A device for detecting the flatness of a bathroom mirror surface and its usage method
By designing a bathroom mirror flatness detection device including a driving component, an auxiliary mobile component and a detection device, the problem of inefficiency of existing equipment is solved, and automated synchronous detection of concave and convex surfaces and defect marking are realized, which improves detection efficiency and practicality.
Patent Information
- Application Number
- CN202510362808.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-26
- Publication Date
- 2025-06-03
- Estimated Expiration
- 2045-03-26
AI Technical Summary
The existing bathroom mirror flatness detection equipment is inefficient and cannot realize automated synchronous detection of concave and convex surfaces and defect markings.
A device including a test bench, a drive assembly, an auxiliary mobile assembly and a detection device is designed. The driving component drives the auxiliary moving component and the detection device to move along the bathroom mirror surface, and the detection and marking of the concave and convex surfaces are achieved using the reaction component and the mating component.
Automatic synchronous detection of concave and convex surfaces of the bathroom mirror and defect marking are realized, which improves detection efficiency and practicality, and avoids the steps of manual adjustment and manual marking.
Smart Images

Figure CN119901248B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of mirror detection equipment, and specifically to a bathroom mirror surface flatness detection equipment and its use method. Background Technique
[0002] A bathroom mirror is a mirror placed in the bathroom for people to wash and groom, and is an indispensable part of the bathroom space.
[0003] In the prior art, when detecting the flatness of a bathroom mirror, it is usually necessary to control the detection equipment to move along the surface of the bathroom mirror. During a single movement, by adjusting the detection method of the detection equipment, usually only a single detection of the concave or convex surface of the bathroom mirror surface can be performed, with insufficient convenience, resulting in low detection efficiency. At the same time, when a defect is detected, it is often necessary for the staff to manually mark the defect to facilitate subsequent work, with insufficient practicality. Therefore, a device is needed that can automatically detect the concave and convex surfaces of the bathroom mirror surface simultaneously and mark the defective parts to avoid low detection efficiency and insufficient practicality. Summary of the Invention
[0004] The purpose of the present invention is to provide a bathroom mirror surface flatness detection equipment and its use method to solve the problems raised in the above background technique. To achieve the above purpose, the present invention provides the following technical solution: A bathroom mirror surface flatness detection equipment, including a test bench, on which there is a placement table for placing the bathroom mirror. On one side of the placement table, there is a driving component, on which there is an auxiliary moving component, and on the auxiliary moving component, there are several detection devices for detection. The several detection devices are arranged at equal intervals. At the side end of each detection device, there is a starting component, and at the side end of the starting component, there is a marking component. The detection device includes a reaction component and a matching component. The reaction component is arranged on the auxiliary moving component, and the matching component is arranged on one side of the reaction component.
[0005] Preferably, the driving component includes a driving frame arranged on one side of the placement table. The bottom of the driving frame is connected to the top of the test bench. A driving disk is rotatably connected to the driving frame. Below the driving disk, there is a driving motor, and the output end of the driving motor is connected to the center of the driving disk. Above the driving disk, there is a driving rod, and the end of the driving rod is hinged to the center of the driving disk. The other end of the driving rod is hinged to the end of a linkage rod, and the other end of the linkage rod is hinged to the end of a connecting frame on the side of a sliding frame. The sliding frame is slidably arranged between two sliding tracks. The sliding frame is located above the placement table. The two sliding tracks are symmetrically arranged on both sides of the placement table, and the bottom of the sliding track is connected to the top of the test bench.
[0006] Preferably, the auxiliary moving component includes a moving frame, the moving frame is slidably arranged at the bottom of the sliding frame, the side end of the moving frame is movably connected to the inner wall of the sliding frame through a spring telescopic rod, a spring rod is arranged at the top of the end of the moving frame away from the spring telescopic rod, several spring holes are arranged on the side of the sliding frame away from the spring telescopic rod and are used in cooperation with the spring rod, the several spring holes are arranged at equal distances, several first wedge-shaped blocks are arranged at equal distances on the side of the moving frame away from the driving frame, a resisting frame is arranged on the side of the placing table away from the driving frame, the bottom of the resisting frame is connected to the top of the test table, several second wedge-shaped blocks are arranged on the resisting frame and are used in cooperation with the first wedge-shaped blocks, the several second wedge-shaped blocks are arranged at equal distances, when the moving frame drives the first wedge-shaped block to abut against the second wedge-shaped block, the moving frame can stretch the spring telescopic rod through the inclined plane and make the spring rod move into the adjacent spring hole.
[0007] Preferably, the reaction component includes an L-shaped frame, the L-shaped frame is arranged between the two first wedge-shaped blocks, one side of the top of the L-shaped frame is connected to the side end of the moving frame, a reaction slide rail is arranged at the bottom of the side surface of the L-shaped frame, the side end of the reaction slide rail is connected to the side end of the L-shaped frame, a reaction frame is slidably arranged on the reaction slide rail, an ink outlet cavity is arranged on the side of the reaction frame away from the reaction slide rail, a marking pen is communicated with the bottom of the ink outlet cavity, the output end of the marking pen is arranged downward, a support is arranged above the reaction slide rail, the side end of the support is connected to the side end of the L-shaped frame, a reaction disk is rotatably connected to the support through a rotating shaft, a sleeve is sleeved on the end of the rotating shaft away from the support, a reaction rod is hinged to the eccentric position on the side of the sleeve away from the support, the other end of the reaction rod is hinged to the side end of the reaction frame, a horizontal clamping rod is arranged on the reaction disk, the side end of the clamping rod is movably connected to the locking frame on the side end of the support through a compression spring, a gravity arc block is arranged on the side of the reaction disk away from the support, the side end of the gravity arc block is connected to the side end of the sleeve, the gravity arc block is initially located above and on the side of the sleeve, and a limiting arc frame is arranged on the gravity arc block, and the side end of the limiting arc frame is connected to the side end of the support.
