Hydrogen-rich water electrolysis filling device
By designing push-pull and disconnect components, the hydrogen lock tank and water filling pipe can be automatically connected and disconnected, solving the problems of increased working hours and pollution caused by manual operation, and improving the working efficiency and automation level of the hydrogen-rich water machine.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- ZHEJIANG QIANDAOSONG BEVERAGE CO LTD
- Filing Date
- 2021-09-09
- Publication Date
- 2026-04-28
AI Technical Summary
The existing hydrogen-rich water machine requires manual insertion and removal of the hydrogen lock tank water inlet pipe, which increases manual operation time, may cause pollution, and reduces work efficiency.
The design incorporates push-pull and disengagement components to automatically connect and disconnect the hydrogen lock tank's water inlet from the water inlet pipe. The combination of a pusher and an electromagnet reduces manual operation, while a slide and load-bearing components enable automated conveying.
Reduce manual operation time, avoid contamination of water pipes and inlets, improve work efficiency, and automate the hydrogen lock barrel filling process.
Smart Images

Figure CN113896159B_ABST
Abstract
Description
Technical fields:
[0001] This invention relates to the field of hydrogen-rich water electrolysis technology, and more specifically to a hydrogen-rich water electrolysis filling device. Background technology:
[0002] Hydrogen-rich water, as the name suggests, is water rich in hydrogen. After the hydrogen in hydrogen-rich water enters the human body, it will bring many benefits. However, hydrogen is difficult to dissolve in water, so a hydrogen-rich water machine is needed. The hydrogen-rich water machine produces hydrogen and oxygen separation through water electrolysis. At the same time, the hydrogen-rich water machine can physically encapsulate hydrogen molecules in water, so that hydrogen and water are mixed and in a stable state. Because hydrogen-rich water is difficult to store, a hydrogen lock tank is needed to store it. The hydrogen lock tank has the advantages of high reliability and good sealing.
[0003] However, the existing hydrogen-rich water machine requires manual insertion of the water pipe into the hydrogen lock tank's water inlet, and the water pipe must be manually removed after water addition stops. This increases manual operation time and causes some pollution to the water pipe and water inlet. In addition, placing the hydrogen lock tank into the hydrogen-rich water machine also requires manual operation, which reduces work efficiency. Summary of the Invention:
[0004] The purpose of this invention is to address the shortcomings of existing technologies by providing a hydrogen-rich water electrolysis filling device. By setting up a push-pull component, the water inlet on the hydrogen lock tank is aligned with the water inlet pipe and the water inlet pipe is inserted into the water inlet during the pushing process. At the same time, a release component is set up to unlock the quick-connect plug at the water inlet, reducing manual operation time, replacing traditional manual operation, and reducing contamination of the water inlet and water inlet pipe. In addition, the sliding seat is set up to automate the working process and improve work efficiency.
[0005] The technical solution of the present invention is as follows:
[0006] A hydrogen-rich water electrolysis filling device includes a hydrogen-rich water machine and a hydrogen-locking tank for filling hydrogen-rich water. The hydrogen-rich water machine includes a water inlet pipe and a weighing platform. The hydrogen-locking tank is provided with a water inlet that mates with the water inlet pipe and a quick-connect plug at the water inlet. The water inlet pipe is provided with a release component. An assembly platform is provided at the front end of the hydrogen-rich water machine. The assembly platform is also provided with a push-pull component and a bearing component. The bearing component includes two sets of bearing units. The push-pull component is used to push the hydrogen-locking tank on a single set of bearing units onto the weighing platform so that the water inlet is aligned with the water inlet pipe and the water inlet pipe is inserted into the water inlet. The release component unlocks the quick-connect plug and releases the water inlet pipe from the water inlet after the gravity sensor sends a signal to stop water filling.
