A type of snake bed

CN224504414UActive Publication Date: 2026-07-17GUANGXI JINSHENGTANG BIOMEDICAL TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGXI JINSHENGTANG BIOMEDICAL TECH CO LTD
Filing Date
2025-08-29
Publication Date
2026-07-17

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Abstract

This utility model discloses a snake bed, relating to the technical field of snake breeding equipment. It includes a breeding box, which is divided from top to bottom into interconnected heated breeding layer, medium-temperature breeding layer, and cool hiding layer. By dividing the breeding box into different temperature zones to simulate a natural environment, snakes can selectively stay in the corresponding temperature layer. The breeding box also includes a heated breeding bed rotatably mounted on the heated breeding layer and a medium-temperature breeding bed rotatably mounted on the medium-temperature breeding layer. Two opposing inner walls at one end of the breeding box have swivel holes for rotatably connecting the heated and medium-temperature breeding beds, while two opposing inner walls at the other end have steps for holding the heated and medium-temperature breeding beds. By flipping the heated and medium-temperature breeding beds, the feces on them can be cleaned and dumped, making the breeding environment clean and hygienic. This structure also facilitates cleaning and hygienic management, improving cleaning efficiency and convenience.
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Description

Technical Field

[0001] This utility model belongs to the technical field of snake breeding equipment, and specifically relates to a snake bed. Background Technology

[0002] Snakes are highly valuable special economic animals, and their farmed products are widely used in the pharmaceutical (such as snake venom), food, health products (such as snake oil and snake bile), and leather processing industries. In recent years, with the increasing market demand, traditional semi-wild, free-range, or simple box-type farming models have become increasingly difficult to meet the needs of large-scale, standardized production, and their drawbacks have become increasingly apparent.

[0003] Currently, common snake breeding facilities mainly include: 1. Flat enclosure or pond rearing. This model often involves building cement ponds within the breeding farm or directly enclosing snakes in rooms. However, cement floors respond slowly to changes in ambient temperature, making precise local temperature control difficult. As cold-blooded animals, snakes' digestion, growth, and health are highly dependent on ambient temperature. Uneven or unsuitable temperatures can directly lead to loss of appetite, indigestion, slow growth, and even death. Furthermore, feces, food scraps, and other waste easily adhere to the ground, making cleaning difficult and creating a breeding ground for bacteria, mold, and parasites, leading to skin diseases, stomatitis, and other illnesses, with a high risk of cross-infection. Additionally, open, flat environments cannot provide snakes with necessary hiding places, causing them to be in a state of constant stress, affecting their normal behavior and physiological health. 2. Net cage or plastic box breeding mode: In this mode, snakes are placed in individual net cages, wooden boxes or plastic storage boxes and stacked in layers. However, this mode has poor ventilation, and feeding, watering, and manure removal all need to be done manually one by one, which is extremely labor-intensive, inefficient and frequently disturbs the snake group, increasing their stress response.

[0004] Most existing snake breeding facilities are single-function and lack comprehensive design tailored to the biological characteristics of snakes, particularly in the integration of environmental control and hygiene management. Utility Model Content

[0005] The purpose of this invention is to overcome the shortcomings of existing technologies and provide a snake bed that is easy to clean and manage, thereby improving breeding efficiency and economic benefits. The specific technical solution is as follows: A snake bed includes a feeding box, which is divided into a heated feeding layer, a medium-temperature feeding layer and a cool hiding layer that are interconnected from top to bottom. The feeding box is also provided with a heated feeding bed that is rotatably installed on the heated feeding layer and a medium-temperature feeding bed that is rotatably installed on the medium-temperature feeding layer. The feeding box has two opposing inner walls at one end with pivot holes for rotatably connecting to the heated feeding bed and the medium-temperature feeding bed. The other end has two opposing inner walls with holding steps for holding the heated feeding bed and the medium-temperature feeding bed. The feces on the heated feeding bed and the medium-temperature feeding bed can be cleaned by flipping them over.

