A cabinet body strength detection device for bathroom cabinet processing
The automated bathroom cabinet strength testing device solves the problems of low efficiency and large data errors in traditional manual testing, and realizes all-round automatic and continuous testing of cabinets of different sizes, thereby improving production efficiency and testing accuracy.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- XUCHANG EUMU BATHROOM CO LTD
- Filing Date
- 2026-05-08
- Publication Date
- 2026-07-10
AI Technical Summary
Traditional methods for testing the strength of bathroom vanity cabinets rely on manual operation, which leads to cabinet wobbling, large data errors, low efficiency, and high costs, making it difficult to meet production needs.
Design an automated inspection device that includes a conveying component, an inspection component, and a reinforcement component. The device uses a cylinder to drive the sliding plate and the reinforcement plate in conjunction to achieve automatic reinforcement and all-around inspection of the cabinet. It is suitable for cabinets of different heights and widths.
It achieves automatic reinforcement of the cabinet, avoids data errors caused by shaking, ensures the accuracy and continuity of testing, and improves testing efficiency and applicability.
Smart Images

Figure CN122361065A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of cabinet strength testing technology, specifically to a cabinet strength testing device for bathroom cabinet processing. Background Technology
[0002] This invention relates to the field of bathroom cabinet manufacturing, specifically to a device for testing the strength of a bathroom cabinet body. Ensuring the strength and stability of the cabinet body is crucial in the production process of bathroom cabinets, as it not only affects the product's lifespan but also directly impacts user safety and experience. Therefore, strength testing of the bathroom cabinet body is an important step in the production process.
[0003] Traditional methods for testing the strength of bathroom vanity cabinets typically rely on manual operation. The cabinet is fixed using simple clamps or support structures, and then external force is applied to simulate the stress conditions in actual use. However, this method has many shortcomings.
[0004] Due to the limitations of traditional clamps or support structures, it is often difficult to firmly fix the cabinet, which can easily cause the cabinet to shake or shift during testing. This shaking not only affects the accuracy of the test results but may also damage the testing equipment. Because of the cabinet shaking, the test data often has large errors, or even erroneous data, which greatly complicates subsequent product quality assessment and increases the risk of unqualified products entering the market. Traditional manual testing methods require a large amount of manpower, and the testing process is cumbersome and inefficient, which not only increases production costs but also limits the improvement of production efficiency.
[0005] Therefore, the present invention provides a cabinet strength testing device for bathroom cabinet processing to solve the above problems. Summary of the Invention
[0006] In order to overcome the shortcomings of the prior art, the present invention provides a cabinet strength testing device for bathroom cabinet processing, which solves the problem of automatically reinforcing the cabinet during the above test and avoiding data errors caused by shaking.
[0007] To achieve the above objectives, the technical solution adopted by the present invention is as follows: A cabinet strength testing device for bathroom vanity processing includes a conveying assembly, a testing assembly, and a reinforcing assembly. The conveying assembly includes a base and a conveyor belt, with the conveyor belt located on top of the base. The testing assembly includes a test chamber and a top plate, with the top plate fixedly installed on top of the test chamber. A side wall testing chamber is slidably connected inside the test chamber, and a top testing chamber is slidably connected to the bottom of the top plate. The top testing chamber and the side wall testing chamber are drivenly connected. The reinforcing assembly includes a reinforcing plate and a driving plate. The reinforcing plate is slidably connected to the bottom of the inner side wall of the test chamber, and the driving plate is simultaneously connected to both the reinforcing plate and the side wall testing chamber. The device features a test box drive connection. During testing, the linkage between the testing and reinforcement components automatically reinforces the cabinet, preventing data detection errors caused by cabinet shaking. The side wall and top testing boxes allow for testing from different directions. To avoid omissions due to cabinet height, the side wall testing boxes can slide up and down, providing comprehensive testing of the cabinet's side walls and preventing any oversights. It is suitable for testing cabinets of various heights and widths. After testing, the device automatically transports the components for continuous testing.
[0008] Preferably, a cylinder is fixedly installed on the top of the top plate, a sliding plate is fixedly installed on the output end of the cylinder, the top detection box is fixedly installed on the lower part of the sliding plate, and the drive plate is installed on the bottom of the side wall of the sliding plate. When the device is in use, the cylinder is activated, causing the cylinder to drive the sliding plate to move downward, so that the top detection box detects the top of the cabinet, and the drive plate on the side wall of the sliding plate follows and descends.
