A steel structure detection device for engineering construction

CN224773036UActive Publication Date: 2026-09-18HEILONGJIANG GUTAI CONSTR ENG TECH DEV CO LTD
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Patent Information

Application Number
CN202522203629.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-18
Publication Date
2026-09-18
Estimated Expiration
2035-10-18

AI Technical Summary

Technical Problem

[0004]基于此,本实用新型的目的是提供一种工程施工用钢结构检测装置,以解决现有检测方式中操作人员需额外携带独立显像剂容器,手动取用及喷洒显像剂操作烦琐,且携带过程中容器易因碰撞、挤压导致显像剂泄漏,造成资源浪费与检测现场环境污染的技术问题

Benefits of technology

1、本实用新型通过设置润滑机构,其中润滑机构的收容盒内设有盒舱用于放置显像剂袋,显像剂袋外形与盒舱内壁适配,可稳定放置。电推杆的推片能对显像剂袋均匀施压,使显像剂经显像剂管输送至出液头。这解决了现有检测方式中,操作人员需额外携带独立显像剂容器,手动取用和喷洒显像剂操作烦琐的问题,也避免了携带过程中容器因碰撞、挤压导致显像剂泄漏,造成资源浪费和检测现场环境污染的情况;

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Abstract

The utility model discloses a steel structure detection device for engineering construction relates to steel structure detection device field, the utility model discloses a device main part, the device main part includes control panel, the back of control panel is provided with lubricating mechanism, and the accommodating box of lubricating mechanism is equipped with box cabin for placing the developer bag, and the appearance of developer bag is adapted with the inner wall of box cabin, can be stably placed, and the push piece of electric push rod can evenly press the developer bag, makes the developer to be transported to the liquid outlet head through developer pipe, which solves the problem that the operator needs to carry an independent developer container, manually uses and sprays the developer in the existing detection mode, and the operation is troublesome, also avoids the situation that the container leaks the developer due to collision and extrusion during carrying, causes resource waste and detection site environmental pollution.
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Description

Technical Field

[0001] This utility model relates to the field of steel structure testing devices, specifically a steel structure testing device for engineering construction. Background Technology

[0002] In the field of engineering construction, steel structures are widely used in various building structures due to their advantages such as high strength, good seismic performance and plasticity. To ensure the quality and safety of steel structures, it is essential to conduct regular inspections.

[0003] However, current operators need to carry additional developer containers, which are usually small, independent canisters or bottles. When conducting testing, the developer must be manually removed from the container and sprayed evenly onto the steel structure surface. This method is not only cumbersome, but the developer container is also prone to collisions and squeezing during transport, leading to developer leakage. This not only wastes resources but may also pollute the testing site environment. Utility Model Content

[0004] Based on this, the purpose of this utility model is to provide a steel structure testing device for engineering construction, so as to solve the technical problems in the existing testing methods where operators need to carry an independent developer container, manually take and spray the developer, which is cumbersome, and the container is prone to leakage of developer due to collision and squeezing during the carrying process, resulting in resource waste and environmental pollution at the testing site.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a steel structure testing device for engineering construction, comprising a device body, the device body including a control panel, and a lubrication mechanism provided on the back of the control panel; The lubrication mechanism includes a receiving box, which has a compartment inside and a developer bag is placed inside the compartment. The top of the receiving box is provided with a developer tube interface, and the two ends of the developer tube interface are respectively connected to the interface at the top of the developer bag and the developer tube. One end of the developer tube is provided with a liquid outlet. The outer surface of the housing is rotatably connected to a cover plate via a torsion spring. An electric push rod is provided on the outer surface of the cover plate. A push plate is provided at the output end of the electric push rod and is connected to the developer bag. The cover plate is fixedly connected to the housing.

[0006] By adopting the above technical solution, the main body of the device features a control panel with a lubrication mechanism on the back, resulting in a compact and reasonable structure. The control panel is easy to operate, and the lubrication mechanism provides support for subsequent developer spraying. The combination of these two elements integrates the functions of the detection device, providing a basic and convenient framework for steel structure inspection.

