Coupling patch heating and filling equipment with leak-proof structure
By introducing leak-proof structures such as heat-insulated operating doors and heat-insulated curtains into the heated filling equipment, the problem of temperature instability caused by heat leakage is solved, ensuring that the material maintains a stable temperature during the filling process, thereby improving product quality and production efficiency.
Patent Information
- Application Number
- CN202520575525.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2035-03-31
AI Technical Summary
Existing heating and filling equipment is prone to heat leakage during operation, resulting in unstable temperature, which affects the filling quality and performance of the coupling patch, makes it difficult to accurately control the filling volume, leads to inconsistent product quality, and increases production costs.
The equipment employs leak-proof structures such as insulated operating doors and insulated curtains to prevent heat from escaping and maintain a high-temperature environment inside, ensuring that the material maintains a stable temperature during the filling process.
It effectively reduces heat leakage, maintains stable material temperature, prevents viscosity changes and composition deterioration, and improves product quality and production efficiency.
Smart Images

Figure CN223822218U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to coupling patch equipment technical field, more specifically, the utility model relates to a kind of coupling patch heating filling equipment with leakage-proof structure. BACKGROUND
[0002] Coupling patch is composed of water-based gel block and its outer packaging, and the intended use is to improve the ultrasonic coupling effect between the probe and the patient, for use on intact skin.
[0003] After searching, the existing patent No.CN221341471U discloses a coupling patch heating filling equipment, which comprises a device platform, a device main body is arranged above the device platform, four fixed rods are fixedly arranged at the four corner ends of the top of the device platform, the device main body is positioned and installed on the inner walls of the four fixed rods through bolts, two fixed rods are arranged on the front end of the device platform, and a sliding groove is arranged on the surface of the two fixed rods, a protective plate is arranged at the front end of the fixed rod, L-shaped sliding blocks are arranged at the two ends of the protective plate and matched with the sliding groove, the L-shaped sliding blocks are slidingly installed in the sliding groove, and a protective glass is arranged on the surface of the protective plate.
[0004] The existing heating filling equipment has openings and material in and out during operation, which inevitably forms an air circulation channel. During the conveying process, there is a temperature difference between the high-temperature area inside the equipment and the low-temperature environment outside. Hot air will naturally flow to the low-temperature area, causing air convection through the openings, and thus carrying out a large amount of heat. At the same time, heat radiation can also spread heat to the outside through these opening areas. The filling material of the coupling patch is sensitive to temperature changes. Once the heat leakage causes temperature instability, the material viscosity changes, the material flow rate during the filling process is uneven, it is difficult to accurately control the filling amount, the product quality is uneven, the composition deteriorates or precipitates, which directly affects the performance of the coupling patch, reduces the bonding effect of the electronic components, affects signal transmission, etc., ultimately makes the product unable to meet the quality standards, causes product scrap, and increases production cost.
[0005] Therefore, a coupling patch heating filling equipment with a leakage-proof structure is proposed to solve the above problems. UTILITY MODEL CONTENTS
[0006] In order to overcome the above-mentioned defects of the prior art, the utility model provides a coupling patch heating filling equipment with a leakage-proof structure to solve the problems raised in the above background.
[0007] To achieve the above objectives, this utility model provides the following technical solution: a coupling patch heating and filling device with a leak-proof structure, comprising a working platform, a heat-insulated operating door, and a heat-insulated curtain, characterized in that: a heat-insulated load-bearing cover is provided at the upper end of the working platform, and openings are provided at the bottom of both sides of the heat-insulated load-bearing cover; a device body is provided at the upper end of the heat-insulated load-bearing cover; fixed plates are provided at both ends of the outer sides of the two sets of openings; transmission rollers are installed on the opposite surfaces of every two sets of fixed plates and at the bottom of the inner cavity of the heat-insulated load-bearing cover; three sets of transmission rollers are provided, and a conveyor belt is installed on the outer surface of the three sets of transmission rollers; a motor is installed on the outer side of one set of fixed plates.