[0009] Preferably, a compensation plate is slidably connected inside the reinforcing plate, a compensation spring is fixedly installed at one end of the compensation plate, the other end of the compensation spring is fixedly connected to the inner side of the reinforcing plate, and the other end of the compensation plate matches the outer side wall of the cabinet.
[0010] Preferably, a displacement plate is fixedly installed at the bottom of the drive plate, and a reinforcing wedge is fixedly installed at the bottom of the displacement plate, wherein the width of the reinforcing wedge decreases from top to bottom.
[0011] Preferably, an adjusting shaft is rotatably connected to the inner wall of the test chamber, and a limit groove is formed on the inner wall of the adjusting shaft; a push screw is slidably connected inside the adjusting shaft, and a limit plate is fixedly installed on the outer wall of the push screw, the limit plate being slidably connected inside the limit groove; a reinforcing plate is provided on the outer wall of one end of the push screw, and a push plate is threadedly connected to the outer wall of the push screw, the push plate matching the reinforcing wedge; a tension spring is fixedly installed on one end of the push plate, and the other end of the tension spring is fixedly connected to the inner wall of the test chamber; when this device is in use, the drive plate is driven to descend by a cylinder. When the drive plate descends, it will drive the displacement plate and the reinforcing wedge to move downward, so that the outer wall of the reinforcing wedge and the push plate... When the wall is pressed against the top, the push plate moves, which in turn causes the push plate to move the push screw. The push screw slides within the adjusting shaft, which remains stationary. The push screw then moves the reinforcing plate, achieving automatic reinforcement of the bottom of the cabinet. When used for cabinets of different widths, rotating the adjusting shaft causes the push screw to rotate, thereby adjusting the position of the push plate. This changes the position of the push plate relative to the reinforcing wedge, allowing the reinforcing plate to move different distances when the reinforcing wedge descends. This meets the needs of reinforcing different cabinets and achieves automatic reinforcement. The device's reinforcement and detection are linked. After detection, the device automatically releases the fixation, facilitating subsequent clamping and fixation.
[0012] Preferably, a groove is provided on the inner side wall of the test chamber, and a slider is slidably connected inside the groove. A compression spring is fixedly installed at the bottom of the slider, and the other end of the compression spring is fixedly connected to the inner bottom wall of the groove.
[0013] Preferably, a bidirectional lead screw is rotatably connected to the outer wall of the slider, and a first worm spring is fixedly installed on the outer wall of one end of the bidirectional lead screw, with the other end of the first worm spring fixedly connected to the outer wall of the slider; a drive gear is unidirectionally driven connected to the outer wall of the middle part of the bidirectional lead screw, and the drive gear meshes with an external tooth located on the outer wall of the drive plate; a threaded block is fixedly installed at one end of the side wall detection box, and the threaded block is threadedly connected to the outer wall of the bidirectional lead screw; a linkage frame is fixedly installed at one end of the outer wall of the drive plate, and the linkage frame matches the top of the side wall detection box; when the drive plate moves downward, the external tooth on the outer wall of the drive plate will drive the drive gear to rotate, at which time... The bidirectional lead screw rotates, causing the threaded block to shift and slide the side wall detection box outward. The side wall detection box then abuts against the outer wall of the cabinet, achieving automatic extension detection. Simultaneously, as the drive plate continues to descend, the linkage frame abuts against the side wall detection box, causing it to shift downward. This allows the slider to slide inside the groove, compressing the spring and enabling the side wall detection box to slide downward for detection. When the top detection box is performing detection, the device can simultaneously extend the side wall detection box, achieving automatic detection. After the side wall detection box extends, it follows the drive plate downward, enabling detection of the cabinet's vertical position. This avoids the inability to detect all tall cabinets and prevents omissions.
[0014] Preferably, a fixing plate is fixedly installed on the inner side wall of the test chamber; the outer teeth are fixedly installed on the outer wall of the shrink plate, the shrink plate is slidably connected to the inside of the drive plate, a driving plate is fixedly installed on the other side of the shrink plate, a driving groove is opened on the inner wall of the driving plate, the driving groove abuts against the shrinking inclined block, the width of the shrinking inclined block increases sequentially from top to bottom, a top plate is fixedly installed at the bottom of the shrinking inclined block, the top plate is slidably connected to the side wall of the drive plate, and the top plate matches the fixing plate.
