High-weather-resistance drying box for optical glass processing
By using a split-type enclosed heating chamber and annular porous air duct design, combined with transmission and cooling components, the problems of localized overheating and inconvenient operation of drying ovens for optical glass processing are solved, achieving uniform heating of materials and a safe and efficient drying process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-27
- Publication Date
- 2026-04-03
AI Technical Summary
Existing drying ovens for optical glass processing are prone to localized overheating during the drying process, leading to uneven material stress. They are also inconvenient to operate and can easily cause pollution and safety accidents, making them difficult to popularize in small and medium-sized production lines.
The design employs a split-type enclosed heating chamber and annular porous air duct, combined with transmission and cooling components, to achieve uniform heating of materials, reduce manual intervention, and improve safety and efficiency.
This achieves uniform heating of materials, reduces energy consumption, avoids material breakage and contamination, and improves operational safety and production efficiency.
Smart Images

Figure CN224080557U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of drying equipment technology, and more specifically to a drying oven for processing high weather-resistant optical glass. Background Technology
[0002] In the field of optical glass manufacturing, especially in the processing of high weather-resistant optical glass, the drying oven is a key piece of equipment. Its drying performance directly affects the light transmittance, surface uniformity, and weather resistance of the glass. Under the existing technology, the drying heat source of the drying oven is mostly concentrated at the bottom or in a single area. During the drying process, local overheating is likely to occur, causing uneven stress in the material and resulting in cracking. In addition, during the drying process, operators need to manually open and close the oven door to pick up and put in the workpiece. This can easily lead to material contamination and may also cause high-temperature burns. Although some equipment uses robotic arms to assist in operation, due to the complexity of the system and the high cost, it is difficult to popularize it in small and medium-sized production lines, which affects the efficiency of use.
[0003] In view of the above-mentioned problems existing in the prior art, the present invention provides a drying oven for high weather resistance optical glass processing. By setting up a split closed heating chamber and an annular porous air duct design, it ensures that the material is heated evenly while saving unnecessary energy consumption. In addition, the built-in transmission component reduces manual intervention and effectively improves operational safety. Furthermore, the cooling component shortens the service life. With the overall coordination, the efficiency of use is further improved. Utility Model Content
[0004] In order to overcome the above-mentioned defects of the prior art, the present invention provides a drying oven for processing high weather-resistant optical glass to solve the problems existing in the background art.
[0005] This utility model provides the following technical solution: a drying oven for processing high weather-resistant optical glass, comprising a drying oven assembly, wherein a drying component is installed inside the drying oven assembly, a conveying component is provided at the bottom of the drying component, and a cooling component is placed on top of the conveying component. The drying oven assembly includes a box body and a box door. The drying component includes a filter screen, a heating controller, heating tubes, a partition, and pipes. The heating controller is fixedly installed on the side wall of the box body near the filter screen, and multiple heating tubes are detachably installed in the middle of the heating controller. The partition is fixedly installed on the side of the heating controller away from the filter screen. The conveying component includes a drying table, ... The drying table includes a shelf, a fixed platform, a sliding rod, a dual-axis motor, a first transmission rod, a first gear, a fixed block, a second transmission rod, a second gear, a transmission belt, and a connecting piece. The top of the drying table has a multi-section shelf fixedly installed. A fixed platform is movably placed at the bottom of the drying table. A dual-axis motor is movably placed on the side of the fixed platform away from the door. First transmission rods are movably installed at both ends of the dual-axis motor. The end of the first transmission rod away from the dual-axis motor is movably connected to a first gear. A transmission belt is fixedly placed outside the first gear and meshes with the first gear. One end of the connecting piece is fixedly installed on the top of the transmission belt, and the other end is movably connected to the side wall of the drying table.
[0006] Preferably, the drying oven assembly further includes support feet, hinges, and a handle. Support feet are fixedly installed at the bottom of the oven body, and hinges are movably installed on one side of the oven body. The end of the hinges away from the oven body is fixedly connected to the oven door, and a handle is detachably installed on the end of the oven door away from the oven body.
[0007] Preferably, the drying oven assembly further includes a control panel and a rotary button. The control panel is fixedly installed on the side wall of the oven body, and a rotary button is movably provided at the bottom of the control panel.
[0008] Preferably, the filter screen is movably installed at the opening on the side wall of the housing, and an air pump is movably placed inside the filter screen.
[0009] Preferably, the partition and the box area near the heating controller form a closed cavity, and the partition is provided with openings around its perimeter for pipes to be inserted into, and the outer wall of the pipe is provided with evenly distributed round holes.
