollingly engaged with the middle area of the key sleeve 501 through the roller 505. The shift fork 504 is externally connected to the shift rod 506, and the shift rod 506 extends to the outside of the body 1 through the side groove, and the shift rod 506 is rotationally engaged with the side groove of the body 1 through the damping shaft 507.
[0032] The clutch assembly 5 can switch the power supply between the prime mover 4 and the pulling assembly 6 and the impact assembly 7, so that the present application only needs to set up one prime mover 4 to meet the functional requirements of the user's impact operation in the sampling stage and the lifting operation in the sampling stage, making the functionality of the present application highly concentrated and improving applicability.
[0033] In some embodiments, a lifting assembly 6 is provided at the upper end of the interior of the body 1 .
[0034] Specifically, the extraction assembly 6 includes a cone disc 601 and an upper ratchet disc 602. The cone disc 601 is rotatably mounted on the top of the inner portion of the machine body 1, and the upper ratchet disc 602 is coaxially fixed to the bottom of the cone disc 601. The upper ratchet disc 602 engages with the clutch ratchet disc 502 at the upper end of the key sleeve 501 for transmission. A through hole is opened in the middle of the upper ratchet disc 602, which penetrates the cone disc 601, and the inner diameter of the through hole in the middle of the upper ratchet disc 602 is larger than the outer diameter of the key shaft 503.
[0035] At the same time, the side of the cone disk 601 is meshed with an umbrella wheel 603, and the umbrella wheel 603 is rotatably installed inside the bearing seat 604 on the side wall of one side of the body 1. The bearing seat 604 is connected to the outside of the shell 605, and the rear end side of the shell 605 is connected to the pulling sleeve 606. The umbrella wheel 603 is coaxially connected to the transmission rod 607, and a ratchet 608 is coaxially fixed to the middle part of the transmission rod 607. The ratchet teeth on the outer edge of the ratchet 608 cooperate with the pawl 609, and the pawl 609 is rotatably installed on the outside of the shell 605 through a spring. A gear 610 is coaxially fixed to the end of the transmission rod 607, and the outer edge teeth of the gear 610 extend to the inner cavity through the side wall of the pulling sleeve 606.
[0036] Through the above arrangement, during the sampling stage of the present invention, the shift fork 504 is driven upward by the shift rod 506. At this time, the power transmitted by the prime mover 4 through the key shaft 503 is rotated and transmitted to the cone disk 601 through the engagement of the clutch ratchet 502 at the upper end of the key sleeve 501 and the upper ratchet 602, and further rotated and transmitted to the transmission rod 607 through the engagement of the cone disk 601 and the side bevel wheel 603. The end of the transmission rod 607 is coaxially connected to a gear 610. The outer edge teeth of the gear 610 extend through the side wall of the pulling sleeve 606 to its inner cavity, and engage with the connecting gear rod 803 inserted into the inner cavity of the pulling sleeve 606 for transmission, thereby pulling the split sampling tube 801 out of the ground to complete the sampling.
[0037] It should be noted that, during this process, the ratchet 608 coaxial in the middle of the transmission rod 607 cooperates with the pawl 609 set on the outer edge ratchet, which can effectively prevent the connecting gear rod 803 from sliding and loosening due to the reversal of the gear 610, thereby ensuring the continuity of the extraction process of the connecting gear rod 803; the present application integrates the manual extractor that needs to be used independently in the prior art into the machine body 1, which not only eliminates the need for the user to manually operate the extractor to complete the extraction and sampling of the split sampling tube 801, but also simplifies the number of accessories of the sampler of the present application for easy carrying, reduces the fatigue of the operator's manual operation, and effectively improves the work efficiency of the soil sampling operation.
[0038] See also Figures 3 to 8 The body 1 is fixed with two handles 2, and the bottom side of the body 1 is fixedly connected with a sleeve 3, and the lower end of the body 1 is provided with an impact assembly 7.
[0039] In some specific embodiments, the impact assembly 7 includes a cam 701 and a lower ratchet 702. The cam 701 is rotatably mounted on the bottom end of the body 1, and the lower ratchet 702 is coaxially fixed to the top of the cam 701. The lower ratchet 702 engages with the clutch ratchet 502 at the lower end of the key sleeve 501 for transmission.
[0040] At the same time, the middle groove of the cam 701 is clamped with a swing plate 703, and the outer edge of the annular structure of the swing plate 703 is fixed with a connecting pin 704, the connecting pin 704 is clamped in the middle of the impact rod 705, and the impact rod 705 is located inside the connecting sleeve 3 and reciprocates axially, and the tail of the impact rod 705 is slidably fitted with a guide rod 706, and the guide rod 706 is fixedly installed on the inner wall of the other side of the body 1.
[0041] In addition, the present invention further includes a sampling assembly 8 connected to the outside of the body 1 .
