Food freezing and fresh-keeping device with antibacterial function

By designing a food freezing and preservation device with antibacterial function and using a wind wheel motor to drive the flow of cold air and the water collection tank system, the problems of reduced refrigeration efficiency and bacterial growth caused by the accumulation of condensed water are solved, and efficient food preservation and refrigeration effects are achieved.

CN120684849AInactive Publication Date: 2025-09-23JIANGMEN WEILAI SMART CATERING CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202511119848.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-11
Publication Date
2025-09-23
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the process of food freezing and preservation, the formation and accumulation of condensation water leads to a decrease in refrigeration efficiency, which may block the air outlet and affect the food preservation effect.

Method used

A food freezing and preservation device with antibacterial function was designed. The device drives the cold air flow through a bevel-tooth wind wheel motor, and uses a rotating plate and a spring to open and close the rotating plate to divert condensed water for discharge. A water collection trough and a diversion trough system are combined to collect condensed water for cooling the evaporator and compressor. Heat conduction through copper tubes and hollow iron tubes is combined with ultraviolet lamps to inhibit bacteria and prevent condensed water from freezing.

Benefits of technology

It effectively avoids condensate backflow blockage, improves refrigeration efficiency, reduces compressor temperature, inhibits bacterial growth, and maintains food freshness.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120684849A_ABST
    Figure CN120684849A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of bacteriostasis and preservation, and discloses a food freezing and preservation device with an antibacterial function, the food freezing and preservation device comprises a base, the interior of the base is movably connected with a shell, after a condenser emits cold air, a bevel gear wind wheel motor is driven to enable a wind wheel to rotate, and when the cold air circulates along the inner wall of a ventilation shell, the shell is closed; part of the cold air circulates from the top of the ventilation shell, the other part of the cold air circulates from the bottom of the ventilation shell, under the reaction that the heat rises and the cold air falls, the cold air makes contact with the heat to generate a condensation phenomenon, and the cold air possibly flows downwards along with the gravity effect to enter the ventilation shell; cool air blown under the driving of a bevel gear wind wheel motor enables a rotating plate and a spring rotating plate to rotate, an included angle is formed between the rotating plate and the inner wall of the ventilation shell in the opening and closing state, and condensed condensate water flows out of the ventilation shell along with the outer wall of the opened and closed spring rotating plate. And the residual condensate water is carried out of the ventilation shell along with the air outlet in the bottom.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to the technical field of antibacterial preservation, and in particular to a food freezing and preservation device with antibacterial function. Background Art

[0002] Low-temperature freezing technology can effectively reduce the loss of nutrients in food during storage, freeze the molecular structure of food at low temperatures, reduce the risk of spoilage and quality degradation, and keep edible food fresh for a long time, avoiding moisture loss;

[0003] During the freezing and preservation process of food, due to the complexity of food categories, for foods that may emit heat, condensation may form during the freezing and preservation process because the food emits and contacts temperatures higher than the refrigeration temperature when it is put in and within a certain period of time after being put in. Since the cold air is emitted, it is necessary to avoid reducing contact with water molecules. Since some foods may emit heat after being put in, the presence of heat may induce the growth of bacteria attached to their surface, infecting other foods inside and causing quality deterioration. As the cold air source continues to cool, the heat condenses when it contacts the cold air to form condensation. If the condensation gathers at the target source at this time, it will cause freezing and condensation under continuous refrigeration, resulting in obstruction of the air outlet, making it impossible to effectively refrigerate and preserve the food. Summary of the Invention

[0004] The object of the present invention is to provide a food freezing and preservation device with antibacterial function to solve the problems raised in the above background technology.

[0005] To solve the above technical problems, the present invention is achieved through the following technical solutions:

[0006] The present invention is a food freezing and preservation device with antibacterial function, comprising a base movably connected to a shell, an evaporator movably connected to the shell, a driving impeller rotatably connected to the shell, a compressor fixedly connected to the bottom inner wall of the shell, and a condenser fixedly connected to the side wall of the compressor, comprising:

[0007] A receiving mechanism, wherein a slotted component is provided inside the receiving mechanism;

[0008] A circulation component is provided inside the receiving mechanism to collect condensed water formed inside;

[0009] A diffusion mechanism is provided inside the receiving mechanism and is used to guide condensed water formed after the cold air is blown out from the inside;

[0010] The transmission mechanism is arranged inside the receiving mechanism and is used to prevent the collected condensed water from freezing.

