Production equipment of ultrasonic sterilization type natural soda water
By introducing a moving mechanism into the ultrasonic sterilization natural soda water production equipment, the problem of reduced sound intensity is solved, and a more uniform sterilization effect is achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HEILONGJIANG QINGLENGQUAN NATURAL SODA WATER CO LTD
- Filing Date
- 2025-05-23
- Publication Date
- 2026-04-17
AI Technical Summary
In existing ultrasonic sterilization natural soda water production equipment, the probe is fixed in a certain position, which causes the sound intensity to gradually weaken as the distance from the probe inside the sterilization tank increases, resulting in uneven sterilization effect.
A moving mechanism is used to move the probe inside the sterilization tank. Through the cooperation of the track components and the motor, the probe can be rotated and raised and lowered to ensure a wider sound wave coverage.
It improves the uniformity of sound intensity inside the sterilization tank, enhances the sterilization effect, and solves the problem of reduced sound intensity caused by fixing the probe position.
Smart Images

Figure CN224125188U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of soda water production, and more specifically, to production equipment for ultrasonically sterilized natural soda water. Background Technology
[0002] Natural soda water bottling equipment is an automated system designed specifically for bottling natural soda water (with or without carbon dioxide). It must meet the special bottling requirements of carbonated beverages while ensuring the stability and hygiene standards of natural ingredients (such as sodium bicarbonate, minerals, etc.).
[0003] In the production process of natural soda water, sterilization is required. Sterilization equipment includes ultrasonic sterilization and ultraviolet sterilization. Ultrasonic sterilization works by creating tiny bubbles (cavitation bubbles) through the alternating compression and expansion cycles of ultrasound waves as they propagate in the liquid. These bubbles rapidly contract in the compression phase of the sound waves and collapse sharply in the expansion phase, generating instantaneous local high temperature and high pressure, thereby eliminating bacteria.
[0004] However, the existing ultrasonic sterilization equipment for producing natural soda water still has the following shortcomings during use: The existing ultrasonic sterilization equipment usually involves contacting the probe with the liquid and releasing ultrasonic waves through the probe. The existing devices usually fix the probe in a fixed position, but the further away the probe is from the sterilization tank, the lower the sound intensity will be, and the sterilization effect will gradually weaken. Utility Model Content
[0005] To overcome the above shortcomings, this application provides production equipment for ultrasonic sterilization of natural soda water, which aims to improve the problem that existing devices usually fix the probe in a fixed position, but the sound intensity will decrease and the sterilization effect will gradually weaken as the position inside the sterilization tank is further away from the probe.
[0006] This application provides a production equipment for ultrasonically sterilized natural soda water, including a sterilization tank. A workbench is provided on one side of the sterilization tank, and an ultrasonic generator is connected to the top of the workbench. The output end of the ultrasonic generator is electrically connected to a flexible output cable. The other end of the flexible output cable passes through the sterilization tank and is electrically connected to a probe. A moving mechanism for driving the probe to move is provided inside the sterilization tank, and a wire-binding mechanism is provided inside the sterilization tank.
[0007] The moving mechanism includes a track component, the outer surface of which is provided with two sets of first tracks and two sets of second tracks, and the two ends of the two sets of first tracks and second tracks are connected.
[0008] In one specific implementation, the sterilization tank is internally connected to a first crossbar, one end of which is connected to a slider, which is capable of sliding inside a first track and a second track.
[0009] In the above implementation process, by setting the slider, the slider can slide inside the first and second tracks when the track component rotates. Since one end of the slider is connected to the first crossbar and fixed inside the sterilization tank, the slider cannot move. Through the action of the slider, the track component can move up and down while rotating.
[0010] In one specific implementation, the first track is a vertically downward slide rail, and the second track is a slide rail that slowly rises along the outer surface of the track component.
[0011] In the above implementation process, by setting the first track and the second track, and by making the first track a vertical downward track, the slider can move downward along the first track when it just reaches the top of the first track. When the slider is stationary, it is equivalent to the track component rising. When the slider slides to the bottom of the first track, it contacts the second track. On the second track, the slider slowly rises along the direction of the second track. When the slider is stationary, it is equivalent to driving the track component to slowly descend.
[0012] In one specific implementation, the bottom of the sterilization tank is connected to multiple sets of vertical rods, and the other end of each vertical rod is connected to a base plate.
[0013] In the above implementation process, the stability of motor operation can be improved by setting up the base plate and vertical rod.
[0014] In one specific implementation, a motor is connected to the top of the base plate, and the output shaft of the motor passes through the sterilization tank and is connected to a second circular plate.