[0042] The sampling assembly 8 includes a split sampling tube 801, a threaded connector 802 and a connecting gear rod 803. The threaded connector 802 is threadedly fastened at both ends of the split sampling tube 801, and the threaded connector 802 at the upper end is externally connected to the connecting gear rod 803. The side wall tooth shape of the connecting gear rod 803 is engaged with the gear 610 for transmission, and the tail of the connecting gear rod 803 is in contact with the impact rod 705.
[0043] The specific operation is as follows: in the preparation stage, the split sampling tubes 801 are combined and the threaded connectors 802 are screwed on both ends. Then, a connecting gear rod 803 of a suitable length is connected to the threaded connector 802 at the upper end of the split sampling tube 801. Finally, the tail end of the connecting gear rod 803 is inserted into the connecting sleeve 3 on the side of the bottom end of the body 1. In the sampling stage, the fork is driven downward by the shifting rod 506. At this time, the power transmitted by the prime mover 4 through the key shaft 503 is transmitted through the clutch ratchet at the lower end of the key sleeve 501. The engagement of the disk 502 and the lower ratchet disk 702 transmits the rotation of the cam 701, and further generates opposite pressures on both sides through the oblique groove in the middle of the cam 701, converting the rotational motion of the cam 701 into the linear motion of the swing plate 703, and then the connecting pin 704 at the end of the swing plate 703 drives the impact rod 705 to perform axial reciprocating motion, and then the impact rod 705 applies a continuous impact force to the tail of the connecting gear rod 803, and the split sampling tube 801 is driven into the predetermined depth underground to complete soil sampling.
[0044] It should be noted that, in this application, the rotational power output by the prime mover 4 is converted into a high-speed reciprocating impact force of the impact rod 705 through the setting of the impact assembly 7, thereby providing continuous impact force for the sampling operation of the split sampling tube 801. No water is required throughout the process, and the disturbance to the soil can be minimized, thereby effectively maintaining the integrity of the soil sample.
[0045] In summary, the sampling device for building surveying and mapping quality inspection is used in the following ways:
[0046] In the preparation stage, the split sampling tubes 801 are combined and threaded connectors 802 are screwed on both ends. Then, a connecting gear rod 803 of appropriate length is externally connected to the threaded connector 802 located at the upper end of the split sampling tube 801. Finally, the tail end of the connecting gear rod 803 is inserted into the connecting sleeve 3 on the side of the bottom end of the body 1. In the sampling stage, the fork is driven downward by the shifting rod 506. At this time, the power transmitted by the prime mover 4 through the key shaft 503 is transmitted to the cam 701 through the engagement of the clutch ratchet 502 at the lower end of the key sleeve 501 and the lower ratchet 702. Further, the inclined groove in the middle of the cam 701 generates opposite pressures on both sides, converting the rotational motion of the cam 701 into the linear motion of the wobble plate 703. The connecting pin 704 at the end of the wobble plate 703 drives the impact rod 705 to perform axial reciprocating motion, and then the impact rod 705 applies a continuous impact force to the tail end of the connecting gear rod 803, so that the split sampling tube 801 is driven into the predetermined depth underground to complete the soil sampling.
[0047] During the sampling phase, the shift fork 504 is lifted upwards by the shift rod 506. At this time, the power transmitted by the prime mover 4 through the key shaft 503 is transmitted to the cone disc 601 through the engagement of the clutch ratchet 502 at the upper end of the key sleeve 501 and the upper ratchet 602, and further to the transmission rod 607 through the engagement of the cone disc 601 and the side bevel wheel 603. The end of the transmission rod 607 is coaxially connected to a gear 610. The outer edge teeth of the gear 610 extend through the side wall of the extraction sleeve 606 to its inner cavity, and mesh with the connecting gear rod 803 inserted into the inner cavity of the extraction sleeve 606 for transmission, thereby pulling the split sampling tube 801 out of the ground. The sampling is completed; during this process, the ratchet 608 coaxial with the middle part of the transmission rod 607 cooperates with the pawl 609 set on the outer edge ratchet, which can effectively prevent the connecting gear rod 803 from sliding and loosening due to the reversal of the gear 610, thereby ensuring the continuity of the extraction process of the connecting gear rod 803. The present application integrates the manual extractor that needs to be used independently in the prior art into the machine body 1, which not only eliminates the need for the user to manually operate the extractor to complete the extraction and sampling of the split sampling tube 801, but also simplifies the number of accessories of the sampler of the present application for easy carrying, reduces the fatigue of the operator's manual operation, and effectively improves the work efficiency of the soil sampling operation.
[0048] The embodiments of the present invention are presented for purposes of illustration and description and are not intended to be exhaustive or to limit the invention to the disclosed forms. Many modifications and variations will be apparent to those skilled in the art. The embodiments are chosen and described in order to better illustrate the principles of the invention and its practical application and to enable those skilled in the art to understand the invention and design various implementations with various modifications as suited for specific applications.