[0011] Further, the slotted assembly is placed on top of the base via a placement piece;

[0012] The placement piece includes a container box placed on top of the base;

[0013] The circulation component is arranged inside the slotted component through a through piece;

[0014] The through piece includes a water collection groove provided inside the slotted assembly;

[0015] Among them, a U-shaped collecting trough is opened on the top of the container box, and two single-sided inclined plates are fixedly connected to the inner wall of the U-shaped collecting trough. The two single-sided inclined plates are symmetrically arranged, and the inner wall of the U-shaped collecting trough is fixedly connected to the double-sided inclined plates.

[0016] Furthermore, the diffusion mechanism includes:

[0017] A limiting component, the limiting component is fixed to the inner wall of the container body through a fixing member;

[0018] The fixing member includes a pressing block fixedly connected to the inner wall of the container box;

[0019] an obstruction component, wherein the obstruction component is rotated inside the restriction component through the rotating member;

[0020] The rotating member includes a rotating plate rotatably connected to the interior of the limiting assembly.

[0021] Furthermore, the diffusion mechanism includes:

[0022] A limiting component, the limiting component is fixed to the inner wall of the container body through a fixing member;

[0023] The fixing member includes a pressing block fixedly connected to the inner wall of the container box;

[0024] an obstruction component, wherein the obstruction component is rotated inside the restriction component through the rotating member;

[0025] The rotating member includes a rotating plate rotatably connected to the interior of the limiting assembly.

[0026] Furthermore, the slot assembly includes a plurality of copper tubes penetrating the inner wall of the container box, and a plurality of hollow iron tubes are fixedly connected to the inner wall of the U-shaped collecting trough, and the copper tubes extend from the side away from the container box to the interior of the hollow iron tubes;

[0027] Wherein, a flow guide cavity is opened at the bottom of the container body.

[0028] Furthermore, the circulation component includes a water collection groove provided inside the container body, the water collection groove is connected to the diversion cavity, two guide grooves are provided at the bottom of the water collection groove, the guide grooves extend to the inner wall of the shell, two L-shaped stoppers are fixedly connected to the inner wall of the bottom of the water collection groove, two L-shaped diversion grooves are provided on the side wall of the water collection groove, and the two L-shaped diversion grooves are symmetrically arranged, a Y-shaped diversion groove is provided at the bottom of the water collection groove, and two rectangular grooves are provided on the inner wall of the U-shaped collection groove, and the two rectangular grooves are symmetrically arranged;

[0029] Among them, the L-shaped guide groove and the rectangular groove are connected.

[0030] Furthermore, the limiting assembly includes a support block fixedly connected to the inner wall of the container box, the ventilation shell is fixedly connected to the interior of the ventilation shell, and the bevel gear wind wheel motor is fixedly connected to the interior of the support block;

[0031] Among them, the bevel gear wind wheel motor passes through the ventilation shell and extends to the interior. The wind wheel end of the bevel gear wind wheel motor rotates on the inner wall of the ventilation shell. A horizontal ultraviolet lamp is fixedly connected to the interior of the ventilation shell, and two vertical ultraviolet lamps are fixedly connected to the interior of the U-shaped collection tank.

[0032] Furthermore, the obstruction assembly includes a rotating plate rotatably connected to the interior of the ventilation shell, the interior of the ventilation shell is rotatably connected to a spring rotating plate, a spring end of the spring rotating plate is fixedly connected to the inner wall of the ventilation shell, the inner wall of the ventilation shell is fixedly connected to a first fixing block, and the interior of the ventilation shell is fixedly connected to a second fixing block;

[0033] The side wall of the rotating plate rotates on the top arc surface of the spring rotating plate, and the side wall of the spring rotating plate rotates on the top arc surface of the second fixed block.

