An ultrasonic focusing device capable of continuously processing liquids

By designing the upper liquid supply structure and cooling system of the ultrasonic focusing device, the complexity and thermal stability problems of the existing device were solved, achieving efficient and stable liquid treatment, which is suitable for industrial liquids, ultrasonic catalysis, biological extraction and environmental wastewater treatment.

CN224548130UActive Publication Date: 2026-07-24HIANERTEC SUZHOU
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HIANERTEC SUZHOU
Filing Date
2025-07-30
Publication Date
2026-07-24

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Abstract

The utility model provides a kind of ultrasonic energy-gathering equipment capable of continuously processing liquid, including the processing system, processing system includes ultrasonic transducer main body, working rod, liquid supply equipment, and sampling equipment;The working rod is connected with the ultrasonic transducer main body;First containing cavity and second containing cavity are excavated in the working rod;When the liquid supply pipe of the liquid supply equipment supplies the processing system with to-be-processed liquid, to-be-processed liquid first flows into the first containing cavity through the liquid supply pipe, and when the first containing cavity is filled with to-be-processed liquid, to-be-processed liquid will overflow and flow into the second containing cavity.The utility model is supplied with liquid from the upper end, the structure is relatively simple, and easy to operate.In addition, using sampling equipment can directly detect whether the first containing cavity and the second containing cavity are full of processing liquid, which facilitates to ensure that the first containing cavity and the second containing cavity are full of processing liquid during ultrasonic treatment, greatly improving the ultrasonic treatment effect.
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Description

Technical Field

[0001] This utility model relates to the field of ultrasonic processing, and in particular to an ultrasonic focusing device capable of continuously processing liquids. Background Technology

[0002] Ultrasonic treatment is the process of generating ultrasonic vibrations through a transducer, which creates cavitation effects in water, producing instantaneous high-pressure bubbles. These bubbles produce unique physical and chemical reactions with substances dissolved in the water, a process known as ultrasonic treatment.

[0003] Cavitation is the phenomenon where ultrasound waves passing through a liquid medium cause a large number of microbubbles to form, grow, and collapse within a very short time. This process is called cavitation. Cavitation creates an extreme environment of high temperature and pressure around the cavitation bubble interface. Such conditions are conducive to the decomposition or breakage of solvents, monomers, or polymer chains, thereby generating free radicals and initiating chemical reactions.

[0004] Existing continuous ultrasonic processing devices generally use a bottom-up liquid flow method, which requires an additional liquid supply device such as a pump, resulting in a complex structure and inconvenient operation.

[0005] 2. Disadvantages: Low efficiency in liquid processing. When processing certain harmful or corrosive liquids, traditional focusing equipment may pose a risk of environmental pollution. Furthermore, the performance of some traditional focusing equipment may be limited due to the poor thermal stability of the liquids being processed. For example, in the application of ionic liquids, poor thermal stability limits the practical industrial application of the processing device, especially in processes requiring high or low temperature conditions. Utility Model Content

[0006] In view of the shortcomings of the prior art described above, the purpose of this utility model is to provide an ultrasonic focusing device capable of continuously processing liquids, in order to solve the problems in the prior art.

[0007] To achieve the above and other related objectives, this utility model provides an ultrasonic focusing device capable of continuously processing liquids, comprising at least a processing system. The processing system includes an ultrasonic transducer body, a working rod, a liquid supply device, and a sampling device. The working rod has a proximal end face and a distal end face opposite to the proximal end face. The proximal end face is connected to the ultrasonic transducer body.

[0008] The distal end face is provided with a liquid supply port and an annular opening surrounding the liquid supply port; the liquid supply port extends toward the proximal end face to form a first receiving cavity;

[0009] The annular opening extends toward the proximal end face to form a second receiving cavity; and the upper end of the outer wall of the second receiving cavity extends away from the distal end face and forms a main opening, and the main opening is sealed with a sealing cap; a drain port communicating with the second receiving cavity is provided at the lower end of the outer wall of the second receiving cavity; and a drain pipe with a valve is installed at the drain port.

[0010] The liquid supply pipe of the liquid supply device passes through the sealing cover and extends to the liquid supply port, and extends towards the proximal end face;

[0011] The sampling device includes a sampling bottle and an L-shaped sampling tube. One end of the L-shaped sampling tube passes through the sealing cap and extends to the main opening, while the other end extends into the sampling bottle through a connecting tube.

