Rana chensinensis rapid cleaning device

CN224657517UActive Publication Date: 2026-08-21JIAN ZHANYI TOURIST PRODS DEV
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Patent Information

Application Number
CN202522008686.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-18
Publication Date
2026-08-21
Estimated Expiration
2035-09-18

AI Technical Summary

Technical Problem

[0002]林蛙,学名东北林蛙,属于两栖纲无尾目蛙科林蛙属,是一种具有重要生态与经济价值的蛙类,其体型中等,背部多呈灰褐色或棕褐色并带有不规则斑纹,腹部为白色或淡黄色,皮肤光滑且有黏液,适应寒冷湿润的环境,林蛙不仅在生态系统中扮演着控制害虫、维持生态平衡的角色,其雌性个体的输卵管更是传统名贵中药材,富含蛋白质、氨基酸、维生素等营养成分,兼具药用与滋补价值,同时林蛙肉质细嫩、味道鲜美,也是兼具食用价值的经济物种,在医药、食品等领域应用广泛,但是林蛙体表易附着污染物且其药用、食用价值对洁净度要求高,故此,特别需要一种林蛙快速清洗装置

Benefits of technology

该一种林蛙快速清洗装置,通过超声波发生器、换能器和振动头的设置,能将高频电信号转化为均匀的水体振动,可深入林蛙体表褶皱、肢体缝隙剥离泥土与寄生虫卵,无需人工控制力度,避免清洗不彻底或林蛙皮肤破损,保障后续加工的药用与食用价值。

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Abstract

The utility model relates to forest frog related technical field especially, and is more specifically related to a kind of forest frog rapid cleaning device, including cleaning pool, the outside of cleaning pool is equipped with ultrasonic generator, the side of cleaning pool is equipped with transducer, the inside of cleaning pool is connected with vibration head that transducer extends to, the inside bottom side of cleaning pool is equipped with blow-off pipe, the surface of blow-off pipe is provided with blow-off valve, the side of cleaning pool is equipped with flow-through mouth, the inside of flow-through mouth is equipped with gate, the side of cleaning pool is provided with height adjusting mechanism, the surface of height adjusting mechanism is provided with rotating assembly.This kind of forest frog rapid cleaning device, by the setting of height adjusting mechanism and rotating mechanism, can be according to the flexible adjustment spray height of forest frog body type, cooperate with the intermittent rotation of shower head to expand coverage, realize the accurate flushing of different specifications forest frog, without manual repeated adjustment or forest frog overturn, improve cleaning efficiency and reduce forest frog damage.
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Description

Technical Field

[0001] This utility model relates to the field of forest frog technology, and in particular to a rapid cleaning device for forest frogs. Background Technology

[0002] The forest frog, scientifically known as *Rana davidii*, belongs to the genus *Rana* in the family Ranidae of the order Anura in the class Amphibia. It is a frog species with important ecological and economic value. It is medium-sized, with a grayish-brown or brownish-gray back with irregular markings, and a white or pale yellow belly. Its skin is smooth and mucous, and it is adapted to cold and humid environments. Forest frogs not only play a role in controlling pests and maintaining ecological balance in the ecosystem, but the oviducts of female individuals are also a traditional and valuable Chinese medicinal material, rich in protein, amino acids, vitamins, and other nutrients, possessing both medicinal and tonic value. At the same time, forest frog meat is tender and delicious, making it an economically valuable species with edible value. It is widely used in the fields of medicine and food. However, forest frogs are prone to accumulating pollutants on their bodies, and their medicinal and edible value requires a high degree of cleanliness. Therefore, a rapid cleaning device for forest frogs is particularly needed.

