A drying device for preparing deer fetus cream
By using a deer placenta drying device with a rotating tray assembly and an electric heating tube assembly in the deer placenta preparation process, the problems of unevenness and long drying time of traditional drying methods have been solved, achieving efficient and uniform drying effect and improving production efficiency.
Patent Information
- Application Number
- CN202521315804.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-25
- Publication Date
- 2026-07-03
- Estimated Expiration
- 2035-06-25
AI Technical Summary
Traditional methods of drying deer placenta extract suffer from problems such as long drying time, susceptibility to environmental factors, uneven drying, and bacterial growth. Furthermore, ordinary drying equipment cannot guarantee uniformity or effective moisture evaporation.
Multiple tray assemblies mounted on a rotating rack are combined with electric heating tube assemblies and hot air blowers to form a series hot air channel with Z-shaped air ducts, realizing counter-heating and air circulation inside the drying oven, ensuring temperature stability and breathability. The rotating mechanism allows the deer placenta to fully contact the air and accelerate moisture evaporation.
It achieves efficient and uniform drying of deer placenta, shortens drying time, improves production efficiency, and avoids bacterial growth.
Smart Images

Figure CN224455252U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of deer placenta drying equipment, and more specifically, to a deer placenta drying equipment for preparing deer placenta paste. Background Technology
[0002] In the preparation of deer placenta paste, the drying process of deer placenta is extremely important. Traditional deer placenta drying methods, such as natural sun-drying, are time-consuming and highly susceptible to environmental factors, easily leading to bacterial growth or mold. Using ordinary drying equipment, the deer placenta is placed statically on racks, making it difficult to ensure uniform drying, affecting the quality and efficacy of the deer placenta paste. Furthermore, poor airflow inside the drying chamber makes it difficult to effectively remove evaporated moisture during the drying process, resulting in unsatisfactory drying results. Therefore, we propose a deer placenta drying device for the preparation of deer placenta paste. Utility Model Content
[0003] 1. Technical problems to be solved
[0004] The purpose of this application is to provide a deer placenta drying device for preparing deer placenta cream, which solves the technical problems in the background art mentioned above. It realizes that multiple tray components mounted on the rotating rack can be used to easily pick up and put in several deer placentas, making it convenient to use and operate. Electric heating tube components are installed on both inner walls of the drying chamber, so that the inside of the drying chamber forms a counter-heating function. Furthermore, a series hot air channel is formed with the drying chamber through a hot air fan and two Z-shaped air ducts. While ensuring the temperature inside the chamber is stable, the device maintains the purpose of hot air circulation inside the drying chamber, so that the drying chamber has good air permeability. This allows the deer placenta to fully contact the air during the rotation of the tray components, which accelerates the moisture evaporation effect, achieves a highly efficient and uniform drying effect, greatly shortens the drying time, and improves the production efficiency.
[0005] 2. Technical Solution
[0006] This application provides a deer placenta drying device for preparing deer placenta cream, comprising: a drying box, a control cabinet fixedly mounted on the upper surface of the drying box, an electric heating device and a hot air blower built into the control cabinet, Z-shaped air ducts fixedly connected to both ends of the bottom surface of the hot air blower and the drying box, and two electric heating tube assemblies connected for heat transfer by the electric heating device, which are respectively limited and fixed to the inner walls on both sides of the drying box.
[0007] A storage rack is pushed and installed inside the drying oven. Multiple tray assemblies are rotatably mounted on the storage rack in a matrix. Each tray assembly consists of a mesh tray and a mesh cover that are rotatably hinged together.
[0008] The rotating mechanism includes a motor and a transmission assembly. The motor is fixedly mounted on the upper surface of the drying oven and is used to drive the rotation of multiple tray assemblies through the transmission assembly.
