Multi-parameter body measuring equipment for raincoat fixing plate

By designing multi-parameter measuring equipment for raincoat customization and using mechanized components to adapt to different body shapes, the problems of time-consuming manual measurement and discomfort caused by wearing tight equipment have been solved, and automated and accurate body measurement has been achieved, thereby improving the efficiency and comfort of clothing customization.

CN120660944APending Publication Date: 2025-09-19YUSHAN COUNTY HUIHUANG RAINPROOF PROD CO LTD
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Patent Information

Application Number
CN202510815425.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-18
Publication Date
2025-09-19

AI Technical Summary

Technical Problem

In existing clothing customization, manual measurement with a tape measure is time-consuming and difficult to operate, and smart body-measuring equipment causes discomfort when wearing tight clothing, making it difficult to adapt to people of different body shapes.

Method used

A multi-parameter measuring device for raincoat customization is designed, including a measuring platform, a transposition component, an adjustment component, a positioning component and a measuring component. It adapts to different body shapes through mechanization, reduces manual intervention and realizes automatic measurement.

Benefits of technology

It improves measurement efficiency and accuracy, avoids errors and discomfort caused by manual operation, and enhances the measurement experience.

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Abstract

The invention provides a multi-parameter body measuring device for raincoat fixing, and belongs to the technical field of clothing customizing.The device comprises a measuring table, a position changing assembly, an adjusting assembly, a positioning assembly and a measuring assembly, and the position changing assembly is arranged on the measuring table; the adjusting assembly is arranged on the transposition assembly, and the transposition assembly is used for adjusting the height of the adjusting assembly; the two positioning assemblies are separately arranged on the adjusting assembly, the two positioning assemblies are symmetrically distributed on the measuring table, and the adjusting assembly is used for adjusting the relative positions of the two positioning assemblies; the two measuring assemblies are arranged on the positioning assemblies respectively, and the two measuring assemblies are matched and attached to each other and measure the body data of the human body. According to the device, human body data are obtained in a mechanical mode, errors caused by insufficient inspection or manipulation difference of a measurer are avoided, the measurement operation difficulty is reduced, the measurement efficiency is improved, meanwhile, discomfort caused by contact between the measurer and the limbs of a measured person is avoided, and the measurement experience is improved.
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Description

Technical Field

[0001] The present application relates to the technical field of clothing customization, and in particular to a multi-parameter body-measuring device for customizing raincoats. Background Art

[0002] In the process of clothing design and production, especially in customized clothing production, accurate measurement of customers' body parameters is a key step in ensuring the fit, comfort and functionality of the pattern. However, the current measurement technology in the industry has limitations.

[0003] Most existing clothing customization processes rely on manual tape measurement. This requires careful attention to multiple areas and relies on the experience and technique of the measurer, making it labor-intensive and time-consuming. This is especially difficult for larger models, as the measurement process can be difficult. Furthermore, contact with the model's body can cause discomfort during the measurement process. Furthermore, some smart body measurement devices require the person being measured to wear tight-fitting clothing for scanning and measurement. However, wearing tight clothing can cause a sense of restraint and discomfort, impacting the person's comfort. Based on this, there is an urgent need for a multi-parameter body measuring device that can adapt to measuring subjects of different body shapes. Summary of the Invention

[0004] This application aims to solve at least one of the technical problems existing in the prior art or related art.

[0005] To this end, the present application provides a multi-parameter measuring device for raincoat customization, which can adapt to the measurement of subjects with different body shapes, reduce manual intervention, and realize automatic measurement.

[0006] The present application provides a multi-parameter measuring device for finalizing a raincoat pattern, comprising a measuring platform, a transposition component, an adjustment component, a positioning component, and a measuring component, wherein the transposition component is arranged on the measuring platform; the adjustment component is arranged on the transposition component, and the transposition component is used to adjust the height of the adjustment component; two positioning components are arranged on the adjustment component, and the two positioning components are symmetrically distributed on the measuring platform, and the adjustment component is used to adjust the relative positions of the two positioning components; two measuring components are arranged on each positioning component, and the two measuring components cooperate to fit and measure human body data.

[0007] In some embodiments, the measuring platform includes: a supporting platform; a positioning platform, which is arranged at the center of the supporting platform; a stand, which is arranged on one side of the top of the supporting platform and has a slide groove; and a top plate, which is arranged at the top of the stand.

