Embedded bubble machine
By centrally installing components such as water intake modules and air pump modules in the box, the problems of large area and inconvenient operation of traditional bubble machines are solved, and the compact structure of embedded bubble machines and automated bubble water preparation are realized.
Patent Information
- Application Number
- CN202422555055.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-22
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2034-10-22
AI Technical Summary
The pumping module of the traditional bubble machine is independently installed outside the bubble machine case, covering a large area, which is inconvenient for installation and inconvenient operation.
The water intake module, air pump module, bubble tank, water tank, solenoid valve, operating panel and electronic control module are installed in the box to realize the automatic preparation and intelligent operation of bubble water.
It realizes embedded installation and automated operation of bubble machines, has a compact structure, meets embedded installation needs, and can intelligently prepare bubble water.
Smart Images

Figure CN223233628U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of electrical appliances, in particular to an embedded bubble machine. Background Art
[0002] A bubble machine is a machine that makes sparkling water, or soda water, by injecting carbon dioxide into purified water. Currently, most bubble machines have an air pump module installed independently outside the machine housing, and users typically need to manually press the pump to pump the carbon dioxide into the water. This makes traditional bubble machines large in size, difficult to install, and inconvenient to operate. Utility Model Content
[0003] The problem solved by the utility model is: how to realize the bubble machine to be adapted to embedded installation and intelligent operation.
[0004] In order to solve the above problems, the utility model provides an embedded bubble machine, comprising a box body, in which a water intake module, an air pumping module, a bubble tank, a water tank, a solenoid valve, an operation panel and an electronic control module are installed. The water inlet end of the water intake module is used to connect water, and the water outlet end of the water intake module is connected with the water tank. The bubble tank is installed in the water tank, and the air inlet end of the bubble tank is connected with the air outlet end of the air pumping module. The water inlet end of the bubble tank is connected with the water tank through a bubble booster pump, and the water outlet end of the bubble tank is connected with the water inlet end of the solenoid valve. The water outlet end of the solenoid valve is connected with the bubble water inlet on the water receiving end of the box body. The operation panel is installed at the water receiving end and is located above the bubble water inlet. The operation panel is communicatively connected to the electronic control module, and the electronic control module is communicatively connected to the solenoid valve.
[0005] Optionally, the embedded bubble machine also includes a refrigeration module and a cold water pump that are communicatively connected to the electronic control module and installed in the box body. The refrigeration end of the refrigeration module is arranged in the water tank, the water pumping end of the cold water pump is connected to the water tank, and the water outlet end of the cold water pump is connected to the cold water outlet on the water receiving end.
[0006] Optionally, the embedded bubble machine also includes a two-position three-way solenoid valve and a heating device that are communicatively connected to the electronic control module and installed in the box body. The water outlet end of the water intake module is connected to the water inlet end of the two-position three-way solenoid valve, one water outlet end of the two-position three-way solenoid valve is connected to the heating device, and the heating device is connected to the normal temperature water outlet on the water receiving end.
[0007] Optionally, the water intake module includes a water inlet solenoid valve, a pre-filter element, an RO booster pump, an RO filter element rear cover filter element, a distribution valve and a water pump connected in sequence. The water pump and the water inlet solenoid valve are both communicatively connected to the electronic control module. The water outlet end of the water pump is connected to the water inlet end of the two-position three-way solenoid valve, and the water inlet end of the water inlet solenoid valve is connected to the water inlet on the box.
[0008] Optionally, the inflation module includes a gas tank and a pressure gauge, the gas outlet end of the gas tank is connected to the gas inlet end of the bubble tank through a one-way solenoid valve, and the gas storage capacity of the gas tank is reflected by the pressure gauge.
[0009] Optionally, the box body includes a top plate, a bottom plate and a partition located between the top plate and the bottom plate, the electronic control module is installed at one end of the partition facing the top plate, the bubble booster pump is located between the partition and the bottom plate, and is installed on the bottom plate through a support frame.
[0010] Optionally, the water receiving end of the box body is concavely arranged to form a groove structure on the water receiving end, and the bubble water receiving port is arranged in the groove structure.
[0011] Optionally, the box body includes a heat dissipation panel, the heat dissipation panel is provided with heat dissipation holes, and the heat dissipation holes are arranged opposite to the condenser of the refrigeration module.
