Hollow glass cleaning and drying machine
By designing the hollow glass cleaning and drying machine, efficient synchronous cleaning and drying of the hollow glass is achieved, solving the problems of low efficiency of existing equipment and waste of resources, and improving production efficiency and resource utilization.
Patent Information
- Application Number
- CN202420863423.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-04-24
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-04-24
AI Technical Summary
The existing hollow glass cleaning equipment is inefficient, wastes water resources, and the separation design of the cleaning and drying process leads to low production efficiency and resource utilization.
A hollow glass cleaning dryer is designed, using a transmission roller to cooperate with a cleaning mechanism and a spray pipe group to realize synchronous cleaning of the upper and lower surfaces, integrate the water resource recycling system, and tighten the drying process and the cleaning process to reduce the transport step.
It improves cleaning efficiency, saves water resources, reduces the risk of glass damage, improves production line efficiency and product quality, and reduces costs.
Smart Images

Figure CN223083379U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of glass production and processing, and specifically relates to a hollow glass cleaning and drying machine. Background Art
[0002] In modern architecture, home furnishing, and automotive industries, the application of hollow glass is becoming increasingly widespread. Hollow glass not only has good heat insulation and sound insulation performance but also can effectively reduce energy consumption and improve the comfort of living and using environments. However, in the production process of hollow glass, the cleaning and drying steps are crucial for ensuring the transparency of the glass and the quality of the final product. Existing hollow glass cleaning and drying equipment has significant limitations in these steps, affecting the overall production efficiency and resource utilization rate.
[0003] Firstly, traditional cleaning devices usually adopt a single-sided cleaning method, that is, after cleaning one side of the glass, the glass needs to be flipped to clean the other side. This processing method not only doubles the workload but also greatly extends the cleaning cycle and reduces the production efficiency. For the batch cleaning process of hollow glass, this low-efficiency working mode is particularly disadvantageous because it directly leads to a reduction in production throughput and cannot meet the market demand for high-efficiency production.
[0004] Secondly, most existing cleaning equipment lacks a water resource recycling system. During the cleaning process, the water consumption is large, and the used water is mostly directly discharged, which not only causes waste of cleaning agents and water resources but also increases production costs and the environmental burden. Against the background of the current global water shortage and increasingly strict environmental protection requirements, this kind of waste is particularly prominent and unacceptable.
[0005] In addition, the current glass cleaning and drying processes are mostly designed separately. The hollow glass after cleaning needs to be transported to a dedicated drying oven for drying. This not only occupies more space resources but also may cause damage to the glass during the transfer process and post-cleaning contamination. More importantly, it increases the processing time of the glass and reduces the overall production efficiency. Especially on the glass production line, each transfer may become a bottleneck affecting the continuity and efficiency of the production process.
[0006] In view of the above problems, there is an urgent need for a new type of hollow glass cleaning and drying machine that can improve the cleaning and drying efficiency while realizing the recycling and conservation of water resources and reducing the transfer links of the glass during the production process, thereby improving the overall production efficiency and reducing costs. Summary of the Utility Model
[0007] In view of the above deficiencies in the prior art, the purpose of the present utility model is to provide a hollow glass cleaning and drying machine, which can improve the cleaning and drying efficiency, realize the recycling and conservation of water resources, and reduce the transfer links of glass in the production process, thereby improving the overall production efficiency and reducing costs.
[0008] The technical solution adopted by the present utility model to achieve the above purpose is: a hollow glass cleaning and drying machine, including an installation frame, in which a cleaning chamber, a rinsing chamber, and a drying chamber are arranged in sequence. A plurality of groups of transmission rollers are rotatably installed on the installation frame and arranged side by side in the cleaning chamber, the rinsing chamber, and the drying chamber. The transmission rollers are power-connected to a reduction motor assembled outside the installation frame.
[0009] It further includes a cleaning mechanism, which is assembled in both the cleaning chamber and the rinsing chamber. The cleaning mechanism includes an upper assembly frame, a lower assembly frame, and a driving motor. The upper assembly frame and the lower assembly frame are both assembled in the installation frame in a relatively sliding manner. The upper assembly frame is arranged above the transmission rollers, and a plurality of upper cleaning brushes are uniformly fixed to the bottom of the upper assembly frame. The lower assembly frame is arranged at the gap between the transmission rollers and below the transmission rollers, and a plurality of lower cleaning brushes are uniformly fixed to the top of the lower assembly frame. The driving motor is fixedly installed outside the installation frame and is linked to the upper assembly frame and the lower assembly frame through a transmission mechanism.
