Quality detection equipment for silica gel anti-skid socks
By designing a combination of fixing frame, fixed airbag, moving ring and airbag group, multi-stage stretch detection of silicone anti-slip socks and other parts is achieved, solving the problem that the difference between socks and other parts cannot be accurately evaluated in the prior art, and improving the accuracy and practicality of the detection.
Patent Information
- Application Number
- CN202510767226.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-10
- Publication Date
- 2025-08-19
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The prior art cannot intuitively judge the differences between the sock barrels of silicone anti-slip socks and other parts (tensile resistance and fracture strength, etc.), and cannot accurately evaluate their quality.
A detection device including a fixing frame, a fixed airbag, a second electric push rod, a moving ring and an airbag group was designed. Through multi-stage stretch detection, it simulates the stretching and stability of a person when wearing it, and combines an external camera to observe and evaluate the difference between the sock and other parts.
It realizes intuitive judgment of the differences between the silicone anti-slip socks and other parts (tensile resistance and fracture strength, etc.), improves the accuracy and practicality of the detection, and can simulate the stability and tensile resistance in actual wear.
Smart Images

Figure CN120507244A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of socks detection, in particular to a quality detection device for silicone anti-slip socks. Background Art
[0002] In the current production process of silicone anti-slip socks, there are differences in the knitting and sewing processes between the sock barrel and other parts of the silicone anti-slip socks, that is, the performance (tensile strength and breaking strength, etc.) of the sock barrel of the silicone anti-slip socks is different from that of other parts. In the existing technology, when performing stretching and friction tests on silicone anti-slip socks, the existing tests do not take into account the differences in knitting and sewing processes between the sock barrel and other parts of the silicone anti-slip socks. That is, the existing testing methods cannot intuitively judge the differences (tensile strength and breaking strength, etc.) between the sock barrel and other parts of the silicone anti-slip socks, and cannot judge the quality of the sock barrel of the silicone anti-slip socks. Summary of the Invention
[0003] In order to overcome the shortcomings that there are differences in the knitting and sewing processes between the sock tube and other parts of the silicone anti-slip socks, and the existing detection method cannot intuitively judge the differences between the sock tube and other parts of the silicone anti-slip socks, the present invention provides a quality inspection device for silicone anti-slip socks.
[0004] The technical solution is: a quality inspection device for silicone anti-slip socks, including a detection box, a first electric slide rail and a second electric slide rail; the detection box is fixedly connected to the first electric slide rail; the first electric slide rail is fixedly connected to the second electric slide rail through a slider; the device also includes a connecting rod, a foot module, a first electric push rod, a fixed frame, a second electric push rod, a moving ring, a third electric push rod and an airbag group; the second electric slide rail is fixedly connected to the connecting rod through a slider; the connecting rod is fixedly connected to the foot module; the connecting rod is fixedly connected to two first electric push rods; the extension of the two first electric push rods The retracted ends are fixedly connected to a fixed frame; a fixed airbag is provided on the fixed frame, and the fixed airbag cooperates with the fixed frame to clamp and fix the sock opening of the silicone sock; two second electric push rods are fixed to the connecting rod; the telescopic ends of the two second electric push rods are fixedly connected to a movable ring; two sliding grooves are provided on the connecting rod; the two sliding grooves are jointly slidably connected to an airbag group, the airbag group consists of at least six detection airbags, and all the detection airbags do not interfere with each other; two third electric push rods are fixed to the foot module, and the telescopic ends of the two third electric push rods are jointly connected to the airbag group.
[0005] Furthermore, the first electric slide rail extends out of the detection box.
[0006] Furthermore, a plurality of protrusions are provided on the fixed airbag.
[0007] Furthermore, a plurality of convex strips are provided on the inner side of the movable ring.
[0008] Furthermore, the maximum expansion range of the detection airbags on the airbag group gradually decreases.
[0009] Furthermore, the detection airbags on the airbag group are detachably connected to the fabric.
