Continuous feeding assembly for molecular sieves
By designing the molecular sieve continuous loading assembly during the hollow glass production process, and using rotating stirring blades and transmission bevel gear transmission technology, the problem of molecular sieve clustering and blocking the discharge port due to water absorption is solved, and the continuous loading is achieved.
Patent Information
- Application Number
- CN202421532031.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-01
- Publication Date
- 2025-06-03
- Estimated Expiration
- 2034-07-01
AI Technical Summary
During the production of hollow glass, molecular sieves are agglomerated in the filling barrel due to their water absorption, blocking the discharge port, affecting the continuity of discharge.
A molecular sieve continuous loading assembly is designed, including a molecular filling machine, a loading part and a stirring part. By providing rotating stirring blades a and b in the filling tank and driving through the transmission bevel gear, the stirring blades a and b are rotated in the filling tank, with the opposite rotation direction, staggered and inclined angles, to dissipate the clumping molecular sieve.
Through the rotation of the stirring blades, the molecular sieve clusters in the filling tank can be effectively dispersed, ensuring the continuity of feeding, and avoiding the problem of the molecular sieve blocking the discharge port due to water absorption.
Smart Images

Figure CN222930639U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of insulating glass production, in particular to a molecular sieve continuous feeding assembly. Background Art
[0002] Molecular sieve refers to a class of substances with micropores of molecular size. Chemically synthesized molecular sieve is a powdery solid. Due to requirements in aspects such as dust and strength, the directly synthesized molecular sieve powder cannot be directly applied. The actually used molecular sieve products are spherical particles obtained by mixing chemically synthesized molecular sieve powder and a binder. Usually, when producing insulating glass, aluminum spacer bars are needed to separate two or more pieces of glass, and they are connected by sealant. Before hermetically connecting two or more pieces of glass, holes need to be drilled in the aluminum spacer bars, and molecular sieve adsorbent materials are poured into the hollow-structured aluminum spacer bars to adsorb moisture in the air layer inside the insulating glass and ensure the performance of the insulating glass.
[0003] During the use of the molecular sieve continuous feeding assembly, in the process of molecular sieve, due to the water absorption of the molecular sieve, the molecular sieve located in the filling barrel will agglomerate due to absorbing moisture, and the agglomerated molecular sieve will block the discharge port, affecting the continuity of discharging. Summary of the Utility Model
[0004] The purpose of the utility model is to provide a molecular sieve continuous feeding assembly to solve the problem that in the process of filling molecular sieve, due to the water absorption of the molecular sieve, the molecular sieve located in the filling barrel will agglomerate due to absorbing moisture, block the discharge port, and affect the continuity of discharging.
[0005] To achieve the above purpose, the utility model provides the following technical scheme: A molecular sieve continuous feeding assembly includes a molecular filling machine, a feeding part, and a stirring part:
[0006] A filling part for filling is arranged at the top of the molecular filling machine. The feeding part is arranged inside the molecular filling machine. The feeding part includes a feeding tank arranged on one side of the molecular filling machine and a vacuum feeder arranged inside the molecular filling machine. The stirring part is arranged inside the feeding tank. The stirring part includes a stirring blade a arranged inside the feeding tank and a stirring blade b arranged inside the feeding tank.
[0007] By adopting the above technical scheme, the stirring blade a and the stirring blade b arranged inside the feeding tank can rotate inside the feeding tank, so as to be able to disperse the agglomerated molecular sieve inside the feeding tank, thus ensuring the continuity of feeding.
[0008] Preferably, the feeding part includes a feeding tank on one side of the molecular filling machine, a vacuum feeding machine arranged inside the molecular filling machine, and a feeding pipe connected to the vacuum feeding machine. The other end of the feeding pipe is connected to the filling part.
[0009] By adopting the above technical solution, the molecular sieve can be fed into the filling part through the arranged vacuum feeding machine, thus completing the feeding operation.
[0010] Preferably, a feeding port is arranged at the top of the feeding tank, and a discharging port is arranged at the bottom of the feeding tank. The discharging port is connected to the vacuum feeding machine through a connecting pipe.
[0011] By adopting the above technical solution, the molecular sieve can be added into the feeding tank from the feeding port and enter the vacuum feeding machine from the discharging port.
[0012] Preferably, the stirring part includes a driving shaft rotatably arranged inside the feeding tank, a connecting ring rotatably connected to the driving shaft, and a motor arranged at the top end of the feeding tank. A plurality of connecting rings are arranged. The driving shaft passes through the plurality of connecting rings and is rotatably connected to them. The output end of the motor is connected to the driving shaft, and the motor provides power for the driving shaft.
[0013] By adopting the above technical solution, the driving shaft can be driven by the motor to rotate inside the feeding tank, and the connecting ring rotates on the driving shaft.
[0014] Preferably, the stirring part includes stirring blades a arranged on the driving shaft and stirring blades b arranged on the connecting ring. The stirring blades a and the stirring blades b are arranged alternately from top to bottom, and the inclination angles of the stirring blades a and the stirring blades b are opposite.
