Compressed air pipe network device for float glass

By designing a compressed air pipe network device for float glass with multi-channel storage, the existing equipment has been solved, and the existing equipment is inefficient and inability to be repurposed are achieved, and the efficient multi-channel storage and secondary purification of compressed air is achieved, which improves the efficiency of equipment usage and product quality.

CN222923047UActive Publication Date: 2025-05-30SHAANXI CNG NEW TECH LTD
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Patent Information

Application Number
CN202421931407.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-09
Publication Date
2025-05-30
Estimated Expiration
2034-08-09

AI Technical Summary

Technical Problem

The existing compressed air pipeline equipment has a single air outlet channel in the float glass production line that cannot achieve batch storage and storage, is low in efficiency, and cannot undergo secondary purification, which affects the use effect.

Method used

A compressed air pipe network device for float glass is designed, adopting a multi-channel storage design, including a pressure ring, a gas storage tank, a base and a chassis. Multiple filtration, drying and cooling of compressed air is achieved through components such as filter cartridges, water-cooled rings and solenoid valves, and batch filling of multiple gas storage tanks is achieved through hydraulic rods and docking pipes.

Benefits of technology

It realizes efficient multi-channel storage and secondary purification of compressed air, improves the efficiency of equipment and product quality, and ensures the stable operation of the production line.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of compressed air, in particular to a compressed air pipe network device for float glass. According to the technical scheme, the device comprises a pressing ring, a gas storage tank, a base and a chassis, a water cooling ring is fixed to the middle of the upper end face of the chassis, supports are distributed on the outer side of the upper end face of the chassis in an annular array mode, the upper ends of the supports are fixed to the lower end face of the base, and a bottom box is fixed to the middle of the lower end face of the base; connecting boxes are distributed on the lower end face of the base in an annular array mode, side grooves are formed in the upper end of the outer side of the base in an annular array mode, butt joint pipes are installed at the inner bottom ends of the side grooves in a penetrating mode, the gas storage tank is installed in the side grooves, a filter cartridge is installed in the middle of the upper end face of the base in an embedded mode, and a filter screen is arranged at the inner upper end of the filter cartridge. A built-in box is arranged at the bottom end in the filter cartridge, and a mesh enclosure is arranged in the middle of the bottom end in the built-in box. The multi-channel compressed air storage device has the advantages of multi-channel storage, high efficiency, secondary purification of compressed air and guarantee of use quality.
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Description

Technical Field

[0001] The utility model relates to the technical field of compressed air, in particular to a compressed air pipe network device for float glass. Background Technique

[0002] The compressed air pipe network device in the float glass production line is an important link to ensure the stable operation of the production line and the product quality.

[0003] The compressed air drying and purification equipment plays a crucial role in the float glass production line. Its main function is to dry and purify the compressed air to ensure that the quality of the compressed air entering the production line meets the standards, thereby ensuring the stable operation of the production line and the product quality. The existing compressed air pipe network equipment needs to process the compressed air and then store it centrally. The single air passage of the existing equipment cannot achieve batch storage and acceptance, with low efficiency; moreover, the existing equipment cannot purify the compressed air for the second time, affecting the use effect. Summary of the Utility Model

[0004] The purpose of the utility model is to provide a compressed air pipe network device for float glass, which has the advantages of multi-channel storage, high efficiency and secondary purification of compressed air to ensure the use quality, and solves the problems in the above background technique.

[0005] To achieve the above purpose, the utility model provides the following technical solution: A compressed air pipe network device for float glass, including a pressure ring, an air storage tank, a base and a chassis. In the middle of the upper end surface of the chassis, a water cooling ring is fixed. On the outer side of the upper end surface of the chassis, brackets are annularly and arrayedly distributed, and the upper ends of the brackets are fixed to the lower end surface of the base. In the middle of the lower end surface of the base, a bottom box is fixed. On the lower end surface of the base, connection boxes are annularly and arrayedly distributed. On the upper outer side of the base, side grooves are annularly and arrayedly opened, and a butt joint pipe is installed through the bottom end of the inner side of the side groove. The air storage tank is installed in the side groove. In the middle of the upper end surface of the base, a filter cylinder is embedded. At the upper end inside the filter cylinder, a filter screen is provided. At the bottom end inside the filter cylinder, an inner box is provided, and in the middle of the bottom end inside the inner box, a mesh cover is provided. The pressure ring is located above the base.