[0010] Furthermore, it also includes an annular airbag, a fourth electric push rod and a fifth electric push rod; a mounting block is provided on the foot module; the mounting block is provided with an annular airbag for expanding the bottom of the silicone sock; the front of the mounting block is fixedly connected to the fourth electric push rod; the rear of the mounting block is fixedly connected to the fifth electric push rod; the mounting block is divided into three parts, and the middle part of the mounting block is connected to the other two parts through the fourth electric push rod and the fifth electric push rod.
[0011] Furthermore, it also includes a sixth electric push rod, a connecting frame and a flat plate; a number of sixth electric push rods are fixedly connected to the detection box; the telescopic ends of all sixth electric push rods are commonly connected to the connecting frame; a flat plate is provided in the middle of the connecting frame; and a slider on the first electric slide rail is provided with a capacitive sensor.
[0012] Furthermore, it also includes a convex strip plate and a convex point plate; the convex strip plate is arranged on the left part of the connecting frame; and the convex point plate is arranged on the right part of the connecting frame.
[0013] Furthermore, the convex strips on the convex strip plate are configured to be hook-shaped.
[0014] The present invention has the following advantages: the present invention realizes the tensile testing of the connection between the sock tube and the bottom of the silicone sock by cooperating with the fixed frame, the fixed airbag, the second electric push rod, the movable ring, the third electric push rod and the airbag assembly, and realizes multi-stage tensile testing of the silicone sock tube. Different from the existing testing, the present invention can intuitively judge the difference between the sock tube and other parts of the silicone anti-slip sock (stretch resistance and breaking strength, etc.), and intuitively judge the quality of the silicone anti-slip sock tube. The first electric push rod drives the fixed frame and the fixed airbag to move upward to stretch the sock opening of the silicone sock, simulating the situation where a person continues to pull up the silicone sock after putting it on, to test the stretch resistance of the silicone sock when actually worn; The airbag group is used to evaluate the stability of silicone stockings after wearing and after a period of use. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 This is a schematic diagram of the three-dimensional structure of the quality inspection equipment for silicone anti-slip socks of the present invention; Figure 2 This is a schematic diagram of the combined three-dimensional structure of the connecting rod and the foot module of the present invention; Figure 3 This is a schematic diagram of the combined three-dimensional structure of the first electric push rod, the fixed frame, the movable ring, the third electric push rod and the airbag assembly of the present invention; Figure 4 For the present invention Figure 3 A magnified view of point A in the figure; Figure 5 This is a diagram showing the fixed state of the silicone socks of the present invention; Figure 6 Schematic diagram of the three-dimensional structure of the sixth electric push rod and connecting frame combination of the present invention; Figure 7 Schematic diagram of the three-dimensional structure of the combination of the flat plate, convex strip plate and convex dot plate of the present invention; Figure 8 For the present invention Figure 7 Enlarged view of point B in .
[0016] Figure numbers: 1-detection box, 2-first electric slide rail, 3-second electric slide rail, 101-connecting rod, 102-foot module, 103-first electric push rod, 104-fixed frame, 105-second electric push rod, 106-moving ring, 107-third electric push rod, 108-airbag group, 201-annular airbag, 202-fourth electric push rod, 203-fifth electric push rod, 301-sixth electric push rod, 302-connecting frame, 303-flat plate, 304-convex strip plate, 305-bump plate, 10101-chute, 10201-mounting block, 10401-fixed airbag, 10801-detection airbag, 10-silicone socks. DETAILED DESCRIPTION
[0017] The present invention will be described in detail below with reference to the accompanying drawings and specific embodiments, but this does not limit the present invention.
