A finished dyed fabric inspection agency

By designing the finished dyed cloth product detection mechanism, using technical means such as open external frame, transposition adjustment component and dyed cloth corresponding clamping component, the problem of inefficient detection of dyed cloth in wet state is solved, and a fast and efficient detection effect is achieved.

CN119534151BActive Publication Date: 2025-06-13JIANGSU RUIAIFU ECOLOGICAL TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202411436476.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-06-13
Estimated Expiration
2044-10-15

AI Technical Summary

Technical Problem

The dyeing cloth has low detection efficiency in the washing color fastness and friction color fastness in the wet state, and the prior art requires a long time to bubble out the pigment, resulting in low detection efficiency.

Method used

A dyed cloth finished product detection mechanism is designed, including a dyed cloth detection and placement assembly, which adopts an open external frame, a transposition adjustment assembly, a dyed cloth corresponding clamping assembly and a dyed cloth detection auxiliary assembly. Through the combination of a harness rope, a sliding arc block and a dyed cloth push block, effective clamping of the dyed cloth, pressure application and quick scraping of the pigment is achieved.

Benefits of technology

It improves the detection efficiency of the dyed cloth in a wet state, reduces detection time, can quickly display the detection results, and saves manpower and material resources.

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Abstract

The present invention relates to the technical field of dyed cloth inspection, and particularly relates to a finished dyed cloth detection mechanism. Its technical solution includes: a dyed cloth detection and placement component, the dyed cloth detection and placement component includes an open external frame, two groups of transposition adjustment components are installed on both the upper and lower sides of the dyed cloth detection and placement component, the same number of dyed cloth corresponding clamping components are installed on one side of the two groups of transposition adjustment components, and a dyed cloth detection auxiliary component is installed between the two groups of transposition adjustment components. The present invention uses a semi-circular gear runner to move downward along the surface of the dyed cloth through a double-limiting edge block and a sliding arc-shaped block. If the dyed cloth is unqualified, both sides of the dyed cloth are squeezed by the sliding arc-shaped blocks on both sides at the same horizontal position, which can effectively apply sufficient pressure to the dyed cloth. At the same time, under the up-and-down swing of multiple sliding arc-shaped blocks, the mixing of pigments and water can be accelerated, facilitating the display of the detection results.
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Description

Technical Field

[0001] The present invention relates to the technical field of dyed fabric inspection, and particularly to an inspection mechanism for finished dyed fabrics. Background Art

[0002] The inspection mechanism for finished dyed fabrics is mainly used to detect various performance indicators of dyed fabrics to ensure that the products meet relevant standards and customer requirements. This includes aspects such as color accuracy, fastness, strength, and dimensional stability. Under normal circumstances, the inspection of the appearance of dyed fabrics, including color, pattern, flatness, and defects, mainly relies on visual inspection by observers. Since the color, pattern, and flatness of dyed fabrics are relatively easy to observe when the fabric is dry, but when the dyed fabric is in a wet state, the detection of color fastness, that is, indicators such as washing color fastness and rubbing color fastness, is difficult to directly observe with the naked eye.

[0003] In the patent document with the publication number CN219179252U that has been made public, an inspection device for cotton elastic dyed fabrics is disclosed, including an installation platform. The four corners of the bottom of the installation platform are fixedly installed with support legs. The middle part of the installation platform is a hollow structure. A detection mechanism is arranged on the surface of the installation platform. The detection mechanism includes a light-transmitting plate fixedly connected to the top of the installation platform. A first mounting frame is fixedly connected to the top of the installation platform. A sliding rod is fixedly connected between the first mounting frames. A slider is slidably connected to the surface of the sliding rod. A first detection lamp is fixedly connected to the bottom of the slider. A clamping mechanism is fixedly connected to the bottom of the installation platform. Thus, through the cooperation of the detection mechanism and the clamping mechanism provided, the fabric can always be in a taut state, facilitating inspection. Since the situation of fabric relaxation and wrinkles is avoided, the time for manual leveling is saved, and the inspection efficiency is improved.

[0004] When the above device is in use, when detecting the washing color fastness and rubbing color fastness of dyed fabrics in an aqueous environment and at the same time in a normal state of being tautly positioned, if the washing color fastness and rubbing color fastness of the dyed fabric are not high, when it is in the aqueous environment, it takes a long time to soak out the pigment. As a result, the detection efficiency of the dyed fabric in a wet state is low. Moreover, when using the method of cleaning the dyed fabric with a roller for detection, it takes a long time. And when it is necessary to detect the tension of the dyed fabric in a humid environment later, the dyed fabric needs to be straightened again, thus consuming a lot of manpower and material resources.