[0006] When using a compressed air pipe network device for float glass in this technical solution, the compressed air discharged from the compressed air pump is introduced into the filter cylinder through the air inlet pipe. After the compressed air enters, impurities in the gas are filtered through the filter screen. The filtered gas passes through the carbon powder packet filled inside the built-in box to absorb moisture in the gas, reducing the moisture content. Then, the dried gas is introduced into the insertion tube through the wire mesh cover, and then injected into the bottom box through the insertion tube. Heat exchange is carried out through the coolant flowing in the water cooling ring to cool the bottom box and reduce the heat of the compressed air inside. Then, the corresponding solenoid valve is opened to start the corresponding conduit path. The compressed air is introduced into the connection box through the corresponding conduit, and then injected into the corresponding air storage tank through the docking pipe. The design of multiple air storage tanks and the passage enables the filling of multiple air storage tanks in a single processing, improving efficiency. After processing, the operator closes the valve at the lower opening of the air storage tank, and then starts the hydraulic rod to drive the pressure ring to lift, and then lifts the air storage tank upward to separate it from the docking pipe.

[0007] Preferably, anti-slip pads are fixed on the outer side of the lower end surface of the chassis. There are four anti-slip pads in total, and the four anti-slip pads are arranged in an array. Anti-slip pads are fixed at the lower ends of the anti-slip pads. The chassis is placed and supported through the anti-slip pads, and the anti-slip pads increase the friction force to ensure the stability of the support.

[0008] Preferably, the water cooling ring is sleeved on the outer side of the lower end of the bottom box, and water inlet and outlet ports are provided at the rear end of the water cooling ring. The circulation of the coolant in the water cooling ring is realized through the water inlet and outlet ports, and heat exchange is carried out by the water cooling ring fitting the bottom box to reduce the temperature of the compressed air in the bottom box.

[0009] Preferably, the connection box is communicated with the inside of the bottom box through a conduit, and a solenoid valve is provided on the conduit. The solenoid valve is started to open the path of the corresponding conduit, so that the compressed air in the bottom box is injected into the connection box through the conduit.

[0010] Preferably, the lower end of the docking pipe is communicated with the inside of the connection box, and the lower opening of the air storage tank is threadedly connected to the upper end of the docking pipe. The compressed air in the connection box is injected into the corresponding air storage tank through the docking pipe.

[0011] Preferably, an insertion tube is installed through the middle of the lower end surface of the filter cylinder. The lower end of the insertion tube is communicated with the inside of the bottom box, and the upper end of the insertion tube is connected inside the wire mesh cover. The compressed air passing through the inside of the filter cylinder is injected into the bottom box through the insertion tube.

[0012] Preferably, hydraulic rods are annularly and arrayedly distributed on the outer side of the upper end surface of the base, and the hydraulic rods are misaligned with the side grooves. The misaligned distribution realizes the reasonable distribution of the hydraulic rods.

[0013] Preferably, the upper end of the hydraulic rod is fixed under the pressure ring, and the pressure ring fits the upper end surface of the air storage tank. The hydraulic rod drives the pressure ring to lift and lower, and the pressure ring presses down to position the air storage tank.

[0014] Compared with the prior art, the beneficial effects of the utility model are as follows: the operator starts the device through an external control device after the external power supply is connected, and the compressed air discharged from the compressed air pump is introduced into the filter cartridge through the air inlet pipe. After the compressed air enters, the impurities in the gas are filtered through the filter screen. After filtration, the gas passes through the carbon powder bag filled in the built-in box to absorb the moisture in the gas, thereby reducing the moisture content. After drying, the gas is introduced into the cannula through the mesh cover, and then injected into the bottom box through the cannula. The coolant circulating in the water cooling ring is used for heat exchange, the bottom box is cooled down, and the heat of the internal compressed air is reduced. Then, the corresponding The solenoid valve starts the corresponding conduit passage, and the compressed air is introduced into the connecting box through the corresponding conduit, and then injected into the corresponding air tank through the docking tube. Multiple air tanks and passages are designed, and a single processing can realize the filling of multiple air tanks, thereby improving efficiency. After the processing is completed, the valve at the lower end of the air tank is manually closed, and then the hydraulic rod is started to drive the pressure ring to lift, and then the air tank is lifted upward to separate it from the docking tube. The device has a simple structure and is easy to operate. Through the multi-channel design, a single processing can be used for batch production with high efficiency. At the same time, it has a built-in secondary purification operation, which can filter, dry and cool the compressed air, and is highly practical. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 This is a schematic diagram of the main structure of the utility model;

[0016] Figure 2 This is a schematic diagram of the base structure of the utility model;

[0017] Figure 3 This is a schematic diagram of the structure of the base of the utility model when viewed from above;

[0018] Figure 4 This is a schematic diagram of the cross-sectional structure of the filter cartridge of the utility model;

[0019] Figure 5 This is a schematic diagram of the chassis structure of the utility model.

