Carbonated beverage generating structure
Patent Information
- Application Number
- CN202520807408.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-25
- Publication Date
- 2026-09-25
- Estimated Expiration
- 2035-04-25
AI Technical Summary
[0002]目前市场上主要有两种类型的碳酸饮料生成装置:第一类是手动加压式装置,通过人工挤压气瓶来产生二氧化碳气体,然后将其注入水箱提供的水中形成碳酸饮料,这种装置虽然简单易用,但效率低下,难以满足大量需求;第二类是电动增压式装置,利用电机驱动压缩机将从二氧化碳气瓶中释放的二氧化碳气体压缩并注入水中,这种装置自动化程度较高,但普遍存在噪音大、能耗高的问题;此外,这两种装置的安全保护措施较为薄弱,容易发生漏气、爆裂等安全事故,降低碳酸饮料生产过程中的安全性
1.水箱旁设置有气泡水罐,二氧化碳气瓶通过连接管一与气泡水罐相连通,连接管一上设置有高压隔膜泵,水箱通过连接管二与气泡水罐相连通,气泡水罐内设置有压力传感器,气泡水罐内设置有安全阀,安全阀设置于压力传感器旁,安全阀与传感器相连接,在生产碳酸饮料的过程中,开启高压隔膜泵,将水箱中的水抽入气泡水罐,开启二氧化碳气瓶,将二氧化碳气体注入气泡水罐,在密闭的气泡水罐中,二氧化碳气体在压力下与水混合,形成碳酸水,碳酸水是生产碳酸饮料的基础,压力传感器实时监测罐内压力,确保碳酸化过程在安全压力范围内进行,当压力传感器检测到罐内压力超过设定安全值时,安全阀自动开启,释放多余压力,防止罐体爆炸或损坏,提高碳酸饮料生产过程中的安全性;
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Figure CN224793261U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of carbonated beverage production technology, and in particular to a carbonated beverage generation structure. Background Technology
[0002] Currently, there are two main types of carbonated beverage generating devices on the market: the first type is the manual pressurization device, which generates carbon dioxide gas by manually squeezing the gas cylinder and then injecting it into the water provided by the water tank to form a carbonated beverage. Although this device is simple and easy to use, it is inefficient and cannot meet large-scale demand. The second type is the electric pressurization device, which uses a motor to drive a compressor to compress the carbon dioxide gas released from the carbon dioxide cylinder and inject it into the water. This device has a high degree of automation, but it generally suffers from high noise and high energy consumption. In addition, the safety protection measures of these two types of devices are relatively weak, and they are prone to safety accidents such as gas leakage and explosion, which reduces the safety of the carbonated beverage production process.
[0003] In response to the aforementioned technologies, there is an urgent need to design and develop a carbonated beverage production structure to improve the safety of the carbonated beverage production process. Utility Model Content
[0004] To improve the safety of carbonated beverage production, this application provides a carbonated beverage generation structure.
[0005] The technical solution for generating a carbonated beverage provided in this application is as follows: A carbonated beverage generating structure includes a carbon dioxide cylinder for providing carbon dioxide and a water tank for providing water. A sparkling water tank is disposed next to the water tank. The carbon dioxide cylinder is connected to the sparkling water tank via a connecting pipe. A high-pressure diaphragm pump is disposed on the connecting pipe. The water tank is connected to the sparkling water tank via a connecting pipe. A pressure sensor is disposed inside the sparkling water tank. A safety valve is disposed next to the pressure sensor and is connected to the sensor.
