A homogeneous treatment control device for glass cup production

By designing a homogeneous treatment control device with gear meshing and filtering mechanism, the heat uneven problem caused by clogging of the filter basket is solved, ensuring that the glass cup is uniformly heated and impurities cleaned, and the quality and production efficiency of the glass cup are improved.

CN119797738BActive Publication Date: 2025-08-01SHANDONG XUKUN GLASS PROD CO LTD
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Patent Information

Application Number
CN202510038589.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-10
Publication Date
2025-08-01
Estimated Expiration
2045-01-10

AI Technical Summary

Technical Problem

When the existing homogenization device is used, the filter basket is blocked and the airflow will be restricted, affecting the circulation efficiency of hot air, resulting in uneven heat distribution inside the furnace body, and thus affecting the quality of the glass cup.

Method used

A homogeneous treatment control device for glass cup production is designed, including a support plate, a drive motor, a half gear, an elliptical gear and a filter mechanism. The gear meshing drives the cup tray to rotate to ensure uniform heat of the glass cup, and cleans up impurities in the hot gas through the filter mechanism. The air flow path is adjusted using a temperature sensor and a controller to ensure temperature uniformity.

Benefits of technology

It realizes uniform heating of the glass cup, prevents impurities from entering the device, ensures the cleanliness of the production environment, and improves product quality and processing efficiency.

✦ Generated by Eureka AI based on patent content.

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    Figure CN119797738B_ABST
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Abstract

A homogeneous treatment control device for glass cup production belongs to the technical field of glass homogeneous treatment. To solve the problems that after the filter basket in the homogeneous device is blocked, it will limit the passage of air flow, affect the efficiency of hot air circulation, and cause uneven heat distribution inside the furnace body. The present invention includes a device body. Support legs are fixedly installed at the bottom end of the device body, and a cabinet door is hinged to the side wall of the device body. A heating device is provided on the inner wall of the device body. A support plate is fixedly arranged at the top end of the device body. A drive motor is fixedly installed on the device body below the support plate. This homogeneous treatment control device for glass cup production can evenly deliver hot air to every corner inside the device, ensuring uniform heating of the glass, reducing problems such as glass deformation or cracks caused by local overheating or insufficient temperature. At the same time, it can prevent impurities in the hot air from entering the device, ensuring the cleanliness of the production environment and further improving the product quality.
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Description

Technical Field

[0001] The present invention relates to the technical field of glass homogenization processing, in particular to a homogenization processing control device for glass cup production. Background Art

[0002] Homogenization is a crucial step in the glass production process. Homogenization eliminates internal stress, improving strength, heat resistance, and impact resistance, thereby extending the lifespan and enhancing overall product quality. Furthermore, homogenization improves the light transmittance and transparency of the glass, enhancing its aesthetics and visual appeal. However, existing homogenization devices still have certain limitations.

[0003] For example, a hot air circulation tempered glass homogenizing furnace with announcement number CN213835055U generates suction by rotating fan blades. The heat in the furnace body enters the top frame through the first vent, then enters the first air duct through the second vent, then enters the side frame through the third vent, and finally flows back to the furnace body through the fourth vent. At the same time, the heat in the side frame flows into the second air duct through the fifth vent, and finally flows back to the furnace body through the second air duct. The hot air circulates, the glass is heated evenly, and the glass quality is high. However, after long-term use, impurities will gradually accumulate in the filter basket, causing the filter basket to be clogged. The clogged filter basket will restrict the passage of airflow, thereby affecting the efficiency of hot air circulation. In addition, the clogged filter basket may also cause uneven heat distribution inside the furnace body, thereby affecting the quality of the tempered glass.

[0004] Therefore, a homogenization processing control device for glass production is proposed to solve the above problems. Summary of the Invention

[0005] The object of the present invention is to provide a homogenization control device for glass production to solve the problem raised in the above-mentioned background art that when homogenizing devices currently on the market are in use, the filter basket becomes blocked, which restricts the passage of airflow, affects the efficiency of hot air circulation, and further causes uneven heat distribution inside the furnace body, affecting quality.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a homogenizing control device for glass production, comprising a device body, a support leg fixedly mounted on the bottom end of the device body, a cabinet door hingedly connected to the side wall of the device body, and a heating device provided on the inner wall of the device body;

[0007] Also includes:

[0008] A support plate is fixedly mounted on the top of the device body, a drive motor is fixedly mounted on the device body below the support plate, and a half gear is fixedly mounted on the output end of the drive motor;

[0009] A triangular plate is fixedly arranged at the top end inside the device body. A guide groove is formed in the triangular plate. A rotating block is rotatably installed inside the triangular plate on the side of the guide groove. A sleeve rod is rotatably installed on the triangular plate. A driving gear is fixedly nested and connected to the outer side of the sleeve rod. A first ventilation hole is formed in the sleeve rod. The top end of the sleeve rod penetrates through the device body and a disc is fixedly nested and connected to the outer wall of the extended end of the sleeve rod. Tooth blocks are arranged on the disc;