[0005] Therefore, the present application proposes an inspection mechanism for finished dyed fabrics. Summary of the Invention

[0006] The object of the present invention is to address the problems in the background art, such as the low color fastness to washing and rubbing of dyed fabrics. When in the water environment, it takes a long time to soak out the pigments, and thus the detection efficiency of dyed fabrics in the wet state is relatively low. A finished product detection mechanism for dyed fabrics is proposed.

[0007] The technical solution of the present invention: A finished product detection mechanism for dyed fabrics includes a dyed fabric detection and placement component. The dyed fabric detection and placement component includes an open external frame. On both the upper and lower sides of the dyed fabric detection and placement component, two groups of transposition adjustment components are installed. On one side of the two groups of transposition adjustment components, the same number of dyed fabric corresponding clamping components are installed. Between the two groups of transposition adjustment components, a dyed fabric detection auxiliary component is installed;

[0008] The transposition adjustment component includes Y-axis transmission track blocks fixedly installed on both the upper and lower sides of the open external frame. On one side of the Y-axis transmission track block, an X-axis transmission track block is slidably installed;

[0009] The dyed fabric corresponding clamping component includes two internal threaded engagement sliders slidably connected inside the X-axis transmission track block;

[0010] The dyed fabric detection auxiliary component includes two fixed connecting rods fixedly installed on both sides of the X-axis transmission track block. On the outer sides of the two fixed connecting rods, a double-hinged telescopic rod is hinged. On one side of the double-hinged telescopic rod, a plurality of transverse long plates are fixedly installed. Inside the transverse long plate, the same number of auxiliary rotating rods are fixedly connected. On the outer sides of the plurality of auxiliary rotating rods, a plurality of semi-toothed rotating wheels are hinged. On one side of the semi-toothed rotating wheel, a double-limiting edge block is fixedly connected. On one side of the double-limiting edge block, a sliding arc-shaped block is slidably connected. Between the sliding arc-shaped block and the double-limiting edge block, a second spring is fixedly connected. At the top and bottom of the double-hinged telescopic rod, corresponding rotating rods are rotatably connected. On the outer side of the corresponding rotating rod, transmission belt winding wheels with the same number as the double-limiting edge blocks are fixedly connected. Inside the transmission belt winding wheel, a winding rope is wound;

[0011] The winding rope is fixedly connected with multiple groups of auxiliary teeth at the fitting position with the semi-toothed rotating wheel.

[0012] Optionally, two dyed fabric pushing blocks are fixedly connected to both sides of the sliding arc-shaped block. The distance between the two dyed fabric pushing blocks and the dyed fabric is the same as the distance between the sliding arc-shaped block and the dyed fabric under normal conditions.

[0013] Optionally, glass blocks for facilitating staff to observe the inside of the open external frame are installed on the periphery of the open external frame. Pigment detection components are arranged above and below the open external frame. A water pipe for passing water is installed inside the open external frame.

[0014] Optionally, the transposition adjustment component further includes a bidirectional threaded rod rotatably connected to the X-axis transmission track block, and the lengths of the positive thread and the reverse thread provided on the bidirectional threaded rod are the same.

[0015] Optionally, an auxiliary threaded rod is rotatably connected inside the Y-axis transmission track block, and the X-axis transmission track block is slidably arranged on the Y-axis transmission track block through threaded connection with the auxiliary threaded rod.

[0016] Optionally, a corresponding support column is slidably connected inside the built-in threaded engagement slider, the top of the corresponding support column is fixedly connected with two clamping plates, and a positioning side clamping block is fixedly installed between the two clamping plates through bolts.

[0017] Optionally, two auxiliary clamping blocks are fixedly connected to the top of the lower clamping plate, and an auxiliary rack block is slidably connected to one side of the two auxiliary clamping blocks through a connecting rod.

[0018] Optionally, the auxiliary rack block is fixedly installed on one side of the clamping plate, a driving gear is meshed with one side of the auxiliary rack block, a driven gear is meshed with the other side of the auxiliary rack block, and the driving gear and the driven gear are rotatably installed on the surface of the clamping plate.

