Rubber nozzle temperature on-line detection device

The online nozzle temperature detection device, designed with a frameless torque motor and damping sleeve, solves the problem of insufficient structural stability, achieves flexible adjustment and stable detection, adapts to various installation environments, and ensures detection accuracy and stability.

CN224286168UActive Publication Date: 2026-05-26CHANGSHU MIHENG MATERIAL TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHANGSHU MIHENG MATERIAL TECH CO LTD
Filing Date
2025-08-12
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Conventional nozzle temperature detection devices have a fixed structure and lack flexibility, making it difficult to adjust quickly and effectively in different installation environments, which affects detection accuracy and stability.

Method used

The electric joint and damping sleeve design, which adopts a frameless torque motor structure, combined with a cross-shaped fixing plate and bolt connection, enables flexible adjustment and stable fixation of the device, ensuring accurate detection by the temperature sensor.

Benefits of technology

It improves the structural mobility and operational flexibility of the device, ensures the accuracy and stability of temperature detection, avoids spatial interference, and adapts to various installation environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a glue nozzle temperature on-line detection device, and relates to the technical field of adhesive sticker production, the glue nozzle temperature on-line detection device comprises a support frame member and a second closed structure member, the bottom of the support frame member is connected with a first joint member, and the second closed structure member is connected to one end of the support frame member far away from the first joint member. According to the glue nozzle temperature on-line detection device, the first joint component and the second joint component are arranged at the two ends of the supporting frame component respectively, a first electric joint and a second electric joint are each of a frameless torque motor structure, and by means of the arrangement of the structures, the whole device structure has the double-section structure movable adjustability; and meanwhile, a damping sleeve is used between the second closing component and the detection component, so that the detection component can realize axial rotation adjustment along the surface of the connecting pile, the structural flexibility is improved, and the device is convenient to use.
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Description

Technical Field

[0001] This utility model relates to the field of self-adhesive production technology, specifically to an online nozzle temperature detection device. Background Technology

[0002] Self-adhesive label production is a composite material manufacturing process that uses paper, film, or special materials as the face stock, adhesive coated on the back, and silicone-coated release liner as the backing paper. Self-adhesive labels mainly consist of three parts: the face stock (paper / film / special material), the adhesive (pressure-sensitive adhesive), and the backing paper (silicone-coated release liner). Among these, the face stock directly affects the visual effect, while the quality of the adhesive and the backing paper directly affects the performance in use.

[0003] The online nozzle temperature detection device is mainly used to monitor the temperature change of the nozzle during the glue application process, ensuring that the glue is applied evenly at a suitable temperature and avoiding glue application quality defects (such as missed application, glue piling, stringing, etc.) caused by abnormal temperature. This device uses non-contact infrared thermometry technology to detect the temperature distribution on the nozzle surface in real time, and combines it with an intelligent control system to achieve real-time temperature monitoring and early warning.

[0004] Conventional testing devices are limited by their fixed structure, which restricts their flexibility and makes it difficult to make quick and effective adjustments in different installation environments. Utility Model Content

[0005] The purpose of this invention is to provide an online nozzle temperature detection device to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, this utility model provides the following technical solution: an online nozzle temperature detection device, comprising a support frame and a second gate structure. A first joint component is connected and installed at the bottom of the support frame. The second gate structure is connected to the end of the support frame away from the first joint component, and a detection component is connected and installed at the end of the second gate structure away from the support frame. The second gate structure includes a second electric joint, a second fixing bolt, a support seat, and a connecting post. The second fixing bolt is horizontally and symmetrically installed on the side of the second electric joint away from the support frame. The support seat is connected and installed at the end of the second fixing bolt away from the second electric joint. The connecting post is horizontally connected to the middle of the side of the support seat away from the second fixing bolt.

[0007] Furthermore, the support structure component includes a support rod, a main frame, and connecting holes. The left and right ends of the support rod are vertically connected to the main frame, and the upper and lower ends of the main frame are horizontally provided with connecting holes.

[0008] Furthermore, the main frame and the support rods are fixedly connected, and the support rods are arranged vertically between the two sets of main frames and there are three sets. The connecting holes are connected and installed with the first joint component and the second joint structural component.