[0015] Preferably, a reset groove is formed on the outer wall of the bidirectional lead screw, and a reset spring is installed inside the reset groove. The other end of the reset spring is fixedly connected to one end face of the reset plate. One end of the reset plate is hinged to the inner wall of the reset groove, and the other end of the reset plate matches the inner ring groove. The inner ring groove is located on the inner wall of the drive gear, and there are multiple inner ring grooves. When the drive plate descends, the reset plate inside the drive gear will engage with the inner ring groove, causing the drive plate to drive the drive gear to rotate, thereby realizing the outward displacement of the side wall detection box. When the drive plate continues to descend to the bottom, the abutment plate will abut against the fixed plate, causing the abutment plate to move upward. The abutment surface between the contraction wedge and the drive groove gradually increases, causing the drive... The sliding retraction plate, driven by the plate, disengages from the drive gear. Under the action of the first worm spring, the bidirectional lead screw rotates and resets, causing the side wall detection box to reset and disengage from the outer wall of the cabinet. When the drive plate moves upward to reset, one end of the reset plate abuts against the inclined surface of the inner ring groove, preventing the drive plate from driving the drive gear to rotate. This device avoids the phenomenon where the side wall detection box cannot extend when the drive plate descends due to excessive retraction. Furthermore, after the detection is completed, the device automatically disengages from the cabinet, preventing reset restrictions and enabling rapid reset for continuous detection. After the side wall detection box resets, the external teeth of the device automatically extend for re-engagement.
[0016] Preferably, multiple baffles are fixedly installed on the outer wall of the conveyor belt; a drive cylinder is internally connected to the conveyor belt, and a conveyor shaft is fixedly installed at the axis of the drive cylinder; a sleeve is unidirectionally connected to the outer wall of the conveyor shaft, and the connection method between the sleeve and the conveyor shaft is the same as the connection method between the bidirectional lead screw and the drive gear; a conveyor gear is unidirectionally connected to the outer wall of the sleeve, and the internal structure of the conveyor gear is opposite to that of the sleeve; the conveyor gear meshes with the conveyor tooth plate; a second worm spring is fixedly installed on the outer wall of the conveyor shaft, and the other end of the second worm spring is connected to the outer wall of the test chamber. Fixed connection; When the drive plate drives the conveyor toothed plate to descend, the conveyor gear is a one-way drive connection, so the conveyor gear will not drive the sleeve to rotate. When the conveyor toothed plate returns to its original position, the conveyor gear drives the sleeve to rotate, but the sleeve will not drive the conveyor shaft to rotate. The second worm spring is in a compressed state. When the conveyor toothed plate disengages from the conveyor gear, the sleeve returns to its original position under the action of the second worm spring, and at the same time drives the conveyor shaft to rotate, thereby driving the displacement of the conveyor belt. This allows the device to synchronously drive the conveyor belt to transport after the detection is completed, realizing the linkage function. The cabinet for conveyor belt detection enables the detection and conveying to be linked.
[0017] The beneficial effects of this invention are as follows: 1. During testing, this device automatically reinforces the cabinet through the linkage of the detection and reinforcement components, preventing data detection errors caused by cabinet shaking. The device, with its side wall and top detection boxes, allows for detection from different directions. To avoid omissions due to cabinet height, the side wall detection boxes can slide up and down, achieving comprehensive detection of the cabinet's side walls and preventing any oversights. It is suitable for detecting cabinets of various heights and widths. After testing, the device automatically transports the components, enabling continuous testing.
[0018] 2. When this device is used for cabinets of different widths, rotating the adjusting shaft causes the push screw to rotate, thereby adjusting the position of the push plate. This changes the position of the push plate and the reinforcing wedge, allowing the reinforcing plate to move a different distance when the reinforcing wedge descends. This meets the needs of reinforcing different cabinets and achieves automatic reinforcement. The device's reinforcement and detection functions are linked. After detection, it can automatically release the fixation, facilitating subsequent clamping and fixation.
[0019] 3. When the top detection box performs the test, this device can simultaneously drive the side wall detection box to extend, realizing the automatic detection function. After the side wall detection box extends, it can follow the drive plate to move downward, realizing the detection of the vertical position of the cabinet, avoiding the phenomenon that tall cabinets cannot be fully detected, and preventing omissions.
