Hydrogen-containing soda water filling machine

By setting up liquid and gas branch pipes in the filling machine and equipping them with sealing rings, the problems of low fusion efficiency and escape of hydrogen in the soda water filling process are solved, realizing efficient synchronous injection and sealing of hydrogen and soda water, and improving filling efficiency.

CN224132718UActive Publication Date: 2026-04-17SICHUAN HYDROGEN MEDICAL SEN TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SICHUAN HYDROGEN MEDICAL SEN TECHNOLOGY CO LTD
Filing Date
2025-06-05
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

In existing technologies, hydrogen is difficult to effectively integrate during the soda water filling process and is prone to escape, resulting in a complex and inefficient filling process.

Method used

A hydrogen-containing soda water filling machine was designed, which uses a filling pipe with a liquid branch pipe and a gas branch pipe. The gas branch pipe extends twice the length of the liquid branch pipe and is equipped with a sealing ring. Soda water and hydrogen are injected simultaneously, and a sealing mechanism is used to reduce hydrogen escape.

Benefits of technology

It improves the mixing effect of hydrogen and soda water, reduces hydrogen escape, and enhances filling efficiency and overall ease of operation.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224132718U_ABST
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Abstract

The utility model provides a hydrogen-containing soda water filling machine, which relates to the technical field of filling and comprises a feeding table, a working table and a blanking table which are sequentially arranged, a filling mechanism is arranged above one side of the workbench; a carrying mechanism is arranged on the other side of the workbench; the filling mechanism comprises a filling pipe, a liquid branch pipe and a gas branch pipe are arranged in the filling pipe, one end of the liquid branch pipe is connected with a liquid conveying pipe, one end of the gas branch pipe is connected with a gas conveying pipe, and the other end of the gas branch pipe and the other end of the liquid branch pipe extend into the bottle body. The extending length of the gas branch pipe towards the interior of the bottle body is two times that of the liquid branch pipe towards the interior of the bottle body, and the outer wall of the filling pipe is further sleeved with a sealing ring.
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Description

Technical Field

[0001] This utility model relates to the technical field of filling machines, and more specifically, to a filling machine for hydrogen-containing soda water. Background Technology

[0002] Soda water is an aqueous solution of sodium bicarbonate. It is weakly alkaline and can neutralize stomach acid, has antioxidant properties, and help relieve indigestion and constipation. Medically, soda water can also be used externally for disinfection and sterilization, and is believed to have stomach-nourishing, beauty-enhancing, and bowel-promoting effects.

[0003] Hydrogen has anti-inflammatory and antioxidant properties without any side effects and is readily available. Since the human body cannot directly absorb hydrogen, injecting hydrogen into drinking water or beverages allows it to exert greater value.

[0004] In existing technologies, bottles are typically placed under a filling machine to inject soda water. After filling, the bottles are transferred to a hydrogen injection machine for hydrogen injection. This method of hydrogen injection makes it difficult for hydrogen to fully integrate into the liquid, resulting in poor integration efficiency. Furthermore, hydrogen is extremely easy to escape from the water during the injection process. In addition, the filling process is complex and inefficient. Utility Model Content

[0005] The purpose of this invention is to provide a filling machine for hydrogen-containing soda water, which can improve filling efficiency, enhance fusion effect, and reduce hydrogen escape.

[0006] This utility model is achieved through the following technical solution:

[0007] It includes a feeding platform, a worktable, and a discharging platform arranged in sequence; a filling mechanism is provided above one side of the worktable; and a conveying mechanism is provided on the other side of the worktable.

[0008] The filling mechanism includes a filling tube, which contains a liquid branch tube and a gas branch tube. One end of the liquid branch tube is connected to an infusion tube, and one end of the gas branch tube is connected to an infusion tube. The other ends of both the gas branch tube and the liquid branch tube extend into the bottle. The length of the gas branch tube extending into the bottle is twice the length of the liquid branch tube extending into the bottle. A sealing ring is also fitted on the outer wall of the filling tube.

