A bottled drinking water production system and method

By using a symmetrically distributed, uniformly fed main body and an adapted clamping and feeding mechanism, combined with an electric push rod and a rubber clamping device, the problem of stable conveying and efficient cleaning of glass bottles of different shapes in the bottled drinking water production system is solved, achieving continuous and stable conveying and efficient cleaning results.

CN118306631BActive Publication Date: 2026-02-24北京汇源食品饮料有限公司
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202410627843.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-05-21
Publication Date
2026-02-24
Estimated Expiration
2044-05-21

AI Technical Summary

Technical Problem

Existing bottled drinking water production systems cannot accommodate glass bottles of different shapes simultaneously, resulting in unstable conveying, easy shaking and dropping, and low cleaning efficiency.

Method used

It adopts a symmetrically distributed uniform feeding body and an adapted clamping and feeding mechanism, combined with an electric push rod and a rubber clamping device, to achieve stable conveying and efficient clamping of cylindrical and square glass bottles, and is simultaneously cleaned by high-pressure water and air bubbles.

Benefits of technology

It enables continuous and stable conveying and efficient cleaning of glass bottles of different shapes, preventing them from falling and improving production efficiency and cleaning effect.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN118306631B_ABST
    Figure CN118306631B_ABST
Patent Text Reader

Abstract

The application discloses a bottled drinking water production system and method, which comprises a first limiting stand, a first electric push rod, a fixed supporting base, a fixed mounting plate, an adaptive clamping material supplementing mechanism, an auxiliary clamping rubber plate, a rubber base, a supporting table, a cleaning main body, a conveying track, a sliding frame and a second electric push rod. The first adaptive rotating feeding main body and the second adaptive rotating feeding main body can continuously, uniformly, stably and safely convey and supplement the cylindrical and square glass bottles, and the glass bottle bodies can be uniformly placed on the rubber base by using external clamping mechanical arms. The driving mechanism can control the sliding frame to slide along the conveying track, so that each bottle body on the rubber base moves below each cleaning main body, and then the inside of the bottle body can be cleaned by high-pressure clean water and bubbles synchronously by the cleaning main body. The broken bubbles can make the inside of the bottle body be cleaned quickly and completely.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of bottled drinking water production technology, specifically to a bottled drinking water production system and method. Background Technology

[0002] Bottled drinking water is convenient to carry and drink. A large amount of bottled drinking water is needed in daily life. In the production process, the treated water is filled into the pre-cleaned bottles through the production system and the filling machine in the production system can automatically complete the entire filling process.

[0003] However, existing bottled drinking water production systems cannot easily and automatically replenish square or cylindrical glass bottles during the feeding process. This necessitates the use of different feeding systems for different bottle shapes, as a single system cannot automatically clamp, secure, and replenish them. Furthermore, existing devices are prone to bottle shaking and falling during the replenishment process, especially square bottles, which cannot be properly clamped and secured with face-to-face contact. During the process, bottles often fall due to insufficient clamping force in the form of wires. Therefore, existing devices cannot achieve continuous, stable, and safe automatic replenishment and conveying of bottles of different shapes. The operation and adjustment are cumbersome, and the replenishment and conveying efficiency is low. Furthermore, the cleaning equipment in the existing bottled drinking water production system has poor rinsing effect and a single, inefficient rinsing method, which prevents the bottle interior from being thoroughly and quickly rinsed. Therefore, there is an urgent need for a device to solve the above problems, enabling the continuous, fast, and stable supply and processing of glass bottles of different shapes, thereby improving the efficiency of bottled drinking water production. Summary of the Invention

[0004] The purpose of this invention is to provide a bottled drinking water production system and method to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a bottled drinking water production system and method, comprising a first limiting column, a first electric push rod, a fixed support base, a fixed mounting plate, an adaptive clamping and replenishing mechanism, an auxiliary clamping rubber plate, a rubber base, a support platform, a cleaning body, a conveying track, a sliding frame, and a second electric push rod. The fixed mounting plate is symmetrically fixedly connected to the upper end of the adaptive clamping and replenishing mechanism, the fixed support base is symmetrically arranged at the bottom end of the adaptive clamping and replenishing mechanism, the first electric push rod is uniformly fixedly installed on the fixed support base, and the first limiting column is symmetrically fixedly installed on the fixed support base. The conveying track is located below the center of the adaptive clamping and feeding mechanism. The sliding frame is slidably engaged on the conveying track and slides on the conveying track via a traction device. The support platform is evenly and equidistantly fixed inside the sliding frame. The rubber base is fixedly connected to the upper center of the support platform. The auxiliary clamping rubber plates are distributed on both sides above the rubber base. The second electric push rod is evenly and fixedly installed on both sides of the sliding frame, and the front end of the second electric push rod penetrates and inserts into the sliding frame and is fixedly connected to the inner end of the auxiliary clamping rubber plate. The cleaning body is evenly arranged on the conveying track.

[0006] The adaptive clamping and feeding mechanism includes a uniform feeding body, a first adaptive rotating feeding body, a first motor, a connecting horizontal plate, a drive wheel, and a second adaptive rotating feeding body. The drive wheel is rotatably engaged at the upper ends of the connecting horizontal plate. The drive end of the first motor is fixedly connected to the upper middle part of the drive wheel located on one side. The first and second adaptive rotating feeding bodies are located at the bottom ends of the connecting horizontal plate, and the first and second adaptive rotating feeding bodies have the same structure. The two uniform feeding bodies are respectively located on the outer sides of the first and second adaptive rotating feeding bodies. The first and second adaptive rotating feeding bodies each include a synchronous rotating gear, a connecting drive frame, a rotating shaft, and an adaptive fixing device. There are six adaptive fixing devices, which are evenly distributed at the outer end of the connecting drive frame. The rotating shaft is fixedly installed in the middle of the connecting drive frame, and the middle part of the synchronous rotating gear is fixedly connected to the upper end of the rotating shaft.

[0007] The cleaning body includes a connecting rod, a flushing pipe, a jet nozzle, a water spray nozzle, a connecting conveying pipe, an H-shaped support frame, and a fourteenth electric push rod. The fourteenth electric push rod is fixedly installed on the upper end of the H-shaped support frame. The connecting rod is fixedly connected to the bottom end of the fourteenth electric push rod. The flushing pipe is fixedly connected to the bottom end of the connecting rod, and the connecting rod communicates with the interior of the flushing pipe. A connecting conveying pipe is symmetrically fixedly connected to the outside of the connecting rod, and a solenoid valve is fixedly installed on the connecting conveying pipe. The connecting rod and the flushing pipe are slidably engaged on the H-shaped support frame. The jet nozzle and the water spray nozzle are evenly and alternately arranged on the flushing pipe.

[0008] Preferably, the uniform feeding body includes a belt conveyor, a sliding support frame, a support fixing seat, a pushing body, and an adjusting uniform feeding body. The sliding support frame is uniformly and fixedly connected to both sides of the adjusting uniform feeding body, and the bottom end of the sliding support frame is slidably engaged with the support fixing seat. The pushing body is fixedly connected to the middle of the outer end of the support fixing seat. The belt conveyor is fixedly installed at the middle of the end of the support fixing seat away from the pushing body, and the belt conveyor is located below the end of the adjusting uniform feeding body.

[0009] Preferably, the feeding body includes a third electric push rod, a buffer protective spring, a bottle-pushing airbag, a limiting mounting plate, a second limiting column, a connecting support plate, and a sliding limiting rod. The third electric push rod is fixedly installed at the upper middle part of the connecting support plate. The sliding limiting rods are symmetrically arranged and are slidably engaged with the upper end of the connecting support plate. The driving end of the third electric push rod is fixedly connected to the end of the sliding limiting rod. The limiting mounting plate is fixedly connected to the other end of the sliding limiting rod by bolts. The buffer protective spring is evenly fixedly connected to the side end of the limiting mounting plate opposite to the sliding limiting rod. The bottle-pushing airbag is fixedly connected to the side end of the buffer protective spring opposite to the limiting mounting plate. The second limiting column is fixedly connected to the inner sides of both ends of the bottle-pushing airbag and is slidably engaged with the limiting mounting plate.

