3D intelligent body measuring mirror
By designing support and adjustment components, the problem of the body measurement mirror wobbling and tipping on uneven ground was solved, achieving multi-dimensional adjustment and stability of the mirror's pitch angle, adapting to the needs of users of different heights and training postures, and improving the accuracy of data acquisition.
Patent Information
- Application Number
- CN202520576771.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2035-03-31
AI Technical Summary
The existing body measurement mirrors are not sturdy and lack sufficient tilt adjustment, causing them to wobble or tip over on uneven surfaces. They are also difficult to adapt to the needs of users of different heights and training postures.
The design employs a support and adjustment assembly, including a mounting plate against the wall, tripods, and a U-shaped frame forming a stable triangular mechanical structure. The mirror's tilt angle is adjusted via a mounting plate with a fixed ring. The mounting plate, along with the support and adjustment assembly, houses the stereomicroscope body. A camera turntable is mounted on the top of the stereomicroscope body. The support assembly includes a mounting plate with two parallel tripods on its upper part. Each tripod's end is pivotally connected to a U-shaped frame, and the bottom of the U-shaped frame is pivotally connected to a main support frame. The bottom of the main support frame connects to the adjustment assembly. The adjustment assembly includes a first rotating ring and a second rotating ring mounted on the mounting ring and fixed ring. The first and second rotating rings act on the main support frame to adjust the mirror's tilt angle.
It achieves multi-dimensional stepless adjustment of the mirror tilt angle, enhancing the stability and adaptability of the body measurement mirror, ensuring data acquisition accuracy and user compatibility, and is suitable for high-frequency use scenarios such as gyms and rehabilitation centers.
Smart Images

Figure CN223759580U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of body endoscopic technology, and in particular to a 3D intelligent body endoscopic mirror. Background Technology
[0002] The 3D intelligent body measurement mirror is an intelligent device that combines 3D scanning, artificial intelligence and big data analysis technologies. It can collect, model and assess the health of the human body in all aspects and is widely used in health management, clothing customization, sports rehabilitation and other fields.
[0003] Most existing body measurement mirrors use non-slip bases, but they may still wobble slightly when used on soft mats or uneven surfaces. In addition, most body measurement mirrors are quite heavy and are prone to tipping over when pushed. Furthermore, body measurement mirrors require adjustment of the mirror's tilt angle during use, such as for precise optical path calibration, flexible handling of complex scenarios, and personalized multi-dimensional adjustment. However, existing body measurement mirrors lack multi-dimensional adjustment functions for the mirror's tilt angle.
[0004] Therefore, this application provides a 3D intelligent body measurement mirror to solve the problems mentioned in the background art. Utility Model Content
[0005] The purpose of this invention is to provide a 3D intelligent body measurement mirror that solves the problems of existing body side mirrors having unstable support and being unable to achieve multi-dimensional adjustment of the mirror's tilt angle.
[0006] To solve the above-mentioned technical problems, this utility model provides a 3D intelligent body measurement mirror, including a support component that is set against the wall, an adjustment component that is set in the middle and lower part of the support component, a body measurement mirror body that is set on the adjustment component, and a camera turntable that is set on the upper part of the body measurement mirror body.
[0007] The support assembly includes a mounting plate, on the upper part of which are two parallel triangular frames. Each triangular frame is pivotally connected to a U-shaped frame at its end. The bottom end of the U-shaped frame is pivotally connected to a main support frame. The bottom end of the main support frame is connected to an adjustment assembly.
[0008] The adjustment assembly includes a fixing ring located in the lower part of the mounting plate, and a first rotating ring and a second rotating ring are provided on the fixing ring. The first rotating ring and the second rotating ring act on the main support frame to adjust the tilt angle of the mirror.
[0009] A further improvement of the present invention is that: the outer ring of the fixed ring is rotatably fitted with a first rotating ring and a second rotating ring, the first rotating ring and the second rotating ring are arranged coaxially and side by side, a connecting platform is provided on the outer side wall of the first rotating ring and the second rotating ring, a first connecting arm is fixedly provided on each connecting platform along the axial direction, the two first connecting arms are axially connected to the second connecting arm, and the two second connecting arms are axially connected to the third connecting arm.