[0003] Traditionally, forest frogs are mostly cleaned manually. Manual cleaning relies on the experience of the operators, and it is difficult to uniform the cleaning force. Some forest frogs may have dirt and parasite eggs left in the folds and crevices of their bodies due to insufficient force, while some young frogs or weaker frogs may have their skin damaged due to excessive force, which will affect their medicinal or edible value in subsequent processing. Utility Model Content

[0004] The purpose of this invention is to provide a rapid cleaning device for forest frogs to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a rapid cleaning device for forest frogs, comprising a cleaning pool, an ultrasonic generator installed on the outside of the cleaning pool, a transducer installed on the side of the cleaning pool, a vibrating head connected to the transducer extending into the interior of the cleaning pool, a drain pipe installed on the bottom inside the cleaning pool, a drain valve provided on the surface of the drain pipe, a flow outlet opened on one side of the cleaning pool, a gate installed on the inner side of the flow outlet, a height adjustment mechanism provided on the side of the cleaning pool, and a rotating component provided on the surface of the height adjustment mechanism; The height adjustment mechanism includes a vertical pole installed above the side of the cleaning pool. The vertical pole has a lifting groove inside, and a sliding groove on the inner side of the lifting groove. A lifting block is slidably connected to the inner wall of the lifting groove. A slider is connected to the side of the lifting block. A telescopic cylinder is connected inside the slider. A limit plate is slidably connected inside the telescopic cylinder. A limit block is connected to the side of the limit plate. A limit groove is formed on the inner side of the telescopic cylinder. The limit block slides into the limit groove. A pull rod is connected to the outer side of the limit plate. A return spring is connected to the outer side of the pull rod. Pull plates are connected to the outer ends of both the pull rod and the return spring. An L-shaped locking plate is connected to the side of the pull plate. A locking groove is formed on the side of the vertical pole. A rotating component is provided on the outer side of the lifting block.

[0006] Preferably, the transducers and vibrating heads are symmetrically distributed on both sides of the cleaning tank with respect to the central axis of the cleaning tank, and both sets of transducers are electrically connected to the ultrasonic generator.

[0007] Preferably, a rubber sealing strip is provided between the gate and the inner wall of the flow port, and the rubber sealing strip is fixed to the edge of the gate by bolts.

[0008] Preferably, there are two sets of sliding grooves, which are symmetrically distributed on the inner walls of both sides of the lifting groove, and the lifting block slides inside the lifting groove via the sliding groove through the slider.

[0009] Preferably, the inner wall of the telescopic cylinder is tightly fitted to the outer wall of the limiting plate, the two ends of the return spring are welded and fixed to the outer side of the limiting plate and the inner side of the pull plate, respectively, and the outer wall size of the inner end of the L-shaped card plate is adapted to the inner wall size of the card slot.

[0010] Preferably, the rotating assembly includes a fixed plate, which is fixedly connected to the outside of the lifting block. A protective cover is installed on the surface of the fixed plate, and a motor is installed on the inside of the fixed plate. A transmission gear is connected to the output end of the motor, and a half gear is meshed with the bottom side of the transmission gear. Bearings are connected to the shafts of both the transmission gear and the half gear, and they are connected to the inside of the protective cover through the bearings. A bushing is connected to the shaft of the half gear through a shaft rod, and the bushing is connected to the inside of the lifting block. A rotating rod is connected to the shaft of the half gear through a shaft rod, and the bushing is disposed on the outer wall of the rotating rod. A nozzle is installed on the surface of the rotating rod.

[0011] Preferably, the nozzles are arranged in multiple identical sets on the surface of the rotating rod, and each set of nozzle supports is distributed at equal intervals.

[0012] Compared with the prior art, the beneficial effects of this utility model are: This rapid cleaning device for forest frogs, through the setup of an ultrasonic generator, transducer, and vibrating head, can convert high-frequency electrical signals into uniform water vibrations. It can penetrate deep into the folds and crevices of the frog's body to remove mud and parasite eggs without the need for manual control of the force, thus avoiding incomplete cleaning or damage to the frog's skin and ensuring the medicinal and edible value of subsequent processing.