[0010] Preferably, the adjusting uniform feeding body includes an installation frame, a second motor, a swing adjusting arm, a rotating wheel, a first feeding frame, a second feeding frame, a third motor, a rotating baffle, a fourth electric push rod, an auxiliary adjusting baffle, a fifth electric push rod, and a sixth electric push rod. The first feeding frame and the second feeding frame are mirror-symmetrically distributed. The inner end of the first feeding frame is slidably engaged with the inner end of the second feeding frame. The swing adjusting arm is rotatably installed on the inner and outer sides of the first feeding frame and the second feeding frame, respectively. The rotating wheel is uniformly rotatably installed inside the swing adjusting arm. The second motor is fixedly installed on the installation frame. The drive end of the second motor is fixedly connected to the end of the swing adjusting arm through a reducer. The three rotating baffles are fixedly connected, and two sets of three rotating baffles are arranged. The middle parts are respectively rotatably engaged inside the first and second feeding frames. The two third motors are respectively fixedly installed at the bottom ends of the first and second feeding frames, and the drive ends of the two third motors are respectively fixedly connected to the bottom ends of the middle parts of the two sets of rotating baffles through reducers. The fourth electric push rod is fixedly connected to the side end of the rotating baffle. The auxiliary adjusting baffle is slidably engaged inside the rotating baffle, and the drive end of the fourth electric push rod is fixedly connected to the side end of the auxiliary adjusting baffle. The fifth and sixth electric push rods are symmetrically distributed below the first and second feeding frames, and the drive end of the fifth electric push rod is fixedly connected to the bottom end of the second feeding frame, and the drive end of the sixth electric push rod is fixedly connected to the bottom end of the first feeding frame.

[0011] Preferably, the adapter fixing device includes a support and protection part, a fixing vertical plate, an auxiliary support part, and an adapter clamping part. The auxiliary support part is connected to the lower part of the support and protection part through the fixing vertical plate, and the adapter clamping part is disposed at the front end of the support and protection part.

[0012] Preferably, the auxiliary support includes a seventh electric push rod, a support rail seat, an eighth electric push rod, a sliding console, a sliding control seat, a ninth electric push rod, a fourth motor, a support adjustment platform, and a rubber pad. The sliding console is slidably engaged with the support rail seat, and the sliding control seat is slidably engaged with the sliding console. The seventh electric push rod is fixedly installed on both sides of the support rail seat, and the eighth electric push rod is fixedly installed on both sides of the sliding console. The front end of the seventh electric push rod is fixedly connected to the side end of the sliding console, and the driving end of the eighth electric push rod is fixedly connected to the side end of the sliding control seat. The ninth electric push rod is fixedly installed on the sliding control seat, and the fourth motor is fixedly installed on the mounting plate provided at the upper end of the ninth electric push rod. The driving end of the fourth motor is connected to the support adjustment platform through a reducer, and a rubber pad is fixedly connected to the upper end of the support adjustment platform.

[0013] Preferably, the support and protection unit includes a tenth electric push rod, a support frame plate, a controller, a fifth electric motor, an adjusting gear plate, a sliding protective support plate, a mounting frame, a drive control gear, a lifting limit plate, an adjusting platform, a discharge chute, and a sliding groove. The support frame plate is fixedly connected to the upper end of the mounting frame. The tenth electric push rod is symmetrically fixedly installed on the support frame plate. The inner side of the adjusting platform is slidably engaged with the side end of the mounting frame. The discharge chute is longitudinally through the adjusting platform, and the sliding groove is transversely through the adjusting platform. The lifting limit plate is fixedly connected to the... The controller is fixedly mounted on the outer end of the mounting frame. The sliding protective support plate is slidably engaged with the mounting frame. The adjusting gear plate is symmetrically fixedly connected to the upper end of the sliding protective support plate. The drive control gear is rotated and engaged inside the mounting frame. The fifth motor is fixedly mounted on the mounting frame, and the drive end of the fifth motor is fixedly connected to the middle of the drive control gear through a reducer. The drive control gear is meshed with the adjusting gear plate. The sliding protective support plate is adapted to the sliding groove.

[0014] Preferably, the adapter clamping part includes an eleventh electric push rod, a twelfth electric push rod, a lifting sliding plate, a thirteenth electric push rod, a clamping ring, a fifth motor, an auxiliary clamping arm, a clamping and fixing balloon, a pressure sensor, a clamping plate, and a fixing plate. The lifting sliding plate and the eleventh electric push rod are symmetrically arranged, and the driving ends of the two eleventh electric push rods are respectively fixedly connected to the bottom end of the lifting sliding plate. The twelfth and thirteenth electric push rods are uniformly fixedly connected to the lifting sliding plate. The clamping rings are uniformly and symmetrically distributed, and the middle of the inner end of the clamping ring is connected to the twelfth electric push rod. The end of the device is fixedly connected, the auxiliary clamping arm is rotatably installed inside the end of the clamping ring, the fifth motor is fixedly installed on the upper part of both ends of the clamping ring, and the drive end of the fifth motor is fixedly connected to one end of the auxiliary clamping arm through a reducer. The clamping and fixing balloon is fixedly connected to the inner side of the end of the auxiliary clamping arm away from the clamping ring. The fixing plates are symmetrically distributed, and the middle part of the inner end face of the fixing plate is fixedly connected to the drive end of the thirteenth electric push rod. The clamping plates are uniformly fixedly installed on the inner end of the fixing plate, and the pressure sensor is uniformly fixedly installed on the side end face of the clamping plate away from the fixing plate.

[0015] Preferably, the upper end of the first electric push rod is fixedly connected to the bottom end of the support base, the first limiting column is slidably engaged with the support base, the connecting support plate is fixedly connected to the middle of the outer end of the support base, the belt conveyor is located below the ends of the first and second feeding frames, the bottom end of the connecting drive frame is rotatably engaged with the fixed support base, the synchronous rotating gear in the first and second adaptable rotating feeding bodies is meshed, the mounting frame is fixedly connected to the outer end of the connecting drive frame, the lifting sliding plate is slidably engaged with the lifting limiting plate, the eleventh electric push rod is fixedly connected to the lifting limiting plate, the fixed vertical plate is fixedly connected between the mounting frame and the support rail base, the bottom end of the H-shaped support frame is fixedly connected to the conveying rail, and the spacing between the cleaning bodies is the same as the spacing between the support platforms.

[0016] A method for using a bottled drinking water production system, the specific steps of which are as follows:

[0017] Step 1: Two uniformly distributed feeding bodies can simultaneously and uniformly convey and replenish glass bottles into the first and second adaptive rotating feeding bodies, respectively.

[0018] Step 2: After the glass bottles are evenly fed into the first and second adaptive rotating feeding bodies, they can be selectively adapted and clamped according to the shape of the glass bottles. When the glass bottle is square, if the angle of the bottle cannot be fully clamped and fixed at a suitable angle during the clamping process, the square bottle can be automatically and quickly rotated and adjusted to achieve full fit and clamping of the side end face.

[0019] Step 3: The first and second adapter rotating feeding bodies can continuously, evenly, stably, and safely transport and replenish cylindrical and square glass bottles. The glass bottles can be evenly placed on the rubber base by external gripping robotic arms. The drive mechanism can control the sliding frame to slide along the conveying track, so that each bottle on the rubber base moves to the bottom of each cleaning body. Then, the cleaning body can simultaneously clean the inside of the bottle with high-pressure water and air bubbles. The broken air bubbles can make the inside of the bottle clean quickly and thoroughly.

[0020] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0021] I. This invention utilizes two symmetrically distributed, uniformly feeding bodies to simultaneously and uniformly feed and replenish cylindrical or square glass bottles into the first and second adaptive rotating feeding bodies. This allows for the uniform and continuous feeding of individual glass bottles into both bodies. Depending on the bottle's shape, the bottles can be selectively clamped. When a square bottle cannot achieve sufficient surface contact during clamping, the clamping mechanism automatically and quickly adjusts to ensure the side surfaces are fully clamped and secured. Furthermore, the continuous rotating feeding of the glass bottles provides adequate protection and clamping, preventing them from falling during efficient and continuous feeding.

[0022] II. The first and second adaptive rotating feeding bodies of this invention can continuously, uniformly, stably, and safely transport and replenish cylindrical and square glass bottles. The glass bottles can be evenly placed on rubber bases by external gripping robotic arms, or the transported glass bottles can be automatically transported and discharged to each rubber base. The driving mechanism can control the sliding frame to slide along the conveying track, so that each bottle on the rubber base moves to the bottom of each cleaning body. Then, the cleaning body can simultaneously clean the inside of the bottle with high-pressure water and air bubbles. The broken air bubbles can make the inside of the bottle clean quickly and thoroughly. Attached Figure Description

[0023] Figure 1 This is a schematic diagram of the main three-dimensional structure of the present invention;

[0024] Figure 2 This is a schematic diagram of the adaptive clamping and feeding mechanism of the present invention;

[0025] Figure 3 This is a schematic diagram of the uniform feeding main structure of the present invention;

[0026] Figure 4 This is a schematic diagram of the main structure of the material pusher of the present invention;

[0027] Figure 5 This is a schematic diagram of the main structure for adjusting uniform feeding according to the present invention;

[0028] Figure 6 This is a schematic diagram of the bottom structure of the adjustable uniform feeding body of the present invention;

[0029] Figure 7 This is a schematic diagram of the structure of the first adaptive rotating feeding body of the present invention;

[0030] Figure 8 This is a schematic diagram of the structure of the fixing device adapted to this invention;

[0031] Figure 9 This is a schematic diagram of the auxiliary support part of the present invention;

[0032] Figure 10 This is a schematic diagram of the structure of the support and protection part of the present invention;

[0033] Figure 11 This is a schematic diagram of the structure of the clamping part adapted to this invention;

[0034] Figure 12 This is a schematic diagram of the cleaning body of the present invention.

