Light source device for sintering furnace
By designing a detachable sintering lamp mounting structure and heat dissipation components in the sintering furnace, the problem of low sintering lamp replacement efficiency was solved, enabling rapid replacement and efficient heat dissipation, thus improving the overall performance of the device.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SUZHOU N SINGLE INTELLIGENT TECH CO LTD
- Filing Date
- 2025-06-24
- Publication Date
- 2026-06-19
AI Technical Summary
The replacement process for sintering lamps in existing sintering furnaces is cumbersome, resulting in low replacement efficiency.
A light source device for a sintering furnace is designed, including a first heat dissipation component and a second heat dissipation component. The sintering lamp is installed on a first support and located in a first receiving cavity. The first support and the second support are detachably connected. The opening is blocked by a heat insulation component, the airflow is cooled by a cooling component, and the gas flow is controlled by a baffle, so as to realize the rapid replacement and heat dissipation of the sintering lamp.
It improves the replacement efficiency of sintering lamps, ensures heat dissipation, prevents hot air leakage, and enhances the sealing and heat dissipation efficiency of the device.
Smart Images

Figure CN224381462U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of light source device technology, and in particular to a light source device for a sintering furnace. Background Technology
[0002] Photon sintering is a high-temperature heat treatment of thin films using pulsed light from sintering lamps such as flash lamps or LED lamps. When performing this instantaneous treatment on low-temperature substrates such as plastics, paper, and solar cells, temperatures can be reached much higher than what the substrate can withstand under balanced heating sources such as ovens, without damaging the substrate. Photon sintering is usually carried out in a sintering furnace. Because different sintering lamps need to be changed for different products, and there are many sintering lamps, and heat dissipation is also required during operation, the lamp replacement process is cumbersome and inefficient. Utility Model Content
[0003] Therefore, the technical problem to be solved by this utility model is to provide a light source device for a sintering furnace that can improve the replacement efficiency of sintering lamps.
[0004] To solve the above-mentioned technical problems, this utility model provides a light source device for a sintering furnace, comprising: a first heat dissipation assembly, including a first support member, a blower member, a first heat dissipation pipe, and a sintering lamp; the first support member includes a first receiving cavity; the sintering lamp is mounted on the first support member, and the light-emitting position of the sintering lamp is located within the first receiving cavity; the blower member is connected to the first support member, and the output end of the blower member faces the sintering lamp; the first heat dissipation pipe penetrates through the side wall of the first support member, and an opening is provided on one side of the first support member; a second heat dissipation assembly, including a second support member and a second heat dissipation pipe; the second support member includes a second receiving cavity; the first support member is located within the second receiving cavity, and the first support member and the second support member are detachably connected; the second heat dissipation pipe penetrates through the side wall of the second support member; and a heat insulation member, which can block the opening, and the light emitted by the sintering lamp can pass through the heat insulation member.
[0005] In one embodiment of the present invention, a cooling element is further included, which is located between the blower and the sintering lamp, and the airflow output by the blower can pass through the cooling element.
[0006] In one embodiment of the present invention, the first heat dissipation assembly further includes an adjusting rod that passes through the side wall of the first support member and is connected to the cooling member at its end. The adjusting rod is threaded with a fastener that abuts against the first support member.
[0007] In one embodiment of this utility model, the edge of the opening of the heat insulation member and the first support member are connected by sealant.
[0008] In one embodiment of the present invention, the side wall of the first support member is provided with a slot, and the edge of the heat insulation member is located in the slot and engages with the slot.
[0009] In one embodiment of this utility model, a light filter is further included, the second support member is connected to a connecting frame, the light filter is connected to the connecting frame, and the heat insulation member is located between the sintering lamp and the light filter.
[0010] In one embodiment of this utility model, the side of the sintering lamp closest to the heat insulation component is coated with a gold plating layer.
[0011] In one embodiment of the present invention, the second support member is further connected to a connector communicating with the second receiving cavity, the connector being used to communicate with an oxygen detection element.