[0010] A further improvement of this utility model is that: shaft connection holes are opened at both ends of the second connecting arm, and the angle between the center line of the shaft connection hole and the second connecting arm is 30°–60°.
[0011] A further improvement of this utility model is that the third connecting arm is fixedly connected to the bottom of the main support frame.
[0012] A further improvement of the present invention is that: a first traction rope and a second traction rope are respectively provided on the outer circumferential surfaces of the first rotating ring and the second rotating ring; the first rotating ring is fixed relative to the first traction rope; the two ends of the first traction rope are wrapped around and fixed on the first rotating shaft; the second rotating ring is fixed relative to the second traction rope; the two ends of the second traction rope are wrapped around and fixed on the second rotating shaft.
[0013] A further improvement of this utility model is that the first rotating shaft and the second rotating shaft are respectively connected to a motor.
[0014] A further improvement of this utility model is that the end of the main support frame is a vertically bent structure, and the end of the main support frame is connected to the inner wall of the fixing ring through a connecting piece.
[0015] A further improvement of this utility model is that the tripod is connected to the U-shaped frame via a clamping wheel assembly. The clamping wheel assemblies are symmetrically arranged on the opposite inner sidewalls of the U-shaped frame. Each clamping wheel assembly includes two rollers, which are respectively clamped on opposite sides of the tripod.
[0016] A further improvement to the technical solution of this utility model is that a travel limit sleeve is set on the tripod corresponding to the U-shaped frame.
[0017] A further improvement to the technical solution of this utility model is that multiple horizontal beams are horizontally arranged on the main support frame.
[0018] By adopting the above technical solution, this utility model has the following beneficial effects:
[0019] 1. This utility model provides a 3D intelligent body measurement mirror. This mirror, through its adjustable components, facilitates multi-dimensional stepless adjustment of the pitch angle, precisely adapting to user needs. Specifically, the first and second rotating rings are linked by a first and second traction rope and a motor, respectively, to achieve electric adjustment of the mirror's pitch angle. This precisely controls the light reflection or transmission path, ensuring the relative position of the measuring device and the target object reaches the optimal state, thereby improving data acquisition accuracy and meeting the needs of users of different heights or training postures. The angle between the center line of the shaft connection hole of the second connecting arm and the second connecting arm is 30°–60°, ensuring smooth pitch adjustment and preventing accidental displacement due to external forces or vibrations. The end of the main support frame is connected to the fixed ring via a connecting piece, further increasing the bottom support of the body measurement mirror and enhancing its stability.
[0020] 2. This utility model provides a 3D intelligent body measurement mirror. The mirror features a support assembly that enhances its support strength. Specifically, a combined tripod and U-shaped frame support is formed by the axial connection of two parallel tripods and the U-shaped frame on the mounting plate, creating a stable triangular mechanical structure. This effectively disperses the weight of the mirror and external impacts, avoiding tilting or swaying caused by uneven force distribution in traditional single-frame systems. Symmetrically arranged clamping wheels on the inner side of the U-shaped frame clamp the sides of the tripod with double rollers, limiting lateral displacement and ensuring a rigid connection of the support assembly during dynamic adjustment. Limiting sleeves on the tripods and the horizontal beam of the main support frame further constrain the travel and enhance the overall frame's torsional resistance, making it suitable for high-frequency use scenarios such as gyms and rehabilitation centers. Attached Figure Description
[0021] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0022] Figure 1 A schematic diagram of a 3D intelligent body measurement mirror;
[0023] Figure 2 This is a schematic diagram of the structure of the support component and the adjustment component of this utility model;
[0024] Figure 3 This is a schematic diagram showing the connection between the support component and the adjustment component of this utility model;
[0025] Figure 4 for Figure 3 A schematic diagram of the structure of part A;
[0026] Figure 5 for Figure 3 A structural diagram of section B;
[0027] Figure 6 This is a schematic diagram of the structure of the adjustment component of this utility model;
[0028] Figure 7 This is a schematic diagram of the structure of the first rotating ring and the second rotating ring of this utility model;
[0029] Figure 8 This is a schematic diagram of the structure of the first connecting arm, the second connecting arm, and the third connecting arm of this utility model;
[0030] Figure 9 This is a schematic diagram of the structure of the second connecting arm of this utility model;
[0031] Figure 10 This is a schematic diagram of the U-shaped frame of this utility model.
