Ultrasonic noninvasive cell tissue ablation instrument
The ultrasonic non-invasive cell tissue ablation instrument solves the problems of complex castration of the reproductive system of poultry and livestock and low lean meat rate of local pigs by creating weak ablation zones and strong ablation zones under the skin of organisms. It achieves efficient non-invasive ablation, improves survival rate and lean meat rate, while maintaining meat quality and reducing infection risk.
Patent Information
- Application Number
- CN202422595371.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-25
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2034-10-25
AI Technical Summary
Traditional methods of castrating the reproductive systems of poultry and livestock are complex and have a high mortality rate. Local pigs have a low lean meat percentage, and traditional pork has a low lean meat percentage and poor taste, which cannot meet market demand.
Using an ultrasonic non-invasive cell tissue ablation instrument, a weak ablation zone and a strong ablation zone are formed under the skin of the organism through an ultrasonic transmitter. The ablation area is precisely controlled to achieve non-invasive ablation of reproductive system or fat cells, thereby increasing lean meat percentage without affecting meat quality and taste.
It improves the survival rate of castrated poultry and livestock, increases the lean meat percentage, maintains the meat's texture and taste, saves feed costs, and eliminates the risk of wound infection.
Smart Images

Figure CN223887005U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of noninvasive cell tissue ablation, in particular to an ultrasonic noninvasive cell tissue ablation instrument. BACKGROUND
[0002] At present, with the continuous expansion of poultry and livestock breeding industry, the traditional breeding method and technology cannot adapt to the rapid development of the industry. The traditional castration method of poultry and livestock reproductive system is to remove by artificial surgery. This method has high technical requirements for the operator, and also causes high mortality. Secondly, local pigs in China have the advantages of wide distribution, high number of litters, strong adaptability, tolerance to coarse feeding, and good taste, but the lean meat rate is low, which is between 38-45%. The lean meat rate of imported hybrid lean pigs is 55-64%, but the taste is not good. People's demand for pork has changed from fatty type to lean type. In recent years, how to improve the carcass lean meat rate of local pigs has become a breakthrough point for local pigs to adapt to market changes and meet market demand. SUMMARY
[0003] In order to solve the above technical defects, the utility model adopts the following technical scheme:
[0004] An ultrasonic noninvasive cell tissue ablation instrument, comprising a shell, a control display screen, a central processor, a reflected wave receiving plate, an ultrasonic wave transmitter and a bottom plate, the shell is a hollow shell with an opening downward, the bottom plate is arranged at the bottom of the shell, and a detection window is formed in the bottom plate, the upper surface of the shell is provided with the control display screen, the central processor, the reflected wave receiving plate, the ultrasonic wave transmitter and the fine adjustment mechanism are installed in the shell, the central processor is located above the reflected wave receiving plate, the ultrasonic wave transmitter is distributed in a left-right symmetrical "eight" shape and located at the bottom of the reflected wave receiving plate, a connecting shaft is further arranged on the side of the two ultrasonic wave transmitters close to the fine adjustment mechanism, the fine adjustment mechanism is located at the front end in the shell, and the fine adjustment mechanism is movably connected with the two ultrasonic wave transmitters.
[0005] Preferably, the central processor is electrically connected with the reflected wave receiving plate, the ultrasonic wave transmitter and the fine adjustment mechanism. The reflected wave receiving plate feeds back information to the central processor, the central processor feeds back information to the control display screen, and then according to the operation instruction, the central processor transmits the instruction to the ultrasonic wave transmitter to control the intensity and emission time of the emission waveform.
[0006] Preferably, the reflected wave receiving plate is installed between the ultrasonic wave transmitter and the central processor through a fixing rod, and rollers are further arranged at the four corners of the bottom of the bottom plate. The rollers mainly reduce the friction with the surface hair or epidermis of the organism when the equipment moves.
[0007] Preferably, the housing inner wall is provided with connecting seats on both sides, the connecting seats are in pairs, each pair of connecting seats is connected through a support shaft, and the downward part of the ultrasonic wave emitter is movably connected with the support shaft.