[0009] To better realize this utility model, the outer wall of the filling tube is further provided with a sleeve. The top and bottom inner walls of the sleeve are provided with L-shaped L-shaped grooves. The outer wall of the filling tube is provided with a U-shaped concave groove. It also includes an embedded ring, which is placed between the L-shaped groove and the concave groove. The top of the sleeve is also provided with a first sleeve hole, and the bottom of the sleeve is also provided with a second sleeve hole. The first sleeve hole is connected to the liquid branch pipe, and the second sleeve hole is connected to the gas branch pipe.

[0010] To better realize this utility model, a vertical plate frame is further provided on the side of the workbench, and an electric cylinder is provided on the top of the vertical plate frame. A connecting plate is provided on the telescopic end of the electric cylinder, and the bottom of the connecting plate is fixedly connected to the top of the filling tube so that the filling tube can move up and down.

[0011] To better realize this utility model, a sealing mechanism is further provided on the upright frame. The sealing mechanism is close to the filling mechanism and includes a sealing device, an unwinding shaft, and a rewinding shaft. The sealing device is placed above the workbench.

[0012] To better realize this utility model, the conveying mechanism further includes a panel, on which a slide rail is provided, a slider is installed on the slide rail, a telescopic cylinder is fixedly connected to the side of the slider, and a clamping claw is connected to one end of the telescopic cylinder, which can clamp the bottle body.

[0013] It also includes a linear motor connected to the slider so that the slider can slide linearly along the slide rail.

[0014] To better realize this utility model, the clamping claw further includes a mounting base, one end of which is connected to one end of the telescopic cylinder, and the other end of which is provided with a sliding groove. A drive motor is provided on the top of the mounting base, and the output shaft of the drive motor is connected to a drive wheel. Toothed plates are engaged on both sides of the drive wheel, and the two toothed plates are arranged opposite to each other. A column is provided at the bottom of the toothed plates, and a claw body is fixedly connected to the end of the column. The claw body includes a semi-circular claw shell and a connecting rod connected to the end of the claw shell. The connecting rod can slide in the sliding groove.

[0015] The beneficial effects of this utility model are:

[0016] This invention features a filling mechanism comprising a filling tube with a liquid branch and a gas branch, enabling simultaneous injection of soda water and hydrogen into the bottle. This facilitates the fusion of hydrogen and soda water. To further reduce hydrogen escape, the gas branch extends downwards at twice the length of the liquid branch. This design, while enhancing fusion, minimizes gas leakage. A sealing ring is also installed on the outer wall of the filling tube for sealing. These combined effects improve filling efficiency and reduce gas escape. Attached Figure Description

[0017] To more clearly illustrate the technical solution of this utility model, the drawings used in this utility model will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this utility model and should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can be obtained from these drawings without creative effort.

[0018] Figure 1 Schematic diagram of the structure of the hydrogen-containing soda water filling machine provided by this utility model Figure 1 ;

[0019] Figure 2 Schematic diagram of the structure of the hydrogen-containing soda water filling machine provided by this utility model Figure 2 ;

[0020] Figure 3 A schematic diagram of the filling mechanism provided by this utility model;

[0021] Figure 4 Partial sectional view of the filling mechanism provided by this utility model;

[0022] Figure 5 A schematic diagram of the structure of the clamping claw provided by this utility model;

[0023] icon:

[0024] 100-Feeding platform, 200-Workbench, 210-Filling mechanism, 211-Filling pipe, 212-Liquid branch pipe, 213-Gas branch pipe, 214-Infusion pipe, 215-Gas delivery pipe, 216-Sealing ring, 217-Sleeve, 218-L-ring groove, 219-Concave ring groove, 220-Embedded ring, 230-Upright plate frame, 231-Electric cylinder, 232-Connecting plate, 240-Sealing end Mechanism, 241-Sealer, 242-Unwinding shaft, 243-Rewinding shaft, 300-Unloading platform, 400-Transporting mechanism, 410-Panel, 411-Slide rail, 412-Telescopic cylinder, 413-Linear motor, 420-Clamping claw, 421-Mounting base, 422-Drive motor, 423-Drive wheel, 424-Gear plate, 425-Column, 426-Claw housing, 427-Connecting rod. Detailed Implementation

[0025] The technical solution of this utility model will now be described with reference to the accompanying drawings.

