Heating platform
By setting a sliding groove and a rotating pair on the side wall of the heating platform base, the problem of the fixed parts occupying the working plate area is solved, thereby improving the flatness of the working plate and the portability of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- POTENTIAL INNOVATION TECH CO LTD
- Filing Date
- 2025-06-04
- Publication Date
- 2026-05-15
AI Technical Summary
When a traditional heating platform clamps the motherboard, the fixing parts occupy the effective area of the working plate, resulting in a decrease in flatness and hindering the compact storage and portability of the equipment.
A groove is provided on the side wall of the base. One end of the fixing member is slidably set in the groove, and the other end is used to fix the object to be heated. It is partially housed in the base by rotating around the first rotating pair, which increases the usable area and flatness of the working plate.
It increases the actual usable area of the work plate, ensures the flatness of the heating platform surface, facilitates storage, reduces the size of the equipment, and improves portability and user experience.
Smart Images

Figure CN224249849U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electronic equipment repair, specifically to a heating platform. Background Technology
[0002] When repairing mobile phones and other electronic devices, heated platforms are typically used to soften adhesives or solder through precise temperature control, enabling non-destructive disassembly of components such as screens, batteries, and motherboards, while ensuring repair safety and efficiency. For components that have become abnormally deformed, clamping force is applied to make them flat and fit snugly against the working plate of the heated platform, facilitating repair operations. However, traditional heated platforms generally use multi-point static fasteners fixed in place on the working plate when clamping the motherboard. This results in the occupation of the effective working area of the working plate, reduced flatness, and the redundant structure of the fasteners protruding from the working plate hinders the compact storage of the heated platform.
[0003] Therefore, a heating platform is needed to ensure clamping stability while optimizing the utilization of the work plate space and the overall flatness, thereby improving the portability of the equipment and the user experience. Utility Model Content
[0004] Based on the above situation, the main purpose of this utility model is to provide a heating platform that, while ensuring clamping stability, optimizes the utilization rate of the working plate space and the overall flatness, thereby improving the portability of the equipment and the user experience.
[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0006] In a first aspect, this utility model discloses a heating platform, characterized in that it comprises:
[0007] A base, wherein a groove is provided on at least one side wall of the base;
[0008] A heating assembly, including a work plate, is fixedly mounted on the base and is used to heat an object to be heated placed on the work plate;
[0009] A fixing member, one end of which is slidably disposed in the slide groove, and the other end of which is used to fix the object to be heated placed on the working plate. The fixing member is provided with a first rotating joint at the end near the slide groove so that the fixing member can rotate around the first rotating joint to be partially housed in the base.
[0010] Optionally, the base is further provided with:
[0011] A baffle is provided on the side of the base adjacent to the slide groove. The baffle has a storage position, and the fixing member can rotate around the first rotating joint to be partially stored in the storage position.
[0012] Optionally, the heating assembly further includes a heat sink and a heating plate, wherein:
[0013] The heat sink, the heating plate, and the working plate are stacked together.
[0014] The heat sink is fixedly connected to the base, and the heat sink and the heating plate are connected by a connecting column and have a preset interval. The working plate is attached to the heating plate.
[0015] Optionally, the work plate is provided with a locking position, and the base is provided with a buckle, which engages with the locking position to fix the work plate.
[0016] Optionally, the base is provided with a connecting platform that protrudes relative to the mounting surface, and the heat sink is fixedly connected to the connecting platform so that there is a preset gap between the heat sink and the mounting surface.
[0017] Optionally, the heat sink includes a first heat sink and a second heat sink stacked together, the first heat sink and the second heat sink being connected by the connecting column and spaced apart by a preset distance.
[0018] Optionally, the connecting column between the heat sink and the heating plate is a stainless steel connecting column.
[0019] Optionally, the fixing member includes a support portion and an extension portion, wherein the first rotating joint is disposed at one end of the support portion that is slidably connected to the slide groove, and a second rotating joint is disposed at one end of the support portion that is connected to the extension portion, and the extension portion can rotate around the second rotating joint.
[0020] Optionally, the base has a cavity, and a circuit board is placed inside the cavity. The circuit board is electrically connected to the heating component to control the heating component to generate heat.
[0021] Optionally, the base is provided with a knob for adjusting the heating temperature, and the knob is provided with an encoder to determine the rotation angle of the knob.