[0012] Optionally, the rear panel of the box is bent toward the inside of the box to form a groove on the rear panel, and a clean water port, a waste water port and the water inlet are provided in the groove. The clean water port is connected to the pre-filter element, and the waste water port is connected to the rear cover filter element of the RO filter element.
[0013] Optionally, grooves for carrying are provided on the side panels of the box.
[0014] Compared with the prior art, the embedded bubble machine of the present invention installs the water intake module, the air pump module, the bubble tank, the water tank, the solenoid valve, the operation panel and the electronic control module in a box, so that the structure of the embedded bubble machine is relatively compact to meet the needs of embedded installation. When it is necessary to drink bubble water, the electronic control module can control the water intake module to send water to the water tank after obtaining the trigger instruction of the user through the operation panel, and use the bubble booster pump to pump the water in the water tank into the bubble tank, and the air pump module can pump gas into the bubble tank, so that the gas and water can be fully mixed in the bubble tank to prepare bubble water, so that after the solenoid valve is controlled to open, the bubble water can flow out through the bubble water inlet on the water receiving end for user drinking, thereby realizing intelligent preparation of bubble water and realizing automatic operation of the bubble machine. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 The internal structure of the embedded bubble machine in the embodiment of the utility model is shown as follows Figure 1 ;
[0016] Figure 2 The internal structure of the embedded bubble machine in the embodiment of the utility model is shown as follows Figure 2 ;
[0017] Figure 3 The internal structure of the embedded bubble machine in the embodiment of the utility model is shown as follows Figure 3 ;
[0018] Figure 4 This is a structural diagram of the water receiving end of the embedded bubble machine in an embodiment of the present utility model;
[0019] Figure 5 This is a schematic structural diagram of a heat dissipation panel of an embedded bubble machine in an embodiment of the present utility model;
[0020] Figure 6 This is a structural diagram of the inwardly concave arrangement of the water receiving end of the embedded bubble machine in an embodiment of the present utility model;
[0021] Figure 7 This is a distribution diagram of the clean water outlet, waste water outlet and water inlet in an embodiment of the present utility model.
[0022] Description of reference numerals:
[0023] 1-Box body; 1a-Top plate; 1b-Bottom plate; 1c-Partition; 1d-Heating panel; 1d1-Water purification port; 1d2-Waste water port; 1d3-Water inlet; 2-Water intake module; 21-Pre-filter element; 22-RO booster pump; 23-RO filter element rear cover filter element; 24-Distribution valve; 25-Water pump; 26-Water inlet solenoid valve; 3-Aeration module; 31-Air tank; 32-Pressure gauge; 4-Bubble tank; 5-Water tank; 6-Solenoid valve; 7-Operation panel; 8-Electronic control module; 9-Bubble booster pump; 10-Bubble water inlet; 11-Refrigeration module; 111-Condenser; 112-Compressor; 12-Cold water pump; 13-Cold water outlet; 14-Two-position three-way solenoid valve; 15-Heating device; 16-Normal temperature water outlet. DETAILED DESCRIPTION
[0024] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, specific embodiments of the present invention are described in detail below with reference to the accompanying drawings.
[0025] In the accompanying drawings, the Z-axis represents a vertical position, and the positive direction of the Z-axis (that is, the direction of the arrow on the Z-axis) represents the upper side, and the negative direction of the Z-axis (that is, the direction opposite to the positive direction of the Z-axis) represents the lower side; in the accompanying drawings, the X-axis represents a horizontal position, and the positive direction of the X-axis (that is, the direction of the arrow on the X-axis) represents the right side, and the negative direction of the X-axis (that is, the direction opposite to the positive direction of the X-axis) represents the left side; in the accompanying drawings, the Y-axis represents a front-to-back position, and the positive direction of the Y-axis (that is, the direction of the arrow on the Y-axis) represents the front side, and the negative direction of the Y-axis (that is, the direction opposite to the positive direction of the Y-axis) represents the rear side. It should also be noted that the aforementioned Z-axis, Y-axis, and X-axis are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operate in a specific orientation, and therefore should not be understood as limiting the present invention.
