A high-strength plastic impact resistance testing device

By introducing hardness recording and detection modules, gas flow limiting and flow guide components, sliding connection blocks and buffering damping rods into the plastic impact resistance test device, the problems of low mechanical vibration and gas control accuracy are solved, and efficient and stable plastic impact resistance testing is achieved.

CN120213693BActive Publication Date: 2025-07-25SHANGHAI RISOL MOULD & PLASTIC TECH CO LTD
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Patent Information

Application Number
CN202510694795.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-28
Publication Date
2025-07-25
Estimated Expiration
2045-05-28

AI Technical Summary

Technical Problem

In existing plastic impact resistance testing devices, mechanical structure vibration and impact load affect the test stability and accuracy, low gas flow direction and conveyance control accuracy lead to uneven impact force, affecting the accuracy and repeatability of the test results.

Method used

The hardness recording control module and the hardness detection control module are used to record and analyze the impact resistance of plastics in real time, and the gas flow direction and conveying strength are controlled through the coordinated work of the gas flow limiting plate and the gas flow guide blade. The sliding connection block and buffer damping rod are combined to reduce vibration and impact loads, and gas delivery is optimized using a pump and limiting plate, and an impact damage detector is equipped to detect damage in real time.

Benefits of technology

Real-time recording and analysis of plastic impact resistance performance data is realized, the degree of automation and accuracy of tests is improved, the stability and accuracy of test results are ensured, the operation process is simplified, human intervention is reduced, and testing efficiency is improved.

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Abstract

The present invention provides a test device for the impact resistance performance of high-strength plastics. A first mounting frame is provided inside the first embedded frame body, and the side wall of the first mounting frame is attached to the inner wall of the first embedded frame body. A second mounting frame is provided inside the second embedded frame body, and the side wall of the second mounting frame is attached to the inner wall of the second embedded frame body. A hardness recording control module is provided at the bottom of the inner wall of the first mounting frame, and a hardness detection control module is provided at the bottom of the inner wall of the second mounting frame. The hardness recording control module transmits the plastic impact resistance performance data to the hardness detection control module. There are two sets of gas flow limiting plates, and a driving rod is provided between the two sets of gas flow limiting plates. A sliding bearing sleeve is provided on the outer wall of the driving rod, and a gas guide vane is provided on the sliding bearing sleeve. There are multiple groups of gas guide vanes. Through the hardness recording control module and the hardness detection control module in the first embedded frame body and the second embedded frame body, the present invention realizes the real-time recording and analysis of the plastic impact resistance performance data.
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Description

Technical Field

[0001] The present invention belongs to the technical field of plastic performance testing, and specifically relates to a device for testing the impact resistance of high-strength plastics. Background Art

[0002] Plastic products are general terms for daily necessities, industrial products, etc. processed mainly with plastics. They include products of all processes such as injection molding and thermoforming using plastics as raw materials. Plastics are a type of synthetic polymer material with plasticity. Usually, after being formed through relevant processes, it is necessary to conduct impact resistance tests on the surface of plastic products.

[0003] In the existing related technologies, the following technical problems exist:

[0004] A. In the prior art, an electric telescopic device or a hydraulic cylinder is usually used to control the lifting of the hardness detection plate to simulate different impact conditions. However, this mechanical structure is prone to vibration and impact loads during operation, affecting the stability and accuracy of the test.

[0005] B. When simulating different impact conditions, the traditional device has low control precision for the gas flow direction and conveying intensity, and it is difficult to achieve uniform and stable gas delivery, which will cause uneven impact forces on the plastic material during the test, affecting the accuracy and repeatability of the test results. Summary of the Invention

[0006] In view of the above situation, in order to overcome the defects of the prior art, the present invention provides a device for testing the impact resistance of high-strength plastics to at least partially solve the above technical problems.

[0007] The technical solution adopted by the present invention is as follows:

[0008] The present invention provides a device for testing the impact resistance of high-strength plastics, including:

[0009] A test control component, the test control component includes a first embedded frame and a second embedded frame. Inside the first embedded frame, there is a first installation frame, and the side wall of the first installation frame is attached to the inner wall of the first embedded frame. Inside the second embedded frame, there is a second installation frame, and the side wall of the second installation frame is attached to the inner wall of the second embedded frame;

[0010] At the bottom of the inner wall of the first installation frame, there is a hardness recording control module, and at the bottom of the inner wall of the second installation frame, there is a hardness detection control module. The hardness recording control module transmits plastic impact resistance performance data to the hardness detection control module;

[0011] A displacement driving component, the displacement driving component includes a gas flow limiting plate and gas guide vanes. There are two groups of the gas flow limiting plates. A driving rod is arranged between the two groups of gas flow limiting plates. A sliding bearing sleeve is arranged on the outer wall of the driving rod. The gas guide vanes are arranged on the outer wall of the sliding bearing sleeve, and there are multiple groups of the gas guide vanes;

[0012] A working frame body, the inner cavity of the working frame body is provided with plastics. An air delivery pipe is arranged above the plastics. The displacement driving component is arranged inside the air delivery pipe. The test control component is arranged on both sides of the working frame body.