[0012] In one embodiment of the present invention, a controller is further included, and the first support member is also connected to a temperature measuring element. The detection end of the temperature measuring element is located in the first receiving cavity, and the temperature measuring element is connected to the controller.
[0013] In one embodiment of the present invention, a first connector is further included. The first connector is connected to both the first support member and the second support member. The first connector is located at the edge of the first support member and the second support member, and is connected to both sides of the first support member and the second support member.
[0014] In one embodiment of the present invention, the second support member includes a fixing part, a supporting part, and an adjusting part. The supporting part is connected to the fixing part, and the adjusting part is detachably connected to the supporting part. The first support member is connected to the supporting part and located between the adjusting part and the fixing part. Both the adjusting part and the fixing part abut against the first support member.
[0015] In one embodiment of the present invention, the blower and the first heat dissipation pipe form a first heat dissipation channel, and the second support further includes a conveying channel, which and the second heat dissipation pipe form a second heat dissipation channel.
[0016] In one embodiment of the present invention, the second support member is further connected to a baffle, the baffle being located within the second heat dissipation channel and between the side wall of the second heat dissipation channel and the end of the second heat dissipation pipe.
[0017] In one embodiment of the present invention, the first support member further includes a receiving groove, and the end of the sintering lamp is located in the receiving groove.
[0018] The above-mentioned technical solution of this utility model has the following advantages compared with the prior art:
[0019] This utility model discloses a light source device for a sintering furnace. The sintering lamp is mounted on a first support member and located within a first receiving cavity. The first and second support members are detachably connected, allowing replacement of the sintering lamp to be achieved simply by disassembling or installing the first support member, eliminating the need to replace each lamp individually, thus improving replacement efficiency. The first and second heat dissipation channels provide independent heat dissipation for both the product and the sintering lamp. The sealing of the opening in the first support member by a heat insulation plate prevents gas leakage between the heat insulation plate and the first support member, thus preventing hot air in the first receiving cavity from leaking into the second receiving cavity. The cooling component allows the airflow from the blower to pass through it, cooling the airflow and improving heat dissipation for the sintering lamp. The baffle prevents the suction component from venting excessive inert gas to the outside through the second heat dissipation pipe. Attached Figure Description
[0020] To make the content of this utility model easier to understand, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings.
[0021] Figure 1 This is a schematic diagram of the structure of a light source device for a sintering furnace according to this utility model;
[0022] Figure 2 yes Figure 1 A schematic diagram of the structure viewed from below;
[0023] Figure 3 yes Figure 1 Top view;
[0024] Figure 4 yes Figure 3 A cross-sectional view at position AA in the middle;
[0025] Figure 5 This is a bottom view of the structure of the first heat dissipation component;
[0026] Figure 6 yes Figure 1 A schematic diagram of another embodiment;
[0027] Figure 7 yes Figure 6 A sectional view;
[0028] Figure 8 This is a partial front view of the sintering lamp structure;
[0029] Figure 9 This is a schematic diagram of the second heat dissipation component.
[0030] Explanation of reference numerals in the accompanying drawings: 1. First support member; 2. Second support member; 3. Sintering lamp; 4. Heat insulation member; 5. Light filter member; 6. Cooling member; 11. Blower; 12. First heat dissipation pipe; 13. Temperature measuring member; 14. Adjusting rod; 15. Pipe; 16. First handle; 17. Receiving groove; 21. Second heat dissipation pipe; 22. First connector; 23. Joint; 24. Second handle; 25. Connecting frame; 26. Baffle; 27. Conveying channel; 28. Fixing part; 29. Adjusting part; 31. Gold plating layer; 281. Support part; 282. Second connector. Detailed Implementation
[0031] The present invention will be further described below with reference to the accompanying drawings and specific embodiments, so that those skilled in the art can better understand and implement the present invention. However, the embodiments are not intended to limit the present invention.