[0008] Preferably, the cooperation assembly includes a connecting pipe, which is horizontally arranged on the side of the ink outlet cavity away from the reaction rod. Both the upper and lower sides of the connecting pipe are connected to the side ends of the L-shaped frame through L-shaped connecting frames. One end of the connecting pipe close to the ink outlet cavity is slidably matched with the ink outlet cavity. A folding pipe is communicated inside one end of the connecting pipe close to the ink outlet cavity. The other end of the folding pipe is connected to the feeding end of the marker pen through the ink outlet cavity. A moving door is slidably arranged up and down inside the connecting pipe. A plurality of through holes are formed on both the upper and lower sides of the moving door. The top of the moving door is hinged to one end of a trigger rod through a curved connecting rod. The center of the trigger rod is rotationally connected to a fixed-point frame through a first coil spring. The side end of the fixed-point frame is connected to the side end of the L-shaped frame. The other end of the trigger rod is hinged to a pulling rod. The end of the pulling rod away from the trigger rod is hinged to a reference frame on the side end of the reaction frame. When the trigger rod is in a horizontal state, the moving door is located inside the connecting pipe, and the through holes on the moving door are all located inside the inner wall of the linkage pipe.
[0009] Preferably, the starting assembly includes a trigger bevel gear, which is arranged above the connecting pipe and on the side of the bracket away from the reaction rod. The center of the trigger bevel gear is connected to the end of a rotating shaft. A horizontally arranged linkage bevel gear is arranged above the trigger bevel gear. The included angle between the linkage bevel gear and the trigger bevel gear is 90 degrees. The center of the linkage bevel gear is rotationally connected to an auxiliary frame. The side end of the auxiliary frame is connected to the side end of the bracket. A trigger wheel is arranged above the auxiliary frame. The center of the trigger wheel is connected to the center of the linkage bevel gear. The side end of the trigger wheel abuts against one side of the bottom of a transmission roller. The center of the transmission roller is rotationally connected to the bottom of a moving frame. The diameter of the bottom of the transmission roller is larger than that of the top of the transmission roller. A control wheel is arranged on one side of the top of the transmission roller. The side end of the control wheel abuts against one side of the top of the transmission roller. The center of the control wheel is connected to the bottom of the moving frame through a control shaft. The outer side of the control shaft is rotationally connected to the top of a discharge bin through a second coil spring. The discharge bin is located below the control wheel. The top of the discharge bin is connected to the bottom of the moving frame.
[0010] The top of the trigger column is movably connected to the top of the discharge bin through a return spring, and the bottom of the control shaft is located in the trigger column and slides up and down with it. A rotating column is provided in the trigger column, and the top of the rotating column is connected to the bottom of the control shaft. Two spiral arc-shaped pressure pieces are provided on the rotating column, and the two arc-shaped pressure pieces are arranged in opposite directions. A horizontally arranged matching rod is provided above the bottom of each arc-shaped pressure piece, and the end of the matching rod is connected to the inner wall of the adjacent trigger column. When the control shaft rotates, the rotating column can be driven to rotate synchronously, and when the two arc-shaped pressure pieces and the matching rod are matched, the trigger column moves up along the inner wall of the discharge bin and compresses the return spring. The bottom of the discharge bin is connected to the feeding end of the communicating pipe away from the ink discharge cavity through the discharge pipe.
[0011] Preferably, the method for using the bathroom mirror surface flatness detection device comprises the following steps:
[0012] S1: The staff first places the bathroom mirror on the placement table, and then controls the driving motor to work, thereby driving the driving disk to rotate on the driving frame, and then through the cooperation of the driving rod and the linkage, it can drive the sliding frame to reciprocate between the two sliding rails, thereby driving a number of detection devices to move along the surface of the bathroom mirror to complete the detection work. When the sliding frame moves to the side of the abutment frame, the detection device moves to the side of the bathroom mirror away from the driving frame, and through the cooperation of the first wedge block and the second wedge block, the moving frame stretches the spring telescopic rod, thereby driving the spring rod to disengage from the spring hole and move to the adjacent spring hole to lock, thereby driving a number of detection devices to move in a direction parallel to the sliding frame, and approach the direction of the driving frame with the cooperation of the linkage rod, thereby facilitating the completion of all detection of the bathroom mirror surface;
[0013] S2: During the movement of several detection devices, the output end of the marking pen is in contact with the mirror surface at this time. Under the resistance force of the marking pen, through the cooperation of the reaction frame and the reaction rod, the gravity arc block is kept stationary, and at the same time, the trigger rod is in a horizontal state. When there is a concave surface on the mirror surface, at this time, the bottom of the marking pen loses the resistance force, the ink outlet cavity and the reaction frame move downward along the direction of the reaction slide rail, and drive the sleeve and the rotating shaft to deflect through the reaction rod. Thus, the gravity of the gravity arc block can stretch and compress the spring through the clamping rod, thereby triggering the start-up component to work. When the reaction frame moves downward, the pulling rod is driven by the reference frame, so that the trigger rod deflects on the fixed-point frame, and then drives the moving door to move upward along the connecting pipe through the curved connecting rod, so that the through hole is located in the connecting pipe, so that the ink can enter the marking pen through the connecting pipe. After moving over the concave surface, due to the resistance force between the marking pen and the mirror surface and the synchronous action of the first coil spring, the reaction frame is reset. At this time, the gravity arc block and the compression spring are reset synchronously. When encountering a convex surface, when the convex surface squeezes the output end of the marking pen, the reaction frame moves upward, and during the upward movement, drives the gravity arc block to deflect and synchronously trigger the start-up component to work, and drives the trigger rod to deflect through the pulling rod, so that the moving door moves downward, and at the same time, the through hole is located in the connecting pipe, and the reset is completed after moving over the convex surface;
[0014] S3: When the marking pen encounters concave and convex surfaces, at this time, the trigger bevel gear rotates under the action of the rotating shaft, thereby driving the linkage bevel gear and the trigger wheel to rotate synchronously on the auxiliary frame, and then driving the control wheel to deflect synchronously through the transmission roller. Since the diameter of the bottom of the transmission roller is larger than that of the top, the control wheel can amplify the rotation force of the trigger wheel, and then the control shaft rotates synchronously, and then the rotating column rotates synchronously. Through the cooperation of the two arc pressing parts and the matching rod, the trigger column is driven to move upward along the inner wall of the material outlet bin and compress the return spring to complete energy storage. Until the arc pressing part is separated from the matching rod, the trigger column is released and reset through the compressed return spring, thereby instantly squeezing the ink in the material outlet bin, so that it enters the connecting pipe through the material outlet pipe, and flows through the through hole into the marking pen to complete the marking of the defective part, and then quickly reacts to the defective part for marking.