[0035] In the diagram: 1-First limiting column, 2-First electric push rod, 3-Fixed support base, 4-Fixed mounting plate, 5-Adaptive clamping and feeding mechanism, 6-Auxiliary clamping rubber plate, 7-Rubber base, 8-Support platform, 9-Cleaning body, 10-Conveying track, 11-Sliding frame, 12-Second electric push rod, 13-Uniform feeding body, 131-Adjusting uniform feeding body, 14-First adaptive rotating feeding body, 15-First motor, 16-Connecting horizontal plate, 17-Drive wheel, 18-Second adaptive rotating feeding body, 19-Belt conveyor, 20-Sliding support frame, 21-Support 22-Fixing base, 23-Third electric push rod, 24-Buffer protection spring, 25-Push bottle airbag, 26-Limit mounting plate, 27-Second limit column, 28-Connecting support plate, 29-Sliding limit rod, 30-Mounting frame, 31-Second motor, 32-Swing adjusting arm, 33-Rotating wheel, 34-First feeding frame, 35-Second feeding frame, 36-Third motor, 37-Rotating baffle, 38-Fourth electric push rod, 39-Auxiliary adjusting baffle, 40-Fifth electric push rod, 41-Sixth electric push rod, 42-Synchronous rotating gear plate, 43-Connecting Drive frame, 44-rotating shaft, 45-adaptive fixing device, 46-support and protection part, 47-fixed vertical plate, 48-auxiliary support part, 49-adaptive clamping part, 50-seventh electric push rod, 51-support rail seat, 52-eighth electric push rod, 53-sliding control console, 54-sliding control seat, 55-ninth electric push rod, 56-fourth motor, 57-support adjustment platform, 58-rubber pad, 59-tenth electric push rod, 60-support frame plate, 61-controller, 62-fifth motor, 63-adjusting toothed plate, 64-sliding protective support plate, 65-mounting frame, 66- Drive control gear, 67-lifting limit plate, 68-adjusting platform, 69-discharge chute, 70-sliding chute, 71-eleventh electric push rod, 72-twelfth electric push rod, 73-lifting sliding plate, 74-thirteenth electric push rod, 75-clamping ring, 76-fifth motor, 77-auxiliary clamping arm, 78-clamping and fixing balloon, 79-pressure sensor, 80-clamping plate, 81-fixing plate, 82-connecting rod, 83-flushing pipe, 84-air jet hole, 85-water spray hole, 86-connecting conveying pipe, 87-solenoid valve, 88-H-type support frame, 89-fourteenth electric push rod. Detailed Implementation

[0036] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0037] Please see Figure 1 and Figure 12 This invention provides an embodiment of a bottled drinking water production system and method, comprising a first limiting column 1, a first electric push rod 2, a fixed support base 3, a fixed mounting plate 4, an adapter clamping and replenishing mechanism 5, an auxiliary clamping rubber plate 6, a rubber base 7, a support platform 8, a cleaning body 9, a conveying track 10, a sliding frame 11, and a second electric push rod 12. The fixed mounting plate 4 is symmetrically fixedly connected to the upper end of the adapter clamping and replenishing mechanism 5, and the fixed support base 3 is symmetrically arranged at the bottom end of the adapter clamping and replenishing mechanism 5. The first electric push rod 2 is uniformly fixedly installed on the fixed support base 3, and the first limiting column 1 is symmetrically fixedly installed on the fixed support base 3. The conveying track 10 is arranged on the adapter clamping and replenishing mechanism. Below the center of component 5, a sliding frame 11 is slidably engaged with the conveyor rail 10, and the sliding frame 11 slides on the conveyor rail 10 via a traction device. Support platforms 8 are evenly and equidistantly fixed inside the sliding frame 11. A rubber base 7 is fixedly connected to the upper center of the support platform 8. Auxiliary clamping rubber plates 6 are distributed on both sides above the rubber base 7. Second electric push rods 12 are evenly and fixedly installed on both sides of the sliding frame 11, and the front end of the second electric push rod 12 penetrates and is fixedly connected to the inner end of the sliding frame 11 and the auxiliary clamping rubber plate 6. The cleaning body 9 is evenly arranged on the conveyor rail 10. The cleaning body 9 includes a connecting rod 82, a rinsing pipe 83, an air jet hole 84, a water spray hole 85, and a connecting conveyor pipe 86. An H-shaped support frame 88 and a fourteenth electric push rod 89 are connected. The fourteenth electric push rod 89 is fixedly installed on the upper end of the H-shaped support frame 88. A connecting rod 82 is fixedly connected to the bottom end of the fourteenth electric push rod 89. A flushing pipe 83 is fixedly connected to the bottom end of the connecting rod 82, and the connecting rod 82 communicates internally with the flushing pipe 83. A connecting conveying pipe 86 is symmetrically fixedly connected to the outside of the connecting rod 82, and a solenoid valve 87 is fixedly installed on the connecting conveying pipe 86. The connecting rod 82 and the flushing pipe 83 are slidably engaged on the H-shaped support frame 88. Air jet holes 84 and water jet holes 85 are evenly and alternately arranged on the flushing pipe 83. The fourteenth electric push rod 89 causes the connecting rod 82 to slide downward along the H-shaped support frame 88, causing the flushing pipe 83 to slide downward. The connecting rod 82 is inserted into the bottle body. The connecting conveying pipes 86 on both sides of the connecting rod 82 are fixedly connected to the high-pressure clean water conveying hose and the gas conveying hose, respectively. The high-pressure clean water and gas can be discharged from the inside of the jet hole 84 and the water spray hole 85 through the solenoid valve 87, so that the high-pressure water flow sprayed into the bottle body is mixed with high-pressure bubbles. Thus, the high-pressure water flow and the fine bubbles are mixed into the inside of the bottle body, so that the inside of the bottle body is quickly and efficiently rinsed. After rinsing, the bottle body is removed by the external mechanical clamping arm to complete the subsequent processing. At this time, the sliding frame 11 slides back to the bottom of the first adapter rotating feeding body 14 and the second adapter rotating feeding body 18 to receive the glass continuously and automatically.

[0038] Please see Figure 2 and Figure 7 The adaptable clamping and feeding mechanism 5 includes a uniform feeding body 13, a first adaptable rotating feeding body 14, a first motor 15, a connecting horizontal plate 16, a drive wheel 17, and a second adaptable rotating feeding body 18. The drive wheel 17 is rotatably clamped to the upper parts of both ends of the connecting horizontal plate 16. The drive end of the first motor 15 is fixedly connected to the middle of the upper end of the drive wheel 17 located on one side. The first adaptable rotating feeding body 14 and the second adaptable rotating feeding body 18 are located at the bottom of both ends of the connecting horizontal plate 16, and the first adaptable rotating feeding body 14 and the second adaptable rotating feeding body 18 have the same structure. The two uniform feeding bodies 13 are respectively located on the outside of the first adaptable rotating feeding body 14 and the second adaptable rotating feeding body 18. 4. Both the first and second adapter rotating feeding bodies 18 include a synchronous rotating gear 42, a connecting drive frame 43, a rotating shaft 44, and an adapter fixing device 45. There are six adapter fixing devices 45, which are evenly distributed on the outer end of the connecting drive frame 43. The rotating shaft 44 is fixedly installed in the middle of the connecting drive frame 43. The middle part of the synchronous rotating gear 42 is fixedly connected to the upper end of the rotating shaft 44. The first motor 15 can be fixedly installed on the mounting frame that is fixedly connected to the fixed mounting plate 4 to achieve fixed installation. The fixed mounting plate 4 can be fixedly installed with the external mounting frame. When the first motor 15 is not installed, the drive wheel 17 can be connected to the external drive device by the drive belt to drive the equipment.