[0010] Preferably, the drying assembly further includes a sealing ring, and the sealing ring is fixedly installed on the outer wall of the end of the pipe near the partition.
[0011] Preferably, the conveying assembly further includes a soft pad and a water-retaining groove. The soft pad is movably connected to the surface of the shelf, and the water-retaining groove is detachably installed around the top of the drying table and is symmetrically distributed.
[0012] Preferably, the fixed platform has a sliding groove in the middle that is slidably connected to a sliding rod, and the end of the sliding rod away from the fixed platform is fixedly inserted into an opening at the bottom of the drying platform.
[0013] Preferably, the fixing block is movably installed on the side of the fixing platform away from the dual-axis motor, and the fixing block has an opening for the second transmission rod to be movably inserted. The two ends of the second transmission rod are movably installed with second gears, and the transmission belt meshes with the second gears.
[0014] Preferably, the cooling assembly further includes a second motor, a third transmission rod, a rotating shaft, and rotating blades. The second motor is fixedly installed in the middle of the top of the inner cavity of the housing. The end of the second motor away from the housing is movably connected to the third transmission rod. The end of the third transmission rod away from the second motor is movably mounted with a rotating shaft. The outer wall of the rotating shaft is detachably mounted with circumferentially distributed rotating blades.
[0015] The technical effects and advantages of this utility model are as follows:
[0016] This invention utilizes a conveyor assembly to automatically feed and discharge processed materials, avoiding direct contact between operators and the high-temperature drying area. This reduces contamination from manual operation, ensures the purity of materials, and effectively prevents safety accidents such as burns from hot air.
[0017] This invention effectively reduces heat loss and improves heating efficiency by evenly distributing heating tubes within the enclosed space separated by partitions in the chamber. Furthermore, the annular multi-hole design of the pipes delivers hot air to the working area, dissipating it from multiple angles to prevent localized overheating that could cause material deformation and improve drying quality.
[0018] This invention, by installing a cooling component, can accelerate the airflow inside the chamber, quickly reduce the temperature of the drying area after drying, shorten the cooling time, and improve the efficiency of the equipment. At the same time, it can also make the hot air distribution more uniform during the drying process, thus improving the drying effect.
[0019] This invention uses support feet to lift the bottom of the enclosure off the ground, which effectively increases the airflow space at the bottom of the enclosure, which is beneficial for heat dissipation and extends the service life of the equipment. At the same time, the control panel and rotary buttons create a visual interactive page, further improving the ease of use of this device. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0021] Figure 2 This is a front view of the overall structure of this utility model.
[0022] Figure 3This is a schematic diagram of the internal structure of the present invention.
[0023] Figure 4 For the present utility model Figure 3 Schematic diagram of the structure at point A in the middle.
[0024] Figure 5 This is a cross-sectional schematic diagram of the overall structure of this utility model.
[0025] Figure 6 This is a schematic diagram of the drying component and conveying component of this utility model.
[0026] Figure 7 This is a schematic diagram of the transmission component structure of this utility model.
[0027] Figure 8 This is a side view of the transmission component of this utility model.
[0028] The attached figures are labeled as follows: 1. Drying oven assembly; 101. Oven body; 102. Support leg; 103. Hinge; 104. Oven door; 105. Handle; 106. Control panel; 107. Rotary button; 2. Drying assembly; 201. Filter screen; 202. Heating controller; 203. Heating tube; 204. Partition; 205. Pipe; 206. Sealing ring; 3. Conveying assembly; 301. Drying table; 302. Shelf; 303. Pad; 304. Water baffle; 305. Fixed platform; 306. Slide rod; 307. Dual-axis motor; 308. First transmission rod; 309. First gear; 310. Fixing block; 311. Second transmission rod; 312. Second gear; 313. Transmission belt; 314. Connector; 4. Cooling assembly; 401. Second motor; 402. Third transmission rod; 403. Rotating shaft; 404. Rotating blade. Detailed Implementation
[0029] The technical solution of this utility model will be clearly and completely described below with reference to the accompanying drawings. In addition, the forms of the various structures described in the following embodiments are merely illustrative. The drying oven for processing high weather-resistant optical glass involved in this utility model is not limited to the structures described in the following embodiments. All other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0030] Reference Figure 1-8 This utility model provides a drying oven for processing high weather-resistant optical glass, including a drying oven assembly 1, a drying assembly 2 installed inside the drying oven assembly 1, a conveying assembly 3 at the bottom of the drying assembly 2, and a cooling assembly 4 placed on top of the conveying assembly 3.