[0026] It should be noted that similar reference numerals and letters in the following figures indicate similar items; therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures. Furthermore, in the description of this utility model, terms such as "first," "second," etc., are used only to distinguish descriptions and should not be construed as indicating or implying relative importance.

[0027] Please refer to Figures 1-5 ,

[0028] This invention provides a filling machine for hydrogen-containing soda water. In the prior art, when hydrogen needs to be injected into soda water, the already filled bottles are often transferred to a hydrogen injection machine for hydrogen injection, and then the bottles are sealed. During the hydrogen injection and transfer process, hydrogen gas is extremely easy to escape, and the filling process is complicated and inefficient. To solve the above technical problems, this invention optimizes the design of the filling machine to reduce hydrogen gas escape during the hydrogen injection process and improve filling efficiency.

[0029] It mainly includes a feeding platform 100, a worktable 200 and a discharging platform 300 arranged in sequence. The feeding platform 100 and the discharging platform 300 have the same structure and both adopt a forward conveying method. Specifically, they have conveying rollers and a conveyor belt is fitted on the surface of the conveying rollers. The conveying rollers are driven by a motor to make the conveyor belt convey normally. In order to facilitate the placement of bottles, a flat plate is also set between the two conveying rollers, and the conveyor belt is placed on the flat plate, as shown in the figure.

[0030] As shown in the figure, a filling mechanism 210 and a sealing mechanism 240 are provided on the upper side of one side of the workbench 200, and a conveying mechanism 400 is provided on the other side of the workbench 200.

[0031] The structure of the filling mechanism 210 will now be described in detail. The filling mechanism 210 mainly includes a filling tube 211. A liquid branch tube 212 and a gas branch tube 213 are set inside the filling tube 211. The liquid branch tube 212 is connected to the infusion tube 214 for injecting soda water, and the gas branch tube 213 is connected to the gas infusion tube 215 for injecting hydrogen gas. The ends of the liquid branch tube 212 and the gas branch tube 213 extend out of the filling tube 211 towards the bottle body. The extension length of the gas branch tube 213 is twice the extension length of the liquid branch tube 212. The advantage of this setting is that it is more conducive to the hydrogen gas filling the bottle body more quickly after injection, and then fully mixing with the injected soda water liquid, reducing hydrogen gas escape.

[0032] A connecting plate 232 is fixedly connected to the top of the filling tube 211. The top of the connecting plate 232 is also equipped with the telescopic end of an electric cylinder 231. A vertical support frame 230 is provided on the side of the workbench 200, with the electric cylinder 231 positioned at the bottom of the vertical support frame 230, thus facilitating its installation. Driven by the electric cylinder 231, the filling tube 211 moves downwards, causing the liquid branch pipe 212 and the gas branch pipe 213 to extend into the bottle, injecting soda water and hydrogen simultaneously.

[0033] To prevent hydrogen from escaping from the bottle during the hydrogen injection process, a sealing ring 216 is provided on the outer side of the bottom of the filling tube 211. When the bottom of the filling tube 211 is inserted into the bottle opening, the sealing ring 216 can play a certain sealing role and reduce hydrogen escape.

[0034] To facilitate the installation of the liquid branch pipe 212 and the gas branch pipe 213, a sleeve 217 is also provided on the outer wall of the filling pipe 211. L-shaped L-shaped grooves 218 are provided on the inner walls of the top and bottom of the sleeve 217, and a U-shaped concave groove 219 is provided on the outer wall of the filling pipe 211. An insert ring 220 is also provided, which is placed within the L-shaped grooves 218 and 219. The insert ring 220 secures the sleeve 217 to the outside of the filling pipe 211. The top of the sleeve 217 is provided with a first sleeve hole, and the bottom of the sleeve 217 is provided with a second sleeve hole. The liquid branch pipe 212 is connected to the infusion pipe 214 (injecting soda water) through the first sleeve hole, and the gas branch pipe 213 is connected to the gas infusion pipe 215 through the second sleeve hole. The gas infusion pipe 215 is connected to the hydrogen storage tank, and the hydrogen storage tank is connected to the hydrogen generator, so that the generated hydrogen is stored in the hydrogen storage tank and then introduced into the bottle through the hydrogen injection pipe. The hydrogen generator mentioned above is an existing mechanism and will not be described in detail here.