[0015] Compared with the prior art, the beneficial effects of the present invention are:
[0016] In the present invention, when the device is in use, the staff first place the bathroom mirror on the placement table, and then control the driving component to work, so as to drive the auxiliary moving component and several detection devices to move along the surface of the bathroom mirror. During the movement, when encountering unevenness on the mirror surface, the reaction component can be triggered to work, thereby driving the cooperation component to work, activating the marking component, and triggering the starting component to work during the operation of the reaction component, so as to quickly mark the defective part, thereby improving the accuracy of the marking. After the marking is completed, the reaction component drives the cooperation component to complete automatic reset, which is convenient for the continuous detection process. When several detection devices move to the other side of the bathroom mirror surface, the auxiliary moving component drives several detection devices to translate, and synchronously drives several detection devices to move along the bathroom mirror surface again under the action of the driving component, so as to complete the detection of the entire bathroom mirror surface. During this process, it is thus avoided that the staff manually adjusts the detection equipment to detect the uneven surface of the bathroom mirror, improving the convenience during work, thereby improving the detection efficiency. At the same time, it is avoided that the staff manually marks the defective part, which is convenient for subsequent work, thereby improving the practicability of the device. And the area of the bathroom mirror can be measured by the distance that the auxiliary moving component moves when the moving distance of the driving component is fixed, thus realizing the simultaneous automatic detection of the uneven surface of the bathroom mirror and marking of the defective part, achieving the effects of high detection efficiency and high practicability.
[0017] In the present invention, the staff first place the bathroom mirror on the placement table, and then control the driving motor to work, so as to drive the driving disk to rotate on the driving frame. Then, through the cooperation of the driving rod and linkage, the sliding frame can be driven to reciprocate between the two sliding tracks, so as to drive several detection devices to move along the surface of the bathroom mirror to complete the detection work. When the sliding frame moves to one side of the abutment frame, at this time the detection device moves to the side of the bathroom mirror surface away from the driving frame. Through the cooperation of the first wedge block and the second wedge block, the moving frame stretches the spring telescopic rod, so as to drive the spring rod to disengage from the spring hole and move into the adjacent spring hole to be locked, thereby driving several detection devices to move in a direction parallel to the sliding frame and approaching the driving frame under the cooperation of the linkage rod, so as to facilitate the completion of the detection of the entire bathroom mirror surface. And the distance that the moving frame moves can be obtained by the number of spring holes that the spring rod moves. Based on the fixed moving distance value of the sliding frame, the area of the bathroom mirror can be measured, further improving the convenience during work.
[0018] In the present invention, during the movement of several detection devices, the output end of the marking pen is in contact with the mirror surface at this time. Under the resistance force of the marking pen, through the cooperation of the reaction frame and the reaction rod, the gravity arc block is kept stationary, and at the same time, the trigger rod is in a horizontal state. When there is a concave surface on the mirror surface, at this time, the bottom of the marking pen loses the resistance force, and the ink outlet cavity and the reaction frame move downward along the direction of the reaction slide rail, and drive the sleeve and the rotating shaft to deflect through the reaction rod. Thus, the gravity of the gravity arc block can stretch the compression spring through the clamping rod, thereby triggering the start-up component to work. When the reaction frame moves downward, the pull rod is driven by the reference frame, so that the trigger rod deflects on the fixed-point frame, and then drives the moving door to move upward along the connecting pipe through the curved connecting rod, so that the through hole is located in the connecting pipe, so that the ink can enter the marking pen through the connecting pipe. After moving over the concave surface, due to the resistance force between the marking pen and the mirror surface and the synchronous action of the first coil spring, the reaction frame is reset. At this time, the gravity arc block and the compression spring are reset synchronously. When encountering a convex surface, when the convex surface presses against the output end of the marking pen, the reaction frame moves upward, and during the upward movement, drives the gravity arc block to deflect and synchronously trigger the start-up component to work, and drives the trigger rod to deflect through the pull rod, so that the moving door moves downward, and synchronously makes the through hole located in the connecting pipe, and completes the reset after moving over the convex surface, thus facilitating the continuity of the detection process, avoiding the need for staff to manually adjust the detection equipment to detect the concave and convex surfaces of the bathroom mirror, improving the convenience during work, and thus improving the detection efficiency.
