Engineering quality detection information acquisition and processing device
By designing an automated engineering quality inspection device, the problems of manual operation fatigue and high-altitude hazards in traditional inspections are solved, and efficient and safe data collection and recording are achieved.
Patent Information
- Application Number
- CN202422526232.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-18
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2034-10-18
AI Technical Summary
Traditional engineering quality inspection methods require manual operation by testing personnel, which leads to fatigue and high-altitude detection risks, and inconvenient data recording, affecting data accuracy.
An engineering quality inspection information acquisition and processing device is designed, including a machine base, a moving wheel module, a parallel mobile module, a vertical motion module, a detection module and a data acquisition module to realize automated detection and data recording.
It reduces the physical fatigue and the danger of high-altitude operations of the test personnel, and improves the integrity and accuracy of the test data.
Smart Images

Figure CN223272346U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of engineering quality detection, in particular to an engineering quality detection information acquisition and processing device. Background Art
[0002] The engineering quality inspection information collection and processing device is a device used for the quality inspection of construction projects. It can test the quality and usage functions of engineering materials, components, equipment and engineering entities, and determine the air quality characteristics. Its main functions are: to ensure construction quality, provide data support, quality control of construction materials and construction equipment, promote technological innovation and application, realize information management and meet regulatory requirements. The application of the engineering quality inspection information collection and processing device is of great significance to improving the quality and efficiency of construction projects and promoting technological progress and innovative development in the construction industry.
[0003] In traditional engineering quality inspections, strength inspections of buildings require the use of rebound hammers, which require inspectors to operate the rebound hammers manually. Inspectors need to continuously squeeze the rebound hammers to obtain rebound data. Such engineering quality inspections have the following disadvantages: First, inspectors need to continuously operate the instrument manually during inspections, and long-term measurements will cause fatigue to inspectors; second, inspectors often need to climb to high places using ladders or other tools according to specific needs, and high-altitude inspections are often accompanied by certain risks, which also makes traditional engineering quality inspections dangerous; third, traditional engineering quality inspections require inspectors to record the data of each rebound, which requires inspectors to record data while rebounding, which undoubtedly increases the labor intensity of inspectors. At the same time, because they need to record while inspecting, the recorded data may be missed, resulting in lower data accuracy. Utility Model Content
[0004] (1) Technical problems solved
[0005] In response to the deficiencies in the existing technology, the utility model provides an engineering quality inspection information collection and processing device, which solves the problems that traditional engineering quality inspection methods require manual operation by inspectors, long-term inspection will cause physical fatigue to inspectors, traditional engineering quality inspection methods require inspectors to use ladders to perform high-altitude rebound inspections according to specific needs, which is dangerous, and traditional engineering quality inspection methods require recording while rebounding, which increases the workload of inspectors and is also prone to omissions of recorded data, resulting in reduced data accuracy.
[0006] (2) Technical solution
[0007] To achieve the above objectives, the present invention is implemented through the following technical solutions: an engineering quality inspection information acquisition and processing device, comprising a machine base, a moving wheel module is provided at the bottom of the machine base, a display is provided at the top of the machine base, a signal receiver and a cooler are provided on the sides of the display from top to bottom, a slide groove is provided at the top of the machine base, a parallel movement module is slidably connected to the inner wall of the slide groove, a vertical movement module is provided at the back of the parallel movement module, a detection module is provided at the front of the vertical movement module, and a data acquisition module is provided on the surface of the detection module.
[0008] Optionally, the moving wheel module includes a moving wheel base, a fixed pulley is provided at the bottom of the moving wheel base, the top of the moving wheel base is fixedly connected to the first hole base, the inner wall of the first hole base is provided with a retraction rod, the first hole base is installed with a second hole base through the retraction rod, the top of the second hole base is fixedly connected to a top plate, the bottom of the top plate is provided with a shock-absorbing spring, the top plate is fixedly connected to the moving wheel base through the shock-absorbing spring, the top of the top plate is fixedly connected to the machine base, the inner wall of the first hole base is plugged with a first bolt, the inner wall of the second hole base is plugged with a second bolt, the front side of the retraction rod is sequentially provided with a first bolt hole and a second bolt hole from top to bottom, the second bolt hole and the first bolt are adapted to each other, and the first bolt hole and the second bolt are adapted to each other.