[0012] Preferably, the ultrasonic focusing device further includes a cooling system, which includes a cooling cylinder and a cooling input pipe and a cooling output pipe respectively equipped with ball valves; the working rod is arranged in the cooling cylinder, and the inner wall of the cooling cylinder and the outer wall of the working rod are sealed together to form a cooling cavity; the cooling input pipe is connected to the lower end of the cooling cavity, and the cooling output pipe is connected to the upper end of the cooling cavity.

[0013] Preferably, the ball valve is a pagoda ball valve.

[0014] Preferably, the valve is a diaphragm valve.

[0015] Preferably, the processing system further includes at least one temperature measuring instrument for monitoring the temperature of the processing liquid; at least one of the drain pipe, the outer wall of the second receiving cavity, and the main opening is equipped with the temperature measuring instrument.

[0016] Preferably, the ultrasonic focusing device further includes a cabinet; the processing system and the cooling system are both installed in the cabinet.

[0017] Preferably, the ultrasonic transducer body is fitted with a mounting sleeve, and the mounting sleeve is engaged with the ultrasonic transducer body. The bottom end of the mounting sleeve has a mounting ring, and the mounting ring is connected to the bottom of the cabinet by several fasteners.

[0018] Preferably, the cabinet has an operation interface and operation buttons. The operation interface is electrically connected to the processing system and the cooling system through a control unit. The operation interface can at least display the temperature measured by the temperature measuring instrument and the working status of the ball valve.

[0019] Preferably, the operation buttons include at least a start button, a stop button, and an alarm button.

[0020] As described above, the ultrasonic focusing device of this invention, capable of continuously processing liquids, has the following beneficial effects:

[0021] The processing system includes an ultrasonic transducer body, a working rod, a liquid supply device, and a sampling device. The working rod has a proximal end face and a distal end face opposite to the proximal end face. The proximal end face is connected to the ultrasonic transducer body. A first receiving cavity and a second receiving cavity are excavated in the working rod. When the liquid supply device supplies the liquid to be processed to the processing system through its supply pipe, the liquid first flows into the first receiving cavity through the supply pipe. When the first receiving cavity is full of the liquid, the liquid overflows and flows into the second receiving cavity. The ultrasonic transducer body converts electrical energy into mechanical energy and transmits it to the working rod. The working rod undergoes ultrasonic vibration, ensuring that the liquid to be processed is fully ultrasonically treated. The treated liquid is finally discharged through the outlet. Therefore, this invention provides liquid supply from the top, has a relatively simple structure, and is easy to operate. Furthermore, the sampling device allows for direct detection of whether the first and second receiving cavities are full of the treated liquid, ensuring that they are filled with the treated liquid during ultrasonic treatment, greatly improving the ultrasonic treatment effect. Attached Figure Description

[0022] Figure 1 The diagram shown is a schematic of the processing system of this utility model.

[0023] Figure 2 The diagram shown is an assembly diagram of the processing system and cooling system of this utility model.

[0024] Figure 3 The diagram shown is an assembly diagram of the processing system and cooling system of this utility model.

[0025] Figure 4 The diagram shown is a schematic representation of one embodiment of an ultrasonic energy-concentrating device capable of continuously processing liquids according to this utility model.

[0026] Figure 5 The image shown is a perspective view of the mounting sleeve of this utility model.

[0027] Figure 6 The image shown is a perspective view of the cabinet of this utility model.

[0028] Component designation explanation

[0029] 1. Ultrasonic transducer body; 2. Working rod; 3. Liquid supply equipment.

[0030] 31 Liquid supply tube; 4 Sampling equipment; 41 L-type sampling tube

[0031] 42 Sampling bottle 51 First receiving cavity 52 Second receiving cavity

[0032] 53 cooling cylinder 54 cooling chamber 6 drain pipe

[0033] 61 Temperature measuring instrument; 62 Valve; 7 Sealing cover

[0034] 71 Temperature measuring instrument; 81 Cooling input pipe; 82 Cooling output pipe

[0035] 83 Ball valve 9 Mounting sleeve 91 Mounting ring

[0036] 100 Cabinet; 102 Operation Buttons; 104 Control Unit

[0037] 101 User Interface 103 Cabinet Door Detailed Implementation

[0038] The following specific embodiments illustrate the implementation of this utility model. Those skilled in the art can easily understand other advantages and effects of this utility model from the content disclosed in this specification.