[0013] In an embodiment of the present invention, sliding connection blocks are arranged inside both the first installation frame and the second installation frame. A buffer damping rod is arranged on the top surface of the sliding connection blocks. The hardness recording control module and the hardness detection control module are respectively arranged at the bottom of the sliding connection blocks;

[0014] The sliding connection block contacts the hardness recording control module, and the hardness recording control module records the plastic impact resistance performance data. The sliding connection block contacts the hardness detection control module, and the hardness detection control module receives the plastic impact resistance performance data.

[0015] In an embodiment of the present invention, a plastic placement frame is arranged inside the working frame body. The plastics are arranged inside the plastic placement frame. A connecting rod is arranged on the side wall of the sliding connection block, and the connecting rod is fixedly arranged on the outer wall of the plastic placement frame. As the plastics increase inside the plastic placement frame, the sliding connection block moves inside the first installation frame and the second installation frame, and drives the plastic placement frame to move inside the working frame body through the connecting rod.

[0016] In an embodiment of the present invention, an air extraction pump is arranged at the bottom of the working frame body. The air delivery pipe is arranged at the working end of the air extraction pump. Bearing seats are arranged on the outer walls of both gas flow limiting plates. Two ends of the driving rod are respectively arranged on the outer walls of the two bearing seats. Telescopic damping rods are arranged on both outer walls of the sliding bearing sleeve, and the other ends of the telescopic damping rods are arranged on the outer walls of the bearing seats. The gas flow limiting plates and the gas guide vanes control the gas flow direction and the gas delivery intensity;

[0017] A air extraction pump control module is arranged at the bottom of the inner wall of the second embedded frame body. The air extraction pump control module is electrically connected to the air extraction pump through a transmission wire. The bottom of the plastic placement frame contacts the air extraction pump control module, and the air extraction pump is automatically turned on to work.

[0018] In an embodiment of the present invention, a limiting plate is provided above the plastic placement frame, a hardness detection plate is provided below the limiting plate, a tensile damping rod is connected between the limiting plate and the hardness detection plate, a plurality of groups of heat dissipation through holes are opened on the bottom surface of the hardness detection plate, and an impact breakage detector is provided between the plurality of groups of heat dissipation through holes, and the impact breakage detector contacts the surface of the plastic;

[0019] At the bottom of the inner wall of the first embedded frame, there is an impact breakage detector control module, the impact breakage detector control module is electrically connected to the impact breakage detector through a transmission wire, and the bottom of the plastic placement frame contacts the impact breakage detector control module to automatically turn on the operation of the impact breakage detector.

[0020] In an embodiment of the present invention, shock damping rods are provided around the bottom of the inner wall of the working frame, and the four shock damping rods are all provided at the bottom of the plastic placement frame.

[0021] In an embodiment of the present invention, fixing columns are provided around the bottom of the working frame, protective plates are provided on the bottom surfaces of the four fixing columns, and anti-slip patterns are provided on the bottom surfaces of the four protective plates.

[0022] In an embodiment of the present invention, a control panel is provided on the outer wall of the working frame, and the control panel is electrically connected to the air extraction pump and the impact breakage detector through transmission wires respectively.

[0023] The beneficial effects of the technical solution of the present invention are as follows:

[0024] Through the hardness record control module and the hardness detection control module in the first embedded frame and the second embedded frame, the real-time recording and analysis of the plastic impact resistance performance data are realized. When the sliding connection block moves in the plastic placement frame, it contacts the hardness record control module and the hardness detection control module respectively, ensuring the continuity and accuracy of the test data, improving the automation degree of the test, reducing human intervention, and enhancing the test efficiency.

[0025] Through the coordinated work of the gas flow limiting plate and the gas guiding blades, the flow direction and conveying intensity of the gas are controlled, different impact conditions are simulated, the driving rod and the sliding bearing sleeve ensure the stability of gas transmission, and the telescopic damping rod effectively reduces the vibration and impact load of the driving rod during movement, further improving the accuracy and stability of the test.

[0026] The gas is transported to the displacement driving component through a gas pipeline. The air extraction pump control module can automatically turn on or off the air extraction pump according to the position of the plastic placement frame, realizing the precise transportation and control of the gas, simplifying the operation process, and improving the automation degree and accuracy of the test. The limiting plate is connected to the hardness detection plate through a stretching damping rod, which can effectively absorb the energy generated during the impact process and reduce the impact load on the hardness detection plate. The heat dissipation through holes on the bottom surface of the hardness detection plate can effectively dissipate the heat generated during the test, preventing the test results from being affected by excessive temperature and ensuring the stability and accuracy of the test.