[0035] After both soda water and hydrogen are injected into the bottle, the bottle is transferred to the bottom of the sealing mechanism 240, which seals the bottle opening to reduce hydrogen escape. The sealing mechanism 240 mainly includes a sealer 241, an unwinding shaft 242, and a rewinding shaft 243. The sealer 241 uses a conventional structure, and its internal structure will not be described in detail here. The unwinding shaft 242 is used to place the sealing film, and the rewinding shaft 243 is used to reel in the bottom film of the sealing film. The sealing film can be any existing food sealing film. The sealing device 241 seals the bottle opening to further reduce hydrogen escape in subsequent processes.

[0036] To improve efficiency, a conveying mechanism 400 is also provided. The conveying mechanism 400 includes a panel 410, a slide rail 411 on the panel 410, and a slider installed on the slide rail 411. The slider is fixedly connected to a telescopic cylinder 412, and a clamping claw 420 is connected to the end of the telescopic cylinder 412. The clamping claw 420 clamps the bottle body. A linear motor 413 is also provided. The linear motor 413 is connected to the slider. The linear motor 413 drives the slider to move on the slide rail 411, so that the clamping claw 420 can move the bottle body, thereby improving work efficiency.

[0037] The clamping jaw 420 mainly includes a mounting base 421. One end of the mounting base 421 is connected to a telescopic cylinder 412. The mounting base 421 is inverted L-shaped. A drive motor 422 is installed on the top of the mounting base 421. A drive wheel 423 is sleeved on the output shaft of the drive motor 422. Both sides of the drive wheel 423 are engaged with toothed plates 424, as shown in the figure. The toothed plates 424 mesh with the drive wheel 423, and the two toothed plates 424 are arranged opposite to each other. A column 425 is provided at the bottom of the mounting base, and a claw body is fixedly provided at the end of the column 425. The claw body includes a semi-circular claw shell 426 and a connecting rod 427 integrally formed with the claw shell 426. The bottom of the column 425 is connected to the connecting rod 427. The side wall of the mounting base 421 is also provided with a T-shaped sliding groove. The free end of the connecting rod 427 is slidably placed in the sliding groove. The connecting rod 427 is T-shaped, so that the connecting rod 427 can slide in the sliding groove.

[0038] Under the action of the drive motor 422, drive wheel 423 and toothed plate 424, the two claw shells 426 can move closer to each other to clamp the bottle, or the two claw shells 426 can separate from each other to release the clamping effect on the bottle. As shown in the figure, the mounting base 421 is inverted L-shaped, and its drive motor 422 can be mounted on the top of the mounting base 421. In order to improve the stability of the structure of this device, some conventional fixing structures can also be set. As shown in the figure, a plate is also pointed in the middle of the mounting base 421. The plate is placed below the drive wheel 423 to securely mount the drive wheel 423.

[0039] The workflow of this utility model is as follows:

[0040] After the bottles are cleaned, they are placed on the feeding platform 100. Driven by the conveyor belt, they move forward and gradually reach the designated end position. Upon reaching the position, the conveying mechanism 400 is activated. The drive motor 422 drives the two grippers to separate, and the telescopic cylinder 412 drives the clamping jaws 420 to extend forward and position themselves on the bottle. The drive motor 422 continues to drive in the same direction, causing the two grippers to clamp the bottle. Driven by the linear motor 413, the clamping seat with the bottle moves downwards towards the filling mechanism 210. Once below the filling mechanism 210, the telescopic cylinder 412 of the filling mechanism 210 is activated, causing the filling tube 211 to point downwards. The end of the filling tube 211 is placed inside the bottle, and the sealing ring 216 seals it. Simultaneously, soda water and... During hydrogen injection, the clamping claw 420 remains in a clamping state on the bottle to stabilize it. After hydrogen injection, the telescopic cylinder 412 moves upward, causing the filling tube 211 to detach from the bottle. Driven by the linear motor 413, the clamping seat with the bottle moves downward towards the sealing mechanism 240, driving the sealer 241 to seal the bottle opening. After sealing, the clamping seat with the bottle continues to be transported to the lower platform 300 under the drive of the linear motor 413. After being placed on the lower platform 300, the drive motor 422 drives the claw to expand outward, thereby releasing the bottle. Then, the telescopic cylinder 412 retracts, causing the clamping claw 420 to retract. Then, under the action of the linear motor 413, the clamping claw 420 moves towards the feeding platform 100, repeating the above process.