[0032] Reference Figures 1 to 4 As shown, a light source device for a sintering furnace according to this utility model includes: a first heat dissipation assembly, including a first support member 1, a blower 11, a first heat dissipation pipe 12, and a sintering lamp 3. The first support member 1 includes a first receiving cavity, the sintering lamp 3 is mounted on the first support member 1, and the light-emitting position of the sintering lamp 3 is located in the first receiving cavity. The blower 11 is connected to the first support member 1, and the output end of the blower 11 faces the sintering lamp 3. The first heat dissipation pipe 12 penetrates the side wall of the first support member 1, and an opening is provided on one side of the first support member 1; a second heat dissipation assembly, including a second support member 2 and a second heat dissipation pipe 21. The second support member 2 includes a second receiving cavity, the first support member 1 is located in the second receiving cavity, and the first support member 1 and the second support member 2 are detachably connected. The second heat dissipation pipe 21 penetrates the side wall of the second support member 2; and a heat insulation member 4, which can block the opening, and the light emitted by the sintering lamp 3 can pass through the heat insulation member 4.
[0033] This embodiment provides a light source device for a sintering furnace. A blower 11 drives external air to flow towards the sintering lamp 3. After passing through the sintering lamp 3, the air flows out through the first heat dissipation pipe 12. During its passage through the sintering lamp 3, the air exchanges heat with the lamp, thus dissipating heat. The product to be processed enters the second receiving cavity, where the sintering lamp 3 processes it. Simultaneously, an external suction component expels gas from the second receiving cavity through the second heat dissipation pipe 21, further cooling the product. When the sintering lamp 3 needs to be replaced, the electrical connection between the lamp 3 to be replaced and the blower 11 is disconnected. The first support 1 is disassembled from the second receiving cavity of the second support 2. The first support 1, with the sintering lamp 3 to be installed, is placed in the second receiving cavity. The first support 1 and the second support 2 are then connected, and the sintering lamp 3 to be installed and the blower 11 are electrically connected. By mounting the sintering lamp 3 on the first support member 1 and placing it in the first receiving cavity, and by detachably connecting the first support member 1 and the second support member 2, the replacement of the sintering lamp 3 only requires disassembling or installing the first support member 1, without having to replace each sintering lamp 3 individually, thereby improving the replacement efficiency of the sintering lamp 3.
[0034] Reference Figure 4 and Figure 5 As shown, the first heat dissipation assembly includes a first support member 1, blowers 11, a first heat dissipation pipe 12, and sintering lamps 3. The first support member 1 includes a first receiving cavity located inside, with an opening on its bottom side. Multiple sintering lamps 3 are mounted on the first support member 1, and the sintering lamps 3 penetrate the first support member 1, with both ends of the sintering lamps 3 located outside the first receiving cavity and the light-emitting position of the sintering lamps 3 located inside the first receiving cavity, thereby processing the product to be processed. The light source device for the sintering furnace also includes a controller, and both ends of the sintering lamps 3 can be electrically connected to an external controller. The sintering lamps 3 are located near the opening of the first support member 1. Multiple blowers 11 are connected to the middle position on the top side of the first support member 1. In this embodiment, a total of four blowers 11 are provided, and the four blowers 11 are arranged in two rows and two columns. The output end of the blowers 11 faces the sintering lamps 3, so that the blowers 11 can direct external airflow to the sintering lamps 3. Multiple first heat dissipation pipes 12 penetrate the side wall of the first support member 1 and are perpendicularly connected to the first support member 1. The first heat dissipation pipes 12 are located at the edge of the top side of the first support member 1, and the air can flow to the outside through the first heat dissipation pipes 12 after heat exchange with the sintering lamp 3. Specifically, refer to Figure 1 As shown, the top side of the first support member 1 is connected to two first heat dissipation pipes 12, and the blower 11 is located between the two first heat dissipation pipes 12, so that the airflow can quickly pass through the blower 11, pass through the sintering lamp 3, and then be discharged from the first heat dissipation pipes 12. Preferably, refer to Figure 6As shown, the top side of the first support member 1 is connected to four first heat dissipation pipes 12, and the blower 11 is located between the four first heat dissipation pipes 12. Two first heat dissipation pipes 12 are provided on both sides of the four blower 11. The first heat dissipation pipes 12 correspond to the horizontal arrangement of the four blower 11, thereby increasing the airflow per unit time and improving the heat dissipation efficiency of the sintering lamp 3.