[0034] Furthermore, the drive assembly includes a double-conical gear shaft meshedly connected to the side wall of the bevel-gear wind wheel motor, a triple-conical gear shaft meshedly connected to the bottom outer wall of the double-conical gear shaft, and two bevel-gear slotted wheels meshedly connected to the side of the triple-conical gear shaft away from the double-conical gear shaft, and the two bevel-gear slotted wheels are symmetrically arranged;

[0035] The double-bevel gear shaft is arranged inside the support block, the triple-bevel gear shaft is arranged inside the container box, and the two bevel-toothed slotted wheels are arranged inside the container box.

[0036] Furthermore, the sliding assembly includes a U-shaped sleeve block sleeved on the outer wall of the bevel-toothed slotted wheel, the outer walls of the two U-shaped sleeve blocks are fixedly connected to the inner wall of the U-shaped collecting trough, a plurality of fixed rods are fixedly connected to the inner wall of the U-shaped collecting trough, a sliding halberd-shaped block is slidably connected to the outer walls of the two fixed rods, the spring end of the L-shaped spring connecting rod plate is fixedly connected to the inside of the rectangular groove, the L-shaped spring connecting rod plate extends to the inside of the U-shaped collecting trough, and the inside of the base is provided with a collecting trough;

[0037] The collecting trough is connected to the Y-shaped guide trough, and the bottom outer wall of the sliding halberd-shaped block is slidably connected to the groove on the outer wall of the bevel-toothed slotted wheel.

[0038] The present invention has the following beneficial effects:

[0039] 1. To prevent condensed water from flowing back to the inside and contacting the condenser, after the condenser emits cold air, it drives the bevel gear wind wheel motor to rotate the wind wheel. When the rotation of the wind wheel drives the cold air to flow along the inner wall of the ventilation shell, part of the cold air will flow from the top of the ventilation shell, and the other part will flow from the bottom of the ventilation shell, so that the cold air will spread over a large area. However, due to environmental problems or the food placed inside the container box generates heat, as the heat rises and the cold air falls, the cold air will contact the heat and condense, which may cause condensation on the ventilation shell. Since the condensed water is in liquid state, it may condense with the weight. The force affects the downward flow and causes it to enter the interior of the ventilation shell. At this time, the cold air driven by the bevel-tooth wind wheel motor causes the rotating plate and the spring rotating plate to rotate and open and close. In the open and closed state, an angle is formed with the inner wall of the ventilation shell. After the opening and closing behavior occurs, the condensed condensed water will flow out of the ventilation shell along the outer wall of the spring rotating plate that opens and closes. Some of the condensed water that may pass through the spring rotating plate is affected by the inner wall of the ventilation shell and flows to the bottom, and is carried out of the outside of the ventilation shell along the air outlet at the bottom, avoiding the condensed water from entering the interior of the ventilation shell and being affected by the cold air and solidifying on the outer wall of the bevel-tooth wind wheel motor and the condenser, thereby avoiding blockage.

[0040] 2. Condensate is collected when heat and cold air come into contact. When condensation occurs, condensate forms inside the container body and falls onto the bottom inner wall of the container body due to its own weight. Due to the grooves in the container body, the condensate that falls to the bottom is collected and flows downward through the guide cavity, thus entering the water collection tank. Due to the raised portion inside the water collection tank, this portion collects the incoming condensate and collects it inside the water collection tank. The guide groove allows the collected condensate to pass through the shell to the inside of the evaporator, cooling the evaporator. The evaporated gas inside is then discharged by the rotation of the driving impeller. The two L-shaped blocks fixed inside the water collection tank are slightly lower than the raised portion of the water collection tank, allowing some of the collected condensate to collect into the Y-shaped guide groove and enter the collection tank to cool the compressor inside the shell. As the driving impeller rotates, the evaporated gas is discharged, reducing the possibility of overload caused by excessive compressor temperature under long-term cooling operation, while promoting evaporator cooling and improving efficiency.