[0009] By adopting the above technical solution, several deer fetuses are placed in multiple mesh trays, and the mesh covers are closed. The trays are then pushed into the drying chamber, and the transmission components are connected to the output of the motor. The motor, through the transmission components, allows multiple trays to rotate simultaneously. The drying device uses a control cabinet mounted on the drying chamber, which houses an electric heating device and a hot air blower. The electric heating device connects to two sets of electric heating tubes, located on the inner walls of both sides of the drying chamber, enabling counter-heating within the chamber. The hot air blower draws in external air and delivers it through a Z-shaped duct from the corresponding channel on the side wall of the drying chamber. This air is heated by the electric heating device, and then forced to flow through another Z-shaped duct before being expelled from the external environment. This ensures stable temperature inside the chamber while maintaining good air circulation, resulting in excellent ventilation. This allows the deer fetuses to be thoroughly dried as the trays rotate. Contact with the flowing air accelerates moisture evaporation, achieving efficient and uniform drying, significantly shortening drying time and improving production efficiency.
[0010] Optionally, the inner walls on both sides of the drying box are provided with multiple air slots, and the two side plates of the drying box are provided with air ducts, which are respectively connected to a Z-shaped air duct.
[0011] By adopting the above technical solution, internal air ducts connected to Z-shaped air ducts are provided on both sides of the drying oven's inner wall, so that the hot air blower forms a series airflow duct with the internal space of the drying oven through the two Z-shaped air ducts.
[0012] Optionally, air ducts are provided on both sides of the hot air blower, namely an air inlet pipe and an air outlet pipe. Each air duct is connected to a Z-shaped air duct, and the air outlet ends are located outside the control cabinet.
[0013] By adopting the above technical solution, the hot air blower is equipped with two air ducts, namely an air inlet and an air outlet, which can draw air from the outside. The air inlet duct is also equipped with a filter device to filter dust from the incoming air. The incoming air is transported into the drying chamber through a Z-shaped air duct and can be heated by the electric heating tube assembly to make the temperature of the air entering the drying chamber close to the temperature of the air inside the drying chamber, thus maintaining a stable temperature inside the drying chamber. Then, the air inside the drying chamber is discharged through the air outlet through another Z-shaped air duct, thereby enabling the drying chamber to achieve air circulation.
[0014] Optionally, each of the four corners of the bottom of the storage rack is rotatably installed with a caster wheel. The bottom surface of the drying oven is provided with two guide grooves, and the caster wheel is installed along the guide grooves. The upper end of the storage rack is fixedly provided with two positioning blocks, and the positioning blocks are fixedly installed in the drying oven by screws.
[0015] By adopting the above technical solution, the storage bracket is pushed to move along two guide grooves by four universal wheels, which facilitates the installation of the storage bracket. After the storage bracket is installed in the appropriate position, the positioning block is fixed to the drying box with bolts to ensure stable installation of the storage bracket.
[0016] Optionally, a rotating rod is fixedly connected to the bottom of every two mesh trays, and the rotating rod is rotatably connected to the storage bracket. A card seat is provided on the mesh tray, and an elastic card block structure matching the card seat is provided on the mesh cover.
[0017] By adopting the above technical solution, when the deer fetus is placed inside the mesh tray, the mesh tray rotates to close the mesh cover, and the elastic locking structure of the mesh cover elastically engages and limits the locking seat on the mesh tray, thereby using the rotating rod to achieve the purpose of rotating the deer fetus together with the tray assembly.
[0018] Optionally, the transmission assembly includes a vertical rod rotatably connected to a storage bracket, the upper end of the vertical rod being drively connected to the output shaft of a motor, three worm gears being provided on the vertical rod, each worm gear meshing with a worm wheel, a crossbar being fixedly provided on the worm wheel, two L-shaped blocks being rotatably connected to the crossbar, the L-shaped blocks being fixedly connected to the storage bracket, and a first bevel gear being fixedly provided at both ends of the crossbar, the first bevel gear meshing with a second bevel gear, the second bevel gear being fixedly connected to a rotating rod.