[0008] In some embodiments, the transposition assembly includes: a transverse movement module, which is arranged on the top plate; a hanger, which is arranged on the transverse module, and the hanger is arranged on the side of the top plate away from the vertical frame; a first screw rod, which is arranged in the hanger; a lifting seat, which is arranged on the first screw rod, and the lifting seat has a support shaft.

[0009] In some embodiments, the adjustment assembly includes: a mounting frame, rotatably connected to the lifting seat; a dual-axis motor, arranged in the middle of the mounting frame; two second screw rods, arranged on both sides of the dual-axis motor; and two first moving blocks, respectively arranged on each second screw rod.

[0010] In some embodiments, each positioning assembly includes: a first trackless cylinder, disposed on a first moving block; a second trackless cylinder, disposed at an end of the first trackless cylinder away from the first moving block; a corner motor, disposed between the first trackless cylinder and the second trackless cylinder; and a plurality of pneumatic actuators, disposed on the first trackless cylinder and the second trackless cylinder.

[0011] In some embodiments, each measuring component includes: two second moving blocks, which are respectively arranged on the first trackless cylinder and the second trackless cylinder; two connecting sleeves, which are respectively arranged on each second moving block, and each connecting sleeve has a slide groove; two lifting columns, which are respectively arranged on each connecting sleeve, and each lifting column has a limit block, and each limit block is arranged in a corresponding slide groove, and the two lifting columns are divided into a first lifting column and a second lifting column; two springs, which are respectively arranged in corresponding connecting sleeves; a sliding block, which is arranged at one end of the first lifting column away from the connecting sleeve, and the sliding block has a accommodating cavity inside; a scale identifier, which is arranged on the sliding block.

[0012] In some embodiments, each measuring component also includes: a winding box, which is arranged on the first trackless cylinder and the second trackless cylinder; a tape measure, which is arranged in the winding box, and the tape measure is arranged in the accommodating cavity of the sliding block; a fixed block, which is arranged at the end of the second lifting column away from the connecting sleeve, and the fixed block is connected to the end of the tape measure away from the winding box, and the fixed block cooperates with the connecting block.

[0013] In some embodiments, two supporting components are further included, each supporting component is used to support a corresponding tape measure, and each supporting component includes: a fixing frame, which is arranged on the winding box; and a supporting wheel, which is arranged on the fixing frame.

[0014] In some embodiments, a scanning component is also included, which is used to scan basic height information of a human body. The scanning component includes: a support frame, which is arranged in a slide groove of the stand; a display panel, which is arranged on the support frame; a scanning camera, which is arranged on the display panel; and a background panel, which is arranged on a side of the support platform away from the stand. The display panel and the background panel are symmetrically distributed on the support platform.

[0015] In some embodiments, the scanning mechanism further includes: a visual locator, which is disposed on the top plate, and the visual locator and the positioning platform are on a center line.

[0016] Compared with the prior art, the above technical solution provided by this application includes at least the following technical effects: The multi-parameter measuring device for raincoat customization provided in this application can adapt to subjects of different body shapes, reduce manual intervention, and achieve automatic measurement. The measuring platform serves as the device's support base. The subject stands on the measuring platform. The transposition component adjusts the height of the adjustment component according to the subject's height. The adjustment component adjusts the relative positions of the two positioning components to match the subject's body shape, allowing the measuring component to fit the body surface. The adjustment component adjusts the different states of the measuring component to measure the subject's three measurements, arm circumference, and arm length. By obtaining human body data in a mechanized manner, errors caused by insufficient inspection or differences in the measurer's technique are avoided, the difficulty of measurement operation is reduced, and measurement efficiency is improved. At the same time, the discomfort caused by physical contact between the measurer and the subject is avoided, thereby improving the measurement experience.