[0019] In the present invention, when the marking pen encounters concave and convex surfaces, at this time, the trigger bevel gear rotates under the action of the rotating shaft, thereby driving the linkage bevel gear and the trigger wheel to rotate synchronously on the auxiliary frame. Then, the control wheel is driven to deflect synchronously through the transmission roller. Since the diameter of the bottom of the transmission roller is larger than that of the top, the control wheel can amplify the rotation force of the trigger wheel, and thus the control shaft rotates synchronously, and the rotating column rotates synchronously. Through the cooperation of the two arc pressing members and the cooperation rod, the trigger column is driven to move upward along the inner wall of the material outlet bin, and the reset spring is compressed to complete energy storage. Until the arc pressing member is separated from the cooperation rod, the trigger column is released and reset by the compressed reset spring, thereby instantly squeezing the ink in the material outlet bin, enabling it to enter the connecting pipe through the material outlet pipe, and flowing through the through hole into the marking pen to complete the marking of the defective part. Thus, the defective part is quickly marked, improving the accuracy of the marking. At the same time, it avoids the need for staff to manually mark the defective part, thus facilitating the subsequent work and improving the practicality of the device. By setting the second coil spring, it can have enough compression distance when encountering excessive concave and convex surfaces, further improving the flexibility of the device. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 is a schematic three-dimensional structure of the present invention Figure 1 ;
[0021] Figure 2 Schematic of the three-dimensional structure of the present invention Figure 2 ;
[0022] Figure 3 Schematic of the partial three-dimensional structure of the present invention Figure 1 ;
[0023] Figure 4 Schematic of the partial three-dimensional structure of the drive assembly and the auxiliary moving assembly in the present invention;
[0024] Figure 5 Schematic of the partial three-dimensional structure of the auxiliary moving assembly in the present invention;
[0025] Figure 6 Schematic of the partial three-dimensional structure of the present invention Figure 2 ;
[0026] Figure 7 Schematic of the partial three-dimensional structure of the present invention Figure 3 ;
[0027] Figure 8 Schematic of the partial three-dimensional structure of the detection device in the present invention Figure 1 ;
[0028] Figure 9 Schematic of the partial three-dimensional structure of the detection device in the present invention Figure 2 ;
[0029] Figure 10 Schematic of the partial exploded three-dimensional structure of the present invention;
[0030] Figure 11 Schematic of the partial three-dimensional structure of the detection device in the present invention Figure 3 ;
[0031] Figure 12 Schematic of the partial three-dimensional structure of the detection device and the starting assembly in the present invention;
[0032] Figure 13 Schematic of the partial three-dimensional structure of the starting assembly in the present invention;
[0033] Figure 14 Cross-sectional view of the discharge bin in the present invention;
[0034] Figure 15 Cross-sectional view of the trigger post in the present invention.
[0035] In the figure: 1. Test bench; 2. Placing table; 3. Driving assembly; 31. Driving frame; 32. Driving disc; 33. Driving motor; 34. Driving rod; 35. Linking rod; 36. Sliding frame; 37. Connecting frame; 38. Sliding track; 4. Auxiliary moving assembly; 41. Moving frame; 42. Spring telescopic rod; 43. Spring rod; 44. Spring hole; 45. First wedge block; 46. Contact frame; 47. Second wedge block; 5. Detection device; 51. Reaction assembly; 511. L-shaped frame; 512. Reaction sliding rail; 513. Reaction frame; 514. Ink outlet cavity; 515. Marker pen; 516. Bracket; 517. Rotating shaft; 518. Reaction disc; 519. Sleeve; 520. Reaction rod; 521. Clamping rod; 522. Compression spring; 523. Locking frame; 524. Gravity arc block; 525. Limit arc frame; 53. Matching assembly; 531. Connecting pipe; 532. L-shaped connecting frame; 533. Moving door; 534. Through hole; 535. Curved connecting rod; 536. Trigger rod; 537. First coil spring; 538. Fixed-point frame; 539. Pulling rod; 540. Reference frame; 6. Starting assembly; 61. Trigger bevel gear; 62. Linking bevel gear; 63. Auxiliary frame; 64. Trigger wheel; 65. Transmission roller; 66. Control wheel; 67. Control shaft; 68. Second coil spring; 69. Feeding bin; 7. Marking assembly; 71. Trigger column; 72. Return spring; 73. Rotating column; 74. Arc pressing part; 75. Matching rod; 76. Discharge pipe. Specific implementation manner
[0036] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative work fall within the protection scope of the present invention.
[0037] Please refer to Figures 1 to 15 , the present invention provides a technical solution: a device for detecting the flatness of a bathroom mirror surface, including a test bench 1, a placing table 2 for placing a bathroom mirror is provided on the test bench 1, a driving assembly 3 is provided on one side of the placing table 2, an auxiliary moving assembly 4 is provided on the driving assembly 3, a plurality of detection devices 5 for detection are provided on the auxiliary moving assembly 4, the plurality of detection devices 5 are equidistantly arranged, a starting assembly 6 is provided at the side end of each detection device 5, and a marking assembly 7 is provided at the side end of the starting assembly 6. The detection device 5 includes a reaction assembly 51 and a matching assembly 53. The reaction assembly 51 is arranged on the auxiliary moving assembly 4, and the matching assembly 53 is arranged on one side of the reaction assembly 51.
