Bubble juicing all-in-one machine
The integrated juicing and aeration maker solves the problems of limited functionality and complex operation of traditional equipment, providing a convenient beverage preparation experience, improving user satisfaction, and adapting to various scenarios.
Patent Information
- Application Number
- CN202520216534.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-11
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2035-02-11
AI Technical Summary
The existing juicers and sparkling water makers are designed independently, resulting in limited functionality, complex operation, difficult cleaning, and a limited user experience, making it difficult to meet users' diverse beverage needs.
Design a bubble juicer that integrates juicing and bubble beverage preparation functions. It adopts a detachable connection structure, a pressing component and a locking structure, and combines an industry-standard small-capacity carbon dioxide cylinder to achieve convenient operation and cleaning, and enhance the adaptability of the equipment.
It features diverse functions, convenient operation, easy cleaning, and enhanced user experience, while saving space and costs. It is suitable for home, office, and outdoor settings, providing flexible beverage preparation options.
Smart Images

Figure CN223913951U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a bubble juicer all-in-one machine. BACKGROUND
[0002] In the field of existing household and commercial food processing equipment, juicers, as a common type of kitchen small household appliance, are widely used to extract juice from food materials such as fruits and vegetables. With the improvement of living standards and the enhancement of health awareness, the market requirements for drinks are no longer limited to traditional pure juice, but tend to be more diversified product experiences, for example, beverages containing bubbles can provide a more refreshing taste and are loved by many consumers. The traditional juicer still has many problems: the function is too single, the traditional juicer and the bubble water machine are independent of each other, and the user must purchase two different machines if he or she wants to enjoy fresh juice and drinks with bubbles at the same time, which not only increases the cost but also occupies valuable kitchen space; the operation is complex, the separated equipment design leads to a more complex operation process, for example, when preparing a cup of fresh fruit juice with bubbles, the user first needs to make juice with a juicer and then transfer it to another container for air charging with a bubble water machine. This multi-step process reduces efficiency and may affect the quality of the final drink; the cleaning difficulty is high, the conversion between single-function equipment often accompanies additional cleaning work, especially when two processes involve different types of liquids (such as pure water and fruit and vegetable juice), it is particularly important to ensure that each component is thoroughly cleaned, however, due to the design limitations of existing equipment, some parts are difficult to clean thoroughly and are prone to bacterial growth; the user experience is limited, and the user is limited by the functions of existing equipment when pursuing personalized drinks. For example, they may want to adjust the intensity of the bubbles or try to mix different kinds of fresh food materials to create unique taste combinations, but it is difficult to find products that meet these needs in the current market solutions.
[0003] The utility model is just based on the above-mentioned deficiencies. CONTENT OF THE UTILITY MODEL
[0004] The utility model aims at overcoming the deficiencies of the prior art and providing a bubble juicer all-in-one machine with diverse functions, strong adaptability, convenient operation and cleaning, and improved use comfort.
[0005] The utility model is implemented through the following technical solutions:
[0006] The utility model provides a bubble juicer all-in-one machine, which comprises a host computer and a bubble beverage bottle,
[0007] The host computer is provided with an air charging device and a driving device;
[0008] The bubble beverage bottle is provided with a juicing assembly capable of rotating and chopping, and a detachable connecting structure is arranged between the bubble beverage bottle and the main machine so that the bubble beverage bottle can be connected to the main machine.
[0009] The bubble beverage bottle is provided with a juicing assembly capable of rotating and chopping, and a detachable connecting structure is arranged between the bubble beverage bottle and the main machine so that the bubble beverage bottle can be connected to the main machine.
[0010] The bubble beverage bottle is provided with a juicing assembly capable of rotating and chopping, and a detachable connecting structure is arranged between the bubble beverage bottle and the main machine so that the bubble beverage bottle can be connected to the main machine.
[0011] The bubble beverage bottle is provided with a juicing assembly capable of rotating and chopping, and a detachable connecting structure is arranged between the bubble beverage bottle and the main machine so that the bubble beverage bottle can be connected to the main machine.