[0015] In the above implementation process, by setting up the motor, the second circular plate can be rotated by controlling the motor.
[0016] In one specific implementation, a telescopic damping rod is connected to the top of the second circular plate, and the other end of the telescopic damping rod is connected to the first circular plate. A spring is sleeved on the outer surface of the telescopic damping rod.
[0017] In the above implementation process, by setting up the spring and the telescopic damping rod, when the track component moves downward, the spring will be compressed and the telescopic damping rod will contract. When the slider slides to the top of the first track, the spring and the telescopic damping rod release elastic potential energy, driving the track component to move upward, so that the slider slides to the bottom of the first track.
[0018] In one specific implementation, the probe is attached to the outer surface of the first circular plate, and the track is attached to the top of the first circular plate.
[0019] In the above implementation process, by setting the first circular plate, the second circular plate can rotate, which in turn drives the first circular plate to rotate, which in turn drives the track component to rotate, which in turn drives the probe to rotate. At the same time, the probe will also move up and down due to the up and down movement of the track component.
[0020] In one specific embodiment, the wiring mechanism includes a wiring member connected to the top of the track member, with the other end of the soft output wire passing through the interior of the wiring member.
[0021] In the above implementation process, by setting up the cable tie, the soft output cable above the track component can be fixed inside the cable tie, preventing the cable tie from affecting the rotation of the probe.
[0022] In one specific implementation, a section of the outer surface of the soft output line is provided with a hard output line.
[0023] In the above implementation process, soft output lines are output lines with a soft outer surface material that can be bent, while hard output lines are output lines with a hard outer surface material that cannot be bent.
[0024] In one specific implementation, the sterilization tank is internally connected to a second crossbar, one end of which is connected to a limiting member, and the rigid output line passes through the interior of the limiting member.
[0025] In the above implementation process, by setting the limiting component, the hard output line can be driven to move up and down inside the limiting component when the track component moves up and down. By using a hard output line at one end, too many soft output lines on the outer surface of the track component can be avoided, which would affect the rotation of the probe.
[0026] Compared with the prior art, the beneficial effects of this application are as follows: by setting up the moving mechanism, the track component can be moved up and down while rotating by controlling the motor, so that the probe can be moved to more positions. This solves the problem that existing devices usually fix the probe in a fixed position, but the sound intensity will decrease and the sterilization effect will gradually weaken as the position is further away from the probe in the sterilization tank. Attached Figure Description
[0027] To more clearly illustrate the technical solutions of the embodiments of this application, the drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained from these drawings without creative effort.
[0028] Figure 1 This is a schematic diagram of the production equipment for ultrasonically sterilized natural soda water provided in the embodiments of this application;
[0029] Figure 2 A schematic diagram of the sterilization tank structure provided for an embodiment of this application;
[0030] Figure 3 A schematic diagram of the track component structure provided for an embodiment of this application;
[0031] Figure 4 A schematic diagram of the motor structure provided for an embodiment of this application;
[0032] Figure 5 A schematic diagram of the spring structure provided for an embodiment of this application;
[0033] Figure 6 A schematic diagram of the slider structure provided for an embodiment of this application;
[0034] Figure 7 A schematic diagram of the limiting member structure provided for an embodiment of this application;
[0035] Figure 8 A schematic diagram of the hard output line structure provided for an embodiment of this application.
[0036] In the diagram: 1. Sterilization tank; 2. Moving mechanism; 201. First crossbar; 202. Second crossbar; 203. Track component; 204. Motor; 205. First circular plate; 206. Spring; 207. Second circular plate; 208. Telescopic damping rod; 209. Second track; 2010. First track; 2011. Slider; 2012. Vertical rod; 2013. Base plate; 3. Wire harness mechanism; 301. Wire harness component; 302. Limiting component; 303. Rigid output cable; 4. Workbench; 5. Ultrasonic generator; 6. Flexible output cable; 7. Probe. Detailed Implementation
[0037] The technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments.
[0038] Please see Figure 1 This application provides production equipment for ultrasonically sterilized natural soda water, including sterilization tank 1.
[0039] Please see Figure 1 , Figure 2 and Figure 3 A workbench 4 is provided on one side of the sterilization tank 1. An ultrasonic generator 5 is connected to the top of the workbench 4. The output end of the ultrasonic generator 5 is electrically connected to a flexible output cable 6. The other end of the flexible output cable 6 passes through the sterilization tank 1 and is electrically connected to a probe 7. A moving mechanism 2 for moving the probe 7 is provided inside the sterilization tank 1. A wire harness mechanism 3 is provided inside the sterilization tank 1.
