Building construction pile auxiliary detection device

By designing an auxiliary detection device for building construction piles and columns, and utilizing components such as contact seats and installation sleeves, the verticality of piles and columns can be quickly determined, solving the problem of cumbersome detection operations in existing technologies, and achieving simplified operation and improved detection efficiency.

CN224247046UActive Publication Date: 2026-05-15FOSHAN SANSHUI PRODUCTS ENGINEERING MANAGEMENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
FOSHAN SANSHUI PRODUCTS ENGINEERING MANAGEMENT CO LTD
Filing Date
2025-07-15
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

In existing technologies, the operation of pile verticality detection is cumbersome and it is difficult to quickly determine the verticality and tilt direction in various directions.

Method used

An auxiliary detection device for building construction piles and columns was designed, comprising a contact mechanism, a connection mechanism, and a detection mechanism. Utilizing components such as a contact seat, a mounting sleeve, a detection rod, and a spirit level, the verticality of the pile and column can be quickly determined by adjusting the levelness of the contact seat and the mounting sleeve, combined with the extension length of the detection rod.

Benefits of technology

It enables rapid and convenient detection of pile verticality, simplifies the operation process, and improves detection efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

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    Figure CN224247046U_ABST
Patent Text Reader

Abstract

The utility model discloses a building construction pile auxiliary detection device which comprises a contact mechanism, a connecting mechanism and a detection mechanism, the contact mechanism is fixedly installed at one end of the connecting mechanism, and the detection mechanism is movably installed at the other end of the connecting mechanism. The detection mechanism comprises a mounting sleeve, a detection rod, a first horizontal bubble and a second horizontal bubble, the first horizontal bubble is mounted at the contact mechanism, and the first horizontal bubble is used for detecting the mounting levelness of the contact mechanism. The contact seat and the mounting sleeve are adjusted to be in a horizontal state, then the ejector block of the detection rod is ejected to the surface of the pile, the extension length of the detection rod can be converted into perpendicularity data of the pile, and a user can quickly judge the perpendicularity of the pile by observing scales on the detection rod; the device is simple and convenient to operate, can quickly detect the perpendicularity of the pile, and is convenient for a user to detect the perpendicularity of the pile.
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Description

Technical Field

[0001] This utility model relates to the field of building construction technology, specifically to an auxiliary detection device for building construction piles and columns. Background Technology

[0002] The verticality of piles has a significant impact on the bearing capacity of pile foundations. National industry regulations stipulate that the verticality of exposed piles in engineering projects must be tested. The main methods for testing pile verticality include the optical theodolite method and the laser plumb line method. The optical theodolite method determines whether the verticality meets requirements by observing real-time changes in pile verticality, while the laser plumb line method determines pile verticality by observing whether the laser beam is perpendicular to the ground. However, both of these methods are relatively cumbersome to operate, making it difficult to quickly test the verticality of the pile in all directions, and hindering users from quickly determining the verticality and tilt direction of the pile. Utility Model Content

[0003] To address the aforementioned technical issues, an auxiliary detection device for building construction piles and columns is provided to quickly detect the verticality of piles and columns.

[0004] To achieve the above objectives, the following solution is provided: an auxiliary detection device for building construction piles and columns, comprising a contact mechanism, a connecting mechanism, and a detection mechanism. The contact mechanism is fixedly installed at one end of the connecting mechanism, and the detection mechanism is movably installed at the other end of the connecting mechanism. The detection mechanism includes an installation sleeve, a detection rod, a first level bubble, and a second level bubble. The first level bubble is installed at the contact mechanism and is used to detect the installation level of the contact mechanism. The installation sleeve is rotatably installed at the end of the connecting mechanism, and the second level bubble is installed on the installation sleeve and is used to detect the level of the installation sleeve. The detection rod is slidably installed inside the installation sleeve, and scale lines are engraved on the detection rod.

[0005] Furthermore, one end of the detection rod is provided with a top block, which has a spherical structure.

[0006] Furthermore, the other end of the detection rod is provided with a pull-out mechanism.

[0007] Furthermore, the mounting sleeve is rotatably mounted at the connection structure via quick-release bolts.

[0008] Furthermore, the contact mechanism includes a contact seat, which is fixedly installed at one end of the connecting mechanism. A plurality of anti-slip protrusions are evenly provided on the side of the contact seat away from the connecting mechanism, and the anti-slip protrusions are cone-shaped.