[0019] By adopting the above technical solution, the output shaft end of the motor is provided with a connecting joint, which can be threadedly connected to the upper end of the upright. Thus, the output end of the motor can drive the upright to rotate. Three worms are provided on the upright, and each worm is meshed with a worm wheel, which drives the crossbar to rotate. The crossbar drives the first bevel gears at both ends to rotate, which in turn drives the second bevel gear to rotate the rotating rod, so that the pallet assembly can achieve the purpose of rotation.
[0020] Optionally, the electric heating tube assembly is distributed in a serpentine structure on the side wall of the drying chamber, and multiple limiting strips are fixedly installed on the side of the drying chamber by screws, with the electric heating tube assembly being limited and installed between the limiting strips and the side wall of the drying chamber.
[0021] By adopting the above technical solution, the electric heating tube assembly is distributed in a serpentine structure on the side wall of the drying chamber, which can achieve uniform heating inside the drying chamber. At the same time, the air flowing in the internal air duct of the side wall of the drying chamber can also be uniformly heated, so as to achieve the effect of maintaining a stable temperature inside the drying chamber.
[0022] 3. Beneficial effects
[0023] One or more technical solutions provided in this application have at least the following technical effects or advantages: multiple tray assemblies mounted on the rotating rack allow for convenient handling of several deer fetuses, facilitating use and operation; electric heating tube assemblies are installed on both inner walls of the drying chamber, enabling counter-heating inside the drying chamber; and a series hot air channel is formed between the hot air blower and two Z-shaped air ducts, ensuring stable temperature inside the chamber while maintaining good air circulation, thus providing good air permeability. This allows the deer fetuses to fully contact the air as the tray assemblies rotate, accelerating moisture evaporation and achieving efficient and uniform drying, significantly shortening drying time and improving production efficiency. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the overall structure of a deer placenta drying device for preparing deer placenta cream, as disclosed in a preferred embodiment of this application.
[0025] Figure 2 This is a schematic diagram of the drying box structure of a deer placenta drying device for preparing deer placenta cream, as disclosed in a preferred embodiment of this application.
[0026] Figure 3 This is a schematic diagram of the control cabinet and hot air blower of a deer placenta drying device for preparing deer placenta cream, as disclosed in a preferred embodiment of this application;
[0027] Figure 4 This is a schematic diagram of the storage bracket and tray assembly of a deer placenta drying device for preparing deer placenta cream, as disclosed in a preferred embodiment of this application.
[0028] Figure 5 A preferred embodiment of this application discloses a deer placenta drying apparatus for preparing deer placenta extract. Figure 4 Schematic diagram of the enlarged structure of the medium ellipse;
[0029] The following are the labels in the diagram: 1. Drying oven; 11. Guide chute; 12. Air chute; 2. Control cabinet; 21. Electric heating device; 22. Electric heating tube assembly; 23. Limiting strip; 3. Hot air blower; 31. Air duct; 32. Z-shaped air duct; 4. Storage rack; 41. Casters; 42. Positioning block; 5. Tray assembly; 51. Mesh tray; 52. Rotating rod; 53. Mesh cover; 6. Rotating mechanism; 61. Motor; 62. Upright pole; 621. Worm gear; 63. Worm wheel; 64. Crossbar; 641. L-shaped block; 65. First bevel gear; 66. Second bevel gear. Detailed Implementation
[0030] The present application will be further described in detail below with reference to the accompanying drawings.
[0031] Reference Figures 1 to 5 This application provides a deer placenta drying device for preparing deer placenta cream, comprising: a drying box 1, a control cabinet 2 fixedly mounted on the upper surface of the drying box 1, an electric heating device 21 and a hot air blower 3 built into the control cabinet 2, and Z-shaped air ducts 32 fixedly connected to both ends of the bottom surface of the hot air blower 3 and the drying box 1, and the electric heating device 21 is heat-transfer connected to two electric heating tube assemblies 22, which are respectively limited and fixed to the inner walls on both sides of the drying box 1;
[0032] The storage rack 4 is pushed and installed inside the drying oven 1. Multiple tray assemblies 5 are rotatably mounted on the storage rack 4 in a matrix. The tray assembly 5 is composed of a mesh tray 51 and a mesh cover 53 rotatably hinged together.
