Computer hardware detection device and detection method thereof
By designing four sets of continuous clamping components and an automatic dropping component, the problem of having to stop working when changing test samples in existing technologies is solved, realizing continuous operation of computer hardware testing and improving testing efficiency and automation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- FOSHAN SIJIN TECH CO LTD
- Filing Date
- 2023-12-25
- Publication Date
- 2026-04-28
AI Technical Summary
Existing computer hardware testing devices require stopping operation when changing test samples, resulting in long testing times and making continuous testing impossible.
It employs four sets of continuous clamping components and an automatic dropping component. The continuous clamping components are rotated to clamp four computer hardware devices simultaneously, and the automatic dropping component automatically releases the clamps. Combined with the trimming control component, it enables rapid replacement and trimming.
It enables continuous operation of computer hardware testing, improves testing efficiency, saves time and manpower, and enhances the automation level of the testing device.
Smart Images

Figure CN121933347A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of computer hardware testing technology, specifically to a computer hardware testing device and its testing method. Background Technology
[0002] The motherboard is one of many computer hardware components. After production, computer motherboards need to be tested for their resistance to pressure and bending to determine if the manufacturing process is up to standard. However, current testing devices on the market still have some problems in use, such as:
[0003] The prior art, disclosed in patent publication number "CN115876600A", is titled "A Test Device for the Fracture Resistance and Pressure Resistance of Computer Hardware Motherboards". It discloses that one end of the support rod is hinged to the outer wall of the second sleeve of the test pressure plate assembly, and the other end is hinged to the upper end of the vertical plate of the motherboard clamping seat. When the second sleeve moves downward, it causes the upper end of the support rod to move downward, and the lower end of the support rod generates a downward and outward force on the motherboard clamping seat, thereby allowing the motherboard clamping seat to rotate. The lower end of the tightening bolt is a smooth spherical surface that presses against the surface of the test sample, allowing the test sample to move relative to the tightening bolt. When the motherboard clamping seat rotates, the clamping portions at both ends of the test sample also change, thereby lifting the clamped sample upward and testing the fracture resistance and pressure resistance of the lower surface of the test sample.
[0004] In the aforementioned prior art, the motherboard clamp is used to clamp and test the sample. Since only one set of motherboard clamps is provided, the motherboard clamp can only clamp one sample at a time. Therefore, when testing one sample and another sample needs to be tested, one sample needs to be removed from the motherboard clamp before the other sample can be installed. This process of changing samples repeatedly requires the entire computer hardware testing device to stop working. As a result, the computer hardware testing device takes a long time to test multiple samples and cannot continuously test samples, making it time-consuming to test a batch of samples. Summary of the Invention
[0005] The purpose of this invention is to provide a computer hardware testing device and method to solve the problem mentioned in the background art: when testing another test sample, it is necessary to remove one test sample from the motherboard holder and then install another test sample. This process of repeatedly changing test samples requires the entire computer hardware testing device to stop working, which results in a long time consumption when testing multiple samples and an inability to continuously test test samples, thus making the testing of a batch of test samples time-consuming.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a computer hardware testing device, comprising a testing platform for placing computer hardware, and support columns for improving stability are symmetrically installed at the bottom of the testing platform.
[0007] The testing component, located at the rear of the testing platform, is used to test the compressive and bending resistance of computer hardware.
[0008] The continuous clamping assembly has four sets, which are symmetrically arranged above the detection platform. It can clamp four computer hardware devices at the same time, which facilitates continuous and rapid detection.
[0009] An automatic dropping component is located below the mounting plate, which facilitates the separation of the first clamping mechanism from the second clamping mechanism, releasing the clamp on the computer hardware and allowing the computer hardware to drop automatically.
[0010] The trimming control component, located on the lower left side of the testing platform, is used to trim the computer hardware after testing.
[0011] Preferably, the detection component includes an electric push rod installed on the rear side of the detection platform, and the output end of the electric push rod is screwed to a detection plate, which applies pressure to the computer hardware by moving the detection plate.
[0012] The above-described structure enables the testing board to perform effective computer hardware testing.
[0013] Preferably, each set of continuous clamping components includes two first clamping mechanisms and two second clamping mechanisms, and the first clamping mechanisms are arranged in an "L" shape. The first clamping mechanisms and the second clamping mechanisms are arranged in a one-to-one correspondence. The shortest distance between the two first clamping mechanisms is greater than the length of the detection plate, and the first clamping mechanisms are installed on the outside of the mounting plate by mounting rods.
