Low-energy-consumption automatic baking equipment
By designing low-energy-consuming automated baking equipment, using the combination of conveying modules, baking modules and transfer modules, the problems of thermal energy loss and high labor costs are solved, and a low-energy-consuming and efficient baking process is achieved.
Patent Information
- Application Number
- CN202422477633.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-14
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2034-10-14
AI Technical Summary
The baking device in existing semiconductor equipment loses severe heat energy when opening the closed door, resulting in high energy consumption and high labor costs, which cannot effectively reduce production costs.
A low-energy-consuming automated baking equipment is designed, including a conveying module, a baking module and a transfer module. The conveying module drives the object to be processed through the conveying module. The baking module is suspended above the conveying module and has a conveying port and processing space. The transfer module is used to transfer the object between the conveying module and the baking module, and controls the heat loss through the shading unit.
It reduces heat loss and energy consumption, improves production efficiency, reduces labor costs, and realizes automated baking.
Smart Images

Figure CN223273222U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to baking equipment, in particular to low-energy-consuming automatic baking equipment. Background Art
[0002] In semiconductor equipment, the baking unit's access door is located on the side. Therefore, when the baking unit's door is opened, heat energy within the unit easily flows out, causing internal heat loss. This requires reheating when the workpiece is baked again, resulting in high energy consumption and increased carbon emissions.
[0003] Furthermore, in the current baking process, workpieces are manually placed in a baking device for baking, which results in excessively high labor costs and makes it impossible to reduce production costs.
[0004] Therefore, how to overcome the above-mentioned defects through improvement of structural design has become one of the important issues that this technical field wants to solve. Utility Model Content
[0005] The technical problem to be solved by the utility model is to provide a low-energy consumption automatic baking device in view of the deficiencies of the existing technology.
[0006] In order to solve the above-mentioned technical problems, one of the technical solutions adopted by the present invention is to provide a low-energy automatic baking equipment, including a conveying module, at least one baking module and at least one transfer module. The conveying module has a conveying surface, and the conveying surface is configured to carry at least one object to be processed, and the conveying module is configured to drive the at least one object to be processed to move. At least one baking module is suspended above the conveying module, and the at least one baking module has a conveying port and a processing space, the conveying port is communicated with the processing space, and the conveying port corresponds to the conveying surface. At least one transfer module is adjacent to the conveying module, and the at least one transfer module has a picking unit, and the at least one transfer module is configured to pick up the at least one object to be processed on the conveying surface through the picking unit, and place the at least one object to be processed in the processing space through the conveying port. Wherein, the at least one baking module is configured to bake the at least one object to be processed in the processing space.
[0007] In one feasible or optional embodiment, the at least one transfer module is further configured to pick up the at least one object to be processed in the processing space through the conveying port by the picking unit, and place the at least one object to be processed on the conveying surface.
[0008] In one feasible or optional embodiment, the conveying module includes a conveying unit, a drive unit, and a linkage unit. One side of the conveying unit serves as the conveying surface. The drive unit is movably connected to the other side of the conveying unit. The linkage unit is movably connected to the other side of the conveying unit. The drive unit is configured to drive the conveying unit to move the at least one object to be processed and to drive the linkage unit to operate.
[0009] In one feasible or optional embodiment, the at least one baking module includes a main unit, a heat source generating unit, and a shielding unit. The main unit is suspended above the conveying module and has the conveying port and the processing space. The heat source generating unit is located in the processing space and is configured to provide heat energy to the processing space. The shielding unit is movably connected to the main unit and is configured to cover or open the conveying port.
[0010] In one feasible or optional embodiment, the at least one baking module further includes at least one bracket unit, the at least one bracket unit is arranged in the processing space, and the at least one bracket unit has a bearing surface, and the bearing surface is configured to bear the at least one object to be processed.
[0011] In one feasible or optional embodiment, the at least one transfer module includes a lifting unit and a retrieval unit. The lifting unit is adjacent to the conveying module. The retrieval unit is connected to the lifting unit, and the retrieval unit is configured to extend or shorten the length of the body. The lifting unit is configured to adjust the position of the retrieval unit.