[0041] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the scope of the claims.

Claims

1. A filling machine for hydrogen-containing soda water, characterized in that, It includes a feeding platform (100), a workbench (200) and a discharging platform (300) arranged in sequence; a filling mechanism (210) is provided above one side of the workbench (200); a conveying mechanism (400) is provided on the other side of the workbench (200); The filling mechanism (210) includes a filling tube (211), which is provided with a liquid branch tube (212) and a gas branch tube (213). One end of the liquid branch tube (212) is connected to an infusion tube (214), and one end of the gas branch tube (213) is connected to a gas infusion tube (215). The other ends of the gas branch tube (213) and the liquid branch tube (212) extend into the bottle. The length of the gas branch tube (213) extending into the bottle is twice the length of the liquid branch tube (212) extending into the bottle. A sealing ring (216) is also fitted on the outer wall of the filling tube (211).

2. The hydrogen-containing soda water filling machine according to claim 1, characterized by The outer wall of the filling tube (211) is also provided with a sleeve (217). The top and bottom inner walls of the sleeve (217) are provided with L-shaped L-shaped grooves (218). The outer wall of the filling tube (211) is provided with a U-shaped concave groove (219). It also includes an embedded ring (220). The embedded ring (220) is placed between the L-shaped groove (218) and the concave groove (219). The top of the sleeve (217) is also provided with a first sleeve hole. The bottom of the sleeve (217) is also provided with a second sleeve hole. The first sleeve hole is connected to the liquid branch pipe (212), and the second sleeve hole is connected to the gas branch pipe (213).

3. The hydrogen-containing soda water filling machine according to claim 2, characterized in that, The workbench (200) is also provided with a vertical plate frame (230) on its side. An electric cylinder (231) is provided on the top of the vertical plate frame (230). A connecting plate (232) is provided on the telescopic end of the electric cylinder (231). The bottom of the connecting plate (232) is fixedly connected to the top of the filling tube (211) so that the filling tube (211) can move up and down.

4. The filling machine for hydrogen-containing soda water according to claim 3, characterized in that, The conveying mechanism (400) includes a panel (410), on which a slide rail (411) is provided, and a slider is installed on the slide rail (411). A telescopic cylinder (412) is fixedly connected to the side of the slider, and a clamping claw (420) is connected to one end of the telescopic cylinder (412). The clamping claw (420) is capable of clamping the bottle body. It also includes a linear motor (413) connected to the slider so that the slider can slide linearly along the slide rail (411).

5. The hydrogen-containing soda water filling machine according to claim 4, characterized in that, The clamping claw (420) includes a mounting base (421), one end of which is connected to one end of the telescopic cylinder (412). The other end of the mounting base (421) is provided with a sliding groove. A drive motor (422) is provided on the top of the mounting base (421). The output shaft of the drive motor (422) is connected to a drive wheel (423). Toothed plates (424) are engaged on both sides of the drive wheel (423). The two toothed plates (424) are arranged opposite to each other. A column (425) is provided at the bottom of the toothed plate (424). A claw body is fixedly connected to the end of the column (425). The claw body includes a semi-circular claw shell (426) and a connecting rod (427) connected to the end of the claw shell (426). The connecting rod (427) can slide in the sliding groove.

6. The hydrogen-containing soda water filling machine according to claim 5, characterized in that, The upright frame (230) is also provided with a sealing mechanism (240), which is close to the filling mechanism (210). The sealing mechanism (240) includes a sealer (241), an unwinding shaft (242), and a rewinding shaft (243). The sealer (241) is placed above the workbench (200).