[0006] By adopting the above technical solution, a sparkling water tank is installed next to the water tank. A carbon dioxide cylinder is connected to the sparkling water tank via a connecting pipe 1, and a high-pressure diaphragm pump is installed on the connecting pipe 1. The water tank is connected to the sparkling water tank via a connecting pipe 2. A pressure sensor and a safety valve are installed inside the sparkling water tank, located next to the pressure sensor and connected to the sensor. During the production of carbonated beverages, the high-pressure diaphragm pump is turned on to pump water from the water tank into the sparkling water tank, and the carbon dioxide cylinder is turned on to inject carbon dioxide gas into the sparkling water tank. In the sealed sparkling water tank, the carbon dioxide gas mixes with water under pressure to form carbonated water, which is the basis for producing carbonated beverages. The pressure sensor monitors the pressure inside the tank in real time to ensure that the carbonation process is carried out within a safe pressure range. When the pressure sensor detects that the pressure inside the tank exceeds the set safety value, the safety valve automatically opens to release excess pressure and prevent the tank from exploding or being damaged.
[0007] Preferably, an alarm mechanism is provided next to the sparkling water tank. The alarm mechanism includes a mounting base next to the sparkling water tank, an alarm light on the mounting base, and a voice announcer next to the alarm light. The voice announcer is mounted on the mounting base. The pressure sensor is electrically connected to the alarm light and the voice announcer.
[0008] By adopting the above technical solution, the mounting base is set next to the sparkling water tank, the alarm light is set on the mounting base, and the voice broadcaster is set on the mounting base and next to the alarm light. The pressure sensor is electrically connected to the alarm light and the voice broadcaster. When the pressure sensor detects that the pressure inside the sparkling water tank exceeds the set safety value, the alarm light flashes, and the voice broadcaster begins to broadcast a voice prompt that the pressure inside the sparkling water tank is too high, until the safety valve releases the excess pressure, so that the pressure inside the sparkling water tank returns to normal, and the alarm light and the voice broadcaster stop working. When the pressure sensor detects that the pressure inside the sparkling water tank is lower than the set minimum value, the alarm light flashes, and the voice broadcaster begins to broadcast a voice prompt that the pressure inside the sparkling water tank is too low, notifying the staff that the carbon dioxide filling amount can be adjusted.
[0009] Preferably, the sparkling water tank is equipped with a water level monitoring mechanism, which includes a high water level probe for detecting high water levels, and the high water level probe is disposed inside the sparkling water tank.
[0010] By adopting the above technical solution, a high water level probe is set inside the bubble water tank. During the process of turning on the high-pressure diaphragm pump to pump water from the water tank into the bubble water tank, the high water level probe monitors the water level. When the water level is about to reach the high water level, the high-pressure diaphragm pump is adjusted to stop pumping water to avoid exceeding the high water level and ensure that the water level is within a safe range.
[0011] Preferably, the water level monitoring mechanism includes a low water level probe for detecting the bottom water level, the low water level probe being disposed inside the bubble water tank and below the high water level probe.
[0012] By adopting the above technical solution, the low water level probe is set inside the bubble water tank and below the high water level probe. The low water level probe monitors the water level. When the water level is about to reach the minimum water level, the high-pressure diaphragm pump is adjusted to pump water to avoid insufficient water supply.
[0013] Preferably, a first direct-flow check valve is provided on the connecting pipe.
[0014] By adopting the above technical solution, a first straight-through check valve is installed on the connecting pipe to prevent carbon dioxide gas from flowing back.
[0015] Preferably, a quick-connect bend is provided between the first straight-through check valve and the carbon dioxide cylinder, one end of the quick-connect bend is connected to the first straight-through check valve, and the other end of the quick-connect bend is connected to the outlet of the carbon dioxide cylinder.
[0016] By adopting the above technical solution, a bent quick connector is provided between the first straight-through check valve and the carbon dioxide cylinder. One end of the bent quick connector is connected to the first straight-through check valve, and the other end of the bent quick connector is connected to the outlet end of the carbon dioxide cylinder, which facilitates the connection between the connecting pipe and the carbon dioxide cylinder.
[0017] Preferably, a second straight-through check valve is provided on the second connecting pipe.
[0018] By adopting the above technical solution, a second straight-through check valve is installed on the second connecting pipe to prevent water from flowing in reverse.
[0019] Preferably, the sparkling water tank is provided with a discharge pipe, and the discharge pipe is provided with a solenoid valve.
