Mixed feeding structure of photovoltaic special glass anti-reflection agent

By introducing a rotary drive mechanism and a reciprocating tapping mechanism into the photovoltaic special glass permeable agent mixing equipment, the problems of low mixing efficiency and poor discharge are solved, and efficient raw material mixing and discharge are achieved, and the feeding effect is improved.

CN223170759UActive Publication Date: 2025-08-01LUOYANG HAIHUI NEW MATERIAL CO LTD
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Patent Information

Application Number
CN202422376732.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-29
Publication Date
2025-08-01
Estimated Expiration
2034-09-29

AI Technical Summary

Technical Problem

In the existing mixing equipment for special photovoltaic glass permeability enhancers, the raw material mixing efficiency is low and the discharge effect is poor. Some raw materials are prone to adhere to the inner wall of the equipment, resulting in poor feeding effect.

Method used

The rotary driving mechanism is used to drive the drum to rotate and stir through the stirring shaft. At the same time, after mixing, vibration auxiliary discharge is provided by using the reciprocating tapping mechanism to ensure the sealing of the connection between the feed pipe and the drum.

Benefits of technology

The mixing efficiency is improved, the mixing blind spots are reduced, and the full rolling and movement of the raw materials are ensured. By reciprocating and tapping the auxiliary discharge, efficient raw materials are discharged, avoiding raw materials adhesion and improving the feeding effect.

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Abstract

The utility model relates to a mixing and feeding structure of a special photovoltaic glass anti-reflection agent, which comprises a roller, and further comprises a rotary driving mechanism connected with the roller and used for driving the roller to rotate; the stirring shaft is rotationally mounted in the roller, and one end of the stirring shaft is connected with a second motor; the feeding pipe is connected with an opening formed in one side of the roller in a matched mode, and the feeding pipe is a round pipe; and the reciprocating knocking discharging mechanism is arranged above the roller. The stirring shaft driven by the second motor is arranged in the roller, and meanwhile, the roller can be driven by the rotary driving mechanism to rotate, so that the mixing efficiency is improved; after the materials are mixed, reciprocating knocking is provided for the roller through the reciprocating knocking discharging mechanism, so that the mixed materials are conveniently discharged through vibration.
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Description

Technical Field

[0001] The utility model relates to the field of glass transmittance enhancer production, in particular to a mixed feeding structure of a photovoltaic special glass transmittance enhancer. Background Art

[0002] During the production process of photovoltaic special glass transmittance enhancer, the raw materials are mixed through mixing equipment, and after mixing, the materials are fed out through the discharge port.

[0003] At present, the mixing and feeding structure in the existing technology mixes the raw materials by driving the stirring shaft. However, the mixing efficiency of the raw materials may be poor if the stirring and mixing is performed only by the stirring shaft. Furthermore, after the raw materials are mixed, the raw materials are discharged from the discharge port at the bottom only by gravity, and the discharge effect may be poor. Part of the raw materials may adhere to the inner wall of the mixing equipment, resulting in poor outward feeding effect. Utility Model Content

[0004] In order to solve the technical problem that mixed raw materials are difficult to be discharged outwards, the utility model provides a mixed feeding structure for a photovoltaic special glass transmittance enhancer.

[0005] In order to achieve the above-mentioned purpose, the present invention adopts the following technical solutions:

[0006] The utility model provides a mixed feeding structure for photovoltaic special glass transmittance enhancer, comprising a drum, and also comprising: a rotary drive mechanism, the rotary drive mechanism is connected to the drum, the rotary drive mechanism is used to drive the drum to rotate; a stirring shaft, the stirring shaft is rotatably installed in the interior of the drum, and one end of the stirring shaft is connected to a second motor; a feeding pipe, the feeding pipe is cooperatively connected with an opening arranged on one side of the drum, and the feeding pipe is a round tube; a reciprocating knocking blanking mechanism, the reciprocating knocking blanking mechanism is arranged above the drum.

[0007] In this technical solution, a stirring shaft driven by a second motor is arranged inside the drum, and the drum can be driven by a rotary drive mechanism to rotate, thereby improving the mixing efficiency; after mixing, the drum is provided with reciprocating knocking by the discharge mechanism to vibrate, thereby facilitating the discharge of the mixed materials.

[0008] In the mixed feeding structure of the photovoltaic special glass transmittance enhancer, a sealing ring is provided between the outer wall of the feeding pipe and the inner wall of the drum opening.

[0009] In this technical solution, a sealing ring is designed to provide a seal for the connection between the feed pipe and the drum opening.