[0009] Optionally, the parallel movement module includes a vertical plate, a vertical hole groove is opened on the front side of the vertical plate, sliding tenons are provided on the front and back sides of the vertical plate, a first threaded hole is opened on the side of the vertical plate, a transverse screw rod is provided on the inner wall of the first threaded hole, a first rotating shaft and a first screw motor are provided at both ends of the transverse screw rod from left to right, a first hole is opened on the inner side of the slide groove, the first hole and the first rotating shaft are adapted to each other, a second threaded hole is opened on the inner side of the first screw motor, the inner wall of the second threaded hole is threadedly connected to a first bolt, and the second threaded hole is threadedly connected to the machine base through the first bolt.
[0010] Optionally, the vertical motion module includes a first platform plate, the front side of the first platform plate is fixedly connected to a parallel movement module, the top of the first platform plate is provided with a third threaded hole, the inner wall of the third threaded hole is threadedly connected to a second bolt, the third threaded hole is threadedly connected to a second screw motor through the second bolt, the inner wall of the second screw motor is provided with a vertical screw, the top of the first platform plate is provided with a second hole, the second hole and the vertical screw fit together, the surface of the vertical screw is provided with a threaded sliding block, the top of the threaded sliding block is provided with a fourth threaded hole, the fourth threaded hole and the vertical screw fit together.
[0011] Optionally, the front side of the threaded sliding block is fixedly connected to a connecting rod, one end of the connecting rod is fixedly connected to a connecting plate, the second screw motor is installed with a second platform plate through a vertical screw, a third hole is provided on the top of the second platform plate, the inner wall of the third hole is provided with a second rotating shaft, the second rotating shaft and the vertical screw are adapted to each other, the front side of the second platform plate is fixedly connected to a parallel movement module, the front side of the connecting plate is provided with a fifth threaded hole, the inner wall of the fifth threaded hole is threadedly connected to a third bolt, and the fifth threaded hole is threadedly connected to the detection module through the third bolt.
[0012] Optionally, the detection module includes an air compressor, and a first plug connector and a second plug connector are provided on the top of the air compressor from left to right, the inner wall of the first plug connector is connected to a first gas pipe, the first plug connector is connected to a third plug connector through the first gas pipe, the bottom of the third plug connector is fixedly connected to a cylinder machine, the inner wall of the second plug connector is connected to a second gas pipe, the second plug connector is connected to a fourth plug connector through the second gas pipe, and the bottom of the fourth plug connector is fixedly connected to a cylinder machine.
[0013] Optionally, a sixth threaded hole is provided on the inner wall of the cylinder machine, a fourth bolt is threadedly connected to the inner wall of the sixth threaded hole, and the sixth threaded hole is threadedly connected to the air compressor through the fourth bolt. A piston rod is provided on the inner wall of the cylinder machine, and an equipment fixing sleeve is provided at one end of the piston rod. A seventh threaded hole is provided on the surface of the equipment fixing sleeve, a fifth bolt is threadedly connected to the inner wall of the seventh threaded hole, and a rubber pad is provided through the fifth bolt. A rotating shaft base is provided on the surface of the rubber pad, and the rotating shaft base and the fifth bolt are adapted to each other. A rebound tester is installed on the inner wall of the rubber pad.
[0014] Optionally, the data acquisition module includes a data recorder, a fill light is provided on the front of the data recorder, an elastic fixing belt is provided on the top of the data recorder, and a signal transmitter is provided on the side of the data recorder.
[0015] In summary, the technical effects and advantages of the utility model are:
[0016] 1. The utility model has a reasonable structure. The device is provided with a machine base, a moving wheel module, a parallel moving module, a vertical motion module, a detection module and a data acquisition module. Through the combined use of the components of the device, when rebound detection is required, it is no longer necessary for the inspectors to manually operate the instrument to perform engineering quality inspection. Compared with the traditional engineering quality inspection method, the long-term physical fatigue of the inspectors is greatly alleviated.
[0017] 2. In the present invention, the device is provided with a parallel movement module and a vertical movement module. Through the coordinated use of the parallel movement module and the vertical movement module, the device can drive the detection instrument to move in the horizontal and vertical directions, so that rebound detection can be performed at high places as needed. This makes it unnecessary for detection personnel to use ladders to perform high-altitude rebound detection, thereby reducing the danger of high-altitude operations when detection personnel perform high-altitude detection.