[0014] With the above-described structure, the mounting plate can drive the first clamping mechanism to rotate.
[0015] Preferably, the automatic falling assembly includes a fixed plate disposed below the mounting plate, and a push rod disposed close to the outside of the fixed plate. Two adjusting rods are symmetrically mounted on the outer end of the push rod, and the outer end of the adjusting rod is connected to the second clamping mechanism. The second clamping mechanism forms a sliding structure with the detection platform through the push rod and the mounting plate, and the mounting plate is disposed above the detection platform.
[0016] With the above structure, the distance between the second clamping mechanism and the first clamping mechanism can be adjusted by sliding, which facilitates the automatic falling of the computer hardware.
[0017] Preferably, a control rod is fixed in the middle of the mounting plate, and a fixing plate is provided through the outer side of the control rod. The bottom of the fixing plate is mounted on the upper surface of the detection platform by a vertical rod, and the control rod drives the mounting plate to rotate.
[0018] With the above structure, the mounting plate effectively drives the four sets of continuous clamping components to rotate intermittently, with the mounting plate rotating 90° each time.
[0019] Preferably, the bottom surface of the mounting plate is provided with a receiving groove at an equal angle, and a limit rod is installed inside the receiving groove by screws, and a first reset spring is nested on the outer side of one end of the limit rod.
[0020] With the above structure, the stored force of the first reset spring can automatically drive the limit rod to move in the opposite direction and reset.
[0021] Preferably, a sliding rod is fixed above the push rod, and a limit rod is slidably connected through the upper part of the sliding rod. A ball bearing is embedded in the end of the push rod near the fixed plate, and the ball bearing is fitted to the outer side of the fixed plate. The left side of the fixed plate is provided with an arc-shaped notch.
[0022] With the above structure, the left side of the fixed plate is designed with an arc-shaped notch, which facilitates the sliding of the push rod on the left side of the fixed plate.
[0023] Preferably, the trimming control component includes a control frame installed on the lower left side of the detection platform, and a through groove is provided inside the left side of the detection platform, with the control frame connected to the lower part of the through groove. An adjustment plate is slidably connected inside the right side of the control frame, and a control lever is fixed to the right end of the adjustment plate. A second reset spring is nested on the outer side of the left end of the control lever. The right end of the control lever penetrates the right side of the control frame, and both the front and rear sides of the control lever are inclined.
[0024] With the above-described structure, both the front and rear sides of the control lever are inclined, which makes it easier for the fan-shaped toggle block to push the control lever to move.
[0025] Preferably, a fan-shaped actuating block is installed at an equal angle on the lower outer side of the control lever. The control lever forms a sliding structure with the control frame through the actuating block, and the vertical center line of the actuating block does not coincide with the vertical center line of each group of continuous clamping components.
[0026] A groove is provided on one side of the support column, and a slider is slidably connected inside the groove. An inclined support plate is slidably connected between the two support columns on the left side, and sliders are installed on both the front and rear sides of the support plate. A connecting spring is installed below the slider and is installed inside the groove. The support plate is located below the control frame, and the inside of the control frame is a hollow structure.
[0027] The above structure allows the computer hardware inside the control box, which has a hollow internal structure, to fall onto the tray.
[0028] Another technical solution provided by the present invention is a detection method for a computer hardware detection device, comprising the following steps:
[0029] S1: Move the entire computer hardware testing device to the working area, then insert the computer hardware into a set of continuous clamping components above the through slot, and then rotate the mounting plate to make the fixed plate push the push rod, thereby causing the second clamping mechanism to move towards the first clamping mechanism to clamp the computer hardware.
[0030] S2: Through four sets of continuous clamping components, three computer hardware clamps can be continuously tested simultaneously, and then tested through a test board;
[0031] S3: Later, by using the notch in the fixed plate to drive a second clamping mechanism away from the first clamping mechanism, the computer hardware can automatically fall into the control box.
[0032] S4: The computer hardware within the control box is flattened and adjusted by moving the control panel.