[0019] Optionally, bilateral arc-shaped positioning blocks are fixedly connected to the inner wall of the clamping plate, annular hollow clamping blocks are hinged to both sides of the bilateral arc-shaped positioning blocks, a positioning placement groove is formed on one side of the annular hollow clamping block, and an auxiliary clamping block is installed on one side of the annular hollow clamping block through the positioning placement groove.

[0020] Optionally, a first positioning spring is fixedly connected to the corresponding support column inside the built-in threaded engagement slider, a pressure sensing block is fixedly installed at the bottom of the first positioning spring, and the pressure sensing block is fixedly installed inside the built-in threaded engagement slider.

[0021] In summary, the present application includes at least one of the following beneficial technical effects:

[0022] 1. The gathering rope drives rotation through the meshing between the auxiliary gear teeth and the semi-gear wheel, and the semi-gear wheel moves downward along the surface of the dyed cloth through the double limit side blocks and the sliding arc-shaped blocks. If the dyed cloth is unqualified, both sides of the dyed cloth are squeezed by the sliding arc-shaped blocks on both sides at the same horizontal position, which can effectively apply sufficient pressure to the dyed cloth for convenient physical detection. At the same time, under the up-and-down swing of multiple sliding arc-shaped blocks, the mixing of the pigment and the water flow can be accelerated, so as to facilitate the display of the detection result;

[0023] 2. The dyeing cloth pushing block cooperates with the sliding arc-shaped block to scrape the dyeing cloth, accelerating the scraping of the pigments on the wet dyeing cloth, so that the pigments of unqualified products can be quickly scraped out. At the same time, when multiple dyeing cloth pushing blocks scrape in the same direction, they can drain the pigments of the dyeing cloth in one direction, facilitating the reaction of the pigment detection components located above or below, and improving the pigment detection efficiency.

[0024] 3. The dyeing cloth is inclinedly clamped by the dyeing cloth corresponding clamping component and adjusted back and forth in the X-axis and Y-axis directions by the position conversion adjustment component, thereby straightening the long dyeing cloth. At the same time, when the two continue to move in opposite directions, the dyeing cloth is in a state of being subjected to opposite pulling forces, thereby detecting the tensile resistance of the dyeing cloth in the dry state and the tensile resistance in the wet state. And compared with the existing method of directly straightening the dyeing cloth in the horizontal direction, this solution saves more space and is convenient for detecting the tensile force of the dyeing cloth in different states.

[0025] 4. According to the state change of the dyeing cloth under the specified detection force, the staff can understand the actual state of the dyeing cloth by observing the specific change of the pressure value collected by the pressure sensing block, thereby improving the detection efficiency of the dyeing cloth and more conveniently detecting the damage of the dyeing cloth. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 is a schematic structural diagram of the finished product detection mechanism of the dyeing cloth of the present invention;

[0027] Figure 2 is the present invention Figure 1 Enlarged view of area A in;

[0028] Figure 3 is the present invention Figure 1 Enlarged view of area B in;

[0029] Figure 4 is a schematic structural diagram of the X-axis transmission track block of the present invention;

[0030] Figure 5 is a schematic structural diagram of the clamping plate of the present invention;

[0031] Figure 6 is the present invention Figure 5 Enlarged view of area C in;

[0032] Figure 7 is a schematic structural diagram of the first bidirectional threaded rod of the present invention;

[0033] Figure 8 is a schematic structural diagram of the auxiliary rotating rod of the present invention;

[0034] Figure 9 is a schematic structural diagram of the sliding arc-shaped block of the present invention;

[0035] Figure 10 The present invention Figure 9 Enlarged view of the middle D area.

[0036] Figure numerals: 1. dyed cloth detection and placement assembly; 101. open external frame; 102. glass block; 2. transposition adjustment assembly; 201. Y-axis transmission track block; 202. X-axis transmission track block; 203. bidirectional threaded rod; 204. auxiliary threaded rod; 3. dyed cloth corresponding clamping assembly; 301. clamping plate; 302. corresponding support column; 303. built-in threaded clamping slider; 304. annular hollow clamping block; 305. auxiliary clamping block; 306. auxiliary rack block; 307. bilateral arc positioning block; 308. driving gear; 3 09. Driven gear; 310. Pressure sensing block; 311. First positioning spring; 312. Positioning side clamping block; 313. Positioning placement slot; 4. Dyed cloth detection auxiliary component; 401. Double-hinged telescopic rod; 402. Horizontal long board; 403. Conveyor belt tightening wheel; 404. Condensing rope; 405. Double limit edge block; 406. Auxiliary rotating rod; 407. Sliding arc block; 408. Dyed cloth pushing block; 409. Half-tooth rotating wheel; 410. Second spring; 411. Auxiliary wheel teeth; 412. Fixed connecting rod; 413. Corresponding rotating rod. DETAILED DESCRIPTION