[0013] This rapid cleaning device for forest frogs allows for flexible adjustment of the spray height based on the size of the frogs through a height adjustment mechanism and a rotating component. The intermittent rotation of the nozzles expands the coverage area, enabling precise rinsing of frogs of different sizes without the need for repeated manual adjustments or turning of the frogs. This improves cleaning efficiency and reduces damage to the frogs. Attached Figure Description

[0014] Figure 1 This is a side view of the structure of the present utility model; Figure 2 This is a schematic diagram of the internal structure of the cleaning tank of this utility model; Figure 3 This is a schematic diagram of the height adjustment mechanism of this utility model; Figure 4 This is a schematic diagram of the rotating component structure of this utility model; Figure 5 This utility model Figure 3 Enlarged structural diagram at point A in the middle.

[0015] In the diagram: 1. Cleaning tank; 2. Ultrasonic generator; 3. Transducer; 4. Vibrating head; 5. Sewage pipe; 6. Sewage valve; 7. Flow port; 8. Gate; 9. Height adjustment mechanism; 901. Upright pole; 902. Lifting groove; 903. Slide groove; 904. Lifting block; 905. Sliding block; 906. Telescopic cylinder; 907. Limiting plate; 908. Limiting block; 909. Limiting groove; 910. Pull rod; 911. Return spring; 912. Pull plate; 913. L-shaped clamping plate; 914. Clamping slot; 10. Rotating assembly; 1001. Fixing plate; 1002. Protective cover; 1003. Motor; 1004. Rotating gear; 1005. Half gear; 1006. Bearing; 1007. Bushing; 1008. Rotating rod; 1009. Nozzle. Detailed Implementation

[0016] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0017] Please see Figure 1-5 This utility model provides a technical solution: a rapid cleaning device for forest frogs, including a cleaning pool 1, an ultrasonic generator 2 installed on the outside of the cleaning pool 1, a transducer 3 installed on the side of the cleaning pool 1, a vibrating head 4 connected to the transducer 3 extending into the inside of the cleaning pool 1, a drain pipe 5 installed on the bottom inside the cleaning pool 1, a drain valve 6 provided on the surface of the drain pipe 5, a flow port 7 opened on one side of the cleaning pool 1, a gate 8 installed on the inside of the flow port 7, a height adjustment mechanism 9 provided on the side of the cleaning pool 1, and a rotating component 10 provided on the surface of the height adjustment mechanism 9. The height adjustment mechanism 9 includes a vertical rod 901, which is installed on the upper side of the cleaning tank 1. A lifting groove 902 is formed inside the vertical rod 901, and a sliding groove 903 is formed on the inner side of the lifting groove 902. A lifting block 904 is slidably connected to the inner wall of the lifting groove 902. A slider 905 is connected to the side of the lifting block 904. A telescopic cylinder 906 is connected inside the slider 905. A limit plate 907 is slidably connected inside the telescopic cylinder 906. A limit block 908 is connected to the side of the limit plate 907. A limit groove 909 is formed on the inner side of the telescopic cylinder 906, and the limit block 908 slides in conjunction with the limit groove 909. A pull rod 910 is connected to the outer side of the limit plate 907, and a return spring 911 is connected to the outer side of the pull rod 910. The pull rod 910 and the return spring... Each of the outer ends of the 911 is connected to a pull plate 912. An L-shaped locking plate 913 is connected to the side of the pull plate 912. A slot 914 is provided on the side of the upright 901. A rotating component 10 is provided on the outer side of the lifting block 904. Through the height adjustment mechanism 9, when the height of the rotating component 10 needs to be adjusted, the pull plate 912 is first pulled outwards. The pull plate 912 drives the pull rod 910 to move outwards synchronously. At this time, the return spring 911 on the outer side of the pull rod 910 is compressed and stores force by the bidirectional pressure of the pull plate 912 and the limiting plate 907. Simultaneously, the L-shaped locking plate 913 on the side of the pull plate 912 moves with the pull plate 912, gradually disengaging from the slot 914 on the side of the upright 901, releasing the L-shaped locking plate 913 from locking the position of the lifting block 904. When the pull plate 912 is pulled... During the process, the limiting plate 907 slides inside the telescopic cylinder 906, and its side limiting block 908 slides synchronously along the limiting groove 909 on the inner side of the telescopic cylinder 906. The sliding cooperation between the limiting block and the limiting groove can limit the sliding direction of the limiting plate 907, preventing the limiting plate 907 from rotating with the pull rod 910, and ensuring that the L-shaped locking plate 913 always disengages from or engages with the locking groove 914 in a straight line. When the L-shaped locking plate 913 is completely disengaged from the locking groove 914, the pulling plate 912 is kept in a pulling state, and the lifting block 904 can be pushed up and down along the lifting groove 902 inside the upright 901. When the lifting block 904 moves, its side slider 905 slides along the sliding groove 903 on the inner side of the lifting groove 902. The sliding groove 903 guides and limits the slider 905, preventing the lifting block 904 from moving. During the movement, if any deviation or rotation occurs, ensure that the lifting block 904 always moves smoothly along the height direction of the upright 901. The rotating component 10 connected to the lifting block 904 moves up and down synchronously with the lifting block 904 until the rotating component 10 is adjusted to the target height suitable for cleaning the frogs. After reaching the target height, slowly release the pull plate 912, the return spring 911 releases its stored force, and pushes the limit plate 907 to slide inward along the telescopic cylinder 906. The limit plate 907 drives the pull rod 910 to move in the opposite direction to the pull plate 912, finally causing the L-shaped locking plate 913 on the side of the pull plate 912 to re-lock into the corresponding height slot 914 of the upright 901, locking the position of the lifting block 904 again, completing the height adjustment operation. At this time, the limit block 908 resets along the limit groove 909.Ensure the L-shaped clamping plate 913 and the clamping slot 914 are precisely engaged to prevent the lifting block 904 from shifting position due to vibration during the cleaning process.