[0033] Compared with the prior art, the beneficial effects of the present invention are as follows: This computer hardware testing device and method can simultaneously clamp four computer hardware components through four sets of continuous clamping components. When it is necessary to replace the tested computer hardware, only the four sets of continuous clamping components need to be rotated, so that the entire computer hardware testing device can perform testing operations continuously without stopping the operation of the entire device. Therefore, the efficiency of the entire testing is improved and time is saved. At the same time, one set of continuous clamping components can realize automatic unloading, saving manpower. The specific details are as follows:
[0034] (1) It is equipped with four sets of continuous clamping components. Four computer hardwares can be clamped at the same time through the four sets of continuous clamping components. When it is necessary to replace the tested computer hardware, only the four sets of continuous clamping components need to be rotated, so that the entire computer hardware testing device can perform testing operations continuously without stopping the operation of the entire device. Therefore, the efficiency of the entire testing is improved and time is saved.
[0035] Furthermore, by setting a fixed plate within the automatic falling assembly, the second clamping mechanism in one of the continuous clamping assemblies can automatically move inward and away from the first clamping mechanism, causing one of the continuous clamping assemblies to lose its clamping force on the computer hardware. As a result, the computer hardware in one of the continuous clamping assemblies can automatically fall into the control frame through the through slot by its own gravity, without the need for staff to manually release the clamping of one of the continuous clamping assemblies, thus saving manpower.
[0036] (2) It is equipped with a trimming control component. By moving the control plate in the trimming control component, the computer hardware after testing in the control frame can be squeezed and trimmed to improve the reuse rate of the computer hardware after testing.
[0037] (3) By sliding the inclined tray up and down, the computer hardware in the control box can be dropped onto the tray and discharged outward. At the same time, the vertical center line of the toggle block does not coincide with the vertical center line of each group of continuous clamping components, so that when the toggle block rotates, it drives the control lever and the control plate to move to the left, which facilitates the control plate to move back and forth left and right without the need for an additional power source. Attached Figure Description
[0038] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0039] Figure 2 This is a rear-view stereoscopic structural diagram of the present invention;
[0040] Figure 3 This is a bottom view of the mounting plate structure of the present invention;
[0041] Figure 4 This is a schematic diagram of the main cross-sectional structure of the mounting plate of the present invention;
[0042] Figure 5 This is a schematic diagram of the three-dimensional structure of the push rod of the present invention;
[0043] Figure 6 This is a three-dimensional structural diagram of the push rod after it has moved according to the present invention;
[0044] Figure 7 This is a schematic diagram of the side sectional view of the support column structure of the present invention;
[0045] Figure 8 This is a schematic diagram of the main cross-sectional structure of the control frame of the present invention.
[0046] In the diagram: 1. Detection platform; 2. Support column; 201. Slide groove; 3. Mounting plate; 301. Receiving groove; 302. First return spring; 303. Limiting rod; 4. Mounting rod; 5. First clamping mechanism; 6. Second clamping mechanism; 7. Electric push rod; 8. Detection plate; 9. Through groove; 10. Control frame; 101. Adjustment plate; 102. Second return spring; 103. Control lever; 11. Support plate; 111. Slider; 112. Connecting spring; 12. Control lever; 121. Actuating block; 13. Fixed plate; 14. Vertical rod; 15. Sliding rod; 16. Push rod; 161. Ball bearing; 17. Adjusting rod. Detailed Implementation
[0047] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0048] Please see Figures 1-8 The present invention provides a technical solution: a computer hardware testing device, including a testing platform 1 for placing computer hardware, and support columns 2 for improving stability are symmetrically installed at the bottom of the testing platform 1.
[0049] See attached document Figures 1-3 As shown, the entire computer hardware testing device is moved to the working area, and then the entire computer hardware testing device can be used. At this time, the operator manually inserts a computer hardware into the two first clamping mechanisms 5 in the leftmost continuous clamping assembly, and then manually supports it for a period of time. Then, the motor at the bottom of the control lever 12 is started to drive the control lever 12 to rotate slowly, so that the control lever 12 drives the mounting plate 3 to rotate together. At this time, the mounting plate 3 drives the four continuous clamping assemblies and the four sliding rods 15 and push rods 16 to rotate together through the mounting rod 4. When the leftmost continuous clamping assembly rotates to the front, the push rod 16 under the leftmost continuous clamping assembly will rotate to the front of the fixed plate 13. At the same time, the setting of the ball bearing 161 can reduce the friction between the push rod 16 and the fixed plate 13, so that the push rod 16 can rotate well.