[0018] Example 1: A quality inspection device for silicone anti-slip socks, such as Figure 1-Figure 5 As shown, it includes a detection box 1, a first electric slide rail 2 and a second electric slide rail 3; the detection box 1 is bolted with the first electric slide rail 2; the first electric slide rail 2 is bolted with the second electric slide rail 3 through a slider; It also includes a connecting rod 101, a foot module 102, a first electric push rod 103, a fixed frame 104, a second electric push rod 105, a moving ring 106, a third electric push rod 107 and an airbag group 108; the second electric slide rail 3 is connected to the connecting rod 101 through a slider bolt; the foot module 102 is fixed to the lower side of the connecting rod 101; two first electric push rods 103 are bolted to the connecting rod 101; the telescopic ends of the two first electric push rods 103 are commonly bolted to the fixed frame 104; a fixed airbag 10401 is provided on the fixed frame 104; the connecting rod Two second electric push rods 105 are bolted to the upper part of 101; the telescopic ends of the two second electric push rods 105 are commonly bolted to the moving ring 106; two sliding grooves 10101 are provided on the connecting rod 101; the two sliding grooves 10101 are commonly slidably connected to the airbag group 108, and the airbag group 108 consists of six detection airbags 10801, and all the detection airbags 10801 do not interfere with each other; two third electric push rods 107 are bolted to the foot module 102, and the telescopic ends of the two third electric push rods 107 are commonly connected to the airbag group 108.
[0019] In order to facilitate manual application of the silicone sock 10 , the first electric slide rail 2 extends out of the detection box 1 .
[0020] In order to enhance the fixing effect of the fixing airbag 10401 on the silicone sock 10, a plurality of protrusions are provided on the fixing airbag 10401.
[0021] In order to increase the friction between the movable ring 106 and the silicone sock 10 , a plurality of convex strips are provided on the inner side of the movable ring 106 .
[0022] The maximum expansion range of the detection airbag 10801 on the airbag group 108 gradually decreases from top to bottom.
[0023] The detection airbags 10801 on the airbag group 108 are connected to the fabric via a binding rope.
[0024] It also includes an annular airbag 201, a fourth electric push rod 202 and a fifth electric push rod 203; a mounting block 10201 is provided on the foot module 102; an annular airbag 201 is provided on the mounting block 10201; the front part of the mounting block 10201 is bolted to the fourth electric push rod 202; the rear part of the mounting block 10201 is bolted to the fifth electric push rod 203; the mounting block 10201 is divided into three parts, and the middle part of the mounting block 10201 is connected to the other two parts through the fourth electric push rod 202 and the fifth electric push rod 203.
[0025] It should be noted that the fixed airbag 10401, the airbag group 108 and the annular airbag 201 are all connected to the external air pump through pipelines.
[0026] First, the first electric push rod 103 pushes the fixed frame 104 and the fixed air bag 10401 downwards, and the second electric push rod 105 pushes the moving ring 106 downwards, so that the fixed frame 104 and the moving ring 106 are Figure 3 The state shown changes to Figure 5 In the state shown, it should be noted that after the movable ring 106 moves downward, the movable ring 106 and the airbag group 108 are at the same horizontal position, with the first fixed airbag 10401 as the benchmark from top to bottom. Then the inspection personnel put the silicone socks 10 to be inspected on the connecting rod 101 and the foot module 102, and make the sock opening of the silicone socks 10 pass through the space between the movable ring 106 and the connecting rod 101 and be put on the fixed airbag 10401. Then, the fixed airbag 10401 is inflated by the air pump to expand the fixed airbag 10401 to open the sock opening of the silicone socks 10 and fix it on the fixed frame 104, as shown in FIG. Figure 5 As shown; then the first electric push rod 103 drives the fixed frame 104 and the fixed airbag 10401 to move upward, so that the sock tube of the silicone sock 10 is changed from a wrinkled state to a flat state (in this process, the state of the sock tube of the silicone sock 10 is observed manually or by setting an external camera to ensure that the sock tube of the silicone sock 10 is only changed from a wrinkled state to a flat state); after the fixed airbag 10401 changes the sock tube of the silicone sock 10 from a wrinkled state to a flat state, looking from top to bottom, the first detection airbag 10801 of the airbag group 108 is inflated by the air pump to expand the sock tube of the silicone sock 10 and fix it on the movable ring 106. It should be noted that the airbag group 108 fixes the sock tube of the silicone sock 10 It is placed above the connection between the sock tube of the silicone sock 10 and the bottom of the silicone sock 10, and then the airbag group 108 is pushed upward by the third electric push rod 107. At the same time, the second electric push rod 105 will also drive the movable ring 106 to move upward, so that the movable ring 106 and the airbag group 108 move upward synchronously, thereby driving the sock tube of the silicone sock 10 to stretch upward, and then the airbag group 108 is pulled down by the third electric push rod 107 to reset, and the second electric push rod 105 drives the movable ring 106 to move downward. The connection between the sock tube of the silicone sock 10 and the bottom of the silicone sock 10 is stretched and tested repeatedly. During the testing process, it is observed manually or with an external camera to evaluate the quality of the connection between the sock tube of the silicone sock 10 and the bottom of the silicone sock 10.