[0010] A bracket is fixedly arranged on the device body on the side of the disc. An electric push rod is fixedly connected to the bracket. A controller is fixedly installed on the device body on the side of the electric push rod. The output end of the electric push rod is rotatably connected to an inner shaft. A second ventilation hole is formed in the inner shaft;

[0011] There are three elliptical gears. All three elliptical gears are arranged inside the device body below the triangular plate. A guide rod is fixedly installed on the elliptical gear. One end of the guide rod far away from the elliptical gear extends into the guide groove. A cup tray is fixedly installed at the bottom end of the elliptical gear;

[0012] A filtering mechanism is arranged on the support plate for cleaning impurities in the hot air;

[0013] A temperature sensor is fixedly installed on the cabinet door.

[0014] Preferably, the half gear is located above the disc. A plurality of tooth blocks are arranged in a circumferential array about the center point of the disc. The tooth blocks are meshed with the half gear.

[0015] Preferably, the guide groove is arranged in a triangular structure. The guide groove is slidably connected to the guide rod. There are two guide rods symmetrically arranged about the elliptical gear. The three elliptical gears correspond to the three sides of the guide groove one by one. All the elliptical gears are meshed with the driving gear. The rotating block on the side of the guide groove corresponds to the guide rod. A torsion spring providing a reset elastic force is connected between the guide rod and the triangular plate.

[0016] Preferably, both the sleeve rod and the inner shaft are arranged in a hollow structure. The inner shaft is slidably arranged inside the sleeve rod. The second ventilation hole on the inner shaft corresponds to the first ventilation hole on the sleeve rod. Both the second ventilation hole and the first ventilation hole are arranged in a plurality of arrays.

[0017] Preferably, the filtering mechanism includes a heating cover, a hot air channel, a filter cartridge, an air inlet hole, an impurity removal cloth bag, a connecting shaft, a guide fan, a connecting rod, a rotating sleeve, a sliding groove, a scraping plate, an adsorption plate and a trapezoidal block;

[0018] The heating cover is fixedly arranged on the support plate. The outer wall of the heating cover is fixedly connected to the hot air channel. One end of the hot air channel far away from the heating cover is rotatably connected to the sleeve rod. The sleeve rod is communicated with the heating cover through the hot air channel;

[0019] The filter cartridge is fixedly arranged inside the heating cover. An air inlet hole is formed in the filter cartridge, and an impurity removal cloth bag is fixedly installed in the air inlet hole. A connecting shaft is fixedly installed on the side wall of the filter cartridge. A guide fan is fixedly nested and connected to the outer wall of the connecting shaft, and a connecting rod is fixedly installed on the connecting shaft on the side of the guide fan.

[0020] The rotating sleeve is rotatably arranged on the outer wall of the filter cartridge. Sliding grooves are formed on the side walls of the opposite sides of the rotating sleeve and the connecting rod, and a scraping plate is slidably installed in the sliding grooves. An adsorption plate is fixedly installed on the scraping plate.

[0021] The trapezoidal block is fixedly installed on the outer wall of the filter cartridge.

[0022] Preferably, a plurality of the air inlet holes and the impurity removal cloth bags are arranged in a circumferential array with respect to the center point of the filter cartridge. The connecting shaft on the side of the filter cartridge penetrates and extends out of the heating cover. Belt pulleys are fixedly installed at one end of the connecting shaft extending out of the heating cover and the output end of the driving motor, and a belt is connected between the two belt pulleys.

[0023] Preferably, a compression spring is connected between the connecting rod and the scraping plate, and the connecting rod and the scraping plate form an elastic telescopic structure through the compression spring. The compression spring is arranged in the sliding groove. An inclined surface corresponding to the trapezoidal block is formed at the bottom end of the scraping plate, and a plurality of trapezoidal blocks are arranged in a circumferential array with respect to the filter cartridge.

[0024] Preferably, the filtering mechanism further includes a reciprocating screw rod, heat-resistant rubber, a pull rod, a threaded sleeve rod, a connecting groove, a sliding rod, a sealing plug, an air outlet pipe, a tension spring and a side pipe.

[0025] The reciprocating screw rod is rotatably arranged inside the filter cartridge. Heat-resistant rubber is fixedly connected between the reciprocating screw rod and the inner wall of the filter cartridge. A pull rod is fixedly installed on the side wall of the heat-resistant rubber, and the end of the pull rod away from the heat-resistant rubber is fixedly connected with a threaded sleeve rod.