[0050] See attached document Figures 5-6As shown, since the fixed plate 13 only has an arc-shaped notch on its left side, the front side of the fixed plate 13 pushes the push rod 16 outward. At this time, the push rod 16 drives the sliding rod 15 to move outward. At this time, the sliding rod 15 slides outside the limiting rod 303 and pulls the first reset spring 302, causing the first reset spring 302 to store force. Then, the push rod 16 pushes the corresponding second clamping mechanism 6 through the adjusting rod 17, so that the second clamping mechanism 6 is close to the first clamping mechanism 5, thereby making the first clamping mechanism 5 and the second clamping mechanism 6 cooperate well to clamp the computer hardware, as shown above. The operation allows four sets of continuous clamping components to simultaneously clamp four computer hardware components. Then, the mounting plate 3 is rotated further. The detection component, located at the rear of the detection platform 1, is used to test the compressive and bending resistance of the computer hardware. The mounting plate 3 rotates one set of continuous clamping components holding the computer hardware to the rear. At this time, the electric push rod 7 is activated to drive the detection plate 8 to move, so that the detection plate 8 applies a forward force to the computer hardware, thereby testing the compressive and bending resistance of the computer hardware. If the computer hardware does not bend after applying a certain force, it indicates that the computer hardware has high bending resistance, and vice versa.
[0051] The detection assembly includes an electric push rod 7 mounted on the rear side of the detection platform 1, and a detection plate 8 is fixed to the output end of the electric push rod 7 with screws. Pressure is applied to the computer hardware by moving the detection plate 8. A continuous clamping assembly is provided in four sets, symmetrically arranged above the detection platform 1, capable of clamping four pieces of computer hardware simultaneously for continuous and rapid detection. Each set of continuous clamping assemblies includes two first clamping mechanisms 5 and two second clamping mechanisms 6. The first clamping mechanisms 5 are arranged in an "L" shape, and the first clamping mechanisms 5 and second clamping mechanisms 6 are arranged in a one-to-one correspondence. The shortest distance between the two first clamping mechanisms 5 is greater than the length of the detection plate 8, and the first clamping mechanisms 5 are mounted on the outside of the mounting plate 3 via mounting rods 4.
[0052] When further testing is required, the entire computer hardware testing device can be continuously tested by continuing to rotate the mounting plate 3. This eliminates the need to stop the operation of the computer hardware testing device when replacing computer hardware, thereby improving testing efficiency.
[0053] When the tested computer hardware rotates to the far left, as described above, through the notch on the left side of the fixed plate 13 and the stored force of the first reset spring 302, the corresponding push rod 16 can be automatically driven to move inward, so that the push rod 16 drives the second clamping mechanism 6 away from the first clamping mechanism 5, thereby causing the first clamping mechanism 5 and the second clamping mechanism 6 to lose their clamping of the computer hardware. At this time, the computer hardware can fall into the control frame 10 through the through slot 9. The automatic falling component is set below the mounting plate 3 to facilitate the separation of the first clamping mechanism 5 and the second clamping mechanism 6, release the clamping of the computer hardware, and allow the computer hardware to fall automatically. The automatic falling component includes a fixed plate 13 set below the mounting plate 3, and also includes a push rod 16 attached to the outside of the fixed plate 13. Two adjusting rods 17 are symmetrically installed on the outer end of the push rod 16, and the outer end of the adjusting rod 17 is connected to the second clamping mechanism 6. The second clamping mechanism 6 forms a sliding structure with the testing platform 1 through the push rod 16 and the mounting plate 3, and the mounting plate 3 is set above the testing platform 1.