[0040] Please see Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 and Figure 8 The moving mechanism 2 includes a track component 203. The outer surface of the track component 203 is provided with two sets of first tracks 2010 and two sets of second tracks 209. The two ends of the two sets of first tracks 2010 and second tracks 209 are connected.
[0041] In the specific configuration, a first crossbar 201 is connected inside the sterilization tank 1. One end of the first crossbar 201 is connected to a slider 2011. The slider 2011 can slide inside the first track 2010 and the second track 209. By setting the slider 2011, the track component 203 can rotate while the slider 2011 slides inside the first track 2010 and the second track 209. Since one end of the slider 2011 is connected to the first crossbar 201 and fixed inside the sterilization tank 1, the slider 2011 cannot move. Through the action of the slider 2011, the track component 203 can move up and down while rotating.
[0042] In the specific configuration, the first track 2010 is a vertically downward sliding rail, and the second track 209 is a sliding rail that slowly rises along the outer surface of the track component 203. By configuring the first track 2010 and the second track 209, and by making the first track 2010 a vertically downward rail, the slider 2011 can move downwards along the vertical direction of the first track 2010 as soon as it reaches above the first track 2010. When the slider 2011 is stationary, it is equivalent to the track component 203 rising. When the slider 2011 slides to the bottom of the first track 2010, it contacts the second track 209. On the second track 209, the slider 2011 slowly rises along the direction of the second track 209. When the slider 2011 is stationary, it is equivalent to causing the track component 203 to slowly descend.
[0043] In the specific setup, the bottom of the sterilization tank 1 is connected to multiple sets of vertical rods 2012, and the other end of the vertical rods 2012 is connected to a base plate 2013. The setup of the base plate 2013 and the vertical rods 2012 can improve the stability of the motor 204.
[0044] In a specific configuration, a motor 204 is connected to the top of the base plate 2013. The output shaft of the motor 204 passes through the sterilization tank 1 and is connected to the second circular plate 207. By configuring the motor 204, the second circular plate 207 can be rotated by controlling the motor 204.
[0045] In the specific configuration, a telescopic damping rod 208 is connected to the top of the second circular plate 207, and the other end of the telescopic damping rod 208 is connected to the first circular plate 205. A spring 206 is sleeved on the outer surface of the telescopic damping rod 208. Through the configuration of the spring 206 and the telescopic damping rod 208, when the track component 203 moves downward, the spring 206 is compressed and the telescopic damping rod 208 contracts. When the slider 2011 slides to the top of the first track 2010, the spring 206, in conjunction with the telescopic damping rod 208, releases elastic potential energy, driving the track component 203 to move upward, so that the slider 2011 slides to the bottom of the first track 2010. The telescopic damping rod 208 and the spring 206 are made of polytetrafluoroethylene alkali-resistant plastic, which can withstand the environment of soda water.
[0046] In a specific configuration, the probe 7 is connected to the outer surface of the first circular plate 205, and the track component 203 is connected to the top of the first circular plate 205. The first circular plate 205 is configured such that when the second circular plate 207 rotates, it drives the first circular plate 205 to rotate, which in turn drives the track component 203 to rotate, thus causing the probe 7 to rotate. At the same time, the probe 7 will also move up and down due to the up and down movement of the track component 203.
[0047] By setting up the moving mechanism 2, the motor 204 can be controlled to drive the track component 203 to move up and down while rotating, allowing the probe 7 to move to more positions. The probe 7 generates ultrasonic waves for sterilization, thus solving the problem that existing devices usually fix the probe 7 in a fixed position, but the sound intensity will decrease and the sterilization effect will gradually weaken as the position is further away from the probe 7 in the sterilization tank 1.
[0048] In a specific configuration, the cable harness mechanism 3 includes a cable harness 301, which is connected to the top of the track member 203. The other end of the flexible output cable 6 passes through the interior of the cable harness 301. By setting the cable harness 301, the flexible output cable 6 above the track member 203 can be fixed inside the cable harness 301, thus preventing the cable harness 301 from affecting the rotation of the probe 7.
[0049] In specific settings, a section of the outer surface of the soft output line 6 is provided with a hard output line 303. The soft output line 6 is an output line with a relatively soft and flexible outer surface material, while the hard output line 303 is an output line with a relatively hard outer surface material that cannot be bent.