[0018] 3. In the present invention, the device is provided with a data acquisition module. Through the use of the data acquisition module, the device can record the detailed data of the detection instrument in real time, and transmit the real-time data to the display of the device through the signal transmitter of the data acquisition module to facilitate the detection personnel to view the detection data. Compared with the traditional engineering quality detection method, the device no longer requires the detection personnel to record data while detecting, which undoubtedly reduces the workload of the detection personnel, and also increases the integrity of the detection data and increases the accuracy of the detection data. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 This is a schematic diagram of the structure of the utility model;
[0020] Figure 2 This is a schematic diagram of the mobile wheel module of the utility model;
[0021] Figure 3 This is a schematic diagram of the parallel moving module assembly of the present utility model;
[0022] Figure 4 This is a schematic diagram of the vertical motion module of the utility model;
[0023] Figure 5 This is a schematic diagram of the detection module of the utility model;
[0024] Figure 6 This is a schematic diagram of the data acquisition module of the utility model.
[0025] In the figure: 1. Machine base; 2. Moving wheel module; 201. Moving wheel base; 202. Fixed pulley; 203. First hole base; 204. Retracting rod; 205. Second hole base; 206. Top plate; 207. Shock-absorbing spring; 208. First plug; 209. Second plug; 3. Display; 4. Signal receiver; 5. Cooler; 6. Parallel movement module; 601. Vertical plate; 602. Horizontal screw; 603. First screw motor; 7. Vertical motion module; 701. First platform plate; 702. There are a second screw motor; 703, vertical screw; 704, threaded sliding block; 705, connecting rod; 706, connecting plate; 707, second platform plate; 8, detection module; 801, air compressor; 802, first gas pipe; 803, cylinder machine; 804, second gas pipe; 805, piston rod; 806, equipment fixing sleeve; 807, rubber cushion; 808, rebound tester; 9, data acquisition module; 901, data recorder; 902, fill light; 903, elastic fixing belt; 904, signal transmitter. DETAILED DESCRIPTION
[0026] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0027] Example: Reference Figure 1-Figure 2 The engineering quality inspection information collection and processing device shown includes a machine base 1, a moving wheel module 2 is provided at the bottom of the machine base 1, a display 3 is provided at the top of the machine base 1, and a signal receiver 4 and a cooler 5 are provided on the sides of the display 3 from top to bottom. A slide groove is provided at the top of the machine base 1, and a parallel movement module 6 is slidably connected to the inner wall of the slide groove. A vertical movement module 7 is provided on the back of the parallel movement module 6, a detection module 8 is provided on the front of the vertical movement module 7, and a data acquisition module 9 is provided on the surface of the detection module 8.
[0028] The moving wheel module 2 is welded to the bottom of the machine base 1, the display 3 is integrally connected to the machine base 1, and the signal receiver 4 and the cooler 5 are integrally connected to the display 3, the slide groove and the machine base 1 are integrally formed, and the parallel movement module 6 is slid into the slide groove of the machine base 1. The vertical movement module 7 is integrally connected to the parallel movement module 6, the detection module 8 is integrally connected to the vertical movement module 7, and the data acquisition module 9 is installed on the detection module 8 to complete the installation.
[0029] When in use, push the device so that the moving wheel module 2 starts to move, thereby driving the entire device to start moving. After the device moves to the target location, operate the parallel moving module 6 as required to drive the detection module 8 to move horizontally. After moving to the required position, stop operating the parallel moving module 6, and then operate the vertical movement module 7 to drive the detection module 8 to start vertical movement. After reaching the specified height, stop the operation, start the detection module 8 and the data acquisition module 9, start detecting the target object and start recording the detection data in real time to complete the process operation.
[0030] The device is provided with a machine base 1, a moving wheel module 2, a parallel moving module 6, a vertical motion module 7, a detection module 8 and a data acquisition module 9. Through the combined use of the components of the device, when rebound detection is required, it is no longer necessary for the inspectors to manually operate the instrument to perform engineering quality inspection. Compared with the traditional engineering quality inspection method, the long-term physical fatigue of the inspectors is greatly alleviated.