[0007] As a preferred embodiment, the detachment assembly includes a fixed block fixedly connected to the water supply pipe and a movable block slidably disposed on the water supply pipe. A pusher a and a pusher b are hinged between the fixed block and the movable block. Support rods are provided on both sides of the pusher a and the pusher b. A connecting block is fixedly disposed on the support rod. A connecting rod is fixedly disposed at one end of the connecting block. An electromagnet is fixedly disposed on the connecting rod. Springs are respectively connected between the pusher a, the pusher b and the water supply pipe.
[0008] As a preferred embodiment, the bearing assembly further includes a slide seat slidably disposed on the assembly table and a plurality of slide grooves formed in the slide seat. A bearing unit is disposed on the slide groove. The bearing unit includes a first support ring, a slide rod fixedly disposed on the outside of the first support ring, and a support bar fixedly disposed on the slide seat. The slide rod is slidably disposed in the support bar.
[0009] As a preferred embodiment, the push-pull assembly includes a cylinder fixedly mounted on the assembly table, a push rod driven by the cylinder, a push-pull plate a fixedly mounted on the push rod, a push-pull plate b mounted on the push-pull plate a, and a top push plate fixedly mounted on the push-pull plate b. The upper end of the top push plate is provided with a second support ring, which is semi-circular, and the lower end of the top push plate is provided with a groove, which is T-shaped.
[0010] As a preferred embodiment, the assembly table is also provided with a straightening component, which includes a fixed rod fixedly mounted on the assembly table, a telescopic rod slidably mounted inside the fixed rod, a fixed strip fixedly mounted on the top of the telescopic rod, a connecting strip fixedly mounted on the fixed strip, a base mounted at the other end of the connecting strip, a bidirectional cylinder fixedly mounted inside the base, and a clamping plate driven by the bidirectional cylinder. The clamping plate has a protrusion on the side near the water inlet.
[0011] As a preferred embodiment, the water supply pipe is provided with a fixed section and a sliding section, and the disengagement component is disposed on the sliding section.
[0012] As a preferred embodiment, the outer end of the slide rod is disposed within a groove.
[0013] As another preferred embodiment, the slide groove has at least 6 openings.
[0014] The beneficial effects of this invention are as follows:
[0015] 1. This invention is equipped with a detachment component and a push-pull component. A push plate pushes the hydrogen lock tank onto the weighing platform, and during the pushing process, the water inlet and water pipe are automatically connected, reducing the difficulty for workers. In addition, pusher components a and b are set up so that after the electromagnet is energized, the moving block is pushed towards the water inlet, unlocking the quick-connect plug and realizing the automatic detachment of the water inlet. This method is fast and convenient and reduces manual operation time. At the same time, it can avoid contamination of the water pipe and water inlet by workers' hands and reduce the damage rate of the quick-connect plug.
[0016] 2. The present invention is equipped with a bearing component, which drives the first support ring and the hydrogen lock tank to the front of the hydrogen-rich water machine by setting a sliding seat. In addition, by setting a sliding rod, the hydrogen lock tank can be pushed to the weighing platform or pulled back to the assembly platform under the action of the push-pull component. This method realizes the automation of the hydrogen lock filling process and reduces the consumption of manual labor during the filling process.
[0017] In summary, this invention has functions such as automatic disconnection and automatic conveying, and is suitable for the field of hydrogen-rich water electrolysis technology. Attached image description:
[0018] The invention will be further described below with reference to the accompanying drawings:
[0019] Figure 1 For hydrogen-rich water electrolysis filling equipment;
[0020] Figure 2 This is a schematic diagram showing the components detached from their structure.
[0021] Figure 3 This is a schematic cross-sectional view of the load-bearing component;
[0022] Figure 4 This is a schematic diagram of the push-pull assembly structure;
[0023] Figure 5 This is a schematic diagram of the corrective component structure;
[0024] Figure 6 This is a diagram illustrating the state of being out of component mode.
[0025] Figure 7 This is a schematic diagram of the unfilled state of hydrogen-rich water electrolysis.
[0026] Figure 8 This is a schematic diagram showing the completed filling process for hydrogen-rich water electrolysis. Detailed implementation method:
[0027] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings.