[0031] Reference Figure 1 , Figure 2 and Figure 3 The drying oven assembly 1 includes a body 101, support feet 102, hinges 103, a door 104, a handle 105, a control panel 106, and a rotary button 107. The support feet 102 are fixedly installed at the bottom of the body 101, and the hinges 103 are movably installed on one side of the body 101. The end of the hinges 103 away from the body 101 is fixedly connected to the door 104. The handle 105 is detachably installed on the end of the door 104 away from the body 101. The control panel 106 is fixedly installed on the side wall of the body 101, and the rotary button 107 is movably installed at the bottom of the control panel 106. The purpose is to lift the bottom of the body 101 off the ground by using the support feet 102, increasing the air circulation space at the bottom, which is beneficial for heat dissipation and extending the service life of the equipment. At the same time, the control panel 106 and the rotary button 107 can be used to create a visual interactive page, which further improves the ease of use of this device.
[0032] Reference Figure 1 , Figure 3 , Figure 5 and Figure 6 The drying assembly 2 includes a filter screen 201, a heating controller 202, heating tubes 203, a partition 204, pipes 205, and a sealing ring 206. The filter screen 201 is movably installed at an opening on the side wall of the housing 101, and an air pump is movably placed inside the filter screen 201. The heating controller 202 is fixedly installed on the side wall of the housing 101 near the filter screen 201, and multiple sections of heating tubes 203 are detachably installed in the middle of the heating controller 202. The partition 204 is fixedly installed on the side of the heating controller 202 away from the filter screen 201, and the partition 204 is located on the side of the heating controller 202 away from the filter screen 201. The chamber 101 area forms a closed cavity. The partition 204 has openings around its perimeter for the pipe 205 to be inserted into. The outer wall of the pipe 205 has evenly distributed round holes, and a sealing ring 206 is fixedly installed on the outer wall of the pipe 205 near the partition 204. The purpose is to effectively reduce heat loss and improve heating efficiency by evenly distributing the heating tubes 203 in the closed space of the chamber 101 separated by the partition 204. Furthermore, the annular multi-hole design of the pipe 205 delivers hot air to the working area and dissipates it from multiple angles, avoiding local overheating that could cause material deformation and improving drying quality.
[0033] Reference Figure 7 and Figure 8The conveying assembly 3 includes a drying table 301, a shelf 302, a soft pad 303, a water-retaining groove 304, a fixed platform 305, a sliding rod 306, a dual-axis motor 307, a first transmission rod 308, a first gear 309, a fixing block 310, a second transmission rod 311, a second gear 312, a transmission belt 313, and a connecting piece 314. A multi-section shelf 302 is fixedly installed on the top of the drying table 301. A soft pad 303 is movably connected to the surface of the shelf 302. The water-retaining groove 304 is detachably installed around the top of the drying table 301 and is symmetrically distributed. A fixed platform 305 is movably placed at the bottom of the drying table 301. A sliding groove is provided in the middle of the fixed platform 305, which is slidably connected to the sliding rod 306. The end of the sliding rod 306 away from the fixed platform 305 is fixedly inserted into an opening at the bottom of the drying table 301. A dual-axis motor 307 is movably placed on the side of the fixed platform 305 away from the door 104. The two ends of the dual-axis motor 307... A first transmission rod 308 is movably installed at one end. The end of the first transmission rod 308 away from the dual-axis motor 307 is movably connected to the first gear 309. A fixing block 310 is fixedly installed on the other side of the fixing platform 305 away from the dual-axis motor 307. An opening is provided inside the fixing block 310 for the second transmission rod 311 to be movably connected. A second gear 312 is movably installed at both ends of the second transmission rod 311. A transmission belt 313 is movably placed outside the second gear 312. The transmission belt 313 meshes with the second gear 312 and the first gear 309. One end of the connecting piece 314 is fixedly installed on the top of the transmission belt 313, and the other end is movably connected to the side wall of the drying platform 301. The purpose is to use the conveying assembly 3 to realize the automatic entry and exit of processed materials, avoid operators directly contacting the high-temperature drying area, reduce pollution caused by manual operation, ensure the purity of materials, and effectively prevent safety accidents such as hot air burns.
[0034] Reference Figure 4 and Figure 5 The cooling assembly 4 includes a second motor 401, a third transmission rod 402, a rotating shaft 403, and rotating blades 404. The second motor 401 is fixedly installed in the middle of the top of the inner cavity of the housing 101, and the end of the second motor 401 away from the housing 101 is movably connected to the third transmission rod 402. The rotating shaft 403 is movably installed at the end of the third transmission rod 402 away from the second motor 401. The outer wall of the rotating shaft 403 is detachably equipped with circumferentially distributed rotating blades 404. The purpose of installing the cooling assembly 4 is to accelerate the airflow inside the housing 101, quickly reduce the temperature of the drying area after drying, shorten the cooling time, and improve the efficiency of the equipment. At the same time, during the drying process, it can also make the hot air distribution more uniform and improve the drying effect.