[0026] It should be noted that the terms "first," "second," and the like in the specification and claims of the present invention and the accompanying drawings are used to distinguish similar objects and are not necessarily used to describe a specific order or precedence. It should be understood that the terms used in this manner are interchangeable where appropriate, such that the embodiments of the present invention described herein can be implemented in an order other than that illustrated or described herein.
[0027] Combine Figures 1 to 4 As shown, the utility model provides an embedded bubble machine, including a box body 1, in which a water intake module 2, an air pumping module 3, a bubble tank 4, a water tank 5, a solenoid valve 6, an operation panel 7 and an electronic control module 8 are installed. The water inlet end of the water intake module 2 is used to connect water, and the water outlet end of the water intake module 2 is connected with the water tank 5. The bubble tank 4 is installed in the water tank 5, and the air inlet end of the bubble tank 4 is connected with the air outlet end of the air pumping module 3. The water inlet end of the bubble tank 4 is connected with the water tank 5 through a bubble booster pump 9, and the water outlet end of the bubble tank 4 is connected with the water inlet end of the solenoid valve 6. The water outlet end of the solenoid valve 6 is connected with the bubble water inlet 10 on the water receiving end of the box body 1. The operation panel 7 is installed at the water receiving end and is located above the bubble water inlet 10. The operation panel 7 is communicated with the electronic control module 8, and the electronic control module 8 is communicated with the solenoid valve 6.
[0028] Specifically, the box body 1 is a rectangular box body made of sheet metal. The box wall of the box body 1 facing the positive direction of the Y axis is the front wall of the box body 1, and is also the water receiving end of the box body 1. A bubble water inlet 10 is provided on the water receiving end of the box body 1. Inside the box body 1, a water intake module 2, an air pumping module 3, a bubble tank 4, a water tank 5, a solenoid valve 6, an operation panel 7 and an electronic control module 8 are installed. The water inlet end of the water intake module 2 is connected to water (tap water) through a pipeline, and the water is connected to the water tank 5 through a pipeline from the water outlet end of the water intake module 2 to deliver the water to the water tank 5. The bubble tank 4 is installed in the water tank 5, and the air inlet end of the bubble tank 4 is connected to the air pumping module. 3 is connected through a pipeline, the bubble booster pump 9 is located between the bubble tank 4 and the water tank 5, and the water inlet end of the bubble booster pump 9 is connected with the water tank 5 through a pipeline, the water outlet end of the bubble booster pump 9 is connected with the bubble tank 4 through a pipeline, the water outlet end of the bubble tank 4 is connected with the water inlet end of the electromagnetic valve 6, the water outlet end of the electromagnetic valve 6 is connected with the bubble water inlet 10 on the water receiving end of the box body 1, and the operation panel 7 is installed at the water receiving end and is located above the bubble water inlet 10. During use, the user can select the bubble water preparation instruction through the operation panel 7. After receiving the bubble water preparation instruction, the electronic control module 8 controls the water intake module 2 to pump water into the water tank 5, and the inflation module 3 to send gas (carbon dioxide) into the bubble tank 4. The bubble booster water pump 5 is controlled to pump the water in the water tank 5 into the bubble tank 4. The water and gas are fully mixed in the bubble tank 4 to complete the preparation of the bubble water. After controlling the solenoid valve 6 to open, the bubble water can flow out from the bubble water inlet 10 through the solenoid valve 6 for user consumption.
[0029] Therefore, in this embodiment, the water intake module 2, the air pumping module 3, the bubble tank 4, the water tank 5, the solenoid valve 6, the operation panel 7 and the electronic control module 8 are all installed in the box body 1, so that the structure of the embedded bubble machine is relatively compact to meet the needs of embedded installation. When it is necessary to drink bubble water, the electronic control module 8 can control the water intake module 2 to send water to the water tank 5 after obtaining the trigger instruction of the user through the operation panel 7, and use the bubble booster pump 9 to pump the water in the water tank 5 into the bubble tank 4, and the air pumping module 3 can pump gas into the bubble tank 4, so that the gas and water can be fully mixed in the bubble tank 4 to achieve the preparation of bubble water, so that after the solenoid valve 6 is controlled to open, the bubble water can flow out through the bubble water inlet 10 on the water receiving end for user consumption, realizing intelligent preparation of bubble water, thereby realizing the automatic operation of the bubble machine.