[0020] By adopting the above technical solution, the sparkling water tank is equipped with a discharge pipe, and the discharge pipe is equipped with a solenoid valve to facilitate the control of the flow of carbonated beverages.
[0021] In summary, this application includes at least one of the following beneficial technical effects: 1. A sparkling water tank is installed next to the water tank. A carbon dioxide cylinder is connected to the sparkling water tank via a connecting pipe 1, which is equipped with a high-pressure diaphragm pump. The water tank is connected to the sparkling water tank via a connecting pipe 2. A pressure sensor and a safety valve are installed inside the sparkling water tank, located next to the pressure sensor and connected to it. During the production of carbonated beverages, the high-pressure diaphragm pump is turned on to pump water from the water tank into the sparkling water tank. The carbon dioxide cylinder is turned on to inject carbon dioxide gas into the sparkling water tank. In the sealed sparkling water tank, the carbon dioxide gas mixes with water under pressure to form carbonated water, which is the basis for producing carbonated beverages. The pressure sensor monitors the pressure inside the tank in real time to ensure that the carbonation process is carried out within a safe pressure range. When the pressure sensor detects that the pressure inside the tank exceeds the set safety value, the safety valve automatically opens to release excess pressure, preventing the tank from exploding or being damaged, thus improving the safety of the carbonated beverage production process. 2. The mounting base is located next to the sparkling water tank. An alarm light and a voice announcer are both mounted on the mounting base and next to the alarm light. A pressure sensor is electrically connected to both the alarm light and the voice announcer. When the pressure sensor detects that the pressure inside the sparkling water tank exceeds the set safety value, the alarm light flashes, and the voice announcer begins broadcasting a voice prompt indicating that the pressure inside the sparkling water tank is too high, until the safety valve releases the excess pressure, allowing the pressure inside the sparkling water tank to return to normal. At this point, the alarm light and voice announcer stop working. When the pressure sensor detects that the pressure inside the sparkling water tank is below the set minimum value, the alarm light flashes, and the voice announcer begins broadcasting a voice prompt indicating that the pressure inside the sparkling water tank is too low, notifying staff that the carbon dioxide filling amount can be adjusted to improve the overall safety of the production process. 3. A high-level probe is installed inside the aerated water tank. When the high-pressure diaphragm pump is turned on to pump water from the water tank into the aerated water tank, the high-level probe monitors the water level. When the water level is about to reach the high level, the high-pressure diaphragm pump is stopped to prevent the water level from exceeding the high level and to ensure that the water level is within a safe range. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the overall structure of a carbonated beverage generation structure in an embodiment of this application.
[0023] Figure 2 This is a cross-sectional view of the sparkling water tank in an embodiment of this application.
[0024] Explanation of reference numerals in the attached figures: 1. Base plate; 2. Carbon dioxide cylinder; 3. Water tank; 4. Sparkling water tank; 41. Pressure sensor; 42. Safety valve; 5. Connecting pipe one; 51. First straight-through check valve; 6. Connecting pipe two; 61. Second straight-through check valve; 7. High-pressure diaphragm pump; 8. Alarm mechanism; 81. Mounting base; 82. Alarm light; 83. Voice broadcaster; 9. Water level monitoring mechanism; 91. High water level probe; 92. Low water level probe. Detailed Implementation
[0025] The following is in conjunction with the appendix Figure 1-2 This application will be described in further detail.
[0026] This application discloses a structure for generating a carbonated beverage, with reference to... Figure 1 As shown, a carbonated beverage generating structure includes a base plate 1, a carbon dioxide cylinder 2, a water tank 3, a sparkling water tank 4, a connecting pipe 1 5, a connecting pipe 2 6, a high-pressure diaphragm pump 7, an alarm mechanism 8, and a water level monitoring mechanism 9.
[0027] Reference Figure 1 As shown, the base plate 1 is set horizontally, with its length parallel to the ground. The carbon dioxide cylinder 2 is set horizontally on the base plate 1, with its length perpendicular to the top surface of the base plate 1. A shelf is set on the base plate 1, and the water tank 3 is set horizontally on the shelf.