Claims
1. A sampling device for building surveying and quality inspection, characterized in that: The invention comprises a machine body (1) and a clutch assembly (5), wherein a prime mover (4) is fixed at the top middle end of the machine body (1), and the clutch assembly (5) is arranged at the inner middle end of the machine body (1). The clutch assembly (5) comprises a key sleeve (501), and a clutch ratchet (502) is coaxially fixed at the upper and lower ends of the key sleeve (501), and a key shaft (503) is slidably inserted in the key sleeve (501), and the key shaft (503) is connected to the prime mover (4). ) output end is fixed, a shift fork (504) is clamped on the side of the key sleeve (501), and the opposite surface of the end of the shift fork (504) is rollingly matched with the middle area of the key sleeve (501) through a roller (505), and the shift fork (504) is externally connected to a shift rod (506), and the shift rod (506) extends to the outside of the body (1) through the side groove, and the shift rod (506) is rotationally matched with the side groove of the body (1) through a damping shaft (507); The upper end of the machine body (1) is provided with a lifting assembly (6), and the lifting assembly (6) includes a cone disc (601) and an upper ratchet disc (602). The cone disc (601) is rotatably mounted on the upper end of the machine body (1), and the upper ratchet disc (602) is coaxially fixed to the bottom of the cone disc (601), and the upper ratchet disc (602) is engaged with the clutch ratchet disc (502) at the upper end of the key sleeve (501) for transmission. A through hole is provided in the middle of the upper ratchet disc (602) and penetrates to the cone disc (601), and the inner diameter of the through hole in the middle of the upper ratchet disc (602) is larger than the outer diameter of the key shaft (503). An impact assembly (7) is provided at the lower end of the interior of the machine body (1), and the impact assembly (7) comprises a cam (701) and a lower ratchet (702). The cam (701) is rotatably mounted on the lower end of the interior of the machine body (1), and the lower ratchet (702) is coaxially fixed to the top of the cam (701), and the lower ratchet (702) engages with the clutch ratchet (502) at the lower end of the key sleeve (501) for transmission.
2. The sampling device for building surveying and quality inspection according to claim 1, characterized in that: The lifting assembly (6) further comprises an umbrella wheel (603), a bearing seat (604), a housing (605) and a lifting sleeve (606); the side of the cone disk (601) is meshed with the umbrella wheel (603), and the umbrella wheel (603) is rotatably mounted inside the bearing seat (604) on a side wall of the machine body (1); the bearing seat (604) is externally connected to the housing (605), and the rear end side of the housing (605) is connected to the lifting sleeve (606).
3. The sampling device for building surveying and quality inspection according to claim 2, characterized in that: The lifting assembly (6) further comprises a transmission rod (607), a ratchet (608) and a pawl (609); the umbrella wheel (603) is coaxially connected to the transmission rod (607); a ratchet (608) is coaxially fixed to the middle of the transmission rod (607); ratchet teeth on the outer edge of the ratchet (608) cooperate with the pawl (609), and the pawl (609) is rotatably mounted on the outside of the housing (605) via a spring.
4. The sampling device for building surveying and quality inspection according to claim 3, characterized in that: The pulling assembly (6) further comprises a gear (610), the gear (610) being coaxially fixed to the end of the transmission rod (607), and the outer edge teeth of the gear (610) extending through the side wall of the pulling sleeve (606) to the inner cavity.
5. The sampling device for building surveying and quality inspection according to claim 1, characterized in that: The machine body (1) is fixed with two handles (2), and the bottom side of the machine body (1) is fixed with a connecting sleeve (3).
6. The sampling device for building surveying and quality inspection according to claim 1, characterized in that: The impact assembly (7) further comprises a wobble plate (703) and a connecting pin (704); the wobble plate (703) is clamped in the middle groove of the cam (701), and the connecting pin (704) is fixed to the outer edge of the annular structure of the wobble plate (703).
7. The sampling device for building surveying and quality inspection according to claim 6, characterized in that: The impact assembly (7) further comprises an impact rod (705) and a guide rod (706); the connecting pin (704) is clamped in the middle of the impact rod (705); the impact rod (705) is located inside the connecting sleeve (3) and reciprocates axially; the tail of the impact rod (705) is slidably fitted with the guide rod (706), and the guide rod (706) is fixedly mounted on the inner wall of the other side of the body (1).
8. The sampling device for building surveying and quality inspection according to claim 1, characterized in that: The body (1) is externally connected to a sampling assembly (8), and the sampling assembly (8) comprises a split sampling tube (801), a threaded connector (802), and a connecting gear rod (803). The threaded connector (802) is threadedly fastened to both the upper and lower ends of the split sampling tube (801), and the threaded connector (802) at the upper end is externally connected to a connecting gear rod (803). The side wall tooth profile of the connecting gear rod (803) meshes with the gear (610) for transmission, and the tail of the connecting gear rod (803) abuts against the impact rod (705).
Citation Information
Patent Citations
Material testing device for material testing of a sample
DE102022115919A1
Drill rod pulling device
WO2023123661A1