[0054] See attached document Figure 8As shown, when the control lever 12 rotates, it drives the four toggle blocks 121 to rotate together. When the leftmost continuous clamping assembly rotates to the front position, the toggle block 121 rotates and pushes the control lever 103, which is inclined on both sides, causing the control lever 103 to move the control plate 101 to the left. At this time, the second reset spring 102 stores force, which causes the control plate 101 to move back and forth, pushing the detected computer hardware in the control frame 10 again, so that the deformed computer hardware can be restored to its original shape, thereby improving the reuse rate of the computer hardware. Then, the tray 11 is manually pushed down. At this time, the sliders 111 on both sides of the tray 11 slide in the slide groove 201, and at the same time, they squeeze and store force on the connecting spring 112, so that the tray 11 can be automatically reset later by the stored force of the connecting spring 112. At this time, the computer hardware in the control frame 10 falls on the inclined tray 11, which is convenient for later discharge. This process is repeated to achieve a high efficiency. The testing and repair control components are located on the lower left side of the testing platform 1 and are used to repair the computer hardware after testing. The repair control components include a control frame 10 installed on the lower left side of the testing platform 1. A through slot 9 is opened inside the left side of the testing platform 1, and the control frame 10 is connected to the lower part of the through slot 9. An adjustment plate 101 is slidably connected inside the right side of the control frame 10. A control lever 103 is fixed to the right end of the adjustment plate 101. A second reset spring 102 is nested on the outer side of the left end of the control lever 103. The right end of the control lever 103 passes through the right side of the control frame 10. The front and rear sides of the control lever 103 are both inclined. A fan-shaped toggle block 121 is installed at the lower outer side of the control lever 101. The control lever 103 and the control frame 10 form a sliding structure through the toggle block 121. The vertical center line of the toggle block 121 does not coincide with the vertical center line of each group of continuous clamping components.
[0055] A control rod 12 is fixed in the middle of the mounting plate 3, and a fixing plate 13 is provided through the outer side of the control rod 12. The bottom of the fixing plate 13 is mounted on the upper surface of the detection platform 1 via a vertical rod 14, and the control rod 12 drives the mounting plate 3 to rotate. A receiving groove 301 is formed at equal angles on the bottom surface of the mounting plate 3, and a limit rod 303 is installed inside the receiving groove 301 by screws. A first return spring 302 is nested and connected to the outer side of one end of the limit rod 303. A sliding rod 15 is fixed above the push rod 16, and the limit rod 303 is slidably connected through the upper part of the sliding rod 15. A ball bearing 161 is embedded in the end of the push rod 16 near the fixing plate 13, and the ball bearing 161 is fitted against the outer side of the fixing plate 13. The left side of the fixing plate 13... The side is designed with an arc-shaped notch. A groove 201 is opened on one side of the support column 2, and a slider 111 is slidably connected inside the groove 201. An inclined support plate 11 is slidably connected between the two support columns 2 on the left side. Slider 111 is installed on both the front and rear sides of the support plate 11. A connecting spring 112 is installed below the slider 111 and is installed inside the groove 201. The support plate 11 is located below the control frame 10, and the inside of the control frame 10 is designed with a hollow structure.
[0056] To better demonstrate the specific testing method of a computer hardware testing device, this embodiment describes a testing method for a computer hardware testing device, including the following steps:
[0057] Step 1: Move the entire computer hardware testing device into the working area, then insert the computer hardware into the corresponding set of continuous clamping components above the through slot 9, and then rotate the mounting plate 3 to make the fixed plate 13 push the push rod 16, thereby causing the second clamping mechanism 6 to move towards the first clamping mechanism 5 to clamp the computer hardware.
[0058] Step 2: Through four sets of continuous clamping components, three computer hardware clamps can be continuously tested simultaneously, and then tested through the test board 8;
[0059] Step 3: Later, by using the notch in the fixed plate 13 to move a second clamping mechanism 6 away from the first clamping mechanism 5, the computer hardware can automatically fall into the control box 10.
[0060] Step 4: The computer hardware within the control box 10 is flattened and adjusted by moving the control plate 101.
[0061] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A computer hardware testing device, comprising a testing platform (1) for placing computer hardware, and support columns (2) for improving stability are symmetrically installed at the bottom of the testing platform (1); Its features are, Also includes: The testing component, which is located on the rear side of the testing platform (1), is used to test the compressive and bending resistance of computer hardware; The continuous clamping assembly has four sets, which are symmetrically arranged above the detection platform (1). It can clamp four computer hardware at the same time, which facilitates continuous and rapid detection. An automatic falling component is located below the mounting plate (3) to facilitate the separation of the first clamping mechanism (5) and the second clamping mechanism (6), thereby releasing the clamping of the computer hardware and allowing the computer hardware to fall automatically. The trimming control component is located on the lower left side of the testing platform (1) and is used to trim the computer hardware after testing.
2. The computer hardware testing device according to claim 1, characterized in that: The detection assembly includes an electric push rod (7) installed on the rear side of the detection platform (1), and the output end of the electric push rod (7) is screwed to a detection plate (8), and pressure is applied to the computer hardware by moving the detection plate (8).