[0007] Furthermore, the liquid outlet head is adhered to the probe.

[0008] By adopting the above technical solution, the liquid outlet head is ingeniously attached to the probe. This allows the developer to accurately apply to the steel structure along with the probe, eliminating the need for additional complex positioning operations, improving detection efficiency, and ensuring that the developer is accurately sprayed onto the detection area.

[0009] Furthermore, the outer surface of the control panel is provided with buttons and a display screen, and the top of the control panel is provided with a probe interface.

[0010] By adopting the above technical solution, the control panel features buttons and a display screen on its outer surface, with a probe interface on the top, resulting in a rational layout. The buttons facilitate basic operation, the display screen shows information, and the interface connects to the probe. The functions of each part are clearly defined, making testing operations convenient.

[0011] Furthermore, a probe wire is screwed to the top of the probe interface, and a probe is installed at the end of the probe wire.

[0012] By adopting the above technical solution, the probe cable is screwed to the top of the probe interface, and the probe is installed at the end, ensuring a secure connection. This screw-in connection method guarantees a tight connection between the probe cable and the interface, reducing signal interference and ensuring the probe stably acquires and transmits steel structure inspection data.

[0013] Furthermore, the developer bag is placed inside the chamber, and its shape is adapted to the inner wall of the chamber; the electric push rod applies uniform pressure to the developer bag through the push plate, causing the developer to be delivered to the dispensing head through the developer tube.

[0014] By adopting the above technical solution, the developer bag fits snugly into the cartridge compartment, and the electric pusher applies pressure, demonstrating a scientific design. The fit is stable, and the even pressure from the electric pusher ensures stable delivery of the developer, avoiding waste and guaranteeing a sufficient supply of developer during testing.

[0015] Furthermore, a protective sleeve is provided at the connection between the probe interface and the probe cable; the probe integrates a sensor unit, which is electrically connected to the control panel via the probe cable.

[0016] By adopting the above technical solution, a protective sleeve is installed at the connection between the probe interface and the probe cable. The probe integrates a sensor unit and is electrofused, demonstrating comprehensive consideration. The protective sleeve protects the connection, and the sensor unit accurately transmits data, ensuring stable detection.

[0017] Furthermore, the display screen is a touch screen, which together with the buttons constitutes a human-machine interface; the control panel is equipped with a main control circuit board, which is used to process sensor signals and control the working sequence of the lubrication mechanism.

[0018] By adopting the above technical solution, the display screen is a touch-sensitive interface combined with buttons to form a human-machine interface, and the control panel houses the main control circuit board, demonstrating advanced design. The human-machine interface is easy to operate, and the main control circuit board precisely controls signals and timing, improving detection efficiency and accuracy.

[0019] Furthermore, the compartment opening of the receiving box is provided with a sealing edge; the cover is automatically opened by a torsion spring and is fixedly connected to the receiving box by a locking mechanism to ensure the airtightness of the compartment.

[0020] By adopting the above technical solution, the opening of the container compartment is equipped with a sealing edge, and the cover is opened by a torsion spring and fixed by a latch, demonstrating a sophisticated design. The sealing edge prevents leakage, and the torsion spring latch ensures a secure seal, guaranteeing the safe and stable storage and use of the developer.

[0021] In summary, the present invention has the following main advantages: 1. This utility model incorporates a lubrication mechanism, in which a receiving box is provided for holding developer bags. The developer bags are shaped to fit the inner wall of the box, ensuring stable placement. The pusher of the electric actuator applies uniform pressure to the developer bags, allowing the developer to be delivered through the developer tube to the dispensing head. This solves the problem in existing testing methods where operators need to carry separate developer containers and manually handle and spray the developer, which is cumbersome. It also avoids developer leakage due to collisions or compression during transport, preventing resource waste and environmental pollution at the testing site. 2. This utility model features a control panel and related structures. The control panel includes buttons and a touchscreen display, forming a human-machine interface. Operators can perform basic operations using the buttons and fine-tuning and parameter adjustments using the touchscreen display, making operation convenient and flexible. The main control circuit board inside the control panel processes sensor signals and controls the working sequence of the lubrication mechanism. Simultaneously, a protective sleeve is provided at the connection point between the probe interface and the probe cable to protect the connection from damage. The probe integrates a sensor unit and is electrofused to the control panel via the probe cable. This solves the problems of inconvenient human-machine interaction, insufficient precision and efficiency in sensor signal processing and the coordinated control of various components in traditional detection devices, and the lack of protection at the probe connection point, making it susceptible to damage. Attached Figure Description