[0018] Furthermore, the transducers 3 and vibrating heads 4 are symmetrically distributed on both sides of the cleaning tank 1 along the central axis of the cleaning tank 1, and both sets of transducers 3 are electrically connected to the ultrasonic generator 2. Through the arrangement of the ultrasonic generator 2, transducers 3 and vibrating heads 4, the ultrasonic generator 2 can synchronously transmit high-frequency electrical signals to the two sets of transducers 3. The transducers 3 convert the electrical signals into mechanical vibrations and then transmit them to the water in the cleaning tank 1 through the vibrating heads 4. The symmetrically distributed vibrating heads 4 can make the ultrasonic energy diffuse evenly in the water, forming a comprehensive vibration cleaning area without dead angles, avoiding the incomplete cleaning of some frogs due to uneven energy distribution. At the same time, the two sets of components work together to enhance the intensity of ultrasonic vibration, improve the removal effect on stubborn stains on the surface of the frogs, and ensure cleaning efficiency and cleanliness.

[0019] Furthermore, a rubber sealing strip is installed between the inner wall of the gate 8 and the flow port 7. The rubber sealing strip is fixed to the edge of the gate 8 with bolts. With the arrangement of the flow port 7 and the gate 8, when the gate 8 is closed, the rubber sealing strip can fill the gap between the gate 8 and the inner wall of the flow port 7, preventing water in the cleaning pool 1 from leaking out of the gap and ensuring a stable water level during the cleaning process. When the gate 8 is opened, the flow port 7 can serve as an output channel for the cleaned frogs, making it easy to quickly transfer the cleaned frogs to the subsequent sorting or processing stages without the need for manual retrieval from the cleaning pool 1, reducing the risk of frog damage and the amount of manual operation. At the same time, the bolt fixing method of the rubber sealing strip facilitates replacement and maintenance after wear, ensuring the sealing performance of the gate 8 for long-term use.

[0020] Furthermore, two sets of slide grooves 903 are provided, symmetrically distributed on both sides of the inner wall of the lifting groove 902. The lifting block 904 slides inside the lifting groove 902 via the slide groove 903 through the slider 905. Through the arrangement of the lifting groove 902, slide groove 903, lifting block 904 and slider 905, the lifting groove 902 provides space for the lifting block 904 to move up and down. The two sets of slide grooves 903 and slider 905 form a bidirectional guide structure, which can limit the lifting block 904 from shifting left and right or rotating circumferentially during movement, ensuring that the lifting block 904 always slides smoothly along the height direction of the upright 901. At the same time, the sliding cooperation between the slider 905 and the slide groove 903 can reduce the direct friction between the lifting block 904 and the inner wall of the lifting groove 902, reduce component wear, extend the service life of the height adjustment mechanism 9, and ensure the smoothness and accuracy of the height adjustment of the rotating component 10.