[0010] The mixing and feeding structure of the anti-reflection agent for photovoltaic special glass further includes a carrier table. Two first support frames are fixedly installed on the top of the carrier table, and the roller is rotatably connected to the first support frames. An installation frame is fixedly installed on the top surface of the carrier table, and the installation frame is fixedly connected to the second motor. A second support frame is also fixedly installed on the top surface of the carrier table, and the second support frame is fixedly connected to the feed pipe.

[0011] In this technical solution, the first support frames provide installation for the roller, and the second support frame provides installation for the feed pipe.

[0012] For the mixing and feeding structure of the anti-reflection agent for photovoltaic special glass, a feeding port is fixedly communicated with the barrel wall of the roller, and a valve is installed at the lower end of the feeding port.

[0013] In this technical solution, the feeding port is used for discharging the raw materials after mixing, and the opening and closing of the feeding port are controlled by the valve.

[0014] For the mixing and feeding structure of the anti-reflection agent for photovoltaic special glass, a blanking notch is formed on the top surface of the carrier table, and the blanking notch is located below the feeding port.

[0015] In this technical solution, the setting of the blanking notch cancels the blockage of the discharge of the feeding port, and equipment for the next processing step can be arranged below the blanking notch to receive the materials.

[0016] For the mixing and feeding structure of the anti-reflection agent for photovoltaic special glass, an end frame is fixedly installed inside the feed pipe, and the end frame is rotatably connected to the end of the stirring shaft away from the second motor.

[0017] In this technical solution, the end frame provides installation for one end of the stirring shaft.

[0018] For the mixing and feeding structure of the anti-reflection agent for photovoltaic special glass, the rotation driving mechanism includes a first motor, a toothed ring, a gear, a first belt pulley, a second belt pulley and a transmission belt. The first motor is fixedly installed on the side surface of the first support frame. A shaft body is fixedly installed in the middle of the second belt pulley, and the shaft body is rotatably connected to the first support frame. The output shaft end of the first motor is fixedly sleeved with the first belt pulley, the transmission belt is wound between the first belt pulley and the second belt pulley, the gear is fixedly installed on the shaft body, the gear is meshed with the toothed ring, and the toothed ring is fixedly sleeved on the outer wall of the roller.

[0019] In this technical solution, the rotation driving mechanism provides drive for the self-rotation of the roller.

[0020] The mixing and feeding structure of the anti-reflection agent for photovoltaic special glass, wherein the reciprocating knocking and feeding mechanism comprises a fixed frame and a hammer head; the fixed frame is fixedly installed on the tops of the two first support frames, a guide hole is formed in the fixed frame, the guide hole is connected with a movable rod in a matching manner, and the movable rod is arranged vertically. The bottom end of the movable rod is fixedly connected with the hammer head, and the hammer head is located above the roller. The movable rod is elastically connected with the fixed frame, and the top end of the movable rod is connected with a driving part.

[0021] In this technical solution, the reciprocating knocking and feeding mechanism realizes the reciprocating knocking on the top of the roller by driving the hammer head to move up and down reciprocally.

[0022] The mixing and feeding structure of the anti-reflection agent for photovoltaic special glass, wherein a connecting plate is fixedly installed on the movable rod, a spring is arranged at the bottom of the connecting plate, and two ends of the spring are respectively fixedly connected with the bottom surface of the connecting plate and the top surface of the fixed frame, and the spring is sleeved on the movable rod.

[0023] In this technical solution, the elastic installation of the movable rod is realized through the spring.

[0024] The mixing and feeding structure of the anti-reflection agent for photovoltaic special glass, wherein the driving part comprises a third motor, a cam and a movable plate. The housing of the third motor is fixedly connected with a carrier frame, and the carrier frame is fixedly connected with the fixed frame. The output shaft end of the third motor is fixedly connected with the cam, the top of the cam contacts with the bottom surface of the movable plate, and the movable plate is fixedly connected with the top end of the movable rod.

[0025] In this technical solution, the driving part provides the up-and-down reciprocating movement for the movable rod, and then drives the hammer head to move through the movable rod.

[0026] On the basis of conforming to the common knowledge in the field, the above preferred conditions can be combined arbitrarily to obtain various preferred examples of the present invention.