[0020] 4. This device can avoid the phenomenon that the side wall detection box cannot extend when the drive plate descends due to excessive retraction of the side wall detection box. At the same time, after the detection is completed, this device can automatically disengage from the side wall detection box and the cabinet, avoiding the restriction of reset and enabling rapid reset for continuous detection. After the side wall detection box is reset, the external teeth of this device can automatically extend for easy re-engagement.
[0021] 5. When the drive plate drives the conveyor toothed plate to descend, the conveyor gear is unidirectionally driven, so it will not drive the sleeve to rotate. When the conveyor toothed plate returns to its original position, the conveyor gear drives the sleeve to rotate, but the sleeve will not drive the conveyor shaft to rotate. The second worm spring is in a compressed state. When the conveyor toothed plate disengages from the conveyor gear, the sleeve will return to its original position under the action of the second worm spring, simultaneously driving the conveyor shaft to rotate, thus displacing the conveyor belt. This allows the device to synchronously drive the conveyor belt to transport the conveyor after the inspection is completed, achieving a linkage function. The cabinet for conveyor belt inspection enables the inspection and conveying to be linked. Attached Figure Description
[0022] Figure 1 This is a three-dimensional schematic diagram of the present invention from the front view; Figure 2 This is a schematic diagram of the top detection box of the present invention; Figure 3 This is a schematic diagram of a cross-section of the test chamber of the present invention; Figure 4 This is a schematic diagram of a cross-section of the reinforcing plate of the present invention; Figure 5 This is a schematic diagram of the three-dimensional reinforcement of the inclined block according to the present invention; Figure 6 This is a schematic diagram showing the cross-section of the adjusting shaft of the present invention; Figure 7 This is a schematic diagram of the test box of the present invention in cross-section 2; Figure 8 This is a schematic diagram of the interior of the driver board of the present invention; Figure 9 This is a schematic diagram of the interior of the bidirectional lead screw of the present invention; Figure 10 This is a schematic diagram of the conveyor belt of the present invention.
[0023] In the picture: 1. Base; 2. Conveyor belt; 201. Baffle; 202. Drive cylinder; 203. Conveyor shaft; 204. Conveyor gear; 205. Second worm spring; 206. Sleeve; 3. Test box; 301. Adjusting shaft; 302. Limiting groove; 303. Push screw; 304. Limiting plate; 305. Push plate; 306. Tension spring; 4. Top plate; 401. Cylinder; 402. Sliding plate; 5. Side wall detection box; 501. Slide groove; 502. Slider; 503. Compression spring; 504. Double-acting lead screw; 505. First worm spring; 506. Drive gear; 507. Threaded block; 508. Linkage frame; 509. Fixing plate; 510. Reset groove; 511. Reset spring; 512. Reset plate; 513. Inner ring groove; 6. Top inspection box; 7. Reinforcing plate; 701. Compensating plate; 702. Compensating spring; 8. Drive plate; 801. Displacement plate; 802. Reinforcing wedge block; 803. External tooth; 804. Shrink plate; 805. Drive plate; 806. Drive groove; 807. Top plate; 808. Shrink wedge block; 809. Conveying tooth plate. Detailed Implementation
[0024] The embodiments of the present invention will now be described in detail with reference to the accompanying drawings. Those skilled in the art should understand that these embodiments are merely illustrative of the technical principles of the present invention and are not intended to limit the scope of protection of the present invention.
[0025] A cabinet strength testing device for bathroom vanity processing, as shown in the attached document. Figure 1-3 As shown, the device includes a conveying assembly, a testing assembly, and a reinforcement assembly. The conveying assembly includes a base 1 and a conveyor belt 2, with the conveyor belt 2 located on top of the base 1. The testing assembly includes a test chamber 3 and a top plate 4. The top plate 4 is fixedly installed on the top of the test chamber 3. A side wall testing chamber 5 is slidably connected inside the test chamber 3, and a top testing chamber 6 is slidably connected to the bottom of the top plate 4. The top testing chamber 6 and the side wall testing chamber 5 are drivenly connected. The reinforcement assembly includes a reinforcement plate 7 and a drive plate 8. The reinforcement plate 7 is slidably connected to the bottom of the inner side wall of the test chamber 3, and the drive plate 8 is drivenly connected to both the reinforcement plate 7 and the side wall testing chamber 5. During testing, this device... By linking the detection and reinforcement components, the cabinet can be automatically reinforced during detection, preventing data detection errors caused by cabinet shaking. The device, with its side wall detection box 5 and top detection box 6, allows for detection from different directions of the cabinet. To avoid omissions due to the cabinet's height, the side wall detection box 5 can slide up and down, achieving comprehensive detection of the cabinet's side walls and preventing any omissions. It is suitable for detecting cabinets of various heights and widths. After detection, the device can automatically transport the components, enabling continuous detection.