[0010] In some embodiments, in order to ensure that the upper assembly frame and the lower assembly frame can slide stably in the installation frame and ensure the stable operation of the upper cleaning brushes and the lower cleaning brushes assembled thereon to effectively clean the glass, the following technical solutions are provided.
[0011] A plurality of groups of upper guide grooves and lower guide grooves are fixedly connected in both the cleaning chamber and the rinsing chamber. The upper guide grooves and the lower guide grooves are arranged parallel to the transmission rollers. The upper assembly frame is slidably installed in the upper guide grooves and extends outside the installation frame. The lower assembly frame is slidably installed in the lower guide grooves and extends outside the installation frame.
[0012] In some embodiments, in order to ensure that the driving motor and the transmission mechanism can be stably installed outside the installation frame and ensure that the driving motor can drive the upper assembly frame and the lower assembly frame to rotate stably through the transmission mechanism, the following technical solutions are provided.
[0013] An assembly pad is fixedly connected to the outer side wall of the installation frame. The driving motor is fixedly installed on the assembly pad. The transmission mechanism includes a mounting shaft, an upper turntable, a lower turntable, an upper connecting rod, and a lower connecting rod. The mounting shaft is rotatably installed on the assembly pad and is arranged in the vertical direction. The driving motor is in power connection with the mounting shaft. The upper and lower ends of the mounting shaft are respectively fixedly connected with an upper turntable and a lower turntable. The two ends of the upper connecting rod are respectively hinged to the outer edge of the upper turntable and the upper mounting frame. The two ends of the lower connecting rod are respectively hinged to the outer edge of the lower turntable and the lower mounting frame.
[0014] In some embodiments, to ensure that the cleaning mechanism assembled in the cleaning chamber and the rinsing chamber can cooperate with clean water or a mixture of clean water and cleaning agent to complete the cleaning work of insulating glass, the following technical solutions are provided.
[0015] The cleaning mechanism further includes a spray pipe group. The spray pipe group includes a water supply main pipe and an upper spray branch pipe and a lower spray branch pipe that are in communication with the water supply main pipe. The upper spray branch pipe and the lower spray branch pipe are fixedly installed inside the installation frame. The upper spray branch pipe is arranged on both sides of the upper cleaning brush, and spray nozzles are evenly assembled on the upper spray branch pipe and are arranged towards the upper cleaning brush. The lower spray branch pipe is arranged on both sides of the lower cleaning brush, and spray nozzles are evenly assembled on the lower spray branch pipe and are arranged towards the lower cleaning brush.
[0016] In some embodiments, to facilitate the recycling of the sewage generated after the cleaning and rinsing of insulating glass, the following technical solutions are provided.
[0017] A sewage purification device is further assembled on the installation frame; a mixing tank and a first pressurizing pump are installed in a supporting manner on the water supply main pipe assembled in the cleaning chamber. The water supply main pipe is in communication with the rinsing chamber; a second pressurizing pump is installed in a supporting manner on the water supply main pipe assembled in the rinsing chamber. The water supply main pipe is connected to the water outlet end of the sewage purification device. The water inlet end of the sewage purification device is in communication with the cleaning chamber through a return pipe, and a third pressurizing pump is assembled on the return pipe.
[0018] In some embodiments, to ensure the rapid drying of the insulating glass after cleaning and rinsing, the following technical solutions are provided.
[0019] Two groups of air distribution plates arranged symmetrically are fixedly installed in the drying chamber. The two groups of air distribution plates are respectively arranged on the upper and lower sides of the transmission roller; an air collecting hood in communication with the drying chamber is assembled on the outer wall of the installation frame.
[0020] The beneficial effects of the present utility model:
[0021] 1. Efficient synchronous cleaning: The coordinated design of the cleaning mechanism, spray pipe group and transmission roller can realize the synchronous cleaning of the upper and lower surfaces and sides of the insulating glass during the transmission process. This design effectively avoids the cumbersome steps of flipping the glass for double-sided cleaning in traditional cleaning equipment, significantly improves the cleaning efficiency, and since there is no need to flip, it also greatly reduces the risk of glass breakage, ensuring the safety of the glass cleaning process and the quality of the product after cleaning.