[0039] Please see Figures 1 to 6 It should be understood that the structures, proportions, sizes, etc., illustrated in the accompanying drawings are merely for illustrative purposes to aid those skilled in the art and are not intended to limit the scope of this invention. Therefore, they have no substantial technical significance. Any modifications to the structure, changes in proportions, or adjustments to size, without affecting the effectiveness or purpose of this invention, should still fall within the scope of the technical content disclosed in this invention. Furthermore, the terms such as "upper," "lower," "left," "right," "middle," and "one" used in this specification are merely for clarity and are not intended to limit the scope of this invention. Changes or adjustments to their relative relationships, without substantially altering the technical content, should also be considered within the scope of this invention.

[0040] like Figure 1 As shown, this utility model provides an ultrasonic focusing device capable of continuously processing liquids, comprising at least a processing system, wherein the processing system includes an ultrasonic transducer body 1, a working rod 2, a liquid supply device 3, and a sampling device 4.

[0041] Referring to reference 1, the working rod 2 has a proximal end face (not shown in the figure) and a distal end face (not shown in the figure) opposite to the proximal end face; the proximal end face is connected to the ultrasonic transducer body 1; preferably, the working rod 2 and the ultrasonic transducer body 1 are integrally molded. The working rod 2 can be designed as a round rod with a constant cross-sectional size, or it can be designed as a round rod with a variable cross-section. When designed as a round rod with a variable cross-section, preferably, the cross-sectional size of the round rod gradually increases from the distal end face to the proximal end face.

[0042] The distal end face has a liquid supply port (not shown in the figure) and an annular opening (not shown in the figure) surrounding the liquid supply port; in other words, the distal end face has two openings, one of which is the liquid supply port and the other is an annular opening, the liquid supply port is located in the annular opening, preferably, the center line of the liquid supply port is collinear with the center line of the annular opening; more preferably, the center line of the liquid supply port and the center line of the annular opening are both collinear with the center line of the working rod 2.

[0043] During operation, the distal end face is located at the upper end, and the transducer body 1 is located at the lower end.

[0044] The liquid supply port extends towards the proximal end face to form a first receiving cavity 51, that is, the liquid supply port is the opening of the first receiving cavity 51, see Figure 1 .

[0045] refer to Figure 1 The annular opening extends towards the proximal end face to form a second receiving cavity 52, that is, the annular opening is the opening of the second receiving cavity 52; the upper end of the outer wall of the second receiving cavity 52 extends away from the distal end face and forms a main opening (not shown in the figure), that is, the main opening is higher than the liquid supply port; the main opening is sealed by the sealing cap 7, thereby making the second receiving cavity 52 a sealed cavity; the lower end of the outer wall of the second receiving cavity 52 is provided with a liquid outlet communicating with the second receiving cavity 52; the liquid outlet is equipped with a drain pipe 6 with a valve 62; preferably, the valve 62 is a diaphragm valve.

[0046] The liquid supply pipe 31 of the liquid supply device 3 passes through the sealing cover 7 and extends to the liquid supply port, and extends towards the proximal end face, see Figure 1 .

[0047] refer to Figure 1 When the supply pipe 31 of the supply device 3 supplies the liquid to be treated to the processing system, the liquid first flows into the first receiving cavity 51 through the supply pipe 31. When the first receiving cavity 51 is full of the liquid, the liquid overflows and flows into the second receiving cavity 52. ​​The ultrasonic transducer body 1 converts electrical energy into mechanical energy and transmits it to the working rod 2. The working rod 2 undergoes ultrasonic vibration, ensuring that the liquid to be treated is fully ultrasonically treated. The treated liquid is finally discharged through the outlet. The flow direction of the treated liquid is as follows: Figure 1 As shown by the middle arrow, this invention provides liquid supply from the top, has a relatively simple structure, and is easy to operate.

[0048] In this invention, the first receiving cavity 51 and the second receiving cavity 52 are actually both inside the working rod 2, the liquid supply port is located at the top, and the liquid outlet is located at the bottom, thereby effectively ensuring the ultrasonic treatment effect.

[0049] refer to Figure 1 When the first and second cavities 51 are not filled with the liquid to be treated, the ultrasonic power is low, and the ultrasonic treatment effect of the liquid to be treated is not optimal. Therefore, this invention uses a sampling device 4 to detect whether the first and second cavities 51 and 52 are filled with the liquid to be treated. This detection method is relatively simple and intuitive.