[0006] Preferably, the cool, concealed layer is provided with a pull-out feeding bed, which is filled with coarse sawdust.

[0007] Preferably, a feeding bowl is placed inside the pull-out feeding bed via a support bracket.

[0008] Preferably, the bearing surface of the support bracket is a mesh surface, with a holding opening through the mesh surface, and the feeding bowl is placed in the holding opening.

[0009] Preferably, the heated feeding bed includes a heated rotating plate, a heated flow plate, a first rotating shaft, a heated sliding suspension column, a heated connecting cantilever, a heated elastic block, and heated elastic elements. The heated rotating plate and the heated flow plate are provided with matching protrusions and slots. Heated elastic elements are provided on both opposite ends of the heated flow plate. The heated elastic block is mounted on the heated elastic element, and the heated connecting cantilever is mounted on the heated elastic block. The heated elastic block is inserted into a receiving slot at the end of the heated rotating plate. The heating elastic element is engaged by the cooperation of the protrusion and the slot. The heating elastic block and the holding slot cooperate to allow the heating flip plate and the heating flow plate to fit together to form a complete plate. The heating flip plate and the heating flow plate are slidably connected by the heating sliding suspension column. When the heating flip plate and the heating flow plate are separated, air can flow through the gap between the heating flip plate and the heating flow plate. The heating flip plate is provided with the first rotating shaft at both opposite ends. The first rotating shaft is rotatably installed in the rotating shaft insertion hole so that the heating flip plate is rotatably installed on the heating feeding layer.

[0010] Preferably, the heated feeding bed further includes an electric heating plate, a temperature sensor, and a temperature controller. The electric heating plate is installed on the bottom surface of the heated flip plate, and the temperature sensor is installed inside the feeding box and located in the heated feeding layer. The electric heating plate and the temperature sensor are both electrically connected to the temperature controller.

[0011] Preferably, the medium-temperature feeding bed includes a medium-temperature tilting plate, a medium-temperature circulation plate, a second rotating shaft, a medium-temperature sliding suspension column, a medium-temperature connecting cantilever, a medium-temperature elastic block, and a medium-temperature elastic element. The medium-temperature tilting plate and the medium-temperature circulation plate are provided with matching protrusions and slots. The medium-temperature elastic element is provided on both opposite ends of the medium-temperature circulation plate. The medium-temperature elastic block is installed on the medium-temperature elastic element, and the medium-temperature connecting cantilever is installed on the medium-temperature elastic block. The medium-temperature elastic block is inserted into a receiving slot at the end of the medium-temperature tilting plate. Through the cooperation of the protrusion and the slot, The cooperation between the medium-temperature elastic card block and the holding slot allows the medium-temperature flip plate and the medium-temperature flow plate to fit together to form a complete plate. The medium-temperature flip plate and the medium-temperature flow plate are slidably connected by the medium-temperature sliding suspension column. When the medium-temperature flip plate and the medium-temperature flow plate are separated, air can flow through the gap between the medium-temperature flip plate and the medium-temperature flow plate. The medium-temperature flip plate is provided with a second rotating shaft at each of its opposite ends. The second rotating shaft is rotatably installed in the rotating shaft insertion hole so that the medium-temperature flip plate is rotatably installed on the medium-temperature feeding layer.

[0012] Preferably, several stones are embedded on the bearing surface of the medium-temperature flip plate or the medium-temperature flow plate.

[0013] Preferably, the feeding box is also covered with a protective cover.

[0014] Preferably, the protective cover is equipped with a misting humidifier, and the output end of the misting humidifier faces the medium-temperature feeding layer and the cool hiding layer.