[0032] Reference numerals: 1. Support assembly; 11. Mounting plate; 12. Tripod; 13. U-shaped frame; 14. Clamping wheel assembly; 15. Roller; 16. Main support frame; 17. Crossbeam; 18. Limiting sleeve; 2. Adjustment assembly; 201. Fixing ring; 202. First rotating ring; 203. Second rotating ring; 204. Connecting platform; 205. First connecting arm; 206. Second connecting arm; 207. Third connecting arm; 208. Shaft connection hole; 209. First traction rope; 210. Second traction rope; 211. First rotating shaft; 212. Second rotating shaft; 213. Connecting piece; 3. Body measurement mirror; 4. Camera turntable. Detailed Implementation
[0033] The technical solution of this utility model will now be clearly and completely described with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this utility model. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0034] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0035] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0036] The present invention will be further explained below with reference to specific embodiments.
[0037] like Figures 1-10As shown, this embodiment provides a 3D intelligent body measurement mirror, including a support assembly 1 that is mounted against a wall. An adjustment assembly 2 is located in the lower middle part of the support assembly 1. A body measurement mirror 3 is mounted on the adjustment assembly 2. A camera turntable 4 is mounted on the upper part of the body measurement mirror 3. The camera turntable 4 rotates at a constant speed for the camera to scan the human body. The support assembly 1 includes a mounting plate 11. Two parallel tripods 12 are mounted on the upper part of the mounting plate 11. Each tripod 12 is axially connected to a U-shaped frame 13 at its end. The tripods 12 and the U-shaped frame 13 provide combined support. Through the axial connection between the two parallel tripods 12 and the U-shaped frame 13 on the mounting plate 11, a stable triangular mechanical structure is formed. Effectively disperses the weight of the microscope body and external impacts, avoiding tilting or swaying caused by uneven force distribution in traditional single-frame systems; the bottom end of the U-shaped frame 13 is pivotally connected to the main support frame 16, and multiple horizontal beams 17 are horizontally arranged on the main support frame 16, with the bottom end of the main support frame 16 connected to the adjustment component 2; the tripod 12 is pivotally connected to the U-shaped frame 13 via clamping wheel sets 14, and clamping wheel sets 14 are symmetrically arranged on the opposite inner sidewalls of the U-shaped frame 13, each clamping wheel set 14 including two rollers 15, which are respectively clamped on opposite sides of the tripod 12. The contact surfaces between the rollers 15 of the clamping wheel set 14 and the tripod 12 are coated with a rubber layer to increase frictional damping and suppress vibration transmission. The tripod 12 has a travel limit sleeve 18 corresponding to the U-shaped frame 13; the clamping wheel group 14 is symmetrically arranged on the inner side of the U-shaped frame 13, which clamps the two sides of the tripod 12 through the double rollers 15, limiting the lateral displacement and ensuring that the support component 1 maintains a rigid connection during dynamic adjustment; the limit sleeve 18 on the tripod 12 and the horizontal beam 17 of the main support frame 16 further constrain the travel and enhance the torsional resistance of the overall frame, making it suitable for high-frequency use scenarios such as gyms and rehabilitation centers.