[0028] Reference Figure 1 As shown, the sparkling water tank 4 is horizontally set on the base plate 1. The length direction of the sparkling water tank 4 is perpendicular to the ground. The sparkling water tank 4 is located between the water tank 3 and the carbon dioxide cylinder 2. The connecting pipe 5 is set between the carbon dioxide cylinder 2 and the sparkling water tank 4. One end of the connecting pipe 5 is connected to the sparkling water tank 4, and the other end of the connecting pipe 5 is connected to the carbon dioxide cylinder 2.
[0029] Reference Figure 1 As shown, connecting pipe 2 6 is located between water tank 3 and bubble water tank 4. One end of connecting pipe 2 6 is connected to bubble water tank 4, and the other end of connecting pipe 2 6 is connected to water tank 3. High-pressure diaphragm pump 7 is located on connecting pipe 2 6. A pressure sensor 41 is installed inside bubble water tank 4. A safety valve 42 is installed inside bubble water tank 4. The safety valve 42 is located next to the pressure sensor 41 and is connected to the sensor.
[0030] Reference Figure 1As shown, during the production of carbonated beverages, the high-pressure diaphragm pump 7 is turned on to pump water from the water tank 3 into the sparkling water tank 4, and the carbon dioxide cylinder 2 is turned on to inject carbon dioxide gas into the sparkling water tank 4. In the sealed sparkling water tank 4, the carbon dioxide gas mixes with water under pressure to form carbonated water, which is the basis for the production of carbonated beverages. The pressure sensor 41 monitors the pressure inside the tank in real time to ensure that the carbonation process is carried out within a safe pressure range. When the pressure sensor 41 detects that the pressure inside the tank exceeds the set safe value, the safety valve 42 automatically opens to release the excess pressure and prevent the tank from exploding or being damaged.
[0031] Reference Figure 1 As shown, a first straight-through check valve 51 is provided on the connecting pipe 5 to prevent backflow of carbon dioxide gas. A bend quick connector is provided between the first straight-through check valve 51 and the carbon dioxide cylinder 2. One end of the bend quick connector is connected to the first straight-through check valve 51, and the other end of the bend quick connector is connected to the gas outlet of the carbon dioxide cylinder 2, so as to facilitate the connection between the connecting pipe 5 and the carbon dioxide cylinder 2.
[0032] Reference Figure 1 As shown, a second straight-through check valve 61 is installed on the connecting pipe 2 6 to prevent water from flowing in the opposite direction. The sparkling water tank 4 is equipped with a discharge pipe, and a solenoid valve is installed on the discharge pipe to facilitate the control of the flow of carbonated beverages.
[0033] Reference Figure 1 As shown, the alarm mechanism 8 includes a mounting base 81, an alarm light 82, and a voice announcer 83. The mounting base 81 is located next to the sparkling water tank 4, the alarm light 82 is located on the mounting base 81, the voice announcer 83 is located on the mounting base 81, and the voice announcer 83 is located next to the alarm light 82. The pressure sensor 41 is electrically connected to the alarm light 82 and the pressure sensor 41 is connected to the voice announcer 83.
[0034] Reference Figure 1 As shown, when the pressure sensor 41 detects that the pressure inside the sparkling water tank 4 exceeds the set safety value, the alarm light 82 flashes, and the voice broadcaster 83 starts broadcasting a voice prompt that the pressure inside the sparkling water tank 4 is too high, until the safety valve 42 releases the excess pressure, so that the pressure inside the sparkling water tank 4 returns to normal, and the alarm light 82 and the voice broadcaster 83 stop working.
[0035] Reference Figure 1 As shown, when the pressure sensor 41 detects that the pressure inside the sparkling water tank 4 is lower than the set minimum value, the alarm light 82 flashes, and the voice broadcaster 83 starts broadcasting a voice prompt that the pressure inside the sparkling water tank 4 is too low, notifying the staff that the carbon dioxide filling amount can be adjusted.