[0022] 2. Recycling of water resources: The coordinated operation of the spray pipe group, return pipe, supporting sewage purification equipment, mixing tank and various pressure pumps realizes the effective filtration, purification and recycling of wastewater generated during the cleaning process, which not only greatly saves water resources and reduces the impact on the environment, but also reduces production costs.
[0023] 3. High-efficiency continuous drying: The drying process of insulating glass follows the cleaning process and is designed to be on the downstream side of the cleaning process. This means that the cleaned insulating glass can directly enter the drying chamber without the need for additional transfer steps, reducing the labor and time required for glass transportation and avoiding the secondary contamination problem that may occur during the transfer process. More importantly, it can achieve rapid drying of insulating glass, improve the overall operation speed and efficiency of the production line, and speed up the delivery of products. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 It is a structural schematic diagram of the utility model;
[0025] Figure 2 It is a structural schematic diagram of another perspective of the utility model;
[0026] Figure 3 It is a schematic diagram of the structure of the utility model in a cutaway state;
[0027] Figure 4 It is a detailed schematic diagram of the assembly of the transmission roller and the reduction motor on the mounting frame;
[0028] Figure 5 It is a schematic diagram of the structure of the spray pipe group, the sewage purification equipment and the components installed thereon;
[0029] Figure 6 It is a structural schematic diagram of the combination of two sets of air distribution plates;
[0030] Figure 7 It is a schematic diagram of the structure of the cleaning mechanism assembled on the mounting frame;
[0031] Figure 8 For the Figure 7 A schematic diagram of the structure from another perspective;
[0032] Figure 9 Schematic structural diagram of the upper assembly frame and the lower assembly frame;
[0033] Figure 10 Schematic structural diagram of the matching combination of the drive motor and the transmission mechanism.
[0034] In the figure: 1 installation frame, 11 cleaning chamber, 12 flushing chamber, 13 drying chamber, 14 inlet and outlet port, 15 installation pad, 16 upper guide groove, 17 lower guide groove, 18 guide post, 181 support spring, 19 assembly pad, 2 transmission roller, 21 transmission sprocket, 22 chain, 3 reduction motor, 4 cleaning mechanism, 41 upper assembly frame, 411 upper cleaning brush, 42 lower assembly frame, 421 lower cleaning brush, 43 drive motor, 431 drive bevel gear, 441 installation shaft, 442 upper turntable, 443 lower turntable, 444 upper connecting rod, 445 lower connecting rod, 446 transmission bevel gear, 451 water supply main pipe, 4511 mixing tank, 4512 first pressurizing pump, 4513 second pressurizing pump, 452 upper spray branch pipe, 453 lower spray pipe, 5 sewage purification equipment, 51 return pipe, 52 third pressurizing pump, 6 air distribution plate, 61 hot air nozzle, 62 air supply pipe, 7 air collecting hood. Specific embodiments
[0035] 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.
[0036] Please refer to Figures 1-10 , a hollow glass cleaning and drying machine, including an installation frame 1, in which a cleaning chamber 11, a flushing chamber 12, and a drying chamber 13 are arranged in sequence. A plurality of groups of transmission rollers 2 are rotatably installed on the installation frame 1 and arranged side by side in the cleaning chamber 11, the flushing chamber 12, and the drying chamber 13. The transmission roller 2 is power-connected to a reduction motor 3 assembled outside the installation frame 1.
[0037] It further includes a cleaning mechanism 4, which is assembled in both the cleaning chamber 11 and the rinsing chamber 12. The cleaning mechanism 4 includes an upper mounting frame 41, a lower mounting frame 42, and a driving motor 43. The upper mounting frame 41 and the lower mounting frame 42 are both assembled in the mounting frame 1 in a relatively sliding manner. The upper mounting frame 41 is arranged above the transmission roller 2, and a plurality of groups of upper cleaning brushes 411 are evenly and fixedly connected to the bottom of the upper mounting frame 41. The lower mounting frame 42 is arranged at the gap of the transmission roller 2 and is lower than the transmission roller 2. A plurality of groups of lower cleaning brushes 421 are evenly and fixedly connected to the top of the lower mounting frame 42. The driving motor 43 is fixedly installed outside the mounting frame 1 and is linked to the upper mounting frame 41 and the lower mounting frame 42 through a transmission mechanism.