[0020] In the figure: 1. pressure ring; 2. air storage tank; 3. base; 4. side groove; 5. chassis; 6. foot pad; 7. bracket; 8. filter cartridge; 9. air inlet pipe; 10. top cover; 11. water cooling ring; 12. butt pipe; 13. hydraulic rod; 14. connection box; 15. bottom box; 16. conduit; 17. built-in box; 18. intubation; 19. mesh cover; 20. filter screen. DETAILED DESCRIPTION

[0021] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.

[0022] Embodiment 1

[0023] Please refer to Figures 1 to 5 , the present utility model provides an embodiment: a compressed air pipe network device for float glass, including a pressure ring 1, an air storage tank 2, a base 3 and a chassis 5. A water-cooled ring 11 is fixed in the middle of the upper end surface of the chassis 5. Brackets 7 are annularly and arrayedly distributed on the outer side of the upper end surface of the chassis 5, and the upper ends of the brackets 7 are fixed to the lower end surface of the base 3. A bottom box 15 is fixed in the middle of the lower end surface of the base 3. Connection boxes 14 are annularly and arrayedly distributed on the lower end surface of the base 3. Side grooves 4 are annularly and arrayedly opened at the upper outer side of the base 3, and a docking pipe 12 is installed through the bottom end of the inside of the side groove 4.

[0024] Furthermore,

[0025] Anti-slip pads are fixed to the outer side of the lower end surface of the chassis 5. There are four anti-slip pads in total, and the four anti-slip pads are arrayedly distributed. Anti-slip pads are fixed to the lower ends of the anti-slip pads. The placement and support of the chassis 5 are realized through the anti-slip pads, and the anti-slip pads improve the friction force to ensure the stability of the support.

[0026] Furthermore,

[0027] The water-cooled ring 11 is sleeved on the outer lower side of the bottom box 15. An inlet and outlet for water are provided at the rear end of the water-cooled ring 11. The circulation of the coolant in the water-cooled ring 11 is realized through the inlet and outlet for water. Heat exchange is carried out by the water-cooled ring 11 in contact with the bottom box 15 to reduce the temperature of the compressed air in the bottom box 15.

[0028] Furthermore,

[0029] The connection box 14 is communicated with the inside of the bottom box 15 through a conduit 16, and a solenoid valve is provided on the conduit 16. The solenoid valve is started to open the passage of the corresponding conduit 16, so that the compressed air in the bottom box 15 is injected into the connection box 14 through the conduit 16.

[0030] Embodiment 2

[0031] Please refer to Figures 1 to 5, the present utility model provides an embodiment: a compressed gas pipeline device for float glass, including a pressure ring 1, an air storage tank 2, a base 3 and a chassis 5. The air storage tank 2 is installed in a side groove 4. In the middle of the upper end surface of the base 3, a filter cylinder 8 is embedded. At the upper end inside the filter cylinder 8, a filter screen 20 is provided. At the bottom end inside the filter cylinder 8, an inner box 17 is provided, and in the middle of the bottom end inside the inner box 17, a mesh cover 19 is provided. The pressure ring 1 is located above the base 3.

[0032] Further,

[0033] The lower end of the docking pipe 12 communicates with the inside of the connection box 14, and the upper end of the docking pipe 12 is threadedly connected to the lower opening of the air storage tank 2. Compressed air in the connection box 14 is injected into the corresponding air storage tank 2 through the docking pipe 12.

[0034] Further,

[0035] In the middle of the lower end surface of the filter cylinder 8, an insertion pipe 18 is installed through. The lower end of the insertion pipe 18 communicates with the inside of the bottom box 15, and the upper end of the insertion pipe 18 is connected inside the mesh cover 19. Compressed air passing through the inside of the filter cylinder 8 is injected into the bottom box 15 through the insertion pipe 18.

[0036] Further,

[0037] On the outer side of the upper end surface of the base 3, hydraulic rods 13 are annularly and arrayedly distributed. The hydraulic rods 13 are misaligned with the side groove 4, and the misaligned distribution realizes the reasonable distribution of the hydraulic rods 13.