[0039] Please see Figure 3 The uniform feeding body 13 includes a belt conveyor 19, a sliding support frame 20, a support fixing seat 21, a pushing body 22, and an adjusting uniform feeding body 131. The sliding support frame 20 is uniformly and fixedly connected to both sides of the adjusting uniform feeding body 131, and the bottom end of the sliding support frame 20 is slidably engaged with the support fixing seat 21. The pushing body 22 is fixedly connected to the middle of the outer end of the support fixing seat 21. The belt conveyor 19 is fixedly installed in the middle of the end of the support fixing seat 21 away from the pushing body 22, and the belt conveyor 19 is located below the end of the adjusting uniform feeding body 131. The sliding support frame 20 plays a role in sliding support and limiting, and the belt conveyor 19 stably transports the bottle with the help of the rotating rubber belt.

[0040] Please see Figure 4The feeding body 22 includes a third electric push rod 23, a buffer protective spring 24, a bottle pushing airbag 25, a limiting mounting plate 26, a second limiting column 27, a connecting support plate 28, and a sliding limiting rod 29. The third electric push rod 23 is fixedly installed in the middle of the upper end of the connecting support plate 28. The sliding limiting rods 29 are symmetrically arranged and are slidably engaged with the upper end of the connecting support plate 28. The driving end of the third electric push rod 23 is fixedly connected to the end of the sliding limiting rod 29. The limiting mounting plate 26 is fixedly connected to the other end of the sliding limiting rod 29 by bolts. At one end, the buffer protective spring 24 is evenly and fixedly connected to the side end of the limiting mounting plate 26 away from the sliding limiting rod 29. The bottle pushing airbag 25 is fixedly connected to the side end of the buffer protective spring 24 away from the limiting mounting plate 26. The second limiting column 27 is fixedly connected to the inner sides of both ends of the bottle pushing airbag 25, and the second limiting column 27 is slidably engaged with the limiting mounting plate 26. The bottle pushing airbag 25 can push the bottle body, and the bottle pushing airbag 25 and the buffer protective spring 24 play a protective role, so that the glass bottle will not be damaged or broken during the pushing process.

[0041] Please see Figure 5 and Figure 6The adjustable feeding body 131 includes a mounting frame 30, a second motor 31, a swing adjusting arm 32, a rotating wheel 33, a first feeding frame 34, a second feeding frame 35, a third motor 36, a rotating baffle 37, a fourth electric push rod 38, an auxiliary adjusting baffle 39, a fifth electric push rod 40, and a sixth electric push rod 41. The first feeding frame 34 and the second feeding frame 35 are mirror-symmetrically distributed. The inner end of the first feeding frame 34 is slidably engaged with the inner end of the second feeding frame 35. The swing adjusting arm 32 is rotatably mounted on the first feeding frame 34 and the second feeding frame, respectively. Inside and outside the 35, rotating wheels 33 are uniformly installed inside the swing adjusting arm 32. A second motor 31 is fixedly installed on the mounting frame 30. The drive end of the second motor 31 is fixedly connected to the end of the swing adjusting arm 32 via a reducer. Three rotating baffles 37 are fixedly connected, and the middle portions of two sets of three rotating baffles 37 are respectively rotatably engaged inside the first feeding frame 34 and the second feeding frame 35. Two third motors 36 are respectively fixedly installed at the bottom ends of the first feeding frame 34 and the second feeding frame 35, and the drive ends of the two third motors 36 are connected via a reducer. The device is fixedly connected to the bottom middle of the two sets of rotating baffles 37 respectively. The fourth electric push rod 38 is fixedly connected to the side end of the rotating baffle 37. The auxiliary adjusting baffle 39 is slidably engaged inside the rotating baffle 37, and the driving end of the fourth electric push rod 38 is fixedly connected to the side end of the auxiliary adjusting baffle 39. The fifth electric push rod 40 and the sixth electric push rod 41 are symmetrically distributed below the first feeding frame 34 and the second feeding frame 35, and the driving end of the fifth electric push rod 40 is fixedly connected to the bottom end of the second feeding frame 35, and the driving end of the sixth electric push rod 41 is fixedly connected to the bottom end of the first feeding frame 35. The bottom end of 4 is fixedly connected. The whole assembly of the first feeding frame 34 and the second feeding frame 35 is conical in shape, and the first feeding frame 34 and the second feeding frame 35 can slide relative to each other, so that the size of the gap between the ends of the first feeding frame 34 and the second feeding frame 35 can be adjusted and controlled according to the different sizes of the bottles being conveyed. With the help of the set rotating baffle 37 and auxiliary adjusting baffle 39, glass bottles of different sizes can be evenly and uniformly discharged, so that the glass bottles are evenly and uniformly conveyed to the middle of the belt conveyor 19, realizing the automatic replenishment and conveying of bottles.

[0042] Please see Figure 8 The adapter fixing device 45 includes a support and protection part 46, a fixing vertical plate 47, an auxiliary support part 48, and an adapter clamping part 49. The auxiliary support part 48 is connected to the lower part of the support and protection part 46 through the fixing vertical plate 47. The adapter clamping part 49 is located at the front end of the support and protection part 46. The fixing vertical plate 47 serves to fix, support, and connect.

[0043] Please see Figure 9The auxiliary support unit 48 includes a seventh electric push rod 50, a support rail seat 51, an eighth electric push rod 52, a sliding control console 53, a sliding control seat 54, a ninth electric push rod 55, a fourth motor 56, a support adjustment platform 57, and a rubber pad 58. The sliding control console 53 is slidably engaged with the support rail seat 51, and the sliding control seat 54 is slidably engaged with the sliding control console 53. The seventh electric push rod 50 is fixedly installed on both sides of the support rail seat 51, and the eighth electric push rod 52 is fixedly installed on both sides of the sliding control console 53. The front end of the seventh electric push rod 50 is fixedly connected to the side end of the sliding control console 53, and the eighth electric push rod 55... The drive end is fixedly connected to the side end of the sliding control seat 54. The ninth electric push rod 55 is fixedly installed on the sliding control seat 54. The fourth motor 56 is fixedly installed on the mounting plate set on the upper end of the ninth electric push rod 55. The drive end of the fourth motor 56 is connected to the support adjustment platform 57 through the reducer. The upper end of the support adjustment platform 57 is fixedly connected to the rubber pad 58. The support adjustment platform 57 and the rubber pad 58 play a supporting role. When the support adjustment platform 57 and the rubber pad 58 rotate forward and backward, the position of the square glass bottle can be adjusted and controlled, so that the side end face of the square glass bottle is fully clamped and fixed.

[0044] Please see Figure 10The support and protection unit 46 includes a tenth electric push rod 59, a support frame plate 60, a controller 61, a fifth electric motor 62, an adjusting gear plate 63, a sliding protective support plate 64, a mounting frame 65, a drive control gear 66, a lifting limit plate 67, an adjusting platform 68, a discharge chute 69, and a sliding groove 70. The support frame plate 60 is fixedly connected to the upper end of the mounting frame 65. The tenth electric push rod 59 is symmetrically fixedly installed on the support frame plate 60. The inner side of the adjusting platform 68 is slidably engaged with the side end of the mounting frame 65. The discharge chute 69 is longitudinally opened through the adjusting platform 68. The sliding groove 70 is transversely opened through the adjusting platform 68. The lifting limit plate 67 is fixedly connected to the outer end of the mounting frame 65. The controller 61 is fixedly installed on the mounting frame 65. The sliding protective support plate... The sliding support plate 64 is slidably engaged with the mounting frame 65. The adjusting gear plate 63 is symmetrically fixedly connected to the upper end of the sliding protective support plate 64. The drive control gear 66 is rotated and engaged inside the mounting frame 65. The fifth motor 62 is fixedly mounted on the mounting frame 65, and the drive end of the fifth motor 62 is fixedly connected to the middle of the drive control gear 66 through a reducer. The drive control gear 66 is meshed with the adjusting gear plate 63. The sliding protective support plate 64 is adapted to the sliding groove 70. The sliding protective support plate 64 blocks the discharge groove 69 by sliding laterally, and the upper end surface of the sliding protective support plate 64 is almost flush with the upper end surface of the adjusting table 68. This allows the sliding protective support plate 64 to act as a barrier to protect the bottom of the glass bottle and prevent it from falling during the rotation of the mounting frame 65.