[0031] The moving wheel module 2 includes a moving wheel base 201, a fixed pulley 202 is provided at the bottom of the moving wheel base 201, a first hole base 203 is fixedly connected to the top of the moving wheel base 201, a retractable rod 204 is provided on the inner wall of the first hole base 203, a second hole base 205 is installed on the first hole base 203 through the retractable rod 204, a top plate 206 is fixedly connected to the top of the second hole base 205, a shock-absorbing spring 207 is provided at the bottom of the top plate 206, and the top plate 206 is fixedly connected to the top plate 206. The movable wheel base 201 is fixedly connected via a shock-absorbing spring 207. The top of the top plate 206 is fixedly connected to the machine base 1. A first bolt 208 is inserted into the inner wall of the first hole base 203, and a second bolt 209 is inserted into the inner wall of the second hole base 205. The front surface of the retractable rod 204 is sequentially formed with a first bolt hole and a second bolt hole from top to bottom. The second bolt hole and the first bolt 208 are mutually adapted, and the first bolt hole and the second bolt 209 are mutually adapted.
[0032] The fixed pulley 202 and the moving wheel base 201 are integrally connected, the first hole base 203 is welded to the top of the moving wheel base 201, and the top of the shock-absorbing spring 207 is welded to the bottom of the top plate 206, the bottom end of the shock-absorbing spring 207 is welded to the top of the moving wheel base 201, and the second hole base 205 is welded to the bottom of the top plate 206. The two ends of the retractable rod 204 are respectively placed into the first hole base 203 and the second hole base 205, and a bolt 208 is inserted into the first hole base 203 and passed through the second bolt hole until it passes through the other end of the first hole base 203. The second bolt 209 is inserted into the second hole base 205 and passed through the first bolt hole until it passes through the other end of the second hole base 205 to complete the installation.
[0033] During use, the inspector pushes the device body to make the fixed pulley 202 start to rotate and then drive the entire device to move. When encountering bumpy and uneven ground, the shock-absorbing spring 207 will compress or rebound according to the specific changes, thereby driving the retractable rod 204 to retract or expand, and then the moving wheel module 2 can filter shock well, thereby increasing the overall stability of the device when passing bumpy sections.
[0034] As a preferred implementation in this embodiment, Figure 3 and Figure 4 As shown, the parallel movement module 6 includes a vertical plate 601, a vertical hole groove is provided on the front side of the vertical plate 601, sliding tenons are provided on the front and back sides of the vertical plate 601, a first threaded hole is provided on the side of the vertical plate 601, a horizontal screw rod 602 is provided on the inner wall of the first threaded hole, and a first rotating shaft and a first screw motor 603 are provided at both ends of the horizontal screw rod 602 from left to right, a first hole is provided on the inner side of the slide groove, the first hole and the first rotating shaft are adapted to each other, a second threaded hole is provided on the inner side of the first screw motor 603, the inner wall of the second threaded hole is threadedly connected to the first bolt, and the second threaded hole is threadedly connected to the machine base 1 through the first bolt.
[0035] The sliding tenon and the first threaded hole are integrally formed with the vertical plate 601. First, slide the vertical plate 601 into the vertical hole groove, then place the first screw motor 603 on the side of the machine base 1, and then screw the first bolt into the second threaded hole of the first screw motor 603, and continue to rotate until it is screwed into the machine base 1. The horizontal screw 602 and the first screw motor 603 are integrally connected. Screw the horizontal screw 602 into the first threaded hole of the vertical plate 601, and continue to rotate until it is screwed into the first rotating shaft. The first rotating shaft is placed in the first hole of the machine base 1 to complete the installation.
[0036] When in use, start the first screw motor 603, so that the horizontal screw 602 starts to rotate. The horizontal screw 602 rotates in the first threaded hole of the vertical plate 601, so that the vertical plate 601 moves horizontally, thereby driving the vertical motion module 7 and the detection module 8 to move horizontally, completing the process operation.