[0027] After the airbag group 108 and the moving ring 106 have reciprocated and stretched the connection between the sock tube of the silicone sock 10 and the bottom of the silicone sock 10 for many times, the second electric push rod 105 and the third electric push rod 107 are controlled to move upward and then stop moving. At this time, the detection airbags 10801 on the airbag group 108 are all in an upwardly extended state, and then the first detection airbag 10801 on the airbag group 108 is deflated, thereby releasing the fixation of the silicone sock 10 tube by the moving ring 106. At this time, the silicone sock 10 tube will be reset under the action of its own elastic force, and then the first detection airbag 10801 on the airbag group 108 is inflated again. After the fixed position of the silicone sock 10 tube is reset, the moving ring 106 is still in the position after moving upward, so that the first detection airbag 10801 on the airbag group 108 that has been inflated again can fix another position of the silicone sock 10 tube, and then the airbag is driven by the third electric push rod 107. The airbag group 108 moves downward, and the second electric push rod 105 drives the moving ring 106 to move downward, thereby performing a stretch test on the sock tube of the silicone sock 10. In addition, according to the needs of the inspector, the second electric push rod 105 can be controlled to drive the moving ring 106, and the third electric push rod 107 can be controlled to drive the airbag group 108 to move, so that the moving ring 106 is matched with the first detection airbag 10801 of the airbag group 108 to fix any position of the sock tube of the silicone sock 10, and then the sock opening of the silicone sock 10 is driven to stretch to test the sock tube of the silicone sock 10. During this process, the second electric push rod 105 and the third electric push rod 107 remain stationary, thereby realizing multi-stage stretching test on the sock tube of the silicone sock 10. In this way, different from the existing test, the present invention can intuitively judge the difference (tensile strength and breaking strength, etc.) between the sock tube of the silicone anti-slip socks and other parts, and intuitively judge the quality of the sock tube of the silicone anti-slip socks.
[0028] It should be noted that after putting on the silicone socks 10, people will continue to pull the sock opening upwards, so that the silicone socks 10 fit closely to the people's feet. Therefore, the first electric push rod 103 can drive the fixed frame 104 and the fixed airbag 10401 to move upwards, thereby stretching the sock opening of the silicone socks 10, thereby simulating the situation where people continue to pull up after putting on the silicone socks 10, and then testing the stretch resistance of the silicone socks 10 when actually worn, thereby increasing the testing items of the present invention and improving practicality.