[0015] Compared with existing technologies, this utility model has the following beneficial effects: This invention provides a snake bed that divides the rearing box into different temperature zones to simulate the natural environment. Snakes can selectively stay in the corresponding temperature layer. It also features a flip-up rearing bed with adjustable air circulation between the layers. By flipping the heated and medium-temperature rearing beds, the feces on them can be cleaned and disposed of, making the rearing environment clean and hygienic. This structure also facilitates cleaning and hygienic management, improving cleaning efficiency and convenience. Attached Figure Description

[0016] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. In all the drawings, similar elements or parts are generally identified by similar reference numerals. The elements or parts in the drawings are not necessarily drawn to scale.

[0017] Figure 1 This is the main view of the overall structure of this utility model.

[0018] Figure 2 This is a three-dimensional schematic diagram of the overall structure of this utility model.

[0019] Figure 3 This is an exploded view of the heated feeding bed of this utility model.

[0020] Figure 4 This is an exploded view of the medium-temperature feeding bed of this utility model.

[0021] Figure 5 This is a schematic diagram of the medium-temperature flip plate structure of this utility model.

[0022] Figure 6 This is a schematic diagram of the medium-temperature flow plate structure of this utility model.

[0023] Explanation of key figure labels: 100-Feeding box, 110-Heated feeding layer, 120-Medium-temperature feeding layer, 130-Shady hiding layer, 140-Protective cover, 150-Atomizing humidifier, 200-Heated feeding bed, 210-Heated flip plate, 220-Heated circulation plate, 230-First pivot, 240-Heated sliding suspension column, 250-Heated connecting cantilever, 260-Heated elastic locking block, 270-Electric heating plate, 300-Medium-temperature feeding bed, 310-Medium-temperature flip plate, 320-Medium-temperature circulation plate, 330-Second pivot, 340-Medium-temperature sliding suspension column, 350-Medium-temperature connecting cantilever, 360-Medium-temperature elastic locking block, 400-Pull-out feeding bed, 410-Supporting bracket, 420-Feeding bowl. Detailed Implementation

[0024] 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.

[0025] In the description of this utility model, it should be noted that the terms "center", "longitudinal", "lateral", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "top surface", "bottom surface", "inner", "outer", "inner side", "outer side", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.

[0026] In the description of this utility model, "several" means one or more, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. If the terms "first," "second," and "third" are used in the description, they are for descriptive purposes and to distinguish technical features, and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the sequential relationship of the indicated technical features.

[0027] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "setting" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances. The embodiments of this utility model will now be described based on its overall structure.

[0028] Example like Figures 1 to 6 As shown, a snake bed includes a rearing box 100. The rearing box 100 is divided into three interconnected layers from top to bottom: a heated rearing layer 110, a medium-temperature rearing layer 120, and a cool hiding layer 130. By dividing the rearing box 100 into different temperature zones, a natural environment is simulated. The snakes can selectively stay in their preferred temperature zone. The heated rearing layer 110 can be regulated to keep the snakes warm, especially during the autumn and winter seasons. The medium-temperature rearing layer 120 is a normal temperature zone. The cool hiding layer 130 simulates a cave, with a dark interior to provide shelter for the snakes.

[0029] Preferably, the feeding box 100 is further provided with a heated feeding bed 200 rotatably mounted on the heated feeding layer 110 and a medium-temperature feeding bed 300 rotatably mounted on the medium-temperature feeding layer 120; In some preferred embodiments, the two inner walls at one end of the feeding box 100 are provided with pivot holes for rotatably connecting the heated feeding bed 200 and the medium-temperature feeding bed 300, and the two inner walls at the other end are provided with holding steps for holding the heated feeding bed 200 and the medium-temperature feeding bed 300. By flipping the heated feeding bed 200 and the medium-temperature feeding bed 300, the feces on them can be cleaned and dumped, making the feeding environment clean and hygienic. At the same time, this structure makes cleaning and hygiene management easier, improving cleaning efficiency and convenience.