[0045] Please see Figure 11The adapter clamping part 49 includes an eleventh electric push rod 71, a twelfth electric push rod 72, a lifting sliding plate 73, a thirteenth electric push rod 74, a clamping ring 75, a fifth motor 76, an auxiliary clamping arm 77, a clamping and fixing balloon 78, a pressure sensor 79, a clamping plate 80, and a fixing plate 81. The lifting sliding plate 73 and the eleventh electric push rod 71 are symmetrically arranged, and the driving ends of the two eleventh electric push rods 71 ​​are respectively fixedly connected to the bottom end of the lifting sliding plate 73. The twelfth electric push rod 72 and the thirteenth electric push rod 74 are evenly fixedly connected to the lifting sliding plate 73. The clamping rings 75 are evenly and symmetrically distributed, and the middle of the inner end of the clamping ring 75 is fixedly connected to the end of the twelfth electric push rod 72. The auxiliary clamping arm 77 is rotatably installed inside the end of the clamping ring 75. The fifth motor... 76 is fixedly installed on the upper part of both ends of the clamping ring 75, and the drive end of the fifth motor 76 is fixedly connected to one end of the auxiliary clamping arm 77 through a reducer. The clamping and fixing balloon 78 is fixedly connected to the inner side of the auxiliary clamping arm 77 away from the clamping ring 75. The fixing plates 81 are symmetrically distributed. The middle part of the inner end face of the fixing plate 81 is fixedly connected to the drive end of the thirteenth electric push rod 74. The clamping plate 80 is evenly fixedly installed on the inner end of the fixing plate 81. The pressure sensor 79 is evenly fixedly installed on the side end face of the clamping plate 80 away from the fixing plate 81. The clamping ring 75 and the fixing plate 81 are adapted to conveniently clamp and fix cylindrical and square glass bottles. The pressure sensor inside the clamping and fixing balloon 78 and the pressure sensor 79 evenly arranged on the clamping plate 80 are used to fully and accurately clamp and fix the glass bottle.

[0046] The upper end of the first electric push rod 2 is fixedly connected to the bottom end of the support base 21. The first limiting column 1 is slidably engaged with the support base 21. The connecting support plate 28 is fixedly connected to the middle of the outer end of the support base 21. The belt conveyor 19 is located below the ends of the first feeding frame 34 and the second feeding frame 35. The bottom end of the connecting drive frame 43 is rotatably engaged with the fixed support base 3. The synchronous rotating gear disc 42 in the first adaptable rotating feeding body 14 and the second adaptable rotating feeding body 18 is meshed and connected. The mounting frame is installed. The mounting frame 65 is fixedly connected to the outer end of the connecting drive frame 43. The lifting sliding plate 73 is slidably engaged with the lifting limit plate 67. The eleventh electric push rod 71 is fixedly connected to the lifting limit plate 67. The fixed vertical plate 47 is fixedly connected between the mounting frame 65 and the support rail seat 51. The bottom end of the H-shaped support frame 88 is fixedly connected to the conveying rail 10. The spacing between the cleaning bodies 9 is the same as the spacing between the support platforms 8, which allows the cleaning bodies 9 to accurately and conveniently rinse the bottles in the middle of the support platform 8.

[0047] A method for using a bottled drinking water production system, the specific steps of which are as follows:

[0048] Step 1: Two uniformly distributed feeding bodies 13 can simultaneously and uniformly convey and replenish glass bottles into the first and second adapted rotating feeding bodies 14 and 18, respectively.

[0049] Step 2: After the glass bottles are evenly fed into the first and second adaptive rotating feeding bodies 14 and 18, they can be selectively adapted and clamped according to the shape of the glass bottles. When the glass bottle is square, if the angle of the bottle cannot be fully clamped and fixed at a suitable angle during the clamping process, the square bottle can be automatically and quickly rotated and adjusted to achieve full fit and clamping of the side end face.

[0050] Step 3: The first and second adapter rotating feeding bodies 14 and 18 can continuously, evenly, stably and safely transport and replenish cylindrical and square glass bottles. The glass bottles can be evenly placed on the rubber base 7 by external gripping robotic arms. The sliding frame 11 can be controlled to slide along the conveying track 10 through the drive mechanism, so that each bottle on the rubber base 7 moves to the bottom of each cleaning body 9. Then, the cleaning body 9 can simultaneously clean the inside of the bottle with high-pressure water and air bubbles. The broken air bubbles can make the inside of the bottle clean quickly and thoroughly.

[0051] Working Principle: During use, a large number of glass bottles requiring supply, cleaning, and filling are placed at once inside the first and second feeding frames 34 and 35. This equipment can be combined with external robotic arms and other devices. Parameters are input via the control panel to achieve coordinated control and operation. Activating the third electric push rod 23 controls the sliding limit rod 29 to reciprocate on the connecting support plate 28 in a regular, intermittent manner. This controls the reciprocating movement of the limit mounting plate 26 and the bottle-pushing airbag 25 inside the first and second feeding frames 34 and 35. The forward-moving limit mounting plate 26 and bottle-pushing airbag 25 push the bottles inside the first and second feeding frames 34 and 35, thus... During the bottle feeding process, the bottle-pushing airbag 25 and the compression buffer spring 24 allow the bottle-pushing airbag 25 to slide on the limiting mounting plate 26 with the help of the second limiting column 27, which plays a buffering and safety protection role. This prevents excessive pressure on the bottle body during the feeding process, thus preventing the bottle body from breaking. Furthermore, during the feeding process, the bottle-pushing airbag 25 activates the second motor 31 installed on the first and second feeding frames 34 and 35. The second motor 31 causes the swing adjustment arm 32 installed inside the first and second feeding frames 34 and 35 to swing, moving the glass bottle inside the first and second feeding frames 34 and 35 to the center of the frames. This allows the glass bottles placed at various positions inside the first and second feeding frames 34 and 35 to be fully pushed by the bottle-pushing airbag 25. The rotating wheel 33 inside the swing adjusting arm 32 ensures smooth bottle pushing. Since the first and second feeding frames 34 and 35 together form a cone shape, the bottle-pushing airbag 25 pushes the stacked glass bottles to the narrower end of the first and second feeding frames 34 and 35. At this time, the rotating baffle 37 and the fourth electric push rod 38 at the ends of the first and second feeding frames 34 and 35 rotate slowly and uniformly under the drive of the third motor 36 and the reducer, allowing the bottles to enter the very end of the first and second feeding frames 34 and 35 and move to the rotating baffle 37 and the fourth electric push rod 38. One glass bottle in the rotation stroke of the push rod 38 is individually moved from the end of the first feeding frame 34 and the second feeding frame 35 to the running belt conveyor 19 under the partition drive of the third motor 36 and the rotating baffle 37, thus completing the feeding and conveying. The rotation speed of the rotating baffle 37 and the fourth electric push rod 38 is adapted to the frequency of the bottle pushing airbag 25 and the limiting mounting plate 26 to operate in coordination, so that the glass bottles can be uniformly conveyed one by one from the end of the first feeding frame 34 and the second feeding frame 35 to the belt conveyor 19. The outer ends of the rotating baffle 37 and the auxiliary adjusting baffle 39 are fixedly connected with thick silicone protective sleeves by bolts, which play a role in protecting the bottle and increasing the glass between the bottle and the glass.

[0052] Since the first feeding frame 34 and the second feeding frame 35 form a cone shape, the fifth electric push rod 40 and the sixth electric push rod 41, which are fixed on the support base 21, are activated according to the size of the glass bottles being conveyed. Through the fifth electric push rod 40 and the sixth electric push rod 41, the first feeding frame 34 and the second feeding frame 35 can slide stably along the support base 21 under the stable support of the sliding support frame 20. This adjusts and controls the size of the cone-shaped whole formed by the first feeding frame 34 and the second feeding frame 35, as well as the gap at the end of the whole. This allows the bottle-pushing airbag 25 and the limiting mounting plate 26 to continuously push the stacked glass bottles towards the openings at the ends of the first feeding frame 34 and the second feeding frame 35. During pushing, under the control of the swing adjusting arm 32 and the rotating wheel 33, the bottles near the end opening are arranged in a single, neat row, facilitating the single conveying of the end glass bottles. When the glass bottle is cylindrical, the symmetrically rotating auxiliary adjusting baffle 39 can be easily inserted into the gaps between the bottles. Through the rotating baffle 37 and the auxiliary adjusting baffle 39, the bottles are discharged from the ends of the first discharge frame 34 and the second discharge frame 35 to the middle of the belt conveyor 19. The upper surface of the belt conveyor 19 is slightly lower than the height of the discharge outlets at the ends of the first discharge frame 34 and the second discharge frame 35, allowing the discharged bottles to be stably conveyed in the middle of the belt conveyor 19. Under the control of the controller, the conveyor 19 and the feeding device operate intermittently in coordination. When the glass bottle being conveyed is square-shaped, the symmetrically rotating baffle 37 and the auxiliary adjusting baffle 39 rotate. During the rotation, when the auxiliary adjusting baffle 39 moves to the position of the first feeding frame 34 and the second feeding frame 35, the fourth electric push rod 38 drives the auxiliary adjusting baffle 39, along with the silicone sleeve on the auxiliary adjusting baffle 39, to slide along the rotating baffle 37 into the interior of the rotating baffle 37, so that the end of the auxiliary adjusting baffle 39 contacts the bottle. At this time, the symmetrically distributed rotating ends of the auxiliary adjusting baffle 39 clamp and push the square-shaped glass bottle at the very end forward a short distance, and then symmetrically... The distributed auxiliary adjustment baffles 39 are slid outward and reset along the rotating baffles 37 by the action of the fourth electric push rod 38. At this time, the normally rotating rotating baffles 37 and the auxiliary adjustment baffles 39 can smoothly and individually push the last square-shaped glass bottle out from the ends of the first discharge frame 34 and the second discharge frame 35 and fall into the middle of the belt conveyor 19. This process is mainly to prevent the end faces of the square-shaped glass bottles located between the ends of the first discharge frame 34 and the second discharge frame 35 from sticking together, and to prevent the symmetrically rotating rotating baffles 37 and the auxiliary adjustment baffles 39 from being able to insert into the gaps in the bottle body during rotation. Therefore, it is fully ensured that the square-shaped glass bottles can be transported individually.Furthermore, the thick silicone protective sleeve on the outside of the auxiliary adjustment baffle 39 allows sufficient compression deformation to be reserved when the symmetrically distributed auxiliary adjustment baffles 39 rotate to instantly clamp the side of the glass bottle, enabling the last glass bottle to achieve a single displacement. This ensures that the point where the end of the auxiliary adjustment baffle 39 contacts the bottle body does not have rigid contact with the bottle body, while also allowing for a safe and brief clamping movement of the glass bottle during rotation. This prevents the bottle body from being crushed and broken, and also allows for complete separation of the last square glass bottle from the inner bottle body, enabling individual feeding.