[0029] Furthermore, when performing quality inspection on the silicone socks 10, in order to intuitively reflect the stability of the silicone socks 10 after a person wears the silicone socks 10, before performing the stretching inspection on the silicone socks 10, that is, after the silicone socks 10 are fixed by the fixed airbags 10401 and the fixed frame 104, and the silicone socks 10 are raised and flattened by the fixed frame 104, the airbag group 108 is first driven to rise by controlling the third electric push rod 107, so that all the detection airbags 10801 on the airbag group 108 are extended from the foot module 102, and the lower surface of the lowest detection airbag 10801 on the airbag group 108 is at the same horizontal plane as the upper surface of the foot module 102, and then all the detection airbags 10 on the airbag group 108 are pumped by the air pump. 801 are inflated at the same time. Since the diameters of all the detection airbags 10801 on the airbag group 108 after expansion gradually decrease from top to bottom, after all the detection airbags 10801 are inflated at the same time, all the detection airbags 10801 on the airbag group 108 will simulate the state of a person's calf gradually becoming thicker from bottom to top. Then, the fixed airbag 10401 is deflated to release the fixation of the sock opening of the silicone sock 10. Then, the sliding amount of the sock opening of the silicone sock 10 is observed manually or by an external camera, and then the stability of the silicone sock 10 after wearing is evaluated. After the wearing stability test of the silicone sock 10 is completed, the third electric push rod 107 is controlled to drive the airbag group 108 to reset for stretching test.
[0030] In addition, after the silicone socks 10 are stretched, the first detection airbag 10801 on the airbag group 108 is first controlled to be deflated, and then the second electric push rod 105 is controlled to drive the moving ring 106 to move above the sock opening of the silicone sock 10, and then the third electric push rod 107 drives the airbag group 108 to rise, and then all the detection airbags 10801 on the airbag group 108 are inflated at the same time by the air pump, and then the fixed airbag 10401 is deflated to release the fixation of the sock opening of the silicone sock 10, and then the first electric push rod 103 is used to drive the fixed frame 104 and the fixed airbag 10401 to move upward, so that the fixed frame 104 and the fixed airbag 10401 are away from the sock opening of the silicone sock 10. At this time, the stability of the silicone socks 10 after being used for a period of time is evaluated.
[0031] In reality, some people will put the socks of the silicone socks 10 on their trouser legs. In order to evaluate the stable relationship between the silicone socks 10 and the trouser legs, before testing, the testers can fix fabrics of different materials (linen, nylon, denim, etc.) on the test airbag 10801 of the airbag group 108 to evaluate the stable relationship between the silicone socks 10 and the trouser legs.
[0032] In addition, during the testing of the silicone socks 10, the annular airbag 201 can be inflated by an air pump, so that the bottom of the silicone socks 10 expands laterally, thereby simulating human feet of different sizes, and testing the stability of the silicone points at the bottom of the silicone socks 10 to determine whether the silicone points at the bottom of the silicone socks 10 will fall off; the rear part of the annular airbag 201 can be pushed backward by the fifth electric push rod 203, and the front part of the annular airbag 201 can be pushed by the fourth electric push rod 202, while the fifth electric push rod 203 and the fourth electric push rod 202 can push the front part of the annular airbag 201. When the annular airbag 201 is pushed, the airbag 201 is deflated. As a result, the silicone stocking 10 loses the support of the annular airbag 201 and becomes elongated. The silicone stocking 10 is pushed and stretched further and further by the fifth electric push rod 203 and the fourth electric push rod 202, thereby vertically stretching the silicone stocking 10. This is used to detect the stability of the silicone points at the bottom of the silicone stocking 10 when the silicone stocking 10 is vertically stretched. It should be noted that each detection action in the present invention is observed and evaluated manually or by an external camera.
[0033] Example 2: Based on Example 1, Figure 1 、 Figure 2 and Figure 6-Figure 8 As shown, it also includes a sixth electric push rod 301, a connecting frame 302 and a flat plate 303; four sixth electric push rods 301 are bolted to the detection box 1; the telescopic ends of all sixth electric push rods 301 are commonly connected to the connecting frame 302; a flat plate 303 is provided in the middle of the connecting frame 302; and a capacitive sensor is provided on the slider on the first electric slide rail 2.
[0034] It also includes a convex strip plate 304 and a convex dot plate 305 ; the convex strip plate 304 is provided on the left side of the connection frame 302 ; the convex dot plate 305 is provided on the right side of the connection frame 302 .