[0009] Furthermore, the first joint component includes a first electric joint, a first fixing bolt, a connecting block, and a fixing plate. The first fixing bolt is symmetrically and horizontally arranged on the side of the first electric joint away from the support structure component, and the end of the first fixing bolt away from the first electric joint is connected to the connecting block. The side of the connecting block away from the first fixing bolt is provided with a fixing plate.

[0010] Furthermore, the first electric joint and the second electric joint have the same structure and are both used with a frameless torque motor structure. The first fixing bolt and the second fixing bolt have the same structure, and the left and right ends of the connecting block are symmetrically provided with holes that match the surface structure of one end of the first fixing bolt. The connecting block and the fixing plate are fixedly connected, and the fixing plate is set in a "+" shape. At the same time, two sets of holes for bolt installation are provided at each of the four ends of the fixing plate.

[0011] Furthermore, the left and right ends of the support base are symmetrically provided with holes that match the surface structure of one end of the second fixing bolt, and the support base and the connecting pile are integrally formed.

[0012] Furthermore, the detection component includes an adjustment frame, a damping sleeve, a temperature detection sensor, and a connecting terminal. The damping sleeve is embedded inside the end of the adjustment frame near the first joint component, and the temperature detection sensor is horizontally installed on the front side of the end of the adjustment frame away from the damping sleeve. A connecting terminal is installed at the rear end of the temperature detection sensor.

[0013] Furthermore, the connecting pile extends horizontally through the interior of the damping sleeve, and the connecting terminal adopts a quick-connect structure.

[0014] This utility model provides an online nozzle temperature detection device, which has the following beneficial effects:

[0015] 1. This utility model, by setting a first electric joint and a second electric joint, wherein both the first electric joint and the second electric joint adopt a frameless torque motor structure to provide a power source, has the characteristics of high power density, compact structure and space saving. Since the shaft, bearing, housing and other structures of traditional motors are omitted, it has the characteristics of high torque density, low inertia and flexible integration. With this structure, the entire device structure has two-stage structural mobility, thus giving the device flexible structural mobility and achieving good structural adjustment. This ensures that the temperature detection sensor can make accurate online detection of the nozzle temperature. At the same time, the entire device can be adapted and adjusted within a certain range regardless of the installation position, so as to ensure that the temperature detection sensor can make accurate detection.

[0016] 2. This utility model, by setting a connecting pile on one side of the support base, allows the entire detection component to be fitted onto the surface of the connecting pile using an adjusting frame with a damping sleeve installed inside one end. This enables the entire detection component to be axially rotated and adjusted horizontally along the surface of the connecting pile. The above-mentioned structure can further improve the flexibility and convenience of the device structure, thereby achieving good structural mobility. In addition, the fixing plate with the "+" structure, in conjunction with the use of bolts, can fix the entire device as much as possible to the surface of the mounting structure to ensure the stable operation of the device. The structural mobility of the first joint component and the second joint component allows the entire device to be extended and adjusted, while also achieving good structural folding and storage, thus avoiding spatial interference problems. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the main body of the online nozzle temperature detection device of this utility model;

[0018] Figure 2 This is a schematic diagram of the support structure of the online nozzle temperature detection device of this utility model;

[0019] Figure 3 This is a three-dimensional structural diagram of the first joint component of the online nozzle temperature detection device of this utility model;

[0020] Figure 4 This is a three-dimensional structural diagram of the second structural component of the online nozzle temperature detection device of this utility model;

[0021] Figure 5 This is a three-dimensional structural diagram of the detection component of the online nozzle temperature detection device of this utility model.

[0022] In the diagram: 1. Support structure component; 101. Support rod; 102. Main frame; 103. Connecting hole; 2. First joint component; 201. First electric joint; 202. First fixing bolt; 203. Connecting block; 204. Fixing plate; 3. Second joint component; 301. Second electric joint; 302. Second fixing bolt; 303. Support seat; 304. Connecting pile; 4. Detection component; 401. Adjustment frame; 402. Damping sleeve; 403. Temperature detection sensor; 404. Connecting terminal. Detailed Implementation

[0023] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of this utility model.