[0027] Due to the adoption of the above technical solution, the present invention has the following beneficial effects:

[0028] The above-mentioned mixing and feeding structure of an anti-reflection agent for photovoltaic special glass drives the stirring shaft to rotate through the second motor to realize the stirring and mixing of raw materials inside the drum. At the same time, the drum is driven to rotate by the rotary drive mechanism. The rotation of the drum can drive the materials to roll and move in all directions, effectively reducing the dead corners of stirring and improving the stirring efficiency. Further, an opening coaxial with the drum is provided on the side of the drum, and the opening is cooperatively connected with the circular feeding pipe to realize feeding without affecting the rotation of the drum, providing convenience for feeding. Moreover, the feeding pipe is fixed on the top surface of the carrier through the second support frame, so that the feeding position is fixed and will not change with the rotation of the drum. Furthermore, a reciprocating knocking and discharging mechanism is provided at the top of the drum. When discharging through the feeding port after mixing, the reciprocating knocking and discharging mechanism can provide reciprocating knocking on the top of the drum to facilitate the discharge of the internal raw materials. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] Figure 1 FIG. 1 is a schematic structural diagram of the whole of the present invention;

[0030] Figure 2 FIG. 2 is a schematic structural diagram of one end of the drum of the present invention away from the opening;

[0031] Figure 3 FIG. 3 is a schematic structural diagram of the inside of the drum of the present invention.

[0032] DESCRIPTION OF THE REFERENCE NUMERALS

[0033] 1, carrier; 101, blanking notch;

[0034] 2, drum; 201, feeding port; 202, valve;

[0035] 3, first support frame;

[0036] 4, feeding pipe;

[0037] 5, second support frame;

[0038] 6, rotary drive mechanism; 601, first motor; 602, toothed ring; 603, gear; 604, first pulley; 605, second pulley; 606, transmission belt;

[0039] 7, second motor;

[0040] 8, reciprocating knocking and discharging mechanism; 801, fixing frame; 8011, guide hole; 802, carrier frame; 803, third motor; 804, movable plate; 805, cam; 806, movable rod; 807, connecting disc; 808, hammer head; 809, spring;

[0041] 9, mounting frame;

[0042] 10, stirring shaft;

[0043] 11. End shelf;

[0044] 12. Sealing ring. Specific implementation manner

[0045] The present utility model can be more detailedly explained through the following embodiments. The present utility model is not limited to the following embodiments. The purpose of disclosing the present utility model is to protect all changes and improvements within the scope of the present utility model;

[0046] As Figures 1-3 shown, a mixing and feeding structure for a light transmittance enhancer for photovoltaic special glass includes a drum 2, and further includes: a rotary drive mechanism 6, the rotary drive mechanism 6 is connected to the drum 2, and the rotary drive mechanism 6 is used to drive the drum 2 to rotate; a stirring shaft 10, the stirring shaft 10 is rotatably installed inside the drum 2, and one end of the stirring shaft 10 is connected to a second motor 7; a feed pipe 4, the feed pipe 4 is connected in cooperation with an opening provided on one side of the drum 2, and the feed pipe 4 is a circular pipe; a reciprocating knocking and feeding mechanism 8, the reciprocating knocking and feeding mechanism 8 is arranged above the drum 2.

[0047] As Figure 3 shown, a sealing ring 12 is provided between the outer wall of the feed pipe 4 and the inner wall of the opening of the drum 2. Through the design of the sealing ring 12, sealing is provided for the connection between the feed pipe 4 and the opening.

[0048] Feeding is carried out through the feed pipe 4. Specifically, the feed pipe 4 can be connected to an external screw conveyor, and the material is fed through the screw conveyor, so that the raw material enters the drum 2 through the feed pipe 4 to realize the feeding of the drum 2.

[0049] As Figure 1 shown, it further includes a carrier 1, two first support frames 3 are fixedly installed on the top of the carrier 1, and the drum 2 is rotatably connected to the first support frames 3; an installation frame 9 is fixedly installed on the top surface of the carrier 1, and the installation frame 9 is fixedly connected to the second motor 7; a second support frame 5 is also fixedly installed on the top surface of the carrier 1, and the second support frame 5 is fixedly connected to the feed pipe 4.

[0050] As Figure 1 shown, a feeding port 201 is fixedly communicated with the barrel wall of the drum 2, and a valve 202 is installed at the lower end of the feeding port 201.

[0051] A feeding notch 101 is opened on the top surface of the carrier 1, and the feeding notch 101 is located below the feeding port 201.

[0052] After the raw materials are mixed, by placing the feeding port 201 below the drum 2 and above the feeding notch 101, as Figure 1as shown

[0053] By opening the valve 202, the mixed material is discharged through the feeding port 201. Equipment for the next processing step, such as a sieving device for sieving the material, can be arranged at the blanking notch 101.