[0022] Beneficial effects:
[0023] The heating platform disclosed in this utility model embodiment includes a base, a heating component, and a fixing member. A groove is provided on at least one side wall of the base. The heating component is fixed to the base and is used to heat an object placed on the work plate of the heating component. One end of the fixing member is slidably disposed within the groove, and the other end is used to fix the object to be heated placed on the work plate. A first rotating joint is provided at the end of the fixing member near the groove, allowing the fixing member to rotate around the first rotating joint to be partially retracted into the base. By providing the groove on the side wall of the base and the fixing member being disposed within and slidably connected to the groove, the actual usable area of the work plate is increased compared to providing the fixing member on the surface of the work plate, and the flatness of the heating platform surface is ensured, thus facilitating storage. Furthermore, the fixing member can rotate around the first rotating joint to be partially retracted into the base, and can also be rotated and retracted into the base when not in use. This not only facilitates storage but also reduces the size of the heating platform, decreases the space occupied by the heating platform, and improves the portability and user experience of the device.
[0024] Other beneficial effects of this utility model will be explained in detail through the introduction of specific technical features and technical solutions in the specific embodiments. Those skilled in the art should be able to understand the beneficial technical effects brought about by the technical features and technical solutions through the introduction of these technical features and technical solutions. Attached Figure Description
[0025] The preferred embodiment of the heating platform of this utility model will now be described with reference to the accompanying drawings. In the drawings:
[0026] Figure 1 This is a schematic diagram of the structure of a heating platform disclosed in this embodiment;
[0027] Figure 2 This is a schematic diagram of the structure of a heating platform disclosed in this embodiment from another direction;
[0028] Figure 3 This is a schematic diagram of the structure of a heating component in a heating platform disclosed in this embodiment. Detailed Implementation
[0029] The present invention will now be described based on embodiments, but the present invention is not limited to these embodiments. In the following detailed description of the present invention, some specific details are described in detail, but well-known methods, processes, procedures, and elements are not described in detail in order to avoid obscuring the essence of the present invention.
[0030] Furthermore, those skilled in the art should understand that the accompanying drawings provided herein are for illustrative purposes only and are not necessarily drawn to scale.
[0031] Unless the context explicitly requires it, the words "comprising," "including," and similar terms throughout the specification and claims should be interpreted as encompassing rather than being exclusive or exhaustive; that is, meaning "including but not limited to."
[0032] In the description of this utility model, it should be understood that the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance. Furthermore, in the description of this utility model, unless otherwise stated, "a plurality of" means two or more.
[0033] Currently, in existing heating platforms, the working plate is used to place the motherboard, screen, and other components that need to be heated. The fasteners are fixed to the outer edge of the working plate, such as at the four corners or other edges. Generally, the fasteners are on the same plane as the working plate, meaning they protrude from it. This makes the surface of the working plate uneven. To avoid affecting the position and stability of the fasteners, it is necessary to prevent other objects from squeezing or colliding with them when storing the heating platform. This makes storing the heating platform extremely inconvenient.
[0034] To ensure clamping stability while optimizing worktable space utilization and overall flatness, and to improve equipment portability and user experience, this embodiment discloses a heating platform. Please refer to [reference needed]. Figure 1 , Figure 1 This is a schematic diagram of the structure of a heating platform disclosed in this embodiment. The heating platform 10 includes a base 11 and a heating component 12. The heating component 12 includes a working plate 123 and is fixedly mounted on the base 11. In specific implementation, the object to be heated is placed on the working plate 123, and the heating component 12 is used to heat the object placed on the working plate 123. The object to be heated may be a mobile phone motherboard.
[0035] Please refer to Figure 2 , Figure 2 This is a schematic diagram of the structure of a heating platform disclosed in this embodiment from another direction.
[0036] At least one side of the base 11 is provided with a groove 111. In this embodiment, the groove 111 is provided on the side wall of the base 11. Preferably, there are two grooves 111, which are symmetrically arranged on the left and right sides of the base 11 (see reference). Figure 1 (Left and right directions of the central heating platform).