[0008] Preferably, the housing is provided with a heat dissipation window and a handle at the front and rear ends respectively, and the heat dissipation window is located above the handle.
[0009] Preferably, the housing is provided with a wiring slot on one side, and the output end of the wiring slot is electrically connected with the control display screen, the centralized processor, the reflected wave receiving plate and the ultrasonic wave emitter respectively.
[0010] Preferably, the fine adjustment mechanism comprises an electric cylinder, a sliding block, a track slot, an ear seat and a connecting rod, the electric cylinder and the track slot are installed on the inner wall of the housing, the bottom of the telescopic end of the electric cylinder is provided with the sliding block, the sliding block is slidably connected with the track slot, and the two sides of the sliding block are further provided with the ear seats, and each ear seat is connected with the connecting shaft through the connecting rod.
[0011] The beneficial effects of the utility model lie in:
[0012] The two ultrasonic wave emitters are arranged in an "eight" shape, the emitted ultrasonic waves can form a weak ablation zone E and a strong ablation zone F in the biological body skin layer, the interactive region of the emitted waveforms is the strong ablation zone F, the weak ablation zone E refers to the non-interactive region and is related to the reflected waveforms and time. The reflected wave receiving plate transmits feedback information to the centralized processor, the centralized processor feeds back information to the control display screen, then according to the operation instruction, the centralized processor transmits the issued instruction to the ultrasonic wave emitter, so as to control the intensity and emission time of the emitted waveforms. The electric cylinder controls the sliding block to slide in the track slot, so as to drive the connecting rod to change the angle of the two driving ultrasonic wave emitters, the length of the track slot is the position range of the ultrasonic wave emitter which can be changed, and it is the key to control and influence the ultrasonic wave emitter to form the weak ablation zone and the strong ablation zone. Through the structure and instruction transmission mode, the equipment can be accurately controlled without causing damage to cells, and the waveform intensity and time of the ablation region can be controlled. BRIEF DESCRIPTION OF DRAWINGS
[0013] Figure 1 It is a three-dimensional schematic view of an ultrasonic non-invasive cell tissue ablation instrument;
[0014] Figure 2 It is a top view schematic view of an ultrasonic non-invasive cell tissue ablation instrument;
[0015] Figure 3 It is a left view schematic view of an ultrasonic non-invasive cell tissue ablation instrument;
[0016] Figure 4This is a bottom-view schematic diagram of an ultrasonic non-invasive cell tissue ablation device;
[0017] Figure 5 for Figure 2 Schematic diagram of the cross-sectional structure along line AA;
[0018] Figure 6 for Figure 3 Schematic diagram of the cross-sectional structure along line BB;
[0019] Figure 7 This is a schematic diagram of the utility model's operation;
[0020] In the diagram: 1. Housing; 2. Control display screen; 3. Central processor; 4. Reflected wave receiver; 5. Ultrasonic transmitter; 6. Base plate; 7. Detection window; 8. Fine-tuning mechanism; 9. Connecting shaft; 10. Fixing rod; 11. Roller; 12. Connecting seat; 13. Support shaft; 14. Heat dissipation window; 15. Handle; 16. Wiring groove; 80. Electric cylinder; 81. Slider; 82. Track groove; 83. Ear seat; and 84. Detailed Implementation
[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0022] Example 1:
[0023] Reference Figures 1-7 An ultrasonic non-invasive cell tissue ablation device includes a housing 1, a control display screen 2, a central processor 3, a reflected wave receiving plate 4, an ultrasonic transmitter 5, and a base plate 6. The housing 1 is a hollow housing with an opening facing downwards. The base plate 6 is located at the bottom of the housing 1, and a detection window 7 is opened on the base plate 6. The control display screen 2 is located on the upper surface of the housing 1. The central processor 3, the reflected wave receiving plate 4, the ultrasonic transmitter 5, and the fine-tuning mechanism 8 are installed inside the housing 1. The central processor 3 is located on the upper part of the reflected wave receiving plate 4. The ultrasonic transmitters 5 are symmetrically distributed in a figure-eight shape and are located at the bottom of the reflected wave receiving plate 4. A connecting shaft 9 is also provided on the side of the two ultrasonic transmitters 5 near the fine-tuning mechanism 8. The fine-tuning mechanism 8 is located at the front end inside the housing 1, and the fine-tuning mechanism 8 is movably connected to the two ultrasonic transmitters 5 through the connecting shaft 9.