[0012] The bubble beverage bottle is provided with a juicing assembly capable of rotating and chopping, and a detachable connecting structure is arranged between the bubble beverage bottle and the main machine so that the bubble beverage bottle can be connected to the main machine.
[0013] The bubble beverage bottle is provided with a juicing assembly capable of rotating and chopping, and a detachable connecting structure is arranged between the bubble beverage bottle and the main machine so that the bubble beverage bottle can be connected to the main machine.
[0014] The bubble juicer all-in-one machine as described above, the driving device is a motor, the docking structure includes a first clamping piece connected with the motor output shaft, and a second clamping piece connected with the juicing assembly, when the bubble beverage bottle is connected to the main machine, the first clamping piece and the second clamping piece are clamped and driven.
[0015] The bubble juicer all-in-one machine as described above, the gas delivery arm is rotatably connected to the main machine.
[0016] The bubble juicer all-in-one machine as described above, the gas delivery arm and the main machine are provided with a locking structure capable of locking the gas delivery arm after the gas delivery arm rotates by a preset angle.
[0017] The bubble juicer all-in-one machine as described above, the bubble beverage bottle includes a bottle body and a bottle cap assembly connected to the bottle body, the bottle cap assembly is provided with a first air inlet channel in communication with the outside, a second air inlet channel in communication with the inside of the bottle, and a one-way valve structure allowing gas to enter from the first air inlet channel to the second air inlet channel.
[0018] The bubble juicer all-in-one machine as described above, the bottle cap assembly is further provided with a pressure relief structure capable of releasing the gas in the bottle to the outside.
[0019] Compared with the prior art, the bubble juicer all-in-one machine has the following advantages:
[0020] 1. Functional diversification: The bubble juicer all-in-one machine integrates the functions of juicing and preparing bubble beverages, realizing the preparation of two different types of beverages in a compact design, meeting the needs of users for fresh fruit and vegetable juice and beverages with bubble taste. This not only saves kitchen space, but also reduces the cost of purchasing multiple devices.
[0021] 2. Easy operation: The detachable connection structure and the docking structure in the design simplify the installation process between the bubble beverage bottle and the main machine, allowing users to easily remove the bubble beverage bottle from the main machine for cleaning or replacement, while ensuring stable mechanical connection and power transmission between the two; the design of the gas delivery arm allows it to be rotated to the appropriate position for easy installation or removal of the bubble beverage bottle, and the locking structure ensures the stability of the gas delivery arm at the correct working angle, enhancing the convenience and safety of use.
[0022] 3. Improved user experience: The design of the pressing assembly allows users to intuitively and easily control the inflation process, and gas injection can be achieved through simple pressing action.
[0023] 4. Easy to operate; the one-way valve structure and pressure relief structure on the bottle cap assembly provide a double safety protection mechanism to prevent safety hazards caused by excessive internal pressure, while also ensuring the stability of the product during use, improving the trust and satisfaction of users.
[0024] 5. Hygienic cleaning assurance: The detachable bubble beverage bottle facilitates thorough cleaning, helping to maintain the cleanliness of the machine's interior and prevent bacterial growth, thereby ensuring the hygienic quality of the beverages. In addition, the blade structure of the juicing assembly is easy to clean, reducing the possibility of residual substances adhering.
[0025] 6. Energy saving and environmental protection: The use of industry-standard small-capacity carbon dioxide gas cylinders as the source of air inflation not only meets environmental protection requirements, but also lowers the user's usage threshold due to its easy availability and low cost. Moreover, the press valve design at the top of the gas cylinder releases gas only when needed, effectively saving resources and reducing waste.
[0026] 7. Prolonged service life: The provision of the pressure relief structure not only improves the safety of the product, but also to some extent, reduces the wear and tear of internal components caused by high pressure, thereby contributing to the extension of the service life of the entire equipment.