[0009] Furthermore, the connection mechanism includes a mounting base and a mounting bracket. One side of the mounting base is fixedly connected to the contact seat, and the other side of the mounting base is provided with a mounting bracket. The mounting bracket is inclinedly disposed at the mounting base, and the mounting sleeve is rotatably mounted at the mounting bracket.

[0010] The working principle and advantages of this utility model are as follows: This auxiliary detection device for building construction piles and columns works by attaching the contact seat to the surface of the pile and column, adjusting the contact seat and the mounting sleeve to a horizontal state, and then pressing the top block of the detection rod against the surface of the pile and column. The verticality data of the pile and column can be converted from the extension length of the detection rod. Users can quickly determine the verticality of the pile and column by observing the scale on the detection rod. This device is simple and convenient to operate, can quickly detect the verticality of the pile and column, and is convenient for users to detect the verticality of the pile and column. Attached Figure Description

[0011] Figure 1 This is the front view of the present invention;

[0012] Figure 2 This is a side view of the present invention.

[0013] The reference numerals in the accompanying drawings include:

[0014] 1. Contact seat, 2. Anti-slip protrusion, 3. First level bubble, 4. Mounting seat, 5. Mounting bracket, 6. Quick release bolt, 7. Mounting sleeve, 8. Detection rod, 9. Scale line, 10. Pull-out block, 11. Top block, 12. Second level bubble. Detailed Implementation

[0015] The following detailed explanation illustrates the specific implementation methods:

[0016] like Figures 1 to 2 As shown:

[0017] An auxiliary detection device for building construction piles includes a contact mechanism, a connecting mechanism, and a detection mechanism. The contact mechanism is fixedly installed at one end of the connecting mechanism, and the detection mechanism is movably installed at the other end of the connecting mechanism, ensuring that the vertical distance between the contact mechanism and the detection mechanism remains constant. The detection mechanism includes a mounting sleeve 7, a detection rod 8, a first level bubble 3, and a second level bubble 12. The first level bubble 3 is installed at the contact mechanism. When the contact mechanism is in contact with the pile surface, the levelness of the contact mechanism can be adjusted by observing the first level bubble 3. The mounting sleeve 7 is rotatably installed at the end of the connecting mechanism, and the second level bubble is mounted on the mounting sleeve 7. 12. The level of the mounting sleeve 7 can be adjusted by observing the second level bubble 12. When the mounting sleeve 7 is in a horizontal state, the vertical distance between the mounting sleeve 7 and the contact mechanism remains constant and the mounting sleeve 7 is perpendicular to the vertical direction of the contact mechanism. The detection rod 8 is slidably installed in the mounting sleeve 7. By measuring the extension length of the detection rod 8 against the pile, combined with the vertical distance between the contact mechanism and the mounting sleeve 7, the verticality and inclination of the pile can be calculated. The corresponding calculated verticality is marked as a scale line 9 on the detection rod 8. The end of the detection sleeve is used as an indicator surface, and the user can intuitively observe the verticality of the pile.

[0018] One end of the detection rod 8 is provided with a top block 11. The top block 11 has a spherical structure and is used to contact the pile. The spherical structure makes the protrusion length of the detection rod 8 pressed against the pile more accurate.

[0019] The other end of the detection rod 8 is equipped with a pull-out mechanism, which makes it easy for users to pull out the detection rod 8.

[0020] The mounting sleeve 7 is rotatably installed at the connection structure via the quick-release bolt 6.

[0021] The contact mechanism includes a contact seat 1, which is fixedly installed at one end of the connecting mechanism. Several anti-slip protrusions 2 are evenly provided on the side of the contact seat 1 away from the connecting mechanism. The anti-slip protrusions 2 are cone-shaped and can enhance the friction between the contact seat 1 and the pile, so that the contact seat 1 fits better against the pile.

[0022] The connecting mechanism includes a mounting base 4 and a mounting bracket 5. One side of the mounting base 4 is fixedly connected to the contact seat 1, and the other side of the mounting base 4 is provided with a mounting bracket 5. The mounting bracket 5 is inclinedly set at the mounting base 4, and the mounting sleeve 7 is rotatably installed at the mounting bracket 5. The mounting bracket 5 keeps the vertical distance between the mounting sleeve 7 and the contact seat 1 constant.