[0035] Reference Figure 2 As shown, the light source device for the sintering furnace also includes a heat insulation component 4. The heat insulation component 4 can seal the opening of the first support component 1, and the optical fiber output from the sintering lamp 3 can pass through the heat insulation component 4. Specifically, the heat insulation component 4 can be regarded as a heat-insulating glass plate. One edge of the heat insulation component 4 is connected to the edge of the opening of the first support component 1 by sealant, so that there is no gas leakage between the heat insulation component 4 and the first support component 1, thereby preventing hot air in the first receiving cavity from leaking into the second receiving cavity. (Refer to...) Figure 6 and Figure 7 As shown, in another embodiment, a slot is provided on the opposite side of the inner wall of the first support member 1. The slot is located at the edge of the opening, and the edge of the heat insulation member 4 is located in the slot and engages with the slot. A sealing ring is provided in the slot, and the heat insulation member 4 abuts against the sealing ring, so that there is no gas leakage between the heat insulation member 4 and the first support member 1. At the same time, the setting of the slot makes the connection between the heat insulation member 4 and the first support member 1 more stable, prevents the heat insulation member 4 from detaching from the first support member 1, and facilitates the replacement of the heat insulation member 4.
[0036] Reference Figure 4 As shown, preferably, the light source device for the sintering furnace also includes a cooling element 6, which can be considered a liquid cooling device. The cooling element 6 is connected to two pipes 15, which penetrate the top of the first support member 1 and are connected to an external cooling source. The two pipes 15 are used for the coolant to enter and exit the cooling element 6, respectively. The cooling element 6 is located between the blower 11 and the sintering lamp 3. The cooling element 6 is provided with through holes, allowing the airflow output by the blower 11 to pass through the cooling element 6, thereby cooling the airflow delivered by the blower 11 and improving the heat dissipation effect on the sintering lamp 3. The first heat dissipation assembly also includes adjusting rods 14, which penetrate the side wall of the first support member 1. There are four adjusting rods 14 in total, and the ends of the four adjusting rods 14 are connected to the four corners of the top side of the cooling element 6. Pipes 15 are located between two adjacent adjusting rods 14. The adjusting rods 14 are threadedly connected to fasteners, which can be considered nuts. By rotating the fasteners, the fasteners abut against the top side of the first support member 1, thereby fixing the position of the adjusting rods 14 and thus fixing the position of the cooling element 6. By rotating the fastener away from the first support member 1, the position of the adjusting rod 14 can be adjusted, thereby allowing the position of the cooling member 6 to be adjusted.
[0037] Reference Figure 8As shown, preferably, the side of the sintering lamp 3 near the heat insulation component 4 is coated with a gold plating layer 31, and the gold plating layer 31 is coated around half of the side wall of the sintering lamp 3. The coating of the gold plating layer 31 can improve the light intensity energy.