[0027] 8. Strong adaptability: The all-in-one machine is suitable for various scenarios such as homes, offices, and even outdoor use, providing great flexibility for consumers. It can not only be used to make fresh fruit juice for daily consumption, but also can adjust the degree of bubbles according to individual preferences, suitable for different taste preferences. BRIEF DESCRIPTION OF DRAWINGS
[0028] Figure 1 is a structural schematic diagram of the bubble juicing all-in-one machine of the utility model;
[0029] Figure 2 is a sectional view schematic diagram of the bubble juicing all-in-one machine of the utility model;
[0030] Figure 3 is Figure 2 the local enlarged view of A of
[0031] Figure 4 is an exploded schematic diagram of the bubble juicing all-in-one machine of the utility model;
[0032] Figure 5 is a local sectional view schematic diagram of the gas conveying arm of the utility model;
[0033] Figure 6 is an exploded schematic diagram of the bubble beverage bottle of the utility model;
[0034] Figure 7 is a local sectional view schematic diagram of the bubble beverage bottle of the utility model. DETAILED DESCRIPTION
[0035] The utility model will be further described below in conjunction with the drawings:
[0036] The directions, such as "upper", "lower", "left", "right", "front", "back" and the like in the utility model specification are based on the directions of the drawings, and are for the purpose of facilitating the description of the relationship between various components, and are not indicative of the unique or absolute positional relationship between the various components, and are only one of the implementation manners of the utility model, and are not a limitation on the implementation manners.
[0037] The utility model provides a kind of bubble juicer, as shown in Figures 1 to 3 The machine product includes host computer 1 and bubble beverage bottle 2, the host computer 1 is equipped with inflation device 11 and driving device 12, wherein inflation device 11 generally adopts gas cylinder, and driving device 12 generally adopts motor and output transmission member.
[0038] As shown in Figure 2 The bubble beverage bottle 2 is equipped with the juicing assembly 21 that can rotate and chop and stir vegetables and fruits, and the detachable connecting structure 4 is arranged between the bubble beverage bottle 2 and the host computer 1, so that the bubble beverage bottle 2 can be connected to the host computer 1, and the docking structure 5 is arranged between the bubble beverage bottle 2 and the host computer 1, so that the driving device 12 and the juicing assembly 21 are drivingly connected after the two are connected, wherein the juicing assembly 21 adopts the blade structure that extends radially and is distributed circumferentially, so that the driving device 12 can drive the juicing assembly 21 to rotate through the docking structure 5, thereby realizing the functions of crushing, cutting and stirring, and then the food such as fruits and vegetables in the bubble beverage bottle 2 can be juiced.
[0039] As shown in Figure 2 And Figure 3 The bubble beverage bottle 2 is equipped with the juicing assembly 21 that can rotate and chop and stir vegetables and fruits, and the detachable connecting structure 4 is arranged between the bubble beverage bottle 2 and the host computer 1, so that the bubble beverage bottle 2 can be connected to the host computer 1, and the docking structure 5 is arranged between the bubble beverage bottle 2 and the host computer 1, so that the driving device 12 and the juicing assembly 21 are drivingly connected after the two are connected, wherein the juicing assembly 21 adopts the blade structure that extends radially and is distributed circumferentially, so that the driving device 12 can drive the juicing assembly 21 to rotate through the docking structure 5, thereby realizing the functions of crushing, cutting and stirring, and then the food such as fruits and vegetables in the bubble beverage bottle 2 can be juiced.
[0040] The machine product of the above scheme can realize the functions of juicing and preparing bubbles at the same time in a compact product, so that the product function is more diversified and has a wider use scenario.
[0041] As a preferred embodiment of the inflation structure 6, as shown in Figure 3 And Figure 4As shown, the gas feeding arm 3 is provided with a gas feeding hose 31 for connecting the gas filling device 11, the inner cavity of the gas feeding hose 31 constitutes the gas feeding channel 30, the gas filling structure 6 comprises a pressing assembly 61 which is composed of a pressing seat 611 and a button 612, the pressing assembly 61 is slidably connected on the gas feeding arm 3 in the up-down direction for being pressed by hand, a first elastic member 62 is arranged between the pressing assembly 61 and the gas feeding arm 3 for pushing the pressing assembly 61 to reset upward, the gas feeding hose 31 is provided with a vertical gas feeding section 311 near the gas outlet end, the gas feeding section 311 is connected on the pressing assembly 61 so that when the pressing assembly 61 slides downward, the gas feeding section 311 is inserted into the gas feeding port of the sparkling beverage bottle 2, thereby completing the gas filling action.