[0026] As attached Figure 1-2 As shown, a cylinder 401 is fixedly installed on the top of the top plate 4, and a sliding plate 402 is fixedly installed on the output end of the cylinder 401. The top detection box 6 is fixedly installed on the lower part of the sliding plate 402, and the drive plate 8 is installed on the bottom of the side wall of the sliding plate 402. When this device is in use, the cylinder 401 is activated, causing the cylinder 401 to drive the sliding plate 402 to move downward, so that the top detection box 6 detects the top of the cabinet, and at the same time the drive plate 8 on the side wall of the sliding plate 402 follows and descends.
[0027] As attached Figure 3-4 As shown, a compensation plate 701 is slidably connected inside the reinforcing plate 7. A compensation spring 702 is fixedly installed at one end of the compensation plate 701. The other end of the compensation spring 702 is fixedly connected to the inner side of the reinforcing plate 7. The other end of the compensation plate 701 matches the outer wall of the cabinet.
[0028] As attached Figure 3 and attached Figure 5 As shown, a displacement plate 801 is fixedly installed at the bottom of the drive plate 8, and a reinforcing wedge 802 is fixedly installed at the bottom of the displacement plate 801. The width of the reinforcing wedge 802 decreases from top to bottom.
[0029] As attached Figure 3 and attached Figure 6 As shown, an adjusting shaft 301 is rotatably connected to the inner wall of the test chamber 3, and a limit groove 302 is formed on the inner wall of the adjusting shaft 301; a push screw 303 is slidably connected inside the adjusting shaft 301, and a limit plate 304 is fixedly installed on the outer wall of the push screw 303, which is slidably connected inside the limit groove 302; a reinforcing plate 7 is provided on the outer wall of one end of the push screw 303, and a push plate 305 is threadedly connected to the outer wall of the push screw 303. The push plate 305 matches the reinforcing inclined block 802, and a tension spring 306 is fixedly installed on one end of the push plate 305. The other end of the tension spring 306 is fixedly connected to the inner wall of the test chamber 3; when this device is in use, the cylinder 401 drives the drive plate 8 to descend. When the drive plate 8 descends, it will drive the displacement plate 801 and the reinforcing inclined block 802 to move downward, so that the outer wall of the reinforcing inclined block 802 and the push plate 305... When the device reaches the top, the push plate 305 is displaced, which in turn causes the push screw 303 to move. The push screw 303 slides within the adjusting shaft 301, which remains stationary. The push screw 303 then moves the reinforcing plate 7, achieving automatic reinforcement of the bottom of the cabinet. When used for cabinets of different widths, rotating the adjusting shaft 301 causes the push screw 303 to rotate, thereby adjusting the position of the push plate 305. This changes the position of the push plate 305 relative to the reinforcing wedge 802, allowing the reinforcing plate 7 to move at different distances when the reinforcing wedge 802 descends. This satisfies the needs of reinforcing different cabinets and achieves automatic reinforcement. The device integrates reinforcement and detection, automatically releasing the device after detection for subsequent clamping and fixation.
[0030] As attached Figure 3 and attached Figure 7 As shown, a slide groove 501 is provided on the inner side wall of the test box 3. A slider 502 is slidably connected inside the slide groove 501. A compression spring 503 is fixedly installed at the bottom of the slider 502. The other end of the compression spring 503 is fixedly connected to the inner bottom wall of the slide groove 501.