[0053] After the bottle passes through the middle of the belt conveyor 19, the belt conveyor 19 automatically rotates under the control of an external controller or control system, stably conveying the bottle to the auxiliary support 48. During this process, the bottle can be directly clamped and placed in the middle of the adjusting platform 68 by an external gripping robotic arm. At this time, the bottom of the bottle is supported by the adjusting platform 57 and the rubber pad 58. Alternatively, because the height of the middle end of the belt conveyor 19 is slightly higher than the height of the adjusting platform 68, the bottle discharged from the end of the belt conveyor 19 falls onto the adjusting platform 68 due to inertia during the conveying process. Furthermore, the adjusting platform 57 and the rubber pad 58 are located inside the discharge chute 69, and the rubber pad 58 protects the bottom of the falling bottle. This ensures safety and prevents breakage during free-fall. By activating the tenth electric push rod 59, the adjusting platform 68 can be controlled to slide and rise along the mounting frame 65, adjusting and controlling the height and position of the receiving platform 68. When the cylindrical glass bottle falls onto the adjusting platform 68 and its bottom is fully supported by the supporting adjusting platform 57 and rubber pads 58, the symmetrically distributed twelfth electric push rod 72 is simultaneously activated. The twelfth electric push rod 72 clamps the symmetrically distributed clamping rings 75 towards the bottle, ensuring that the symmetrically arranged clamping rings 75 simultaneously and centrally fix the cylindrical bottle on both sides. Simultaneously, the fifth motors 76 are activated, and through the fifth motors 76 and the reducer, the auxiliary clamping arms 77 rotate, allowing the auxiliary clamping arms to... The clamping and fixing balloons 78, located on the inner side of the end of the clamping arm 77, provide further auxiliary clamping and fixing at various positions of the cylindrical glass bottle. This is particularly effective when the cylindrical glass bottle has varying thicknesses at different points, allowing for multi-point adaptive clamping and fixing. Each clamping and fixing balloon 78 is equipped with a pressure sensor to control the clamping force, ensuring the cylindrical glass bottle is fully and stably fixed in the center of the adjusting platform 68. When the bottle is square-shaped, after it reaches the center of the adjusting platform 68, the eleventh electric push rod 71 automatically operates, sliding the lifting sliding plate 73 upwards along the lifting limit plate 67 at a specified high speed. At this time, the fixing plate 81 moves to both sides of the adjusting platform 68, and then symmetrically... The thirteenth electric push rod 74 drives the symmetrically distributed fixing plates 81 to move slowly a short distance. At this time, the pressure sensors 79, which are evenly distributed on the inner side of the fixing plates 81, can detect the squeezing force. When the pressure values ​​detected by the pressure sensors 79 at each position are the same or within the error range, it indicates that the symmetrically distributed fixing plates 81 are tightly fitted to the side end face of the square-shaped glass bottle to achieve clamping. The symmetrically distributed fixing plates 81 can center and clamp the square-shaped glass bottle on the adjusting table 68. When the pressure values ​​detected by the pressure sensors 79 are different or the difference is large, the fixing plates 81 are fitted to the end face of the square-shaped glass bottle, indicating that the square-shaped glass bottle is tilted on the adjusting table 68.At this time, the thirteenth electric push rod 74 controls the fixed plate 81 to slide back and forth a certain distance synchronously. The fourth motor 56 drives the support adjustment platform 57 and the rubber pad 58 to rotate in both directions through the reducer, so that the square glass bottle can rotate in both directions. During the rotation, the symmetrically distributed fixed plates 81 are located on the outside of the bottle, so that the position of the bottle can be adjusted during the rotation, so that the side end face of the bottle can be as parallel and close as possible to the fixed plate 81. Then, the thirteenth electric push rod 74 is started again synchronously, and the thirteenth electric push rod 74 controls the symmetrically distributed fixed plates 81 to move synchronously towards the center of the adjustment platform 68 again. At this time, the symmetrically distributed fixed plates 81 can accurately squeeze and adjust with the side end face of the square glass bottle and tightly clamp and fix it. This ensures that the square glass bottle is not clamped and fixed by linear squeezing contact between the edges, but by precise and sufficient surface contact between the end faces. This system ensures that cylindrical or square glass bottles added to the first and second adaptive rotating feeding bodies 14 and 18 can be firmly and stably clamped and fixed. During clamping, pressure sensors detect whether materials are being clamped on the adjusting platforms 68 at various positions. Upon detection, the information is transmitted to the controller 61, which then controls the first motor 15 to operate. The first motor 15, through a reducer, causes the synchronous rotating gear 42 in the first adaptive rotating feeding body 14 to rotate. This, in turn, drives the synchronous rotating gear 42 in the second adaptive rotating feeding body 18 to rotate synchronously. This allows the symmetrically distributed, uniformly feeding bodies 13 to continuously and automatically feed materials to the adjusting platforms 68 in both bodies, significantly improving efficiency.

[0054] Furthermore, by using the synchronous rotating gear disc 42 to drive the connecting drive frame 43 and the rotating shaft 44 to rotate at a uniform speed, the various adapter fixing devices 45 can be rotated stably and uniformly, ensuring the stable and safe rotation and conveying of the bottle. During the conveying process, the glass bottle is not only clamped and fixed, but its bottom can also be supported by the support adjustment platform 57 and rubber pad 58 located in the discharge chute 69, preventing the bottle from falling during the replenishment process. When the glass bottle is rotated and conveyed to the designated position, the clamping and fixing force of the glass bottle is released, and the external clamping mechanical arm clamps each glass bottle and places it in the middle of each rubber base 7. When this equipment does not need to be used with the external mechanical clamping arm, the first adapter rotating feeding body 14 and the second adapter... Below the rotating feeding body 18 are auxiliary clamping rubber plates 6, rubber bases 7, support platforms 8, cleaning bodies 9, conveying tracks 10, sliding frames 11, and a second electric push rod 12. When the glass bottle is just fixed in the middle of the adjusting platform 68, the ninth electric push rod 55 is activated to move the supporting adjusting platform 57 and the rubber pad 58 downwards to be discharged from the inside of the discharge chute 69, and to move the rubber pad 58 to the bottom of the mounting frame 65. Then, the seventh electric push rod 50 and the eighth electric push rod 52 are activated. The eighth electric push rod 52 controls the sliding control seat 54 to slide along the sliding control console 53, and the sliding control console 53 slides along the support track seat 51, so that the fourth motor 56 and the supporting adjusting platform 57... The rubber pad 58 moves to the bottom of the mounting frame 65, and then the fifth motor 62 runs. The running fifth motor 62 drives the adjusting tooth plate 63 and the sliding protective support plate 64 to slide forward along the mounting frame 65 through the reducer. At this time, the sliding protective support plate 64, which slides forward, inserts into the sliding groove 70 and blocks the discharge groove 69. The sliding protective support plate 64, which slides into the discharge groove 69, can support and protect the bottom of the bottle, so that the bottle can be easily clamped and fixed by the sliding protective support plate 64 during the rotation and conveying process, thus playing a role in safety protection against falling. After the bottle is conveyed to the top of the rubber base 7, the sliding protective support plate 64 slides back to its original position. Furthermore, the tenth electric push rod 59 and the eleventh electric push rod 71 operate synchronously, causing the adjusting table 68 and the clamped glass bottle to slide down a certain distance. Then, the clamping ring 75 or the fixing plate 81 slides back to release the clamping force. At this time, the glass bottle falls from the inside of the discharge chute 69 and lands safely in the middle of the rubber base 7. Then, the second electric push rod 12 drives the auxiliary clamping rubber plate 6 to clamp and limit the two sides of the falling glass bottle. Then, under the control of the externally set driving electric push rod or the pull driving rope set at both ends of the sliding frame 11 and other driving components or driving mechanisms, the sliding frame 11 slides along the conveying track 10, so that the uniformly conveyed bottle can be uniformly conveyed to the middle of the rubber base 7 and then fixed.