[0054] An end frame 11 is fixedly installed inside the feed pipe 4, and the end frame 11 is rotatably connected to one end of the stirring shaft 10 away from the second motor 7. The end frame 11 provides installation for one end of the stirring shaft 10 away from the second motor 7.

[0055] such as Figures 1-2 As shown, the rotary drive mechanism 6 includes a first motor 601, a toothed ring 602, a gear 603, a first pulley 604, a second pulley 605, and a transmission belt 606; the first motor 601 is fixedly installed on the side of the first support frame 3, a shaft body is fixedly installed in the middle of the second pulley 605, and the shaft body is rotatably connected to the first support frame 3. The output shaft end of the first motor 601 is fixedly sleeved with the first pulley 604, the transmission belt 606 is wound between the first pulley 604 and the second pulley 605, the gear 603 is fixedly installed on the shaft body, the gear 603 is meshed with the toothed ring 602, and the toothed ring 602 is fixedly sleeved on the outer wall of the drum 2.

[0056] After feeding materials into the drum 2, the second motor 7 drives the stirring shaft 10 to rotate to realize the stirring of the raw materials in the drum 2.

[0057] At the same time, the rotary drive mechanism 6 drives the drum 2 to rotate, and the rotation direction is opposite to that of the stirring shaft 10.

[0058] Specifically, the first motor 601 drives the first pulley 604 to rotate, and through the transmission of the transmission belt 606, the second pulley 605, the shaft body, and the gear 603 rotate together. Through the meshing transmission between the gear 603 and the toothed ring 602, the toothed ring 602 and the drum 2 rotate together to realize the self-rotation drive of the drum 2.

[0059] such as Figure 1 As shown, as a specific technical solution, the reciprocating knocking blanking mechanism 8 includes a fixed frame 801 and a hammer head 808; the fixed frame 801 is fixedly installed on the tops of the two first support frames 3. A guide hole 8011 is formed in the fixed frame 801, the guide hole 8011 is connected with a movable rod 806 in a matching manner, and the movable rod 806 is arranged vertically. The bottom end of the movable rod 806 is fixedly connected to the hammer head 808, and the hammer head 808 is located on the top of the drum 2. The movable rod 806 is elastically connected to the fixed frame 801, and the top end of the movable rod 806 is connected with a driving part.

[0060] A connection plate 807 is fixedly installed on the movable rod 806. A spring 809 is arranged at the bottom of the connection plate 807. Two ends of the spring 809 are fixedly connected to the bottom surface of the connection plate 807 and the top surface of the fixed frame 801 respectively, and the spring 809 is sleeved on the movable rod 806.

[0061] The driving part includes a third motor 803, a cam 805 and a movable plate 804. The housing of the third motor 803 is fixedly connected to a carrier 802, and the carrier 802 is fixedly connected to the fixed frame 801. The output shaft end of the third motor 803 is fixedly connected to the cam 805. The top of the cam 805 contacts the bottom surface of the movable plate 804. The movable plate 804 is fixedly connected to the top end of the movable rod 806.

[0062] After the mixing is completed, during the process of discharging through the feeding port 201, the third motor 803 is started to make the reciprocating knocking discharging mechanism 8 operate. The reciprocating knocking discharging mechanism 8 provides knocking for the top of the drum 2 to make it vibrate, playing a role in assisting discharging.

[0063] Specifically, the third motor 803 drives the cam 805 to rotate. One end of the cam 805 away from the output shaft of the third motor 803 contacts the movable plate 804, pushing the movable plate 804 to the highest position. At the same time, the movable plate 804 drives the movable rod 806 and the hammer head 808 to move to the highest position together. The hammer head 808 is separated from the top of the drum 2, and the spring 809 is stretched. When the end of the cam 805 closer to the output shaft of the third motor 803 contacts the movable plate 804, the movable plate 804, the movable rod 806 and the hammer head 808, due to their weights and the elastic force of the spring 809, make the hammer head 808 knock on the top of the drum 2. When the cam 805 continues to rotate, the hammer head 808 can reciprocally knock on the drum 2.

[0064] Parts not detailed in the present utility model are prior arts.