[0031] As attached Figure 3 and attached Figure 7As shown, a bidirectional lead screw 504 is rotatably connected to the outer wall of the slider 502. A first worm spring 505 is fixedly installed on the outer wall of one end of the bidirectional lead screw 504, and the other end of the first worm spring 505 is fixedly connected to the outer wall of the slider 502. A drive gear 506 is unidirectionally driven connected to the outer wall of the middle part of the bidirectional lead screw 504. The drive gear 506 meshes with an external gear 803, which is located on the outer wall of the drive plate 8. A threaded block 507 is fixedly installed at one end of the side wall detection box 5, and the threaded block 507 is threadedly connected to the outer wall of the bidirectional lead screw 504. A linkage frame 508 is fixedly installed at one end of the outer wall of the drive plate 8, and the linkage frame 508 matches the top of the side wall detection box 5. When the drive plate 8 moves downward, the external gear 803 on the outer wall of the drive plate 8 will drive the drive gear 506 to rotate. At this time, the bidirectional lead screw 504 rotates, driving the threaded block 507 to move, causing the side wall detection box 5 to slide outward. The side wall detection box 5 abuts against the outer wall of the cabinet, realizing the function of automatic extension detection. At the same time, as the drive plate 8 continues to descend, the linkage frame 508 can abut against the side wall detection box 5 and move downward, causing the slider 502 to slide inside the slide groove 501. The compression spring 503 is in a compressed state, and the side wall detection box 5 slides downward for detection. When the top detection box 6 is detecting, this device can simultaneously drive the side wall detection box 5 to extend, realizing the automatic detection function. At the same time, after the side wall detection box 5 extends, it can follow the drive plate 8 to move downward, realizing the detection of the upper and lower positions of the cabinet, avoiding the phenomenon that tall cabinets cannot be fully detected, and preventing omissions.
[0032] As attached Figure 8 As shown, a fixing plate 509 is fixedly installed on the inner side wall of the test box 3; an external tooth 803 is fixedly installed on the outer wall of the shrink plate 804, the shrink plate 804 is slidably connected to the inside of the drive plate 8, and a driving plate 805 is fixedly installed on the other side of the shrink plate 804. A driving groove 806 is provided on the inner wall of the driving plate 805. The driving groove 806 abuts against the shrinking inclined block 808. The width of the shrinking inclined block 808 increases from top to bottom. A top plate 807 is fixedly installed at the bottom of the shrinking inclined block 808. The top plate 807 is slidably connected to the side wall of the drive plate 8 and matches the fixing plate 509.
[0033] As attached Figure 9As shown, a reset groove 510 is provided on the outer wall of the bidirectional lead screw 504. A reset spring 511 is installed inside the reset groove. The other end of the reset spring 511 is fixedly connected to one end face of the reset plate 512. One end of the reset plate 512 is hinged to the inner wall of the reset groove 510, and the other end of the reset plate 512 matches the inner ring groove 513. The inner ring groove 513 is located on the inner wall of the drive gear 506, and there are multiple inner ring grooves 513. When the drive plate 8 descends, the reset plate 512 inside the drive gear 506 will engage with the inner ring groove 513, causing the drive plate 8 to drive the drive gear 506 to rotate, thereby realizing the outward displacement of the side wall detection box 5. When the drive plate 8 continues to descend to the bottom, the abutment plate 807 will abut against the fixed plate 509, causing the abutment plate 807 to move upward. The abutment surface of the contraction inclined block 808 and the drive groove 806 gradually increases. The addition causes the drive plate 805 to slide and retract the shrink plate 804, disengaging the external gear 803 from the drive gear 506. Under the action of the first worm spring 505, the bidirectional lead screw 504 is reset and rotated, resetting the side wall detection box 5 and disengaging from the outer wall of the cabinet. When the drive plate 8 moves upward to reset, one end of the reset plate 512 abuts against the inclined surface of the inner ring groove 513, and the drive plate 8 will not drive the drive gear 506 to rotate. This device can avoid the phenomenon that the side wall detection box 5 cannot extend when the drive plate 8 descends due to excessive retraction of the side wall detection box 5. At the same time, after the detection is completed, the device can automatically disengage from the abutment of the side wall detection box 5 against the cabinet, avoiding the restriction of reset and enabling rapid reset for continuous detection. After the side wall detection box 5 is reset, the external gear 803 of this device can automatically extend for re-engagement.