[0022] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 This is a rear-view three-dimensional structural diagram of the present invention; Figure 3 This is a side view cross-sectional three-dimensional structural schematic diagram of the present invention; Figure 4 For the present utility model Figure 3 A magnified structural diagram of point A in the middle.

[0023] In the diagram: 1. Main body of the device; 101. Control panel; 102. Display screen; 103. Button; 104. Probe interface; 105. Probe cable; 106. Probe; 2. Lubrication mechanism; 201. Storage box; 202. Cover plate; 203. Electric actuator; 204. Box compartment; 205. Developer bag; 206. Pressure plate; 207. Developer tube interface; 208. Developer tube; 209. Dispensing head. Detailed Implementation

[0024] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.

[0025] A steel structure testing device for engineering construction, such as Figure 1-4 As shown, the device includes a main body 1, which includes a control panel 101, and a lubrication mechanism 2 is provided on the back of the control panel 101. The lubrication mechanism 2 includes a receiving box 201, a box compartment 204 is provided inside the receiving box 201, and a developer bag 205 is placed inside the box compartment 204. A developer tube interface 207 is provided on the top of the receiving box 201, and the two ends of the developer tube interface 207 are respectively connected to the interface on the top of the developer bag 205 and the developer tube 208. One end of the developer tube 208 is provided with a liquid outlet 209. A cover plate 202 is rotatably connected to the outer surface of the receiving box 201 via a torsion spring. An electric actuator 203 is mounted on the outer surface of the cover plate 202, and a pusher plate is mounted at the output end of the actuator 203. The pusher plate is connected to the developer bag 205. The cover plate 202 is fixedly connected to the receiving box 201. The control panel 101 serves as the core operating area, facilitating various command inputs by the operator. The lubrication mechanism 2 provides crucial support for the spraying of the developer during the testing process. This structure, which rationally arranges the operation and function execution parts, makes the entire testing device more efficient in space utilization, avoids the dispersion of functions, and lays a solid foundation for the smooth progress of subsequent steel structure testing, making the testing operation more fluid and orderly.

[0026] See Figure 1 , Figure 2 , Figure 3 , Figure 4The liquid outlet 209 is attached to the probe 106. During steel structure inspection, the probe 106 contacts the steel structure to acquire inspection information, while the liquid outlet 209 is responsible for spraying the developer. With the two attached, when the probe 106 moves to the inspection position, the liquid outlet 209 can simultaneously and precisely spray the developer onto that location, eliminating the need for complex positioning operations by the operator. This not only significantly improves inspection efficiency and reduces developer waste and inspection errors caused by inaccurate positioning, but also ensures that the developer accurately acts on the key inspection points of the steel structure, providing a strong guarantee for subsequent accurate analysis of the steel structure's condition.

[0027] See Figure 1 , Figure 2 , Figure 3 , Figure 4 The control panel 101 has buttons 103 and a display screen 102 on its outer surface. A probe interface 104 is located on the top of the control panel 101. Buttons 103 facilitate quick basic operations for operators, such as turning the equipment on and off and selecting detection modes. The display screen 102 clearly displays various information during the detection process, such as detection data and equipment status. The probe interface 104 on the top is used to connect the probe 106, enabling information transmission between the probe and the control panel 101. With clearly defined functions, operators can perform detection operations conveniently and quickly without frequently switching between different areas, improving the efficiency and accuracy of the detection work.