[0026] The connecting groove is formed in the reciprocating screw rod. A sliding rod is slidably connected in the connecting groove. One end of the sliding rod penetrates and extends out of the reciprocating screw rod and is fixedly connected with the sealing plug. The outer wall of the filter cartridge on the side of the sealing plug is fixedly connected with an air outlet pipe. A side pipe is fixedly connected to the air outlet pipe, and the end of the side pipe away from the air outlet pipe is connected to the device body.

[0027] Preferably, the threaded sleeve rod is threadedly sleeved on the outer wall of the reciprocating lead screw, and one end of the reciprocating lead screw penetrates through and extends out of the filter cartridge and is fixedly connected to the connecting shaft. A tension spring is connected between the connecting groove and the sliding rod, and the connecting groove and the sliding rod form an elastic telescopic structure through the tension spring. The sealing plug is arranged in a frustum structure, and the sealing plug is in concave-convex fit with the air outlet end of the filter cartridge. Three side pipes are arranged in an array, and the air outlet pipe is communicated with the device body through the side pipes, and the air outlet ends of the three side pipes correspond to the first ventilation holes one by one.

[0028] Preferably, a temperature acquisition module, a temperature comparison module and a control module are arranged inside the controller. The temperature acquisition module is electrically connected to the temperature sensor and is used to collect the temperature inside the device body. The temperature acquisition module is used to compare the temperature data collected by the temperature sensor and judge the high and low temperature difference. The control module is electrically connected to the electric push rod and is used to execute the closing and opening operations of the electric push rod according to the instructions issued by the temperature comparison module.

[0029] Compared with the prior art, the beneficial effects of the present invention are as follows: The homogenization treatment control device for glass cup production can evenly transport hot air to all corners inside the device, ensuring uniform heating of the glass, reducing glass deformation or crack problems caused by local overheating or insufficient temperature, and at the same time preventing impurities in the hot air from entering the device, ensuring the cleanliness of the production environment and further improving the product quality. The specific content is as follows:

[0030] 1. There are a driving gear and an elliptical gear. Through the rotation of the half gear, the half gear meshes with the tooth block, thereby driving the disc to rotate. The disc will drive the driving gear to mesh through the sleeve rod, and then through the meshing of the driving gear and the elliptical gear, drive the elliptical gear to move. The elliptical gear will drive the guide rod to slide along the inner wall of the guide groove, and then with the cooperation of the rotating block, the elliptical gear drives the cup tray to rotate and self-rotate, ensuring more uniform heating of the glass cups on the cup tray and improving the processing efficiency.

[0031] 2. There are a scraper, an adsorption plate and a trapezoidal block. Through the rotation of the connecting shaft, the connecting shaft drives the guide fan to rotate, so that gas enters the heating cover. When the connecting shaft rotates, the scraper and the adsorption plate will rotate synchronously, so as to filter impurities in the gas by using the adsorption plate, making the impurities adhere to the adsorption plate. When the scraper rotates, it will intermittently align with the trapezoidal block, so that the scraper slides along the surface of the trapezoidal block, thereby driving the adsorption plate to move up and down. And under the elastic force of the compression spring, when the scraper separates from the trapezoidal block, it moves downward, and then knocks on the filter cartridge to shake off the impurities on the adsorption plate, avoiding the decline of the adsorption efficiency of the adsorption plate caused by long-term accumulation of impurities, thereby prolonging the service life of the adsorption plate. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] Figure 1 Schematic diagram of the overall structure of the present invention;

[0033] Figure 2 For the present invention Figure 1 Enlarged schematic diagram of the structure at position A in the present invention;

[0034] Figure 3 Internal structure schematic diagram of the present invention;

[0035] Figure 4 Front view structure schematic diagram of the triangular plate of the present invention;

[0036] Figure 5 Overall structure schematic diagram of the triangular plate of the present invention;

[0037] Figure 6 For the present invention Figure 5 Enlarged schematic diagram of the structure at position B in the present invention;

[0038] Figure 7 Main sectional structure schematic diagram of the sleeve rod of the present invention;

[0039] Figure 8 Main sectional structure schematic diagram of the heating cover of the present invention;

[0040] Figure 9 For the present invention Figure 8 Enlarged schematic diagram of the structure at position C in the present invention;

[0041] Figure 10 Main sectional structure schematic diagram of the filter cartridge of the present invention;

[0042] Figure 11 For the present invention Figure 10 Enlarged schematic diagram of the structure at position D in the present invention;

[0043] Figure 12 Controller module diagram of the present invention.