[0035] In order to enhance the detection effect of the convex strip plate 304 on the silicone socks 10 , the convex strips on the convex strip plate 304 are configured to be hook-shaped.
[0036] When the silicone socks 10 need to be tested for anti-slip performance, the slider on the first electric slide rail 2 first drives the second electric slide rail 3 and the parts connected to it to move backward and enter the detection box 1. At this time, the connecting rod 101 and the foot module 102 will be located in the middle of the second electric slide rail 3. At the same time, the silicone socks 10 mounted on the connecting rod 101 and the foot module 102 will be located above the flat plate 303. Then, the sixth electric push rod 301 drives the connecting frame 302 and the parts connected to it to move upward, so that the flat plate 303 contacts the silicone points on the silicone socks 10. Then, the slider on the first electric slide rail 2 drives the second electric slide rail 3 and the parts connected to it to move back and forth, so as to detect the anti-slip effect of the silicone socks 10. In this process, the capacitive sensor provided on the slider on the first electric slide rail 2 is used to evaluate the resistance of the slider movement at this time. This resistance is reduced by the original resistance of the slider sliding on the first electric slide rail 2, so that the anti-slip resistance of the silicone socks 10 can be obtained; the capacitive sensor is a prior art, and the usage principle will not be elaborated in detail.
[0037] Furthermore, when the anti-slip test of the silicone socks 10 is performed, the slider on the second electric slide rail 3 can drive the connecting rod 101 and the parts connected thereto to move to the left, so that the convex plate 304 on the connecting frame 302 contacts the bottom of the silicone socks 10, and then the slider on the first electric slide rail 2 drives the second electric slide rail 3 and the parts connected thereto to move back and forth, thereby testing the anti-slip effect of the silicone socks 10; the slider on the second electric slide rail 3 can also drive the connecting rod 101 and the parts connected thereto to move to the right, so that the bottom of the silicone socks 10 contacts the convex plate 305, and the slider on the first electric slide rail 2 drives the second electric slide rail 3 and the parts connected thereto to move back and forth along the first electric slide rail 2, thereby simulating the anti-slip effect of the silicone socks 10 when they are on different contact surfaces. The sixth electric push rod 301 drives the connecting rod 101 and the parts connected to it to move downward, and after the slider on the second electric slide rail 3 drives the connecting rod 101 and the parts connected to it to move left or right onto the convex strip plate 304 or the convex point plate 305, the sixth electric push rod 301 drives the connecting frame 302 and the parts connected to it to move upward, so that the bottom of the silicone sock 10 contacts the convex strip plate 304 or the convex point plate 305.
[0038] In addition, when performing the stretching test of the silicone socks 10 and the stability test of the silicone socks 10 after wearing in Example 1, they can be selectively performed simultaneously with the anti-slip test. For example, during the stretching test of the connection between the sock tube of the silicone socks 10 and the bottom of the silicone socks 10, the anti-slip performance of the silicone socks 10 under stretching and the stability of the silicone points on the silicone socks 10 are evaluated by sliding the bottom of the silicone socks 10 on the convex strip plate 304 or the convex dot plate 305. For example, during the wearing stability test of the silicone socks 10 by simulating the state of a human calf with all the test airbags 10801 on the airbag group 108, the wearing stability of the silicone socks 10 under friction with the ground is evaluated by sliding the bottom of the silicone socks 10 on the convex strip plate 304 or the convex dot plate 305. Therefore, by selectively performing the anti-slip test simultaneously with the testing process in Example 1, more data of the silicone socks 10 can be obtained.
[0039] It should be understood that the above description is only for illustrative purposes and is not intended to limit the present invention. Those skilled in the art will appreciate that variations of the present invention will fall within the scope of the claims herein.