[0033] The rotating mechanism 6 includes a motor 61 and a transmission assembly. The motor 61 is fixedly mounted on the upper surface of the drying chamber 1 and drives multiple tray assemblies 5 to rotate via the transmission assembly. By placing several deer fetuses into multiple mesh trays 51 and closing the mesh cover 53, the storage rack 4 is pushed into the drying chamber 1, and the transmission assembly is connected to the output end of the motor 61, so that the motor 61 can drive multiple tray assemblies 5 to rotate simultaneously via the transmission assembly. The drying device is controlled by a control cabinet 2 installed on the drying chamber 1. The control cabinet 2 contains an electric heating device 21 and a hot air blower 3. The electric heating device 21 is connected to two sets of electric heating tube assemblies 22, which are respectively located on the inner walls of both sides of the drying chamber 1. The drying chamber 1 is equipped with a contra-directional heating function. The hot air blower 3 absorbs external air and transports it through a Z-shaped air duct 32 from the corresponding channel inside the side wall of the drying chamber 1. The air can be heated by the electric heating device 21. Then, the air inside the drying chamber 1 is forced to flow through another Z-shaped air duct 32 and is eventually discharged into the external environment. While ensuring a stable temperature inside the chamber, the purpose of maintaining the circulation of hot air inside the drying chamber 1 is achieved, thereby ensuring good air permeability inside the drying chamber 1. This allows the deer placenta to undergo a thorough drying effect as it rotates with the tray assembly 5. By contacting the flowing airflow, the moisture evaporation effect is accelerated, achieving a highly efficient and uniform drying effect, greatly shortening the drying time and improving production efficiency.
[0034] Reference Figure 2 and Figure 3 Multiple air ducts 12 are provided on both sides of the inner wall of the drying box 1. Air ducts are provided on both sides of the drying box 1 and are connected to a Z-shaped air duct 32 respectively. Internal air ducts connected to Z-shaped air ducts 32 are provided on both sides of the inner wall of the drying box 1, so that the hot air blower 3 forms a series airflow duct with the internal space of the drying box 1 through the two Z-shaped air ducts 32.
[0035] Reference Figure 2 and Figure 3 The hot air blower 3 has air ducts 31 on both sides, which are air inlet and air outlet respectively. The air ducts 31 are connected to a Z-shaped air duct 32 respectively, and the air outlets are located outside the control cabinet 2. The hot air blower 3 has two air ducts 31, which are air inlet and air outlet respectively, which can draw air from the outside. The air inlet air duct 31 is also equipped with a filter device to filter dust from the incoming air. The incoming air is delivered into the drying chamber 1 through a Z-shaped air duct 32 and can be heated by the electric heating tube assembly 22 to make the air temperature entering the drying chamber 1 close to the air temperature inside the drying chamber 1, so as to maintain the temperature stability inside the drying chamber 1. Then the air inside the drying chamber 1 is delivered to the air outlet through another Z-shaped air duct 32, thus enabling the drying chamber 1 to have air circulation.
[0036] Reference Figure 2 and Figure 4Each of the four corners of the bottom of the storage bracket 4 is equipped with a caster wheel 41. The bottom surface of the drying box 1 is provided with two guide grooves 11. The caster wheel 41 is rolled along the guide grooves 11. Two positioning blocks 42 are fixedly provided at the upper end of the storage bracket 4. The positioning blocks 42 are fixedly installed in the drying box 1 by screws. The storage bracket 4 is pushed and moved along the two guide grooves 11 by the four caster wheels 41, so as to facilitate the installation of the storage bracket 4. After the storage bracket 4 is installed in the appropriate position, the positioning blocks 42 are fixed to the drying box 1 with bolts to limit the installation, so that the storage bracket 4 is stably installed.