[0027] By directly contacting the plastic surface with the impact damage detector, the damage situation of the plastic during the impact process can be detected in real time, and the detection data is transmitted to the impact damage detector control module. The impact damage detector control module is electrically connected to the impact damage detector through a transmission wire to realize the automatic control of the impact damage detector and ensure the real-time nature and accuracy of the test data.

[0028] Additional aspects and advantages of the present invention will be given in part in the following description, become apparent in part from the following description, or be learned through the practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] The above and / or additional aspects and advantages of the present invention will become apparent and be readily understood from the following description of the embodiments in conjunction with the drawings, wherein:

[0030] Figure 1 is a schematic structural diagram of the test control component of the high-strength plastic impact resistance test device proposed in the embodiment of the present invention;

[0031] Figure 2 is a schematic structural diagram of the displacement driving component of the high-strength plastic impact resistance test device proposed in the embodiment of the present invention;

[0032] Figure 3 is a schematic structural diagram of the high-strength plastic impact resistance test device proposed in the embodiment of the present invention;

[0033] Figure 4 is a top view of the high-strength plastic impact resistance test device proposed in the embodiment of the present invention;

[0034] Figure 5 is a side view of the high-strength plastic impact resistance test device proposed in the embodiment of the present invention;

[0035] Figure 6 is a front view of the high-strength plastic impact resistance test device proposed in the embodiment of the present invention;

[0036] Figure 7 is Figure 4 a cross-sectional view along the cutting line A-A in

[0037] Figure 8 is Figure 5 a sectional view along cutting plane line B-B in

[0038] Figure 9 is Figure 6 a sectional view along cutting plane line C-C in

[0039] In the figure: 1. Test control component; 2. First embedded frame; 3. First mounting frame; 4. Sliding connection block; 5. Connecting rod; 6. Buffer damping rod; 7. Hardness recording control module; 8. Impact damage detector control module; 9. Second embedded frame; 10. Second mounting frame; 11. Hardness detection control module; 12. Air pump control module; 13. Displacement driving component; 14. Air delivery pipe; 15. Gas flow limiting plate; 16. Driving rod; 17. Sliding bearing sleeve; 18. Telescopic damping rod; 19. Bearing seat; 20. Gas guide vane; 21. Working frame; 22. Control panel; 23. Fixed column; 24. Protection plate; 25. Air pump; 26. Limiting plate; 27. Tensile damping rod; 28. Hardness detection plate; 29. Heat dissipation through hole; 30. Impact damage detector; 31. Plastic placement frame; 32. Shock absorption damping rod. Detailed implementation manners

[0040] The embodiments of the present invention will be described in detail below. The examples of the embodiments are shown in the drawings, where the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below by referring to the drawings are exemplary and are intended to explain the present invention, and should not be construed as a limitation to the present invention.

[0041] A high-strength plastic impact resistance testing device according to an embodiment of the present invention will be described below with reference to the drawings.

[0042] As Figures 1 to 9 shown, an embodiment of the present invention provides a high-strength plastic impact resistance testing device, including: a test control component 1. The test control component 1 includes a first embedded frame 2 and a second embedded frame 9. A first mounting frame 3 is provided inside the first embedded frame 2, and the side wall of the first mounting frame 3 is attached to the inner wall of the first embedded frame 2. A second mounting frame 10 is provided inside the second embedded frame 9, and the side wall of the second mounting frame 10 is attached to the inner wall of the second embedded frame 9.

[0043] A hardness recording control module 7 is provided at the bottom of the inner wall of the first mounting frame 3, and a hardness detection control module 11 is provided at the bottom of the inner wall of the second mounting frame 10. The hardness recording control module 7 transmits plastic impact resistance performance data to the hardness detection control module 11.

[0044] The displacement driving assembly 13, the displacement driving assembly 13 includes a gas flow limiting plate 15 and gas guide vanes 20. There are two sets of gas flow limiting plates 15. A driving rod 16 is arranged between the two sets of gas flow limiting plates 15. A sliding bearing sleeve 17 is arranged on the outer wall of the driving rod 16. The gas guide vanes 20 are arranged on the outer wall of the sliding bearing sleeve 17, and there are multiple sets of gas guide vanes 20.

[0045] The working frame body 21, the inner cavity of the working frame body 21 is provided with plastic. Above the plastic, there is an air delivery pipe 14. The displacement driving assembly 13 is arranged inside the air delivery pipe 14. The test control assembly 1 is arranged on both sides of the working frame body 21.