[0037] The vertical motion module 7 includes a first platform plate 701, the front of the first platform plate 701 is fixedly connected to the parallel movement module 6, the top of the first platform plate 701 is provided with a third threaded hole, the inner wall of the third threaded hole is threadedly connected to the second bolt, the third threaded hole is threadedly connected to the second screw motor 702 through the second bolt, the inner wall of the second screw motor 702 is provided with a vertical screw 703, the top of the first platform plate 701 is provided with a second hole, the second hole and the vertical screw 703 are adapted to each other, the surface of the vertical screw 703 is provided with a threaded sliding block 704, the top of the threaded sliding block 704 is provided with a fourth threaded hole, the fourth threaded hole and the vertical screw 703 are adapted to each other, the front of the threaded sliding block 704 is fixedly connected to a connecting rod 705, one end of the connecting rod 705 is fixedly connected to a connecting plate 706, the second screw motor 702 is installed with a second platform plate 707 through the vertical screw 703, a third hole is provided on the top of the second platform plate 707, the inner wall of the third hole is provided with a second rotating shaft, the second rotating shaft and the vertical screw 703 are adapted to each other, the front of the second platform plate 707 is fixedly connected to a parallel moving module 6, a fifth threaded hole is provided on the front of the connecting plate 706, the inner wall of the fifth threaded hole is threadedly connected to a third bolt, and the fifth threaded hole is threadedly connected to the detection module 8 through the third bolt.
[0038] The first platform plate 701 and the second platform plate 707 are both welded to the back of the parallel moving module 6. The second screw motor 702 is placed on the first platform plate 701, and the second bolt is passed through the second screw motor 702 and continues to rotate until it is screwed into the first platform plate 701. The vertical screw 703 and the second screw motor 702 are connected as one piece. The connecting rod 705 is welded to the front of the threaded sliding block 704, and the connecting plate 706 is welded to the front of the connecting rod 705. The threaded sliding block 704 is screwed onto the surface of the vertical screw 703, and the second rotating shaft is placed in the third hole of the second platform plate 707. Then, one end of the vertical screw 703 is inserted into the second rotating shaft. Finally, the detection module 8 is placed on the connecting plate 706, and the third bolt is passed through the detection module 8 and continues to rotate until it is screwed into the fifth threaded hole on the connecting plate 706 to complete the installation.
[0039] When in use, the second screw motor 702 is started, so that the vertical screw 703 starts to rotate, thereby causing the threaded sliding block 704 to move vertically. When necessary, the threaded sliding block 704 is moved upward by the forward rotation of the vertical screw 703, and is moved downward by the reverse rotation of the vertical screw 703, thereby driving the detection module 8 to move vertically to complete the process operation.
[0040] The device is provided with a parallel movement module 6 and a vertical movement module 7. Through the coordinated use of the parallel movement module 6 and the vertical movement module 7, the device can drive the detection instrument to move in the horizontal and vertical directions, so that rebound detection can be performed at high places as needed. This makes it unnecessary for detection personnel to use ladders to perform high-altitude rebound detection, thereby reducing the danger of high-altitude operations when detection personnel are performing high-altitude detection.
[0041] like Figure 5 As shown, in this embodiment, the detection module 8 includes an air compressor 801, and the top of the air compressor 801 is provided with a first plug connector and a second plug connector from left to right. The inner wall of the first plug connector is plugged with a first gas pipe 802, and the first plug connector is plugged with a third plug connector through the first gas pipe 802. The bottom of the third plug connector is fixedly connected to a cylinder machine 803, and the inner wall of the second plug connector is plugged with a second gas pipe 804. The second plug connector is plugged with a fourth plug connector through the second gas pipe 804. The bottom of the fourth plug connector is fixedly connected to the cylinder machine 803, and the inner wall of the cylinder machine 803 is provided with a third plug connector. There are six threaded holes, the inner wall of the sixth threaded hole is threadedly connected with a fourth bolt, and the sixth threaded hole is threadedly connected to the air compressor 801 through the fourth bolt. The inner wall of the cylinder machine 803 is provided with a piston rod 805, and one end of the piston rod 805 is provided with an equipment fixing sleeve 806. The surface of the equipment fixing sleeve 806 is provided with a seventh threaded hole, and the inner wall of the seventh threaded hole is threadedly connected with a fifth bolt. The seventh threaded hole is provided with a rubber pad 807 through the fifth bolt, and the surface of the rubber pad 807 is provided with a rotating shaft base, and the rotating shaft base and the fifth bolt are adapted to each other. A rebound tester 808 is installed on the inner wall of the rubber pad 807.