[0034] As attached Figure 10As shown, baffles 201 are fixedly installed on the outer wall of the conveyor belt 2, and there are multiple baffles 201; a drive cylinder 202 is connected to the inside of the conveyor belt 2, and a conveyor shaft 203 is fixedly installed at the shaft center of the drive cylinder 202. A sleeve 206 is unidirectionally driven connected to the outer wall of the conveyor shaft 203. The connection method between the sleeve 206 and the conveyor shaft 203 is the same as the connection method between the bidirectional lead screw 504 and the drive gear 506. A conveyor gear 204 is unidirectionally driven connected to the outer wall of the sleeve 206. The internal structure of the conveyor gear 204 is opposite to that of the sleeve 206. The conveyor gear 204 meshes with the conveyor tooth plate 809; a second worm spring 205 is fixedly installed on the outer wall of the conveyor shaft 203, and the other end of the second worm spring 205 is fixedly connected to the outer wall of the test box 3; this device drives... When the moving plate 8 drives the conveyor toothed plate 809 to descend, the conveyor gear 204 is a one-way drive connection, so the conveyor gear 204 will not drive the sleeve 206 to rotate. When the conveyor toothed plate 809 returns to its original position, the conveyor gear 204 drives the sleeve 206 to rotate, but the sleeve 206 will not drive the conveyor shaft 203 to rotate. The second worm spring 205 is in a compressed state. When the conveyor toothed plate 809 disengages from the conveyor gear 204, the sleeve 206 returns to its original position under the action of the second worm spring 205, and at the same time drives the conveyor shaft 203 to rotate, thereby driving the conveyor belt 2 to move. This allows the device to synchronously drive the conveyor belt 2 to transport after the detection is completed, realizing the linkage function. The conveyor belt 2 is connected to the cabinet for conveyor belt detection, so that detection and conveying are linked.
[0035] It should be noted that in the description of this invention, terms such as "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," which indicate direction or positional relationships, are based on the direction or positional relationships shown in the accompanying drawings. These are used merely for ease of description and do not indicate or imply that the device or element must have a specific orientation, or be constructed and operated in a specific orientation; therefore, they should not be construed as limitations on this invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0036] Furthermore, it should be noted that, in the description of this invention, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0037] The technical solution of the present invention has been described above with reference to the preferred embodiments shown in the accompanying drawings. However, it will be readily understood by those skilled in the art that the scope of protection of the present invention is obviously not limited to these specific embodiments. Without departing from the principles of the present invention, those skilled in the art can make equivalent changes or substitutions to the relevant technical features, and the technical solutions after such changes or substitutions will all fall within the scope of protection of the present invention.
Claims
1. A cabinet strength testing device for bathroom cabinet processing, characterized in that, Includes conveying components, detection components, and reinforcement components; The conveying assembly includes a base (1) and a conveyor belt (2), the conveyor belt (2) being located on top of the base (1); The detection assembly includes a test box (3) and a top plate (4). The top plate (4) is fixedly installed on the top of the test box (3). A side wall detection box (5) is slidably connected inside the test box (3). A top detection box (6) is slidably connected to the bottom of the top plate (4). The top detection box (6) is driven to connect with the side wall detection box (5). The reinforcement assembly includes a reinforcement plate (7) and a drive plate (8). The reinforcement plate (7) is slidably connected to the bottom of the inner sidewall of the test box (3). The drive plate (8) is simultaneously driven connected to the reinforcement plate (7) and the sidewall test box (5).
2. The cabinet strength testing device for bathroom cabinet processing according to claim 1, characterized in that, A cylinder (401) is fixedly installed on the top of the top plate (4), a sliding plate (402) is fixedly installed on the output end of the cylinder (401), the top detection box (6) is fixedly installed on the lower part of the sliding plate (402), and the drive plate (8) is installed on the bottom of the side wall of the sliding plate (402).
3. The cabinet strength testing device for bathroom cabinet processing according to claim 2, characterized in that, The reinforcing plate (7) is internally slidably connected to a compensation plate (701). A compensation spring (702) is fixedly installed at one end of the compensation plate (701). The other end of the compensation spring (702) is fixedly connected to the inner side of the reinforcing plate (7). The other end of the compensation plate (701) matches the outer wall of the cabinet.
4. The cabinet strength testing device for bathroom cabinet processing according to claim 3, characterized in that, A displacement plate (801) is fixedly installed at the bottom of the drive plate (8), and a reinforcing wedge (802) is fixedly installed at the bottom of the displacement plate (801). The width of the reinforcing wedge (802) decreases from top to bottom.