[0024] like Figures 1 to 5As shown, an online nozzle temperature detection device includes a support frame 1 and a second joint structure 3. A first joint component 2 is connected and installed at the bottom of the support frame 1. The second joint structure 3 is connected to the end of the support frame 1 away from the first joint component 2, and a detection component 4 is connected and installed at the end of the second joint structure 3 away from the support frame 1. The second joint structure 3 includes a second electric joint 301, a second fixing bolt 302, a support base 303, and a connecting post 304. A second... A fixing bolt 302 is used, and a support base 303 is connected to the end of the second fixing bolt 302 away from the second electric joint 301. A connecting post 304 is horizontally connected to the middle of the side of the support base 303 away from the second fixing bolt 302. Both ends of the support base 303 have symmetrically arranged holes matching the surface structure of one end of the second fixing bolt 302. The support base 303 and the connecting post 304 are integrally formed. The first joint component 2 includes a first electric joint 201, a first fixing bolt 202, a connecting block 203, and a fixing plate 204. A first fixing bolt 202 is symmetrically and horizontally arranged on the side of the electric joint 201 away from the supporting frame component 1. A connecting block 203 is connected to the end of the first fixing bolt 202 away from the first electric joint 201. A fixing plate 204 is arranged on the side of the connecting block 203 away from the first fixing bolt 202. The first electric joint 201 and the second electric joint 301 have the same structure and both use a frameless torque motor structure. The first fixing bolt 202 and the second fixing bolt 302 have the same structure, and both ends of the connecting block 203 have symmetrically arranged vertically. The first fixing bolt 202 has a matching hole structure on one end of its surface, and the connecting block 203 and the fixing plate 204 are fixedly connected. The fixing plate 204 is arranged in a "+" shape, and each of the four ends of the fixing plate 204 has two sets of holes for bolt installation. The first electric joint 201 and the second electric joint 301 are both frameless torque motors. With this structure, the entire device has a two-stage structural mobility, which makes the device flexible and allows for good structural adjustment.

[0025] like Figures 1 to 5As shown, the support structure component 1 includes a support rod 101, a main frame 102, and connecting holes 103. The left and right ends of the support rod 101 are vertically connected to the main frame 102, and the upper and lower ends of the main frame 102 are horizontally provided with connecting holes 103. The main frame 102 and the support rod 101 are fixedly connected, and the support rod 101 is arranged vertically between two sets of main frame 102, with three sets in total. The connecting holes 103 are connected and installed to the first joint component 2 and the second joint structure component 3. The detection component 4 includes an adjustment frame 401, a damping sleeve 402, a temperature detection sensor 403, and a connecting terminal 404. The adjustment frame 401 is close to the first joint component 2 and the second joint structure component 3. A damping sleeve 402 is embedded in one end of a joint component 2, and a temperature detection sensor 403 is horizontally mounted on the front side of the end of the adjusting frame 401 away from the damping sleeve 402. A connecting terminal 404 is installed at the rear end of the temperature detection sensor 403. The connecting post 304 is horizontally inserted into the interior of the damping sleeve 402. The connecting terminal 404 adopts a quick connector structure. The adjusting frame 401 with the damping sleeve 402 installed in one end is sleeved onto the surface of the connecting post 304, so that the entire detection component 4 can be axially rotated and adjusted in the horizontal direction along the surface of the connecting post 304.

[0026] In summary, as Figures 1 to 5 As shown, when using the online nozzle temperature detection device, the entire device is first fixed to the mounting structure surface using the support base 303 and bolts to ensure sufficient result stability. When the device needs to be used and structural adjustments are required, the first electric joint 201 connected to one side of the connecting block 203 by the first fixing bolt 202 will drive the entire support frame component 1 connected to one end of the main frame 102 through the connecting hole 103 to swing and adjust at a certain angle.

[0027] At the same time, as the first joint component 2 drives the support structure component 1 to perform structural adjustment, the second joint structure component 3 will operate synchronously. With the operation of the first electric joint 201, the detection component 4 sleeved on the surface of the connecting pile 304 will be further oscillated and adjusted by the structural connection of the second fixing bolt 302 and the support seat 303.