[0038] Reference Figure 4 and Figure 9 As shown, the second heat dissipation assembly includes a second support member 2 and a second heat dissipation pipe 21. The second support member 2 includes a second receiving cavity located within the second support member 2. The first support member 1 is located within the second receiving cavity, and the first support member 1 and the second support member 2 are detachably connected by bolts. Specifically, the second support member 2 includes a fixing part 28, a support part 281, and an adjusting part 29. The support part 281 is connected to the fixing part 28. Preferably, the support part 281 and the fixing part 28 are integrally formed. The support part 281 extends from the bottom of the side wall of the fixing part 28, and there are two support parts 281. Light from the sintering lamp 3 passes between the two support parts 281. The support part 281 is connected to a second connecting member 282. The adjusting part 29 is connected to the support part 281 through the second connecting member 282. The connecting hole of the second connecting member 282 is an oblong hole, so that the position of the adjusting part 29 can be adjusted along the support part 281. The first support member 1 is connected to the support part 281 by bolts and is located between the adjusting part 29 and the fixing part 28. The detachable adjusting part 29 allows its position to be adjusted according to the size of the first support member 1, ensuring that both the adjusting part 29 and the fixing part 28 abut against the first support member 1, thereby improving the sealing of the second receiving cavity. The second heat dissipation pipe 21 penetrates the side wall of the second support member 2. Specifically, both the adjusting part 29 and the fixing part 28 are connected to the second heat dissipation pipe 21. The second heat dissipation pipe 21 can communicate with an external suction device, allowing the suction device to expel gas from the second receiving cavity through the second heat dissipation pipe 21, thereby dissipating heat from the processed product.
[0039] Reference Figure 1 and Figure 2 As shown, the light source device for the sintering furnace also includes a first connector 22. The first connector 22 is generally L-shaped. The first connector 22 is connected to the first support 1 and the second support 2. The first connector 22 is located at the edge of the first support 1 and the second support 2, and the first connector 22 is connected to the two perpendicular and adjacent sides of the first support 1 and the second support 2, thereby fixing the position of the first support 1 and the second support 2.
[0040] The light source device for the sintering furnace also includes a filter element 5, which can be considered as a filter glass plate. A connecting frame 25 is connected to the second support member 2, and the connecting frame 25 is located within the second receiving cavity. The filter element 5 is connected to the connecting frame 25, and a heat insulation member 4 is located between the sintering lamp 3 and the filter element 5. The positions of the filter element 5 and the sintering lamp 3 correspond, allowing the light from the sintering lamp 3 to pass through the filter element 5. The filter element 5 can filter a portion of the wavelength of light emitted by the sintering lamp 3, and different filter elements 5 can be replaced according to the processing requirements of the product.
[0041] The second support member 2 is also connected to a connector 23 that communicates with the second receiving cavity. Specifically, the connector 23 is connected to the second support member 2 via a connecting pipe, and the connecting pipe communicates with the second receiving cavity 23. There are two connectors 23, and the two connecting pipes extend in opposite directions. The connector 23 is used to communicate with an oxygen detection device, which can detect the oxygen content of the gas in the second receiving cavity. When the oxygen content exceeds a set value, an inert gas, preferably nitrogen, is introduced into the second receiving cavity to prevent easily oxidized products from being oxidized during processing.
[0042] The first support member 1 is also connected to a temperature measuring element 13, which can be regarded as a temperature sensor. Multiple temperature measuring elements 13 are connected to the top side of the first support member 1 and located between the blower members 11. In this embodiment, a total of three temperature measuring elements 13 are provided. The detection end of the temperature measuring element 13 is located inside the first receiving cavity. The temperature measuring element 13 is connected to the controller. The temperature measuring element 13 can detect the temperature of the first receiving cavity and adjust the rotation speed of the blower members 11 according to the temperature of the first receiving cavity, thereby preventing the temperature of the first receiving cavity from overheating.
[0043] Reference Figure 4 As shown, the blower 11 and the first heat dissipation pipe 12 form a first heat dissipation channel. After the external air is cooled by the cooling component 6, it can exchange heat with the sintering lamp 3. The air after exchanging heat is discharged to the outside along the first heat dissipation pipe 12, thereby reducing the temperature of the sintering lamp 3.