[0050] In the specific setup, the sterilization tank 1 is internally connected to a second crossbar 202. One end of the second crossbar 202 is connected to a limiting member 302. The rigid output line 303 passes through the interior of the limiting member 302. By setting the limiting member 302, when the track member 203 moves up and down, the rigid output line 303 can be driven to move up and down inside the limiting member 302. By using a rigid output line 303 at one end, too many soft output lines 6 on the outer surface of the track member 203 can be avoided, which would affect the rotation of the probe 7. Furthermore, the output shaft of the motor 204 can rotate both clockwise and counterclockwise, preventing the soft output line 6 from always rotating in one direction.
[0051] The working principle of the ultrasonic sterilization natural soda water production equipment is as follows: When using the ultrasonic sterilization natural soda water production equipment, the motor 204 drives the second circular plate 207 to rotate, which in turn drives the first circular plate 205 to rotate, thereby driving the track component 203 to rotate. When the slider 2011 is at the bottom of the first track 2010, it contacts the second track 209. On the second track 209, the slider 2011 slowly rises along the direction of the second track 209. When the slider 2011 remains stationary, it is equivalent to driving the track component 203 to slowly descend, compressing the spring 206. When the slider 2011 just reaches above the first track 2010... When the spring 206 releases elastic potential energy, it moves downward along the first vertical track 2010. When the slider 2011 is stationary, it is equivalent to the track component 203 rising. While the first circular plate 205 rotates and rises and falls, it drives the probe 7 to rotate and rise and fall, allowing the probe 7 to move to more positions. The probe 7 releases ultrasonic waves to sterilize the inside of the sterilization tank 1. When the track component 203 moves up and down, it drives the hard output line 303 to move up and down inside the limiting component 302. By using a hard output line 303 at one end, it is possible to avoid too many soft output lines 6 on the outer surface of the track component 203, which would affect the rotation of the probe 7.
[0052] The above are merely specific embodiments of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.
Claims
1. An apparatus for producing ultrasonic wave sterilization type natural soda water, characterized by, include A sterilization tank (1) is provided with a workbench (4) on one side. An ultrasonic generator (5) is connected to the top of the workbench (4). The output end of the ultrasonic generator (5) is electrically connected to a flexible output line (6). The other end of the flexible output line (6) passes through the sterilization tank (1) and is electrically connected to a probe (7). A moving mechanism (2) for moving the probe (7) is provided inside the sterilization tank (1). A wire harness mechanism (3) is provided inside the sterilization tank (1). The moving mechanism (2) includes a track component (203), on the outer surface of which are provided two sets of first tracks (2010) and two sets of second tracks (209), and the two ends of the two sets of first tracks (2010) and second tracks (209) are connected.
2. The apparatus for producing ultrasonic sterilization natural soda water according to claim 1, wherein The sterilization tank (1) is internally connected to a first crossbar (201), and one end of the first crossbar (201) is connected to a slider (2011). The slider (2011) can slide inside the first track (2010) and the second track (209).
3. The apparatus for producing ultrasonic sterilization natural soda water according to claim 1, wherein The first track (2010) is a vertically downward slide rail, and the second track (209) is a slide rail that slowly rises along the outer surface of the track component (203).
4. The apparatus for producing ultrasonic sterilization natural soda water according to claim 1, wherein The bottom of the sterilization tank (1) is connected to multiple sets of vertical rods (2012), and the other end of the vertical rods (2012) is connected to a base plate (2013).
5. The apparatus for producing ultrasonic sterilization natural soda water according to claim 4, wherein The top of the base plate (2013) is connected to a motor (204), and the output shaft of the motor (204) passes through the sterilization tank (1) and is connected to a second circular plate (207).
6. The apparatus for producing ultrasonic sterilization natural soda water according to claim 5, wherein The top of the second circular plate (207) is connected to a telescopic damping rod (208), the other end of the telescopic damping rod (208) is connected to a first circular plate (205), and a spring (206) is sleeved on the outer surface of the telescopic damping rod (208).
7. The production equipment for ultrasonically sterilized natural soda water according to claim 1, characterized in that, The probe (7) is connected to the outer surface of the first circular plate (205), and the track (203) is connected to the top of the first circular plate (205).
8. The apparatus according to claim 1, wherein the apparatus is characterized by: The wire harness mechanism (3) includes a wire harness (301) connected to the top of the track member (203), and the other end of the soft output line (6) passes through the interior of the wire harness (301).
9. The apparatus for producing ultrasonic sterilization natural soda water according to claim 8, wherein A section of the outer surface of the soft output line (6) is provided with a hard output line (303).
10. The apparatus for producing ultrasonic sterilization natural soda water according to claim 9, wherein The sterilization tank (1) is internally connected to a second crossbar (202), one end of which is connected to a limiting member (302), and the hard output line (303) passes through the interior of the limiting member (302).