[0030] Optionally, combined Figures 1 to 4 As shown, the embedded bubble machine also includes a refrigeration module 11 and a cold water pump 12 which are communicatively connected to the electronic control module 8 and installed in the box body 1. The refrigeration end of the refrigeration module 11 is arranged in the water tank 5, the water pumping end of the cold water pump 12 is connected to the water tank 5, and the water outlet end of the cold water pump 12 is connected to the cold water outlet 13 on the water receiving end.
[0031] Specifically, the cooling end of the refrigeration module 11 is a coil structure, which is coiled around the outer wall of the bubble tank 4. The pumping end of the cold water pump 12 is connected to the water tank 5 via a pipeline, and the water outlet of the cold water pump 12 is connected to the cold water outlet 13 on the water receiving end via a pipeline. The user can select a cold water preparation instruction through the operation panel 7. After receiving this instruction, the electronic control module 8 controls the refrigeration module 11 to perform a refrigeration operation, thereby cooling the water in the water tank 5, and controls the cold water pump 12 to pump cold water to the cold water outlet 13 on the water receiving end for the user to drink cold water. The user can also use the operation panel 7 to prepare low-temperature bubble water.
[0032] In this way, through the refrigeration module 11 and the cold water pump 12 which are connected to the communication with the electronic control module 8 and installed in the box body 1, the refrigeration end of the refrigeration module 11 is set in the water tank 5, the water pumping end of the cold water pump 12 is connected with the water tank 5, and the water outlet end of the cold water pump 12 is connected with the cold water outlet 13 on the water receiving end, which not only realizes the preparation of cold water, but also realizes the preparation of low-temperature bubble water, thereby enriching the functions of the embedded bubble machine.
[0033] Optionally, combined Figures 1 to 4 As shown, the embedded bubble machine also includes a two-position three-way solenoid valve 14 and a heating device 15 which are communicatively connected to the electronic control module 8 and installed in the box body 1. The water outlet end of the water intake module 2 is connected to the water inlet end of the two-position three-way solenoid valve 14, and one water outlet end of the two-position three-way solenoid valve 14 is connected to the heating device 15, and the heating device 15 is connected to the normal temperature water outlet 16 on the water receiving end.
[0034] Specifically, the two-position three-way solenoid valve 14 includes a water inlet and two water outlets. The water inlet of the two-position three-way solenoid valve 14 is connected to the water outlet of the water intake module 2 via a pipeline. One water outlet of the two-position three-way solenoid valve 14 is connected to the heating device 15 via a pipeline, and the other water outlet of the two-position three-way solenoid valve 14 is connected to the water tank 5 via a pipeline. The user can select the preparation of hot water through the operation panel 7. After receiving the instruction, the electronic control module 8 controls the pipeline connection between the two-position three-way solenoid valve 14 and the heating device 15, and controls the heating device 15 to perform heating work, so that the water flowing out of the water outlet of the water intake module 2 can be heated by the heating device 15 and then flow out from the normal temperature water outlet 16 on the water receiving end for the user to drink hot water. When drinking normal temperature water, the user only needs to select normal temperature water preparation through the operation panel 7, and the electronic control module 8 stops the heating work of the heating device 15.
[0035] In this way, through the two-position three-way solenoid valve 14 and the heating device 15 which are connected to the communication with the electronic control module 8 and installed in the box body 1, the water outlet end of the water intake module 2 is connected with the water inlet end of the two-position three-way solenoid valve 14, one water outlet end of the two-position three-way solenoid valve 14 is connected with the heating device 15, and the heating device 15 is connected with the normal temperature water outlet 16 on the water receiving end, so that the embedded bubble machine can also prepare hot water and normal temperature water, further enriching the functions of the embedded bubble machine.
[0036] Optionally, combined Figures 1 to 3 as well as Figure 7 As shown, the water intake module 2 includes a water inlet solenoid valve 26, a pre-filter element 21, an RO (Reverse Osmosis reverse osmosis) booster pump 22, an RO (Reverse Osmosis reverse osmosis) filter element rear cover filter element 23, a distribution valve 24 and a water pump 25 which are connected in sequence. The water pump 25 and the water inlet solenoid valve 26 are both communicatively connected to the electronic control module 8. The water outlet end of the water pump 25 is connected to the water inlet end of the two-position three-way solenoid valve 14, and the water inlet end of the water inlet solenoid valve 26 is connected to the water inlet 1d3 on the box body 1.