[0044] Reference Figure 6As shown, the bottom of the second support member 2 is provided with a conveying channel 27 for the product to be processed to pass through. Specifically, both sides of the bottom of the second support member 2 are provided with feeding ports, and the two feeding ports form a conveying channel. The setting of the feeding ports can reduce the leakage of gas in the second receiving cavity. The conveying channel 27 is located in the second receiving cavity, and the conveying channel 27 passes through the corresponding position of the filter light member 5, so that the sintering lamp 3 processes the product to be processed. The conveying channel 27 and the second heat dissipation pipe 21 form a second heat dissipation channel, so that the suction member can dissipate heat to the product through the second heat dissipation pipe 21. Preferably, the inner side wall of the second support member 2 is also connected to a baffle 26. The baffle 26 is located in the second heat dissipation channel, and the baffle 26 is located between the side wall of the second heat dissipation channel and the end of the second heat dissipation pipe 21. Preferably, the baffle 26 is located close to the second heat dissipation pipe 21, so as to prevent the suction member from venting too much inert gas to the outside through the second heat dissipation pipe 21.
[0045] Preferably, the first support member 1 further includes a receiving groove 17, and the end of the sintering lamp 3 is located in the receiving groove 17, thereby preventing the sintering lamp 3 from bumping against the outside during the transportation process, and thus preventing the sintering lamp 3 from being damaged.
[0046] Preferably, two first handles 16 are connected to the top side of the first support member 1, and the two first handles 16 are located at the edge of the top side of the first support member 1, with the blower 11 located between the first handles. Second handles 24 are connected to the side wall of the second support member 2. Specifically, the fixing part 28 and the adjusting part 29 of the second support member 2 are both connected to the second handles 24, and the opposite sides of the fixing part 28 and the opposite sides of the adjusting part 29 are both connected to the second handles 24. The first handles 16 facilitate the handling of the first support member 1, and the second handles 24 facilitate the handling of the second support member 2. The second handles 24 also facilitate the disassembly of the adjusting part 29 and the handling of the fixing part 28 and the adjusting part 29.
[0047] In use, the product to be processed moves in the conveying channel 27. When the product to be processed passes the corresponding position of the filter light element 5, the sintering lamp 3 processes the product. At the same time, the blower 11 drives the external air to flow towards the sintering lamp 3. The air is cooled after passing through the cooling element 6. The air can exchange heat with the sintering lamp 3 during the process of passing through the sintering lamp 3. The air after heat exchange flows out through the first heat dissipation pipe 12. The suction element discharges the gas in the second accommodating cavity through the second heat dissipation pipe 21, thereby dissipating heat on the product.
[0048] When the sintering lamp needs to be replaced, the following steps are included: S1: Disconnect the electrical connection between the sintering lamp 3 to be replaced and the blower 11; S2: Remove the first support member 1, so that the first support member 1 is detached from the second receiving cavity of the second support member 2; S3: Place the first support member 1 with the sintering lamp 3 to be installed into the second receiving cavity, and connect the first support member 1 and the second support member 2; S4: Electrically connect the sintering lamp 3 to be installed and the blower 11. After step S4, a heat dissipation step is also included, in which the temperature inside the first receiving cavity is detected by the temperature measuring element 13, and the rotation speed of the blower 11 is adjusted according to the temperature of the first receiving cavity, thereby preventing the temperature of the first receiving cavity from overheating. In step S1, the electrical connection of the temperature measuring element 13 is also disconnected. In step S3, the position of the adjusting part 29 in the second support member 2 is also adjusted so that both the fixing part 28 and the adjusting part 29 abut against the first support member 1.
[0049] This utility model discloses a light source device for a sintering furnace. The sintering lamp 3 is mounted on a first support member 1 and located within a first receiving cavity. The first support member 1 and the second support member 2 are detachably connected. This design allows for replacement of the sintering lamp 3 by simply removing or installing the first support member 1, eliminating the need to replace each sintering lamp individually, thus improving replacement efficiency. The first and second heat dissipation channels allow for separate heat dissipation for both the product and the sintering lamp 3. The heat insulation plate seals the opening of the first support member 1, preventing gas leakage between the heat insulation member 4 and the first support member 1, thereby preventing hot air from the first receiving cavity from leaking into the second receiving cavity. The cooling member 6 allows the airflow from the blower 11 to pass through it, cooling the airflow and improving heat dissipation for the sintering lamp 3. The baffle 26 prevents the suction member from venting excessive inert gas to the outside through the second heat dissipation pipe 21.