[0038] The mounting frame 1 is assembled and welded with steel plates, so that independent cleaning chamber 11, rinsing chamber 12, and drying chamber 13 are formed inside it. Inlet and outlet openings 14 that are slightly lower than the transmission roller 2 are provided in each chamber, which can ensure that the insulating glass to be cleaned enters and exits each chamber along the inlet and outlet openings 14 under the conveyance of the transmission roller 2, and the insulating glass is cleaned, rinsed, and dried by the cleaning and drying components assembled in each chamber.
[0039] Drive sprockets 21 are fixedly connected to the same end of each transmission roller 2. One group of drive sprockets 21 is provided on the two outermost transmission rollers 2, and two groups of drive sprockets 21 are provided on the remaining transmission rollers 2. The drive sprockets 21 of adjacent two transmission rollers 2 are chain-driven through a chain 22. A mounting pad 15 is fixedly connected to the outer wall of the mounting frame 1, and the reduction motor 3 is fixedly installed on the mounting pad 15, and the output shaft of the reduction motor 3 is directly fixedly connected to one of the transmission rollers 2.
[0040] The reduction motor 3 can drive each transmission roller 2 to rotate synchronously and slowly to ensure that the insulating glass to be processed is stably and slowly conveyed on it.
[0041] The driving motor 43 can drive the upper mounting frame 41 and the lower mounting frame 42 to perform periodic reciprocating motion in the corresponding cleaning chamber 11 or rinsing chamber 12 through the transmission mechanism, thereby driving the upper cleaning brushes 411 and the lower cleaning brushes 421 to effectively clean the upper and lower surfaces and the side edges of the insulating glass.
[0042] To ensure that the upper mounting frame 41 and the lower mounting frame 42 can slide stably in the mounting frame 1 and ensure the stable operation of the upper cleaning brushes 411 and the lower cleaning brushes 421 mounted thereon to effectively clean the glass, the following technical solutions are provided.
[0043] A plurality of upper guide grooves 16 and lower guide grooves 17 are fixedly connected in both the cleaning chamber 11 and the rinsing chamber 12. The upper guide grooves 16 and the lower guide grooves 17 are arranged parallel to the transmission roller 2. The upper mounting frame 41 is slidably mounted in the upper guide grooves 16 and extends outside the mounting frame 1. The lower mounting frame 42 is slidably mounted in the lower guide grooves 17 and extends outside the mounting frame 1.
[0044] The arrangement of the upper guide grooves 16 and the lower guide grooves 17 can ensure the stable assembly of the upper mounting frame 41 and the lower mounting frame 42 therein, and ensure the stable operation of the upper mounting frame 41 and the upper cleaning brush 411 mounted thereon, the lower mounting frame 42 and the lower cleaning brush 421 mounted thereon along the axial direction of the transmission roller 2. The upper cleaning brush 411 and the lower cleaning brush 421 are respectively in effective contact with the upper and lower surfaces of the insulating glass. When the insulating glass is transmitted radially along the transmission roller 2, it can be effectively cleaned.
[0045] Both the upper cleaning brush 411 and the lower cleaning brush 421 are provided with length redundancy, that is, the bottom of the upper cleaning brush 411 is below the transmission plane of the transmission roller 2, and the top of the lower cleaning brush 421 is above the transmission plane of the transmission roller 2. When the insulating glass is transmitted through the upper cleaning brush 411 and the lower cleaning brush 421 by the transmission roller 2, the end faces of its bristles can be in full contact with the glass surface.
[0046] At the same time, when the upper cleaning brush 411 and the lower cleaning brush 421 with length redundancy run to the side position of the insulating glass, the bristles can effectively clean each side thereof.