[0044] In the figure: 1, device body; 2, support leg; 3, cabinet door; 4, support plate; 5, drive motor; 6, semi-gear; 7, triangular plate; 8, sleeve rod; 801, first ventilation hole; 9, drive gear; 10, disc; 11, tooth block; 12, guide groove; 13, bracket; 14, electric push rod; 15, inner shaft; 16, second ventilation hole; 17, elliptical gear; 18, guide rod; 19, cup tray; 20, rotating block; 21, filtering mechanism; 2101, heating cover; 2102, hot air channel; 2103, filter cartridge; 2104, air inlet hole; 2105, impurity removal cloth bag; 2106, connecting shaft; 2107, guide fan; 2108, connecting rod; 2109, rotating sleeve; 2110, chute; 2111, scraper; 2112, adsorption plate; 2113, trapezoidal block; 2114, pulley; 2115, compression spring; 2116, reciprocating lead screw; 2117, heat-resistant rubber; 2118, pull rod; 2119, threaded sleeve rod; 2120, connecting groove; 2121, slide rod; 2122, sealing plug; 2123, air outlet pipe; 2124, tension spring; 2125, side pipe; 22, controller; 23, temperature sensor. Detailed implementation mode

[0045] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative work shall fall within the protection scope of the present invention.

[0046] Embodiment 1: Please refer to Figures 1 - 12 As shown, the present invention provides a technical solution: a homogenization treatment control device for glass cup production, including a device body 1, a support leg 2 is fixedly installed at the bottom end of the device body 1, a cabinet door 3 is hinged on the side wall of the device body 1, and a heating device is arranged on the inner wall of the device body 1.

[0047] With the settings of the cabinet door 3 and the support leg 2 in this technical solution, during use, first place the device body 1 on a flat and open ground, then open the cabinet door 3, put the glass cup to be processed into the device body 1, close the cabinet door 3, start the heating device on the inner wall of the device body 1, and start heating the glass cup. When the glass cup reaches the required temperature, the heating device enters the heat preservation mode and maintains for a period of time to make the temperature inside the glass cup gradually reach the equilibrium state. Further, after the heat preservation stage ends, when the glass cup cools to room temperature, open the cabinet door 3 and take out the processed glass cup.

[0048] Embodiment 2: The technical content disclosed in this embodiment is an improvement based on the above-mentioned Embodiment 1. When the existing homogenizing device is in use, the glass is usually directly placed in the device, resulting in uneven heating of the glass and affecting the production quality. The technical solution is as follows Figures 1 - 6 As shown, it discloses an adjustment component of the homogenizing device. The support plate 4 provided is fixedly arranged at the top end of the device body 1. A driving motor 5 is fixedly installed on the device body 1 below the support plate 4, and a semi-gear 6 is fixedly installed at the output end of the driving motor 5. The triangular plate 7 is fixedly arranged at the inner top end of the device body 1. A guide groove 12 is formed in the triangular plate 7, and a rotating block 20 is rotatably installed in the triangular plate 7 on the side of the guide groove 12. A sleeve rod 8 is rotatably installed on the triangular plate 7, and a driving gear 9 is fixedly nested and connected to the outer side of the sleeve rod 8. A first ventilation hole 801 is formed in the sleeve rod 8, and the top end of the sleeve rod 8 penetrates and extends out of the device body 1. A disc 10 is fixedly nested and connected to the outer wall of the extended end of the sleeve rod 8. Tooth blocks 11 are arranged on the disc 10. A bracket 13 is fixedly arranged on the device body 1 on the side of the disc 10. An electric push rod 14 is fixedly connected to the bracket 13, and a controller 22 is fixedly installed on the device body 1 on the side of the electric push rod 14. The output end of the electric push rod 14 is rotatably connected to an inner shaft 15, and a second ventilation hole 16 is formed in the inner shaft 15. There are three elliptical gears 17, and all three elliptical gears 17 are arranged in the device body 1 below the triangular plate 7. A guide rod 18 is fixedly installed on the elliptical gear 17, and the end of the guide rod 18 far from the elliptical gear 17 extends into the guide groove 12. A cup tray 19 is fixedly installed at the bottom end of the elliptical gear 17. The semi-gear 6 is located above the disc 10, and a plurality of tooth blocks 11 are arranged in a circumferential array with respect to the center point of the disc 10, and the tooth blocks 11 are engaged with the semi-gear 6. The guide groove 12 is arranged in a triangular structure, and the guide groove 12 is slidably connected to the guide rod 18. Two guide rods 18 are symmetrically arranged with respect to the elliptical gear 17. The three elliptical gears 17 correspond to the three sides of the guide groove 12 one by one, and all the elliptical gears 17 are engaged with the driving gear 9. The rotating block 20 on the side of the guide groove 12 corresponds to the guide rod 18, and a torsion spring providing a reset elastic force is connected between the guide rod 18 and the triangular plate 7. Both the sleeve rod 8 and the inner shaft 15 are arranged in a hollow structure, and the inner shaft 15 is slidably arranged in the sleeve rod 8. The second ventilation hole 16 on the inner shaft 15 corresponds to the first ventilation hole 801 on the sleeve rod 8, and a plurality of second ventilation holes 16 and first ventilation holes 801 are arranged in an array.