[0017] Additional aspects and advantages of the present application will become apparent in the following description or may be learned through practice of the present application. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] The above and / or additional aspects and advantages of the present application will become apparent and easily understood from the description of the embodiments in conjunction with the following drawings, in which: Figure 1 This is a schematic structural diagram of a device for measuring body circumference status in some embodiments of the present application; Figure 2 This is a schematic structural diagram of a device for measuring arm circumference of a body in some embodiments of the present application; Figure 3 This is a schematic structural diagram of a device for measuring body arm length status in some embodiments of the present application; Figure 4 A schematic structural diagram of a measuring platform according to some embodiments of the present application; Figure 5 A schematic diagram of the internal structure of a hanger in some embodiments of the present application; Figure 6 This is a schematic structural diagram of the adjustment assembly of some embodiments of the present application; Figure 7 Schematic diagram of the structure of the adjustment component and the positioning component of some embodiments of the present application; Figure 8 A schematic diagram of the structure of the positioning component and the measuring component of some embodiments of the present application; Figure 9 An exploded view of a measurement assembly according to some embodiments of the present application; Figure 10 This is a schematic diagram of the internal structure of the connecting sleeve in some embodiments of the present application; Figure 11 For some embodiments of this application Figure 8 A in the middle is an enlarged structural diagram; Figure 12 For some embodiments of this application Figure 8 The enlarged structural diagram at B in the middle; Figure 13 A schematic structural diagram of a measurement assembly in some embodiments of the present application; Figure 14 This is a schematic structural diagram of the scanning component of some embodiments of the present application.

[0019] in, Figures 1 to 14 The corresponding relationship between the reference numerals and component names is as follows: 100, measuring platform; 101, supporting platform; 102, positioning platform; 103, stand; 104, top plate; 200, transposition assembly; 201, transverse movement module; 202, hanger; 203, first screw rod; 204, lifting seat; 300, adjustment assembly; 301, mounting bracket; 302, dual-axis motor; 303, second screw rod; 304, first moving block; 400, positioning assembly; 401, first trackless cylinder; 402, second trackless cylinder; 403, corner motor; 404, pneumatic actuator; 500, measuring assembly; 501, second moving block; 502, connecting sleeve; 503, lifting column; 504, spring; 505, sliding block; 506, scale identifier; 507, winding box; 508, tape measure; 509, fixed block; 600, support assembly; 601, fixed frame; 602, support wheel; 700, scanning component; 701, support frame; 702, display board; 703, scanning camera; 704, background board; 705, visual locator. DETAILED DESCRIPTION

[0020] In order to more clearly understand the above-mentioned objects, features and advantages of the present application, the present application is further described in detail below in conjunction with the accompanying drawings and specific embodiments. It should be noted that the embodiments of the present application and the features therein can be combined with each other in the absence of conflict.

[0021] In the following description, many specific details are set forth to facilitate a full understanding of the present application. However, the present application may also be implemented in other ways different from those described herein. Therefore, the scope of protection of the present application is not limited to the specific embodiments disclosed below.

[0022] Refer to the following Figures 1 to 14 The present invention describes a multi-parameter measuring device for raincoat pattern making according to some embodiments of the present application.

[0023] like Figure 1-3As shown, the multi-parameter measurement equipment for raincoat customization provided in some embodiments of the present application includes a measuring platform 100, a transposition component 200, an adjustment component 300, a positioning component 400 and a measuring component 500, wherein the transposition component 200 is arranged on the measuring platform 100; the adjustment component 300 is arranged on the transposition component 200, and the transposition component 200 is used to adjust the height of the adjustment component 300; two positioning components 400 are respectively arranged on the adjustment component 300, and the two positioning components 400 are symmetrically distributed on the measuring platform 100, and the adjustment component 300 is used to adjust the relative positions of the two positioning components 400; two measuring components 500 are respectively arranged on each positioning component 400, and the two measuring components 500 cooperate to fit and measure human body data.

[0024] In this embodiment, the measuring platform 100 is the equipment support base, and the measured person stands on the measuring platform 100. The transposition component 200 adjusts the height of the adjustment component 300 according to the height of the measured person. The relative positions of the two positioning components 400 are adjusted by the adjustment component 300 to match the body shape of the measured person, so that the measuring component 500 fits the human body surface, and the different states of the measuring component 500 are adjusted by the adjustment component 300 to measure the three measurements, arm circumference and arm length of the measured person. By obtaining human body data in a mechanized manner, errors caused by insufficient inspection or differences in technique of the measurer are avoided, the difficulty of measurement operation is reduced, and the measurement efficiency is improved. At the same time, the discomfort caused by physical contact between the measurer and the measured person is avoided, thereby improving the measurement experience.