[0041] 3. Regarding the cooling work inside the shell, since there is a limit on the amount of food that can be placed inside the container box, when the heat of the food inside is evaporated by continuous cooling, new condensation may not form on the inner wall of the container box. In hot weather, the heat inside the shell may not be effectively reduced, resulting in an overload caused by excessive heat. Under the condition that several copper tubes are continuously cooled inside the container box, according to the nature of the copper tube material itself, the temperature is transferred to the end away from the container box, and the end of the copper tube away from the container box extends to the inside of the hollow iron tube. The existence of several holes in the outer wall of the container box makes the hollow iron tube contact with the external temperature. Due to the contact between hot and cold, Condensation occurs under certain circumstances, and the formed condensed water will fall away downward under the influence of gravity, flow along the surface of the unilateral inclined plate and gather inside the U-shaped collection groove, resulting in water accumulation. The two vertical ultraviolet lamps fixedly connected to the top of the container body suppress the internal bacteria. At the same time, the accumulated water squeezes the L-shaped spring connecting plate as the sliding halberd-shaped block moves, so that the condensed water inside the container body enters the L-shaped guide groove. As the L-shaped spring connecting plate moves, it flows with the inner wall of the L-shaped guide groove. The accumulated condensed water, without the obstruction of the L-shaped spring connecting plate, will flow along the inner wall of the L-shaped guide groove into the interior of the water collection groove, preparing for cooling the inside of the shell.

[0042] 4. To reduce the possibility of freezing of condensed water accumulated inside the container box, the condensed water formed in the above situation gathers inside the container box, and the double-bevel gear shaft rotates under the drive of the bevel wind wheel motor, so that the three-bevel gear shaft drives the two meshing bevel slotted wheels to rotate. Due to the restriction of the fixed rod, the bottom outer wall of the sliding halberd-shaped block slidably connected to the outer wall of the fixed rod is embedded in the interior of the bevel slotted wheel. Under the influence of the rotation of the bevel slotted wheel, the sliding halberd-shaped block is driven by the groove path of the bevel slotted wheel to slide inside the container box. As the sliding halberd-shaped block slides, the condensed water gathered inside the container box flows. Due to the influence of the reciprocating grooves on the outer wall of the bevel slotted wheel, as the bevel slotted wheel continues to rotate, the sliding halberd-shaped block reciprocates along the grooves of the bevel slotted wheel, so that the condensed water inside the container box circulates, reducing the freezing caused by the continuous temperature drop conducted by the inner wall of the container box.

[0043] Of course, any product implementing the present invention does not necessarily need to achieve all of the advantages described above at the same time. BRIEF DESCRIPTION OF THE DRAWINGS

[0044] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.

[0045] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0046] Figure 2 This is a schematic diagram of the structure of the side wall of the present invention;

[0047] Figure 3 It is a schematic diagram of the overall cross-sectional structure of the present invention;

[0048] Figure 4 This is a schematic diagram of the bottom layout structure of the present invention;

[0049] Figure 5 This is a schematic diagram of the structure of the limiting component of the present invention;

[0050] Figure 6 Schematic diagram of the cross-sectional structure of the side wall of the restriction assembly of the present invention;

[0051] Figure 7 This is a schematic diagram of the side wall structure of the restriction assembly of the present invention;

[0052] Figure 8 This is a schematic diagram of the structure of the barrier component of the present invention;

[0053] Figure 9 For the present invention Figure 7 The enlarged structural diagram at C in the middle;

[0054] Figure 10 For the present invention Figure 5 The enlarged structural diagram at B in the middle;

[0055] Figure 11 For the present invention Figure 3 A in the middle is an enlarged structural diagram;

[0056] Figure 12 Schematic diagram of the cross-sectional structure of the sliding assembly of the present invention;

[0057] Figure 13 It is a schematic diagram of the local parts structure of the sliding assembly of the present invention.

[0058] In the accompanying drawings, the components represented by the reference numerals are as follows:

[0059] In the figure: 1. Receiving mechanism; 13. Base; 14. Housing; 15. Evaporator; 16. Driving impeller; 17. Compressor; 18. Condenser; 19. Horizontal UV lamp; 20. Vertical UV lamp; 11. Slotted assembly; 101. Container body; 102. U-shaped collecting trough; 103. Single-sided tilting plate; 104. Double-sided tilting plate; 105. Copper tube; 106. Hollow iron tube; 12. Circulation assembly; 121. Water collecting trough; 122. Guide trough; 123. L-shaped stopper; 124. L-shaped guide trough; 125. Y-shaped guide trough; 126. Rectangular shaped groove; 2. Diffusion mechanism; 21. Limiting assembly; 211. Pressure block; 212. Support block; 213. Ventilation shell; 214. Bevel-tooth wind wheel motor; 22. Obstructing assembly; 221. Rotating plate; 222. Spring rotating plate; 223. Fixed block one; 224. Fixed block two; 3. Transmission mechanism; 31. Driving assembly; 311. Double-bevel gear shaft; 312. Triple-bevel gear shaft; 313. Bevel-tooth slotted wheel; 32. Sliding assembly; 321. U-shaped sleeve block; 322. Fixed rod; 323. Sliding halberd-shaped block; 324. L-shaped spring connecting rod plate; 325. Collecting tank. DETAILED DESCRIPTION

[0060] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0061] See also Figures 1-13 As shown, the present invention is a food freezing and preservation device with antibacterial function, including a base 13, the interior of the base 13 is movably connected to a shell 14, the interior of the shell 14 is movably connected to an evaporator 15, the interior of the shell 14 is rotatably connected to a driving impeller 16, the bottom inner wall of the shell 14 is fixedly connected to a compressor 17, and the side wall of the compressor 17 is fixedly connected to a condenser 18, including:

[0062] The receiving mechanism 1 has a slotted assembly 11 disposed therein;

[0063] A circulation component 12 is provided inside the receiving mechanism 1 for collecting condensed water formed inside;

[0064] The diffusion mechanism 2 is arranged inside the receiving mechanism 1 and is used to guide the condensed water formed after the cold air is blown out from the inside;

[0065] The transmission mechanism 3 is arranged inside the receiving mechanism 1 and is used to prevent the collected condensed water from freezing.

[0066] The slotting assembly 11 is placed on top of the base 13 through a placement piece;

[0067] The placement member includes a container box 101 placed on top of the base 13;

[0068] The circulation component 12 is arranged inside the slotted component 11 through a through piece;

[0069] The through piece includes a water collection groove 121 provided inside the groove assembly 11;

[0070] Among them, a U-shaped collecting groove 102 is opened on the top of the container box 101, and two single-sided inclined plates 103 are fixedly connected to the inner wall of the U-shaped collecting groove 102. The two single-sided inclined plates 103 are symmetrically arranged, and the inner wall of the U-shaped collecting groove 102 is fixedly connected to the double-sided inclined plates 104.

[0071] The diffusion mechanism 2 includes:

[0072] The limiting component 21 is fixed to the inner wall of the container body 101 through a fixing member;

[0073] The fixing member includes a pressing block 211 fixedly connected to the inner wall of the container box 101;

[0074] The obstruction component 22 is rotated inside the restriction component 21 through a rotating member;

[0075] The rotating member includes a rotating plate 221 rotatably connected to the interior of the limiting assembly 21 .

[0076] The transmission mechanism 3 includes:

[0077] The driving assembly 31 is disposed inside the container body 101 through a setting member;

[0078] The setting member is provided on the double-bevel gear shaft 311 inside the container box 101;

[0079] The sliding assembly 32 is disposed inside the container body 101 through a sliding member;

[0080] The sliding member includes a U-shaped sleeve block 321 sleeved on the outer wall of the driving assembly 31 .

[0081] The slot assembly 11 includes several copper tubes 105 that penetrate the inner wall of the container box 101. Several hollow iron tubes 106 are fixedly connected to the inner wall of the U-shaped collection tank 102. The copper tubes 105 extend from the side of the container box 101 to the inside of the hollow iron tubes 106.

[0082] A diversion cavity is provided at the bottom of the container body 101 , which is used to collect and use condensed water generated around the side walls of the container body 101 .

[0083] The circulation component 12 includes a water collection groove 121 provided inside the container box 101. The water collection groove 121 is connected to the diversion cavity. Two guide grooves 122 are provided at the bottom of the water collection groove 121. The guide grooves 122 pass through the inner wall of the shell 14. Two L-shaped stoppers 123 are fixedly connected to the inner wall of the bottom of the water collection groove 121. Two L-shaped guide grooves 124 are provided on the side wall of the water collection groove 121. The two L-shaped guide grooves 124 are symmetrically arranged. A Y-shaped guide groove 125 is provided at the bottom of the water collection groove 121. Two rectangular grooves 126 are provided on the inner wall of the U-shaped collection groove 102. The two rectangular grooves 126 are symmetrically arranged.