[0050] Obviously, the above embodiments are merely illustrative examples for clear explanation and are not intended to limit the implementation. Those skilled in the art will recognize that other variations or modifications can be made based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations here. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.
Claims
1. A light source device for a sintering furnace, characterized in that, include: The first heat dissipation assembly includes a first support member, a blower member, a first heat dissipation pipe, and a sintering lamp. The first support member includes a first receiving cavity. The sintering lamp is mounted on the first support member, and the light-emitting position of the sintering lamp is located in the first receiving cavity. The blower member is connected to the first support member, and the output end of the blower member faces the sintering lamp. The first heat dissipation pipe penetrates the side wall of the first support member, and an opening is provided on one side of the first support member. The second heat dissipation assembly includes a second support member and a second heat dissipation pipe. The second support member includes a second receiving cavity. The first support member is located in the second receiving cavity, and the first support member and the second support member are detachably connected. The second heat dissipation pipe passes through the side wall of the second support member. A heat insulation component that can block the opening, and the light output from the sintering lamp can pass through the heat insulation component.
2. The light source device for a sintering furnace according to claim 1, characterized in that: It also includes a cooling component, which is located between the blower and the sintering lamp, and the airflow output by the blower can pass through the cooling component.
3. The light source device for a sintering furnace according to claim 2, characterized in that: The first heat dissipation assembly further includes an adjustment rod that passes through the side wall of the first support member and is connected at the end of the adjustment rod to the cooling member. The adjustment rod is threaded with a fastener that abuts against the first support member.
4. The light source device for a sintering furnace according to claim 1, characterized in that: The edge of the opening between the heat insulation component and the first support component is connected by sealant.
5. The light source device for a sintering furnace according to claim 1, characterized in that: The side wall of the first support member is provided with a slot, and the edge of the heat insulation member is located in the slot and engages with the slot.
6. The light source device for a sintering furnace according to claim 1, characterized in that: It also includes a light filter, the second support is connected to a connecting frame, the light filter is connected to the connecting frame, and the heat insulation component is located between the sintering lamp and the light filter.
7. The light source device for a sintering furnace according to claim 1, characterized in that: The side of the sintering lamp closest to the heat insulation component is coated with a gold plating layer.
8. The light source device for a sintering furnace according to claim 1, characterized in that: The second support member is also connected to a connector that communicates with the second receiving cavity, the connector being used to communicate with an oxygen detection element.
9. The light source device for a sintering furnace according to claim 1, characterized in that: It also includes a controller, and the first support is also connected to a temperature measuring element. The detection end of the temperature measuring element is located inside the first receiving cavity, and the temperature measuring element is connected to the controller.
10. The light source device for a sintering furnace according to claim 1, characterized in that: It also includes a first connector, which is connected to both the first support and the second support. The first connector is located at the edge of both the first support and the second support, and is connected to both sides of both the first support and the second support.
11. The light source device for a sintering furnace according to claim 1, characterized in that: The second support member includes a fixing part, a supporting part, and an adjusting part. The supporting part is connected to the fixing part, and the adjusting part is detachably connected to the supporting part. The first support member is connected to the supporting part and located between the adjusting part and the fixing part. Both the adjusting part and the fixing part abut against the first support member.
12. The light source device for a sintering furnace according to claim 1, characterized in that: The blower and the first heat dissipation pipe form a first heat dissipation channel, and the second support also includes a conveying channel, which and the second heat dissipation pipe form a second heat dissipation channel.
13. The light source device for a sintering furnace according to claim 12, characterized in that: The second support member is also connected to a baffle, which is located inside the second heat dissipation channel and between the side wall of the second heat dissipation channel and the end of the second heat dissipation pipe.
14. The light source device for a sintering furnace according to claim 1, characterized in that: The first support also includes a receiving groove, and the end of the sintering lamp is located in the receiving groove.