[0038] In this embodiment, asFigure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 As shown in Figure 4 , the drive assembly 3 includes a drive frame 31. The drive frame 31 is arranged on one side of the placement table 2. The bottom of the drive frame 31 is connected to the top of the test table 1. A drive disk 32 is rotatably connected to the drive frame 31. Below the drive disk 32, there is a drive motor 33. The output end of the drive motor 33 is connected to the center of the drive disk 32. Above the drive disk 32, there is a drive rod 34. The end of the drive rod 34 is hinged to the center of the drive disk 32. The other end of the drive rod 34 is hinged to the end of a linkage rod 35. The other end of the linkage rod 35 is hinged to the end of a connecting frame 37 on the side of a sliding frame 36. The sliding frame 36 is slidably arranged between two sliding tracks 38. The sliding frame 36 is located above the placement table 2. The two sliding tracks 38 are symmetrically arranged on both sides of the placement table 2. The bottom of the sliding track 38 is connected to the top of the test table 1;
[0039] The auxiliary movement assembly 4 includes a movement frame 41. The movement frame 41 is slidably arranged at the bottom of the sliding frame 36. The side end of the movement frame 41 is movably connected to the inner wall of the sliding frame 36 through a spring telescopic rod 42. At the top of the end of the movement frame 41 away from the spring telescopic rod 42, there is a spring rod 43. On the side of the sliding frame 36 away from the spring telescopic rod 42, there are several spring holes 44 that cooperate with the spring rod 43. The several spring holes 44 are arranged at equal distances. On the side of the movement frame 41 away from the drive frame 31, there are several equally spaced first wedge-shaped blocks 45. On the side of the placement table 2 away from the drive frame 31, there is a contact frame 46. The bottom of the contact frame 46 is connected to the top of the test table 1. On the contact frame 46, there are several second wedge-shaped blocks 47 that cooperate with the first wedge-shaped blocks 45. The several second wedge-shaped blocks 47 are arranged at equal distances. When the movement frame 41 drives the first wedge-shaped blocks 45 to contact the second wedge-shaped blocks 47, the movement frame 41 can stretch the spring telescopic rod 42 through the inclined surface and move the spring rod 43 into the adjacent spring hole 44.
[0040] In this embodiment, as shown in Figure 6 , Figure 7 , Figure 8 , Figure 9 , Figure 10 and Figure 11As shown, the reaction component 51 includes an L-shaped frame 511, which is arranged between two first wedge-shaped blocks 45. One side of the top of the L-shaped frame 511 is connected to the side end of the moving frame 41. The bottom of the side of the L-shaped frame 511 is provided with a reaction slide rail 512, and the side end of the reaction slide rail 512 is connected to the side end of the L-shaped frame 511. A reaction frame 513 is slidably arranged on the reaction slide rail 512. An ink outlet cavity 514 is arranged on the side of the reaction frame 513 away from the reaction slide rail 512. A marking pen 515 is communicated with the bottom of the ink outlet cavity 514, and the output end of the marking pen 515 is arranged downward. A support 516 is arranged above the reaction slide rail 512, and the side end of the support 516 is connected to the side end of the L-shaped frame 511. A reaction disc 518 is rotatably connected to the support 516 through a rotating shaft 517. A sleeve 519 is sleeved on the end of the rotating shaft 517 away from the support 516. A reaction rod 520 is hinged to the eccentric position on the side of the sleeve 519 away from the support 516, and the other end of the reaction rod 520 is hinged to the side end of the reaction frame 513. A horizontal clamping rod 521 is arranged on the reaction disc 518, and the side end of the clamping rod 521 is movably connected to a locking frame 523 on the side end of the support 516 through a compression spring 522. A gravity arc-shaped block 524 is arranged on the side of the reaction disc 518 away from the support 516, and the side end of the gravity arc-shaped block 524 is connected to the side end of the sleeve 519. The gravity arc-shaped block 524 is initially located above the sleeve 519 on one side. A limiting arc-shaped frame 525 is arranged on the gravity arc-shaped block 524, and the side end of the limiting arc-shaped frame 525 is connected to the side end of the support 516;
[0041] The matching component 53 includes a communication pipeline 531 which is horizontally arranged on the side of the ink outlet cavity 514 away from the reaction rod 520. Both the upper and lower sides of the communication pipeline 531 are connected to the side end of the L-shaped frame 511 through L-shaped connecting frames 532. One end of the communication pipeline 531 close to the ink outlet cavity 514 is in sliding fit with the ink outlet cavity 514. A folding pipe is communicated inside one end of the communication pipeline 531 close to the ink outlet cavity 514. The other end of the folding pipe is connected to the feeding end of the marker pen 515 through the ink outlet cavity 514. A moving door 533 is slidably arranged up and down inside the communication pipeline 531. A plurality of through holes 534 are formed on both the upper and lower sides of the moving door 533. The top of the moving door 533 is hinged to one end of a trigger rod 536 through a curved connecting rod 535. The center of the trigger rod 536 is rotationally connected to a fixed-point frame 538 through a first coil spring 537. The side end of the fixed-point frame 538 is connected to the side end of the L-shaped frame 511. The other end of the trigger rod 536 is hinged to a pulling rod 539. The end of the pulling rod 539 away from the trigger rod 536 is hinged to a reference frame 540 on the side end of the reaction frame 513. When the trigger rod 536 is in a horizontal state, at this time the moving door 533 is located inside the connecting barrel pipeline, and the through holes 534 on the moving door 533 are all located in the inner wall of the linkage pipeline.