[0012] In one feasible or optional embodiment, the picking unit is a telescopic fork mechanism, and the lifting unit is a hydraulic, slide rail, traction, or rack and pinion lifting mechanism.
[0013] In one feasible or optional embodiment, when the lifting unit is in a descending state and the picking unit is in an extended state, the picking unit contacts the at least one object to be processed on the conveying surface.
[0014] In one feasible or optional embodiment, when the picking unit changes from the extended state to the contracted state and the lifting unit changes from the descending state to the ascending state, the lifting unit drives the picking unit and the at least one object to be processed to move into the processing space; wherein, when the picking unit is located in the processing space and the picking unit changes from the contracted state to the extended state, the picking unit places the at least one object to be processed in the baking module.
[0015] In one feasible or optional embodiment, the low-energy automated baking equipment also includes a control module, which is connected to the conveying module, the at least one baking module and the at least one transfer module, and the control module is configured to drive at least one of the conveying module, the at least one baking module and the at least one transfer module to operate.
[0016] One of the beneficial effects of the present invention is that the low-energy automatic baking equipment provided by the present invention can reduce energy consumption and improve production efficiency through the technical solution of "the conveying module has a conveying surface, the conveying surface is configured to carry at least one object to be processed, and the conveying module is configured to drive the at least one object to be processed to move. At least one baking module is suspended above the conveying module, the at least one baking module has a conveying port and a processing space, the conveying port is communicated with the processing space, and the conveying port corresponds to the conveying surface. At least one transfer module is adjacent to the conveying module, the at least one transfer module has a picking unit, the at least one transfer module is configured to hold the at least one object to be processed on the conveying surface through the picking unit, and place the at least one object to be processed in the processing space through the conveying port. Wherein, the at least one baking module is configured to bake the at least one object to be processed in the processing space."
[0017] To further understand the features and technical contents of the present invention, please refer to the following detailed description and drawings of the present invention. However, the drawings are only for reference and illustration and are not intended to limit the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 This is a schematic front view of a low-energy automated baking device according to an embodiment of the present invention.
[0019] Figure 2 This is a schematic diagram of a first usage state of the low-energy automatic baking equipment according to an embodiment of the present utility model.
[0020] Figure 3This is a schematic diagram of a second usage state of the low-energy automatic baking equipment according to an embodiment of the present utility model.
[0021] Figure 4 This is a schematic diagram of a third usage state of the low-energy automatic baking equipment according to an embodiment of the present utility model.
[0022] Figure 5 This is a schematic diagram of a fourth usage state of the low-energy automatic baking equipment according to an embodiment of the present invention.
[0023] Figure 6 This is a schematic diagram of the fifth usage state of the low-energy automatic baking equipment according to an embodiment of the present utility model.
[0024] Figure 7 This is a functional block diagram of the low-energy automatic baking equipment according to an embodiment of the present utility model.
[0025] Figure 8 This is a partial cross-sectional schematic diagram of a low-energy automated baking device according to an embodiment of the present invention.
[0026] Reference numerals:
[0027] Z: Low-energy automated baking equipment; 1: Conveying module; 10: Transfer unit; 11: Driving unit; 12: Linking unit; 100: Conveying surface; 2: Baking module; 20: Main unit; 200: Conveying port; 201: Processing space; 21: Heat source generating unit; 22: Shielding unit; 23: Bracket unit; 230: Loading surface; 3: Transfer module; 30: Lifting unit; 31: Pick-up unit; 4: Control module; B: Object to be processed. DETAILED DESCRIPTION
[0028] The following is an explanation of the implementation of the "low-energy automated baking equipment" disclosed in the present invention through specific embodiments. Those skilled in the art can understand the advantages and effects of the present invention from the contents disclosed in this specification. The present invention can be implemented or applied through other different specific embodiments, and the details in this specification can also be modified and changed based on different viewpoints and applications without departing from the concept of the present invention. In addition, the drawings of the present invention are only simple schematic illustrations and are not depicted according to actual dimensions. Please note that the following embodiments will further explain the relevant technical content of the present invention in detail, but the disclosed content is not intended to limit the scope of protection of the present invention.