[0084] The L-shaped guide groove 124 is connected to the rectangular groove 126 and is used to collect and guide the condensed water generated inside the container box 101 .

[0085] The limiting assembly 21 includes a support block 212 fixedly connected to the inner wall of the container box 101, a ventilation shell 213 fixedly connected to the interior of the ventilation shell 213, and a bevel gear wind wheel motor 214 fixedly connected to the interior of the support block 212;

[0086] Among them, the bevel-toothed wind wheel motor 214 passes through the ventilation shell 213 and extends to the interior. The wind wheel end of the bevel-toothed wind wheel motor 214 rotates on the inner wall of the ventilation shell 213. The interior of the ventilation shell 213 is fixedly connected with a horizontal ultraviolet lamp 19, and the interior of the U-shaped collection tank 102 is fixedly connected with two vertical ultraviolet lamps 20; they are used to transport the cold air generated by the condenser 18.

[0087] The obstruction assembly 22 includes a rotating plate 221 rotatably connected to the interior of the ventilation shell 213. A spring rotating plate 222 is rotatably connected to the interior of the ventilation shell 213. The spring end of the spring rotating plate 222 is fixedly connected to the inner wall of the ventilation shell 213. A fixing block 1 223 is fixedly connected to the inner wall of the ventilation shell 213. A fixing block 224 is fixedly connected to the interior of the ventilation shell 213.

[0088] Among them, the side wall of the rotating plate 221 rotates on the top arc surface of the spring rotating plate 222, and the side wall of the spring rotating plate 222 rotates on the top arc surface of the fixed block 224; it is used to prevent the condensed water formed when the internal cold air is transported and meets the conditions, and discharge it from the interior of the ventilation shell 213.

[0089] The drive assembly 31 includes a double-bevel gear shaft 311 meshedly connected to the side wall of the bevel gear wind wheel motor 214. The bottom outer wall of the double-bevel gear shaft 311 is meshedly connected to a triple-bevel gear shaft 312. The side of the triple-bevel gear shaft 312 away from the double-bevel gear shaft 311 is meshedly connected to two bevel gear slotted wheels 313. The two bevel gear slotted wheels 313 are symmetrically arranged.

[0090] Among them, the double-bevel gear shaft 311 is arranged inside the support block 212, the triple-bevel gear shaft 312 is arranged inside the container box 101, and the two bevel-toothed grooved wheels 313 are arranged inside the container box 101; the drive assembly 31 is arranged inside the container box 101 and does not contact the inner wall of the container box 101, and outputs the transmission force through gear meshing connection.

[0091] The sliding assembly 32 includes a U-shaped sleeve block 321 mounted on the outer wall of the bevel-toothed grooved wheel 313. The outer walls of the two U-shaped sleeve blocks 321 are fixedly connected to the inner wall of the U-shaped collection trough 102. A plurality of fixed rods 322 are fixedly connected to the inner wall of the U-shaped collection trough 102. A sliding halberd-shaped block 323 is slidably connected to the outer walls of the two fixed rods 322. The spring end of an L-shaped spring connecting rod plate 324 is fixedly connected to the interior of the rectangular groove 126. The L-shaped spring connecting rod plate 324 extends into the interior of the U-shaped collection trough 102. A collection trough 325 is defined within the base 13.

[0092] Among them, the collection groove 325 is connected to the Y-shaped guide groove 125, and the bottom outer wall of the sliding halberd-shaped block 323 is slidably connected to the groove on the outer wall of the bevel-toothed grooved wheel 313; it is used to drive the sliding halberd-shaped block 323 to slide inside the U-shaped collection groove 102 through gears, so as to prevent the condensed water inside the U-shaped collection groove 102 from freezing.

