Hot melting equipment
By using a rotary drive assembly to drive a rotating disk in the hot-melt equipment to achieve circumferential rotation of the hot-melt connecting parts and disassembly parts, the efficiency problem of the hot-melt equipment during operation switching is solved, and the operation efficiency and convenience are improved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-25
- Publication Date
- 2026-03-10
AI Technical Summary
Existing hot-melt equipment requires the disassembly and replacement of different models of hot-melt heads when switching between hot-melt connection and hot-melt disassembly operations, which is time-consuming, labor-intensive, affects work efficiency, and is inconvenient.
Design a hot-melt device that uses a rotary drive component to drive a rotating disk to rotate the hot-melt connector and the hot-melt disassembly component circumferentially, thereby achieving integrated hot-melt connection and disassembly operations and avoiding the need to replace the hot-melt head.
It improves the efficiency of hot melt operation, makes operation more convenient, reduces the time and labor required to replace hot melt heads, and expands the scope of application of the equipment.
Smart Images

Figure CN223982187U_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to the field of hot melt equipment technology, and more particularly to a hot melt equipment. Background Technology
[0002] In hot-melt operations, hot-melt equipment is usually used to automatically connect and disconnect hot-melt parts, replacing the traditional method of manually using a handheld soldering iron, thereby improving the efficiency of hot-melt operations. However, when switching between automated hot-melt connection and hot-melt disconnection operations, different models of hot-melt heads need to be removed and replaced on the hot-melt equipment, which makes the hot-melt operation time-consuming and laborious, affecting the efficiency and inconvenience of the operation. Utility Model Content
[0003] This disclosure provides a hot-melting apparatus to at least solve the aforementioned problems in the prior art.
[0004] To achieve the above objectives, this disclosure provides the following technical solution: a hot-melt device, the hot-melt device comprising:
[0005] The support mechanism is used to support the workpiece;
[0006] A rotary drive assembly is connected to the support mechanism;
[0007] A hot-melt assembly includes a rotating disk, hot-melt connectors, and hot-melt disassembly components. A rotation drive assembly is connected to the rotating disk and drives its rotation. The hot-melt connectors and disassembly components are connected to the rotating disk and are circumferentially spaced about the center line of the rotating disk.
[0008] The rotary drive assembly is used to drive the rotary disk to rotate the thermoplastic connector toward the workpiece for thermoplastic connection of the workpiece, and the rotary drive assembly is also used to drive the rotary disk to rotate the thermoplastic disassembly component toward the workpiece for thermoplastic disassembly of the workpiece.
[0009] In one embodiment, the number of the hot-melt connectors is multiple, and the multiple hot-melt connectors are arranged circumferentially at intervals around the center line of the rotating disk, and the multiple hot-melt connectors have different models.
[0010] In one embodiment, the thermofusion connector includes:
[0011] A thermofusion connector is attached to the rotating disk and used for thermofusion bonding of the workpiece;
[0012] The first probe is connected to the thermofusion connector and is used to detect the temperature of the thermofusion connector.
[0013] In one possible embodiment, the rotating disk includes:
[0014] A rotating body is connected to the rotating drive assembly, and the hot-melt connector is slidably connected to the rotating body along a direction perpendicular to the center line of the rotating body;
[0015] A first stop body is connected to the edge of the rotating body and is used to stop the hot-melt connector.
[0016] A first elastic body, one end of which abuts against the rotating body, and the other end of which abuts against the thermoplastic connector, wherein the elastic force released by the first elastic body is used to drive the thermoplastic connector to press against the first stop body.
[0017] In one embodiment, the number of the hot-melt disassembly components is multiple, and the multiple hot-melt disassembly components are arranged circumferentially at intervals with the center line of the rotating disk as the axis, and the multiple hot-melt disassembly components have different models.
[0018] In one embodiment, the thermoplastic disassembly component includes:
[0019] A hot melt disassembly head is connected to the rotary disk and is used for hot melt disassembly of the workpiece;
[0020] The second probe is connected to the thermosetting head and is used to detect the temperature of the thermosetting head.