[0042] As a further optimized embodiment, the gas filling device 11 comprises a gas cylinder, the top of the gas cylinder is provided with a pressing valve 111 for pressing the gas to be discharged, the gas filling structure 6 further comprises a linkage 63 which can press the pressing valve 111 when the pressing assembly 61 is pressed downward.
[0043] In detail, the gas cylinder is an industry standard small capacity carbon dioxide gas cylinder for a bubble water machine, that is, the press valve 111 at the top of the gas cylinder can normally release gas after being pressed, and the specific structure can refer to the patent scheme of patent No. CN202221412403.3, named carbon dioxide aluminum bottle valve. The top of the gas cylinder is connected with a top cover seat 112, the top cover seat 112 is provided with a gas outlet channel 113 above the press valve 111 and for the gas outlet of the bottle body, the gas conveying hose 31 is connected to the top cover seat 112 and communicates with the gas outlet channel 113, the gas outlet channel 113 is placed with a gas release valve rod 64 for pressing the press valve 111, one end of the linkage 63 is rotatably connected to the gas conveying arm 3, the other end of the linkage 63 abuts against the pressing assembly 61 so that the pressing assembly 61 is pressed down to drive the end of the linkage 63 to move downward, and the middle part of the linkage 63 is provided with an abutting column 631 abutting against the top of the gas release valve rod 64. As a preferred, the linkage 63 is a Y-shaped rod, including two sub-rods at the right end thereof, and the two sub-rods are provided with clamping columns 632, and the pressing seat 611 is provided with a plug hole 613 for the clamping column 632 to be inserted, so that when the pressing assembly 61 is pressed down to drive the linkage 63 to swing, the abutting column 631 presses the gas release valve rod 64 downward, the gas release valve rod 64 pushes the press valve 111 to release the gas of the gas cylinder, and the released carbon dioxide gas is conveyed to the bubble beverage bottle 2 through the gas conveying hose 31. In order to avoid affecting the swinging of the linkage 63 when the pressing seat 611 moves up and down, a sufficient gap is left between the plug hole 613 and the clamping column 632 or the plug hole 613 is designed as a horizontal long hole. The Y-shaped linkage 63 can better avoid the pressing assembly 61, and further ensure that the force is more balanced when the pressing assembly 61 is pressed down, and further ensure the stability of the overall structure when pressed down.
[0044] As a preferred embodiment of the detachable connection structure 4, as shown in Figure 1 and Figure 4 , the detachable connection structure 4 includes a mounting groove 13 arranged on the main machine 1 and used for inserting the bubble beverage bottle 2 from top to bottom, the detachable connection structure 4 includes an L-shaped groove 14 arranged on the groove wall of the mounting groove 13, and a clamping boss 22 arranged on the side wall of the bubble beverage bottle 2 and capable of being inserted into the vertical segment of the L-shaped groove 14 from top to bottom and clamped into the horizontal segment of the L-shaped groove 14 when the bubble beverage bottle 2 is rotated, so that the installation can be completed by only inserting the bubble beverage bottle 2 into the mounting groove 13 from top to bottom and then rotating the bubble beverage bottle 2. As a further optimization, the clamping boss 22 is provided with a clamping protrusion 221, and the horizontal segment of the L-shaped groove 14 is provided with a clamping groove 141 for clamping the clamping protrusion 221.
[0045] As a preferred embodiment of the docking structure 5, as shown in Figure 1 and Figure 2As shown, the docking structure 5 includes a first clamping member 51 connected with the motor output shaft, and a second clamping member 52 connected with the juicing assembly. When the bubble beverage bottle 2 is connected to the main machine 1, the first clamping member 51 and the second clamping member 52 are clamped and driven. In order to achieve clamping and driving, the first clamping member 51 and the second clamping member 52 are provided with clamping protrusions and clamping grooves on the docking surface.