[0042] The first and second plug connectors are both integrally connected to the air compressor 801, while the third and fourth plug connectors are both integrally connected to the cylinder machine 803. Insert the two ends of the first gas pipe 802 into the first and third plug connectors respectively, and insert the two ends of the second gas pipe 804 into the second and fourth plug connectors respectively. The piston rod 805 is integrally connected to the cylinder machine 803, and the equipment fixing sleeve 806 is welded to the piston rod 805. The shaft base and the rubber pad 807 are integrally formed. Place the rubber pad 807 into the equipment fixing sleeve 806, screw the fifth bolt into the seventh threaded hole on the equipment fixing sleeve 806, and continue to rotate until it is screwed into the shaft base of the rubber pad 807. Finally, place the rebound tester 808 into the rubber pad 807, rotate the fifth bolt so that the rubber pad 807 clamps the rebound tester 808, and complete the installation.
[0043] During use, the air compressor 801 is started to inhale air and the compressed air enters the second gas pipe 804 through the second plug connector, and then is transmitted to the fourth plug connector and then enters the cylinder machine 803. The compressed gas entering has pressure, thereby pushing the piston rod 805 forward. After the piston rod 805 moves forward, the compressed gas will enter the third plug connector, and then be transmitted to the first plug connector through the first gas pipe 802, and return to the air compressor 801. When the compressed gas returns to the air compressor 801, the piston rod 805 will also move backward, thereby driving the rebound hammer 808 to perform a squeezing and releasing action, so that the rebound hammer 808 can obtain the detection reading and complete the process operation.
[0044] like Figure 6 As shown, in this embodiment, the data acquisition module 9 includes a data recorder 901 , a fill light 902 is provided on the front of the data recorder 901 , an elastic fixing belt 903 is provided on the top of the data recorder 901 , and a signal transmitter 904 is provided on the side of the data recorder 901 .
[0045] The elastic fixing belt 903 is integrally connected to the data recorder 901, the fill light 902 is also integrally connected to the data recorder 901, and the signal transmitter 904 is also integrally connected to the data recorder 901. When in use, the elastic fixing belt 903 is first stretched open by hand, and the detection instrument is placed in the elastic fixing belt 903 with the other hand, and the hand is released, so that the elastic fixing belt 903 and the data recorder 901 are fixed to the detection instrument together, and the data recorder 901 is started to record the detection data in real time, and the real-time monitoring data is transmitted to the signal receiver 4 through the signal transmitter 904, and then transmitted to the display 3 through the signal receiver 4, so that the detection personnel can view the data intuitively. When the on-site environment is relatively dark, turn on the fill light 902 to fill in the light at the data of the detection instrument, so as to better record the detection data and complete the process operation.
[0046] The device is provided with a data acquisition module 9. Through the use of the data acquisition module 9, the device can record the detailed data of the detection instrument in real time, and transmit the real-time data to the display 3 of the device through the signal transmitter 904 of the data acquisition module 9 to facilitate the detection personnel to view the detection data. Compared with the traditional engineering quality detection method, the device no longer requires the detection personnel to record data while detecting, which undoubtedly reduces the workload of the detection personnel, and also increases the integrity of the detection data and increases the accuracy of the detection data.
[0047] This utility works as follows:
[0048] The moving wheel module 2 is welded to the bottom of the machine base 1 by welding, the display 3 is connected to the machine base 1 as a whole, and the signal receiver 4 and the cooler 5 are both connected to the display 3 as a whole, the slide groove and the machine base 1 are formed as a whole, and the parallel moving module 6 is slid into the slide groove of the machine base 1, the vertical movement module 7 is connected to the parallel moving module 6 as a whole, the detection module 8 is connected to the vertical movement module 7 as a whole, and the data acquisition module 9 is installed on the detection module 8, and the installation is completed. The fixed pulley 202 is connected to the moving wheel base 201 as a whole, the first hole base 203 is welded to the top of the moving wheel base 201, and the top of the shock-absorbing spring 207 is welded to the bottom of the top plate 206, The bottom end of the spring 207 is welded to the top of the moving wheel base 201, and the second hole base 205 is welded to the bottom of the top plate 206. The two ends of the retracting rod 204 are respectively placed in the first hole base 203 and the second hole base 205, and a bolt 208 is inserted into the first hole base 203 and passed through the second bolt hole until it passes through the other end of the first hole base 203. The second bolt 209 is inserted into the second hole base 205 and passed through the first bolt hole until it passes through the other