[0021] In one embodiment, the heat-melting disassembly component is slidably connected to the rotating body along a direction perpendicular to the centerline of the rotating body, and the rotating disk further includes:
[0022] The second stop body is connected to the edge of the rotating body and is used to stop the hot-melt disassembly part;
[0023] The second elastic body has one end abutting against the rotating body and the other end abutting against the thermoplastic disassembly component. The elastic force released by the second elastic body is used to drive the thermoplastic disassembly component to press against the second stop body.
[0024] In one embodiment, the rotating disk further includes a heat insulation cover, which covers the side of the rotating body away from the rotating drive assembly. A portion of the heat-melt disassembly component is housed within the heat insulation cover, and another portion of the heat-melt disassembly component extends out of the heat insulation cover. A portion of the heat-melt connector is housed within the heat insulation cover, and another portion of the heat-melt connector extends out of the heat insulation cover.
[0025] In one possible implementation, the supporting mechanism includes:
[0026] A support assembly for supporting the workpiece;
[0027] A first-direction transfer component is connected to the load-bearing assembly;
[0028] A second directional transfer member is connected to the first directional transfer member and the rotary drive assembly; wherein...
[0029] The first directional transfer member is used to drive the second directional transfer member to move the rotary drive assembly and the hot melt assembly along the first direction, and the second directional transfer member is used to drive the rotary drive assembly to move the hot melt assembly along the second direction perpendicular to the first direction.
[0030] In one embodiment, the supporting mechanism further includes a supporting fixture, the supporting fixture comprising:
[0031] The fixture body is used to support the workpiece;
[0032] A fixture drive component is connected to the support assembly and the fixture body, and the fixture drive component is used to drive the fixture body to move in a third direction; wherein...
[0033] The first direction, the second direction, and the third direction are perpendicular to each other.
[0034] In the aforementioned hot-melt equipment, a rotary drive assembly drives a rotating disk to rotate the hot-melt connector toward the workpiece, so that the hot-melt connector contacts and heats the melting point boss, thereby realizing the hot-melt connection operation. At the same time, the rotary drive assembly drives a rotating disk to rotate the hot-melt disassembly component toward the workpiece, so that the hot-melt connector contacts and heats the melting point boss, thereby realizing the hot-melt disassembly operation. In this way, by integrating the hot-melt connection and hot-melt disassembly operations, there is no need to disassemble and replace the hot-melt connector and hot-melt disassembly component when switching between hot-melt connection and hot-melt disassembly operations, saving time and effort, making the hot-melt operation more efficient and the operation more convenient.
[0035] It should be understood that the description in this section is not intended to identify key or essential features of the embodiments of this disclosure, nor is it intended to limit the scope of this disclosure. Other features of this disclosure will become readily apparent from the following description. Attached Figure Description
[0036] The above and other objects, features, and advantages of this disclosure will become readily apparent from the following detailed description of exemplary embodiments, taken in conjunction with the accompanying drawings. Several embodiments of this disclosure are illustrated in the drawings by way of example and not limitation, in which:
[0037] In the accompanying drawings, the same or corresponding reference numerals indicate the same or corresponding parts.
[0038] Figure 1 A schematic diagram of the workpiece structure in an embodiment of this disclosure is shown;
[0039] Figure 2 A schematic diagram of the structure of the hot-melt equipment and the workpiece in an embodiment of this disclosure is shown;
[0040] Figure 3 It shows Figure 2 A schematic diagram of the exploded structure of the hot melt component;
[0041] Figure 4 It shows Figure 2 Schematic diagram of the structure of the load-bearing components and load-bearing fixtures;
[0042] Figure 5 A schematic diagram of the structure of the hot-melt equipment configured with an organic shell is shown in an embodiment of this disclosure.