[0046] In the specific application of the embodiment of the present invention, a first installation frame 3 is configured inside the first embedded frame body 2. The side wall of the first installation frame 3 is closely attached to the inner wall of the first embedded frame body 2, which not only enhances the overall stability but also facilitates subsequent installation and maintenance. Similarly, a second installation frame 10 is also arranged inside the second embedded frame body 9, and its side wall is also closely attached to the inner wall of the second embedded frame body 9, which can effectively prevent the loosening or damage of components caused by vibration or external factors. At the bottom of the inner wall of the first installation frame 3, a hardness recording control module 7 is arranged, which is responsible for recording the hardness change of the plastic before and after being impacted. At the same time, a hardness detection control module 11 is arranged at the bottom of the inner wall of the second installation frame 10, which receives the data from the hardness recording control module 7 and further processes this information to evaluate the impact resistance of the plastic. The data transmission between the two makes the test process automated, reduces the influence of human intervention, and thus improves the reliability and consistency of the test results.

[0047] There are two sets of gas flow limiting plates 15 in total, which are connected by a driving rod 16. A sliding bearing sleeve 17 is sleeved on the outer surface of the driving rod 16, which not only ensures that the driving rod 16 can move smoothly between the flow limiting plates but also avoids unnecessary frictional losses. In addition, multiple sets of gas guide vanes 20 are arranged on the outer wall of the sliding bearing sleeve 17. The gas guide vanes 20 can guide the gas flow direction, and thus affect the position movement of the plastic sample, which is convenient for simulating the impact force under the actual use environment.

[0048] Before the formal start of the test, it is first necessary to place the plastic sample to be tested at the designated position within the working frame 21 and ensure that the sample is stable and immobile. When everything is ready, start the displacement drive assembly 13 to operate. The gas flow limiting plate 15 and the gas guide vane 20 work together to generate a specific pressure distribution by adjusting the gas flow path. Then, the sliding bearing sleeve 17 and the gas guide vane 20 move up and down along the length of the drive rod 16 under the drive of the air flow. Since the sliding bearing sleeve 17 is installed outside the drive rod 16, there is almost no frictional resistance during the entire movement process, ensuring the smoothness and precision of the movement. As the displacement drive assembly 13 adjusts the flow intensity of the gas, it will then drive the hardness detection plate 28 to gradually approach the plastic sample until it reaches the preset position (contacting the surface of the plastic sample).

[0049] During this period, the hardness recording control module 7 monitors the hardness change on the surface of the plastic sample in real time and sends the collected data to the hardness detection control module 11 in a timely manner. After receiving the data, the hardness detection control module 11 analyzes and processes it, and calculates key indicators such as the hardness loss rate of the plastic sample.

[0050] Once a complete impact test is completed, the system will automatically stop running and enter the data analysis stage. During this stage, the hardness detection control module will comprehensively analyze the collected data and generate a detailed test report.

[0051] In a possible implementation manner, sliding connection blocks 4 are provided inside both the first installation frame 3 and the second installation frame 10. A buffer damping rod 6 is provided on the top surface of the sliding connection block 4. The hardness recording control module 7 and the hardness detection control module 11 are respectively arranged at the bottom of the sliding connection block 4.

[0052] The sliding connection block 4 contacts the hardness recording control module 7, and the hardness recording control module 7 records the plastic impact resistance performance data. The sliding connection block 4 contacts the hardness detection control module 11, and the hardness detection control module 11 receives the plastic impact resistance performance data.

[0053] In the specific application of the embodiment of the present invention, sliding connection blocks 4 are provided inside both the first installation frame 3 and the second installation frame 10. A buffer damping rod 6 is provided on the top surface of the sliding connection block 4. The buffer damping rod 6 can effectively absorb the energy generated during the impact process, reduce the impact load on the equipment components caused by the plastic weight, thereby improving the stability and accuracy of the test. The hardness recording control module 7 and the hardness detection control module 11 are provided at the bottom of the sliding connection block 4, which are respectively used to record and detect the hardness change data of the plastic during the impact process.

[0054] During the test, the sliding connection block 4 is in direct contact with the hardness recording control module 7. When the plastic material is impacted, the sliding connection block 4 displaces under the action of the buffer damping rod 6 and transmits the impact force to the hardness recording control module 7. The hardness recording control module 7 automatically operates, and it records in real time the hardness change data of the plastic during the impact process and transmits these data to the hardness detection control module 11. After receiving the data, the hardness detection control module 11 conducts further analysis and processing to obtain the impact resistance performance index of the plastic material.

[0055] The sliding connection block 4 not only realizes the effective transmission of the impact force, but also reduces the vibration and impact load on the test device during the impact process through the damping action of the buffer damping rod 6, ensuring the smoothness of the test process and the accuracy of the data. At the same time, the coordinated work of the hardness recording control module 7 and the hardness detection control module 11 realizes the real-time recording and analysis of the plastic impact resistance performance data, improving the test efficiency and data reliability.