end of the second hole base 205 to complete the installation. The sliding tenon and the first threaded hole are integrally formed with the vertical plate 601. First, slide the vertical plate 601 into the vertical hole groove, then place the first screw motor 603 on the side of the machine base 1, and then The bolt is screwed into the second threaded hole of the first screw motor 603 and continues to rotate until it is screwed into the machine base 1. The horizontal screw 602 and the first screw motor 603 are connected as a whole. Screw the horizontal screw 602 into the first threaded hole of the vertical plate 601 and continue to rotate until it is screwed into the first shaft. The first shaft is placed in the first hole of the machine base 1 to complete the installation. The first platform plate 701 and the second platform plate 707 are welded to the back of the parallel moving module 6. Place the second screw motor 702 on the first platform plate 701, and pass the second bolt through the second screw motor 702 and continue to rotate until it is screwed into the first platform plate 701. The vertical screw 703 and the second screw motor 702 are connected as a whole. Connecting rod 7 05 is welded to the front of the threaded sliding block 704, and the connecting plate 706 is welded to the front of the connecting rod 705. Screw the threaded sliding block 704 onto the surface of the vertical screw rod 703, place the second rotating shaft into the third hole of the second platform plate 707, and then insert one end of the vertical screw rod 703 into the second rotating shaft. Finally, place the detection module 8 on the connecting plate 706, pass the third bolt through the detection module 8 and continue to rotate until it is screwed into the fifth threaded hole on the connecting plate 706 to complete the installation. The first and second plug connectors are both connected to the air compressor 801, and the third and fourth plug connectors are both connected to the cylinder machine 803. Insert the two ends of the first gas pipe 802 into the first plug connector and the third plug connector respectively.Insert the two ends of the second gas pipe 804 into the second and fourth plug connectors respectively. The piston rod 805 is integrally connected to the cylinder machine 803. The equipment fixing sleeve 806 is welded to the piston rod 805. The shaft base and rubber pad 807 are integrally formed. Place the rubber pad 807 into the equipment fixing sleeve 806, screw the fifth bolt into the seventh threaded hole on the equipment fixing sleeve 806, and continue to rotate until it is screwed into the shaft base of the rubber pad 807. Finally, place the rebound tester 808 into the rubber pad 807 and rotate the fifth bolt so that the rubber pad 807 clamps the rebound tester 808. The installation is complete. The elastic fixing belt 903 is integrally connected to the data recorder 901, the fill light 902 is also integrally connected to the data recorder 901, and the signal transmitter 904 is also integrally connected to the data recorder 901. The installation is complete.
[0049] Finally, it should be noted that the above is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments or make equivalent replacements for some of the technical features therein. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A device for collecting and processing engineering quality inspection information, comprising a machine base (1), characterized in that: The bottom of the machine base (1) is provided with a moving wheel module (2), the top of the machine base (1) is provided with a display (3), the sides of the display (3) are provided with a signal receiver (4) and a cooler (5) in sequence from top to bottom, the top of the machine base (1) is provided with a slide groove, the inner wall of the slide groove is slidably connected with a parallel movement module (6), the back of the parallel movement module (6) is provided with a vertical movement module (7), the front of the vertical movement module (7) is provided with a detection module (8), and the surface of the detection module (8) is provided with a data acquisition module (9).
2. The device for collecting and processing engineering quality inspection information according to claim 1, characterized in that: The moving wheel module (2) comprises a moving wheel base (201), a fixed pulley (202) is provided at the bottom of the moving wheel base (201), a first hole base (203) is fixedly connected to the top of the moving wheel base (201), a retractable rod (204) is provided on the inner wall of the first hole base (203), a second hole base (205) is mounted on the first hole base (203) via the retractable rod (204), a top plate (206) is fixedly connected to the top of the second hole base (205), a shock-absorbing spring (207) is provided at the bottom of the top plate (206), and the The top plate (206) is fixedly connected to the moving wheel base (201) via a shock-absorbing spring (207); the top of the top plate (206) is fixedly connected to the machine base (1); the inner wall of the first hole base (203) is plugged with a first bolt (208); the inner wall of the second hole base (205) is plugged with a second bolt (209); the front surface of the retractable rod (204) is sequentially provided with a first bolt hole and a second bolt hole from top to bottom; the second bolt hole and the first bolt (208) are adapted to each other, and the first bolt hole and the second bolt (209) are adapted to each other.