[0043] Explanation of the labels in the diagram:
[0044] In the figure: 11, bearing mechanism; 111, bearing assembly; 112, first direction transfer component; 113, second direction transfer component; 114, bearing fixture; 1141, fixture body; 1142, fixture drive body; 1142a, fixture drive component; 1142b, movable platform; 12, rotation drive assembly; 13, hot melt assembly; 131, rotating disk; 1311, rotating body; 1312, first stop body; 1313, first elastic body; 1314, second stop body; 1315, second elastic body; 1316, heat insulation cover; 132, hot melt connector; 1321, hot melt connector head; 1322, first detector; 133, hot melt disassembly component; 1331, hot melt disassembly head; 1332, second detector; 14, housing; 20, workpiece; 21, melting point boss. Detailed Implementation
[0045] To make the objectives, features, and advantages of this disclosure more apparent and understandable, the technical solutions in the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this disclosure, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of this disclosure without creative effort are within the scope of protection of this disclosure.
[0046] It should be understood that the various forms of processes shown above can be used to rearrange, add, or delete steps. For example, the steps described in this disclosure can be executed in parallel, sequentially, or in different orders, as long as the desired result of the technical solution of this disclosure can be achieved, and this is not limited herein.
[0047] 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 technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this disclosure, "a plurality of" means two or more, unless otherwise explicitly specified.
[0048] The embodiments of this utility model are described below with reference to the accompanying drawings.
[0049] This disclosure provides a hot-melt apparatus for hot-melt joining operations to attach a first component to a second component to form a workpiece 20, and for hot-melt disassembly operations to hot-melt disassemble the workpiece 20 into the first component and the second component.
[0050] Please see Figure 1 For example, the first component can be a reinforcing iron piece, and the second component can be a C-piece with a keyboard. Specifically, the keyboard is located on one side of the C-piece, and the keyboard has multiple spaced melting point protrusions 21, with each melting point protrusion 21 passing through the C-piece to form the second component. The reinforcing iron piece is placed on the other side of the C-piece, and the melting point protrusion 21 on each keyboard passes through the reinforcing iron piece. When the melting point protrusions 21 are melted, the C-piece is fixed between the keyboard and the reinforcing iron piece to form a product. When disassembling, the melting point protrusions 21 are melted to facilitate the disassembly of the keyboard, the C-piece, and the reinforcing iron piece to form a C-piece with a keyboard and a reinforcing iron piece. The keyboard is then separated from the C-piece to obtain the keyboard accessories. The keyboard and reinforcing iron piece after being melted and disassembled can be recycled and reused to reduce the production cost of laptops.
[0051] Furthermore, the melting point boss 21 has various shapes and specifications. For example, the melting point boss 21 can be a cylindrical structure, a cuboid structure, a cube structure, a cone structure, a tube structure, a hemispherical structure, etc. Each specification of the melting point boss 21 requires a corresponding specification of heat fusion connector 1321 to facilitate heat fusion connection, and each specification of the melting point boss 21 requires a corresponding specification of heat fusion disassembly head 1331 to facilitate heat fusion disassembly.
[0052] It's understandable that the ABCD shell of a laptop is its main component. Component A refers to the back cover of the screen, component B to the front bezel of the screen, component C to the top cover of the main unit, and component D to the bottom cover of the main unit.
[0053] Please see Figure 2This disclosure provides a hot-melt device, which includes a supporting mechanism 11, a rotary drive assembly 12, and a hot-melt assembly 13. The supporting mechanism 11 supports a workpiece 20. The rotary drive assembly 12 is connected to the supporting mechanism 11. The hot-melt assembly 13 includes a rotating disk 131, a hot-melt connector 132, and a hot-melt disassembly component 133. The rotary drive assembly 12 is connected to the rotating disk 131 and drives the rotating disk 131 to rotate. The hot-melt connector 132 and the hot-melt disassembly component 133 are connected to the rotating disk 131 and are circumferentially spaced about the center line of the rotating disk 131. The rotary drive assembly 12 drives the rotating disk 131 to rotate the hot-melt connector 132 toward the workpiece 20 for hot-melt connection of the workpiece 20. The rotary drive assembly 12 also drives the rotating disk 131 to rotate the hot-melt disassembly component 133 toward the workpiece 20 for hot-melt disassembly of the workpiece 20. For example, the rotary drive assembly 12 can be a motor.