Claims

1. A mixing and feeding structure for an anti-reflection agent of photovoltaic special glass, comprising a drum (2), characterized in that, It further includes: A rotary drive mechanism (6), the rotary drive mechanism (6) is connected to the drum (2), and the rotary drive mechanism (6) is used to drive the drum (2) to rotate self - sufficiently; A stirring shaft (10), the stirring shaft (10) is rotatably installed inside the drum (2), and one end of the stirring shaft (10) is connected to a second motor (7); A feed pipe (4), the feed pipe (4) is cooperatively connected with an opening provided on one side of the drum (2), and the feed pipe (4) is a circular pipe; A reciprocating knocking and feeding mechanism (8), the reciprocating knocking and feeding mechanism (8) is arranged above the drum (2).

2. The mixing and feeding structure of the anti-reflection agent for photovoltaic special glass according to claim 1, characterized in that: A sealing ring (12) is arranged between the outer wall of the feed pipe (4) and the inner wall of the opening of the drum (2).

3. The mixing and feeding structure of the anti-reflection agent for photovoltaic special glass according to claim 1, characterized in that: It further includes a carrier (1), two first support frames (3) are fixedly installed on the top of the carrier (1), and the drum (2) is rotatably connected to the first support frames (3); an installation frame (9) is fixedly installed on the top surface of the carrier (1), and the installation frame (9) is fixedly connected to the second motor (7); a second support frame (5) is also fixedly installed on the top surface of the carrier (1), and the second support frame (5) is fixedly connected to the feed pipe (4).

4. The mixing and feeding structure of the anti-reflection agent for photovoltaic special glass according to claim 3, characterized in that: A feeding port (201) is fixedly communicated with the barrel wall of the drum (2), and a valve (202) is installed at the lower end of the feeding port (201).

5. The mixing and feeding structure of the anti-reflection agent for photovoltaic special glass according to claim 4, characterized in that: A blanking notch (101) is formed on the top surface of the carrier (1), and the blanking notch (101) is located below the feeding port (201).

6. The mixing and feeding structure of the anti-reflection agent for photovoltaic special glass according to claim 1, characterized in that: An end frame (11) is fixedly installed inside the feed pipe (4), and the end frame (11) is rotatably connected to the end of the stirring shaft (10) far from the second motor (7).

7. The mixing and feeding structure of the anti-reflection agent for photovoltaic special glass according to claim 3, characterized in that: The rotary drive mechanism (6) includes a first motor (601), a toothed ring (602), a gear (603), a first pulley (604), a second pulley (605) and a transmission belt (606); the first motor (601) is fixedly installed on the side surface of the first support frame (3), the middle part of the second pulley (605) is fixedly installed with a shaft body, and the shaft body is rotatably connected to the first support frame (3), the output shaft end of the first motor (601) is fixedly sleeved with the first pulley (604), a transmission belt (606) is wound between the first pulley (604) and the second pulley (605), the gear (603) is fixedly installed on the shaft body, the gear (603) is meshed with the toothed ring (602), and the toothed ring (602) is fixedly sleeved on the outer wall of the drum (2).

8. The mixing and feeding structure of the anti-reflection agent for photovoltaic special glass according to claim 3, characterized in that: The reciprocating knocking and discharging mechanism (8) includes a fixed frame (801) and a hammer head (808); the fixed frame (801) is fixedly installed on the tops of the two first support frames (3), a guide hole (8011) is formed in the fixed frame (801), the guide hole (8011) is connected with a movable rod (806) in a matching manner, and the movable rod (806) is arranged vertically. The bottom end of the movable rod (806) is fixedly connected to the hammer head (808), and the hammer head (808) is located on the top of the roller (2). The movable rod (806) is elastically connected to the fixed frame (801), and the top end of the movable rod (806) is connected to a driving part.

9. The mixing and feeding structure of the anti-reflection agent for photovoltaic special glass according to claim 8, characterized in that: A connecting disc (807) is fixedly installed on the movable rod (806), a spring (809) is arranged at the bottom of the connecting disc (807), and the two ends of the spring (809) are respectively fixedly connected to the bottom surface of the connecting disc (807) and the top surface of the fixed frame (801), and the spring (809) is sleeved on the movable rod (806).

10. The mixing and feeding structure of the anti-reflection agent for photovoltaic special glass according to claim 8, characterized in that: The driving part includes a third motor (803), a cam (805) and a movable plate (804). The housing of the third motor (803) is fixedly connected to a carrier frame (802), and the carrier frame (802) is fixedly connected to the fixed frame (801). The output shaft end of the third motor (803) is fixedly connected to the cam (805). The top of the cam (805) is in contact with the bottom surface of the movable plate (804), and the movable plate (804) is fixedly connected to the top end of the movable rod (806).