[0056] In addition, the damping characteristics of the buffer damping rod 6 optimize the absorption and transmission process of the impact energy, ensuring that the test device can still maintain high precision and stability during long-term use. The integrated setting of the hardness recording control module 7 and the hardness detection control module 11 simplifies the structure of the test device, reduces the manufacturing cost, and at the same time improves the processing speed and accuracy of the test data.

[0057] In a possible implementation manner, a plastic placement frame 31 is provided inside the working frame body 21, and the plastic is placed inside the plastic placement frame 31. A connecting rod 5 is provided on the side wall of the sliding connection block 4, and the connecting rod 5 is fixedly provided on the outer wall of the plastic placement frame 31. As the plastic increases inside the plastic placement frame 31, the sliding connection block 4 moves inside the first mounting frame 3 and the second mounting frame 10, driving the plastic placement frame 31 to move inside the working frame body 21 through the connecting rod 5. Shock-absorbing damping rods 32 are provided around the bottom of the inner wall of the working frame body 21, and all four shock-absorbing damping rods 32 are provided at the bottom of the plastic placement frame 31; fixing columns 23 are provided around the bottom of the working frame body 21, and protective plates 24 are provided on the bottom surfaces of all four fixing columns 23, and anti-slip patterns are provided on the bottom surfaces of all four protective plates 24.

[0058] In the specific application of the embodiments of the present invention, the plastic placement frame 31 is used to fix the plastic material to be tested to ensure its stability during the test. The outer wall of the plastic placement frame 31 is fixedly connected to the sliding connection block 4 through the connecting rod 5. The sliding connection block 4 is arranged inside the first installation frame 3 and the second installation frame 10. As the plastic in the plastic placement frame 31 increases, the sliding connection block 4 moves inside the first installation frame 3 and the second installation frame 10, and drives the plastic placement frame 31 to move inside the working frame body 21 through the connecting rod 5, so that the plastic placement frame 31 can automatically adjust its position according to the weight of the plastic, ensuring uniform stress on the plastic during the test, thereby improving the accuracy and reliability of the test.

[0059] Shock-absorbing damping rods 32 are provided around the bottom of the inner wall of the working frame body 21. All four shock-absorbing damping rods 32 are arranged at the bottom of the plastic placement frame 31. The shock-absorbing damping rods 32 can effectively absorb the vibration and impact energy generated during the test, reduce the impact load on the working frame body 21 and the plastic placement frame 31, thereby improving the stability and accuracy of the test.

[0060] Fixing columns 23 are provided around the bottom of the working frame body 21. Protective plates 24 are provided on the bottom surfaces of the four fixing columns 23. Anti-slip patterns are provided on the bottom surfaces of the protective plates 24. The fixing columns 23 enhance the overall stability of the working frame body 21, preventing the device from tilting or moving during the test. The anti-slip patterns on the protective plates 24 further improve the anti-slip performance of the device, ensuring that the device can be firmly fixed on the workbench surface during the test and avoiding affecting the test results due to sliding.

[0061] In a possible implementation manner, an air pump 25 is provided at the bottom of the working frame body 21. An air delivery pipe 14 is arranged at the working end of the air pump 25. Bearing seats 19 are provided on the outer walls of both gas flow limiting plates 15. Both ends of the driving rod 16 are arranged on the outer walls of the two bearing seats 19. Telescopic damping rods 18 are provided on the outer walls of both sides of the sliding bearing sleeve 17. The other ends of the telescopic damping rods 18 are arranged on the outer walls of the bearing seats 19. The gas flow limiting plates 15 and the gas guide vanes 20 control the gas flow direction and the gas delivery intensity.

[0062] An air pump control module 12 is provided at the bottom of the inner wall of the second embedded frame 9. The air pump control module 12 is electrically connected to the air pump 25 through a transmission wire for electrical control. The bottom of the plastic placement frame 31 touches the air pump control module 12, automatically turning on the air pump 25 to work.

[0063] In the specific application of the embodiment of the present invention, the working end of the air extraction pump 25 is connected to the air delivery pipe 14. Through the operation of the air extraction pump 25, the transportation and control of gas are realized. A displacement driving assembly 13 is arranged inside the air delivery pipe 14. The displacement driving assembly 13 includes a gas flow limiting plate 15 and a gas guiding vane 20. Two gas flow limiting plates 15 are clamped inside the air delivery pipe 14. A driving rod 16 is arranged between the two gas flow limiting plates 15. Bearing seats 19 are arranged on the outer walls of both gas flow limiting plates 15. The two ends of the driving rod 16 are respectively arranged on the outer walls of the two bearing seats 19 to ensure that the sliding bearing sleeve 17 and the gas guiding vane 20 move smoothly along the outer wall of the driving rod 16. Telescopic damping rods 18 are arranged on the outer walls of both sides of the sliding bearing sleeve 17. The other ends of the telescopic damping rods 18 are arranged on the outer walls of the bearing seats 19. Through the damping effect of the telescopic damping rods 18, the vibration and impact load during the movement of the driving rod 16 are reduced, thereby improving the stability and accuracy of the test. The coordinated operation of the gas flow limiting plate 15 and the gas guiding vane 20 can accurately control the gas flow direction and transportation intensity, thereby realizing the precise adjustment of the displacement of the hardness detection plate 28 (pushing the hardness detection plate 28 up and down according to the air flow intensity, adjusting the distance between the hardness detection plate 28 and the plastic sample, and the extrusion force of the hardness detection plate 28 on the plastic sample under the action of different air flow intensities), so as to simulate different impact conditions through different extrusion forces.