[0038] like Figure 3 , Figures 5-9As shown, in this embodiment, the adjustment component 2 includes a fixing ring 201 disposed in the lower part of the mounting plate 11. A first rotating ring 202 and a second rotating ring 203 are disposed on the fixing ring 201. The first rotating ring 202 and the second rotating ring 203 act on the main support frame 16 respectively to adjust the mirror tilt angle. The outer ring of the fixing ring 201 rotatably sleeves the first rotating ring 202 and the second rotating ring 203. The first rotating ring 202 and the second rotating ring 203 are coaxially arranged side-by-side. A connecting platform 204 is provided on the outer side wall of both the first rotating ring 202 and the second rotating ring 203. A first connecting arm 205 is fixedly disposed axially on each connecting platform 204. Two first connecting arms 205 are pivotally connected to a second connecting arm 206. Two second connecting arms 206 are pivotally connected to a third connecting arm 207. Pivot holes 208 are provided at both ends of the second connecting arm 206. The angle between the center line of the pivot hole 208 and the second connecting arm 206 is 30°–60°. The third connecting arm 207 is fixedly connected to the bottom of the main support frame 16. The angle between the center line of the shaft connection hole 208 of the second connecting arm 206 and the second connecting arm 206 is 30°–60°, which makes the pitch adjustment process smooth and avoids accidental deviation caused by external force or vibration.
[0039] like Figures 5-7 As shown, in this embodiment, a first traction rope 209 and a second traction rope 210 are respectively provided on the outer circumferential surfaces of the first rotating ring 202 and the second rotating ring 203. The first rotating ring 202 and the first traction rope 209 are fixed relative to each other. The two ends of the first traction rope 209 are wrapped around and fixed to the first rotating shaft 211. The second rotating ring 203 and the second traction rope 210 are fixed relative to each other. The two ends of the second traction rope 210 are wrapped around and fixed to the second rotating shaft 212. The first rotating shaft 211 and the second rotating shaft 212 are respectively connected to a motor. The first rotating ring 202 and the second rotating ring 203 are linked by the first traction rope 209, the second traction rope 210 and the motor to realize the electric adjustment of the mirror pitch angle, accurately control the light reflection or transmission path, and ensure that the relative position of the measuring device and the target object reaches the optimal state, thereby improving the data acquisition accuracy and meeting the needs of users of different heights or training postures.
[0040] like Figures 5-6 As shown, in this embodiment, the end of the main support frame 16 is a vertically bent structure, and the end of the main support frame 16 is axially connected to the inner wall of the fixing ring 201 through the connecting piece 213; the connection between the end of the main support frame 16 and the fixing ring 201 through the connecting piece 213 is beneficial to further increase the bottom support of the stereomicroscope and enhance its stability.
[0041] The working principle of the technical solution provided by this utility model is as follows:
[0042] The mounting plate 11 is fixed to the wall with expansion bolts. Two tripods 12 are symmetrically installed on the upper part of the mounting plate 11. The top of the tripods 12 is connected to the U-shaped frame 13 by a clamping wheel set 14. The clamping wheel set 14 consists of two nylon rollers 15, which are symmetrically embedded in the sliding grooves on the inner side wall of the U-shaped frame 13. The rollers 15 clamp the two sides of the tripods 12 to limit lateral displacement. The bottom of the U-shaped frame 13 is connected to the main support frame 16 by a pivot. The main support frame 16 adopts a vertical bending structure, and its end is connected to the fixing ring 201 by a connecting piece 213. Three horizontal beams 17 are welded on the main support frame 16 to enhance the anti-torsional performance.
[0043] A fixing ring 201 is fixedly installed in the lower part of the mounting plate 11. A first rotating ring 202 and a second rotating ring 203 are coaxially sleeved on its outer ring. Both rotating rings have a connecting platform 204 on their outer side walls. A first traction rope 209 is fixed to the outer circumference of the first rotating ring 202, and its two ends are wrapped around and locked to the first rotating shaft 211. The second rotating shaft 212 is connected to the second rotating shaft 212 in the same way. The first rotating shaft 211 and the second rotating shaft 212 are respectively connected to a stepper motor through a coupling. The motor is fixed to the mounting plate. In the inner cavity of 11, a first connecting arm 205 is fixed axially on the connecting platform 204 of the first rotating ring 202 and the second rotating ring 203. The two first connecting arms 205 are hinged to the second connecting arm 206 through a shaft pin. The two ends of the second connecting arm 206 are provided with shaft connection holes 208, which are hinged to the third connecting arm 207. The end of the third connecting arm 207 is welded to the bottom of the main support frame 16, and the body of the stereomicroscope 3 is fixed on multiple crossbeams 17. The center line of the mirror surface coincides with the axis of the main support frame 16.