[0037] The technical solution of the present invention is further described below in conjunction with the accompanying drawings and specific embodiments.

[0038] like Figure 1 As shown, a dyed cloth finished product detection mechanism proposed by the present invention comprises a dyed cloth detection placement component 1, the dyed cloth detection placement component 1 comprises an open external frame 101, two groups of transposition adjustment components 2 are installed on the upper and lower sides of the dyed cloth detection placement component 1, and the characteristics are: the same number of dyed cloth corresponding clamping components 3 are installed on one side of the two groups of transposition adjustment components 2, a dyed cloth detection auxiliary component 4 is installed between the two groups of transposition adjustment components 2, and the surrounding sides of the open external frame 101 are installed with a plurality of color-coded ... A glass block 102 is provided on the upper and lower parts of the open external frame 101, and a water pipe for passing water is installed inside the open external frame 101. A glass block 102 on the side of the open external frame 101 is plugged into the open external frame 101, and a sealing rubber is provided at the connection between 102 and 101, so that the staff can install the dyed cloth on the corresponding clamping component 3 for the dyed cloth. At the same time, a large amount of water is injected into the open external frame 101 through the water pipe to immerse the entire dyed cloth, and the water is completely extracted through the water pipe.

[0039] like Figure 2As shown in the figure, the transposition adjustment component 2 includes Y-axis transmission track blocks 201 fixedly installed on the upper and lower sides of the open external frame 101. One side of the Y-axis transmission track block 201 is slidably installed with an X-axis transmission track block 202. The transposition adjustment component 2 further includes a bidirectional threaded rod 203 rotatably connected to the X-axis transmission track block 202. The lengths of the right-handed thread and the left-handed thread provided on the bidirectional threaded rod 203 are the same. The bidirectional threaded rod 203 is rotated by a first motor. The first motor is slidably installed on the inner wall of the open external frame 101 and can be slidably installed inside the Y-axis transmission track block 201 together with the X-axis transmission track block 202. The bidirectional threaded rod 203 rotates relying on the first motor. The bidirectional threaded rod 203 drives two corresponding clamping components 3 for the dyed cloth to change the distance between them according to the horizontal length of the dyed cloth through equidistant right-handed thread and left-handed thread, so as to clamp the dyed cloth in accordance with its actual horizontal length. An auxiliary threaded rod 204 is rotatably connected inside the Y-axis transmission track block 201. The X-axis transmission track block 202 is slidably arranged on the Y-axis transmission track block 201 through threaded connection with the auxiliary threaded rod 204. As the second motor connected to the auxiliary threaded rod 204 drives the auxiliary threaded rod 204 to rotate along the Y-axis transmission track block 201, the second motor is fixedly installed on the inner wall of the open external frame 101. Among them, according to the vertical length of the dyed cloth, when the lower X-axis transmission track block 202 is directly below the upper X-axis transmission track block 202, the vertical length of the dyed cloth clamped between the two corresponding clamping components 3 for the dyed cloth is the smallest. When the lower X-axis transmission track block 202 and the upper X-axis transmission track block 202 move in opposite directions, the dyed cloth is inclinedly clamped by the corresponding clamping components 3 for the dyed cloth at this time, and the longer dyed cloth can be straightened. At the same time, when the two continue to move in opposite directions, the dyed cloth is in a state of being subjected to opposite pulling forces, so as to detect the tensile strength of the dyed cloth in the dry state and the tensile strength in the wet state. Moreover, compared with the existing method of directly straightening the dyed cloth in the horizontal direction, this solution saves a lot of space and is convenient for detecting the tensile strength of the dyed cloth in different states.