[0037] One end of the fixing member 13 is slidably disposed within the slide groove 111, and the other end is used to press against the object to be heated placed on the working plate 123. A first rotating joint 131 is also provided at the end of the fixing member 13 near the slide groove 111, allowing the fixing member 13 to rotate around the first rotating joint 131 until it is partially retracted into the base 11. In this embodiment, a spatial coordinate system is constructed using the working plate 123 of the heating platform 10 as the xOy plane. The fixing member 13 can move within the slide groove 111 on a horizontal plane parallel to the zOx coordinate plane, and can rotate around the first rotating joint 131 on a vertical plane parallel to the zOx coordinate plane. By placing one end of the fixing member 13 within the slide groove 111, the fixing member 13 can slide back and forth within the slide groove 111, greatly expanding the pressing range of the fixing member 13 and increasing its pressing coverage. This ensures that the object to be heated can be reliably fixed by the fixing member 13 at any position on the working plate 123, thereby guaranteeing the pressing effect.
[0038] Furthermore, the fixing member 13 is located on the side wall of the heating platform 10, without occupying the space of the work plate 123, thereby increasing the effective operating space of the work plate 123. The spatial position of the fixing member 13 can also be adjusted via the first rotating joint 131, allowing the fixing member 13 to rotate about the first rotating joint 131 as a pivot until at least a portion of the fixing member 13 is housed within the base 11. This saves space occupied by the heating platform, facilitates the storage of the heating platform 10, and improves the ease of use of the heating platform 10. In specific implementation, the first rotating joint 131 can be rotated using a screw.
[0039] In this embodiment, the slide groove 111 is set on the side wall of the base 11, and the fixing member 13 is set in the slide groove 111 and slidably connected to the slide groove 111. Compared with setting the fixing member 13 on the surface of the working plate 123, the flatness of the surface of the heating platform 10 is ensured, and the actual usable area of the working plate 123 is increased. In addition, the fixing member 13 can rotate around the first rotating joint 131 to be partially stored in the base 11, and the fixing member 13 can also be rotated and stored in the base 11 when not in use. This not only facilitates storage, but also reduces the volume of the heating platform 10 and the space occupied by the heating platform 10.
[0040] In optional embodiments, such as Figure 2As shown, the fixing member 13 includes a support portion 132 and an extension portion 133. A first rotating joint 131 is disposed at the end of the support portion 132 that is slidably connected to the slide groove 111. The support portion 132 can slide within the first slide groove 111 via the first rotating joint 131, and the support portion 132 can also rotate around the first rotating joint 131. A second rotating joint 134 is also provided at the end of the support portion 132 that is connected to the extension portion 133. The extension portion 133 can rotate around the second rotating joint 134. Compared to the fixed connection between the extension portion 133 and the support portion 132, the rotating connection can adjust the position of the extension portion 133 on the working plate 123, thereby expanding the range in which the extension portion 133 can be fixed.
[0041] In an optional embodiment, a baffle 112 is further provided on the base 11. The baffle 112 is disposed on the side adjacent to the slide groove 111, and a storage position 1121 is provided on the baffle 112. The fixing member 13 can rotate around the first rotating joint 131 to be partially stored in the storage position 1121. In this embodiment, the baffle 112 is disposed on the side of the base 11, and the side where the baffle 112 is located is adjacent to the side where the slide groove 111 is located. (Refer to...) Figure 2 In the direction of the heating platform, the sliding groove 111 is set on the left and right sides of the base 11, and the baffle 112 can be set on the front and rear sides of the base 11. Preferably, there can be two baffles 112, which are respectively set on the front and rear sides of the base 11, so that the baffles 112 and the fixing member 13 can surround the heating component 12. The baffles 112 can be made of synthetic stone to provide better heat insulation.
[0042] The baffle 112 is provided with a storage position 1121. When the fixing member 13 rotates around the first rotating joint 131, part of the fixing member 13 can be rotated to the rear side of the base 11 and partially stored in the storage position 1121, thereby realizing the storage of the fixing member 13, which is convenient for storage and also reduces the overall volume of the heating platform 10.
[0043] In an optional embodiment, the fixing member 13 includes a pressing part 136, which is used to contact and press the object to be heated. The storage position 1121 can be a gap provided on the baffle 112. When the fixing member 13 rotates around the first rotating pair 131, the pressing part 136 can rotate into the storage position 1121 for storage.
[0044] Please see Figure 3 , Figure 3 This is a schematic diagram of the structure of a heating component in a heating platform disclosed in this embodiment.