[0049] In this technical solution, as follows Figure 3 As shown, by using the settings of the rotating block 20 and the guide rod 18, when the guide rod 18 slides along the guide groove 12, the rotating block 20 intermittently presses the guide rod 18, adjusting the positions of the elliptical gear 17 and the cup tray 19, ensuring that the glass is evenly heated during the heating process, avoiding the situation of local overheating or insufficient temperature, helping to eliminate the stress inside the glass, and improving its strength and heat resistance.

[0050] It adopts the technical solution as shown in Figure 1 , Figure 2 and Figures 4 - 6 . During the heating process, the driving motor 5 is started, so that the driving motor 5 drives the half gear 6 to rotate. The half gear 6 will intermittently engage with the tooth block 11, thereby driving the disc 10 to rotate. The disc 10 drives the sleeve rod 8 to rotate, and the sleeve rod 8 drives the driving gear 9 to rotate, so that the driving gear 9 meshes with the elliptical gear 17. Further, the elliptical gear 17 drives the guide rod 18 to slide along the guide groove 12. Since there are two guide rods 18, when the guide rod 18 slides, one of the guide rods 18 at the front end will first fit with the rotating block 20, thereby squeezing the rotating block 20 to rotate, so that the end of the rotating block 20 pushes the other guide rod 18, and then changes the sliding direction of the elliptical gear 17. After the guide rod 18 is separated from the rotating block 20, the guide rod 18 will reset and rotate under the drive of the torsion spring, thus realizing the automatic and periodic adjustment of the position of the glass during the heating process.

[0051] Embodiment 3: The technical content disclosed in this embodiment is a further improvement based on the above Embodiment 1 and Embodiment 2. When the filter basket is used for a long time, impurities will gradually block the filter basket, thereby restricting the passage of air flow, thus affecting the efficiency of the hot air circulation. Moreover, the blocked filter basket may also cause uneven heat distribution inside the furnace body, thereby affecting the quality of the tempered glass. To further solve this technical problem, the technical solution is as shown in Figures 7 - 12As shown, a reset knocking component of an injection mold is disclosed. The provided filtering mechanism 21 is arranged on the support plate 4 and is used to clean impurities in the hot air. The temperature sensor 23 is fixedly installed on the cabinet door 3. The filtering mechanism 21 includes a heating cover 2101, and the heating cover 2101 is fixedly arranged on the support plate 4. The outer wall of the heating cover 2101 is fixedly connected to the hot air channel 2102, and one end of the hot air channel 2102 away from the heating cover 2101 is rotatably connected to the sleeve rod 8. Moreover, the sleeve rod 8 is communicated with the heating cover 2101 through the hot air channel 2102. The filter cartridge 2103 is fixedly arranged in the heating cover 2101. Air inlet holes 2104 are formed in the filter cartridge 2103, and impurity removal cloth bags 2105 are fixedly installed in the air inlet holes 2104. Moreover, a connecting shaft 2106 is fixedly installed on the side wall of the filter cartridge 2103. A guide fan 2107 is fixedly nested on the outer wall of the connecting shaft 2106. Moreover, an adapter rod 2108 is fixedly installed on the connecting shaft 2106 on the side of the guide fan 2107. A rotating sleeve 2109 is rotatably arranged on the outer wall of the filter cartridge 2103. Sliding grooves 2110 are formed on the side walls of the opposite sides of the rotating sleeve 2109 and the adapter rod 2108. Moreover, scraping plates 2111 are slidably installed in the sliding grooves 2110. Moreover, adsorption plates 2112 are fixedly installed on the scraping plates 2111. Trapezoidal blocks 2113 are fixedly installed on the outer wall of the filter cartridge 2103. The air inlet holes 2104 and the impurity removal cloth bags 2105 are both arranged in a plurality of circumferential arrays with respect to the center point of the filter cartridge 2103. Moreover, the connecting shaft 2106 on the side of the filter cartridge 2103 penetrates and extends out of the heating cover 2101. Pulley wheels 2114 are fixedly installed on one end of the connecting shaft 2106 extending out of the heating cover 2101 and the output end of the drive motor 5. Moreover, a belt is connected between the two pulley wheels 2114. A compression spring 2115 is connected between the adapter rod 2108 and the scraping plate 2111. Moreover, the adapter rod 2108 and the scraping plate 2111 form an elastic telescopic structure through the compression spring 2115. Moreover, the compression spring 2115 is arranged in the sliding groove 2110. An inclined surface corresponding to the trapezoidal block 2113 is formed at the bottom end of the scraping plate 2111. Moreover, a plurality of trapezoidal blocks 2113 are arranged in a circumferential array with respect to the filter cartridge 2103. The filtering mechanism 21 further includes a reciprocating lead screw 2116. The reciprocating lead screw 2116 is rotatably arranged in the filter cartridge 2103. A heat-resistant rubber 2117 is fixedly connected between the reciprocating lead screw 2116 and the inner wall of the filter cartridge 2103. Moreover, a pull rod 2118 is fixedly installed on the side wall of the heat-resistant rubber 2117. Moreover, one end of the pull rod 2118 away from the heat-resistant rubber 2117 is fixedly connected to a threaded sleeve rod 2119. A connection groove 2120 is formed in the reciprocating lead screw 2116. A sliding rod 2121 is slidably connected in the connection groove 2120. Moreover, one end of the sliding rod 2121 penetrates and extends out of the reciprocating lead screw 2116 and is fixedly connected to a plug 2122. Moreover, an air outlet pipe 2123 is fixedly connected to the outer wall of the filter cartridge 2103 on the side of the plug 2122. A side pipe 2125 is fixedly connected to the air outlet pipe 2123. Moreover, one end of the side pipe 2125 away from the air outlet pipe 2123 is connected to the device body 1.The threaded sleeve rod 2119 is threadedly sleeved on the outer wall of the reciprocating lead screw 2116. One end of the reciprocating lead screw 2116 penetrates through and extends out of the filter cartridge 2103 and is fixedly connected to the connecting shaft 2106. A tension spring 2124 is connected between the connecting groove 2120 and the slide rod 2121, and the connecting groove 2120 and the slide rod 2121 form an elastic telescopic structure through the tension spring 2124. The sealing plug 2122 is arranged in a frustum structure, and the sealing plug 2122 is in concave-convex fit with the air outlet end of the filter cartridge 2103. Three side pipes 2125 are arranged in an array, and the air outlet pipe 2123 is communicated with the device body 1 through the side pipes 2125. The air outlet ends of the three side pipes 2125 correspond to the first ventilation holes 801 one by one. Inside the controller 22, there are a temperature acquisition module, a temperature comparison module and a control module. The temperature acquisition module is electrically connected to the temperature sensor 23 and is used to collect the temperature inside the device body 1. The temperature acquisition module is used to compare the temperature data collected by the temperature sensor 23 and judge the high and low temperature differences. The control module is electrically connected to the electric push rod 14 and is used to execute the closing and opening operations of the electric push rod 14 according to the instructions issued by the temperature comparison module.,