Claims
1. A quality inspection device for silicone anti-skid socks, comprising a testing box (1), a first electric slide rail (2), and a second electric slide rail (3); the testing box (1) is fixedly connected to the first electric slide rail (2); the first electric slide rail (2) is fixedly connected to the second electric slide rail (3) via a slider; the device is characterized in that: The device further comprises a connecting rod (101), a foot module (102), a first electric push rod (103), a fixed frame (104), a second electric push rod (105), a movable ring (106), a third electric push rod (107) and an airbag group (108); the second electric slide rail (3) is fixedly connected to the connecting rod (101) via a slider; the foot module (102) is fixedly connected to the connecting rod (101); two first electric push rods (103) are fixedly connected to the connecting rod (101); the telescopic ends of the two first electric push rods (103) are fixedly connected to the fixed frame (104); a fixed airbag (10401) is provided on the fixed frame (104), and the fixed airbag (10401) and the fixed frame (104) are fixedly connected to the fixed frame (104). The invention is used for clamping and fixing the sock opening of the silicone sock (10); two second electric push rods (105) are fixedly connected to the connecting rod (101); the telescopic ends of the two second electric push rods (105) are commonly fixedly connected to a moving ring (106); two slide grooves (10101) are provided on the connecting rod (101); the two slide grooves (10101) are commonly slidably connected to an airbag group (108), and the airbag group (108) is composed of at least six detection airbags (10801), and all the detection airbags (10801) do not interfere with each other; two third electric push rods (107) are fixedly connected to the foot module (102), and the telescopic ends of the two third electric push rods (107) are commonly connected to the airbag group (108).
2. The quality inspection equipment for silicone anti-slip socks according to claim 1 is characterized by: The first electric slide rail (2) extends out of the detection box (1).
3. The quality inspection equipment for silicone anti-slip socks according to claim 1 is characterized by: Several protrusions are provided on the fixed airbag (10401).
4. The quality inspection equipment for silicone anti-slip socks according to claim 1, characterized in that: A plurality of convex strips are provided on the inner side of the movable ring (106).
5. The quality inspection equipment for silicone anti-slip socks according to claim 1 is characterized by: The maximum expansion range of the detection airbag (10801) on the airbag group (108) gradually decreases.
6. The quality inspection equipment for silicone anti-slip socks according to claim 5, characterized in that: The detection airbags (10801) on the airbag group (108) are detachably connected to the fabric.
7. The quality inspection equipment for silicone anti-slip socks according to claim 1, characterized in that: The invention also includes an annular airbag (201), a fourth electric push rod (202) and a fifth electric push rod (203); a mounting block (10201) is provided on the foot module (102); the mounting block (10201) is provided with an annular airbag (201) for expanding the bottom of the silicone sock (10); the front of the mounting block (10201) is fixedly connected to the fourth electric push rod (202); the rear of the mounting block (10201) is fixedly connected to the fifth electric push rod (203); the mounting block (10201) is divided into three parts, and the middle part of the mounting block (10201) is connected to the other two parts through the fourth electric push rod (202) and the fifth electric push rod (203).
8. The quality inspection equipment for silicone anti-slip socks according to claim 1, characterized in that: The invention also includes a sixth electric push rod (301), a connecting frame (302) and a flat plate (303); a plurality of sixth electric push rods (301) are fixedly connected to the detection box (1); the telescopic ends of all the sixth electric push rods (301) are commonly connected to the connecting frame (302); a flat plate (303) is provided in the middle of the connecting frame (302); and a capacitive sensor is provided on the slider on the first electric slide rail (2).
9. The quality inspection equipment for silicone anti-slip socks according to claim 8, characterized in that: It also includes a convex strip plate (304) and a convex point plate (305); the convex strip plate (304) is provided on the left side of the connection frame (302); and the convex point plate (305) is provided on the right side of the connection frame (302).
10. The quality inspection equipment for silicone anti-slip socks according to claim 9, characterized in that: The convex strips on the convex strip plate (304) are arranged in a hook shape.