[0028] Example 1
[0029] Embodiments of the present invention are described in detail below, examples of which are illustrated in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, and should not be construed as limiting the present invention.
[0030] like Figures 1 to 8 As shown, a hydrogen-rich water electrolysis filling device includes a hydrogen-rich water machine 1 and a hydrogen-locking tank 2 for filling hydrogen-rich water. The hydrogen-rich water machine 1 includes a water inlet pipe 11 and a weighing platform 12. The hydrogen-locking tank 2 is provided with a water inlet 21 that mates with the water inlet pipe 11 and a quick-connect plug 22 provided at the water inlet 21. The water inlet pipe 11 is provided with a release component 3. The front end of the hydrogen-rich water machine 1 is provided with an assembly platform 4. The assembly platform 4 is also provided with a push-pull component 5 and a bearing component 6. The bearing component 6 includes two sets of bearing units 7. The push-pull component 5 is used to push the hydrogen-locking tank 2 on a single set of bearing units 7 onto the weighing platform 12 so that the water inlet 21 is aligned with the water inlet pipe 11 and the water inlet pipe 11 is inserted into the water inlet 21. After the gravity sensor 13 sends a signal to stop water filling, the release component 3 unlocks the quick-connect plug 22 and releases the water inlet pipe 11 from the water inlet 21.
[0031] like Figure 2 As shown, the detachment component 3 includes a fixed block 31 fixedly connected to the water supply pipe 11 and a movable block 32 slidably disposed on the water supply pipe 11. A pusher a33 and a pusher b34 are hinged between the fixed block 31 and the movable block 32. Support rods 35 are provided on both sides of the pusher a33 and the pusher b34. A connecting block 36 is fixedly disposed on the support rod 35. A connecting rod 37 is fixedly disposed at one end of the connecting block 36. An electromagnet 38 is fixedly disposed on the connecting rod 37. Springs 39 are respectively connected between the pusher a33, the pusher b34 and the water supply pipe 11.
[0032] It is worth mentioning that the present invention is equipped with a detachment component 3 and a push-pull component 6. The hydrogen lock tank 2 is pushed onto the weighing platform 12 by the push plate 65, and the water inlet 21 is automatically connected to the water pipe 11 during the pushing process. In addition, the pusher a33 and pusher b34 drive the moving block 32 to the water inlet 21 after the electromagnet 38 is energized, unlocking the quick plug 22 and realizing the automatic detachment of the water inlet 21. This method is fast and convenient and reduces manual operation time. At the same time, it can avoid the contamination of the water pipe 11 and the water inlet 21 by the workers' hands and reduce the damage rate of the quick plug 22.
[0033] like Figure 3As shown, the bearing assembly 5 also includes a slide block 51 slidably disposed on the assembly table 4 and a plurality of slide grooves 52 formed in the slide block 51. A bearing unit 7 is disposed on the slide groove 52. The bearing unit 7 includes a first support ring 71, a slide rod 72 fixedly disposed on the outside of the first support ring 71 and a support bar 73 fixedly disposed on the slide block 51. The slide rod 72 is slidably disposed in the support bar 73.
[0034] It should be further explained that the present invention is also provided with a bearing component 5, which drives the first support ring 71 and the hydrogen lock tank 2 to the front of the hydrogen-rich water machine 1 by setting a sliding seat 51. In addition, by setting a sliding rod 72, the hydrogen lock tank 2 can be pushed to the weighing platform 12 or pulled back to the assembly platform 4 under the action of the push-pull component 6. This method realizes the automation of the filling process of the hydrogen lock tank 2 and reduces the consumption of manual labor during the filling process.
[0035] like Figure 4 As shown, the push-pull assembly 6 includes a cylinder 61 fixedly mounted on the assembly table 2, a push rod 62 driven by the cylinder, a push-pull plate a63 fixedly mounted on the push rod 62, a push-pull plate b64 mounted on the push-pull plate a63, and a push plate 65 fixedly mounted on the push-pull plate b64. The upper end of the push plate 65 is provided with a second support ring 66, which is semi-circular, and the lower end of the push plate 65 is provided with a groove 67, which is "T" shaped.