[0029] It should be understood that although terms such as "first," "second," and "third" may be used herein to describe various components or signals, these components or signals should not be limited by these terms. These terms are primarily used to distinguish one component from another, or one signal from another. In addition, the term "or" as used herein may include any one or more combinations of the associated listed items, as appropriate.
[0030] Example
[0031] See also Figures 1 to 8 , which are respectively a front view schematic diagram, a first operating state schematic diagram, a second operating state schematic diagram, a third operating state schematic diagram, a fourth operating state schematic diagram, a fifth operating state schematic diagram, a functional block diagram, and a partial cross-sectional schematic diagram of a low-energy automated baking device according to an embodiment of the present invention. As shown in the above figures, the present invention provides a low-energy automated baking device Z comprising a conveying module 1, at least one baking module 2, and at least one transfer module 3. In this embodiment, multiple baking modules 2 and one transfer module 3 are used as an example, but this is not limiting. In actual applications, the number of transfer modules 3 can be equal to or less than the number of baking modules 2.
[0032] Cooperate Figures 1 to 6 As shown, the conveying module 1 may have a conveying surface 100, and the conveying surface 100 may be configured to carry at least one object B to be processed. The conveying module 1 may be configured to drive the at least one object B to be processed to move. For example, the conveying module 1 may include a conveying unit 10, a driving unit 11, and a linkage unit 12. One side of the conveying unit 10 may be the conveying surface 100; wherein the conveying unit 10 may be a conveyor belt or other type of conveying structure. The driving unit 11 can be movably connected to the other side of the conveying unit 10; wherein the driving unit 11 can be a powered transmission roller or a transmission drum, or it can also be a transmission roller or a transmission drum connected to an external power source (such as, but not limited to, an electric motor). The linkage unit 12 can be movably connected to the other side of the conveying unit 10; wherein the linkage unit 12 can be a passive transmission roller or a transmission drum. Furthermore, the driving unit 11 can be configured to drive the conveying unit 10 to operate, so as to drive at least one object B to be processed to move and drive the linkage unit 12 to operate; wherein, in this embodiment, the object B to be processed can be an electronic component, and the number of objects B to be processed can be multiple, but is not limited to this.
[0033] Next, cooperate Figures 1 to 6As shown, at least one baking module 2 can be suspended above the conveying module 1. The at least one baking module 2 can have a conveying port 200 and a processing space 201. The conveying port 200 communicates with the processing space 201 and can correspond to the conveying surface 100. The at least one baking module 2 can be configured to bake at least one object B to be processed in the processing space 201. In this embodiment, the number of baking modules 2 can be multiple, but is not limited to this. For example, the at least one baking module 2 can include a main unit 20, a heat source generating unit 21, and a shielding unit 22. The main unit 20 can be a shell structure and suspended above the conveying module 1. The main unit 20 can have a conveying port 200 and a processing space 201, with the conveying port 200 located below the main unit 20. The heat source generating unit 21 may be located in the processing space 201. The heat source generating unit 21 may be disposed on the inner wall surface of the main unit 20. The heat source generating unit 21 may be configured to provide heat energy to the processing space 201. The heat source generating unit 21 may be a resistive heater or other type of heater. The shielding unit 22 may be movably connected to the main unit 20. The shielding unit 22 may be configured to cover or open the delivery port 200. The shielding unit 22 may be configured to cover or open the delivery port 200 manually or automatically.