[0064] At the bottom of the inner wall of the second embedded frame 9, an air extraction pump control module 12 is arranged. The air extraction pump control module 12 is electrically connected to the air extraction pump 25 through a transmission wire to achieve precise control of the air extraction pump 25. The bottom of the plastic placement frame 31 contacts the air extraction pump control module 12. When the plastic placement frame 31 moves inside the working frame 21, the air extraction pump control module 12 can automatically detect the position of the plastic placement frame 31 and automatically turn on or off the air extraction pump 25 according to the test requirements. The coordinated operation of the air extraction pump control module 12 and the air extraction pump 25 enables the gas transportation process to be adjusted according to the test requirements. The gas flow limiting plate 15 and the gas guiding vane 20 further optimize the gas flow direction and transportation intensity to ensure that the plastic material can receive uniform impact force during the test. The damping effect of the telescopic damping rod 18 reduces the vibration and impact load during the movement of the driving rod 16 and improves the stability and accuracy of the test.

[0065] In a possible implementation manner, a limiting plate 26 is arranged above the plastic placement frame 31, a hardness detection plate 28 is arranged below the limiting plate 26, a tensile damping rod 27 is connected between the limiting plate 26 and the hardness detection plate 28, a plurality of groups of heat dissipation through holes 29 are formed on the bottom surface of the hardness detection plate 28, and an impact damage detector 30 is arranged between the plurality of groups of heat dissipation through holes 29. The impact damage detector 30 contacts the surface of the plastic.

[0066] At the bottom of the inner wall of the first embedded frame body 2, there is an impact damage detector control module 8. The impact damage detector control module 8 is electrically connected to the impact damage detector 30 through a transmission wire. The bottom of the plastic placement frame 31 contacts the impact damage detector control module 8, and the impact damage detector 30 is automatically turned on to work.

[0067] In the specific application of the embodiment of the present invention, a hardness detection plate 28 is provided below the limiting plate 26. The limiting plate 26 and the hardness detection plate 28 are connected by a stretching damping rod 27. The stretching damping rod 27 can effectively absorb the energy generated during the impact process, reduce the impact load on the hardness detection plate 28, and thus improve the stability and accuracy of the test. A plurality of groups of heat dissipation through holes 29 are provided on the bottom surface of the hardness detection plate 28. The heat dissipation through holes 29 can effectively dissipate the heat generated during the test process, prevent the test results from being affected due to excessive temperature. An impact damage detector 30 is provided between the plurality of groups of heat dissipation through holes 29. The impact damage detector 30 directly contacts the surface of the plastic, can detect the damage condition of the plastic during the impact process in real time, and transmits the detection data to the impact damage detector control module 8.

[0068] At the bottom of the inner wall of the first embedded frame body 2, there is an impact damage detector control module 8. The impact damage detector control module 8 is electrically connected to the impact damage detector 30 through a transmission wire to achieve precise control of the impact damage detector 30. The bottom of the plastic placement frame 31 contacts the impact damage detector control module 8. When the plastic placement frame 31 moves inside the working frame body 21, the impact damage detector control module 8 can automatically detect the position of the plastic placement frame 31 and automatically turn on or off the impact damage detector 30 according to the test requirements. The coordinated work of the impact damage detector 30 and the impact damage detector control module 8 enables the damage condition of the plastic during the impact process to be detected and recorded in real time. The damping effect of the stretching damping rod 27 reduces the vibration and impact load of the hardness detection plate 28 during the impact process, and improves the stability and accuracy of the test. The heat dissipation through holes 29 effectively dissipate the heat generated during the test process, prevent the test results from being affected due to excessive temperature, and the design of the limiting plate 26 ensures the stability of the hardness detection plate 28 during the test process and prevents it from being displaced due to excessive impact force.

[0069] In a possible implementation manner, a control panel 22 is provided on the outer wall of the working frame body 21. The control panel 22 is electrically connected to the air extraction pump 25 and the impact damage detector 30 through transmission wires respectively.