[0054] In the aforementioned hot-melt equipment, the rotary drive assembly 12 drives the rotary disk 131 to rotate the hot-melt connector 132 toward the workpiece 20, so that the hot-melt connector 132 contacts and heats the melting point boss 21, thereby realizing the hot-melt connection operation. At the same time, the rotary drive assembly 12 drives the rotary disk 131 to rotate the hot-melt disassembly component toward the workpiece 20, so that the hot-melt connector 132 contacts and heats the melting point boss 21, thereby realizing the hot-melt disassembly operation. In this way, by integrating the hot-melt connection operation and the hot-melt disassembly operation, when switching between hot-melt connection and hot-melt disassembly operations, there is no need to disassemble and replace the hot-melt connector 132 and the hot-melt disassembly component 133, which saves time and effort, and makes the hot-melt operation more efficient and more convenient to operate.
[0055] Please see Figure 3 In some embodiments, there are multiple hot-melt connectors 132, which are arranged circumferentially with the center line of the rotating disk 131 as the axis, and the multiple hot-melt connectors 132 have different models.
[0056] In this way, by setting multiple different types of hot melt connectors 132 to meet the different types of melting point bosses 21, the applicability of the hot melt equipment is improved. This allows the hot melt equipment to perform hot melt connection operations on melting point bosses 21 of different specifications on the workpiece 20 without having to replace different types of hot melt connectors 132, further improving the efficiency of hot melt connection operations and making the operation more convenient.
[0057] Please see Figure 3In some embodiments, the thermofusion connector 132 includes a thermofusion connector head 1321 and a first probe 1322. The thermofusion connector head 1321 is connected to the rotating disk 131 and is used for thermofusion connection of the workpiece 20. The first probe 1322 is connected to the thermofusion connector head 1321 and is used to detect the temperature of the thermofusion connector head 1321. For example, the first probe 1322 can be a thermocouple.
[0058] Thus, the temperature of the thermofusion connector 1321 is monitored in real time by the first probe 1322, so that the working temperature of the thermofusion connector 1321 can be reasonably set according to the melting temperature of the melting boss 21, thereby avoiding the thermofusion connector 1321 working too low, resulting in incomplete thermofusion, or the thermofusion temperature being too high, resulting in ablation and damage to the workpiece 20.
[0059] Furthermore, the hot-melt equipment also includes a controller, and the hot-melt connector 132 further includes a first heating element connected to the hot-melt connector 1321 for heating the hot-melt connector 1321. The first probe 1322 and the first heating element are both electrically connected to the controller so that the hot-melt temperature of the hot-melt connector 1321 can be controlled by the controller. For example, the controller is a PLC controller.
[0060] Please see Figure 3 In some embodiments, the rotating disk 131 includes a rotating body 1311, a first stop 1312, and a first elastic body 1313. The rotating body 1311 is connected to the rotating drive assembly 12. Specifically, the rotating body 1311 can be a circular structure or a polygonal structure. The thermoplastic connector 132 is slidably connected to the rotating body 1311 along a direction perpendicular to the center line of the rotating body 1311. The first stop 1312 is connected to the edge of the rotating body 1311 and is used to stop the thermoplastic connector 132. One end of the first elastic body 1313 abuts against the rotating body 1311, and the other end of the first elastic body 1313 abuts against the thermoplastic connector 132. The elastic force released by the first elastic body 1313 is used to drive the thermoplastic connector 132 to press against the first stop 1312. For example, the first elastic body 1313 can be a spring.
[0061] Thus, the elastic force released by the first elastic body 1313 drives the thermomelt connector 132 to slide against the first stop body 1312 to fix the thermomelt connector 132. When the thermomelt connector 132 rotates with the rotating body 1311 to face the workpiece 20 and moves to abut against the melting point boss 21 on the workpiece 20, the thermomelt connector 132 and the melting point boss 21 achieve flexible contact through the first elastic body 1313, thereby avoiding excessive extrusion pressure between the thermomelt connector 132 and the melting point boss 21, which would cause the thermomelt connector 132 to wear.