[0034] Next, cooperate Figures 1 to 7 As shown, at least one transfer module 3 is adjacent to the conveying module 1. The at least one transfer module 3 may include a pick-up unit 31. The at least one transfer module 3 may be configured to pick up at least one object B to be processed on the conveying surface 100 through the pick-up unit and place the at least one object B to be processed in the processing space 201 through the conveying port 200. The at least one transfer module 3 may also be configured to pick up at least one object B to be processed in the processing space 201 through the conveying port 200 through the pick-up unit 31 and place the at least one object B to be processed on the conveying surface 100.
[0035] For example, at least one transfer module 3 may include a lifting unit 30 and a retrieval unit 31. The lifting unit 30 may be adjacent to the conveying module 1 and configured to adjust the position of the retrieval unit 31. The lifting unit 30 may be a hydraulic, slide, traction, rack-and-pinion lifting mechanism, or other components or devices with lifting functions. The retrieval unit 31 may be movably connected to the lifting unit 30 and configured to extend or shorten the length of the body. The retrieval unit 31 may be a telescopic fork mechanism.
[0036] Therefore, with Figures 1 to 6As shown, during operation, the low-energy automated baking equipment Z of the present invention can first carry multiple objects B to be processed on the conveying surface 100 of the conveying module 1, and then use the rotation of the drive unit 11 to drive the multiple objects B on the conveying surface 100 to move. One end of the conveying unit 10 can be adjacent to an external feeding end (not shown in the figure; it can be a feeding device, but is not limited to this), and the other end of the conveying unit 10 can be adjacent to an external collection end (not shown in the figure; it can be a device for recycling or collecting materials, but is not limited to this). Furthermore, the rotation of the drive unit 11 can be continuous or step-by-step.
[0037] Next, when the lifting unit 30 of the transfer module 3 is in the lowered state, the picking unit 31 can be transformed from the contracted state to the extended state, that is, the picking unit 31 can extend the length of the body and move closer to the object B to be processed. Next, the picking unit 31 can contact one of the objects B to be processed on the conveying surface 100 (such as Figure 2 At this time, the lifting unit 30 can perform an upward movement to drive the picking unit 31 toward the baking module 2 and away from the conveying unit 10 of the conveying module 1, thereby causing the picking unit 31 to drive the object B to be processed toward the baking module 2 and away from the conveying surface 100 (as shown). Figure 3 shown).
[0038] In the process of the lifting unit 30 driving the picking unit 31 to rise, the picking unit 31 can be transformed from the extended state to the retracted state, so that the picking unit 31 and the object B to be processed can enter the processing space 201 through the conveying port 200 (as shown in FIG. Figure 4 Next, when the taking unit 31 and the object to be processed B are located in the processing space 201, the taking unit 31 can be transformed from the contracted state to the extended state to place the object to be processed B on the main unit 20 of the baking module 2 (as shown). Figure 4 As shown), for example, it is placed on the inner wall surface of the bottom of the main unit 20, but it is not limited to this.
[0039] Then, the lifting unit 30 can be lowered to drive the taking unit 31 toward the conveying module 1 and away from the baking module 2 (eg Figure 6 Afterwards, the shielding unit 22 can cover the conveying port 200 to close the conveying port 200; at this time, the baking module 2 can perform the baking process to bake the object B to be processed.
[0040] After the baking process is completed, the shielding unit 22 can be disengaged from the conveying port 200 to open it. The lifting unit 30 can then ascend again, driving the retrieval unit 31 to move to the processing space 201. At this point, the retrieval unit 31 can transition from a retracted state to an extended state, contacting or clamping the object B (which has undergone the baking process) within the main unit 20 of the baking module 2. Next, the retrieval unit 31 can transition from an extended state to a retracted state, while the lifting unit 30 descends, driving the retrieval unit 31 and the object B away from the baking module 2 and toward the conveying module 1.
[0041] Next, the pick-up unit 31 can be transformed from a retracted state to an extended state to place the object B to be processed on the conveying surface 100 of the conveying module 1. Next, the pick-up unit 31 can be transformed from an extended state to a retracted state to remove the object B to be processed. The conveying module 1 can then transport the baked object B to another location or other equipment for subsequent processing.