[0047] On the outer wall of the mounting frame 1, a plurality of guide shafts parallel to the upper guide grooves 16 and the lower guide grooves 17 are also fixedly connected. The guide shafts are slidably inserted into the upper mounting frame 41 and the lower mounting frame 42. A support spring 181 is also wound around the guide shafts. The two ends of the support spring 181 are respectively fixedly connected to the upper mounting frame 41 (or the lower mounting assembly) and the end of the guide shaft. When the driving motor 43 drives the upper mounting frame 41 and the lower mounting frame 42 to reciprocate, the guide shafts can further improve their running stability, and the support spring 181 can provide a damping effect.
[0048] To ensure the stable installation of the driving motor 43 and the transmission mechanism outside the mounting frame 1, and ensure that the driving motor 43 can drive the upper mounting frame 41 and the lower mounting frame 42 to rotate stably through the transmission mechanism, the following technical solutions are provided.
[0049] An assembly pad seat 19 is fixedly connected to the outer side wall of the installation rack 1. The driving motor 43 is fixedly installed on the assembly pad seat 19. The transmission mechanism includes a mounting shaft 441, an upper turntable 442, a lower turntable 443, an upper connecting rod 444, and a lower connecting rod 445. The mounting shaft 441 is rotatably installed on the assembly pad seat 19 and is arranged in the vertical direction. The driving motor 43 is in power connection with the mounting shaft 441. The upper and lower ends of the mounting shaft 441 are respectively fixedly connected with the upper turntable 442 and the lower turntable 443. The two ends of the upper connecting rod 444 are respectively hinged to the outer edge of the upper turntable 442 and the upper assembly frame 41. The two ends of the lower connecting rod 445 are respectively hinged to the outer edge of the lower turntable 443 and the lower assembly frame 42.
[0050] The setting of the assembly pad seat 19 can ensure the stable rotation of the driving motor 43 and the mounting shaft 441 in the transmission mechanism thereon. A driving bevel gear 431 is fixedly connected to the output shaft of the driving motor 43. A transmission bevel gear 446 that meshes with the driving bevel gear 431 is fixedly connected to the mounting shaft 441. When the driving motor 43 drives the driving bevel gear 431 to operate, the mounting shaft 441, the upper turntable 442, and the lower turntable 443 can be driven to rotate stably through the transmission bevel gear 446, and the upper assembly frame 41 and the lower assembly frame 42 are respectively driven to reciprocate in the corresponding guide grooves through the upper connecting rod 444 and the lower connecting rod 445.
[0051] To ensure that the cleaning mechanism 4 assembled in the cleaning chamber 11 and the rinsing chamber 12 can cooperate with clean water or a mixture of clean water and cleaning agent to complete the cleaning work of insulating glass, the following technical solutions are provided.
[0052] The cleaning mechanism 4 further includes a spray pipe group. The spray pipe group includes a water supply main pipe 451 and upper spray branch pipes 452 and lower spray branch pipes that are in communication with the water supply main pipe 451. The upper spray branch pipes 452 and the lower spray branch pipes are fixedly installed inside the installation rack 1. The upper spray branch pipes 452 are arranged on both sides of the upper cleaning brush 411, and spray nozzles arranged towards the upper cleaning brush 411 are evenly assembled on the upper spray branch pipes 452. The lower spray branch pipes are arranged on both sides of the lower cleaning brush 421, and spray nozzles arranged towards the lower cleaning brush are evenly assembled on the lower spray branch pipes.
[0053] For the spray pipe group assembled in the cleaning chamber 11, the mixture of cleaning agent and water is input into each group of upper spray branch pipes 452 and lower spray branch pipes through the water supply main pipe 451, and the mixture is sprayed onto the upper and lower surfaces of the insulating glass through the spray nozzles assembled thereon, and cooperate with the supporting upper cleaning brush 411 and lower cleaning brush 421 to complete the cleaning work of the insulating glass.
[0054] For the spray pipe group assembled in the flushing chamber 12, clean water is input into each upper spray branch pipe 452 and lower spray branch pipe through the water supply main pipe 451, and the clean water is sprayed onto the upper and lower surfaces of the insulating glass through the spray nozzles assembled thereon, and is matched with the supporting upper cleaning brush 411 and lower cleaning brush 421 to wash the cleaning agent attached to the outer surface of the insulating glass clean.
[0055] To facilitate the recycling of the sewage generated after the cleaning and flushing treatment of the insulating glass, the following technical solutions are provided for this.