[0046] As a preferred embodiment, as shown in Figure 1 As shown, the gas feeding arm 3 is rotatably connected to the main machine 1. The right part of the main machine 1 is provided with a mounting groove 13 for mounting the bubble beverage bottle 2 from top to bottom. The left part of the main machine 1 is provided with a mounting column 15. In this embodiment, the top of the mounting column 15 is rotatably connected to the gas feeding arm 3. The left part of the gas feeding arm 3 is rotatably connected to the main machine 1, so that when the gas feeding arm 3 rotates, the right part of the gas feeding arm 3 can be above or away from the mounting groove 13. When the right part of the gas feeding arm 3 is staggered with the mounting groove 13, i.e. located in front of or behind the mounting groove 13, the bubble beverage bottle 2 can be conveniently mounted into the mounting groove 13 from top to bottom. Then the gas feeding arm 3 is rotated again so that the right part of the gas feeding arm 3 is above the mounting groove 13. The bubble beverage bottle 2 is inflated by the inflation mechanism 6 aiming at the gas inlet 20 of the bubble beverage bottle 2. The above design simplifies the installation and disassembly process of the bubble beverage bottle 2.
[0047] As a further optimization, as shown in Figure 4 and Figure 5 As shown, the gas feeding arm 3 and the main machine 1 are provided with a locking structure 7 that can lock the gas feeding arm 3 when it rotates to a preset angle. When the gas feeding arm 3 rotates to a preset angle, it can be locked. Specifically, the locking structure 7 includes a positioning groove 16 provided at the top of the mounting column 15 and a positioning assembly 35 that can be clamped into the positioning groove 16 when the gas feeding arm 3 rotates to a preset angle. The gas feeding arm 3 is provided with a mounting hole 32, the top end of which is closed by a cover plate 33. The positioning assembly 35 includes a top bead 351 and a spring 352 mounted in the mounting hole 32. The bottom end of the mounting hole 32 is provided with an exposed hole 321 with a smaller diameter than the top bead 351. One end of the spring 352 abuts the top side of the top bead 351, and the other end abuts the cover plate 33. In addition, the positioning groove 16 is a spherical arc-shaped groove that is distributed circumferentially around the rotation center of the gas feeding arm 3. By pre-designing the spacing between the positioning grooves 16, the preset angle of rotation of the gas feeding arm 3 can be set. When the gas feeding arm 3 rotates to a preset angle, the top bead 351 is pressed into the positioning groove 16, thereby locking the gas feeding arm 3. The locking force depends on the spring force of the spring 352. Users can twist the gas feeding arm 3 with a larger torque to make the top bead 351 come out of a positioning groove 16, thereby realizing different damping operations and providing resistance feedback to the user for the rotation angle of the gas feeding arm 3, which facilitates the operation of the user and improves the use experience.
[0048] In order to make the product structure more compact, in the present embodiment, the gas delivery pipe 31 is preferably made of soft material such as silica gel, and the gas cylinder 61 is arranged at the inner side of the mounting column 15. The top of the mounting column 15 is provided with a relief hole 17 through which the gas delivery pipe 31 passes, so that the gas delivery pipe 31 can pass through the hole and be connected to the gas cylinder. The relief hole 17 is designed as an arc-shaped hole, the center of which is consistent with the rotation center of the gas delivery arm 3, so as to ensure that the gas delivery pipe 31 will not be hindered or interfered by other structures when the gas delivery arm 3 rotates.
[0049] Further, as shown in Figure 3 and Figure 5 , the top of the mounting column 15 is provided with a connecting boss 18, and the gas delivery arm 3 is provided with a connecting sleeve 36 which is sleeved on the connecting boss 18. The top of the connecting boss 18 is connected with a mounting plate 19 for preventing the connecting sleeve 36 from coming out, so as to realize the rotational connection between the gas delivery arm 3 and the mounting column 15. As a further optimization design, the mounting plate 19 is provided with limiting notches 191 distributed in the circumferential direction, and the connecting sleeve 36 is provided with limiting portions 361 which extend into the limiting notches 191. Such design ensures that the gas delivery arm 3 can only rotate within a pre-set angle range, increasing the safety and controllability of operation.