[0036] like Figure 5 As shown, the assembly table 4 is also equipped with a alignment component 8. The alignment component 8 includes a fixed rod 81 fixedly mounted on the assembly table 4, a telescopic rod 82 slidably mounted inside the fixed rod 81, a fixed strip 83 fixedly mounted on the top of the telescopic rod 82, a connecting strip 84 fixedly mounted on the fixed strip 83, a base 85 mounted on the other end of the connecting strip 84, a two-way cylinder 86 fixedly mounted inside the base 85, and a clamping plate 87 driven by the two-way cylinder 86. The clamping plate 87 has a protrusion 88 on the side near the water inlet 21. By setting the alignment component 8, the problem of the water inlet 21 not being aligned with the water pipe 11 during the placement process can be avoided, reducing the difficulty of operation during the placement process.
[0037] like Figure 2 As shown, the water supply pipe 11 is provided with a fixed section 111 and a sliding section 112, and the detachment component 3 is provided on the sliding section 112.
[0038] like Figure 3 As shown, the outer end of the slide bar 72 is set in the groove 67, so that the pushing component 6 drives the bearing component 5 to move simultaneously.
[0039] like Figure 3 As shown, the chute 52 has at least 6 openings to realize an automated filling production line with uninterrupted circulation.
[0040] Work process
[0041] First, the workers place the hydrogen-locking tanks 2 one by one into the chute 62, with the second support ring 71 supporting the hydrogen-locking tanks 2. The single-unit bearing 7 is slid to the front end of the pushing assembly 6 via the slide block 51. At this time, the clamping plate 87 is raised and lowered to the appropriate position to align the upper end of the hydrogen-locking tank 2, so that the water inlet 21 is directly opposite the front end of the water inlet pipe 11. Under the action of the push-pull assembly 5, the hydrogen-locking tank 2 passes through the chute 52 and reaches the weighing platform 12. The water inlet pipe 11 is inserted into the water inlet 21, and the hydrogen-rich water electrolysis begins. When the gravity sensor 13 senses that the liquid in the hydrogen-locking tank 2 has reached a certain weight, it sends a signal to the water inlet device to stop adding water and simultaneously sends a signal to the power supply device to energize the electromagnet 38, causing the electromagnets 38 on both sides to move closer together under magnetic force. At the initial stage of the approaching process, since the water inlet pipe 11 is locked by the quick-connect fitting 22, the fixing block 31, which is fixedly connected to the water inlet pipe 11, is in a fixed state, causing the pushing component a33 and the pushing component b to move closer together. 34. Push the moving block 32 to the water inlet 21 to unlock the quick plug 22. When unlocking is complete, the fixed block 31 is already pressed against the quick plug and can no longer move. Due to unlocking, the fixed block 31 and the sliding section 112 are released from the fixed state. Under the action of the pusher a33 and pusher b34, the water pipe 11 is automatically separated from the water inlet 21. At the same time, the spring 39 drives the pusher a33 and pusher b34 to reset the moving block 32. Then, the hydrogen lock tank 2, which has completed water electrolysis, is pulled back to the assembly table 4 through the push-pull assembly 6. The hydrogen lock tank 2 slides to the left side of the assembly table 4 through the slide 641 and is taken out, completing the whole process.
[0042] In the description of this invention, it should be understood that the terms "front and back", "left and right", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the invention.
[0043] Of course, those skilled in the art should understand that the term "a" should be understood as "at least one" or "one or more". That is, in one embodiment, the number of an element can be one, while in another embodiment, the number of the element can be multiple. The term "a" should not be understood as a limitation on the quantity.
[0044] The above description, in conjunction with the accompanying drawings, represents only preferred embodiments of the present invention. However, the present invention is not limited to the above embodiments. It should be noted that those skilled in the art can make various modifications and improvements without departing from the structure of the present invention. These modifications and improvements should also be considered within the scope of protection of the present invention and will not affect the effectiveness and practicality of the present invention.