[0044] The user sends a command via remote control, and the two drive motors operate, causing the first rotating shaft 211 and the second rotating shaft 212 to rotate in opposite directions. The first traction rope 209 pulls the first rotating ring 202, and the second traction rope 210 pulls the second rotating ring 203 to rotate around the fixed ring 201 at the same speed. Through the linkage of the first connecting arm 205, the second connecting arm 206 and the third connecting arm 207, the main support frame 16 is pushed to swing around the axis of the fixed ring 201, thereby realizing the adjustment of the mirror tilt angle.
[0045] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this utility model.
Claims
1. A 3D smart mirror, characterized in that, The application relates to a support assembly (1) arranged against a wall, a regulating assembly (2) arranged at the lower part of the support assembly (1), and a body mirror (3) arranged on the regulating assembly (2). The support assembly (1) comprises a mounting plate (11), the upper part of the mounting plate (11) is provided with two parallel tripods (12), the end of each tripod (12) is connected with a U-shaped frame (13) through a shaft, the bottom end of the U-shaped frame (13) is connected with a main support frame (16), and the bottom end of the main support frame (16) is connected with the regulating assembly (2). The regulating assembly (2) comprises a fixing ring (201) arranged at the lower part of the mounting plate (11), a first rotating ring (202) and a second rotating ring (203) arranged on the fixing ring (201), the first rotating ring (202) and the second rotating ring (203) are arranged on the main support frame (16) respectively, and the mirror surface inclination angle is adjusted.
2. The 3D smart mirror of claim 1, wherein, The outer ring of the fixing ring (201) is rotatably sleeved with the first rotating ring (202) and the second rotating ring (203), the first rotating ring (202) and the second rotating ring (203) are coaxially arranged side by side, the outer side walls of the first rotating ring (202) and the second rotating ring (203) are provided with connecting platforms (204), the first connecting arms (205) are fixedly arranged on each connecting platform (204) along the axial direction, the two first connecting arms (205) are connected with a second connecting arm (206) through a shaft, and the two second connecting arms (206) are connected with a third connecting arm (207) through a shaft.
3. The 3D smart mirror of claim 2, wherein, The two ends of the second connecting arm (206) are provided with shaft connecting holes (208), and the center line of the shaft connecting hole (208) and the second connecting arm (206) form an angle of 30-60 degrees.
4. The 3D smart mirror of claim 2, wherein, The third connecting arm (207) is fixedly connected with the bottom of the main support frame (16).
5. The 3D smart mirror of claim 2, wherein, The outer circumferential surfaces of the first rotating ring (202) and the second rotating ring (203) are provided with a first traction rope (209) and a second traction rope (210) respectively, the first rotating ring (202) is fixedly connected with the first traction rope (209), the two ends of the first traction rope (209) are wound around and fixed on a first rotating shaft (211), the second rotating ring (203) is fixedly connected with the second traction rope (210), and the two ends of the second traction rope (210) are wound around and fixed on a second rotating shaft (212).
6. The 3D smart mirror of claim 5, wherein, The first rotating shaft (211) and the second rotating shaft (212) are connected with motors respectively.
7. The 3D smart mirror of claim 2, wherein, The end of the main support frame (16) is a vertical bending structure, and the end of the main support frame (16) is connected with the inner side wall of the fixing ring (201) through a connecting plate (213).
8. The 3D smart mirror of claim 1, wherein, The tripods (12) are connected with the U-shaped frames (13) through clamping wheel groups (14), the opposite inner side walls of the U-shaped frames (13) are symmetrically provided with the clamping wheel groups (14), and each clamping wheel group (14) comprises two rollers (15) which are clamped on the opposite two side surfaces of the tripod (12).
9. The 3D smart mirror of claim 1, wherein, The tripods (12) are provided with limiting sleeves (18) corresponding to the stroke of the U-shaped frames (13).
10. The 3D smart mirror of claim 1, wherein, A plurality of horizontal beams (17) are arranged on the main support frame (16).