[0070] In the specific application of the embodiment of the present invention, the air extraction pump 25 and the impact damage detector 30 adopted by this device are both mature existing technologies, and the working principles of the air extraction pump 25 and the impact damage detector 30 are also well known to those skilled in the art, so no more description will be given here.

[0071] When the present invention is in specific use, when the plastic material is placed inside the plastic placement frame 31, the device starts to operate. The plastic placement frame 31 is located in the inner cavity of the working frame body 21, and shock-absorbing damping rods 32 are provided around its bottom, which can effectively absorb the vibration and impact energy generated during the test and ensure the stability of the test. As the plastic material increases, the sliding connection block 4 moves inside the first installation frame 3 and the second installation frame 10, and drives the plastic placement frame 31 to perform displacement adjustment inside the working frame body 21 through the connecting rod 5 to adapt to plastic materials of different weights.

[0072] Specifically, the test control assembly 1 includes a first embedded frame body 2 and a second embedded frame body 9, which are respectively provided with a hardness recording control module 7 and a hardness detection control module 11. When the plastic placement frame 31 moves, the sliding connection block 4 contacts the hardness recording control module 7, records the impact resistance performance data of the plastic, and transmits the data to the hardness detection control module 11 for analysis and processing.

[0073] Specifically, an air pump 25 is provided at the bottom of the working frame body 21. The air pump 25 transports gas to the displacement driving assembly 13 through the air delivery pipe 14. The air pump control module 12 is provided at the bottom of the inner wall of the second embedded frame body 9 and is electrically connected to the air pump 25 through a conducting wire. When the plastic placement frame 31 moves to a specific position, the air pump control module 12 automatically detects and turns on the air pump 25. The displacement driving assembly 13 is located inside the air delivery pipe 14 and includes a gas flow limiting plate 15 and gas guide vanes 20. Through the coordinated work of the gas flow limiting plate 15, the driving rod 16, and the sliding bearing sleeve 17, the gas guide vanes 20 can guide the gas to flow along the length path of the driving rod 16. The arrangement of the gas guide vanes 20 can determine the path and speed of the gas when flowing through. By reasonably arranging the gas guide vanes 20, it is ensured that the gas distribution around the sliding bearing sleeve 17 is more uniform, thereby avoiding the situation of too large or too small local air flow.

[0074] With the operation of the displacement driving assembly 13, the gas guide vanes 20 can dynamically adjust their positions as the sliding bearing sleeve 17 moves up and down on the outer wall of the driving rod 16, thereby realizing the real-time control of the gas flow path. The change in gas intensity affects the impact force of the hardness detection plate 28 on the plastic sample. The gas flow limiting plate 15 limits the flow intensity of the gas, and the gas guide vanes 20 guide the flow direction of the gas. The two cooperate with each other to achieve the control of gas intensity.

[0075] The telescopic damping rods 18 are provided on both sides of the sliding bearing sleeve 17, which can reduce the vibration and impact load of the driving rod 16 during the movement process, improve the stability and accuracy of the test, and the gas guide vanes 20 further optimize the gas flow direction to ensure that the plastic material receives a uniform impact force during the test.

[0076] Specifically, a limiting plate 26 is provided above the plastic placement frame 31. The limiting plate 26 is connected to the hardness detection plate 28 through a tensile damping rod 27. The tensile damping rod 27 can absorb the energy generated during the impact process and reduce the impact load on the hardness detection plate 28. Heat dissipation through holes 29 are formed in the bottom surface of the hardness detection plate 28, which can effectively dissipate the heat generated during the test and prevent the test results from being affected due to excessive temperature. The impact damage detector 30 is arranged between the heat dissipation through holes 29, directly contacts the plastic surface, and real-time detects the damage condition of the plastic during the impact process, and transmits the detection data to the impact damage detector control module 8. The impact damage detector control module 8 is arranged at the bottom of the inner wall of the first embedded frame 2 and is electrically connected to the impact damage detector 30 through a transmission wire to realize the automatic control of the impact damage detector 30.

[0077] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device.

[0078] The above describes the present invention and its implementation manners. Such description is not restrictive. What is shown in the drawings is only one of the implementation manners of the present invention, and the actual structure is not limited thereto. All in all, if those of ordinary skill in the art are inspired by it and design similar structural manners and embodiments without creative efforts without departing from the purpose of the present invention, they shall fall within the protection scope of the present invention.