Claims
1. A hydrogen-rich water electrolysis filling device, comprising a hydrogen-rich water machine (1) and a hydrogen-locking tank (2) for filling hydrogen-rich water, wherein the hydrogen-rich water machine (1) includes a water inlet pipe (11) and a weighing platform (12), and the hydrogen-locking tank (2) is provided with a water inlet (21) that mates with the water inlet pipe (11) and a quick-connect plug (22) provided at the water inlet (21), characterized in that: The water inlet pipe (11) is provided with a detachment component (3), and the front end of the hydrogen-rich water machine (1) is provided with an assembly platform (4). The assembly platform (4) is also provided with a bearing component (5) and a push-pull component (6). The bearing component (5) includes two sets of bearing units (7). The push-pull component (6) is used to push the hydrogen lock tank (2) on a single set of bearing units (7) to the weighing platform (12) so that the water inlet (21) is aligned with the water inlet pipe (11) and the water inlet pipe (11) is inserted into the water inlet (21). The detachment component (3) unlocks the quick plug (22) and detaches the water inlet pipe (11) from the water inlet (21) after the gravity sensor (13) sends a signal to stop water addition. The detachment component (3) includes a fixed block (31) fixedly connected to the water supply pipe (11) and a movable block (32) slidably disposed on the water supply pipe (11). A pusher a (33) and a pusher b (34) are hinged between the fixed block (31) and the movable block (32). A support rod (35) is provided on both sides of the pusher a (33) and the pusher b (34). A connecting block (36) is fixedly disposed on the support rod (35). A connecting rod (37) is fixedly disposed at one end of the connecting block (36). An electromagnet (38) is fixedly disposed on the connecting rod (37). A spring (39) is connected between the pusher a (33), the pusher b (34) and the water supply pipe (11). The push-pull assembly (6) includes a cylinder (61) fixedly mounted on the assembly table (4), a push rod (62) driven by the cylinder, a push-pull plate a (63) fixedly mounted on the push rod (62), a push-pull plate b (64) mounted on the push-pull plate a (63), and a push plate (65) fixedly mounted on the push-pull plate b (64). The upper end of the push plate (65) is provided with a second support ring (66) which is semi-circular. The lower end of the push plate (65) is provided with a groove (67) which is "T" shaped.
2. The hydrogen-rich water electrolysis filling device according to claim 1, characterized in that: The bearing assembly (5) further includes a slide (51) slidably disposed on the assembly table (4) and a plurality of slide grooves (52) opened in the slide (51). The slide grooves (52) are provided with bearing units (7). The bearing unit (7) includes a first support ring (71), a slide rod (72) fixedly disposed on the outside of the first support ring (71), and a support bar (73) fixedly disposed on the slide (51). The slide rod (72) is slidably disposed in the support bar (73).
3. The hydrogen-rich water electrolysis filling device according to claim 1, characterized in that: The assembly table (4) is also provided with a correction component (8). The correction component (8) includes a fixed rod (81) fixedly installed on the assembly table (4), a telescopic rod (82) slidably installed in the fixed rod (81), a fixed strip (83) fixedly installed on the top of the telescopic rod (82), a connecting strip (84) fixedly installed on the fixed strip (83), a base (85) installed at the other end of the connecting strip (84), a two-way cylinder (86) fixedly installed inside the base (85), and a clamping plate (87) driven by the two-way cylinder (86). The clamping plate (87) has a protrusion (88) on the side near the water inlet (21).
4. The hydrogen-rich water electrolysis filling device according to claim 1, characterized in that: The water supply pipe (11) is provided with a fixed section (111) and a sliding section (112), and the detachment component (3) is provided on the sliding section (112).
5. The hydrogen-rich water electrolysis filling device according to claim 2, characterized in that: The outer end of the slide bar (72) is located in the groove (67).
6. The hydrogen-rich water electrolysis filling device according to claim 2, characterized in that: The slide (52) has at least 6 openings.
Citation Information
Patent Citations
Automatic filling sealing line for lubricating oil
CN109573925A