[0045] In optional embodiments, such as Figure 3As shown, the heating assembly 12 also includes a heat sink 121 and a heating plate 122, wherein the heat sink 121, the heating plate 122, and the working plate 123 are stacked. The heat sink 121 is fixedly connected to the base 11, and the heat sink 121 and the heating plate 122 are connected by a connecting post 124 and have a preset interval. The working plate 123 is attached to the heating plate 122. In this embodiment, the heat sink 121, the heating plate 122, and the working plate 123 are stacked sequentially from bottom to top. The heating plate 122 is used to heat the working plate 123, thereby heating the object to be heated placed on the working plate 123. The heat sink 121 dissipates the heat generated by the heating plate 122, preventing the large amount of heat generated by the heating plate 122 during operation from damaging the base 11. The preset interval between the heat sink 121 and the heating plate 122 allows for heat dissipation and insulation through the air medium between the heat sink 121 and the heating plate 122.
[0046] In an optional embodiment, the heat sink 121 includes a first heat sink 1211 and a second heat sink 1212, which are connected by a connecting post 124 and have a preset interval. Providing multiple heat sinks 121 with preset intervals between them can further improve heat insulation and heat dissipation, and further reduce the impact of the heating plate 122's heat generation on the base 11.
[0047] In an optional embodiment, the connecting post 124 is a stainless steel connecting post. In this embodiment, stainless steel has a lower thermal conductivity, and using a stainless steel connecting post 124 can provide better heat insulation, thereby improving the heat insulation effect.
[0048] In optional embodiments, such as Figure 2 and Figure 3 As shown, the work plate 123 is provided with a locking slot 1231, and the base 11 is also provided with a buckle 113. The buckle 113 engages with the locking slot 1231 on the work plate 123 to fix the work plate 123. In this embodiment, the locking slot 1231 on the work plate 123 can be a notch, and the buckle 113 can be directly inserted into the notch. The buckle 113 abuts against the notch, thereby fixing the position of the work plate 123. In specific implementation, the buckle 113 can rotate circumferentially to fix or unlock the work plate 123. When the buckle 113 rotates to the first position, the buckle 113 engages with the locking slot 1231 to fix the work plate 123; when the buckle 113 rotates to the second position, the buckle 113 no longer engages with the locking slot 1231, at which point the work plate 123 can be removed and replaced with another work plate.
[0049] In optional embodiments, such as Figure 2As shown, the base 11 is provided with a connecting platform 115 that protrudes relative to the mounting surface 114. The heat sink 121 is fixedly connected to the connecting platform 115 so that there is a preset gap between the heat sink 121 and the mounting surface 114. In this embodiment, as... Figure 2 As shown, a connecting platform 115 is also provided on the base 11. The connecting platform 115 protrudes from the mounting surface 114 and is used to connect the heat sink 121. In the specific implementation, the mounting surface 114 is used to install the heating component 12. The heat sink 121 in the heating component 12 is fixedly connected to the connecting platform 115, so that there is a preset gap between the heat sink 121 and the mounting surface 114. Since the heat sink 121 is connected by the connecting post 124, the two ends of the connecting post 124 will pass through the heat sink 121 to ensure the connection stability. Therefore, the preset gap between the heat sink 121 and the mounting surface 114 can provide a space for the connecting post 124 to ensure the connection between the heat sink 121 and the heating plate 122 is stable.
[0050] In an optional embodiment, the base 11 also has a cavity, in which a circuit board is placed. The circuit board is electrically connected to the heating component 12 to control the heating component 12 to generate heat. In this embodiment, the base 11 is also equipped with a display screen to display information such as the current heating temperature. The circuit board placed in the cavity is used to supply power and control the electronic devices on the heating platform 10.
[0051] In an optional embodiment, the base 11 is also provided with a menu button and a temperature knob. The menu button is used to adjust the working status, temperature status, etc. of the heating platform 10. In specific implementation, multiple menu buttons can be provided on the base 11, each menu button representing a different function. For example, one menu button represents power on, one menu button represents setting selection, and one menu button represents preset temperature. The preset temperature can be a commonly used temperature that has been set in advance. This preset temperature can be set at the factory when the heating platform 10 leaves the factory, or it can be set by the user.
[0052] The temperature knob on the base 11 is equipped with an encoder and an indicator light. The heating temperature of the heating platform 10 can be changed by rotating the temperature knob, and different temperatures can be displayed by different colors of the indicator light.