[0008] The heat-insulating operating door is installed on the front end of the heat-insulating load-bearing cover, and the inner cavity of the heat-insulating operating door is provided with a viewing window. A silicone ring is installed at the edge of the heat-insulating operating door, and the heat-insulating curtain is installed in the inner cavity of the two sets of openings respectively.
[0009] Preferably, the heat-insulated operating door is installed and movably connected to the inner cavity of the front end face of the heat-insulated load-bearing cover via a hinge, and both the inner surfaces of the heat-insulated load-bearing cover and the heat-insulated operating door are provided with an aluminum foil layer.
[0010] Preferably, the front end face of the device body is provided with a heat dissipation vent, and there are six sets of heat dissipation vents, which are distributed and arranged at equal intervals.
[0011] Preferably, a door handle is installed below the viewing window, and the opposite surfaces of the heat-insulating load-bearing cover and the heat-insulating operating door abut against the silicone ring.
[0012] Preferably, the end of the heat insulation curtain away from the conveyor belt is connected to the opening by bolts, and there are eight sets of heat insulation curtains, with four sets of heat insulation curtains arranged in an adjacent manner.
[0013] Preferably, the motor is used to drive the transmission roller to rotate about its axis, and the teeth on the outer surface of the three sets of transmission rollers are engaged with the inner surface of the teeth of the conveyor belt.
[0014] Preferably, when one set of the drive rollers rotates with the motor, the conveyor belt is linked to the other two sets of drive rollers to rotate.
[0015] The technical effects and advantages of this utility model are as follows:
[0016] 1. Compared with existing technologies, this coupling patch heating and filling equipment with a leak-proof structure can effectively block the heat dissipation from the inside of the equipment through the heat insulation curtain and heat insulation operating door, minimizing heat leakage through the sides of the conveyor belt and the front end of the device. This helps maintain a high-temperature environment inside the equipment, keeping the material at a stable temperature during the filling process. It prevents excessive heat leakage and keeps the material at a suitable temperature, maintaining its good flowability and uniformity. It also avoids changes in material viscosity, deterioration of composition, or precipitation due to temperature changes, thereby ensuring the stable quality of the coupling patch and improving product quality. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the overall three-dimensional structure of this utility model.
[0018] Figure 2 This utility model Figure 1 A magnified schematic diagram of part A in the diagram.
[0019] Figure 3 This is a schematic diagram of the three-dimensional cross-sectional structure of the transmission roller of this utility model.
[0020] Figure 4 This is a schematic diagram of the three-dimensional structure of the side view section of this utility model.
[0021] The attached diagram is labeled as follows: 1. Work platform; 2. Insulated load-bearing cover; 21. Opening; 3. Equipment body; 31. Heat dissipation vent; 4. Fixing plate; 5. Transmission roller; 6. Conveyor belt; 7. Motor; 8. Insulated operating door; 81. Viewing window; 9. Door handle; 10. Silicone ring; 11. Insulated curtain; 12. Aluminum foil layer. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model. Example
[0023] As attached Figures 1 to 4The coupled patch heating and filling equipment with a leak-proof structure shown includes a working platform 1, a heat-insulated operating door 8 and a heat-insulated curtain 11. The equipment is characterized in that: a heat-insulated load-bearing cover 2 is provided at the upper end of the working platform 1, and openings 21 are provided at the bottom of both sides of the heat-insulated load-bearing cover 2. The equipment body 3 is provided at the upper end of the heat-insulated load-bearing cover 2. Fixing plates 4 are provided at both ends of the outer sides of the two sets of openings 21. A transmission roller 5 is installed on the opposite side of each pair of fixing plates 4 and the bottom of the inner cavity of the heat-insulated load-bearing cover 2. There are three sets of transmission rollers 5. A conveyor belt 6 is installed on the outer surface of the three sets of transmission rollers 5. A motor 7 is installed on the outer side of one set of fixing plates 4.
[0024] The heat-insulating operating door 8 is installed on the front end of the heat-insulating load-bearing cover 2, and the inner cavity of the heat-insulating operating door 8 is provided with a viewing window 81. A silicone ring 10 is installed on the edge of the heat-insulating operating door 8, and the heat-insulating curtain 11 is installed in the inner cavity of the two sets of openings 21 respectively.