[0025] In some possible embodiments, such as Figure 4 As shown, the measuring platform 100 includes: a supporting platform 101; a positioning platform 102, which is arranged at the center of the supporting platform 101; a stand 103, which is arranged on one side of the top of the supporting platform 101 and has a slide groove; and a top plate 104, which is arranged at the top of the stand 103.

[0026] In this embodiment, the support platform 101 is the basic base of the measuring platform 100, which plays a role of bearing and stabilization. The positioning platform 102 is located at the center of the support platform 101, which is convenient for the person being measured to stand on it for positioning and measurement. The stand 103 is set on one side of the support platform 101 to support the top plate 104. The stand 103 and the top plate 104 support the measuring structure, providing a stable and reliable measuring platform for customized clothing measurement, ensuring the smooth progress of the measurement process.

[0027] In some possible embodiments, such as Figure 4-6As shown, the transposition assembly 200 includes: a transverse movement module 201, which is arranged on the top plate 104; a hanger 202, which is arranged on the transverse movement module 201, and the hanger 202 is arranged on the side of the top plate 104 away from the vertical frame 103; a first screw rod 203, which is arranged in the hanger 202; and a lifting seat 204, which is arranged on the first screw rod 203, and the lifting seat 204 has a support shaft.

[0028] In this embodiment, the transmission structure of the transverse movement module 201 can drive the hanger 202 to move laterally along the top plate 104. The adjustment component 300 is set on the support shaft of the lifting seat 204, and the lifting seat 204 is fixed on the hanger 202. The adjustment component 300 will move laterally with the hanger 202, thereby changing its position in the horizontal direction. When the height of the adjustment component 300 needs to be adjusted, the first screw rod 203 set in the hanger 202 is driven to rotate, and the internal thread of the lifting seat 204 is matched with the thread of the first screw rod 203. The rotation of the first screw rod 203 causes the lifting seat 204 to move up and down along the axis direction of the first screw rod 203. The movement of the lifting seat 204 is transmitted to the adjustment component 300 through the support shaft, thereby realizing the adjustment of the height of the adjustment component 300, so that the measuring component 500 can fit the body parts of the measured person at different heights.

[0029] In some possible embodiments, such as Figure 6 、 Figure 7 As shown, the adjustment assembly 300 includes: a mounting frame 301, which is rotatably connected to the lifting seat 204; a dual-axis motor 302, which is arranged in the middle of the mounting frame 301; two second screw rods 303, which are arranged on both sides of the dual-axis motor 302; and two first moving blocks 304, which are respectively arranged on each second screw rod 303.

[0030] In this embodiment, the relative positions of the two positioning assemblies 400 are adjusted by adjusting the assembly 300, that is, the dual-axis motor 302 is started, and its two output shafts rotate, respectively driving the second screw rods 303 on both sides to rotate. Since the internal thread of the first moving block 304 is matched with the thread of the second screw rod 303, the rotation of the second screw rod 303 will cause the first moving block 304 to move along the axial direction of the second screw rod 303. The two first moving blocks 304 move inward or outward at the same time under the determination of their respective corresponding second screw rods 303, thereby realizing the adjustment of the spacing between the positioning assemblies 400, so that the measuring assembly 500 accurately fits the human body and improves the measurement accuracy.

[0031] In some possible embodiments, such as Figure 7 、 Figure 8As shown, each positioning assembly 400 includes: a first trackless cylinder 401, which is arranged on the first moving block 304; a second trackless cylinder 402, which is arranged at one end of the first trackless cylinder 401 away from the first moving block 304; a corner motor 403, which is arranged between the first trackless cylinder 401 and the second trackless cylinder 402; and a plurality of pneumatic actuators 404, which are arranged on the first trackless cylinder 401 and the second trackless cylinder 402.

[0032] In this embodiment, the pneumatic actuator 404 drives the entire positioning assembly 400 to perform linear motion on the basis of the first moving block 304 by controlling the amount of air inside the first trackless cylinder 401 and the second trackless cylinder 402, and at the same time makes the second trackless cylinder 402 and the first trackless cylinder 401 perform relative linear motion, thereby moving the positioning assembly 400 to a suitable position close to the body part of the person being measured. In addition, by controlling the rotation angle of the angle motor 403, the second trackless cylinder 402 is driven to rotate relative to the first trackless cylinder 401, so that the angle of the positioning assembly 400 matches the shape of the human body part, thereby realizing the measurement of the bending variables at the joints of the person being measured and obtaining the actual size.