[0040] As Figures 1 to 7As shown in the figure, the corresponding clamping assembly 3 for the dyed cloth includes two built-in threaded engaging sliders 303 slidably connected inside the X-axis transmission track block 202. A corresponding support column 302 is slidably connected inside the built-in threaded engaging slider 303. Two clamping plates 301 are fixedly connected to the top of the corresponding support column 302. A positioning side clamping block 312 is fixedly installed between the two clamping plates 301 by bolts. Two auxiliary clamping blocks 305 are fixedly connected to the top of the lower clamping plate 301. An auxiliary rack block 306 is slidably connected to one side of the two auxiliary clamping blocks 305 through a connecting rod. The auxiliary rack block 306 is fixedly installed on one side of the clamping plate 301. A driving gear 308 is meshed and connected to one side of the auxiliary rack block 306. A driven gear 309 is meshed and connected to the other side of the auxiliary rack block 306. The driving gear 308 and the driven gear 309 are rotatably installed on the surface of the clamping plate 301. A bilateral arc-shaped positioning block 307 is fixedly connected to the inner wall of the clamping plate 301. Two sides of the bilateral arc-shaped positioning block 307 are hinged with an annular hollow clamping block 304. A positioning placement groove 313 is formed on one side of the annular hollow clamping block 304. An auxiliary clamping block 305 is installed on one side of the annular hollow clamping block 304 through the positioning placement groove 313. Regarding the thickness of the dyed cloth, the third motor drives the driving gear 308 to rotate. The third motor is fixedly installed on the surface of the clamping plate 301. The driving gear 308 drives the auxiliary rack block 306 to perform a telescopic movement. The auxiliary rack block 306 drives the driven gear 309 to rotate at an angle opposite to that of the driving gear 308, causing the two annular hollow clamping blocks 304 to deflect along the bilateral arc-shaped positioning block 307, realizing the operations of clamping and releasing, and thus fully clamping dyed cloths of different thicknesses.

[0041] As Figure 7As shown, the corresponding support column 302 is fixedly connected with a first positioning spring 311 inside the built-in threaded engagement slider 303. A pressure sensing block 310 is fixedly installed at the bottom of the first positioning spring 311. The pressure sensing block 310 is fixedly installed inside the built-in threaded engagement slider 303. When the two conveyor belt winding wheels 403 pull the dyed cloth in opposite directions, as the tension on the dyed cloth increases, when the dyed cloth breaks under the specified detection force, due to the inertia of the pulling force, the corresponding support column 302 of the dyed cloth corresponding clamping assembly 3 slides back and forth inside the built-in threaded engagement slider 303 through the first positioning spring 311. Due to the impact of inertia, the corresponding support column 302 is transmitted to the pressure sensing block 310 through the first positioning spring 311. The staff will find that the pressure value changes back and forth due to the inertial impact, which means the complete breakage of the dyed cloth. If the dyed cloth is partially broken, the staff can understand the local damage of the dyed cloth by finding the obvious difference in the values between multiple pressure sensing blocks 310, thereby improving the detection efficiency of the dyed cloth and more conveniently detecting the damage of the dyed cloth.

[0042] In this embodiment, as Figures 1 to 10 shown, the dyed cloth detection auxiliary assembly 4 includes two fixed connecting rods 412 fixedly installed on both sides of the X-axis transmission track block 202. A double-hinged telescopic rod 401 is hinged on the outer sides of the two fixed connecting rods 412. A plurality of transverse long plates 402 are fixedly installed on one side of the double-hinged telescopic rod 401. The inner walls of the transverse long plates 402 are fixedly connected with the same number of auxiliary rotating rods 406. A plurality of semi-toothed rotating wheels 409 are hinged on the outer sides of the plurality of auxiliary rotating rods 406. A double-limiting edge block 405 is fixedly connected to one side of the semi-toothed rotating wheel 409. A sliding arc-shaped block 407 is slidably connected to one side of the double-limiting edge block 405. A second spring 410 is fixedly connected between the sliding arc-shaped block 407 and the double-limiting edge block 405. The top and bottom of the double-hinged telescopic rod 401 are rotatably connected with corresponding rotating rods 413. The outer sides of the corresponding rotating rods 413 are fixedly connected with conveyor belt winding wheels 403 having the same number as the double-limiting edge blocks 405. The deflection angle of the double-limiting edge block 405 along the auxiliary rotating rod 406 is limited by the contact points between the upper and lower sides of the double-limiting edge block 405 and the side edges of the transverse long plate 402. A winding rope 404 is wound inside the conveyor belt winding wheel 403;