[0025] The equipment comprises: a working platform 1 providing a stable support foundation for the entire device, ensuring its stable placement and operation of all components; a heat-insulating load-bearing cover 2 supporting the weight of the device body 3, providing load-bearing support, and its heat insulation effectively reducing heat loss from the device's interior to the external environment, helping to maintain a high-temperature environment inside the device, reducing heat loss and energy consumption; openings 21 on both sides of the bottom of the heat-insulating load-bearing cover 2 for the conveyor belt 6 to pass through, allowing materials to enter and exit the cover 2; the device body 3, the core component, used to realize the various functions of coupled patch heating and filling; and a fixing plate 4 for fixing the drive roller 5. To ensure the stable position of the drive roller 5, the motor 7 provides power for the rotation of the drive roller 5. Through the drive of the motor 7, the rotation speed of the drive roller 5 can be precisely controlled, thereby controlling the running speed of the conveyor belt 6 to adapt to different production needs and ensure the stability and accuracy of material conveying. The conveyor belt 6, as the material transport carrier, transports the material to be filled into the equipment for heating and filling operations, and conveys the completed coupling patch out of the equipment, realizing automated material transfer and improving production efficiency. The drive roller 5 drives the conveyor belt 6 to run by rotating, thereby realizing the transfer of materials in the equipment, so that the materials can pass smoothly through the heat insulation load-bearing cover 2 for heating and filling processes.
[0026] The heat-insulated operating door 8 is installed on the front face of the heat-insulated load-bearing cover 2, effectively blocking heat from escaping from the front and reducing heat leakage. The viewing window 81 inside the door allows operators to easily observe the internal working conditions of the equipment, facilitating timely problem detection and adjustment without compromising the equipment's insulation performance. The silicone ring 10 installed at the edge enhances the seal between the heat-insulated operating door 8 and the heat-insulated load-bearing cover 2, further preventing heat leakage from the door gaps. The heat-insulating curtain 11 is installed inside the two sets of openings 21, effectively blocking heat from escaping through the openings 21 on both sides of the conveyor belt 6, reducing heat leakage and contributing to... To maintain a stable internal temperature and ensure that the material remains at a suitable temperature during the filling process, the heat insulation curtain 11 is installed inside the opening 21, which is located at the two critical ends of the material conveying process. Through its material properties and densely arranged structure, it forms an effective thermal resistance barrier. During equipment operation, a large amount of heat is concentrated inside the heat insulation load-bearing cover 2. Without the heat insulation curtain 11, the heat would be quickly dissipated to the outside through the opening 21 by air convection and thermal radiation. The heat insulation curtain 11 can block this heat transfer to a great extent, ensuring that the high-temperature environment inside the equipment is maintained, so that the material can remain stably within a suitable temperature range throughout the entire filling process. Example
[0027] Based on Example 1, the solution in Example 1 will be further described in detail below with reference to the specific working method, such as... Figures 1 to 4 As shown below, see details:
[0028] In a preferred embodiment, the heat-insulated operating door 8 is installed and movably connected to the inner cavity of the front end face of the heat-insulated load-bearing cover 2 via a hinge. Both the inner surfaces of the heat-insulated load-bearing cover 2 and the heat-insulated operating door 8 are provided with an aluminum foil layer 12. Furthermore, the aluminum foil layer 12 has the characteristics of low thermal conductivity and high reflectivity. On the one hand, its low thermal conductivity can slow down the conduction of heat through the heat-insulated load-bearing cover 2 and the heat-insulated operating door 8. On the other hand, the high reflectivity can reflect the heat radiation inside the equipment back, reduce the loss of heat to the outside, further improve the heat insulation performance, and help maintain the stability of the high-temperature environment inside the equipment.
[0029] In a preferred embodiment, the front end face of the device body 3 is provided with a heat dissipation vent 31, and six sets of heat dissipation vents 31 are arranged in an equidistant manner. Furthermore, the device body 3 will generate heat during operation, and the heat dissipation vents 31 provide a channel for heat dissipation. The six sets of heat dissipation vents 31 can increase the heat dissipation area and accelerate air circulation, so that the heat of the device body 3 can be quickly dissipated to the external environment, preventing the device from malfunctioning due to overheating.