[0030] Preferably, a pull-out feeding bed 400 is provided on the shaded hiding layer 130. Notably, the pull-out feeding bed 400 extends beyond the feeding box 100 and is filled with coarse sawdust. The area inside the feeding box 100 is the snake's living area, while a feeding bowl 420 is placed in the area extending outside the feeding box 100 via a support bracket 410. The support surface of the support bracket 410 is a mesh surface with a through-hole. The feeding bowl 420 is placed in the through-hole. The mesh surface is designed to prevent the snake from ingesting sawdust while eating or drinking, and the support bracket 410 provides a platform for the snake to eat.

[0031] Preferably, the heated feeding bed 200 includes a heated rotating plate 210, a heated flow plate 220, a first rotating shaft 230, a heated sliding suspension column 240, a heated connecting cantilever 250, a heated elastic locking block 260, and heated elastic elements. The heated rotating plate 210 and the heated flow plate 220 are provided with matching protrusions and slots. Heated elastic elements are provided at opposite ends of the heated flow plate 220. The heated elastic locking block 260 is mounted on the heated elastic element, and the heated connecting cantilever 250 is mounted on the heated elastic locking block 260. The heated elastic locking block 260 is engaged with the holding area at the end of the heated rotating plate 210. In the groove, the cooperation between the protrusion and the slot, and the cooperation between the heating elastic block 260 and the holding groove, allow the heating flip plate 210 and the heating flow plate 220 to fit together to form a complete plate. The heating flip plate 210 and the heating flow plate 220 are slidably connected by the heating sliding suspension column 240. It is worth mentioning that the heating sliding suspension column 240 is provided with a limiting block, which ensures that the heating flow plate 220 will not fall off the heating flip plate 210. It can also be considered that the heating flow plate 220 is suspended on the heating flip plate 210 by the heating sliding suspension column 240. When the heating flip plate 210 and the heating circulation plate 220 are separated, air can flow through the gap between them. The heating flip plate 210 has a first rotating shaft 230 at each of its opposite ends, which is rotatably mounted in the rotating shaft insertion hole, allowing the heating flip plate 210 to be rotatably mounted on the heating feeding layer 110. By pulling the heating connecting cantilever 250 to move the heating elastic block 260 away from the holding slot, the heating flip plate 210 and the heating circulation plate 220 are disengaged and separated. This selectively opens the air circulation gap, ensuring airflow between layers and preventing bacteria growth from snake feces or a damp environment during the feeding process, which could affect the snakes' health.

[0032] In some preferred embodiments, the heated feeding bed 200 further includes an electric heating plate 270, a temperature sensor, and a temperature controller. The electric heating plate 270 is installed on the bottom surface of the heated flip plate 210, and the temperature sensor is installed inside the feeding box 100 and located in the heated feeding layer 110. The electric heating plate 270 and the temperature sensor are both electrically connected to the temperature controller. The temperature controller controls the heating temperature of the electric heating plate 270, and the temperature sensor detects whether the temperature of the layer has reached the preset standard.

[0033] Similarly, the structure of the heated feeding bed 200 is described above. The medium-temperature feeding bed 300 includes a medium-temperature rotating plate 310, a medium-temperature circulation plate 320, a second rotating shaft 330, a medium-temperature sliding suspension column 340, a medium-temperature connecting cantilever 350, a medium-temperature elastic locking block 360, and a medium-temperature elastic element. The medium-temperature rotating plate 310 and the medium-temperature circulation plate 320 are provided with matching protrusions and slots. The medium-temperature elastic element is provided at both ends of the medium-temperature circulation plate 320. The medium-temperature elastic locking block 360 is installed on the medium-temperature elastic element, and the medium-temperature connecting cantilever 350 is installed on the medium-temperature elastic locking block 360. The medium-temperature elastic locking block 360 is inserted into the receiving slot at the end of the medium-temperature rotating plate 310, and the protrusions and slots are connected to the medium-temperature elastic element. The card slot and the medium-temperature elastic card block 360 are fitted together with the holding slot to allow the medium-temperature flip plate 310 and the medium-temperature circulation plate 320 to fit together to form a complete plate. The medium-temperature flip plate 310 and the medium-temperature circulation plate 320 are slidably connected by the medium-temperature sliding suspension column 340. When the medium-temperature flip plate 310 and the medium-temperature circulation plate 320 are separated, air can flow through the gap between the medium-temperature flip plate 310 and the medium-temperature circulation plate 320. The medium-temperature flip plate 310 is provided with a second rotating shaft 330 at both opposite ends. The second rotating shaft 330 is rotatably installed in the rotating shaft insertion hole so that the medium-temperature flip plate 310 is rotatably installed on the medium-temperature feeding layer 120. Furthermore, the feeding box 100 is also covered with a protective cover 140, and the protective cover 140 is equipped with a misting humidifier 150, the output end of which faces the medium-temperature feeding layer 120 and the cool hiding layer 130.