[0093] The first specific embodiment of the present invention aims to prevent condensed water from flowing back to the inside and contacting the condenser. After the condenser emits cold air, the bevel-toothed wind wheel motor is driven to rotate the wind wheel. When the rotation of the wind wheel drives the cold air to flow along the inner wall of the ventilation shell, part of the cold air will flow from the top direction of the ventilation shell, and the other part will flow from the bottom direction of the ventilation shell, so that the cold air will spread over a large area. Due to environmental problems or the food placed inside the container box generates heat, as the heat rises and the cold air falls, the cold air will condense when it contacts the heat, which may cause condensed water to appear on the ventilation shell. Since the condensed water is in liquid state, it may flow downward under the influence of gravity and enter the interior of the ventilation shell. At this time, the cold air blown by the bevel-toothed wind wheel motor causes the rotating plate and the spring rotating plate to rotate and open and close, and in the open and closed state, an angle will be formed with the inner wall of the ventilation shell. After the opening and closing behavior occurs, the condensed condensed water will flow out of the outside of the ventilation shell along the outer wall of the spring rotating plate, appearing as shown below. Figure 9 The G part in the middle indicates that the other part of the condensed water may flow from the inner wall of the ventilation shell to the bottom through the spring rotating plate, and then be carried out of the ventilation shell through the air outlet at the bottom, so as to prevent the condensed water from entering the ventilation shell and being affected by the cold air and solidifying on the outer wall of the bevel gear impeller motor and the condenser to avoid blockage.

[0094] Condensed water is collected when heat comes into contact with cold air. When condensation occurs, condensed water forms inside the container body and falls onto the bottom inner wall of the container body due to its own weight. Due to the groove of the container body, the condensed water that falls to the bottom is collected and then flows downward through the guide cavity, thus entering the water collection tank. Since there is a raised part inside the water collection tank, this part collects the incoming condensed water and collects it inside the water collection tank. Due to the presence of the guide groove, the collected condensed water passes through the shell to the inside of the evaporator, cooling the evaporator. Then, the evaporated gas inside is discharged by the rotation of the driving impeller. The two L-shaped blocks fixedly connected inside the water collection tank are slightly lower than the raised part of the water collection tank, so that a part of the collected condensed water is collected into the inside of the Y-shaped guide groove and enters the interior of the collection tank to cool the compressor inside the shell. As the driving impeller rotates, the evaporated gas is discharged, reducing the possibility of overload of the compressor due to excessive temperature under long-term refrigeration operation, while promoting evaporator cooling and improving efficiency.

[0095] Regarding the cooling work inside the shell, since there is a limit on the amount of food that can be placed inside the container box, when the heat of the food inside is evaporated by continuous cooling, new condensation may not form on the inner wall of the container box. In hot weather, the heat inside the shell may not be effectively reduced, resulting in an overload caused by excessive heat. Under the condition that several copper tubes are continuously cooled inside the container box, according to the nature of the copper tube material itself, the temperature is transferred to the end away from the container box, and the end of the copper tube away from the container box extends to the inside of the hollow iron tube. The presence of several holes on the outer wall of the container box makes the hollow iron tube contact with the external temperature. Due to the contact between hot and cold, the temperature of the copper tube is condensed and the temperature of the food is reduced. Condensation occurs under the influence of gravity, and the formed condensed water will fall away downwards under the influence of gravity, flow along the surface of the unilateral inclined plate and gather inside the U-shaped collection groove, resulting in water accumulation. The two vertical ultraviolet lamps fixedly connected to the top of the container body suppress the internal bacteria. At the same time, the accumulated water squeezes the L-shaped spring connecting plate as the sliding halberd-shaped block moves, so that the condensed water inside the container body enters the L-shaped guide groove. As the L-shaped spring connecting plate moves, it flows along the inner wall of the L-shaped guide groove. Without the obstruction of the L-shaped spring connecting plate, the accumulated condensed water will flow along the inner wall of the L-shaped guide groove into the interior of the water collection groove, preparing for cooling the inside of the shell.