[0050] As a preferred embodiment, as shown in Figure 6 and Figure 7 , the bubble beverage bottle 2 comprises a bottle body 23 and a bottle cap assembly 24 connected to the bottle body 23, as shown in Figure 7 , the bottle cap assembly 24 comprises a top cap 24b and an inner seat 24a, wherein the inner seat 24a is provided with a gas pipe 248 for inserting into the juice, the bottle cap assembly 24 is provided with a first air inlet channel 241 which communicates with the outside, a second air inlet channel 242 which communicates with the inside of the bottle, and the inner cavity of the gas pipe 248 constitutes the second air inlet channel 242, and a one-way valve structure 8 is arranged between the first air inlet channel 241 and the second air inlet channel 242 to allow gas to enter from the former into the latter. Figure 7 As shown in , the bottle cap assembly 24 comprises a delivery pipe 243, the inner cavity of the delivery pipe 243 constitutes the first air inlet channel 241, and the bottom of the delivery pipe 243 is closed and the side wall of the bottom is provided with a through hole 244, the one-way valve structure 8 is an expansion sleeve 81 which is sleeved on the outside of the bottom of the delivery pipe 243 and closes the through hole 244, and the bottom of the expansion sleeve 81 is open, when the first air inlet channel 241 is filled with gas, the expansion sleeve 81 can be expanded to allow the gas flow to be delivered from the inner wall of the expansion sleeve 81 into the second air inlet channel 242.
[0051] Figure 6 As a preferred embodiment, as shown in Figure 7 and Figure 7 , the bottle cap assembly 24 is further provided with a pressure relief structure 9 which can release the gas in the bottle to the outside.As shown, the bottle cap assembly 24 is provided with a first pressure relief channel 245 for communicating with the outside, and the lower end of the first pressure relief channel 245 is provided with a rounded table slope 246; the pressure relief structure 9 includes a valve block 91 arranged in the first pressure relief channel 245 and capable of moving up and down, the lower end of the valve block 91 is in the shape of a rounded table capable of cooperating with the rounded table slope 246, and the upper end of the valve block 91 is provided with an elastic member 92 capable of pushing the valve block 91 to move downward to block the first pressure relief channel 245. The bottle cap assembly 24 is provided with a second pressure relief channel 247, and the pressure relief structure 9 further includes a pressure relief plug 93 with elasticity fixed in the second pressure relief channel 247, and the pressure relief plug 93 has a flat pressure relief hole 931 cut in the middle. In this embodiment, the valve block 91 with the elastic member 92 arranged in the first pressure relief channel 245 is designed, and this structure has higher sensitivity to the pressure in the bottle, when the pressure in the bottle rises, it can quickly respond and release the excess pressure, and automatically close after the pressure returns to normal; the pressure relief plug 93 with elasticity with the pressure relief hole 931 cut in the second pressure relief channel 247, when the pressure in the bottle is too high and the pressure relief flow of the first pressure relief channel 245 is saturated, it provides additional pressure relief safety guarantee, this double protection mechanism improves the safety of use, and can control the pressure in the bottle within a certain threshold in time, prolonging the service life of the equipment.
[0052] The above is only an embodiment of the present application, and the specific structure and characteristics of the scheme known in the art are not described in detail. It should be pointed out that for those skilled in the art, without departing from the structure of the present application, a number of modifications and improvements can be made, which should also be considered as the protection scope of the present application, and these will not affect the effect and practicality of the present application. The protection scope of the present application should be subject to the content of its claims, and the specific implementation mode and the like recorded in the specification can be used to explain the content of the claims.
Claims
1. A sparkling juicer, comprising a main unit (1) and a sparkling beverage bottle (2), characterized in that: The main unit (1) is equipped with an inflation device (11) and a drive device (12); The bubble beverage bottle (2) is equipped with a juicing component (21) that can rotate, chop and stir. The bubble beverage bottle (2) and the host (1) are provided with a detachable connection structure (4) so that the bubble beverage bottle (2) can be connected to the host (1). The bubble beverage bottle (2) and the host (1) are provided with a docking structure (5) so that the drive device (12) and the juicing component (21) can be connected when the two are connected. The top of the bubble beverage bottle (2) is provided with an air inlet (20) communicating with its inner cavity. The top of the main unit (1) is connected to an air supply arm (3) that can move above the bubble beverage bottle (2). The air supply arm (3) is provided with an air supply channel (30) for connecting with the inflation device (11) and an inflation structure (6) for connecting the air supply channel (30) with the air inlet (20) of the bubble beverage bottle (2).