[0050] The sampling device 4 includes a sampling bottle 42 and an L-shaped sampling tube 41. One end of the L-shaped sampling tube 41 passes through the sealing cap 7 and extends to the main opening, while the other end extends into the sampling bottle 42 through a connecting tube. Preferably, the connecting tube is a flexible tube. Specifically, the L-shaped sampling tube 41 includes a first sampling tube and a second sampling tube, and the first sampling tube and the second sampling tube are smoothly connected by an arc-shaped tube. Figure 1 For ease of installation, preferably, the length of the first adopting tube is equal to the length of the second adopting tube. Of course, the lengths of the first adopting tube and the second adopting tube may not be equal, and this utility model does not impose specific limitations.

[0051] refer to Figure 1 When the second receiving cavity 52 is full of the liquid to be treated, the liquid to be treated will flow into the sampling bottle 42 through the L-shaped sampling tube 41. If no liquid to be treated is seen flowing into the sampling bottle 42, it means that the first receiving cavity 51 and the second receiving cavity 52 are not full of the liquid to be treated. When liquid to be treated is seen flowing into the sampling bottle 42, it means that the first receiving cavity 51 and the second receiving cavity 52 are full of the liquid to be treated. At this time, the ultrasonic transducer body is turned on to perform ultrasonic treatment on the liquid to be treated, and the liquid supply tube 31 is kept supplying liquid to the first receiving cavity 51. At the same time, the liquid outlet is opened, and the treated liquid is discharged through the liquid outlet.

[0052] refer to Figure 2 In order to improve the service life of the working rod 2, that is, the service life of the ultrasonic transducer body 1, and to improve the ultrasonic treatment effect of the liquid, the ultrasonic focusing device of this utility model also includes a cooling system. The cooling system includes a cooling cylinder 53 and a cooling input pipe 81 and a cooling output pipe 82 respectively equipped with ball valves 83; preferably, the ball valve 83 is a pagoda ball valve 83.

[0053] refer to Figure 2 The working rod 2 is arranged in the cooling cylinder 53, and the inner wall of the cooling cylinder 53 and the outer wall of the working rod 2 are sealed together to form a cooling cavity 54; the cooling input pipe 81 is connected to the lower end of the cooling cavity 54, and the cooling output pipe 82 is connected to the upper end of the cooling cavity 54. The coolant flow direction is as follows: Figure 2 As indicated by the middle arrow.

[0054] refer to Figure 1 and Figure 2 To ensure the effective ultrasonic treatment of the liquid, the treatment system further includes at least one temperature measuring instrument 61 for monitoring the temperature of the liquid. The temperature measuring instrument 61 is installed in at least one of the drain pipe 6, the outer wall of the second receiving cavity 52, and the main opening. Preferably, the temperature measuring instrument 71 is mounted on the sealing cap 7, and this instrument measures the temperature of the liquid at the main opening. The temperature measuring instruments 61 and 71, along with the diaphragm valve, allow for better control of the liquid flow rate, thereby ensuring that the temperature of the ultrasonically treated liquid remains stable and its properties are not damaged due to high temperatures.

[0055] refer to Figure 5 To facilitate handling and prevent dust and collisions, and to improve aesthetics, the ultrasonic energy-concentrating device also includes a cabinet 100; the processing system and cooling system are both installed in the cabinet 100.

[0056] Preferably, refer to Figure 3 and Figure 4 The ultrasonic transducer body 1 is fitted with a mounting sleeve 9, which has a cylindrical structure that matches the outer wall of the ultrasonic transducer body 1. The mounting sleeve 9 is engaged with the ultrasonic transducer body 1, and the bottom end of the mounting sleeve 9 has a mounting ring 91. Figure 4 The mounting ring 91 is connected to the bottom of the cabinet 100 by several fasteners. Preferably, the fasteners are evenly distributed around the ultrasonic transducer body 1. The sampling bottle 42 is fixed in the cabinet by a bracket (not shown in the figure), and the mouth of the sampling bottle 42 is slightly higher than the main opening.

[0057] Preferably, the cabinet 100 is designed with a viewing window (not shown in the figure), through which it is possible to clearly observe whether there is liquid flowing into the sampling bottle 42.

[0058] Preferably, refer to Figure 6 The cabinet 100 has an operation interface 101 and operation buttons. The operation interface 101 is electrically connected to the processing system and cooling system through the control unit 104. The operation interface 101 can at least display the temperature measured by the temperature measuring instrument 61 and the working status of the ball valve 83. Preferably, the operation interface 101 is designed on the top of the cabinet 100.