[0036] Reference Figure 1 and Figure 2As shown, the water level monitoring mechanism 9 includes a high water level probe 91 and a low water level probe 92. The high water level probe 91 is installed inside the bubble water tank 4. During the process of turning on the high pressure diaphragm pump 7 to pump water from the water tank 3 into the bubble water tank 4, the high water level probe 91 monitors the water level. When the water level is about to reach the high water level, the high pressure diaphragm pump 7 is adjusted to stop pumping water to avoid exceeding the high water level and ensure that the water level is within a safe range.
[0037] Reference Figure 1 and Figure 2 As shown, the low water level probe 92 is installed inside the bubble water tank 4. The low water level probe 92 is installed below the high water level probe 91. The low water level probe 92 monitors the water level. When the water level is about to reach the minimum water level, the high pressure diaphragm pump 7 is adjusted to pump water to avoid insufficient water supply.
[0038] The implementation principle of a carbonated beverage generation structure in this application is as follows: During the production of carbonated beverages, the high-pressure diaphragm pump 7 is turned on to pump water from the water tank 3 into the sparkling water tank 4. The carbon dioxide cylinder 2 is turned on to inject carbon dioxide gas into the sparkling water tank 4. In the sealed sparkling water tank 4, the carbon dioxide gas mixes with water under pressure to form carbonated water. Carbonated water is the basis for the production of carbonated beverages. The pressure sensor 41 monitors the pressure inside the tank in real time to ensure that the carbonation process is carried out within a safe pressure range. When the pressure sensor 41 detects that the pressure inside the tank exceeds the set safety value, the safety valve 42 automatically opens to release the excess pressure, prevent the tank from exploding or being damaged, and improve the safety of the carbonated beverage production process.
[0039] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A carbonated beverage generating structure, comprising a carbon dioxide cylinder (2) for providing carbon dioxide and a water tank (3) for providing water, characterized in that: A bubble water tank (4) is provided next to the water tank (3). The carbon dioxide cylinder (2) is connected to the bubble water tank (4) through a connecting pipe (5). A high-pressure diaphragm pump (7) is provided on the connecting pipe (5). The water tank (3) is connected to the bubble water tank (4) through a connecting pipe (6). A pressure sensor (41) is provided inside the bubble water tank (4). A safety valve (42) is provided inside the bubble water tank (4). The safety valve (42) is located next to the pressure sensor (41) and is connected to the sensor. An alarm mechanism (8) is provided next to the sparkling water tank (4). The alarm mechanism (8) includes a mounting base (81) provided next to the sparkling water tank (4), an alarm light (82) provided on the mounting base (81), and a voice broadcaster (83) provided next to the alarm light (82). The voice broadcaster (83) is provided on the mounting base (81). The pressure sensor (41) is electrically connected to the alarm light (82) and the pressure sensor (41) is connected to the voice broadcaster (83). The bubble water tank (4) is equipped with a water level monitoring mechanism (9). The water level monitoring mechanism (9) includes a high water level probe (91) for detecting high water level and a low water level probe (92) for detecting low water level. The high water level probe (91) is located inside the bubble water tank (4), and the low water level probe (92) is located inside the bubble water tank (4) and below the high water level probe (91).
2. The carbonated beverage generating structure according to claim 1, characterized in that: A first direct-flow check valve (51) is provided on the connecting pipe (5).
3. The carbonated beverage generating structure according to claim 2, characterized in that: A bend quick connector is provided between the first straight-through one-way valve (51) and the carbon dioxide cylinder (2). One end of the bend quick connector is connected to the first straight-through one-way valve (51), and the other end of the bend quick connector is connected to the outlet end of the carbon dioxide cylinder (2).
4. The carbonated beverage generating structure according to claim 1, characterized in that: A second straight-through check valve (61) is provided on the second connecting pipe (6).
5. The carbonated beverage generating structure according to claim 1, characterized in that: The bubble water tank (4) is equipped with a discharge pipe, and the discharge pipe is equipped with a solenoid valve.