2. The bubble juicer as described in claim 1, characterized in that: The gas supply arm (3) is provided with a gas supply hose (31) for connecting the inflation device (11). The inner cavity of the gas supply hose (31) forms the gas supply channel (30). The inflation structure (6) includes a pressing component (61). The pressing component (61) is slidably connected to the gas supply arm (3) in the up-down direction for pressing by hand. A first elastic element (62) is provided between the pressing component (61) and the gas supply arm (3) for pushing the pressing component (61) to reset upward. The gas supply hose (31) has a vertically arranged gas supply section (311) near the gas outlet end. The gas supply section (311) is connected to the pressing component (61) so that when the pressing component (61) slides downward, it drives the gas supply section (311) to be inserted downward into the gas outlet (20) of the carbonated beverage bottle (2).
3. The bubble juicer as described in claim 2, characterized in that: The inflation device (11) includes a gas cylinder, the top of which has a press valve (111) for releasing gas. The inflation structure (6) also includes a linkage (63) that can press the press valve (111) when the pressing assembly (61) is pressed down.
4. The bubble juicer as described in claim 3, characterized in that: The top of the gas cylinder is connected to a top cover seat (112). The top cover seat (112) is provided with an outlet channel (113) located above the pressing valve (111) and for the gas cylinder to release gas. The gas delivery hose (31) is connected to the top cover seat (112) and communicates with the outlet channel (113). The outlet channel (113) is provided with a venting valve rod (64) for pressing the pressing valve (111). One end of the linkage (63) is rotatably connected to the gas delivery arm (3). The other end of the linkage (63) abuts against the pressing assembly (61) so that when the pressing assembly (61) is pressed down, it drives the end of the linkage (63) to move downward. The middle part of the linkage (63) is provided with a stop post (631) that abuts against the top of the venting valve rod (64).
5. The bubble juicer as described in claim 1, characterized in that: The detachable connection structure (4) includes an installation groove (13) on the host (1) for inserting the carbonated beverage bottle (2) from top to bottom. The detachable connection structure (4) includes an L-shaped groove (14) on the wall of the installation groove (13) and a snap-fit boss (22) on the side wall of the carbonated beverage bottle (2) that can snap into the vertical section of the L-shaped groove (14) from top to bottom and snap into the horizontal section of the L-shaped groove (14) when the carbonated beverage bottle (2) rotates.
6. The bubble juicer as described in claim 5, characterized in that: The drive device (12) is a motor, and the docking structure (5) includes a first snap-fit part (51) connected to the output shaft of the motor and a second snap-fit part (52) connected to the juicing assembly. When the carbonated beverage bottle (2) is connected to the host (1), the first snap-fit part (51) and the second snap-fit part (52) engage in a drive.
7. The bubble juicer as described in claim 1, characterized in that: The gas delivery arm (3) is rotatably connected to the main unit (1).
8. The bubble juicer as described in claim 7, characterized in that: The gas delivery arm (3) is provided with a locking structure (7) between the main unit (1) and the main unit (1) so that the gas delivery arm (3) can be locked after rotating by a preset angle.
9. The bubble juicer as described in claim 1, characterized in that: The bubble beverage bottle (2) includes a bottle body (23) and a cap assembly (24) connected to the bottle body (23). The cap assembly (24) is provided with a first air inlet channel (241) communicating with the outside and a second air inlet channel (242) communicating with the inside of the bottle. A one-way valve structure (8) is provided between the first air inlet channel (241) and the second air inlet channel (242) to allow gas to enter the latter from the former.
10. The bubble juicer as described in claim 9, characterized in that: The bottle cap assembly (24) is also provided with a pressure relief structure (9) that can release the gas inside the bottle to the outside.
Citation Information
Patent Citations
Carbon dioxide aluminum cylinder valve
CN217633875U