[0037] Specifically, the water inlet solenoid valve 26, the pre-filter element 21, the RO booster pump 22, the RO filter element rear cover filter element 23, the distribution valve 24, and the water pump 25 are sequentially connected through pipelines. The water inlet end of the water inlet solenoid valve 26 is the water inlet end of the water intake module 2, and the water outlet end of the water pump 25 is the water outlet end of the water intake module 2. The water outlet end of the water pump 25 is connected to the water inlet end of the two-position three-way solenoid valve 14 through a pipeline, and the water inlet end of the water inlet solenoid valve 26 is connected to the water inlet 1d3 on the housing 1 through a pipeline.
[0038] In this way, through the water inlet solenoid valve 26, pre-filter element 21, RO (Reverse Osmosis reverse osmosis) booster pump 22, RO (Reverse Osmosis reverse osmosis) filter element back cover filter element 23, distribution valve 24 and water pump 25 connected in sequence, the water pump 25 and the water inlet solenoid valve 26 are both communicated with the electronic control module 8, the water outlet end of the water pump 25 is connected to the water inlet end of the two-position three-way solenoid valve 14, and the water inlet end of the water inlet solenoid valve 26 is connected to the water inlet 1d3 on the box body 1, realizing the water purification function of the water intake module 2 and further enriching the function of the embedded bubble machine.
[0039] Optionally, combined Figure 1 and Figure 2 As shown, the inflation module 3 includes a gas tank 31 and a pressure gauge 32. The gas outlet end of the gas tank 31 is connected to the gas inlet end of the bubble tank 4 through a one-way solenoid valve, and the pressure gauge 32 reflects the gas storage amount in the gas tank 31.
[0040] Specifically, the one-way solenoid valve is in communication with the electronic control module 8, and the opening of the one-way solenoid valve can be adjusted through the electronic control module 8. The gas outlet of the gas tank 31 is connected to the gas inlet of the bubble tank 4 through the one-way solenoid valve, and the reading of the pressure gauge 32 reflects the gas storage capacity of the gas tank 31.
[0041] In this way, the air outlet end of the gas tank 31 is connected to the air inlet end of the bubble tank 4 through a one-way solenoid valve, and the gas storage amount in the gas tank 31 is reflected by the pressure gauge 32. Not only can the one-way solenoid valve be used to adjust the air outlet volume, but the gas storage amount in the gas tank 31 can also be intuitively reflected through the reading of the pressure gauge 32, so as to remind the user to replace it in time.
[0042] In some embodiments, a through hole is opened on the right wall of the box body 1, and the pressure gauge 32 is installed in the through hole, so that the pressure gauge 32 is embedded, which facilitates the embedded installation of the embedded bubble machine.
[0043] Optionally, combined Figures 1 to 5 As shown, the box body 1 includes a top plate 1a, a bottom plate 1b and a partition 1c located between the top plate 1a and the bottom plate 1b. The electronic control module 8 is installed on one end of the partition 1c facing the top plate 1a. The bubble booster pump 9 is located between the partition 1c and the bottom plate 1b and is installed on the bottom plate 1b through a support frame.
[0044] Specifically, the electronic control module 8 is mounted on the upper end of the partition 1c, which faces the top plate 1a. The bubble booster pump 9 is located between the partition 1c and the bottom plate 1b. An inverted U-shaped support frame is provided at the upper end of the bottom plate 1b, and the bubble booster pump 9 is mounted on the inverted U-shaped support frame. The specific mounting method of the partition 1c is not specified; it only requires that the partition 1c be fixed between the top plate 1a and the bottom plate 1b.
[0045] In this way, the electronic control module 8 is installed on one end of the partition 1c facing the top plate 1a, the bubble booster pump 9 is located between the partition 1c and the bottom plate 1b, and is installed on the bottom plate 1b through the support frame. The partition 1c realizes the layered setting of the internal space of the box, which can improve the utilization rate of the internal space of the box 1 and avoid installation interference between the electronic control module 8 and the bubble booster pump 9.
[0046] Optionally, combined Figure 4 and Figure 6 As shown, the water receiving end of the box body 1 is concavely arranged to form a groove structure on the water receiving end, and the bubble water receiving port 10 is arranged in the groove structure.