[0034] It is worth mentioning that when the flip plate and the circulation plate of the breeding bed in the two temperature layers above are separated, it should be ensured that the gap (height) between the separation is not large enough for the snake to crawl into, so as to avoid the snake getting caught in the gap when the air is circulating between the layers.

[0035] In some preferred embodiments, several stones are embedded in the bearing surface of the medium-temperature flip plate 310 or the medium-temperature flow plate 320. The timed, precise, and quantitative humidification provided by the atomizing humidifier 150, combined with the presence of the stones on the bearing surface, further aids in the molting process of snakes.

[0036] In summary, this utility model provides a snake bed that divides the rearing box into different temperature zones to simulate the natural environment. Snakes can selectively stay in the corresponding temperature layer. It also features a flip-up rearing bed with adjustable air circulation between the layers. By flipping the heated and medium-temperature rearing beds, the feces on them can be cleaned and disposed of, making the rearing environment clean and hygienic. Furthermore, this structure facilitates cleaning and hygienic management, improving cleaning efficiency and convenience.

[0037] The foregoing description of specific exemplary embodiments of the present invention is for illustrative and explanatory purposes. These descriptions are not intended to limit the present invention to the precise forms disclosed, and it is obvious that many changes and variations can be made based on the above teachings. Although embodiments of the present invention have been shown and described, these specific embodiments are merely explanations of the present invention and are not intended to limit the invention. The specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. The purpose of selecting and describing exemplary embodiments is to explain the specific principles of the present invention and its practical application, so that those skilled in the art, after reading this specification, can make modifications, substitutions, variations, and various choices and changes to the embodiments as needed without departing from the principles and spirit of the present invention, provided that such modifications, substitutions, variations, and choices and changes are within the scope of the claims of the present invention and are protected by patent law.

Claims

1. A celandine plant, characterized in that, The system includes a feeding box (100), which is divided into a heated feeding layer (110), a medium-temperature feeding layer (120), and a cool hiding layer (130) that are interconnected from top to bottom. The feeding box (100) is also equipped with a heated feeding bed (200) that is rotatably installed on the heated feeding layer (110) and a medium-temperature feeding bed (300) that is rotatably installed on the medium-temperature feeding layer (120). The feeding box (100) has two opposing inner walls at one end with pivot holes for rotatably connecting the heated feeding bed (200) and the medium-temperature feeding bed (300). The other end has two opposing inner walls with holding steps for holding the heated feeding bed (200) and the medium-temperature feeding bed (300). The heated feeding bed (200) and the medium-temperature feeding bed (300) can be flipped over to clean the feces on them.

2. A cimicifuga according to claim 1, characterized in that The shaded and concealed layer (130) is provided with a pull-out feeding bed (400), which is filled with coarse sawdust.

3. A cimicifuga according to claim 2, characterized in that The feeding bowl (420) is placed inside the pull-out feeding bed (400) via a support bracket (410).

4. A cimicifuga according to claim 3, characterized in that The bearing surface of the support bracket (410) is a mesh surface, and a holding opening is provided through the mesh surface. The feeding bowl (420) is embedded in the holding opening.