[0042] Thus, the low-energy automated baking equipment Z of the present invention utilizes the aforementioned technical solution, utilizing the lower position of the delivery port 200 of the baking module 2. This prevents heat energy within the processing space 201 from flowing outside the baking module 2 when the delivery port 200 is open, thereby reducing heat loss within the processing space 201 and the energy consumption of the heat source generating unit 21. Furthermore, the transfer module 3 can be used to place the object B to be processed from the delivery module 1 into the baking module 2, and the object B to be processed after the baking process can be removed from the baking module 2 and placed back on the delivery module 1, thereby achieving the effect of automated baking.
[0043] Furthermore, the low-energy automated baking equipment Z of the present invention may also include a control module 4, which is connected to the conveying module 1, at least one baking module 2 and at least one transfer module 3. The control module 4 can be configured to drive at least one of the conveying module 1, at least one baking module 2 and at least one transfer module 3 to operate.
[0044] For example, with Figures 1 to 7As shown, the control module 4 can be a backend control device, such as a computer, but is not limited thereto. The control module 4 can be connected to the conveying module 1, baking module 2, and transfer module 3 wirelessly or wiredly. Furthermore, the control module 4 can control at least one of the conveying module 1, baking module 2, and transfer module 3 to perform the aforementioned operations according to a built-in program or control instructions given by an operator. For example, the control module 4 can control the rotation of the driving unit 11; or the control module 4 can control the heat source generating unit 21 to generate or stop heat energy generation; the control module 4 can also control the shielding unit 22 to open or close the conveying port 200; or the control module 4 can control the lifting unit 30 to adjust the position of the retrieval unit 31; the control module 4 can also control the retrieval unit 31 to extend or shorten the length of the main body.
[0045] Furthermore, at least one baking module 2 may further include at least one bracket unit 23, which may be arranged in the processing space 201. The bracket unit 23 may have multiple carrying surfaces 230, and the carrying surfaces 230 may be configured to carry at least one object B to be processed.
[0046] For example, with Figure 8 As shown, the support unit 23 can be a multi-layer rack structure. The support unit 23 can be used to place multiple objects B to be processed, so that a single baking module 2 can bake multiple objects B to be processed at the same time, thereby improving processing speed and processing efficiency.
[0047] However, the above example is only one feasible embodiment and is not intended to limit the present invention.
[0048] Advantageous Effects of the Embodiments
[0049] One of the beneficial effects of the present invention is that the low-energy automated baking equipment Z provided by the present invention can reduce energy consumption and improve production efficiency through the technical solution of "the conveying module 1 has a conveying surface 100, the conveying surface 100 is configured to carry at least one object to be processed B, and the conveying module 1 is configured to drive the at least one object to be processed B to move. At least one baking module 2 is suspended above the conveying module 1, and at least one baking module 2 has a conveying port 200 and a processing space 201, the conveying port 200 is communicated with the processing space 201, and the conveying port 200 corresponds to the conveying surface 100. At least one transfer module 3 is adjacent to the conveying module 1, and at least one transfer module 3 has a picking unit 31, and at least one transfer module 3 is configured to hold at least one object to be processed B on the conveying surface 100 through the picking unit 31, and place at least one object to be processed B in the processing space 201 through the conveying port 200. At least one baking module 2 is configured to bake at least one object to be processed B in the processing space 201."
[0050] Furthermore, the low-energy automated baking equipment Z of the present invention can be positioned below the baking module 2 via the delivery port 200. This prevents heat energy in the processing space 201 from flowing outside the baking module 2 when the delivery port 200 is open, thereby reducing heat loss in the processing space 201 and lowering energy consumption and carbon emissions of the heat source generation unit 21. Furthermore, the low-energy automated baking equipment Z of the present invention can utilize the transfer module 3 to place the object B to be processed on the delivery module 1 into the baking module 2, and remove the object B to be processed after the baking process from the baking module 2 and place it back on the delivery module 1, thereby achieving the effect of automated baking. Therefore, the low-energy automated baking equipment Z of the present invention is not only of great help in the environmental protection aspects of ESG scoring, but also in aspects such as social responsibility and corporate governance.