[0042] In this embodiment, as Figure 12 , Figure 13 , Figure 14 and Figure 15 shown, the starting component 6 includes a trigger bevel gear 61 which is arranged above the communication pipeline 531 and on the side of the bracket 516 away from the reaction rod 520. The center of the trigger bevel gear 61 is connected to the end of a rotating shaft 517. A horizontally arranged linkage bevel gear 62 is arranged above the trigger bevel gear 61. The included angle between the linkage bevel gear 62 and the trigger bevel gear 61 is 90 degrees. The center of the linkage bevel gear 62 is rotationally connected to an auxiliary frame 63. The side end of the auxiliary frame 63 is connected to the side end of the bracket 516. A trigger wheel 64 is arranged above the auxiliary frame 63. The center of the trigger wheel 64 is connected to the center of the linkage bevel gear 62. The side end of the trigger wheel 64 abuts against one side of the bottom of a transmission roller 65. The center of the transmission roller 65 is rotationally connected to the bottom of a moving frame 41. The diameter of the bottom of the transmission roller 65 is larger than the diameter of the top of the transmission roller 65. A control wheel 66 is arranged on one side of the top of the transmission roller 65. The side end of the control wheel 66 abuts against one side of the top of the transmission roller 65. The center of the control wheel 66 is connected to the bottom of the moving frame 41 through a control shaft 67. The outer side of the control shaft 67 is rotationally connected to the top of a discharge bin 69 through a second coil spring 68. The discharge bin 69 is located below the control wheel 66. The top of the discharge bin 69 is connected to the bottom of the moving frame 41;
[0043] The marking component 7 includes a trigger post 71 which is rotatably arranged in the discharge bin 69. The trigger post 71 is in sliding fit with the inner wall of the discharge bin 69 in the up-and-down direction. The center of the top of the trigger post 71 is in rotational fit with the control shaft 67. The top of the trigger post 71 is movably connected to the top inside the discharge bin 69 through a return spring 72. The bottom of the control shaft 67 is located inside the trigger post 71 and is in sliding fit with it in the up-and-down direction. A rotating post 73 is arranged inside the trigger post 71. The top of the rotating post 73 is connected to the bottom of the control shaft 67. Two spiral arc-shaped pressing members 74 are arranged on the rotating post 73. The two arc-shaped pressing members 74 are arranged in a mirror-image opposite manner. A horizontally arranged mating rod 75 is provided above the bottom of each arc-shaped pressing member 74. The end of the mating rod 75 is connected to the inner wall of the adjacent trigger post 71. When the control shaft 67 rotates, it can drive the rotating post 73 to rotate synchronously, and through the cooperation of the two arc-shaped pressing members 74 and the mating rod 75, the trigger post 71 moves upward along the inner wall of the discharge bin 69 and compresses the return spring 72. The bottom of the discharge bin 69 is connected to the feed end of the communication pipe 531 away from the ink outlet cavity 514 through a discharge pipe 76.
[0044] The usage method and advantages of the present invention: The usage method of the bathroom mirror surface flatness detection device is as follows, and the working process is as follows:
[0045] As Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 、 Figure 6 、 Figure 7 、 Figure 8 、 Figure 9 、 Figure 10 、 Figure 11 、 Figure 12 、 Figure 13 、 Figure 14 and Figure 15 shown:
[0046] S1: The staff first places the bathroom mirror on the placement table 2, and then controls the driving motor 33 to work, thereby driving the driving disk 32 to rotate on the driving frame 31, and then through the cooperation of the driving rod 34 and the linkage, it can drive the sliding frame 36 to reciprocate between the two sliding rails 38, so as to drive a number of detection devices 5 to move along the surface of the bathroom mirror to complete the detection work. When the sliding frame 36 moves to the side of the abutting frame 46, the detection device 5 moves to the side of the bathroom mirror away from the driving frame 31, and through the cooperation of the first wedge block 45 and the second wedge block 47, the moving frame 41 stretches the spring telescopic rod 42, thereby driving the spring rod 43 to disengage from the spring hole 44 and move to the adjacent spring hole 44 to lock, thereby driving a number of detection devices 5 to move in a direction parallel to the sliding frame 36, and approach the direction of the driving frame 31 with the cooperation of the linkage rod 35, so as to facilitate the completion of the entire detection of the bathroom mirror surface;
[0047] S2: During the movement of several detection devices 5, the output end of the marking pen 515 is in contact with the mirror surface. Under the resistance of the marking pen 515, the reaction frame 513 and the reaction rod 520 cooperate to keep the gravity arc block 524 still and synchronously keep the trigger rod 536 in a horizontal state. When a concave surface appears on the mirror surface, the bottom of the marking pen 515 loses the resistance, and the ink outlet cavity 514 and the reaction frame 513 move downward along the direction of the reaction slide rail 512, and the reaction rod 520 drives the sleeve 519 and the rotating shaft 517 to deflect, so that the gravity of the gravity arc block 524 itself can stretch the compression spring 522 through the clamping rod 521, thereby triggering the start component 6 to work, and when the reaction frame 513 moves downward, the reference frame 540 drives the pulling rod 539 to make the trigger rod 536 on the fixed point frame 538. The movable door 533 is deflected, thereby driving the movable door 533 to move upward along the connecting pipe 531 through the curved connecting rod 535 so that the through hole 534 is located in the connecting pipe 531, so that the ink can enter the marking pen 515 through the connecting pipe 531, and after moving over the concave surface, the resistance force between the marking pen 515 and the mirror surface is synchronously acted upon by the first coil spring 537, so that the reaction frame 513 is reset. At this time, the gravity arc block 524 and the compression spring 522 are synchronously reset. When encountering a convex surface, the reaction frame 513 can be moved upward by squeezing the convex surface and the output end of the marking pen 515, and in the process of moving upward, the gravity arc block 524 is driven to deflect and synchronously trigger the start component 6 to work, and the trigger rod 536 is driven to deflect by the pulling rod 539, so that the movable door 533 moves downward, synchronously making the through hole 534 located in the connecting pipe 531, and the reset is completed after moving over the convex surface;
[0048] S3: When the marker pen 515 encounters an uneven surface, the bevel gear 61 is triggered to rotate under the action of the rotating shaft 517 at this time, thereby driving the linkage bevel gear 62 and the trigger wheel 64 to rotate synchronously on the auxiliary frame 63, and then driving the control wheel 66 to deflect synchronously through the transmission roller 65. Since the diameter of the bottom of the transmission roller 65 is larger than that of the top, the control wheel 66 can amplify the rotation force of the trigger wheel 64, and then the control shaft 67 rotates synchronously, so that the rotating column 73 rotates synchronously. Through the cooperation of the two arc-shaped pressing members 74 and the matching rod 75, the trigger column 71 is driven to move upward along the inner wall of the discharge bin 69, and the return spring 72 is compressed to complete energy storage. Until the arc-shaped pressing member 74 is separated from the matching rod 75, the trigger column 71 is released and reset by the compressed return spring 72, thereby instantly squeezing the ink in the discharge bin 69, enabling it to enter the communication pipeline 531 through the discharge pipe 76, and flowing through the through hole 534 into the marker pen 515 to complete the marking of the defective part, and then quickly reacting to the defective part for marking.