[0052] In this technical solution, as Figure 11 shown, by setting the reciprocating lead screw 2116 and the threaded sleeve rod 2119, when the reciprocating lead screw 2116 rotates, it will engage and drive the threaded sleeve rod 2119 to reciprocate. The threaded sleeve rod 2119 will pull the heat-resistant rubber 2117 to deform through the pull rod 2118, so as to generate negative pressure inside the filter cartridge 2103, which helps to accelerate the circulation of the gas inside the device body 1. And the gas will pass through the impurity removal cloth bag 2105 during the circulation process, realizing effective dust removal and purification, and improving the air quality.

[0053] It adopts as Figure 12 and Figures 7 - 10In the technical solution shown, first, when the driving motor 5 rotates, it drives the pulley 2114 to rotate, causing the pulley 2114 to drive the connecting shaft 2106 to rotate synchronously through the belt. The connecting shaft 2106 drives the guide fan 2107 to rotate, thereby sucking the gas through the hot gas channel 2102. At the same time, the connecting shaft 2106 drives the connecting rod 2108 to rotate, causing the connecting rod 2108 to drive the rotating sleeve 2109, the scraper 2111, and the adsorption plate 2112 to rotate synchronously, enabling the adsorption plate 2112 to adsorb the impurities in the gas. At the same time, the scraper 2111 rotates along the outer surface of the filter cartridge 2103. Immediately after the scraper 2111 contacts the trapezoidal block 2113, it slides upward along the inclined surface of the trapezoidal block 2113, thereby driving the scraper 2111 to move synchronously. At the same time, the scraper 2111 squeezes the compression spring 2115 to contract. Immediately after the scraper 2111 separates from the trapezoidal block 2113, the scraper 2111 moves back under the elastic force of the compression spring 2115. This process repeats, causing the scraper 2111 to strike the filter cartridge 2103 to generate vibrations, shaking off the impurities on the adsorption plate 2112;