[0021] Furthermore, the inner wall of the telescopic cylinder 906 is tightly fitted to the outer wall of the limiting plate 907. The two ends of the return spring 911 are welded and fixed to the outer side of the limiting plate 907 and the inner side of the pull plate 912, respectively. The outer wall dimension of the inner end of the L-shaped clamping plate 913 is adapted to the inner wall dimension of the clamping groove 914. Through the arrangement of the limiting plate 907, the return spring 911, the L-shaped clamping plate 913, and the clamping groove 914, the tightly fitted telescopic cylinder 906 and the limiting plate 907 can prevent the limiting plate 907 from shaking during sliding. The L-shaped clamping plate 913 is kept in a stable direction of movement. The welded and fixed return spring 911 provides stable and durable elastic force, ensuring that the L-shaped clamping plate 913 can quickly and accurately engage with the slot 914 when the pull plate 912 is released. The size-matched L-shaped clamping plate 913 and slot 914 can achieve a tight engagement, preventing the lifting block 904 from becoming loose due to vibration during the operation of the cleaning device. At the same time, the engagement structure is simple and reliable, making it easy for operators to quickly lock and unlock the height, thus improving the efficiency of height adjustment.

[0022] Furthermore, the rotating assembly 10 includes a fixed plate 1001, which is fixedly connected to the outside of the lifting block 904. A protective cover 1002 is installed on the surface of the fixed plate 1001. A motor 1003 is installed on the inner side of the fixed plate 1001. A transmission gear 1004 is connected to the output end of the motor 1003. A half gear 1005 is meshed with the bottom side of the transmission gear 1004. Bearings 1006 are connected to the shafts of both the transmission gear 1004 and the half gear 1005, and they are connected to the inside of the protective cover 1002 through the bearings 1006. A bushing 1007 is connected to the shaft of the half gear 1005 through a shaft rod. The bushing 1007 is connected to the inside of the lifting block 904. A rotating rod is connected to the shaft of the half gear 1005 through a shaft rod. 1008, a bushing 1007 is installed on the outer wall of the rotating rod 1008, and a nozzle 1009 is installed on the surface of the rotating rod 1008. Through the arrangement of the rotating assembly 10, when the frog cleaning device enters the spray cleaning stage, the motor 1003 inside the fixed plate 1001 is activated. The output end of the motor 1003 drives the transmission gear 1004 to rotate around its axis. The transmission gear 1004 and the half gear 1005 are in a meshing state, and both axes are connected to the protective cover 1002 through a bearing 1006. The bearing 1006 reduces the frictional resistance when the transmission gear 1004 and the half gear 1005 rotate, ensuring smooth gear transmission. At the same time, the protective cover 1002 isolates water and impurities during the cleaning process, preventing them from entering the gear transmission area and affecting the components. During operation, as the transmission gear 1004 rotates, the meshing half gear 1005 rotates synchronously. The axis of the half gear 1005 is fixedly connected to the rotating rod 1008 via a shaft, and a bushing 1007 is fitted on the outer wall of the rotating rod 1008. The bushing 1007 is connected to the lifting block 904 and can support and limit the rotation of the rotating rod 1008, preventing radial displacement of the rotating rod 1008 during rotation. Therefore, when the half gear 1005 rotates, it will drive the rotating rod 1008 to rotate synchronously around the axis of the bushing 1007, thereby causing the nozzle 1009 mounted on the surface of the rotating rod 1008 to rotate accordingly. Since only a portion of the half gear 1005 has teeth, when the toothless area of ​​the half gear 1005 rotates to engage with the transmission gear... When position 1004 is reached, the meshing relationship between the two disengages, and half gear 1005 stops rotating. When motor 1003 drives transmission gear 1004 to continue rotating until it meshes again with the toothed area of ​​half gear 1005, half gear 1005 again drives rotating rod 1008 and nozzle 1009 to rotate, creating intermittent rotation of nozzle 1009. This intermittent rotation allows the spray range of nozzle 1009 to cover a wider area within the cleaning pool 1, preventing some frogs from being missed due to a fixed spray angle. Simultaneously, intermittent rotation reduces surface damage to frogs caused by continuous spraying from nozzle 1009 at the same location, balancing cleaning effectiveness with frog protection. Throughout the rotation process, nozzle 1009 continuously sprays high-pressure water.The ultrasonic vibration washes the surface of the frogs, and the rotation further expands the water flow coverage, ensuring that frogs in different locations within the cleaning pool 1 are evenly rinsed. This effectively removes residual impurities from their surfaces, improving overall cleanliness. When the rotating spray is no longer needed, turning off the motor 1003 stops the transmission gear 1004 from rotating, and the half gear 1005 and rotating rod 1008 remain in their current positions. The nozzle 1009 maintains a fixed spray angle, adapting to different cleaning scenarios.