[0033] In this design, the linear motion of the first trackless cylinder 401 and the second trackless cylinder 402 and the rotation angle transformation of the angular drive make it highly flexible, enabling it to freely adjust its position and posture in three-dimensional space to accommodate subjects of different body shapes and postures, thereby improving the accuracy and adaptability of the measurement.

[0034] In some possible embodiments, such as Figure 8-13 As shown, each measuring assembly 500 includes: two second moving blocks 501, which are respectively arranged on the first trackless cylinder 401 and the second trackless cylinder 402; two connecting sleeves 502, which are respectively arranged on each second moving block 501, and each connecting sleeve 502 has a slide groove; two lifting columns 503, which are respectively arranged on each connecting sleeve 502, and each lifting column 503 has a limit block, and each limit block is arranged in a corresponding slide groove, and the two lifting columns 503 are divided into a first lifting column and a second lifting column; two springs 504, which are respectively arranged in the corresponding connecting sleeves 502; a sliding block 505, which is set At the end of the first lifting column away from the connecting sleeve 502, the sliding block 505 has a receiving cavity inside; the scale identifier 506 is arranged on the sliding block 505; the winding box 507 is arranged on the first trackless cylinder 401 and the second trackless cylinder 402; the tape measure 508 is arranged in the winding box 507, and the tape measure 508 is arranged in the receiving cavity of the sliding block 505; the fixed block 509 is arranged at the end of the second lifting column away from the connecting sleeve 502, and the fixed block 509 is connected to the end of the tape measure 508 away from the winding box 507, and the fixed block 509 cooperates with the connecting block.

[0035] In this embodiment, when measuring the three measurements, the mounting frame 301 rotates relative to the lifting seat 204, so that the first trackless cylinder 401 and the second trackless cylinder 402 are in a horizontal and vertical state, and the dual-axis motor 302 rotates to make the trackless cylinders on both sides move relative to each other, so that the fixed blocks 509 and the moving blocks 505 on both sides will fit together. During the fitting process of the fixed blocks 509 and the moving blocks 505, the lifting column 503 and the spring 504 inside the connecting sleeve 502 will be squeezed and compressed, and then the action of the cylinder is controlled by the pneumatic actuator 404, so that the two second moving blocks 501 at the fixed block 509 move together, so that the side of the fixed block 509 fits against the side of the body of the person being measured. During the movement of the fixed block 509, The winding box 507 then releases the tape measure 508, and at this time the two second moving blocks 501 at the sliding block 505 are controlled to move together, so that the sliding block 505 side is in contact with the other side of the measured person's body. When the fixed block 509 side and the moving block 505 side are in contact with both sides of the measured person's body, the torsion spring force inside the winding box 507 will cause the tape measure 508 to be in a stretched state between the fixed block 509 and the moving block 505. When the tape measure 508 contacts the measured person's body, it will fit tightly on the measured person's body, thereby forming an encirclement that fits the measured person's body. At this time, data recognition is performed by the ruler identifier 506 to obtain the circumference of the measured part of the measured person; arm circumference During measurement, the first trackless cylinder 401 and the second trackless cylinder 402 are in a vertical state to adapt to the measurement posture of the arm. According to the steps of tape measure 508 output, spacing adjustment, and pushing out of the lifting column 503 in the three-dimensional measurement, the tape measure 508 is fitted to the arm to measure the arm circumference; during arm length measurement, first, the arm of the person being measured is vertical, the first trackless cylinder 401 and the second trackless cylinder 402 are in a vertical state, and the dual-axis motor 302 controls the relative movement of the first trackless cylinder 401 and the second trackless cylinder 402, so that the tape measure 508 fits the back part of the arm of the person being measured. At this time, the second moving block 501 at the first lifting column moves so that the fixed block 509 is at the position of the wrist of the person being measured, and the second moving block 501 at the first lifting column moves. The second moving block 501 moves so that the sliding block 505 is at the shoulder position of the person being measured, and the arm length is recorded at this time. Then, the person being measured bends his elbow, and the angle motor 403 causes the second trackless cylinder 402 to rotate relative to the first trackless cylinder 401, ensuring that the tape measure 508 always fits the arm of the person being measured, and the second moving block 501 drives the fixed block 509 to move, ensuring that the fixed block 509 is always at the wrist position of the person being measured and the sliding block 505 is always at the shoulder position. At this time, because the person being measured is bent at the elbow, the tape measure 508 will change the reading at the ruler identifier 506 due to the movement of the fixed block 509, thereby measuring the length of the variable at the arm joint and obtaining the actual size.