[0028] The entire detection component 4, with the cooperation of the adjustment frame 401 equipped with the damping sleeve 402, rotates horizontally along the surface of the connecting pile 304 to adjust the orientation and position of the temperature detection sensor 403. The temperature detection sensor 403 is then connected to the data analysis and collection equipment via the connecting terminal 404 to ensure the effectiveness of the detection.

[0029] The embodiments of this utility model are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the utility model to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described in order to better illustrate the principles and practical applications of this utility model, and to enable those skilled in the art to understand this utility model and design various embodiments with various modifications suitable for a particular purpose.

Claims

1. A nozzle temperature online detection device, comprising a support frame (1) and a second gate structure (3), characterized in that: The bottom of the support structure component (1) is connected to and installed with a first joint component (2). The second joint component (3) is connected to the end of the support structure component (1) away from the first joint component (2). The end of the second joint component (3) away from the support structure component (1) is connected to and installed with a detection component (4). The second joint component (3) includes a second electric joint (301), a second fixing bolt (302), a support seat (303), and a connecting pile (304). The second electric joint (301) is horizontally and symmetrically installed with a second fixing bolt (302) on the side away from the support structure component (1). The end of the second fixing bolt (302) away from the second electric joint (301) is connected to and installed with a support seat (303). The middle part of the side of the support seat (303) away from the second fixing bolt (302) is horizontally connected with a connecting pile (304).

2. The online nozzle temperature detection device according to claim 1, characterized in that, The support structure component (1) includes a support rod (101), a main frame (102) and a connecting hole (103). The left and right ends of the support rod (101) are vertically connected to the main frame (102), and the upper and lower ends of the main frame (102) are horizontally provided with connecting holes (103).

3. The online nozzle temperature detection device according to claim 2, characterized in that, The main frame (102) is fixedly connected to the support rod (101), and the support rod (101) is arranged vertically between the two sets of main frames (102) and there are three sets. The connecting hole (103) is connected and installed with the first joint component (2) and the second joint structure component (3).

4. The online nozzle temperature detection device according to claim 1, characterized in that, The first joint component (2) includes a first electric joint (201), a first fixing bolt (202), a connecting block (203) and a fixing plate (204). The first electric joint (201) is symmetrically and horizontally provided with the first fixing bolt (202) on the side away from the support structure component (1). The first fixing bolt (202) is connected to the connecting block (203) at the end away from the first electric joint (201). The connecting block (203) is provided with the fixing plate (204) on the side away from the first fixing bolt (202).

5. The online nozzle temperature detection device according to claim 4, characterized in that, The first electric joint (201) and the second electric joint (301) have the same structure and are both frameless torque motors. The first fixing bolt (202) and the second fixing bolt (302) have the same structure. The left and right ends of the connecting block (203) are symmetrically provided with holes that match the surface structure of one end of the first fixing bolt (202). The connecting block (203) and the fixing plate (204) are fixedly connected. The fixing plate (204) is in a cross shape. At the same time, the four ends of the fixing plate (204) are provided with two sets of holes for bolt installation.

6. The online nozzle temperature detection device according to claim 1, characterized in that, The support base (303) has symmetrical holes at both ends that match the surface structure of one end of the second fixing bolt (302), and the support base (303) and the connecting pile (304) are integrated into one structure.

7. The online nozzle temperature detection device according to claim 1, characterized in that, The detection component (4) includes an adjustment frame (401), a damping sleeve (402), a temperature detection sensor (403), and a connecting terminal (404). The damping sleeve (402) is embedded in the end of the adjustment frame (401) near the first joint component (2), and the temperature detection sensor (403) is horizontally installed on the front side of the end of the adjustment frame (401) away from the damping sleeve (402). The connecting terminal (404) is installed at the rear end of the temperature detection sensor (403).

8. The online nozzle temperature detection device according to claim 7, characterized in that, The connecting pile (304) is horizontally inserted into the interior of the damping sleeve (402), and the connecting terminal (404) adopts a quick connector structure.