[0054] When the connecting shaft 2106 rotates, it drives the reciprocating lead screw 2116 to rotate synchronously. Under the threaded engagement connection, the reciprocating lead screw 2116 drives the threaded sleeve rod 2119 to move. The threaded sleeve rod 2119 pulls the pull rod 2118, causing the pull rod 2118 to pull the heat-resistant rubber 2117 to deform. After the heat-resistant rubber 2117 deforms outward, the gas between the heating cover 2101 and the filter cartridge 2103 at this time passes through the impurity removal cloth bag 2105 and enters the filter cartridge 2103. The sealing plug 2122 fits with the air outlet end of the filter cartridge 2103 under the elastic force of the tension spring 2124. Immediately during the return movement, the stretched heat-resistant rubber 2117 pushes the sealing plug 2122 to move, causing the sealing plug 2122 to drive the slide rod 2121 to slide along the connecting groove 2120, thereby stretching the tension spring 2124 and opening the air outlet end of the filter cartridge 2103, allowing the gas to enter the air outlet pipe 2123 and then flow back to the device body 1 through the side pipe 2125, thus enabling the gas in the device body 1 to circulate;

[0055] Through the setting of the temperature sensor 23, the temperature inside the device body 1 can be monitored, and the real-time temperature is transmitted to the temperature acquisition module in the controller 22. The temperature comparison module will compare the acquired temperature. When it is monitored that the temperature in the lower part of the device body 1 is low, while the temperature in the upper part is too high and the temperature difference exceeds the threshold, at this time, the control module will control the electric push rod 14 to start, so that the electric push rod 14 drives the inner shaft 15 to move. At this time, the second ventilation hole 16 at the bottommost end of the inner shaft 15 is aligned with the first ventilation hole 801 at the bottommost end of the sleeve rod 8, and the two first ventilation holes 801 and the second ventilation hole 16 located above are misaligned. Then, the air flow inside the device body 1 enters the inner shaft 15 from the first ventilation hole 801 at the bottom end, and then enters the hot air channel 2102 from the inner shaft 15, so that the hot air in the upper and middle layers of the device body 1 flows downward, ensuring that the temperature inside the device body 1 always remains within a suitable range. Similarly, when it is monitored that the temperature in the upper layer area is the lowest, at this time, the first ventilation hole 801 and the second ventilation hole 16 above are aligned, while the other two first ventilation holes 801 and the second ventilation hole 16 are in a misaligned state, so that the gas inside the device body 1 can only flow out from the first ventilation hole 801 and the second ventilation hole 16 above, ensuring that the temperature inside the device body 1 always remains within a suitable range.

[0056] The content not described in detail in this specification belongs to the prior art well-known to those skilled in the art.

[0057] Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements on some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. A homogeneous treatment control device for glass cup production, comprising a device body, wherein support legs are fixedly installed at the bottom end of the device body, a cabinet door is hinged to the side wall of the device body, and a heating device is arranged on the inner wall of the device body; characterized in that, Further included are: A support plate, fixedly arranged at the top end of the device body. A driving motor is fixedly installed on the device body below the support plate, and a half gear is fixedly installed at the output end of the driving motor. A triangular plate, fixedly arranged at the inner top end of the device body. A guide groove is formed in the triangular plate, and a rotating block is rotatably installed inside the triangular plate on the side of the guide groove. A sleeve rod is rotatably installed on the triangular plate, and a driving gear is fixedly nested and connected to the outer side of the sleeve rod. A first ventilation hole is formed in the sleeve rod, and the top end of the sleeve rod penetrates through the device body and a disc is fixedly nested and connected to the outer wall of the extended end of the sleeve rod. Tooth blocks are arranged on the disc. A bracket, fixedly arranged on the device body on the side of the disc. An electric push rod is fixedly connected to the bracket, and a controller is fixedly installed on the device body on the side of the electric push rod. The output end of the electric push rod is rotatably connected to an inner shaft, and a second ventilation hole is formed in the inner shaft. Three elliptical gears, all three elliptical gears are arranged inside the device body below the triangular plate. A guide rod is fixedly installed on the elliptical gear, and one end of the guide rod far away from the elliptical gear extends into the guide groove. A cup tray is fixedly installed at the bottom end of the elliptical gear. A filtering mechanism, arranged on the support plate, used for cleaning impurities in the hot air. A temperature sensor, fixedly installed on the cabinet door. The filtering mechanism includes a heating cover, a hot air channel, a filter cylinder, an air inlet hole, an impurity removal cloth bag, a connecting shaft, a guide fan, a connecting rod, a rotating sleeve, a sliding groove, a scraping plate, an adsorption plate and a trapezoidal block. The heating cover, fixedly arranged on the support plate. The outer wall of the heating cover is fixedly connected to the hot air channel, and one end of the hot air channel far away from the heating cover is rotatably connected to the sleeve rod, and the sleeve rod is communicated with the heating cover through the hot air channel. The filter cylinder, fixedly arranged inside the heating cover. An air inlet hole is formed in the filter cylinder, and an impurity removal cloth bag is fixedly installed in the air inlet hole. A connecting shaft is fixedly installed on the side wall of the filter cylinder, and a guide fan is fixedly nested and connected to the outer wall of the connecting shaft. A connecting rod is fixedly installed on the connecting shaft on the side of the guide fan. The rotating sleeve, rotatably arranged on the outer wall of the filter cylinder. Sliding grooves are formed on the side walls of the opposite sides of the rotating sleeve and the connecting rod, and a scraping plate is slidably installed in the sliding groove. An adsorption plate is fixedly installed on the scraping plate. The trapezoidal block, fixedly installed on the outer wall of the filter cylinder.