[0036] In this design, by adjusting the relative state of the first trackless cylinder 401 and the second trackless cylinder 402, it can adapt to the measurement needs of various human body dimensions such as three measurements, arm circumference, and arm length, and has high versatility and flexibility. In addition, the tape measure 508 can fit the human body, and the scale identifier 506 can accurately identify the scale of the tape measure 508, thereby improving the accuracy of measurement and reducing the complexity of manual operation.

[0037] In some possible embodiments, such as Figure 11 As shown, two supporting components 600 are further included. Each supporting component 600 is used to support a corresponding measuring tape 508 . Each supporting component 600 includes: a fixing frame 601 , which is arranged on the winding box 507 ; and a supporting wheel 602 , which is arranged on the fixing frame 601 .

[0038] When the measuring tape 508 is adjusted, the measuring tape 508 is adjusted to the desired position, and the two fixing blocks 509 at the ends of the measuring tape 508 are moved with the second moving block 501 to fit the side of the body of the person being measured away from the measuring tape 507. At this time, the sliding block 505 moves to fit the other side of the body of the person being measured. Due to the force of the torsion spring inside the measuring tape 507, the measuring tape 508 is pulled, and the sliding blocks 505 on both sides cannot be fully fitted, thereby affecting the measurement data. By providing a fixing frame 601 and a supporting wheel 602 outside the measuring tape 507, a fulcrum for the measuring tape 508 is added to the supporting wheel 602. At this time, the output point of the measuring tape 508 on the supporting wheel 602 is in a straight line with the fitting points of the two sliding blocks 505 and the two fixing blocks 509, thereby preventing the torsion spring force from pulling the measuring tape 508, causing the measuring tape 508 on both sides to be unable to fully fit, thereby causing the measurement data to be smaller, thereby improving the accuracy of the measurement data.

[0039] In some possible embodiments, such as Figure 14 As shown, it also includes a scanning component 700, which is used to scan basic height information of a human body. The scanning component 700 includes: a support frame 701, which is arranged in the slide groove of the stand 103; a display panel 702, which is arranged on the support frame 701; a scanning camera 703, which is arranged on the display panel 702; a background panel 704, which is arranged on the side of the support platform 101 away from the stand 103, and the display panel 702 and the background panel 704 are symmetrically distributed on the support platform 101; a visual locator 705, which is arranged on the top plate 104, and the visual locator 705 and the positioning platform 102 are on the same center line.

[0040] In this embodiment, the person being measured stands on the positioning platform 102 of the support platform 101. By adjusting the position of the support frame 701 in the slide slot of the stand 103 according to the height of the person being measured, the display panel 702 and the scanning camera 703 are at a suitable height. At this time, the visual locator 705 works to ensure that the person being measured is in the center position. The scanning camera 703 obtains the basic height and leg length data of the person being measured to assist in clothing customization.