[0055] After the bottles are fixed on each rubber base 7, the sliding frame 11, similarly controlled by the external drive electric push rod or the pull drive ropes or other drive components or mechanisms at both ends of the sliding frame 11, slides along the conveyor track 10 and moves to below each cleaning body 9. This moves each clamped and fixed glass bottle directly below the rinsing pipe 83 in the cleaning body 9. Then, the fourteenth electric push rod 89 is activated, causing the connecting rod 82 to slide downwards along the H-shaped support frame 88, allowing the rinsing pipe 83 to slide into the interior of the bottle. The connecting conveyor pipes 86 on both sides of the connecting rod 82 are respectively connected to... The high-pressure water delivery hose and the gas delivery hose are fixedly connected. The solenoid valve 87 allows the high-pressure water and gas to be discharged from the inside of the jet hole 84 and the water spray hole 85, so that the high-pressure water flow sprayed into the bottle body is mixed with high-pressure air bubbles. Thus, the high-pressure water flow and the fine air bubbles are mixed into the inside of the bottle body, so that the inside of the bottle body is quickly and efficiently rinsed. After rinsing, the bottle body is removed by the external mechanical clamping arm for subsequent processing. At this time, the sliding frame 11 slides back to the bottom of the first adapter rotating feeding body 14 and the second adapter rotating feeding body 18 to receive the glass continuously and automatically.

[0056] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A bottled drinking water production system, comprising a first limiting column (1), a first electric push rod (2), a fixed support base (3), a fixed mounting plate (4), an adaptive clamping and feeding mechanism (5), an auxiliary clamping rubber plate (6), a rubber base (7), a support platform (8), a cleaning body (9), a conveying track (10), a sliding frame (11), and a second electric push rod (12), characterized in that: The fixed mounting plate (4) is symmetrically fixedly connected to the upper end of the adapter clamping and feeding mechanism (5). The fixed support base (3) is symmetrically arranged at the bottom end of the adapter clamping and feeding mechanism (5). The first electric push rod (2) is uniformly fixedly installed on the fixed support base (3). The first limiting column (1) is symmetrically fixedly installed on the fixed support base (3). The conveying track (10) is arranged below the middle part of the adapter clamping and feeding mechanism (5). The sliding frame (11) is slidably engaged on the conveying track (10). The sliding frame (11) is traction-driven in the conveying track. The conveying track (10) slides, the support platform (8) is evenly and equidistantly fixed inside the sliding frame (11), the rubber base (7) is fixedly connected to the upper middle part of the support platform (8), the auxiliary clamping rubber plate (6) is distributed on both sides above the rubber base (7), the second electric push rod (12) is evenly and fixedly installed on both sides of the sliding frame (11), and the front end of the second electric push rod (12) penetrates and inserts into the sliding frame (11) and is fixedly connected to the inner end of the auxiliary clamping rubber plate (6), and the cleaning body (9) is evenly arranged on the conveying track (10); The adaptive clamping and feeding mechanism (5) includes a uniform feeding body (13), a first adaptive rotating feeding body (14), a first motor (15), a connecting horizontal plate (16), a drive wheel (17), and a second adaptive rotating feeding body (18). The drive wheel (17) is rotatably clamped at the upper ends of the connecting horizontal plate (16). The drive end of the first motor (15) is fixedly connected to the middle of the upper end of the drive wheel (17). The first adaptive rotating feeding body (14) and the second adaptive rotating feeding body (18) are located at the bottom ends of the connecting horizontal plate (16), and the first adaptive rotating feeding body (14) and the second adaptive rotating feeding body (18) have the same structure. The two uniform feeding bodies... The body (13) is respectively disposed on the outside of the first adaptive rotating feeding body (14) and the second adaptive rotating feeding body (18). The first adaptive rotating feeding body (14) and the second adaptive rotating feeding body (18) each include a synchronous rotating toothed disc (42), a connecting drive frame (43), a rotating shaft (44) and an adaptive fixing device (45). The adaptive fixing device (45) includes an adaptive clamping part (49), and there are six of them. The six adaptive fixing devices (45) are evenly distributed on the outer end of the connecting drive frame (43). The rotating shaft (44) is fixedly installed in the middle of the connecting drive frame (43). The middle part of the synchronous rotating toothed disc (42) is fixedly connected to the upper end of the rotating shaft (44). The cleaning body (9) includes a connecting rod (82), a flushing pipe (83), a jet nozzle (84), a water spray nozzle (85), a connecting conveying pipe (86), an H-shaped support frame (88), and a fourteenth electric push rod (89). The fourteenth electric push rod (89) is fixedly installed on the upper end of the H-shaped support frame (88). The connecting rod (82) is fixedly connected to the bottom end of the fourteenth electric push rod (89). The flushing pipe (83) is fixedly connected to the bottom end of the connecting rod (82), and the connecting rod (82) communicates with the interior of the flushing pipe (83). The connecting rod (82) is symmetrically fixedly connected to the outside of the connecting rod (86), and a solenoid valve (87) is fixedly installed on the connecting conveying pipe (86). The connecting rod (82) and the flushing pipe (83) are slidably engaged on the H-shaped support frame (88). The jet nozzle (84) and the water spray nozzle (85) are evenly staggered on the flushing pipe (83). The adapter clamping part (49) includes an eleventh electric push rod (71), a twelfth electric push rod (72), a lifting sliding plate (73), a thirteenth electric push rod (74), a clamping ring (75), a fifth motor (76), an auxiliary clamping arm (77), a clamping and fixing balloon (78), a pressure sensor (79), a clamping plate (80), and a fixing plate (81). The lifting sliding plate (73) is symmetrically arranged, and the eleventh electric push rods (71) are symmetrically arranged. The driving ends of the two eleventh electric push rods (71) are respectively fixedly connected to the bottom end of the lifting sliding plate (73). The twelfth electric push rod (72) and the thirteenth electric push rod (74) are evenly fixedly connected to the lifting sliding plate (73). The clamping rings (75) are evenly and symmetrically distributed, and the middle of the inner end of the clamping ring (75) is connected to the twelfth electric push rod (74). The end of the electric push rod (72) is fixedly connected, the auxiliary clamping arm (77) is rotatably installed inside the end of the clamping ring (75), the fifth motor (76) is fixedly installed on the upper part of both ends of the clamping ring (75), and the drive end of the fifth motor (76) is fixedly connected to one end of the auxiliary clamping arm (77) through a reducer, the clamping and fixing balloon (78) is fixedly connected to the inner side of the end of the auxiliary clamping arm (77) away from the clamping ring (75), the fixing plates (81) are symmetrically distributed, the middle part of the inner end face of the fixing plate (81) is fixedly connected to the drive end of the thirteenth electric push rod (74), the clamping plate (80) is uniformly fixedly installed on the inner end of the fixing plate (81), and the pressure sensor (79) is uniformly fixedly installed on the side end face of the clamping plate (80) away from the fixing plate (81).

2. The bottled drinking water production system according to claim 1, characterized in that: The uniform feeding body (13) includes a belt conveyor (19), a sliding support frame (20), a support fixing seat (21), a pushing body (22), and an adjusting uniform feeding body (131). The sliding support frame (20) is uniformly and fixedly connected to both sides of the adjusting uniform feeding body (131), and the bottom end of the sliding support frame (20) is slidably engaged with the support fixing seat (21). The pushing body (22) is fixedly connected to the middle of the outer end of the support fixing seat (21). The belt conveyor (19) is fixedly installed at the middle of the end of the support fixing seat (21) away from the pushing body (22), and the belt conveyor (19) is located below the end of the adjusting uniform feeding body (131).