[0053] In an optional embodiment, the base 11 is also provided with a display screen, which can display information such as the current heating temperature, heating mode, and temperature curve.
[0054] The heating platform disclosed in this utility model embodiment includes a base, a heating component, and a fixing member. A groove is provided on at least one side wall of the base. The heating component is fixed to the base and is used to heat an object placed on the working plate of the heating component. One end of the fixing member is slidably disposed within the groove, and the other end is used to fix the object to be heated placed on the working plate. A first rotating joint is provided at the end of the fixing member near the groove, allowing the fixing member to rotate around the first rotating joint to be partially retracted into the base. By providing the groove on the side wall of the base and the fixing member being disposed within and slidably connected to the groove, the actual usable area of the working plate is increased compared to providing the fixing member on the surface of the working plate, and the flatness of the heating platform surface is ensured, thus facilitating storage. Furthermore, the fixing member can rotate around the first rotating joint to be partially retracted into the base, and can also be rotated and retracted into the base when not in use, which not only facilitates storage but also reduces the volume of the heating platform and the space occupied by the heating platform.
[0055] Those skilled in the art will understand that, without conflict, the above-mentioned preferred solutions can be freely combined and superimposed.
[0056] It should be understood that the above-described embodiments are merely exemplary and not restrictive. Without departing from the basic principles of this utility model, any obvious or equivalent modifications or substitutions made by those skilled in the art regarding the above details will be included within the scope of the claims of this utility model.
Claims
1. A heating platform, characterized in that, include: A base (11) having a groove (111) on at least one side wall; The heating assembly (12) includes a working plate (123), which is fixedly mounted on the base (11) and is used to heat the object to be heated placed on the working plate (123); The fixing member (13) has one end slidably disposed in the slide groove (111) and the other end is used to fix the object to be heated placed on the working plate (123). The fixing member (13) is provided with a first rotating joint (131) at the end near the slide groove (111) so that the fixing member (13) can rotate around the first rotating joint (131) to be partially housed in the base (11).
2. The heating platform according to claim 1, characterized in that, The base (11) is also provided with: A baffle (112) is provided on the side of the base (11) adjacent to the slide (111). The baffle (112) has a storage position (1121). The fixing member (13) can rotate around the first rotating pair (131) to be partially stored in the storage position (1121).
3. The heating platform according to claim 1, characterized in that, The heating assembly (12) further includes a heat sink (121) and a heating plate (122), wherein: The heat sink (121), the heating plate (122) and the working plate (123) are stacked. The heat sink (121) is fixedly connected to the base (11). The heat sink (121) and the heating plate (122) are connected by a connecting column (124) and have a preset interval. The working plate (123) is attached to the heating plate (122).
4. The heating platform according to claim 1, characterized in that, The working plate (123) is provided with a locking position (1231), and the base (11) is provided with a buckle (113). The buckle (113) engages with the locking position (1231) to fix the working plate (123).
5. The heating platform according to claim 3, characterized in that, The base (11) is provided with a connecting platform (115) that protrudes relative to the mounting surface (114). The heat sink (121) is fixedly connected to the connecting platform (115) so that there is a preset interval between the heat sink (121) and the mounting surface (114).
6. The heating platform according to claim 3, characterized in that, The heat sink (121) includes a first heat sink (1211) and a second heat sink (1212) stacked together. The first heat sink (1211) and the second heat sink (1212) are connected by the connecting post (124) and are spaced apart by a preset distance.
7. The heating platform according to claim 3, characterized in that, The connecting post (124) between the heat sink (121) and the heating plate (122) is a stainless steel connecting post.
8. The heating platform according to claim 1, characterized in that, The fixing member (13) includes a support part (132) and an extension part (133). The first rotating joint (131) is disposed at one end of the support part (132) which is slidably connected to the slide groove (111). A second rotating joint (134) is disposed at one end of the support part (132) which is connected to the extension part (133). The extension part (133) can rotate around the second rotating joint (134).
9. The heating platform according to claim 1, characterized in that, The base (11) has a cavity, and a circuit board is placed in the cavity. The circuit board is electrically connected to the heating component (12) to control the heating component (12) to generate heat.
10. The heating platform according to claim 1, characterized in that, The base (11) is provided with a knob for adjusting the heating temperature, and an encoder is provided inside the knob to determine the rotation angle of the knob.