[0023] Furthermore, multiple identical sets of nozzles 1009 are provided on the surface of the rotating rod 1008, and the supports of each set of nozzles 1009 are evenly distributed. Through the setting of nozzles 1009, multiple sets of identical nozzles 1009 can spray high-pressure water jets simultaneously. Combined with the intermittent rotation of the rotating rod 1008, the spray coverage area is greatly expanded, ensuring that frogs at different depths and positions in the cleaning pool 1 can be accurately washed by the water flow, avoiding cleaning blind spots caused by the limited spray range of a single set of nozzles.

[0024] Working principle: First, inject an appropriate amount of clean water into the cleaning tank 1. After placing the frogs to be cleaned into the cleaning tank 1, adjust the height of the rotating component 10 according to the size of the frogs using the height adjustment mechanism 9. Pull the pull plate 912 outward, which moves the pull rod 910 and causes the return spring 911 to retract. The L-shaped locking plate 913 disengages from the slot 914, releasing the lock on the lifting block 904. Push the lifting block 904 along the lifting groove 902, and the slider 905 slides along the sliding groove 903 to achieve smooth movement. After adjusting to the target height, release the pull plate 912, and the return spring 911 resets, causing the L-shaped locking plate 913 to engage with the corresponding slot 914, thus fixing the height of the rotating component 10. Then, start the ultrasonic generator 2, which transmits high-frequency electrical signals to the transducers 3 symmetrically distributed on both sides. The transducers 3 convert the electrical signals into mechanical vibrations, which are transmitted to the water in the cleaning tank 1 through the vibrating head 4, forming a 360° vibration zone to remove impurities from the frog's body. At the same time, start... The motor 1003 of the rotating component 10 drives the transmission gear 1004 to rotate. Through meshing with the half gear 1005, the half gear 1005 drives the rotating rod 1008 to rotate intermittently around the bushing 1007. Multiple sets of nozzles 1009 evenly distributed on the surface of the rotating rod 1008 synchronously spray high-pressure water jets. The intermittent rotation expands the spray coverage area, accurately rinsing the frogs in different positions, avoiding blind spots, and preventing the frogs from being damaged by excessive water flow. Wastewater and impurities generated during the cleaning process can be discharged through the drain valve 6 and the drain pipe 5. After cleaning, the gate 8 inside the flow port 7 is opened, and the cleaned frogs are transferred to the subsequent stages through the flow port 7 without manual retrieval. The entire process achieves efficient, thorough, and low-damage rapid cleaning of frogs through the coordinated cooperation of various components. It is suitable for frogs of different sizes and different cleaning scenarios, thus completing the use of a rapid frog cleaning device.