[0051] The contents disclosed above are only preferred feasible embodiments of the present invention and do not limit the scope of protection of the claims of the present invention. Therefore, all equivalent technical changes made using the contents of the description and drawings of the present invention are included in the scope of protection of the claims of the present invention.
Claims
1. A low-energy automated baking equipment, characterized in that: include: A conveying module, wherein the conveying module has a conveying surface, the conveying surface is configured to carry at least one object to be processed, and the conveying module is configured to drive the at least one object to be processed to move; at least one baking module, the at least one baking module being suspended above the conveying module, the at least one baking module having a conveying port and a processing space, the conveying port communicating with the processing space, and the conveying port corresponding to the conveying surface; as well as at least one transfer module, the at least one transfer module being adjacent to the conveying module, the at least one transfer module having a picking unit, the at least one transfer module being configured to pick up the at least one object to be processed on the conveying surface through the picking unit and place the at least one object to be processed into the processing space through the conveying port; The at least one baking module is configured to bake the at least one object to be processed in the processing space.
2. The low-energy automated baking equipment according to claim 1, characterized in that: The at least one transfer module is further configured to pick up the at least one object to be processed in the processing space through the conveying port by the object-picking unit, and place the at least one object to be processed on the conveying surface.
3. The low-energy automated baking equipment according to claim 1, characterized in that: The conveying module comprises: A conveying unit, one side of which is the conveying surface; a driving unit, the driving unit being movably connected to the other side of the conveying unit; and a linkage unit, the linkage unit being movably connected to the other side of the transmission unit; The driving unit is configured to drive the conveying unit to operate, so as to drive the at least one object to be processed to move and drive the linkage unit to operate.
4. The low-energy automated baking equipment according to claim 1, characterized in that: The at least one baking module comprises: A main body unit, the main body unit is suspended above the conveying module, and the main body unit has the conveying port and the processing space; a heat source generating unit, the heat source generating unit being located in the processing space and configured to provide heat energy to the processing space; and A shielding unit is movably connected to the main body unit and is configured to cover the delivery opening or open the delivery opening.
5. The low-energy automated baking equipment according to claim 4, characterized in that: The at least one baking module further includes at least one bracket unit, which is disposed in the processing space. The at least one bracket unit has a bearing surface, and the bearing surface is configured to bear the at least one object to be processed.
6. The low-energy automated baking equipment according to claim 1, characterized in that: The at least one transfer module comprises: a lifting unit, the lifting unit being adjacent to the conveying module; and a taking unit connected to the lifting unit, wherein the taking unit is configured to extend or shorten the length of the body; Wherein, the lifting unit is configured to adjust the position of the picking unit.
7. The low-energy automated baking equipment according to claim 6, characterized in that: The picking unit is a telescopic tooth fork mechanism, and the lifting unit is a hydraulic, slide rail, traction, or rack and pinion lifting mechanism.
8. The low-energy automated baking equipment according to claim 6, characterized in that: When the lifting unit is in a descending state and the picking unit is in an extended state, the picking unit contacts the at least one object to be processed on the conveying surface.
9. The low-energy automated baking equipment according to claim 8, characterized in that: When the picking unit changes from the extended state to the retracted state and the lifting unit changes from the descending state to the ascending state, the lifting unit drives the picking unit and the at least one object to be processed to move into the processing space; wherein, when the picking unit is located in the processing space and the picking unit changes from the retracted state to the extended state, the picking unit places the at least one object to be processed on the baking module.
10. The low-energy automated baking equipment according to claim 1, characterized in that: The low-energy automated baking equipment also includes a control module, which is connected to the conveying module, the at least one baking module and the at least one transfer module, and the control module is configured to drive at least one of the conveying module, the at least one baking module and the at least one transfer module to operate.