[0028] See Figure 1 , Figure 2 , Figure 3 , Figure 4 A probe cable 105 is screwed to the top of the probe interface 104, and a probe 106 is installed at the end of the probe cable 105. The screw connection ensures a tight connection between the probe cable 105 and the probe interface 104, preventing loosening during testing and reducing signal interference caused by unstable connections. The probe 106, as a key component for acquiring steel structure inspection data, reliably transmits the detected data to the control panel 101 via the probe cable 105 through a secure connection. This structure ensures the accuracy and stability of data transmission, providing reliable data support for subsequent accurate analysis of the steel structure's condition and improving the overall reliability of the inspection device.

[0029] See Figure 1 , Figure 2 , Figure 3 , Figure 4The developer bag 205 is placed inside the housing 204, and its shape is adapted to the inner wall of the housing 204. The electric actuator 203 applies uniform pressure to the developer bag 205 through its pusher, causing the developer to be delivered through the developer tube 208 to the dispensing head 209. The fit between the developer bag 205 and the housing 204 ensures that the developer bag can be stably placed in the housing cassette 201, preventing it from shaking or shifting during transportation and testing. The uniform pressure applied by the pusher of the electric actuator 203 ensures that the developer flows out stably and continuously from the developer bag 205 and is delivered to the dispensing head 209 through the developer tube 208. This design avoids developer waste and ensures an adequate supply of developer during testing, providing a guarantee for the clear display of defects on the steel structure surface and improving the quality and effect of testing.

[0030] See Figure 1 , Figure 2 , Figure 3 , Figure 4 A protective sleeve is provided at the connection between the probe interface 104 and the probe cable 105. The probe 106 integrates a sensor unit, which is electrofused to the control panel 101 via the probe cable 105. The protective sleeve effectively protects the connection between the probe interface 104 and the probe cable 105, preventing loosening or damage during testing due to collisions, friction, or other reasons, thus ensuring the stability of signal transmission. The sensor unit integrated within the probe 106 accurately senses various parameters of the steel structure and converts them into electrical signals, which are then transmitted to the control panel 101 via the probe cable 105. This design ensures the accurate acquisition and transmission of test data, providing a reliable basis for subsequent accurate assessment of the steel structure's condition and guaranteeing the stable progress of the testing work.

[0031] See Figure 1 , Figure 2 , Figure 3 , Figure 4 The display screen 102 is a touch screen, which, together with the buttons 103, forms the human-machine interface. The control panel 101 contains a main control circuit board, used to process sensor signals and control the working sequence of the lubrication mechanism 2. The human-machine interface, composed of the touch screen 102 and buttons 103, provides operators with multiple operating methods. Operators can choose the most convenient method to input commands according to actual needs, greatly improving operational convenience. The main control circuit board can accurately process the signals transmitted from the sensor units and accurately control the working sequence of the lubrication mechanism 2 according to the preset program. This design enables the detection device to respond quickly and accurately to operator commands, improving detection efficiency and accuracy, and providing strong technical support for steel structure inspection work.

[0032] See Figure 1 , Figure 2 , Figure 3, Figure 4 The housing cassette 201 has a sealing flange at the opening of its compartment 204. The cover 202 automatically opens via a torsion spring and is fixedly connected to the housing cassette 201 via a locking mechanism, ensuring the airtightness of the compartment 204. The automatic opening of the cover 202 allows operators to quickly open it for operations such as replacing the developer bag when needed. The locking mechanism ensures the airtightness of the compartment 204 when the cover is closed, preventing developer leakage due to loosening of the cover during transportation or testing. This design ensures the safety and stability of the developer during storage and use, providing reliable protection for steel structure inspection.