[0043] The drawstring 404 is fixedly connected with multiple groups of auxiliary gear teeth 411 at the joint with the semi-gear wheel 409. When the dyeing cloth corresponding clamping assembly 3 slides to a suitable position according to the transposition adjustment assembly 2 and tightens the dyeing cloth, the staff drives the corresponding rotating rod 413 to rotate through the fourth motor connected with the corresponding rotating rod 413. The corresponding rotating rod 413 drives the drawstring 404 to perform a transmission movement through the transmission belt take-up wheel 403. During this process, the drawstring 404 drives the 4609 to rotate through the meshing between the auxiliary gear teeth 411 and the semi-gear wheel 409. The semi-gear wheel 409 moves downward along the surface of the dyeing cloth through the double limit side blocks 405 and the sliding arc-shaped block 407. If the dyeing cloth is unqualified, the pigment on its surface is scraped outwards along with the extrusion and guidance of the sliding arc-shaped block 407, can be quickly mixed with the water flow, detected by the pigment detection assembly, and due to the elastic force of the second spring 410, the sliding arc-shaped block 407 always adheres to the surface of the dyeing cloth. Both sides of the dyeing cloth are squeezed by the sliding arc-shaped blocks 407 on both sides at the same horizontal position, which can effectively apply sufficient pressure to the dyeing cloth for substantial detection. At the same time, under the up and down swing of multiple sliding arc-shaped blocks 407, the mixing of the pigment and the water flow can be accelerated, thus facilitating the display of the detection result;

[0044] Both sides of the sliding arc-shaped block 407 are fixedly connected with two dyeing cloth pushing blocks 408. The distance between the two dyeing cloth pushing blocks 408 and the dyeing cloth is the same as the distance between the sliding arc-shaped block 407 and the dyeing cloth under normal conditions. As the double limit side block 405 swings along the auxiliary rotating rod 406, according to the rotation direction of the semi-gear wheel 409, the corresponding dyeing cloth pushing block 408 contacts the dyeing cloth with the sliding arc-shaped block 407. As the semi-gear wheel 409 continuously deflects in the same direction, due to the elastic force of the second spring 410, the dyeing cloth pushing block 408 and the sliding arc-shaped block 407 always adhere to the surface of the dyeing cloth. The sliding arc-shaped block 407 squeezes the dyeing cloth, causing it to become wetter faster. The dyeing cloth pushing block 408 cooperates with the sliding arc-shaped block 407 to scrape the dyeing cloth, accelerating the scraping of the pigment on the wet dyeing cloth, so that the pigment of unqualified products can be quickly scraped out. At the same time, when multiple dyeing cloth pushing blocks 408 scrape in the same direction, they can drain the pigment of the dyeing cloth out in one direction, facilitating the reaction of the pigment detection assembly located above or below, improving the pigment detection efficiency;

[0045] It is hereby explained that all motors in this article are forward and reverse motors.

[0046] It should be noted that in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising",

[0047] "including" or any other variant thereof is intended to cover non-exclusive inclusion, such that a process, method, article, or device comprising a series of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or device.

[0048] The above specific embodiments are merely several alternative embodiments of the present invention. Based on the technical solution of the present invention and the relevant revelations of the above embodiments, those skilled in the art can make various alternative improvements and combinations to the above specific embodiments.