[0025] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A rapid cleaning device for forest frogs, comprising a cleaning pool (1), characterized in that: An ultrasonic generator (2) is installed on the outside of the cleaning tank (1). A transducer (3) is installed on the side of the cleaning tank (1). The transducer (3) extends into the inside of the cleaning tank (1) and is connected to a vibrating head (4). A drain pipe (5) is installed on the bottom inside the cleaning tank (1). A drain valve (6) is provided on the surface of the drain pipe (5). A flow port (7) is opened on one side of the cleaning tank (1). A gate (8) is installed on the inside of the flow port (7). A height adjustment mechanism (9) is provided on the side of the cleaning tank (1). A rotating component (10) is provided on the surface of the height adjustment mechanism (9). The height adjustment mechanism (9) includes a vertical rod (901) installed above the side of the cleaning pool (1). A lifting groove (902) is provided inside the vertical rod (901), and a sliding groove (903) is provided on the inner side of the lifting groove (902). A lifting block (904) is slidably connected to the inner wall of the lifting groove (902). A slider (905) is connected to the side of the lifting block (904). A telescopic cylinder (906) is connected inside the slider (905). A limit plate (907) is slidably connected inside the telescopic cylinder (906), and a limiter plate (907) is connected to the side of the limit plate (907). The inner side of the telescopic cylinder (906) is provided with a limiting groove (909), the limiting block (908) and the limiting groove (909) are slidably engaged, the outer side of the limiting plate (907) is connected with a pull rod (910), the outer side of the pull rod (910) is connected with a return spring (911), the outer ends of the pull rod (910) and the return spring (911) are both connected with a pull plate (912), the side of the pull plate (912) is connected with an L-shaped card plate (913), the side of the upright (901) is provided with a card slot (914), and the outer side of the lifting block (904) is provided with a rotating component (10).

2. The rapid cleaning device for forest frogs according to claim 1, characterized in that: The transducers (3) and vibrating heads (4) are symmetrically distributed on both sides of the cleaning tank (1) with respect to the central axis of the cleaning tank (1), and both sets of transducers (3) are electrically connected to the ultrasonic generator (2).

3. The rapid cleaning device for forest frogs according to claim 1, characterized in that: A rubber sealing strip is provided between the gate (8) and the inner wall of the flow port (7), and the rubber sealing strip is fixed to the edge of the gate (8) by bolts.

4. The rapid cleaning device for forest frogs according to claim 1, characterized in that: The number of the slide grooves (903) is set in two sets and symmetrically distributed on both sides of the inner wall of the lifting groove (902). The lifting block (904) slides inside the lifting groove (902) through the slide groove (903) via the slider (905).

5. The rapid cleaning device for forest frogs according to claim 1, characterized in that: The inner wall of the telescopic cylinder (906) is tightly fitted to the outer wall of the limiting plate (907). The two ends of the return spring (911) are welded and fixed to the outer side of the limiting plate (907) and the inner side of the pull plate (912), respectively. The outer wall size of the inner end of the L-shaped card plate (913) is adapted to the inner wall size of the card slot (914).

6. The rapid cleaning device for forest frogs according to claim 1, characterized in that: The rotating assembly (10) includes a fixed plate (1001) which is fixedly connected to the outside of the lifting block (904). A protective cover (1002) is installed on the surface of the fixed plate (1001). A motor (1003) is installed on the inner side of the fixed plate (1001). A transmission gear (1004) is connected to the output end of the motor (1003). A half gear (1005) is meshed with the bottom side of the transmission gear (1004). The transmission gear (1004) and the half gear (1005) are connected to each other. Each of the shafts is connected to a bearing (1006), and is connected to the inside of the protective cover (1002) through the bearing (1006). The shaft of the half gear (1005) is connected to a bushing (1007) through a shaft rod. The bushing (1007) is connected to the inside of the lifting block (904). The shaft of the half gear (1005) is connected to a rotating rod (1008) through a shaft rod. The bushing (1007) is set on the outer wall of the rotating rod (1008). The surface of the rotating rod (1008) is equipped with a nozzle (1009).

7. The rapid cleaning device for forest frogs according to claim 6, characterized in that: The nozzles (1009) are provided in multiple identical sets on the surface of the rotating rod (1008), and the nozzles (1009) in each set are evenly distributed on the support.