[0049] The above shows and describes the basic principle, main features and advantages of the present invention. Those skilled in the art of this industry should understand that the present invention is not limited by the above embodiments. The above embodiments and descriptions in the specification are only preferred examples of the present invention and are not used to limit the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.
Claims
1. A bathroom mirror surface flatness detection device, characterized by: The test bench (1) comprises a placement table (2) for placing a bathroom mirror, a driving assembly (3) is provided on one side of the placement table (2), an auxiliary moving assembly (4) is provided on the driving assembly (3), a plurality of detection devices (5) for detection are provided on the auxiliary moving assembly (4), the plurality of detection devices (5) are arranged equidistantly, a starting assembly (6) is provided at the side end of each detection device (5), a marking assembly (7) is provided at the side end of the starting assembly (6), the detection device (5) comprises a reaction assembly (51) and a matching assembly (53), the reaction assembly (51) is arranged on the auxiliary moving assembly (4), and the matching assembly (53) is arranged on one side of the reaction assembly (51); The driving assembly (3) comprises a driving frame (31), the driving frame (31) being arranged on one side of the placement table (2), the bottom of the driving frame (31) being connected to the top of the test table (1), the driving frame (31) being rotatably connected to a driving disk (32), a driving motor (33) being arranged below the driving disk (32), the output end of the driving motor (33) being connected to the center of the driving disk (32), a driving rod (34) being arranged above the driving disk (32), the end of the driving rod (34) being connected to the driving disk (32), and the driving rod (34) being connected to the driving disk (32). The moving plate (32) is hinged at the center, the other end of the driving rod (34) is hinged to the end of the linkage rod (35), the other end of the linkage rod (35) is hinged to the end of the connecting frame (37) at the side end of the sliding frame (36), the sliding frame (36) is slidably arranged between two sliding rails (38), the sliding frame (36) is located above the placement table (2), the two sliding rails (38) are symmetrically arranged on both sides of the placement table (2), and the bottom of the sliding rail (38) is connected to the top of the test table (1); The auxiliary moving assembly (4) comprises a moving frame (41), the moving frame (41) being slidably arranged at the bottom of the sliding frame (36), the side end of the moving frame (41) being movably connected to the inner wall of the sliding frame (36) via a spring telescopic rod (42), a spring rod (43) being arranged at the top of one end of the moving frame (41) away from the spring telescopic rod (42), a plurality of spring holes (44) for use with the spring rod (43) being arranged at a side of the sliding frame (36) away from the spring telescopic rod (42), the plurality of spring holes (44) being arranged at equal distances, and a plurality of spring holes (44) being arranged at equal distances on a side of the moving frame (41) away from the driving frame (31). A first wedge block (45) is arranged at a certain distance from the driving frame (31); a resistance frame (46) is arranged on a side of the placement table (2) away from the driving frame (31); the bottom of the resistance frame (46) is connected to the top of the test table (1); a plurality of second wedge blocks (47) for use with the first wedge block (45) are arranged on the resistance frame (46); the plurality of second wedge blocks (47) are arranged at equal distances; when the moving frame (41) drives the first wedge block (45) to resist the second wedge block (47), the moving frame (41) can stretch the spring telescopic rod (42) through the inclined surface and move the spring rod (43) into the adjacent spring hole (44).
2. A bathroom mirror surface flatness detection device according to claim 1, characterized in that: The reaction assembly (51) comprises an L-shaped frame (511), wherein the L-shaped frame (511) is arranged between two first wedge-shaped blocks (45), wherein one side of the top of the L-shaped frame (511) is connected to the side end of the moving frame (41), and a reaction slide rail (512) is arranged at the bottom of the side of the L-shaped frame (511), wherein the side end of the reaction slide rail (512) is connected to the side end of the L-shaped frame (511), and a reaction frame (513) is slidably arranged on the reaction slide rail (512). An ink outlet cavity (514) is provided on a side of the frame (513) away from the reaction slide rail (512); a marking pen (515) is provided at the bottom of the ink outlet cavity (514); the output end of the marking pen (515) is arranged downward; a bracket (516) is provided above the reaction slide rail (512); a side end of the bracket (516) is connected to a side end of the L-shaped frame (511); a reaction disk (518) is rotatably connected to the bracket (516) via a rotating shaft (517); ), a sleeve (519) is sleeved on one end of the rotating shaft (517) away from the bracket (516), a reaction rod (520) is hingedly connected to an eccentric portion of the sleeve (519) away from the bracket (516), the other end of the reaction rod (520) is hingedly connected to a side end of the reaction frame (513), a horizontal clamping rod (521) is provided on the reaction disk (518), and the side end of the clamping rod (521) is locked with the side end of the bracket (516) by a compression spring (522). The fixed frame (523) is movably connected, and a gravity arc block (524) is provided on the side of the reaction disk (518) away from the bracket (516), and the side end of the gravity arc block (524) is connected to the side end of the sleeve (519). In the initial state, the gravity arc block (524) is located on the upper side of the sleeve (519), and a limiting arc frame (525) is provided on the gravity arc block (524), and the side end of the limiting arc frame (525) is connected to the side end of the bracket (516).