[0030] In a preferred embodiment, a door handle 9 is installed below the viewing window 81, and the opposite surfaces of the heat-insulating load-bearing cover 2 and the heat-insulating operating door 8 abut against the silicone ring 10. Furthermore, the door handle 9 is installed below the viewing window 81 mainly to facilitate the operator in opening and closing the heat-insulating operating door 8. It provides a gripping part, allowing the operator to easily apply force to open or close the door. The silicone ring 10 is installed between the opposite surfaces of the heat-insulating load-bearing cover 2 and the heat-insulating operating door 8, playing a role in sealing and heat insulation. It can fill the gap between the heat-insulating operating door 8 and the heat-insulating load-bearing cover 2, preventing the internal hot air from leaking to the outside through the gap, further enhancing the heat insulation effect, and helping to maintain the stability of the high-temperature environment inside the equipment.
[0031] In a preferred embodiment, the end of the heat insulation curtain 11 furthest from the conveyor belt 6 is connected to the opening 21 by bolts. Eight sets of heat insulation curtains 11 are provided, with four sets of heat insulation curtains 11 arranged adjacent to each other. Furthermore, connecting the end of the heat insulation curtain 11 furthest from the conveyor belt 6 to the opening 21 by bolts ensures that the heat insulation curtain 11 is securely installed. The bolt connection can withstand a certain amount of tensile and shear forces, ensuring that the heat insulation curtain 11 will not loosen or fall off during long-term use, thereby ensuring that the heat insulation curtain is always in the correct position and effectively performs its heat insulation function.
[0032] In a preferred embodiment, the motor 7 drives the transmission rollers 5 to rotate around their axis. The teeth on the outer surfaces of the three sets of transmission rollers 5 mesh with the inner surfaces of the teeth of the conveyor belt 6. When one set of transmission rollers 5 rotates with the motor 7, the conveyor belt 6 rotates in conjunction with the other two sets of transmission rollers 5. Furthermore, the meshing of the teeth on the outer surfaces of the transmission rollers 5 with the inner surfaces of the teeth of the conveyor belt 6 enables precise transmission. When the motor 7 drives one set of transmission rollers 5 to rotate, the meshing of the teeth precisely drives the conveyor belt 6 to move, and the conveyor belt 6 accurately rotates in conjunction with the other two sets of transmission rollers 5. This ensures that the conveyor belt 6 runs at a stable speed, thereby ensuring the positional accuracy and transmission speed stability of the material during the conveying process. This is beneficial for improving the automation level of the production process and the consistency of product quality.
[0033] The working process of this utility model is as follows: First, after the equipment is turned on, the working platform 1 provides stable support for the entire equipment, ensuring that all components of the equipment are in a stable state. The heat-insulating load-bearing cover 2 bears the weight of the equipment body 3, and its heat insulation performance ensures that the heat inside the equipment is maintained, reducing heat loss and energy consumption. The aluminum foil layer 12, through its low thermal conductivity and high reflectivity, further improves the heat insulation performance of the heat-insulating load-bearing cover 2 and the heat-insulating operating door 8, maintaining a stable high-temperature environment inside the equipment. The motor 7 is powered on and starts, generating driving torque. The motor 7 on the fixed plate 4 drives a set of transmission rollers 5 connected to it to rotate around its axis. The rotation of the transmission roller 5 is due to the meshing between the teeth on the outer surface of the transmission roller 5 and the inner surface of the teeth on the conveyor belt 6. The rotation of this set of transmission roller 5 drives the conveyor belt 6 to move through the meshing force between the teeth. During the movement of the conveyor belt 6, the meshing of the teeth drives the other two sets of transmission roller 5 to rotate synchronously, thereby realizing the coordinated work of the three sets of transmission roller 5 and driving the conveyor belt 6 to run stably. The conveyor belt 6 serves as a material transport carrier, transporting the material to be filled placed on it from the outside of the equipment through the openings 21 at the bottom of both sides of the heat insulation load-bearing cover 2 to the inside of the equipment body 3 to prepare for the subsequent heating and filling operation.