[0024] Reference Figure 3 The reflected wave receiving plate 4 is installed between the ultrasonic transmitter 5 and the central processor 3 via a fixing rod 10. Rollers 11 are also provided at the four corners of the bottom of the base plate 6. The main purpose of the rollers 11 is to reduce friction and ensure the comfort of the animals during operation.
[0025] Connecting seats 12 are provided on both sides of the inner wall of the housing 1. The connecting seats 12 are in pairs and are connected to each other by a support shaft 13. The downward part of the ultrasonic transmitter 5 is movably connected to the support shaft 13.
[0026] Reference Figure 1 The housing 1 has heat dissipation windows 14 and handles 15 at its front and rear ends, respectively, with the heat dissipation windows 14 located above the handles 15. The heat dissipation windows 14 are mainly for ensuring air circulation and reducing the heat generated by the central processor 3.
[0027] A wiring slot 16 is provided on one side of the housing 1. The output end of the wiring slot 16 is electrically connected to the control display screen 2, the central processor 3, the reflected wave receiving board 4, and the ultrasonic transmitter 5, respectively. An external power supply provides the corresponding current for each.
[0028] This invention is applicable to two different operating environments. The first is for the reproductive system. By focusing ultrasound waves on the reproductive system using this technology, the reproductive system can be ablated and removed without external trauma. Because there is no wound and no bleeding after the procedure, infection will not occur. Compared to traditional surgical castration, this technology can significantly improve the survival rate of castrated animals such as poultry.
[0029] The second applicable operating environment for this application utilizes the characteristic that the number of fat cells in the bodies of poultry and livestock does not increase throughout their lives. During the early development of poultry and livestock, 50-70% of the fat cells in areas where body fat is concentrated are ablated and removed, resulting in a 20-50% reduction in overall fat content as the animals grow up. This can relatively increase their lean meat percentage by 10-35%. Furthermore, because the alteration is performed using purely physical methods, it does not change the taste and texture of the meat and saves on feed costs.
[0030] Working principle:
[0031] The operator first inputs the relevant transmitted waveform intensity and time into the display screen 2, and then transmits the information to the ultrasonic transmitter 5 through the central processor 3. The ultrasonic transmitter 5 emits ultrasonic waves, and the waveform reaches the designated position through the detection window 7 in the middle of the base plate 6. The waveform will form a strong ablation zone F and a weak ablation zone E under the skin of the organism. The area of the strong ablation zone F and the weak ablation zone E can be controlled by the fine-tuning mechanism 8 according to the actual situation. When the ultrasonic transmitter 5 transmits the waveform to the organism through the display screen, the organism will emit a refracted waveform, thereby transmitting the feedback information to the central processor 3 through the reflected wave receiving plate 4. The central processor 3 will feed back the processed information to the display screen 2, and then, according to the instructions, feed back the instruction information to the ultrasonic transmitter 5 and the fine-tuning mechanism 8 through the central processor 3. When the fine-tuning mechanism 8 is working, it only adjusts the position of the ultrasonic transmitter 5, thereby ensuring the effect and higher safety.