[0035] The working principle of this utility model is as follows: First, place the device horizontally in the working environment, ensuring that the support feet 102 at the bottom of the box 101 are in full contact with the mounting surface. Then, connect the electrical components such as the control panel 106, heating controller 202, and heating tube 203, and wait for operation to begin. When drying is required, apply a horizontal pulling force to the handle 105 so that the box door 104 can be rotated open via the hinge 103. After the box door 104 is fully open, start the dual-axis motor 307 via the control panel 106. The dual-axis motor 307 will drive the first transmission rod 308, which is movably connected to it, to rotate through the coupling. Since the first transmission rod 308 has a first gear 309 movably installed at the end away from the dual-axis motor 307, the first transmission rod 308 then rotates. Rotation of rod 308 directly drives the first gear 309 to rotate. A transmission belt 313 is movably placed outside the first gear 309, and the transmission belt 313 is meshed with the first gear 309, so it indirectly drives the transmission belt 313 to rotate. At this time, the second transmission rod 311, which is fixedly installed on the top of the transmission belt 313, will move forward as the transmission belt 313 rotates, driving the drying table 301 and the top connected parts of the drying table 301, which are fixedly connected to it, to slide forward along the slide groove in the middle of the fixed table 305. The drying table 301 and its top connected parts slide out of the box 101 through the opening of the box door 104 and stop when the preset distance is reached. At this time, the items to be dried are placed vertically in the middle of the shelf 302. After placement is completed... Then, the dual-axis motor 307 is reversed, causing the drying table 301 and its top-connected components to move back from the door 104 to the inside of the chamber 101. Then, force is applied to the handle 105 again to close the door 104. After the door 104 is closed, the heating controller 202 and heating element 203 are activated using the control panel 106. When the air pump inside the filter 201 draws air into the enclosed space formed by the partition 204 and the side wall of the chamber 101, the drawn-in air is heated by the heating element 203. Since this area is enclosed, the hot air flows into the pipe 205 through the openings around the partition 204. As the hot air accumulates, it gradually dissipates from the openings on the outer wall of the pipe 205 into the working area. The material in the center of the shelf 302 undergoes drying. Simultaneously, the second motor 401 at the top of the inner cavity of the housing 101 is activated. The second motor 401 drives the third transmission rod 402, which is movably connected to it, to rotate via a coupling. Since the bottom of the third transmission rod 402 is movably connected to a rotating shaft 403, and the outer wall of the rotating shaft 403 is equipped with circumferentially distributed rotating blades 404, the rotating shaft 403 drives the rotating blades 404 to rotate together. Under the action of the rotating blades 404, hot air circulation is further promoted, accelerating the drying process of the material. If there is still residual water on the surface of the material being processed, it will be blown onto the surface of the drying table 301 by the rotating blades 404. Since the drying table 301 is equipped with water-retaining grooves 304 around its perimeter...Therefore, the water blown off will only remain on the surface of the drying table 301 until it is dried by the hot air and disappears, without affecting other components. After the drying process is complete, apply force to the handle 105 to open the door 104, and then restart the dual-axis motor 307 via the control panel 106. This allows the drying table 301 and its top-connected components to move out of the chamber 101 through the door 104. The dried material can then be removed for further processing. After one drying cycle, the door 104 can be left open. Under the action of the rotating blades 404, the hot air accumulated inside the chamber 101 will quickly flow out through the door 104, allowing the device to cool down rapidly for the next cycle, effectively improving efficiency.
[0036] Finally, the following points should be noted: First, in the description of this application, it should be noted that, unless otherwise specified and limited, the terms "installation", "connection", and "linkage" should be interpreted broadly, and can be mechanical or electrical connections, or internal connections between two components, or direct connections. "Up", "down", "left", "right", etc. are only used to indicate relative positional relationships. When the absolute position of the described object changes, the relative positional relationship may change.
[0037] Secondly: The accompanying drawings of the embodiments disclosed in this utility model only involve the structures involved in the embodiments disclosed in this utility model. Other structures can refer to the general design. In the absence of conflict, the same embodiment and different embodiments of this utility model can be combined with each other.