[0041] When the multi-parameter measuring device for fixing the raincoat pattern is in operation, the person being measured stands on the positioning platform 102 of the measuring platform 100, and the visual locator 705 detects the position of the person being measured, so that the person is in the center of the positioning platform 102. According to the height of the person being measured, the lateral movement module 201 drives the hanger 202 to move laterally along the top plate 104, and at the same time drives the first screw rod 203 to rotate, so that the lifting seat 204 moves up and down along the axis direction of the first screw rod 203, thereby adjusting the height and horizontal position of the mounting frame 301. When measuring the three dimensions, the mounting frame 301 rotates relative to the lifting seat 204, so that the first trackless cylinder 401 and the second trackless cylinder 402 are in a horizontal and vertical state to adapt to the posture of the three dimensions measurement, and the dual-axis motor 302 rotates to make When the trackless cylinders on both sides move relative to each other, the fixed blocks 509 and the moving blocks 505 on both sides will fit together. During the fitting process of the fixed blocks 509 and the moving blocks 505, the lifting column 503 and the spring 504 inside the connecting sleeve 502 will be squeezed and compressed. Then, the action of the cylinder is controlled by the pneumatic actuator 404, so that the two second moving blocks 501 at the fixed block 509 move together, so that the fixed block 509 side fits one side of the measured person's body. During the movement of the fixed block 509, the winding box 507 releases the tape measure 508. At this time, the two second moving blocks 501 at the sliding block 505 are controlled to move together, so that the sliding block 505 side fits the other side of the measured person's body. When both the fixed block 509 side and the moving block 505 side fit the measured person's body, After the two sides are moved, the torsion spring force inside the winding box 507 will make the tape measure 508 in a stretched state between the fixed block 509 and the movable block 505. Then, when the tape measure 508 contacts the body of the person being measured, the tape measure 508 will fit tightly to the body of the person being measured, thereby forming an encirclement around the body of the person being measured. The scale identifier 506 identifies the scale of the tape measure 508 to obtain the three-dimensional data. When measuring the arm circumference, the first trackless cylinder 401 and the second trackless cylinder 402 are parallel to the hanger 202 to adapt to the measurement posture of the arm. According to the steps of tape measure 508 output, spacing adjustment, top extension and push-out in the three-dimensional measurement, the tape measure 508 is made to fit the arm to obtain the arm circumference data. When measuring the arm length, first, the arm of the person being measured is vertical, The first trackless cylinder 401 and the second trackless cylinder 402 are in a vertical state, and the dual-axis motor 302 controls the relative movement of the first trackless cylinder 401 and the second trackless cylinder 402, so that the tape measure 508 fits the back part of the arm of the person being measured. At this time, the second moving block 501 at the first lifting column moves, so that the fixed block 509 is at the position of the wrist of the person being measured, and the second moving block 501 at the second lifting column moves, so that the sliding block 505 is at the position of the shoulder of the person being measured, and the arm length is recorded at this time. Then, the elbow of the person being measured is bent, and the angle motor 403 is used to rotate the second trackless cylinder 402 relative to the first trackless cylinder 401, ensuring that the tape measure 508 always fits the arm of the person being measured, and the second moving block 501 drives the fixed block 509 to move.Ensure that the fixed block 509 is always at the wrist position of the measured person, and the sliding block 505 is always at the shoulder position. At this time, because the measured person's elbow is bent, the tape measure 508 will change the reading at the ruler identifier 506 due to the movement of the fixed block 509, realizing the length measurement of the variable at the arm joint and obtaining the actual size. When measuring height, the position of the support frame 701 in the slide slot of the stand 103 is adjusted according to the height of the measured person, so that the display board 702 and the scanning camera 703 are at the appropriate height. The scanning camera 703 obtains the measured person's basic height and leg length data. After the measurement is completed, the measured measurements, arm circumference, arm length, height, and leg length are recorded for subsequent clothing customization. The entire measurement process is basically automated, reducing manual intervention and improving measurement efficiency and data accuracy.

[0042] In the present application, it should be noted that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "axial", "radial", "circumferential" and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as a limitation to the present application.

[0043] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of the technical features being referred to. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of such features. Throughout the description of this application, "plurality" means at least two, for example, two, three, etc., unless otherwise specifically defined.

[0044] In this application, unless otherwise specified or limited, the terms "mounted" and "connected" should be understood broadly. For example, they can refer to fixed, removable, or integral connections; mechanical or electrical connections; and direct or indirect connections through an intermediary. The term "plurality" refers to two or more, unless otherwise specified. Those skilled in the art will understand the specific meanings of these terms in this application based on the specific circumstances.

[0045] In this application, unless otherwise expressly specified or limited, when a first feature is "above" or "below" a second feature, it may mean that the first and second features are in direct contact, or the first and second features are in indirect contact through an intermediate medium. Furthermore, when a first feature is "above," "above," or "above" a second feature, it may mean that the first feature is directly above or diagonally above the second feature, or simply means that the first feature is at a higher level than the second feature. When a first feature is "below," "below," or "below" a second feature, it may mean that the first feature is directly below or diagonally below the second feature, or simply means that the first feature is at a lower level than the second feature.