[0037] Reference Figure 4 and Figure 5 Each pair of mesh trays 51 is fixedly connected to a rotating rod 52 at the bottom, and the rotating rod 52 is rotatably connected to the storage bracket 4. The mesh tray 51 is provided with a card seat, and the mesh cover plate 53 is provided with an elastic locking block structure that matches the card seat. When the deer fetus is placed inside the mesh tray 51, the mesh tray 51 rotates to close the mesh cover plate 53, and the elastic locking block structure of the mesh cover plate 53 is elastically engaged and limited with the card seat on the mesh tray 51. Thus, the rotating rod 52 can be used to make the deer fetus rotate together with the tray assembly 5.
[0038] Reference Figure 4 and Figure 5 The transmission assembly includes a vertical rod 62, which is rotatably connected to the storage bracket 4. The upper end of the vertical rod 62 is connected to the output shaft of the motor 61. Three worm gears 621 are installed on the vertical rod 62, each meshing with a worm wheel 63. A crossbar 64 is fixedly installed on the worm wheel 63. Two L-shaped blocks 641 are rotatably connected to the crossbar 64, and the L-shaped blocks 641 are fixedly connected to the storage bracket 4. First bevel gears 65 are fixedly installed at both ends of the crossbar 64, and the first bevel gears 65 mesh with second bevel gears 66. Gear 66 is fixedly connected to a rotating rod 52. The output shaft of motor 61 is provided with a connecting joint, which can be threadedly connected to the upper end of upright rod 62. Thus, the output end of motor 61 can drive upright rod 62 to rotate. Three worm gears 621 are provided on upright rod 62. Each worm gear 621 is meshed with a worm wheel 63, which drives the crossbar 64 to rotate. The crossbar 64 drives the first bevel gears 65 at both ends to rotate, which in turn drives the second bevel gears 66 to rotate the rotating rod 52, so that the pallet assembly 5 can rotate.
[0039] Reference Figure 2 and Figure 3The electric heating tube assembly 22 is located on the side wall of the drying chamber 1 in a serpentine structure. Multiple limiting strips 23 are fixedly installed on the side of the drying chamber 1 by screws. The electric heating tube assembly 22 is limited and installed between the limiting strips 23 and the side wall of the drying chamber 1. The electric heating tube assembly 22 is located on the side wall of the drying chamber 1 in a serpentine structure, which can achieve the purpose of uniform heating inside the drying chamber 1. At the same time, the air flowing in the internal air duct of the side wall of the drying chamber 1 can also be uniformly heated, so as to achieve the effect of maintaining a stable internal temperature of the drying chamber 1.
[0040] Working principle: Several deer fetuses are placed sequentially in multiple mesh trays 51, and the mesh cover 53 is closed. Then, the storage bracket 4 is pushed into the drying chamber 1 along the guide groove 11 by four universal wheels 41, and the upper end of the upright 62 is threadedly connected to the output connector of the motor 61. The positioning block 42 is then fixed to the drying chamber 1 with screws, so that the storage bracket 4 can be stably and limited in its installation. The motor 61 drives the upright 62 to rotate, causing the three worm gears 621 of the upright 62 to rotate. Each worm gear 621 drives a worm wheel 63 to rotate, which in turn drives the crossbar 64 to rotate. The first bevel gear 65 at both ends of the crossbar 64 drives the connected second bevel gear 66 to rotate, thereby causing the corresponding rotating rod 52 to rotate, achieving the effect of multiple tray components 5 rotating simultaneously. The drying device is controlled by a control cabinet 2 installed on the drying chamber 1. The control cabinet 2 contains an electric heating device 21 and a hot air blower 3. The electric heating device 21 is equipped with... Equipped with a control panel, it can achieve electric heating after startup. An electric heating element assembly 22 is installed on each of the inner walls of both sides of the drying chamber 1, enabling counter-heating within the chamber. External air is drawn in by a hot air blower 3 and transported through a Z-shaped duct 32 from the corresponding inner channel of the side wall of the drying chamber 1. The air is heated by the electric heating device 21, and then forced to flow through another Z-shaped duct 32. The two Z-shaped ducts 32, together with the drying chamber 1 and the hot air blower 3, form a series air duct, ultimately discharging into the external environment. This ensures stable temperature inside the chamber while maintaining good air circulation, resulting in excellent breathability. This allows the deer placenta to undergo thorough drying as the tray assembly 5 rotates. Contact with the flowing airflow accelerates moisture evaporation, achieving efficient and uniform drying, significantly shortening drying time and improving production efficiency.