[0023] The specific implementation process is as follows:

[0024] When using this auxiliary testing device for building construction piles, first, attach the contact seat 1 to the surface of the pile. By observing the first level bubble 3 at the contact seat 1, adjust the level of the contact seat 1 at the pile. Then, adjust the level of the mounting sleeve 7. The user can hold the pull block 10 and adjust the level of the mounting sleeve 7 through the testing rod 8. After the mounting sleeve 7 is adjusted to be level, the user can push the testing rod 8 so that the top block 11 at the front end of the testing end presses against the surface of the pile. Since the vertical direction of the contact seat 1 is perpendicular to the mounting sleeve 7 and the distance between the contact seat 1 and the mounting sleeve 7 in the vertical direction remains constant, the verticality of the pile can be calculated by combining the extension length of the testing rod 8. The testing rod 8 is engraved with verticality scale lines 9. By observing the verticality scale lines 9 on the testing rod 8, the verticality of the pile can be judged intuitively. Alternatively, the mounting sleeve 7 can be locked by the quick-release bolt 6 before the testing rod 8 can be pushed out.

[0025] This auxiliary pile and column testing device for building construction works by attaching the contact seat 1 to the pile and column surface, adjusting the contact seat 1 and the mounting sleeve 7 to a horizontal state, and then pressing the top block 11 of the testing rod 8 against the pile and column surface. The verticality data of the pile and column can be converted from the extension length of the testing rod 8. Users can quickly determine the verticality of the pile and column by observing the scale on the testing rod 8. This device is simple and convenient to operate, and can quickly detect the verticality of the pile and column, making it convenient for users to test the verticality of the pile and column.

[0026] The above description is merely an embodiment of this utility model. Commonly known structures and characteristics are not described in detail here. Those skilled in the art are aware of all common technical knowledge in the field prior to the application date or priority date, are aware of all existing technologies in that field, and have the ability to apply conventional experimental methods prior to that date. Those skilled in the art can, based on the guidance provided in this application, improve and implement this solution in combination with their own capabilities. Some typical known structures or methods should not be obstacles for those skilled in the art to implement this application. It should be noted that those skilled in the art can make several modifications and improvements without departing from the structure of this utility model. These should also be considered within the scope of protection of this utility model, and will not affect the effectiveness of the implementation of this utility model or the applicability of the patent. The scope of protection claimed in this application should be determined by the content of its claims, and the specific embodiments described in the specification can be used to interpret the content of the claims.

Claims

1. An auxiliary detection device for building construction piles and columns, characterized in that: The device includes a contact mechanism, a connecting mechanism, and a detection mechanism. The contact mechanism is fixedly installed at one end of the connecting mechanism, and the detection mechanism is movably installed at the other end of the connecting mechanism. The detection mechanism includes a mounting sleeve, a detection rod, a first level bubble, and a second level bubble. The first level bubble is installed at the contact mechanism and is used to detect the installation level of the contact mechanism. The mounting sleeve is rotatably installed at the end of the connecting mechanism, and the second level bubble is installed on the mounting sleeve and is used to detect the level of the mounting sleeve. The detection rod is slidably installed inside the mounting sleeve and has scale lines engraved on it.

2. The auxiliary detection device for building construction piles and columns according to claim 1, characterized in that: One end of the detection rod is provided with a top block, which has a spherical structure.

3. The auxiliary detection device for building construction piles and columns according to claim 2, characterized in that: The other end of the detection rod is equipped with a pull-out mechanism.

4. The auxiliary detection device for building construction piles and columns according to claim 1, characterized in that: The mounting sleeve is rotatably installed at the connection structure via quick-release bolts.

5. The auxiliary detection device for building construction piles and columns according to claim 1, characterized in that: The contact mechanism includes a contact seat, which is fixedly installed at one end of the connecting mechanism. The side of the contact seat away from the connecting mechanism is evenly provided with several anti-slip protrusions, which are cone-shaped.

6. The auxiliary detection device for building construction piles and columns according to claim 1, characterized in that: The connecting mechanism includes a mounting base and a mounting bracket. One side of the mounting base is fixedly connected to the contact seat, and the other side of the mounting base is provided with a mounting bracket. The mounting bracket is inclinedly arranged at the mounting base, and the mounting sleeve is rotatably installed at the mounting bracket.