[0015] By adopting the above technical solution, the stirring blades a and the stirring blades b can rotate inside the feeding tank, so as to be able to break up the agglomerated molecular sieve inside the feeding tank.
[0016] Preferably, the stirring part includes a driving bevel gear arranged at the top end of the driving shaft, a driven bevel gear arranged at the top end of the connecting ring, and a transmission bevel gear arranged at the top of the stirring part. The driving bevel gear is meshed and connected with the transmission bevel gear, the transmission bevel gear is meshed and connected with the driven bevel gear, and the rotation centers of the driving bevel gear and the driven bevel gear are coaxial.
[0017] By adopting the above technical solution, when the driving shaft rotates, the driving bevel gear can drive the transmission bevel gear to rotate, and the rotating transmission bevel gear can drive the driven bevel gear to rotate, thereby making the connecting ring rotate.
[0018] Compared with the prior art, the beneficial effects of the present utility model are:
[0019] 1. By providing a rotating part, the stirring blades a and b arranged inside the filling tank can rotate inside the filling tank, so as to break up the agglomerated molecular sieve inside the filling tank, thus ensuring the continuity of feeding.
[0020] 2. Through the transmission of the driving bevel gears, while the stirring blades a and b rotate inside the filling tank, their rotation directions are opposite. The stirring blades a and b are arranged staggeredly from top to bottom, and the inclination angles of the stirring blades a and b are opposite. By rotating the stirring blades a and b inside the filling tank, the agglomerated molecular sieve inside the filling tank can be broken up. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 It is a schematic diagram of the overall structure of this application;
[0022] Figure 2 It is a schematic diagram of the feeding part structure of this application;
[0023] Figure 3 It is a schematic sectional view of the feeding part of this application;
[0024] Figure 4 It is a schematic diagram of the stirring blade a structure of this application;
[0025] Figure 5 It is a schematic diagram of the stirring blade b structure of this application.
[0026] In the figure: 1. Molecular filling machine; 101. Filling part; 2. Feeding part; 201. Filling tank; 202. Vacuum feeding machine; 203. Feeding pipe; 3. Stirring part; 301. Driving shaft; 302. Stirring blade a; 303. Driving bevel gear; 304. Connecting ring; 305. Stirring blade b; 306. Driven bevel gear; 307. Driving bevel gear; 308. Motor. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0027] 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 efforts shall fall within the protection scope of the present invention.
[0028] Embodiment 1
[0029] Please refer to Figure 1 , Figure 2 and Figure 3, the present utility model provides a technical solution: a molecular sieve continuous feeding assembly, including a molecular filling machine 1, a feeding part 2 and a stirring part 3:
[0030] At the top of the molecular filling machine 1, there is a filling part 101 for filling. Inside the molecular filling machine 1, there is a feeding part 2. The feeding part 2 is connected to the filling part 101 to complete the feeding operation of the molecular sieve for the filling part 101. Inside the feeding part 2, there is a charging tank 201. The charging tank 201 is arranged on one side of the molecular filling machine 1. Inside the molecular filling machine 1, there is a vacuum feeding machine 202. At the top of the charging tank 201, there is a feeding port, and at the bottom of the charging tank 201, there is a discharging port. The discharging port at the bottom of the charging tank 201 is connected to the vacuum feeding machine 202 through a connecting pipe, allowing the molecular sieve to be added into the charging tank 201 from the feeding port and enter the vacuum feeding machine 202 from the discharging port. On one side of the vacuum feeding machine 202, there is a feeding pipe 203. The other end of the feeding pipe 203 is connected to the filling part 101. At the top of the filling part 101, there is a feeding port. The feeding port at the top of the filling part 101 is connected to the discharging port of the feeding pipe 203. The molecular sieve can be fed into the filling part 101 through the provided vacuum feeding machine 202, thus completing the feeding operation. Inside the charging tank 201, there is a stirring part 3. Inside the charging tank 201, there are stirring blades a 302 and stirring blades b 305. The stirring blades a 302 and stirring blades b 305 arranged inside the charging tank 201 can rotate inside the charging tank 201, so as to break up the agglomerated molecular sieve inside the charging tank 201.
[0031] Embodiment 2
[0032] Please refer to Figure 3 , Figure 4 and Figure 5 , the present utility model provides a technical solution: a molecular sieve continuous feeding assembly, including a molecular stirring part 3, a driving shaft 301 and a connecting ring 304:
[0033] The stirring part 3 is arranged inside the charging tank 201. The driving shaft 301 is rotatably arranged inside the charging tank 201. A number of connecting rings 304 are arranged on the surface of the driving shaft 301. The driving shaft 301 passes through a number of connecting rings 304 and is rotatably connected to them. A motor 308 is arranged at the top of the charging tank 201. The output end of the motor 308 is connected to the driving shaft 301. The motor 308 provides power for the driving shaft 301, enabling the driving shaft 301 to be driven by the motor 308 and thus rotate inside the charging tank 201. The connecting ring 304 rotates on the driving shaft 301. A driving bevel gear 303 is arranged at the top of the driving shaft 301, a driven bevel gear 306 is arranged at the top of the connecting ring 304, and a transmission bevel gear 307 is arranged at the top of the charging tank 201. The driving bevel gear 303 is meshed with the transmission bevel gear 307, and the transmission bevel gear 307 is meshed with the driven bevel gear 306. The rotation centers of the driving bevel gear 303 and the driven bevel gear 306 are coaxial. When the driving shaft 301 rotates, the driving bevel gear 303 can drive the transmission bevel gear 307 to rotate, and the rotating transmission bevel gear 307 can drive the driven bevel gear 306 to rotate, thereby making the connecting ring 304 rotate.