[0062] Furthermore, there are two first elastic bodies 1313, which are disposed on opposite sides of the heat fusion connector 132 and disposed in a direction perpendicular to the sliding direction of the heat fusion connector 132. The extension and retraction directions of the first elastic bodies 1313 are the same as the sliding direction of the heat fusion connector 132.
[0063] Furthermore, the hot-melt connector 132 and the rotating body 1311 are slidably connected by a slide rail.
[0064] Please see Figure 3 In some embodiments, there are multiple hot-melt disassembly parts 133, which are arranged circumferentially with the center line of the rotating disk 131 as the axis, and the multiple hot-melt disassembly parts 133 have different models.
[0065] Thus, by setting multiple different models of hot melt disassembly parts 133 to meet the needs of different models of melting point bosses 21, the applicability of the hot melt equipment is improved. This allows the hot melt equipment to perform hot melt disassembly operations on melting point bosses 21 of different specifications on the workpiece 20 without having to replace different models of hot melt disassembly parts 133, further improving the efficiency of hot melt disassembly operations and making the operation more convenient.
[0066] Please see Figure 3 In some embodiments, the hot melt disassembly component 133 includes a hot melt disassembly head 1331 and a second probe 1332. The hot melt disassembly head 1331 is connected to the rotating disk 131 and is used for hot melt disassembly of the workpiece 20. The second probe 1332 is connected to the hot melt disassembly head 1331 and is used to detect the temperature of the hot melt disassembly head 1331.
[0067] Thus, the temperature of the hot melt disassembly head 1331 is monitored in real time by the second probe 1332, so that the working temperature of the hot melt disassembly head 1331 can be reasonably set according to the melting temperature of the melting boss 21, thereby avoiding the hot melt disassembly head 1331 working too low, resulting in incomplete hot melt, or the hot melt temperature being too high, resulting in ablation and damage to the workpiece 20.
[0068] Furthermore, the hot melt disassembly component 133 also includes a second heating element, which is connected to the hot melt disassembly head 1331 for heating the hot melt disassembly head 1331. The second probe 1332 and the second heating element are both electrically connected to the controller so that the hot melt temperature of the hot melt disassembly head 1331 can be controlled by the controller.
[0069] Please see Figure 3In some embodiments, the heat-melting disassembly component 133 is slidably connected to the rotating body 1311 along a direction perpendicular to the center line of the rotating body 1311. The rotating disk 131 also includes a second stop 1314 and a second elastic body 1315. The second stop 1314 is connected to the edge of the rotating body 1311 and is used to stop the heat-melting disassembly component 133. One end of the second elastic body 1315 abuts against the rotating body 1311, and the other end of the second elastic body 1315 abuts against the heat-melting disassembly component 133. The elastic force released by the second elastic body 1315 is used to drive the heat-melting disassembly component 133 to press against the second stop 1314.
[0070] Thus, the elastic force released by the second elastic body 1315 drives the hot melt disassembly part 133 to slide against the second stop body 1314 to fix the hot melt disassembly part 133. When the hot melt disassembly part 133 rotates with the rotating body 1311 to face the workpiece 20 and moves to abut against the melting point boss 21 on the workpiece 20, the hot melt disassembly part 133 and the melting point boss 21 achieve flexible contact through the second elastic body 1315, thereby avoiding excessive extrusion pressure between the hot melt disassembly part 133 and the melting point boss 21, which would cause the hot melt disassembly part 133 to wear.
[0071] Furthermore, there are two second elastic bodies 1315, which are disposed on opposite sides of the heat-melting disassembly member 133 and disposed in a direction perpendicular to the sliding direction of the heat-melting disassembly member 133. The extension and retraction directions of the second elastic bodies 1315 are the same as the sliding direction of the heat-melting disassembly member 133.
[0072] Furthermore, the hot-melt disassembly component 133 and the rotating body 1311 are slidably connected by a slide rail.