2. The homogenization treatment control device for the production of glass cups according to claim 1, wherein: The half gear is located above the disc, and a plurality of tooth blocks are arranged in a circumferential array with respect to the center point of the disc, and the tooth blocks are meshed with the half gear.

3. The homogenization treatment control device for the production of glass cups according to claim 1, wherein: The guide groove is arranged in a triangular structure, and the guide rod is slidably connected to the guide groove. Two guide rods are symmetrically arranged with respect to the elliptical gear. The three elliptical gears correspond to the three sides of the guide groove one by one, and the elliptical gears are all meshed with the driving gear. The rotating block on the side of the guide groove corresponds to the guide rod, and a torsion spring for providing a restoring elastic force is connected between the guide rod and the triangular plate.

4. The homogenization treatment control device for glass cup production according to claim 1, characterized in that: Both the sleeve rod and the inner shaft are arranged in a hollow structure, and the inner shaft is slidably arranged inside the sleeve rod. The second ventilation hole on the inner shaft corresponds to the first ventilation hole on the sleeve rod, and both the second ventilation hole and the first ventilation hole are arranged in a plurality of arrays.

5. The homogenization treatment control device for the production of glass cups according to claim 1, characterized in that: The intake holes and the impurity removal cloth bags are both arranged in a plurality of circumferential arrays with respect to the center point of the filter cartridge, and the connecting shaft on the side of the filter cartridge penetrates and extends out of the heating cover. A pulley is fixedly installed at one end of the connecting shaft extending out of the heating cover and at the output end of the driving motor, and a belt is connected between the two pulleys.

6. The homogenization treatment control device for glass cup production according to claim 5, wherein: A compression spring is connected between the connecting rod and the scraper, and the connecting rod and the scraper form an elastic telescopic structure through the compression spring, and the compression spring is arranged in the chute. An inclined surface corresponding to the trapezoidal block is opened at the bottom end of the scraper, and a plurality of trapezoidal blocks are arranged in a circumferential array with respect to the filter cartridge.

7. A homogenization treatment control device for the production of glass cups according to claim 1, characterized in that: The filtering mechanism further includes a reciprocating screw rod, heat-resistant rubber, a pull rod, a threaded sleeve rod, a connecting groove, a sliding rod, a sealing plug, an air outlet pipe, a tension spring and a side pipe; The reciprocating screw rod is rotatably arranged in the filter cartridge. Heat-resistant rubber is fixedly connected between the reciprocating screw rod and the inner wall of the filter cartridge. A pull rod is fixedly installed on the side wall of the heat-resistant rubber, and a threaded sleeve rod is fixedly connected to the end of the pull rod away from the heat-resistant rubber; A connecting groove is opened in the reciprocating screw rod. A sliding rod is slidably connected in the connecting groove. One end of the sliding rod penetrates and extends out of the reciprocating screw rod and is fixedly connected to the sealing plug. An air outlet pipe is fixedly connected to the outer wall of the filter cartridge on the side of the sealing plug. A side pipe is fixedly connected to the air outlet pipe, and one end of the side pipe away from the air outlet pipe is connected to the device body.

8. The homogenization treatment control device for the production of glass cups according to claim 7, characterized in that: The threaded sleeve rod is threadedly sleeved on the outer wall of the reciprocating screw rod. One end of the reciprocating screw rod penetrates and extends out of the filter cartridge and is fixedly connected to the connecting shaft. A tension spring is connected between the connecting groove and the sliding rod, and the connecting groove and the sliding rod form an elastic telescopic structure through the tension spring. The sealing plug is arranged in a frustum structure, and the sealing plug is in concave-convex fit with the air outlet end of the filter cartridge. Three side pipes are arranged in an array, and the air outlet pipe is communicated with the device body through the side pipes. The air outlet ends of the three side pipes correspond to the first ventilation holes one by one.

9. The homogenization treatment control device for the production of glass cups according to claim 1, characterized in that: A temperature acquisition module, a temperature comparison module and a control module are arranged inside the controller. The temperature acquisition module is electrically connected to the temperature sensor and is used to acquire the temperature inside the device body. The temperature acquisition module is used to compare the temperature data collected by the temperature sensor and judge the high and low temperature difference. The control module is electrically connected to the electric push rod and is used to execute the closing and opening operations of the electric push rod according to the instructions issued by the temperature comparison module.

Citation Information

Patent Citations

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    CN213835055U

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