[0047] Specifically, the water receiving end of the box body 1 is the front wall of the box body. The middle part of the front wall is recessed toward the interior of the box body 1, thereby forming a groove structure on the front wall. The upper groove wall of the groove structure is provided with a bubble water inlet 10, a cold water outlet 13, and a normal temperature water outlet 16. The operation panel 7 is located above the groove structure.
[0048] In this way, the water receiving end of the box body 1 is concavely set to form a groove structure on the water receiving end, and the bubble water receiving port 10 is set in the groove structure, realizing the embedded setting of the bubble water receiving port 10, avoiding the bubble water receiving port 10 from bulging outward, thereby increasing the aesthetics of the embedded bubble machine.
[0049] Optionally, combined Figure 3 and Figure 5 As shown, the box body 1 includes a heat dissipation panel 1d, and the heat dissipation panel 1d is provided with heat dissipation holes 1e. The heat dissipation holes 1e are arranged opposite to the condenser 111 of the refrigeration module 11.
[0050] Specifically, the heat dissipation panel 1d is the rear wall of the cabinet 1. Heat dissipation holes 1e are provided on the rear wall. The refrigeration module 11 includes a condenser 111 and a compressor 112. Heat dissipation holes 1e are opposite the condenser 111 of the refrigeration module 11. Heat dissipation structures may also be provided on the left and right walls of the cabinet 1.
[0051] In this way, by providing the heat dissipation holes 1e on the heat dissipation panel 1d, the heat dissipation holes 1e are arranged opposite to the condenser 111 of the refrigeration module 11, thereby achieving instant heat dissipation of the condenser 111 of the refrigeration module 11 and ensuring stable operation of the condenser 111.
[0052] Optionally, combined Figure 7 As shown, the rear panel of the housing 1 is bent toward the interior of the housing 1 to form a groove on the rear panel. The groove is provided with a clean water inlet 1d1, a waste water inlet 1d2, and a water inlet 1d3. The clean water inlet 1d1 is connected to the pre-filter element 21, and the waste water inlet 1d2 is connected to the RO filter element rear cover filter element 23. The rear panel of the housing 1 is the rear wall of the housing 1.
[0053] Specifically, the left end of the rear panel is bent toward the interior of the housing 1 and connected to the left wall of the housing 1. A groove is formed between the rear panel and the left wall of the housing 1. The groove vertically penetrates the housing 1. The clean water inlet 1d1, waste water inlet 1d2, and water inlet 1d3 are all located within the groove. The clean water inlet 1d1 is connected to the pre-filter element 21 via a pipe, and the waste water inlet 1d2 is connected to the RO filter element rear cover filter element 23 via a pipe.
[0054] In this way, the rear panel of the box body 1 is bent toward the inside of the box body 1 to form a groove on the rear panel, and the pure water port 1d1, the waste water port 1d2 and the water inlet 1d3 are provided in the groove, so that the pure water port 1d1, the waste water port 1d2 and the water inlet 1d3 are concentrated and embedded on the box body 1, further meeting the needs of embedded installation. The pure water port 1d1 is connected with the pre-filter element 21, and the waste water port 1d2 is connected with the RO filter element rear cover filter element 23. The user can use the pure water flowing out of the pure water port 1d1 to wash fruits and vegetables, and discharge the filtered waste water in time through the waste water port 1d2, further improving the richness of the functions of the embedded bubble machine.
[0055] Optionally, combined Figures 4 to 7 As shown, grooves for carrying are provided on the side panels of the box body 1.
[0056] Specifically, the side panels of the box body 1 are the left wall and the right wall of the box body 1. The left wall and the right wall of the box body 1 are respectively provided with grooves, and the two grooves are used for carrying the embedded bubble machine.
[0057] In this way, grooves for transportation are provided on the side panels of the box body 1 to facilitate transportation of the embedded bubble machine.
[0058] Although the present disclosure is disclosed as above, the protection scope of the present disclosure is not limited thereto. Those skilled in the art may make various changes and modifications without departing from the spirit and scope of the present disclosure, and these changes and modifications will fall within the protection scope of the present utility model.