5. A cimicifuga according to claim 1, characterized by The heated feeding bed (200) includes a heated rotating plate (210), a heated flow plate (220), a first rotating shaft (230), a heated sliding suspension column (240), a heated connecting cantilever (250), a heated elastic block (260), and heated elastic elements. The heated rotating plate (210) and the heated flow plate (220) are provided with matching protrusions and slots. Heated elastic elements are provided at both opposite ends of the heated flow plate (220). The heated elastic block (260) is mounted on the heated elastic element, and the heated connecting cantilever (250) is mounted on the heated elastic block (260). The heated elastic block (260) is inserted into a receiving slot at the end of the heated rotating plate (210). Heating occurs through the cooperation of the protrusions and slots. The elastic block (260) cooperates with the holding slot to allow the heating flip plate (210) and the heating flow plate (220) to fit together to form a complete plate. The heating flip plate (210) and the heating flow plate (220) are slidably connected by the heating sliding suspension column (240). When the heating flip plate (210) and the heating flow plate (220) are separated, air can flow through the gap between the heating flip plate (210) and the heating flow plate (220). The first rotating shaft (230) is provided on both opposite ends of the heating flip plate (210). The first rotating shaft (230) is rotatably installed in the rotating shaft insertion hole so that the heating flip plate (210) is rotatably installed on the heating feeding layer (110).

6. A cimicifuga according to claim 5, characterized in that The heated feeding bed (200) also includes an electric heating plate (270), a temperature sensor and a temperature controller. The electric heating plate (270) is installed on the bottom surface of the heated flip plate (210). The temperature sensor is installed inside the feeding box (100) and located in the heated feeding layer (110). The electric heating plate (270) and the temperature sensor are both electrically connected to the temperature controller.

7. A corydalis plant according to claim 5, wherein The medium-temperature feeding bed (300) includes a medium-temperature rotating plate (310), a medium-temperature circulation plate (320), a second rotating shaft (330), a medium-temperature sliding suspension column (340), a medium-temperature connecting cantilever (350), a medium-temperature elastic block (360), and a medium-temperature elastic element. The medium-temperature rotating plate (310) and the medium-temperature circulation plate (320) are provided with matching protrusions and slots. The medium-temperature elastic element is provided at both opposite ends of the medium-temperature circulation plate (320). The medium-temperature elastic block (360) is installed on the medium-temperature elastic element, and the medium-temperature connecting cantilever (350) is installed on the medium-temperature elastic block (360). The medium-temperature elastic block (360) is inserted into the holding slot at the end of the medium-temperature rotating plate (310). Through the cooperation of the protrusion and the slot, the medium-temperature... The elastic block (360) cooperates with the holding slot to allow the medium-temperature flip plate (310) and the medium-temperature flow plate (320) to fit together to form a complete plate. The medium-temperature flip plate (310) and the medium-temperature flow plate (320) are slidably connected by the medium-temperature sliding suspension column (340). When the medium-temperature flip plate (310) and the medium-temperature flow plate (320) are separated, air can flow through the gap between the medium-temperature flip plate (310) and the medium-temperature flow plate (320). The medium-temperature flip plate (310) is provided with a second rotating shaft (330) at both opposite ends. The second rotating shaft (330) is rotatably installed in the rotating shaft insertion hole so that the medium-temperature flip plate (310) is rotatably installed on the medium-temperature feeding layer (120).

8. A cimicifuga according to claim 7, characterized in that Several stones are embedded on the bearing surface of the medium-temperature flip plate (310) or the medium-temperature flow plate (320).

9. A corydalis plant according to claim 8, characterised in that, The feeding box (100) is also covered with a protective cover (140).

10. A celandine according to claim 9, characterised in that, The protective cover (140) is equipped with an atomizing humidifier (150), the output end of which faces the medium-temperature feeding layer (120) and the cool hiding layer (130).