Claims

1. A dyed cloth finished product detection mechanism, comprising a dyed cloth detection and placement component (1), the dyed cloth detection and placement component (1) comprising an open external frame (101), two groups of transposition adjustment components (2) are installed on both upper and lower sides of the dyed cloth detection and placement component (1), characterized in that: The same number of dyed cloth corresponding clamping components (3) are installed on one side of the two groups of the transposition adjustment components (2), and a dyed cloth detection auxiliary component (4) is installed between the two groups of the transposition adjustment components (2); The transposition adjustment component (2) comprises a Y-axis transmission track block (201) fixedly mounted on the upper and lower sides of the open external frame (101), and an X-axis transmission track block (202) is slidably mounted on one side of the Y-axis transmission track block (201); The dyed cloth corresponding clamping assembly (3) comprises two built-in threaded engaging slide blocks (303) slidably connected inside the X-axis transmission track block (202); The dyed cloth detection auxiliary component (4) comprises two fixed connecting rods (412) fixedly mounted on both sides of the X-axis transmission track block (202), the outer sides of the two fixed connecting rods (412) are hinged with double-hinged telescopic rods (401), one side of the double-hinged telescopic rod (401) is fixedly mounted with a plurality of transverse long plates (402), the inner walls of the transverse long plates (402) are fixedly connected with the same number of auxiliary rotating rods (406), the outer sides of the plurality of auxiliary rotating rods (406) are hinged with a plurality of half-gear wheels (409), one side of the half-gear wheels (409) is fixedly mounted with a plurality of auxiliary rotating rods (406). A double-limiting edge block (405) is fixedly connected, one side of the double-limiting edge block (405) is slidably connected to a sliding arc block (407), a second spring (410) is fixedly connected between the sliding arc block (407) and the double-limiting edge block (405), the top and bottom ends of the double-hinged telescopic rod (401) are rotatably connected to corresponding rotating rods (413), the outer side of the corresponding rotating rod (413) is fixedly connected to a transmission belt tightening wheel (403) whose number is the same as the double-limiting edge block (405), and a tightening rope (404) is wound around the inside of the transmission belt tightening wheel (403); The drawstring rope (404) is located at a position where it fits the half-gear rotating wheel (409) and is fixedly connected to a plurality of sets of auxiliary gear teeth (411); Two dyed cloth pushing blocks (408) are fixedly connected to the two sides of the sliding arc block (407), and the distance between the two dyed cloth pushing blocks (408) and the dyed cloth is consistent with the distance between the sliding arc block (407) and the dyed cloth under normal conditions; The transposition adjustment assembly (2) further comprises a bidirectional threaded rod (203) rotatably connected to the X-axis transmission track block (202), wherein the length of the positive thread and the reverse thread provided on the bidirectional threaded rod (203) are consistent; The Y-axis transmission track block (201) is internally rotatably connected with an auxiliary threaded rod (204), and the X-axis transmission track block (202) is arranged in a sliding state on the Y-axis transmission track block (201) through a threaded connection with the auxiliary threaded rod (204); The internal sliding connection of the built-in threaded engaging slide block (303) is connected with a corresponding support column (302), and the top of the corresponding support column (302) is fixedly connected with two clamping plates (301), and a positioning side clamping block (312) is fixedly installed between the two clamping plates (301) by bolts.

2. A dyed cloth finished product detection mechanism according to claim 1, characterized in that: Glass blocks (102) are installed around the open external frame (101) to facilitate staff to observe the internal conditions of the open external frame (101), pigment detection components are arranged above and below the open external frame (101), and a water pipe for water flow is installed inside the open external frame (101).

3. A dyed cloth finished product detection mechanism according to claim 1, characterized in that: Two auxiliary clamping blocks (305) are fixedly connected to the top of the clamping plate (301) located at the bottom, and one side of the two auxiliary clamping blocks (305) is slidably connected to an auxiliary rack block (306) via a connecting rod.

4. A dyed cloth finished product detection mechanism according to claim 3, characterized in that: The auxiliary rack block (306) is fixedly mounted on one side of the clamping plate (301); one side of the auxiliary rack block (306) is meshedly connected with a driving gear (308); the other side of the auxiliary rack block (306) is meshedly connected with a driven gear (309); the driving gear (308) and the driven gear (309) are rotatably mounted on the surface of the clamping plate (301).

5. A dyed cloth finished product detection mechanism according to claim 4, characterized in that: A double-sided arc-shaped positioning block (307) is fixedly connected to the inner wall of the clamping plate (301), and an annular hollow clamping block (304) is hinged on both sides of the double-sided arc-shaped positioning block (307), and a positioning groove (313) is provided on one side of the annular hollow clamping block (304), and an auxiliary clamping block (305) is installed on one side of the annular hollow clamping block (304) through the positioning groove (313).

6. A dyed cloth finished product detection mechanism according to claim 5, characterized in that: The corresponding support column (302) is located inside the built-in threaded locking slider (303) and is fixedly connected to a first positioning spring (311). A pressure sensing block (310) is fixedly installed at the bottom of the first positioning spring (311). The pressure sensing block (310) is fixedly installed inside the built-in threaded locking slider (303).

Citation Information

Patent Citations

  • Inspection device for cotton elastic dyed cloth

    CN219179252U

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    CN117647445A

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