[0073] Please see Figure 3 In some embodiments, the rotating disk 131 further includes a heat shield 1316, which covers the side of the rotating body 1311 away from the rotating drive assembly 12. A portion of the heat-melting disassembly component 133 is housed inside the heat shield 1316, and another portion of the heat-melting disassembly component 133 extends out of the heat shield 1316. A portion of the heat-melting connector 132 is housed inside the heat shield 1316, and another portion of the heat-melting connector 132 extends out of the heat shield 1316.
[0074] In this way, the heat insulation cover 1316 can be used to store and protect the internal heat fusion connector 132 and heat fusion disassembly component 133, so as to avoid the operator accidentally touching and getting burned, or the external components touching and damaging the heat fusion connector 132 and heat fusion disassembly component 133 inside the heat insulation cover 1316. At the same time, it can also prevent the heat inside the heat insulation cover 1316 from dissipating and causing other external components to age faster.
[0075] For ease of explanation, in Figure 2A three-dimensional Cartesian coordinate system is added, in which the X-axis is the first direction, that is, the direction in which the first transfer member drives the second direction transfer member 113 to move; the Z-axis is the second direction, that is, the direction in which the second transfer drive member drives the rotation drive assembly 12 to move; and the Y-axis is the third direction, that is, the direction in which the fixture drive member 1142 drives the fixture body 1141 to move. The first direction, the second direction, and the third direction are all perpendicular to each other.
[0076] Please see Figure 2 In some embodiments, the supporting mechanism 11 includes a supporting component 111, a first-direction transfer member 112, and a second-direction transfer member 113. The supporting component 111 supports the workpiece 20. The first-direction transfer member 112 is connected to the supporting component 111. The second-direction transfer member 113 is connected to the first-direction transfer member 112 and the rotary drive component 12. The first-direction transfer member 112 drives the second-direction transfer member 113 to move the rotary drive component 12 and the hot-melt component 13 along the first direction. The second-direction transfer member 113 drives the rotary drive component 12 to move the hot-melt component 13 along a second direction perpendicular to the first direction. The workpiece 20 and the hot-melt component 13 are spaced apart along the second direction. For example, the first-direction transfer member 112 can be an electric slide table, and the second-direction transfer member 113 can be an electric slide table.
[0077] Thus, the first direction transfer member 112 drives the second direction transfer member 113 to move the rotary drive assembly 12 and the hot melt assembly 13 along the first direction, so as to adjust the position of the hot melt assembly 13 in the first direction. The second direction transfer member 113 drives the rotary drive assembly 12 to move the hot melt assembly 13 along the second direction, so as to adjust the position of the hot melt assembly 13 in the second direction and adjust the distance between the hot melt disassembly member 133 or the hot melt connector 132 and the melting point boss 21 on the workpiece 20.
[0078] Please see Figure 2 In some embodiments, the support mechanism 11 further includes a support fixture 114, which includes a fixture body 1141 and a fixture drive 1142. The fixture body 1141 is used to support the workpiece 20, and the fixture drive 1142 is connected to the support assembly 111 and the fixture body 1141. The fixture drive 1142 is used to drive the fixture body 1141 to move in a third direction.
[0079] Thus, the fixture body 1141 carrying the workpiece 20 is driven to move along a third direction by the fixture drive 1142, so as to adjust the position of the workpiece 20 in the third direction. The first direction transfer member 112 and the second direction transfer member 113 cooperate with each other to achieve the alignment between the hot melt connection member 132 or the hot melt disassembly member 133 and the melting point boss 21 on the workpiece 20 in the three-dimensional direction, so as to perform hot melt operation on any welding.
[0080] Meanwhile, by configuring the first direction transfer member 112 and the second direction transfer member 113 to be coupled to the hot melt assembly 13, and by configuring the jig drive member 1142 to be coupled to the workpiece 20, the drive structures in multiple directions can be configured separately to avoid the weight of the drive structure being too concentrated, which would affect the stability and service life of the drive structure. In addition, the separate drive structures in multiple directions have more installation space, which is beneficial to improving the convenience and efficiency of assembly.