[0056] A sewage purification device 5 is also assembled on the installation rack 1; a mixing tank 4511 and a first pressurizing pump 4512 are installed in a supporting manner on the water supply main pipe 451 assembled in the cleaning chamber 11, and the water supply main pipe 451 is kept in communication with the flushing chamber 12; a second pressurizing pump 4513 is installed in a supporting manner on the water supply main pipe 451 assembled in the flushing chamber 12, the water supply main pipe 451 is connected to the water outlet end of the sewage purification device 5, and the water inlet end of the sewage purification device 5 is kept in communication with the cleaning chamber 11 through a return pipe 51, and a third pressurizing pump 52 is assembled on the return pipe 51.
[0057] The sewage purification device 5 mainly treats the glass cleaning agent existing in the water body, and treats the cleaning agent through principles such as precipitation treatment, biological treatment, activated carbon adsorption, and neutralization treatment to obtain clean water that meets the requirements.
[0058] The wastewater after flushing the glass in the flushing chamber 12 is collected at the bottom of the cleaning chamber 11, and this part of the wastewater is pumped into the mixing tank 4511 through the water supply main pipe 451 and the first pressurizing pump 4512 assembled thereon. After adding the glass cleaning agent in proportion in the mixing tank 4511, mixing is carried out, and the mixed liquid is supplied to the spray pipe group assembled in the cleaning chamber 11 to carry out cleaning treatment on the insulating glass. The wastewater obtained from the treatment in the cleaning chamber 11 is collected in the cleaning chamber 11, and is transported to the sewage purification device 5 through the third pressurizing pump 52 and the return pipe 51 for purification treatment, and the obtained purified water is supplied to the spray pipe group in the flushing chamber 12 through the second pressurizing pump 4513. Through this cycle, the recycling of water resources can be realized, effectively saving the water used for cleaning the insulating glass.
[0059] To ensure the rapid drying of the insulating glass after cleaning and flushing, the following technical solutions are provided for this.
[0060] Two groups of air distribution plates 6 arranged symmetrically are fixedly installed in the drying chamber 13, and the two groups of air distribution plates 6 are respectively arranged on the upper and lower sides of the transmission roller 2; an air collecting hood 7 communicated with the drying chamber 13 is assembled on the outer wall of the installation rack 1.
[0061] Compared with the cleaning chamber 11 and the rinsing chamber 12, the bottom of the drying chamber 13 is shallower, enabling sufficient space at its bottom for assembling the sewage purification device 5, enhancing the overall compactness of the device and facilitating the assembly and layout in the glass production workshop.
[0062] The upper air distribution plate 6 is equipped with hot air nozzles 61 arranged vertically downward, while the lower air distribution plate 6 is equipped with hot air nozzles 61 arranged vertically upward. The air distribution plate 6 is also connected to an air supply pipe 62 extending outside the installation frame 1. When the hollow glass is transported to the drying chamber 13 by the transmission roller 2, the air supply pipe 62 introduces hot air onto the air distribution plate 6, and the hot air nozzles 61 spray hot air onto the upper and lower sides of the hollow glass to quickly dry and dehydrate the hollow glass. The treated hot air and the water vapor it carries are collected by the air collecting hood 7, and after heat exchange treatment, the remaining heat can be reused.
[0063] For those skilled in the art, it is obvious that the present utility model is not limited to the details of the above exemplary embodiments, and can be implemented in other specific forms without departing from the spirit or basic characteristics of the present utility model. Therefore, from any perspective, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present utility model is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be encompassed within the present utility model. Any reference signs in the claims should not be regarded as limiting the claimed rights.