[0046] Throughout this application, terms such as "one embodiment," "some embodiments," and "specific embodiments" mean that the specific features, structures, materials, or characteristics described in conjunction with that embodiment or example are included in at least one embodiment or example of this application. In this specification, schematic representations of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.

[0047] The above description is merely a preferred embodiment of the present application and is not intended to limit the present application. Various modifications and variations are possible for those skilled in the art. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present application shall be included within the scope of protection of the present application.

Claims

1. A multi-parameter measuring device for raincoat pattern setting, characterized in that: include: Measuring platform; a transposition assembly, disposed on the measuring platform; an adjusting assembly, disposed on the transposition assembly, and configured to adjust the height of the adjusting assembly; Two positioning assemblies are respectively provided on the adjusting assembly, the two positioning assemblies are symmetrically distributed on the measuring platform, and the adjusting assembly is used to adjust the relative positions of the two positioning assemblies; Two measuring components are respectively arranged on each positioning component, and the two measuring components cooperate with each other to measure human body data.

2. The multi-parameter measuring device according to claim 1, characterized in that: The measuring station comprises: Support platform; A positioning platform, arranged at the center of the support platform; A stand, arranged on one side of the top of the support platform, and the stand has a slide groove; A top plate is arranged on the top of the stand.

3. The multi-parameter measuring device according to claim 2, characterized in that: The transposition component includes: A transverse movement module is arranged on the top plate; A hanger is provided on the overflow module, and the hanger is provided on a side of the top plate away from the vertical frame; a first screw rod, disposed in the hanger; The lifting seat is arranged on the first screw rod, and the lifting seat has a support shaft.

4. The multi-parameter measuring device according to claim 3, characterized in that: The adjustment component includes: A mounting frame, rotatably connected to the lifting seat; A dual-axis motor is arranged in the middle of the mounting frame; Two second screw rods are arranged on both sides of the dual-axis motor; Two first moving blocks are respectively arranged on each of the second screw rods.

5. The multi-parameter measuring device according to claim 4, characterized in that: Each of the positioning components comprises: a first trackless cylinder, disposed on the first moving block; a second trackless cylinder, disposed at an end of the first trackless cylinder away from the first moving block; A corner motor is provided between the first trackless cylinder and the second trackless cylinder; A plurality of pneumatic actuators are arranged on the first trackless cylinder and the second trackless cylinder.

6. The multi-parameter measuring device according to claim 5, characterized in that: Each of the measurement components comprises: Two second moving blocks are respectively arranged on the first trackless cylinder and the second trackless cylinder; Two connecting sleeves are respectively provided on each of the second moving blocks, and each of the connecting sleeves has a sliding groove; Two jacking columns are respectively provided on each of the connecting sleeves, each of the jacking columns has a limit block, each of the limit blocks is arranged in the corresponding slide groove, and the two jacking columns are divided into a first jacking column and a second jacking column; Two springs are respectively arranged in the corresponding connecting sleeves; A sliding block is provided at an end of the first lifting column away from the connecting sleeve, and the sliding block has an accommodating cavity therein; A scale identifier is arranged on the sliding block.

7. The multi-parameter measuring device according to claim 5, characterized in that: Each of the measurement components further comprises: a winding box, arranged on the first trackless cylinder and the second trackless cylinder; A measuring tape is disposed in the winding box, and the measuring tape is disposed in the accommodating cavity of the sliding block; A fixed block is provided at one end of the second lifting column away from the connecting sleeve, the fixed block is connected to one end of the tape measure away from the winding box, and the fixed block cooperates with the connecting block.

8. The multi-parameter measuring device according to claim 7, characterized in that: It also includes two supporting components, each of which is used to support the corresponding measuring tape, and each of the supporting components includes: A fixing frame, arranged on the winding box; The supporting wheel is arranged on the fixing frame.

9. The multi-parameter measuring device according to claim 2, characterized in that: The scanning component is used to scan basic height information of a human body, and the scanning component includes: A support frame, arranged in the slide groove of the stand; A display panel is arranged on the support frame; A scanning camera is arranged on the display panel; The background board is arranged on a side of the support platform away from the stand, and the display board and the background board are symmetrically distributed on the support platform.

10. The multi-parameter measuring device according to claim 2, characterized in that: The scanning mechanism also includes: The visual locator is arranged on the top plate, and the visual locator and the positioning platform are on a center line.