3. A bathroom mirror surface flatness detection device according to claim 2, characterized in that: The mating component (53) comprises a connecting pipe (531), wherein the connecting pipe (531) is horizontally arranged on a side of the ink outlet cavity (514) away from the reaction rod (520), and the upper and lower sides of the connecting pipe (531) are connected to the side ends of the L-shaped frame (511) through an L-shaped connecting frame (532), and the end of the connecting pipe (531) close to the ink outlet cavity (514) is slidably matched with the ink outlet cavity (514), and the end of the connecting pipe (531) close to the ink outlet cavity (514) is connected to a folding tube, and the other end of the folding tube is connected to the feeding end of the marking pen (515) through the ink outlet cavity (514), and a movable door (533) is provided in the connecting pipe (531) to slide up and down, and the upper and lower sides of the movable door (533) are open. A plurality of through holes (534) are provided. The top of the movable door (533) is hinged to one end of a trigger rod (536) via a curved connecting rod (535). The center of the trigger rod (536) is rotatably connected to a fixed-point frame (538) via a first coil spring (537). The side end of the fixed-point frame (538) is connected to the side end of the L-shaped frame (511). A pulling rod (539) is hinged to the other end of the trigger rod (536). One end of the pulling rod (539) away from the trigger rod (536) is hinged to a reference frame (540) at the side end of the reaction frame (513). When the trigger rod (536) is in a horizontal state, the movable door (533) is located in the barrel-connecting pipe, and the through holes (534) on the movable door (533) are all located in the inner wall of the linkage pipe.
4. A bathroom mirror surface flatness detection device according to claim 3, characterized in that: The starting assembly (6) comprises a trigger bevel gear (61), the trigger bevel gear (61) being arranged above the connecting pipe (531) and located on a side of the bracket (516) away from the reaction rod (520); the center of the trigger bevel gear (61) is connected to the end of the rotating shaft (517); a horizontally arranged linkage bevel gear (62) is arranged above the trigger bevel gear (61); the angle between the linkage bevel gear (62) and the trigger bevel gear (61) is 90 degrees; the center of the linkage bevel gear (62) is rotatably connected to an auxiliary frame (63); the side end of the auxiliary frame (63) is connected to the side end of the bracket (516); a trigger wheel (64) is arranged above the auxiliary frame (63); the center of the trigger wheel (64) is connected to the center of the linkage bevel gear (62). The center of the transmission roller (65) is connected to the bottom of the moving frame (41), the side end of the trigger wheel (64) abuts against one side of the bottom of the transmission roller (65), the center of the transmission roller (65) is rotatably connected to the bottom of the moving frame (41), the diameter of the bottom of the transmission roller (65) is larger than the diameter of the top of the transmission roller (65), one side of the top of the transmission roller (65) is provided with a control wheel (66), the side end of the control wheel (66) abuts against one side of the top of the transmission roller (65), the center of the control wheel (66) is connected to the bottom of the moving frame (41) via a control shaft (67), the outer side of the control shaft (67) is rotatably connected to the top of a discharge bin (69) via a second coil spring (68), the discharge bin (69) is located below the control wheel (66), and the top of the discharge bin (69) is connected to the bottom of the moving frame (41).
5. A bathroom mirror surface flatness detection device according to claim 4, characterized in that: The marking assembly (7) comprises a trigger column (71), the trigger column (71) being rotatably arranged in a discharge bin (69), the trigger column (71) being slidably matched with the inner wall of the discharge bin (69) up and down, the center of the top of the trigger column (71) being rotatably matched with the control shaft (67), the top of the trigger column (71) being movably connected with the top of the discharge bin (69) via a return spring (72), the bottom of the control shaft (67) being located in the trigger column (71) and being slidably matched with the control shaft (67) up and down, a rotating column (73) being arranged in the trigger column (71), the top of the rotating column (73) being connected with the bottom of the control shaft (67), and the rotating column (73) being provided with two spiral An arc-shaped pressure piece (74), wherein the two arc-shaped pressure pieces (74) are arranged in opposite directions in a mirror image, and a horizontally arranged matching rod (75) is provided above the bottom of each arc-shaped pressure piece (74), and the end of the matching rod (75) is connected to the inner wall of the adjacent trigger column (71), and when the control shaft (67) rotates, it can drive the rotating column (73) to rotate synchronously, and through the cooperation of the two arc-shaped pressure pieces (74) and the matching rod (75), the trigger column (71) moves up along the inner wall of the discharge bin (69) and compresses the reset spring (72), and the bottom of the discharge bin (69) is connected to the feed end of the connecting pipe (531) away from the ink discharge cavity (514) through the discharge pipe (76).
6. A method for using a bathroom mirror surface flatness detection device, using the bathroom mirror surface flatness detection device as claimed in any one of claims 1 to 5, characterized in that: The steps include: S1: The staff first places the bathroom mirror on the placement table (2), and then controls the driving motor (33) to work, thereby driving the plurality of detection devices (5) to move along the surface of the bathroom mirror to complete the detection work. When the sliding frame (36) moves to the side of the abutment frame (46), the plurality of detection devices (5) are driven to move in a direction parallel to the sliding frame (36), and approach the driving frame (31) in the cooperation of the linkage rod (35), thereby facilitating the completion of the entire detection of the bathroom mirror surface; S2: During the movement of the plurality of detection devices (5), the output end of the marking pen (515) is in contact with the mirror surface. At this time, under the resistance of the marking pen (515), the starting component (6) is triggered to work, so that the ink can enter the marking pen (515) through the connecting pipe (531), and after moving over the concave surface, the reaction frame (513) is reset. When encountering a convex surface, the reaction frame (513) can be moved upward by squeezing the convex surface and the output end of the marking pen (515), and the starting component (6) is triggered to work synchronously, and reset is completed after moving over the convex surface; S3: When the marking pen (515) encounters a concave or convex surface, the trigger bevel gear (61) rotates under the action of the rotating shaft (517), thereby driving the trigger column (71) to move upward along the inner wall of the discharge bin (69) and compressing the return spring (72) to complete the accumulation of force until the arc-shaped pressing member (74) is out of contact with the matching rod (75), thereby instantly squeezing the ink in the discharge bin (69) and allowing it to enter the connecting pipe (531) through the discharge pipe (76) and flow into the marking pen (515) through the through hole (534) to complete the marking of the defect, thereby quickly responding to the defect and marking it.
Citation Information
Patent Citations
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