3. The computer hardware testing device according to claim 2, characterized in that: Each set of continuous clamping components includes two first clamping mechanisms (5) and two second clamping mechanisms (6). The first clamping mechanisms (5) are arranged in an "L" shape. The first clamping mechanisms (5) and the second clamping mechanisms (6) are arranged in a one-to-one correspondence. The shortest distance between the two first clamping mechanisms (5) is greater than the length of the detection plate (8). The first clamping mechanisms (5) are installed on the outside of the mounting plate (3) by the mounting rod (4).
4. The computer hardware testing device according to claim 3, characterized in that: The automatic falling assembly includes a fixed plate (13) disposed below the mounting plate (3), and a push rod (16) attached to the outside of the fixed plate (13). Two adjusting rods (17) are symmetrically installed on the outer end of the push rod (16), and the outer end of the adjusting rod (17) is connected to the second clamping mechanism (6). The second clamping mechanism (6) forms a sliding structure with the detection platform (1) through the push rod (16) and the mounting plate (3), and the mounting plate (3) is disposed above the detection platform (1).
5. A computer hardware testing device according to claim 4, characterized in that: A control rod (12) is fixed in the middle of the mounting plate (3), and a fixing plate (13) is provided through the outside of the control rod (12). The bottom of the fixing plate (13) is installed on the upper surface of the detection platform (1) by a vertical rod (14), and the control rod (12) drives the mounting plate (3) to rotate.
6. The computer hardware testing device according to claim 5, characterized in that: The mounting plate (3) has a receiving groove (301) at equal angles on its bottom surface, and a limit rod (303) is installed inside the receiving groove (301) by screws, and a first reset spring (302) is nested on the outer side of one end of the limit rod (303).
7. A computer hardware testing device according to claim 6, characterized in that: A sliding rod (15) is fixed above the push rod (16), and a limit rod (303) is slidably connected through the upper part of the sliding rod (15). A ball bearing (161) is embedded in the end of the push rod (16) near the fixed plate (13), and the ball bearing (161) is fitted to the outer side of the fixed plate (13). The left side of the fixed plate (13) is provided with an arc-shaped notch.
8. A computer hardware testing device according to claim 5, characterized in that: The trimming control component includes a control frame (10) installed on the lower left side of the detection platform (1), and a through groove (9) is provided inside the left side of the detection platform (1), and the control frame (10) is connected to the lower part of the through groove (9). A control plate (101) is slidably connected inside the right side of the control frame (10), and a control lever (103) is fixed to the right end of the control plate (101). A second reset spring (102) is nested on the outer side of the left end of the control lever (103). At the same time, the right end of the control lever (103) penetrates the right side of the control frame (10), and both the front and rear sides of the control lever (103) are set with an inclined cross-section.
9. A computer hardware testing device according to claim 8, characterized in that: A fan-shaped toggle block (121) is installed at an equal angle on the lower outer side of the control lever (12). The control lever (103) forms a sliding structure with the control frame (10) through the toggle block (121). The vertical center line of the toggle block (121) does not coincide with the vertical center line of each group of continuous clamping components. A groove (201) is provided on one side of the support column (2), and a slider (111) is slidably connected inside the groove (201). An inclined support plate (11) is slidably connected between the two support columns (2) on the left side. Sliders (111) are installed on both the front and rear sides of the support plate (11). A connecting spring (112) is installed below the slider (111). The connecting spring (112) is installed inside the groove (201). The support plate (11) is located below the control frame (10), and the inside of the control frame (10) is a hollow structure.
10. A detection method for a computer hardware detection device as described in claim 1, characterized in that, Includes the following steps: S1: Move the entire computer hardware testing device to the working area, then insert the computer hardware into a set of continuous clamping components above the through slot (9), and then rotate the mounting plate (3) so that the fixed plate (13) pushes the push rod (16), thereby causing the second clamping mechanism (6) to move towards the first clamping mechanism (5) to clamp the computer hardware. S2: Three computer hardware clamps can be continuously tested simultaneously through four sets of continuous clamping components, and then tested through the test board (8); S3: Later, by using the notch of the fixed plate (13) to drive a second clamping mechanism (6) away from the first clamping mechanism (5), the computer hardware can automatically fall into the control box (10). S4: The computer hardware in the control box (10) is flattened and trimmed by moving the control plate (101).
Citation Information
Patent Citations
Device for detecting fracture resistance and pressure resistance of computer hardware mainboard
CN115876600A