[0034] During equipment operation, operators can observe the internal working conditions of the equipment through the viewing window 81 opened in the inner cavity of the heat-insulated operating door 8, which facilitates timely detection and adjustment of problems. The heat-insulated operating door 8 is movably connected to the inner cavity of the front face of the heat-insulated load-bearing cover 2 through hinges and is opened and closed by the door handle 9. The silicone ring 10 installed at its edge abuts against the opposite surface of the heat-insulated load-bearing cover 2, effectively filling the gap between the two and preventing internal hot air from leaking to the outside through the connection, thus enhancing the heat insulation effect. At the same time, the heat-insulating curtains 11 installed in the inner cavities of the two sets of openings 21 are connected to the openings 21 by bolts at the end away from the conveyor belt 6. The eight sets of heat-insulating curtains 11 are arranged in a four-set adjacent manner, forming an effective thermal barrier, which maximizes the prevention of heat dissipation from the inside of the equipment through the openings 21, maintains the internal temperature of the equipment, and ensures that the material maintains a suitable temperature during the filling process. The above is the working principle of this coupling patch heating filling equipment with a leak-proof structure.
Claims
1. A coupling patch heating and filling device with a leak-proof structure, comprising a work platform (1), a heat-insulated operating door (8), and a heat-insulated curtain (11), characterized in that: The upper end of the work platform (1) is provided with a heat-insulating load-bearing cover (2). The bottom of both sides of the heat-insulating load-bearing cover (2) is provided with an opening (21). The upper end of the heat-insulating load-bearing cover (2) is provided with a device body (3). The two ends of the outer side of the two sets of openings (21) are provided with fixing plates (4). The opposite surfaces of each two sets of fixing plates (4) and the bottom of the inner cavity of the heat-insulating load-bearing cover (2) are each equipped with a transmission roller (5). There are three sets of transmission rollers (5). The outer surface of the three sets of transmission rollers (5) is equipped with a conveyor belt (6). The outer side of one set of fixing plates (4) is equipped with a motor (7). The heat-insulating operating door (8) is installed on the front end face of the heat-insulating load-bearing cover (2), and the inner cavity of the heat-insulating operating door (8) is provided with a viewing window (81), and a silicone ring (10) is installed at the edge of the heat-insulating operating door (8). The heat-insulating curtain (11) is installed in the inner cavity of the two sets of openings (21).
2. The coupling patch heating and filling equipment with a leak-proof structure according to claim 1, characterized in that: The heat-insulating operating door (8) is installed and is movably connected to the inner cavity of the front end face of the heat-insulating load-bearing cover (2) via a hinge. Both the inner surfaces of the heat-insulating load-bearing cover (2) and the heat-insulating operating door (8) are provided with an aluminum foil layer (12).
3. The coupling patch heating and filling device with a leak-proof structure according to claim 2, characterized in that: The front end face of the device body (3) is provided with a heat dissipation port (31), and there are six sets of heat dissipation ports (31) arranged in an equidistant manner.
4. The coupling patch heating and filling device with a leak-proof structure according to claim 1, characterized in that: A door handle (9) is installed below the viewing window (81), and the opposite surfaces of the heat-insulating load-bearing cover (2) and the heat-insulating operating door (8) abut against the silicone ring (10).
5. The coupling patch heating and filling device with a leak-proof structure according to claim 1, characterized in that: The end of the heat insulation curtain (11) away from the conveyor belt (6) is connected to the opening (21) by bolts. There are eight sets of heat insulation curtains (11), and four sets of heat insulation curtains (11) are arranged in an adjacent manner.
6. The coupling patch heating and filling device with a leak-proof structure according to claim 1, characterized in that: The motor (7) is used to drive the transmission roller (5) to rotate around its axis, and the teeth on the outer surface of the three sets of transmission rollers (5) are engaged with the inner surface of the teeth of the conveyor belt (6).
7. The coupling patch heating and filling device with a leak-proof structure according to claim 1, characterized in that: When one set of the drive rollers (5) rotates with the motor (7), the conveyor belt (6) is linked to the other two sets of drive rollers (5) to rotate.
Citation Information
Patent Citations
Coupling patch heating and filling equipment
CN221341471U