[0081] Please see Figure 4 Furthermore, the fixture drive 1142 includes a fixture drive body 1142a and a movable platform 1142b. The fixture drive body 1142a is connected to the support assembly 111 and the movable platform 1142b, and is used to drive the movable platform 1142b to move in a third direction. The movable platform 1142b is used to support and position the fixture body 1141. For example, the fixture drive body 1142a can be an electric slide.
[0082] Specifically, the activity platform 1142b is provided with multiple positioning posts, and the corresponding fixture body 1141 is provided with multiple positioning holes. The number of positioning holes is the same as the number of positioning posts, and each positioning post is inserted into a corresponding positioning hole to position the fixture body 1141.
[0083] In some embodiments, the hot melt equipment further includes an interactive panel. The interactive panel, the rotary drive assembly 12, the first direction transfer member 112, the second direction transfer member 113, and the fixture drive member 1142 are all electrically connected to the controller. The interactive panel can be used for programming so as to control the hot melt equipment to perform automated operations through the controller.
[0084] Please see Figure 5 In some embodiments, the hot melt equipment also includes a housing 14, in which the support mechanism 11, the rotary drive assembly 12 and the hot melt assembly 13 are all housed. The housing 14 is used to house and protect the support mechanism 11, the rotary drive assembly 12 and the hot melt assembly 13.
[0085] The working principle of the above-mentioned hot melt equipment during hot melt connection is roughly as follows:
[0086] First, the workpiece 20 to be heat-fused is installed on the fixture body 1141, and the rotating disk 131 of the rotary drive assembly 12 is rotated so that the rotating disk 131 drives the heat-fused connector 132 to rotate toward the workpiece 20.
[0087] Then, the first direction transfer member 112 drives the second direction transfer member 113 to move the rotating disk 131 and the hot melt connector 132, so that the position of the hot melt connector 132 in the first direction is the same as the position of the melting point boss 21 on the workpiece 20. The fixture drive member 1142 drives the workpiece 20 to move along the third direction, so that the melting point boss 21 on the workpiece 20 and the hot melt connector 132 are the same in the third direction.
[0088] Next, the rotation drive assembly 12 is driven by the second direction transfer member 113 to move the hot melt connector 132 along the second direction to abut against the corresponding melting point boss 21, thereby realizing the hot melt connection operation;
[0089] Finally, according to the model of the melting point boss 21, the corresponding model of the hot melt connector 132 is rotated to face the workpiece 20 by the rotary drive assembly 12, so as to realize the hot melt connection operation of different models of melting point boss 21.
[0090] The working principle of the above-mentioned hot melt disassembly equipment is roughly as follows:
[0091] First, the workpiece 20 to be hot-melted and disassembled is installed on the fixture body 1141, and the rotating disk 131 of the rotary drive assembly 12 is rotated so that the rotating disk 131 drives the hot-melted disassembly part 133 to rotate toward the workpiece 20.
[0092] Then, the first direction transfer member 112 drives the second direction transfer member 113 to move the rotating disk 131 and the hot melt disassembly member 133, so that the position of the hot melt disassembly member 133 in the first direction is the same as the position of the melting point boss 21 on the workpiece 20. The jig drive member 1142 drives the workpiece 20 to move along the third direction, so that the position of the melting point boss 21 on the workpiece 20 is the same as the position of the hot melt disassembly member 133 in the third direction.
[0093] Next, the rotation drive assembly 12 is driven by the second direction transfer member 113 to move the hot melt connector 132 along the second direction to abut against the corresponding melting point boss 21, thereby realizing the hot melt connection operation.
[0094] Finally, according to the model of the melting point boss 21, the corresponding model of the hot melt disassembly part 133 is rotated to face the workpiece 20 by the rotary drive assembly 12, so as to realize the hot melt disassembly operation of different models of melting point boss 21.
[0095] The above description is merely a specific embodiment of this disclosure, but the scope of protection of this disclosure is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this disclosure should be included within the scope of protection of this disclosure. Therefore, the scope of protection of this disclosure should be determined by the scope of the claims.