[0033] The implementation principle of this embodiment is as follows: First, before testing, the appropriate developer bag 205 is placed in the compartment 204 of the housing box 201. Since the shape of the developer bag 205 is compatible with the inner wall of the compartment 204, it can be placed stably. The sealing edge at the opening of the compartment 204 can prevent developer leakage. Then, the cover plate 202 is fixedly connected to the housing box 201 through the locking mechanism to ensure that the compartment 204 is sealed. The cover plate 202 achieves the function of automatic pop-up opening through the torsion spring, which facilitates subsequent operations. Next, the probe wire 105 is screwed onto the probe interface 104 on the top of the control panel 101 to complete the connection between the probe 106 and the control panel 101. The protective sleeve at the connection between the probe interface 104 and the probe wire 105 can protect the connection part and prevent it from being damaged. At the same time, the sensor unit integrated inside the probe 106 is electrofused to the control panel 101 through the probe wire 105 in order to transmit detection signals. When the test begins, the operator uses the human-machine interface consisting of the buttons 103 on the outer surface of the control panel 101 and the touch screen 102 to make operation settings. After receiving the instructions, the main control circuit board inside the control panel 101 begins to process the sensor signals and control the working sequence of the lubrication mechanism 2. When the developer needs to be sprayed, the main control circuit board controls the electric push rod 203 to start. The pusher at the output end of the electric push rod 203 applies uniform pressure to the developer bag 205, causing the developer to flow out from the top interface of the developer bag 205, enter the developer tube 208 through the developer tube interface 207, and finally be sprayed out from the liquid outlet 209 that is attached to the probe 106, assisting the probe 106 in steel structure inspection. The whole process is simple to operate, avoiding the cumbersome and risky manual carrying and operation of the developer container in the traditional method.

[0034] Although embodiments of the present invention have been shown and described, these specific embodiments are merely explanations of the present invention and are not intended to limit the invention. The specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions, and variations to the embodiments as needed without departing from the principles and spirit of the present invention, provided that such modifications, substitutions, and variations are within the scope of the claims of the present invention and are protected by patent law.

Claims

1. A steel structure inspection device for construction work, characterized by: The device includes a main body (1), which includes a control panel (101) and a lubrication mechanism (2) is provided on the back of the control panel (101). The lubrication mechanism (2) includes a receiving box (201), a compartment (204) is provided inside the receiving box (201), and a developer bag (205) is placed inside the compartment (204). A developer tube interface (207) is provided on the top of the receiving box (201), and the two ends of the developer tube interface (207) are respectively connected to the interface on the top of the developer bag (205) and the developer tube (208). One end of the developer tube (208) is provided with a liquid outlet (209). The outer surface of the housing (201) is rotatably connected to a cover plate (202) via a torsion spring. An electric push rod (203) is provided on the outer surface of the cover plate (202). A push plate is provided at the output end of the electric push rod (203), and the push plate is connected to the developer bag (205). The cover plate (202) is fixedly connected to the housing (201).

2. The device for detecting the steel structure of the engineering construction according to claim 1, characterized in that: The liquid outlet head (209) is attached to the probe (106).

3. The device for detecting the steel structure of the engineering construction according to claim 1, characterized in that: The outer surface of the control panel (101) is provided with buttons (103) and a display screen (102), and the top of the control panel (101) is provided with a probe interface (104).

4. The device for detecting the steel structure of the engineering construction according to claim 3, characterized in that: The probe interface (104) is screwed to the top of a probe wire (105), and a probe (106) is installed at the end of the probe wire (105).

5. The device for detecting the steel structure of the engineering construction according to claim 1, characterized in that: The developer bag (205) is placed inside the box (204), and its shape is adapted to the inner wall of the box (204); the electric push rod (203) applies uniform pressure to the developer bag (205) through the push plate, so that the developer is delivered to the liquid outlet (209) through the developer tube (208).

6. The device for detecting the steel structure of the engineering construction according to claim 3, characterized in that: A protective sleeve is provided at the connection between the probe interface (104) and the probe line (105); the probe (106) integrates a sensor unit, which is electrically connected to the control panel (101) through the probe line (105).

7. The steel structure testing device for engineering construction according to claim 3, characterized in that: The display screen (102) is a touch screen, which together with the button (103) constitutes a human-machine interface; the control panel (101) is equipped with a main control circuit board, which is used to process sensor signals and control the working sequence of the lubrication mechanism (2).

8. The device for detecting the structure of the steel for engineering construction according to claim 1, characterized in that: The compartment (204) opening of the storage box (201) is provided with a sealing edge; the cover (202) is automatically opened by a torsion spring and is fixedly connected to the storage box (201) by a locking mechanism to ensure the airtightness of the compartment (204).