Claims
1. An embedded bubble machine, characterized in that, The invention comprises a box body (1), wherein a water intake module (2), an air pumping module (3), a bubble tank (4), a water tank (5), a solenoid valve (6), an operation panel (7) and an electric control module (8) are installed in the box body (1), the water intake end of the water intake module (2) is used to receive water, the water outlet end of the water intake module (2) is connected to the water tank (5), the bubble tank (4) is installed in the water tank (5), the air intake end of the bubble tank (4) is connected to the air outlet end of the air pumping module (3), and the water intake end of the bubble tank (4) is connected to the air outlet end of the air pumping module (3). The end is connected to the water tank (5) through a bubble booster pump (9), the water outlet end of the bubble tank (4) is connected to the water inlet end of the solenoid valve (6), the water outlet end of the solenoid valve (6) is connected to the bubble water inlet (10) on the water receiving end of the box body (1), the operation panel (7) is installed on the water receiving end and is located above the bubble water inlet (10), the operation panel (7) is connected to the electronic control module (8), and the electronic control module (8) is connected to the electronic control module (6).
2. The embedded bubble machine according to claim 1, characterized in that: The invention also includes a refrigeration module (11) and a cold water pump (12) which are communicatively connected to the electric control module (8) and installed in the box body (1); the refrigeration end of the refrigeration module (11) is arranged in the water tank (5); the water pumping end of the cold water pump (12) is communicated with the water tank (5); and the water outlet end of the cold water pump (12) is communicated with the cold water outlet (13) on the water receiving end.
3. The embedded bubble machine according to claim 1, characterized in that: It also includes a two-position three-way solenoid valve (14) and a heating device (15) which are communicatively connected to the electric control module (8) and installed in the box (1); the water outlet of the water intake module (2) is connected to the water inlet of the two-position three-way solenoid valve (14); one water outlet of the two-position three-way solenoid valve (14) is connected to the heating device (15); and the heating device (15) is connected to the normal temperature water outlet (16) on the water receiving end.
4. The embedded bubble machine according to claim 3, characterized in that: The water intake module (2) comprises a pre-filter element (21), an RO booster pump (22), an RO filter element rear cover filter element (23), a distribution valve (24), a water pump (25) and a water inlet solenoid valve (26) which are connected in sequence. The water pump (25) and the water inlet solenoid valve (26) are both communicatively connected to the electronic control module (8). The water outlet end of the water pump (25) is connected to the water inlet end of the two-position three-way solenoid valve (14), and the water inlet end of the water inlet solenoid valve (26) is connected to the water inlet (1d3) on the box body (1).
5. The embedded bubble machine according to claim 1, characterized in that: The inflation module (3) comprises a gas tank (31) and a pressure gauge (32); the gas outlet of the gas tank (31) is connected to the gas inlet of the bubble tank (4) via a one-way solenoid valve, and the gas storage capacity of the gas tank (31) is reflected via the pressure gauge (32).
6. The embedded bubble machine according to claim 2, characterized in that: The box body (1) comprises a top plate (1a), a bottom plate (1b), and a partition plate (1c) located between the top plate (1a) and the bottom plate (1b); the electric control module (8) is installed on one end of the partition plate (1c) facing the top plate (1a); the bubble booster pump (9) is located between the partition plate (1c) and the bottom plate (1b), and is installed on the bottom plate (1b) via a support frame.
7. The embedded bubble machine according to claim 1, characterized in that: The water receiving end of the box body (1) is concavely arranged so that a groove structure is formed on the water receiving end, and the bubble water receiving port (10) is arranged in the groove structure.
8. The embedded bubble machine according to claim 2, characterized in that: The box (1) comprises a heat dissipation panel (1d), the heat dissipation panel (1d) is provided with heat dissipation holes (1e), and the heat dissipation holes (1e) are arranged opposite to the condenser (111) of the refrigeration module (11).
9. The embedded bubble machine according to claim 4, characterized in that: The rear panel of the box body (1) is bent toward the inside of the box body (1) to form a groove on the rear panel, wherein a clean water port (1d1), a waste water port (1d2) and the water inlet (1d3) are provided in the groove, the clean water port (1d1) is in communication with the pre-filter element (21), and the waste water port (1d2) is in communication with the RO filter element rear cover filter element (23).
10. The embedded bubble machine according to claim 3, characterized in that: Grooves for transportation are provided on the side panels of the box body (1).