[0034] Embodiment III
[0035] Please refer to Figure 3 、 Figure 4 and Figure 5 This utility model provides a technical solution: A molecular sieve continuous feeding assembly, including a molecular stirring part 3, stirring blades a302 and stirring blades b305:
[0036] A number of stirring blades a302 are arranged on the driving shaft 301, and a number of stirring blades b305 are arranged on the connecting ring 304. The stirring blades a302 and the stirring blades b305 are arranged alternately from top to bottom, and the inclination angles of the stirring blades a302 and the stirring blades b305 are opposite. By rotating the stirring blades a302 and the stirring blades b305 inside the charging tank 201, the agglomerated molecular sieve inside the charging tank 201 can be dispersed.
[0037] Working principle: First, molecular sieves are added into the filling tank 201 through the feeding port arranged at the top of the filling tank 201. Then, the molecular sieves are sent to the filling part 101 through the arranged vacuum feeder 202 and the feeding pipe 203 to complete the feeding operation. During the feeding process, the driving shaft 301 is driven to rotate by the motor 308, so that the stirring blade a 302 arranged on the driving shaft 301 can be driven to rotate. When the driving shaft 301 rotates, the driving bevel gear 303 can drive the transmission bevel gear 307 to rotate, and the rotating transmission bevel gear 307 can drive the driven bevel gear 306 to rotate, and then the connecting ring 304 rotates, so that the stirring blade b 305 arranged on the connecting ring 304 also rotates simultaneously, thereby being able to break up the agglomerated molecular sieves inside the filling tank 201, thus ensuring the continuity of feeding;
[0038] Secondly, through the transmission of the arranged transmission bevel gear 307, when the stirring blade a 302 and the stirring blade b 305 rotate inside the filling tank 201, their rotation directions are opposite. The stirring blade a 302 and the stirring blade b 305 are arranged staggered from top to bottom, and the inclination angles of the stirring blade a 302 and the stirring blade b 305 are opposite. The agglomerated molecular sieves inside the filling tank 201 can be broken up by the rotation of the stirring blade a 302 and the stirring blade b 305 inside the filling tank 201.
[0039] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A molecular sieve continuous feeding assembly, characterized in that: include: A molecular filling machine, wherein a filling part for filling is arranged on the top of the molecular filling machine; A feeding part, which is arranged inside the molecular filling machine, and comprises a filling tank arranged on one side of the molecular filling machine and a vacuum feeding machine arranged inside the molecular filling machine; A stirring part is arranged inside the filling tank, and the stirring part includes a stirring blade a arranged inside the filling tank and a stirring blade b arranged inside the filling tank.
2. A molecular sieve continuous feeding assembly according to claim 1, characterized in that: The feeding part comprises a filling tank on one side of the molecular filling machine, a vacuum feeding machine arranged inside the molecular filling machine and a feeding pipe connected to the vacuum feeding machine, and the other end of the feeding pipe is connected to the filling part.
3. A molecular sieve continuous feeding assembly according to claim 1, characterized in that: The top of the filling tank is provided with a material inlet, and the bottom of the filling tank is provided with a material outlet, and the material outlet is connected to the vacuum feeder through a connecting pipe.
4. A molecular sieve continuous feeding assembly according to claim 1, characterized in that: The stirring part includes a driving shaft rotatably arranged inside the filling tank, a connecting ring rotatably connected to the driving shaft, and a motor arranged at the top of the filling tank. There are several connecting rings, and the driving shaft passes through several connecting rings and is rotatably connected to them. The output end of the motor is connected to the driving shaft, and the motor provides power for the driving shaft.
5. A molecular sieve continuous feeding assembly according to claim 4, characterized in that: The stirring part comprises a stirring blade a arranged on the driving shaft and a stirring blade b arranged on the connecting ring. The stirring blade a and the stirring blade b are staggered from top to bottom, and the inclination angles of the stirring blade a and the stirring blade b are opposite.
6. A molecular sieve continuous feeding assembly according to claim 1, characterized in that: The stirring part includes a driving bevel gear arranged at the top of the driving shaft, a driven bevel gear arranged at the top of the connecting ring and a transmission bevel gear arranged at the top of the stirring part. The driving bevel gear is meshed and connected with the transmission bevel gear, and the transmission bevel gear is meshed and connected with the driven bevel gear. The driving bevel gear is coaxial with the rotation center of the driven bevel gear.