[0032] The fine-tuning mechanism 8 includes an electric cylinder 80, a slider 81, a track groove 82, an ear seat 83, and a connecting rod 84. The electric cylinder 80 and the track groove 82 are installed on the inner wall of the housing 1. The slider 81 is provided at the bottom of the telescopic end of the electric cylinder 80. The slider 81 is slidably connected to the track groove 82. Ear seats 83 are also provided on both sides of the slider 81. Each ear seat 83 is connected to the connecting shaft 9 through the connecting rod 84. After receiving a command, the electric cylinder 80 drives the slider 81 to move up and down in the track groove 82. During the movement, the connecting rod 84 is moved through the ear seats 83. The other end of the connecting rod 84 is hinged to the connecting shaft 9, so that the bottom end of the ultrasonic transmitter 5 rotates around the support shaft 13. The range of motion of the ultrasonic transmitter 5 is determined by the length of the groove opening of the track groove 82. This prevents the range of motion of the slider 81 from being fixed, thus achieving the function of fine-tuning.
[0033] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. An ultrasonic non-invasive cell tissue ablation device, comprising a housing (1), a control display screen (2), a central processor (3), a reflected wave receiving plate (4), an ultrasonic transmitter (5), and a base plate (6), characterized in that: The housing (1) is a hollow housing with an opening facing downwards. A base plate (6) is provided at the bottom of the housing (1), and a detection window (7) is provided on the base plate (6). A control display screen (2) is provided on the upper surface of the housing (1). A central processor (3), a reflected wave receiving plate (4), an ultrasonic transmitter (5) and a fine-tuning mechanism (8) are installed inside the housing (1). The central processor (3) is located on the upper part of the reflected wave receiving plate (4). The ultrasonic transmitter (5) is symmetrically distributed in a figure-eight shape and is located at the bottom of the reflected wave receiving plate (4). A connecting shaft (9) is also provided on the side of the two ultrasonic transmitters (5) near the fine-tuning mechanism (8). The fine-tuning mechanism (8) is located at the front end inside the housing (1), and the fine-tuning mechanism (8) is movably connected to the two ultrasonic transmitters (5) through the connecting shaft (9).
2. The ultrasonic non-invasive cell tissue ablation device according to claim 1, characterized in that: The centralized processor (3) is electrically connected to the reflected wave receiving plate (4), the ultrasonic transmitter (5), and the fine-tuning mechanism (8), respectively.
3. The ultrasonic non-invasive cell tissue ablation device according to claim 1, characterized in that: The reflected wave receiving plate (4) is installed between the ultrasonic transmitter (5) and the central processor (3) by means of a fixing rod (10).
4. The ultrasonic non-invasive cell tissue ablation device according to claim 1, characterized in that: Rollers (11) are also provided at the four bottom corners of the base plate (6).
5. The ultrasonic non-invasive cell tissue ablation device according to claim 1, characterized in that: Connecting seats (12) are provided on both sides of the inner wall of the housing (1). The connecting seats (12) are in pairs and are connected to each other by a support shaft (13). The downward part of the ultrasonic transmitter (5) is movably connected to the support shaft (13).
6. The ultrasonic non-invasive cell tissue ablation device according to claim 1, characterized in that: The housing (1) is provided with a heat dissipation window (14) and a handle (15) at its front and rear ends, respectively, and the heat dissipation window (14) is located above the handle (15).
7. The ultrasonic non-invasive cell tissue ablation device according to claim 1, characterized in that: A wiring groove (16) is provided on one side of the housing (1), and the output end of the wiring groove (16) is electrically connected to the control display screen (2), the central processor (3), the reflected wave receiving board (4) and the ultrasonic transmitter (5).
8. The ultrasonic non-invasive cell tissue ablation device according to claim 1, characterized in that: The fine-tuning mechanism (8) includes an electric cylinder (80), a slider (81), a track groove (82), an ear seat (83), and a connecting rod (84). The electric cylinder (80) and the track groove (82) are installed on the inner wall of the housing (1), and the electric cylinder (80) is electrically connected to the central processor (3). The bottom of the telescopic end of the electric cylinder (80) is provided with a slider (81), and the slider (81) is slidably connected to the track groove (82). Ear seats (83) are also provided on both sides of the slider (81), and each ear seat (83) is connected to the connecting shaft (9) through the connecting rod (84).