3. The device for collecting and processing engineering quality inspection information according to claim 1, characterized in that: The parallel movement module (6) includes a vertical plate (601), a vertical hole groove is provided on the front of the vertical plate (601), and sliding tenons are provided on the front and back of the vertical plate (601). A first threaded hole is provided on the side of the vertical plate (601), and a transverse screw rod (602) is provided on the inner wall of the first threaded hole. The two ends of the transverse screw rod (602) are provided with a first rotating shaft and a first screw motor (603) from left to right. A first hole is provided on the inner side of the sliding groove, and the first hole and the first rotating shaft are adapted to each other. A second threaded hole is provided on the inner side of the first screw motor (603), and a first bolt is threadedly connected to the inner wall of the second threaded hole, and the second threaded hole is threadedly connected to the machine base (1) through the first bolt.
4. The device for collecting and processing engineering quality inspection information according to claim 1, characterized in that: The vertical motion module (7) includes a first platform plate (701), the front side of the first platform plate (701) is fixedly connected to the parallel movement module (6), the top of the first platform plate (701) is provided with a third threaded hole, the inner wall of the third threaded hole is threadedly connected to a second bolt, the third threaded hole is threadedly connected to a second screw motor (702) through the second bolt, the inner wall of the second screw motor (702) is provided with a vertical screw (703), the top of the first platform plate (701) is provided with a second hole, the second hole and the vertical screw (703) are adapted to each other, the surface of the vertical screw (703) is provided with a threaded sliding block (704), the top of the threaded sliding block (704) is provided with a fourth threaded hole, the fourth threaded hole and the vertical screw (703) are adapted to each other.
5. The device for collecting and processing engineering quality inspection information according to claim 4, characterized in that: The front face of the threaded sliding block (704) is fixedly connected to a connecting rod (705), one end of the connecting rod (705) is fixedly connected to a connecting plate (706), the second screw motor (702) is installed with a second platform plate (707) through a vertical screw (703), a third hole is provided on the top of the second platform plate (707), the inner wall of the third hole is provided with a second rotating shaft, the second rotating shaft and the vertical screw (703) are adapted to each other, the front face of the second platform plate (707) is fixedly connected to a parallel movement module (6), the front face of the connecting plate (706) is provided with a fifth threaded hole, the inner wall of the fifth threaded hole is threadedly connected to a third bolt, and the fifth threaded hole is threadedly connected to a detection module (8) through the third bolt.
6. The device for collecting and processing engineering quality inspection information according to claim 1, characterized in that: The detection module (8) includes an air compressor (801), wherein a first plug connector and a second plug connector are sequentially provided on the top of the air compressor (801) from left to right, a first gas pipe (802) is plugged into the inner wall of the first plug connector, a third plug connector is plugged into the first plug connector through the first gas pipe (802), a cylinder machine (803) is fixedly connected to the bottom of the third plug connector, a second gas pipe (804) is plugged into the inner wall of the second plug connector, a fourth plug connector is plugged into the second gas pipe (804), and a cylinder machine (803) is fixedly connected to the bottom of the fourth plug connector.
7. The device for collecting and processing engineering quality inspection information according to claim 6, characterized in that: A sixth threaded hole is provided on the inner wall of the cylinder machine (803), a fourth bolt is threadedly connected to the inner wall of the sixth threaded hole, and the sixth threaded hole is threadedly connected to the air compressor (801) via the fourth bolt. A piston rod (805) is provided on the inner wall of the cylinder machine (803), and an equipment fixing sleeve (806) is provided at one end of the piston rod (805). A seventh threaded hole is provided on the surface of the equipment fixing sleeve (806), a fifth bolt is threadedly connected to the inner wall of the seventh threaded hole, and a rubber pad (807) is provided on the seventh threaded hole via the fifth bolt. A rotating shaft base is provided on the surface of the rubber pad (807), and the rotating shaft base and the fifth bolt are adapted to each other. A rebound hammer (808) is installed on the inner wall of the rubber pad (807).
8. The device for collecting and processing engineering quality inspection information according to claim 1, characterized in that: The data acquisition module (9) comprises a data recorder (901), a fill light (902) is provided on the front of the data recorder (901), an elastic fixing belt (903) is provided on the top of the data recorder (901), and a signal transmitter (904) is provided on the side of the data recorder (901).