Claims

1. A high-strength plastic impact resistance testing device, characterized in that Including: A test control component (1), the test control component (1) includes a first embedded frame (2) and a second embedded frame (9), a first mounting frame (3) is provided inside the first embedded frame (2), the side wall of the first mounting frame (3) is attached to the inner wall of the first embedded frame (2), a second mounting frame (10) is provided inside the second embedded frame (9), and the side wall of the second mounting frame (10) is attached to the inner wall of the second embedded frame (9); A working frame (21), the inner cavity of the working frame (21) is provided with plastic, an air delivery pipe (14) is provided above the plastic, and the test control component (1) is provided on both sides of the working frame (21); A displacement driving component (13), the displacement driving component (13) includes a gas flow limiting plate (15) and gas guide vanes (20), there are two groups of the gas flow limiting plates (15), a driving rod (16) is provided between the two groups of the gas flow limiting plates (15), a sliding bearing sleeve (17) is provided on the outer wall of the driving rod (16), the gas guide vanes (20) are provided on the outer wall of the sliding bearing sleeve (17), there are multiple groups of the gas guide vanes (20), and the displacement driving component (13) is provided inside the air delivery pipe (14); A hardness recording control module (7) is provided at the bottom of the inner wall of the first mounting frame (3), a hardness detection control module (11) is provided at the bottom of the inner wall of the second mounting frame (10), and the hardness recording control module (7) transmits the plastic impact resistance performance data to the hardness detection control module (11); Sliding connection blocks (4) are provided inside both the first mounting frame (3) and the second mounting frame (10), a buffer damping rod (6) is provided on the top surface of the sliding connection block (4), and the hardness recording control module (7) and the hardness detection control module (11) are respectively provided at the bottom of the sliding connection block (4); The sliding connection block (4) contacts the hardness recording control module (7), the hardness recording control module (7) records the plastic impact resistance performance data, the sliding connection block (4) contacts the hardness detection control module (11), and the hardness detection control module (11) receives the plastic impact resistance performance data; A plastic placement frame (31) is provided inside the working frame (21), the plastic is provided inside the plastic placement frame (31), a connecting rod (5) is provided on the side wall of the sliding connection block (4), the connecting rod (5) is fixedly provided on the outer wall of the plastic placement frame (31), as the plastic in the plastic placement frame (31) increases, the sliding connection block (4) moves inside the first mounting frame (3) and the second mounting frame (10), and drives the plastic placement frame (31) to move inside the working frame (21) through the connecting rod (5); An air extraction pump (25) is provided at the bottom of the working frame body (21). The air delivery pipe (14) is arranged at the working end of the air extraction pump (25). Bearing seats (19) are provided on the outer walls of both of the two gas flow limiting plates (15). The two ends of the driving rod (16) are respectively arranged on the outer walls of the two bearing seats (19). Telescopic damping rods (18) are provided on the outer walls of both sides of the sliding bearing sleeve (17). The other ends of the telescopic damping rods (18) are arranged on the outer walls of the bearing seats (19). The gas flow limiting plates (15) and the gas guide vanes (20) control the gas flow direction and the gas delivery intensity; An air extraction pump control module (12) is provided at the bottom of the inner wall of the second embedded frame body (9). The air extraction pump control module (12) is electrically connected to the air extraction pump (25) through a conducting wire for electrical control. The bottom of the plastic placement frame (31) contacts the air extraction pump control module (12), and the air extraction pump (25) is automatically turned on to work.

2. The high-strength plastic impact resistance testing device according to claim 1, characterized in that, A limiting plate (26) is provided above the plastic placement frame (31). A hardness detection plate (28) is provided below the limiting plate (26). A tensile damping rod (27) is connected between the limiting plate (26) and the hardness detection plate (28). A plurality of groups of heat dissipation through holes (29) are formed in the bottom surface of the hardness detection plate (28). An impact damage detector (30) is arranged between the plurality of groups of heat dissipation through holes (29). The impact damage detector (30) contacts the surface of the plastic; An impact damage detector control module (8) is provided at the bottom of the inner wall of the first embedded frame body (2). The impact damage detector control module (8) is electrically connected to the impact damage detector (30) through a conducting wire for electrical control. The bottom of the plastic placement frame (31) contacts the impact damage detector control module (8), and the impact damage detector (30) is automatically turned on to work.

3. The high-strength plastic impact resistance testing device according to claim 1, characterized in that, Shock damping rods (32) are provided around the bottom of the inner wall of the working frame body (21). The four shock damping rods (32) are all arranged at the bottom of the plastic placement frame (31).

4. The high-strength plastic impact resistance testing device according to claim 1, wherein Fixed columns (23) are provided around the bottom of the working frame body (21). Protective plates (24) are provided on the bottom surfaces of the four fixed columns (23). Anti-slip patterns are provided on the bottom surfaces of the four protective plates (24).

5. The high-strength plastic impact resistance testing device according to claim 1, characterized in that, A control panel (22) is provided on the outer wall of the working frame body (21). The control panel (22) is electrically connected to the air extraction pump (25) and the impact damage detector (30) respectively through conducting wires for electrical control.

Citation Information

Patent Citations

  • Hardness detection equipment for plastic product

    CN115791369A

  • Device for detecting impact strength of automotive trim plastic part

    CN118010535A