Claims
1. A hot melt apparatus, characterized by, The hot melting equipment comprises: a bearing mechanism for bearing a workpiece; a rotating driving assembly connected to the bearing mechanism; a hot melting assembly comprising a rotating disc, a hot melting connecting member and a hot melting disassembling member, the rotating driving assembly is connected to the rotating disc and is used to drive the rotating disc to rotate, the hot melting connecting member and the hot melting disassembling member are connected to the rotating disc, and the hot melting connecting member and the hot melting disassembling member are arranged in a circumferential interval with the center line of the rotating disc as the axis; wherein the rotating driving assembly is used to drive the rotating disc to drive the hot melting connecting member to rotate towards the workpiece, so as to hot melt and connect the workpiece, and the rotating driving assembly is also used to drive the rotating disc to drive the hot melting disassembling member to rotate towards the workpiece, so as to hot melt and disassemble the workpiece.
2. The hot melting equipment according to claim 1, wherein the number of the hot melting connecting members is multiple, the multiple hot melting connecting members are arranged in a circumferential interval with the center line of the rotating disc as the axis, and the multiple hot melting connecting members have different models.
3. The hot melt apparatus of claim 1, wherein, the hot melting connecting member comprises: a hot melting connecting head connected to the rotating disc and used to hot melt and connect the workpiece; a first detecting body connected to the hot melting connecting head and used to detect the temperature of the hot melting connecting head.
4. The hot melt apparatus of claim 1, wherein, the rotating disc comprises: a rotating body connected to the rotating driving assembly, the hot melting connecting member is slidingly connected to the rotating body in a direction perpendicular to the center line of the rotating body; a first stop body connected to the edge position of the rotating body, the first stop body is used to stop the hot melting connecting member; a first elastic body, one end of the first elastic body abuts against the rotating body, the other end of the first elastic body abuts against the hot melting connecting member, and the elastic force released by the first elastic body is used to drive the hot melting connecting member to abut tightly against the first stop body.
5. The hot melt apparatus of claim 1, wherein, the number of the hot melting disassembling members is multiple, the multiple hot melting disassembling members are arranged in a circumferential interval with the center line of the rotating disc as the axis, and the multiple hot melting disassembling members have different models.
6. The hot melt apparatus of claim 1, wherein, the hot melting disassembling member comprises: a hot melting disassembling head connected to the rotating disc and used to hot melt and disassemble the workpiece; a second detecting body connected to the hot melting disassembling head and used to detect the temperature of the hot melting disassembling head.
7. The hot melt apparatus of claim 4, wherein, the hot melting disassembling member is slidingly connected to the rotating body in a direction perpendicular to the center line of the rotating body, and the rotating disc further comprises: a second stop body connected to the edge position of the rotating body and used to stop the hot melting disassembling member; a second elastic body, one end of the second elastic body abuts against the rotating body, the other end of the second elastic body abuts against the hot melting disassembling member, and the elastic force released by the second elastic body is used to drive the hot melting disassembling member to abut tightly against the second stop body.
8. The hot melting equipment according to claim 7, wherein The rotary disc further comprises a heat shield, the heat shield covers one side of the rotary body away from the rotary driving assembly, a part of the hot melt disassembling member is received in the heat shield, another part of the hot melt disassembling member extends out of the heat shield, a part of the hot melt connecting member is received in the heat shield, another part of the hot melt connecting member extends out of the heat shield.
9. The hot melt apparatus of claim 1, wherein, The bearing mechanism comprises: a bearing assembly for bearing the workpiece; a first direction moving member connected to the bearing assembly; a second direction moving member connected to the first direction moving member and the rotary driving assembly; wherein the first direction moving member is used to drive the second direction moving member to move the rotary driving assembly and the hot melt assembly along a first direction, and the second direction moving member is used to drive the rotary driving assembly to move the hot melt assembly along a second direction perpendicular to the first direction.
10. The hot melt apparatus of claim 9, wherein, The bearing mechanism further comprises a bearing jig, the bearing jig comprises: a jig body for bearing the workpiece; a jig driving member connected to the bearing assembly and the jig body, the jig driving member is used to drive the jig body to move along a third direction; wherein the first direction, the second direction and the third direction are perpendicular to each other.