3. A bottled drinking water production system according to claim 2, characterized in that: The feeding body (22) includes a third electric push rod (23), a buffer protective spring (24), a bottle pushing airbag (25), a limiting mounting plate (26), a second limiting column (27), a connecting support plate (28), and a sliding limiting rod (29). The third electric push rod (23) is fixedly installed in the upper middle part of the connecting support plate (28). The sliding limiting rod (29) is symmetrically arranged and passes through and is slidably engaged with the upper end of the connecting support plate (28). The driving end of the third electric push rod (23) is connected to the end of the sliding limiting rod (29). The limiting mounting plate (26) is fixedly connected to the other end of the sliding limiting rod (29) by bolts. The buffer protection spring (24) is evenly fixedly connected to the side end of the limiting mounting plate (26) away from the sliding limiting rod (29). The bottle pusher airbag (25) is fixedly connected to the side end of the buffer protection spring (24) away from the limiting mounting plate (26). The second limiting column (27) is fixedly connected to the inner sides of both ends of the bottle pusher airbag (25), and the second limiting column (27) passes through and slides onto the limiting mounting plate (26).

4. A bottled drinking water production system according to claim 3, characterized in that: The adjustable uniform feeding body (131) includes a mounting frame (30), a second motor (31), a swing adjustment arm (32), a rotating wheel (33), a first feeding frame (34), a second feeding frame (35), a third motor (36), a rotating baffle (37), a fourth electric push rod (38), an auxiliary adjustment baffle (39), a fifth electric push rod (40), and a sixth electric push rod (41). The first feeding frame (34) and the second feeding frame (35) are mirror-symmetrically distributed. The inner end of the first feeding frame (34) slides. The two swing adjustment arms (32) are respectively rotatably mounted on the inner side of the first feeding frame (34) and the second feeding frame (35). The rotating wheel (33) is uniformly rotated and mounted inside the swing adjustment arm (32). The second motor (31) is fixedly mounted on the mounting frame (30). The drive end of the second motor (31) is fixedly connected to the end of the swing adjustment arm (32) through a reducer. The three rotating baffles (37) are fixedly connected, and the two... The middle portions of the three rotating baffles (37) are respectively rotatably engaged inside the first feeding frame (34) and the second feeding frame (35). The two third motors (36) are respectively fixedly installed at the bottom ends of the first feeding frame (34) and the second feeding frame (35), and the drive ends of the two third motors (36) are respectively fixedly connected to the bottom ends of the middle portions of the two sets of rotating baffles (37) through reducers. The fourth electric push rod (38) is fixedly connected to the side end of the rotating baffle (37). The auxiliary adjusting baffle (39) The fourth electric push rod (38) is slidably engaged inside the rotating baffle (37), and the driving end of the fourth electric push rod (38) is fixedly connected to the side end of the auxiliary adjusting baffle (39). The fifth electric push rod (40) and the sixth electric push rod (41) are symmetrically distributed below the first feeding frame (34) and the second feeding frame (35). The driving end of the fifth electric push rod (40) is fixedly connected to the bottom end of the second feeding frame (35), and the driving end of the sixth electric push rod (41) is fixedly connected to the bottom end of the first feeding frame (34).

5. A bottled drinking water production system according to claim 4, characterized in that: The adapter fixing device (45) further includes a support and protection part (46), a fixing vertical plate (47), and an auxiliary support part (48). The auxiliary support part (48) is connected to the lower part of the support and protection part (46) through the fixing vertical plate (47), and the adapter clamping part (49) is disposed at the front end of the support and protection part (46).

6. A bottled drinking water production system according to claim 5, characterized in that: The auxiliary support unit (48) includes a seventh electric push rod (50), a support rail seat (51), an eighth electric push rod (52), a sliding console (53), a sliding control seat (54), a ninth electric push rod (55), a fourth electric motor (56), a support adjustment platform (57), and a rubber pad (58). The sliding console (53) is slidably engaged with the support rail seat (51), and the sliding control seat (54) is slidably engaged with the sliding console (53). The seventh electric push rod (50) is fixedly installed on both sides of the support rail seat (51), and the eighth electric push rod (52) is fixedly installed on the sliding rail seat (53). The front end of the seventh electric push rod (50) is fixedly connected to the side end of the sliding control console (53), the driving end of the eighth electric push rod (52) is fixedly connected to the side end of the sliding control seat (54), the ninth electric push rod (55) is fixedly installed on the sliding control seat (54), the fourth electric motor (56) is fixedly installed on the mounting plate provided on the upper end of the ninth electric push rod (55), the driving end of the fourth electric motor (56) is connected to the support adjustment platform (57) through the reducer, and the upper end of the support adjustment platform (57) is fixedly connected to the rubber pad (58).

7. A bottled drinking water production system according to claim 6, characterized in that: The supporting and protective part (46) includes a tenth electric push rod (59), a support frame plate (60), a controller (61), a fifth electric motor (62), an adjusting gear plate (63), a sliding protective support plate (64), a mounting frame (65), a drive control gear (66), a lifting limit plate (67), an adjusting platform (68), a discharge chute (69), and a sliding groove (70). The support frame plate (60) is fixedly connected to the upper end of the mounting frame (65). The tenth electric push rod (59) is symmetrically fixedly installed on the support frame plate (60). The inner side of the adjusting platform (68) is slidably engaged with the side end of the mounting frame (65). The discharge chute (69) is longitudinally opened through the adjusting platform (68). The sliding groove (70) is transversely opened through the adjusting platform (68). The lower limit plate (67) is fixedly connected to the outer end of the mounting frame (65). The controller (61) is fixedly installed on the mounting frame (65). The sliding protective support plate (64) is slidably engaged on the mounting frame (65). The adjusting tooth plate (63) is symmetrically fixedly connected to the upper end of the sliding protective support plate (64). The drive control gear (66) is rotated and engaged inside the mounting frame (65). The fifth motor (62) is fixedly installed on the mounting frame (65). The drive end of the fifth motor (62) is fixedly connected to the middle of the drive control gear (66) through a reducer. The drive control gear (66) meshes with the adjusting tooth plate (63). The sliding protective support plate (64) is adapted to the sliding groove (70).

8. A bottled drinking water production system according to claim 7, characterized in that: The upper end of the first electric push rod (2) is fixedly connected to the bottom end of the support fixing seat (21), the first limiting column (1) is slidably engaged on the support fixing seat (21), the connecting support plate (28) is fixedly connected to the middle of the outer end of the support fixing seat (21), the belt conveyor (19) is located below the ends of the first feeding frame (34) and the second feeding frame (35), the bottom end of the connecting drive frame (43) is rotatably engaged on the fixed support base (3), and the first adaptable rotating feeding body (14) and the second adaptable rotating feeding body (18) are... The synchronous rotating gear plate (42) is engaged and connected. The mounting frame (65) is fixedly connected to the outer end of the connecting drive frame (43). The lifting sliding plate (73) is slidably engaged on the lifting limit plate (67). The eleventh electric push rod (71) is fixedly connected on the lifting limit plate (67). The fixed vertical plate (47) is fixedly connected between the mounting frame (65) and the support rail seat (51). The bottom end of the H-shaped support frame (88) is fixedly connected to the conveying rail (10). The spacing between the cleaning bodies (9) is the same as the spacing between the support platforms (8).

9. A method of using a bottled drinking water production system, applicable to the bottled drinking water production system of claim 8, characterized in that: The specific steps of this method are as follows: Step 1: Two uniformly feeding bodies (13) arranged symmetrically synchronously and uniformly feed and replenish glass bottles into the first adaptive rotating feeding body (14) and the second adaptive rotating feeding body (18); Step 2: After the glass bottle is evenly fed into the first and second adaptive rotating feeding bodies (14) and the second adaptive rotating feeding body (18), the adaptive clamp is selected according to the shape of the glass bottle. When the glass bottle is square, if the angle of the bottle cannot be fully clamped and fixed at a suitable angle during the clamping process, the square bottle will automatically and quickly rotate and adjust to achieve full fit and clamping of the side end face. Step 3: The first and second adapter rotating feeding bodies (14 and 18) continuously, evenly, stably and safely transport and replenish cylindrical and square glass bottles. The glass bottles are evenly placed on the rubber base (7) by external gripping mechanical arms. The sliding frame (11) can be controlled to slide along the conveying track (10) through the drive mechanism, so that each bottle on the rubber base (7) moves to the bottom of each cleaning body (9). Then, the cleaning body (9) can clean the inside of the bottle with high pressure water and bubbles simultaneously. The broken bubbles make the inside of the bottle cleaned quickly and thoroughly.

Citation Information

Patent Citations

  • Main transmission device of cleaning machine and reagent bottle cleaning device

    CN106111644A

  • A bottle cap clamping structure

    CN218856716U