[0038] Further,

[0039] The upper ends of the hydraulic rods 13 are fixed under the pressure ring 1, and the pressure ring 1 fits the upper end surface of the air storage tank 2. The pressure ring 1 is driven by the hydraulic rods 13 to lift and lower, and the pressure ring 1 presses down to position the air storage tank 2.

[0040] During the operation of the utility model, it is powered by an external power supply. The operator starts the device through an external control device, and introduces the compressed air discharged by the compressed air pump into the filter cartridge 8 through the air inlet pipe 9. After the compressed air enters, impurities in the gas are filtered through the filter screen 20. The filtered gas absorbs moisture in the gas through the carbon powder package filled inside the built-in box 17 to reduce the moisture content. Then, the dried gas is introduced into the insertion tube 18 through the mesh cover 19, and then injected into the bottom box 15 through the insertion tube 18. Heat exchange is carried out through the coolant flowing in the water cooling ring 11 to cool the bottom box 15 and reduce the heat of the compressed air inside. Then, the corresponding solenoid valve is opened to start the corresponding conduit 16 passage. The compressed air is introduced into the connection box 14 through the corresponding conduit 16, and then injected into the corresponding gas storage tank 2 through the docking pipe 12. Multiple gas storage tanks 2 are designed with passages, and multiple gas storage tanks 2 can be filled in a single processing to improve efficiency. After the processing is completed, the operator closes the valve at the lower opening of the gas storage tank 2 manually, and then starts the hydraulic rod 13 to drive the pressing ring 1 to lift, and then lifts the gas storage tank 2 upward to separate it from the docking pipe 12.

[0041] Although the embodiments of the present utility model have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present utility model. The scope of the present utility model is defined by the appended claims and their equivalents.

Claims

1. A compressed air pipe network device for float glass, comprising a pressure ring (1), a gas storage tank (2), a base (3) and a bottom plate (5), characterized in that: A water cooling ring (11) is fixed in the middle of the upper end surface of the chassis (5), brackets (7) are distributed in a circular array on the outer side of the upper end surface of the chassis (5), and the upper end of the bracket (7) is fixed to the lower end surface of the base (3), a bottom box (15) is fixed in the middle of the lower end surface of the base (3), and connection boxes (14) are distributed in a circular array on the lower end surface of the base (3), and side grooves (4) are opened in a circular array on the upper end of the outer side of the base (3), and the side grooves ( 4) is penetrated by a butt joint pipe (12), the gas storage tank (2) is installed in the side groove (4), a filter cartridge (8) is embedded and installed in the middle of the upper end surface of the base (3), a filter screen (20) is provided at the inner upper end of the filter cartridge (8), a built-in box (17) is provided at the inner bottom end of the filter cartridge (8), and a mesh cover (19) is provided at the middle of the inner bottom end of the built-in box (17), and the pressure ring (1) is located on the upper side of the base (3).

2. The compressed air pipe network device for float glass according to claim 1, characterized in that: A foot pad (6) is fixed to the outer side of the lower end surface of the chassis (5), and a total of four foot pads (6) are provided, and the four foot pads (6) are distributed in an array, and an anti-slip pad is fixed to the lower end of the foot pad (6).

3. The compressed air pipe network device for float glass according to claim 1, characterized in that: The water cooling ring (11) is sleeved on the lower end of the outer side of the bottom box (15), and a water inlet and outlet are arranged at the rear end of the water cooling ring (11).

4. The compressed air pipe network device for float glass according to claim 1, characterized in that: The connection box (14) is connected to the interior of the base box (15) via a conduit (16), and a solenoid valve is provided on the conduit (16).

5. The compressed air pipe network device for float glass according to claim 1, characterized in that: The lower end of the butt-joint pipe (12) is connected to the interior of the connection box (14), and the lower end opening of the gas storage tank (2) is threadedly connected to the upper end of the butt-joint pipe (12).

6. The compressed air pipe network device for float glass according to claim 1, characterized in that: A plug (18) is installed through the middle of the lower end surface of the filter cylinder (8), the lower end of the plug (18) is connected to the inside of the bottom box (15), and the upper end of the plug (18) is connected to the inside of the mesh cover (19).

7. The compressed air pipe network device for float glass according to claim 1, characterized in that: Hydraulic rods (13) are distributed in a circular array on the outer side of the upper end surface of the base (3), and the hydraulic rods (13) are distributed in a staggered manner with the side grooves (4).

8. The compressed air pipe network device for float glass according to claim 7, characterized in that: The upper end of the hydraulic rod (13) is fixed to the lower side of the pressure ring (1), and the pressure ring (1) is in contact with the upper end surface of the gas storage tank (2).