[0064] In addition, it should be understood that although this specification is described in terms of embodiments, not every embodiment contains only one independent technical solution. This narrative style of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A hollow glass cleaning and drying machine, characterized in that: It includes an installation frame (1), in which a cleaning chamber (11), a rinsing chamber (12), and a drying chamber (13) are arranged in sequence. A plurality of groups of transmission rollers (2) arranged side by side are rotatably installed in the cleaning chamber (11), the rinsing chamber (12), and the drying chamber (13) on the installation frame (1), and the transmission rollers (2) are power-connected to a reduction motor (3) assembled outside the installation frame (1); it also includes a cleaning mechanism (4), and the cleaning mechanism (4) is assembled in both the cleaning chamber (11) and the rinsing chamber (12). The cleaning mechanism (4) includes an upper assembly frame (41), a lower assembly frame (42), and a driving motor (43). The upper assembly frame (41) and the lower assembly frame (42) are both assembled in the installation frame (1) in a relatively sliding manner. The upper assembly frame (41) is arranged above the transmission roller (2), and a plurality of upper cleaning brushes (411) are uniformly fixed at the bottom of the upper assembly frame (41). The lower assembly frame (42) is arranged at the gap of the transmission roller (2) and below the transmission roller (2), and a plurality of lower cleaning brushes (421) are uniformly fixed at the top of the lower assembly frame (42). The driving motor (43) is fixedly installed outside the installation frame (1) and is linked to the upper assembly frame (41) and the lower assembly frame (42) through a transmission mechanism.
2. The hollow glass cleaning and drying machine according to claim 1, wherein: A plurality of groups of upper guide grooves (16) and lower guide grooves (17) are fixedly installed in both the cleaning chamber (11) and the rinsing chamber (12). The upper guide grooves (16) and the lower guide grooves (17) are arranged parallel to the transmission roller (2). The upper assembly frame (41) is slidably installed in the upper guide grooves (16) and extends outside the installation frame (1). The lower assembly frame (42) is slidably installed in the lower guide grooves (17) and extends outside the installation frame (1).
3. The hollow glass cleaning and drying machine according to claim 1, characterized in that: An assembly pad seat (19) is fixedly installed on the outer side wall of the installation frame (1). The driving motor (43) is fixedly installed on the assembly pad seat (19). The transmission mechanism includes an installation shaft (441), an upper turntable (442), a lower turntable (443), an upper connecting rod (444), and a lower connecting rod (445). The installation shaft (441) is rotatably installed on the assembly pad seat (19) and is arranged in the vertical direction. The driving motor (43) is power-connected to the installation shaft (441). The upper and lower ends of the installation shaft (441) are respectively fixedly connected with an upper turntable (442) and a lower turntable (443). The two ends of the upper connecting rod (444) are respectively hinged to the outer edge of the upper turntable (442) and the upper assembly frame (41). The two ends of the lower connecting rod (445) are respectively hinged to the outer edge of the lower turntable (443) and the lower assembly frame (42).
4. The hollow glass cleaning and drying machine according to claim 1, characterized in that: The cleaning mechanism (4) further includes a spray pipe group, which includes a water supply main pipe (451), an upper spray branch pipe (452) and a lower spray branch pipe that are in communication with the water supply main pipe (451). The upper spray branch pipe (452) and the lower spray branch pipe are fixedly installed inside the installation frame (1). The upper spray branch pipe (452) is arranged on both sides of the upper cleaning brush (411), and spray nozzles are evenly assembled on the upper spray branch pipe (452) and arranged towards the upper cleaning brush (411). The lower spray branch pipe is arranged on both sides of the lower cleaning brush (421), and spray nozzles are evenly assembled on the lower spray branch pipe and arranged towards the lower cleaning brush.
5. A hollow glass cleaning and drying machine according to claim 4, characterized in that: A sewage purification device (5) is also assembled on the installation frame (1); a mixing tank (4511) and a first pressurizing pump (4512) are installed in a supporting manner on the water supply main pipe (451) assembled in the cleaning chamber (11). The water supply main pipe (451) is in communication with the flushing chamber (12); a second pressurizing pump (4513) is installed in a supporting manner on the water supply main pipe (451) assembled in the flushing chamber (12). The water supply main pipe (451) is connected to the water outlet end of the sewage purification device (5). The water inlet end of the sewage purification device (5) is in communication with the cleaning chamber (11) through a return pipe (51), and a third pressurizing pump (52) is assembled on the return pipe (51).
6. The hollow glass cleaning and drying machine according to claim 1, wherein: Two groups of air distribution plates (6) arranged symmetrically are fixedly installed in the drying chamber (13). The two groups of air distribution plates (6) are respectively arranged on the upper and lower sides of the transmission drum (2); a wind collecting hood (7) in communication with the drying chamber (13) is assembled on the outer wall of the installation frame (1).