Claims
1. A deer placenta drying device for preparing deer placenta extract, characterized in that: Includes: a drying oven (1), a control cabinet (2) fixedly installed on the upper surface of the drying oven (1), an electric heating device (21) and a hot air blower (3) built into the control cabinet (2), a Z-shaped air duct (32) fixedly connected to both ends of the bottom surface of the hot air blower (3) and the drying oven (1), and the electric heating device (21) is heat-transfer connected to two electric heating tube assemblies (22), which are respectively limited and fixed to the inner walls on both sides of the drying oven (1); The storage rack (4) is pushed and installed inside the drying oven (1). Multiple tray assemblies (5) are rotatably mounted on the storage rack (4) in a matrix. The tray assembly (5) is composed of a mesh tray (51) and a mesh cover plate (53) that are rotatably hinged together. The rotating mechanism (6) includes a motor (61) and a transmission assembly. The motor (61) is fixedly installed on the upper surface of the drying box (1) and is used to drive multiple tray assemblies (5) to rotate via the transmission assembly.
2. The device for drying the deers fetus for preparing the deers fetus cream according to claim 1, characterized in that: The drying box (1) has multiple air ducts (12) on both sides of its inner wall. The drying box (1) has air ducts on both sides of its inner wall, and each air duct is connected to a Z-shaped air pipe (32).
3. The deer placenta drying apparatus for preparing deer placenta extract according to claim 1, characterized in that: The hot air blower (3) is provided with air guide pipes (31) on both sides, which are air inlet pipes and air outlet pipes respectively. The air guide pipes (31) are connected to a Z-shaped air duct (32) respectively, and the air outlets are located outside the control cabinet (2).
4. The device for drying deer fetus for preparing deer fetus cream according to claim 1, characterized in that: Each of the four corners of the bottom of the storage rack (4) is equipped with a universal wheel (41). The bottom surface of the drying box (1) is provided with two guide grooves (11). The universal wheel (41) is installed along the guide grooves (11). The upper end of the storage rack (4) is fixed with two positioning blocks (42). The positioning blocks (42) are fixedly installed in the drying box (1) by screws.
5. The device for drying the deers according to claim 1, characterized in that: The bottom of each pair of mesh trays (51) is fixedly connected to a rotating rod (52), and the rotating rod (52) is rotatably connected to the storage bracket (4). The mesh tray (51) is provided with a card seat, and the mesh cover plate (53) is provided with an elastic card block structure that matches the card seat.
6. The device for drying the deers according to claim 1, characterized in that: The transmission assembly includes a vertical rod (62), which is rotatably connected to the storage bracket (4). The upper end of the vertical rod (62) is connected to the output shaft of the motor (61). Three worm gears (621) are provided on the vertical rod (62). Each worm gear (621) is meshed with a worm wheel (63). The worm wheel (63) is fixedly provided with a crossbar (64). The crossbar (64) is rotatably connected with two L-shaped blocks (641). The L-shaped blocks (641) are fixedly connected to the storage bracket (4). Both ends of the crossbar (64) are fixedly provided with a first bevel gear (65). The first bevel gear (65) is meshed with a second bevel gear (66). The second bevel gear (66) is fixedly connected to a rotating rod (52).
7. The deer placenta drying apparatus for preparing deer placenta extract according to claim 1, characterized in that: The electric heating tube assembly (22) is located on the side wall of the drying box (1) in a serpentine structure. Multiple limiting strips (23) are fixedly installed on the side of the drying box (1) by screws. The electric heating tube assembly (22) is limited and installed between the limiting strips (23) and the side wall of the drying box (1).