[0038] Finally: The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A high-weatherability optical glass processing drying oven comprising a drying oven assembly (1), characterized in that: The inside of the drying box assembly (1) is mounted with a drying assembly (2), the bottom of the drying assembly (2) is provided with a conveying assembly (3), the top of the conveying assembly (3) is placed with a cooling assembly (4), the drying box assembly (1) comprises a box body (101) and a box door (104), the drying assembly (2) comprises a filter screen (201), a heating controller (202), a heating pipe (203), a partition (204) and a pipeline (205), the heating controller (202) is fixedly installed on the side wall of the box body (101) close to one end of the filter screen (201), and a plurality of heating pipes (203) are detachably installed in the middle of the heating controller (202), the partition (204) is fixedly installed on the side of the heating controller (202) away from the filter screen (201), the conveying assembly (3) comprises a drying table (301), a storage rack (302), a fixed table (305), a sliding rod (306), a double-shaft motor (307), a first transmission rod (308), a first gear (309), a fixed block (310), a second transmission rod (311), a second gear (312), a transmission belt (313) and a connecting piece (314), a plurality of storage racks (302) are fixedly installed on the top of the drying table (301), the fixed table (305) is movably placed at the bottom of the drying table (301), the double-shaft motor (307) is movably placed on the side of the fixed table (305) away from the box door (104), the first transmission rod (308) is movably installed at both ends of the double-shaft motor (307), the first transmission rod (308) is movably connected with the first gear (309) at the end away from the double-shaft motor (307), the first gear (309) is fixedly placed outside the transmission belt (313), and the transmission belt (313) is engaged with the first gear (309), one end of the connecting piece (314) is fixedly installed on the top of the transmission belt (313), and the other end is movably connected with the side wall of the drying table (301).
2. The dry box for processing high-weatherability optical glass according to claim 1, characterized by comprising: The drying box assembly (1) further comprises a support leg (102), a loose leaf (103) and a handle (105), the bottom of the box body (101) is fixedly installed with the support leg (102), one side of the box body (101) is movably installed with the loose leaf (103), one end of the loose leaf (103) away from the box body (101) is fixedly connected with the box door (104), and the handle (105) is detachably installed on the end of the box door (104) away from the box body (101).
3. The dry box for processing high-weatherability optical glass according to claim 1, characterized by comprising: The drying box assembly (1) further comprises a control panel (106) and a rotary button (107), the control panel (106) is fixedly installed on the side wall of the box body (101), and the rotary button (107) is movably arranged at the bottom of the control panel (106).
4. The dry box for processing high-weatherability optical glass according to claim 1, characterized by comprising: The filter screen (201) is movably installed in the opening of the side wall of the box body (101), and the air pump is movably placed in the inside of the filter screen (201).
5. The dry box for processing high-weatherability optical glass according to claim 1, characterized by comprising: The partition plate (204) forms a closed cavity with the area of the box (101) near the heating controller (202) side, and the partition plate (204) is provided with openings around for the pipe (205) to be movably inserted, and the outer wall of the pipe (205) is provided with uniformly distributed round holes.
6. The dry box for processing high-weatherability optical glass according to claim 1, characterized by comprising: The drying assembly (2) further comprises a sealing ring (206), and the outer wall of one end of the pipe (205) near the partition plate (204) is fixedly provided with the sealing ring (206).
7. The dry box for processing high-weatherability optical glass according to claim 1, characterized by comprising: The conveying assembly (3) further comprises a soft pad (303) and a water blocking groove (304), the surface of the storage rack (302) is movably connected with the soft pad (303), and the water blocking groove (304) is detachably installed around the top of the drying table (301) and is symmetrically distributed.
8. The dry box for processing high-weatherability optical glass according to claim 1, characterized by comprising: The middle part of the fixing table (305) is provided with a sliding groove and a sliding rod (306) in sliding connection, and one end of the sliding rod (306) away from the fixing table (305) is fixedly inserted into the opening in the bottom of the drying table (301).
9. The dry box for processing high-weatherability optical glass according to claim 1, characterized by comprising: The fixing block (310) is movably installed on the other side of the fixing table (305) away from the double-shaft motor (307), and the fixing block (310) is provided with an opening in the inside for the second transmission rod (311) to be movably inserted, the second transmission rod (311) is movably provided with a second gear (312) at both ends, and the transmission belt (313) is engaged with the second gear (312).
10. The dry box for processing high-weatherability optical glass according to claim 1, characterized by comprising: The cooling assembly (4) further comprises a second motor (401), a third transmission rod (402), a rotating shaft (403) and rotating blades (404), the second motor (401) is fixedly installed at the middle part of the top end of the inner cavity of the box (101), one end of the second motor (401) away from the box (101) is movably connected with the third transmission rod (402), one end of the third transmission rod (402) away from the second motor (401) is movably provided with the rotating shaft (403), and the outer wall of the rotating shaft (403) is detachably provided with circumferentially distributed rotating blades (404).