[0059] Preferably, the operation buttons include at least a start button (not shown in the figure), a stop button (not shown in the figure), and an alarm button (not shown in the figure).

[0060] Preferably, the cabinet door 103 of the cabinet 100 is a double door, which is designed on the front side of the cabinet 100. When the double door is opened, the processing system and cooling system can be clearly seen, which facilitates the maintenance of this utility model.

[0061] The ultrasonic energy-concentrating device for continuous liquid processing provided by this utility model can be used in scenarios requiring industrial liquid treatment, ultrasonic catalysis, biological extraction, environmental wastewater treatment, and sludge treatment.

[0062] In summary, this utility model effectively overcomes the various shortcomings of the prior art and has high industrial application value.

[0063] The above embodiments are merely illustrative of the principles and effects of this utility model and are not intended to limit the scope of this utility model. Any person skilled in the art can modify or alter the above embodiments without departing from the spirit and scope of this utility model. Therefore, all equivalent modifications or alterations made by those skilled in the art without departing from the spirit and technical concept disclosed in this utility model should still be covered by the claims of this utility model.

Claims

1. An ultrasonic focusing device capable of continuously processing liquids, characterized in that, The device includes at least a processing system, which comprises an ultrasonic transducer body, a working rod, a liquid supply device, and a sampling device; the working rod has a proximal end face and a distal end face opposite to the proximal end face; the proximal end face is connected to the ultrasonic transducer body. The distal end face is provided with a liquid supply port and an annular opening surrounding the liquid supply port; the liquid supply port extends toward the proximal end face to form a first receiving cavity; The annular opening extends toward the proximal end face to form a second receiving cavity; and the upper end of the outer wall of the second receiving cavity extends away from the distal end face and forms a main opening, and the main opening is sealed with a sealing cap; a drain port communicating with the second receiving cavity is provided at the lower end of the outer wall of the second receiving cavity; and a drain pipe with a valve is installed at the drain port. The liquid supply pipe of the liquid supply device passes through the sealing cover and extends to the liquid supply port, and extends towards the proximal end face; The sampling device includes a sampling bottle and an L-shaped sampling tube. One end of the L-shaped sampling tube passes through the sealing cap and extends to the main opening, while the other end extends into the sampling bottle through a connecting tube.

2. The ultrasonic focusing device for continuous liquid processing according to claim 1, characterized in that: The ultrasonic focusing device also includes a cooling system, which includes a cooling cylinder and a cooling input pipe and a cooling output pipe respectively equipped with ball valves; the working rod is arranged in the cooling cylinder, and the inner wall of the cooling cylinder and the outer wall of the working rod are sealed together to form a cooling cavity; the cooling input pipe is connected to the lower end of the cooling cavity, and the cooling output pipe is connected to the upper end of the cooling cavity.

3. The ultrasonic focusing device capable of continuously processing liquids according to claim 2, characterized in that: The ball valve in question is a pagoda ball valve.

4. The ultrasonic focusing device capable of continuously processing liquids according to claim 1, characterized in that: The valve is a diaphragm valve.

5. An ultrasonic focusing device capable of continuously processing liquids according to claim 3, characterized in that: The processing system also includes at least one temperature measuring instrument for monitoring the temperature of the processing liquid; at least one of the drain pipe, the outer wall of the second receiving cavity, and the main opening is equipped with the temperature measuring instrument.

6. An ultrasonic focusing device capable of continuously processing liquids according to claim 5, characterized in that: The ultrasonic focusing device also includes a cabinet; the processing system and cooling system are both installed in the cabinet.

7. An ultrasonic focusing device capable of continuously processing liquids according to claim 6, characterized in that: An installation sleeve is fitted onto the main body of the ultrasonic transducer, and the installation sleeve is engaged with the main body of the ultrasonic transducer. The bottom end of the installation sleeve has an installation ring, and the installation ring is connected to the bottom of the cabinet by several fasteners.

8. An ultrasonic focusing device capable of continuously processing liquids according to claim 7, characterized in that: The cabinet has an operation interface and operation buttons. The operation interface is electrically connected to the processing system and the cooling system through a control unit. The user interface can at least display the temperature measured by the temperature measuring instrument and the working status of the ball valve.

9. An ultrasonic focusing device capable of continuously processing liquids according to claim 8, characterized in that: The operation buttons include at least a start button, a stop button, and an alarm button.