5. The cabinet strength testing device for bathroom cabinet processing according to claim 4, characterized in that, An adjustment shaft (301) is rotatably connected to the inner wall of the test box (3), and a limit groove (302) is provided on the inner wall of the adjustment shaft (301). The adjusting shaft (301) is internally slidably connected to a push screw (303), and a limiting plate (304) is fixedly installed on the outer wall of the push screw (303). The limiting plate (304) is slidably connected inside the limiting groove (302). The reinforcing plate (7) is provided on the outer wall of one end of the push screw (303), and the push plate (305) is threadedly connected to the outer wall of the push screw (303). The push plate (305) matches the reinforcing inclined block (802). A tension spring (306) is fixedly installed on one end of the push plate (305), and the other end of the tension spring (306) is fixedly connected to the inner wall of the test box (3).
6. The cabinet strength testing device for bathroom cabinet processing according to claim 5, characterized in that, The test box (3) has a groove (501) on its inner side wall. A slider (502) is slidably connected inside the groove (501). A compression spring (503) is fixedly installed at the bottom of the slider (502). The other end of the compression spring (503) is fixedly connected to the inner bottom wall of the groove (501).
7. The cabinet strength testing device for bathroom cabinet processing according to claim 6, characterized in that, A bidirectional lead screw (504) is rotatably connected to the outer wall of the slider (502). A first spiral spring (505) is fixedly installed on the outer wall of one end of the bidirectional lead screw (504), and the other end of the first spiral spring (505) is fixedly connected to the outer wall of the slider (502). A drive gear (506) is unidirectionally driven on the outer wall of the middle part of the bidirectional lead screw (504). The drive gear (506) meshes with an external tooth (803), which is located on the outer wall of the drive plate (8). A threaded block (507) is fixedly installed at one end of the side wall detection box (5), and the threaded block (507) is threadedly connected to the outer wall of the bidirectional lead screw (504); A linkage frame (508) is fixedly installed at one end of the outer wall of the drive plate (8), and the linkage frame (508) matches the top of the side wall detection box (5).
8. The cabinet strength testing device for bathroom cabinet processing according to claim 7, characterized in that, A fixing plate (509) is fixedly installed on the inner wall of the test box (3); The external teeth (803) are fixedly installed on the outer wall of the shrink plate (804). The shrink plate (804) is slidably connected to the inside of the drive plate (8). A driving plate (805) is fixedly installed on the other side of the shrink plate (804). A driving groove (806) is provided on the inner wall of the driving plate (805). The driving groove (806) abuts against the shrinking inclined block (808). The width of the shrinking inclined block (808) increases from top to bottom. A top plate (807) is fixedly installed at the bottom of the shrinking inclined block (808). The top plate (807) is slidably connected to the side wall of the drive plate (8). The top plate (807) matches the fixed plate (509).
9. A cabinet strength testing device for bathroom cabinet processing according to claim 8, characterized in that, The outer wall of the bidirectional lead screw (504) is provided with a reset groove (510), and a reset spring (511) is installed inside the reset groove. The other end of the reset spring (511) is fixedly connected to one end face of the reset plate (512). One end of the reset plate (512) is hinged to the inner wall of the reset groove (510), and the other end of the reset plate (512) is matched with the inner ring groove (513). The inner ring groove (513) is located on the inner wall of the drive gear (506), and there are multiple inner ring grooves (513).
10. A cabinet strength testing device for bathroom cabinet processing according to claim 9, characterized in that, A baffle (201) is fixedly installed on the outer wall of the conveyor belt (2), and there are multiple baffles (201); The conveyor belt (2) is internally driven by a drive cylinder (202). A conveyor shaft (203) is fixedly installed at the shaft center of the drive cylinder (202). A sleeve (206) is unidirectionally driven connected to the outer wall of the conveyor shaft (203). The connection method between the sleeve (206) and the conveyor shaft (203) is the same as the connection method between the bidirectional lead screw (504) and the drive gear (506). A conveyor gear (204) is unidirectionally driven connected to the outer wall of the sleeve (206). The internal structure of the conveyor gear (204) is opposite to the internal structure of the sleeve (206). The conveyor gear (204) meshes with the conveyor tooth plate (809). A second spiral spring (205) is fixedly installed on the outer wall of the conveying shaft (203), and the other end of the second spiral spring (205) is fixedly connected to the outer wall of the test box (3).