[0096] In order to reduce the possibility of freezing of condensed water accumulated inside the container box, the condensed water formed in the above situation gathers inside the container box. Due to the drive of the bevel wind wheel motor, the double-bevel gear shaft will rotate, which will drive the two meshing bevel slotted wheels to rotate. Due to the restriction of the fixed rod, the bottom outer wall of the sliding halberd-shaped block connected to the outer wall of the fixed rod is embedded in the interior of the bevel slotted wheel. Under the influence of the rotation of the bevel slotted wheel, the sliding halberd-shaped block is driven by the groove path of the bevel slotted wheel to slide inside the container box. As the sliding halberd-shaped block slides, the condensed water gathered inside the container box flows. Due to the influence of the reciprocating grooves opened on the outer wall of the bevel slotted wheel, as the bevel slotted wheel continues to rotate, the sliding halberd-shaped block reciprocates along the grooves of the bevel slotted wheel, so that the condensed water inside the container box circulates, reducing the freezing caused by the continuous temperature drop conducted by the inner wall of the container box.

[0097] The preferred embodiments of the present invention disclosed above are intended only to help illustrate the present invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the present invention to the specific embodiments described. Obviously, many modifications and variations are possible based on the content of this specification. These embodiments are selected and described in detail in this specification to better explain the principles and practical applications of the present invention, thereby enabling those skilled in the art to better understand and utilize the present invention. The present invention is limited only by the claims and their full scope and equivalents.

Claims

1. A food freezing and preservation device with antibacterial function, comprising a base (13), wherein the interior of the base (13) is movably connected to a shell (14), wherein the interior of the shell (14) is movably connected to an evaporator (15), wherein the interior of the shell (14) is rotatably connected to a driving impeller (16), wherein the bottom inner wall of the shell (14) is fixedly connected to a compressor (17), and the side wall of the compressor (17) is fixedly connected to a condenser (18), wherein: Also includes: A receiving mechanism (1), wherein a slotted assembly (11) is provided inside the receiving mechanism (1); A circulation component (12) is provided inside the receiving mechanism (1) for collecting condensed water formed inside; A diffusion mechanism (2), the diffusion mechanism (2) being arranged inside the receiving mechanism (1) and used for guiding condensed water formed after the cold air is blown out from the inside; A transmission mechanism (3) is provided inside the receiving mechanism (1) and is used to prevent the collected condensed water from freezing.

2. The food freezing and preservation device with antibacterial function according to claim 1, characterized in that: The slotting assembly (11) is placed on the top of the base (13) via a placement piece; The placement piece includes a container box (101) placed on top of the base (13); The circulation component (12) is arranged inside the slotted component (11) through a through piece; The through-piece includes a water collection groove (121) provided inside the groove assembly (11); A U-shaped collecting trough (102) is provided on the top of the container box (101), two single-sided inclined plates (103) are fixedly connected to the inner wall of the U-shaped collecting trough (102), and the two single-sided inclined plates (103) are symmetrically arranged. A double-sided inclined plate (104) is fixedly connected to the inner wall of the U-shaped collecting trough (102).

3. The food freezing and preservation device with antibacterial function according to claim 2, characterized in that: The diffusion mechanism (2) includes: A limiting assembly (21), wherein the limiting assembly (21) is fixed to the inner wall of the container body (101) via a fixing member; The fixing member comprises a pressing block (211) fixedly connected to the inner wall of the container body (101); an obstruction component (22), wherein the obstruction component (22) is rotated inside the restriction component (21) via a rotating member; The rotating member includes a rotating plate (221) rotatably connected to the interior of the limiting assembly (21).

4. The food freezing and preservation device with antibacterial function according to claim 3, characterized in that: The transmission mechanism (3) comprises: A drive assembly (31), wherein the drive assembly (31) is arranged inside the container box (101) via a setting member; The setting member is arranged on a double-bevel gear shaft (311) inside the container box (101); A sliding assembly (32), wherein the sliding assembly (32) is arranged inside the container box (101) via a sliding member; The sliding member comprises a U-shaped sleeve block (321) sleeved on the outer wall of the driving assembly (31).

5. The food freezing and preservation device with antibacterial function according to claim 4, characterized in that: The slotting assembly (11) comprises a plurality of copper tubes (105) penetrating the inner wall of the container body (101); the inner wall of the U-shaped collecting trough (102) is fixedly connected with a plurality of hollow iron tubes (106); the copper tubes (105) extend from a side of the container body (101) to the interior of the hollow iron tubes (106); Wherein, a flow guide cavity is provided at the bottom of the container box (101).

6. The food freezing and preservation device with antibacterial function according to claim 5, characterized in that: The circulation component (12) includes a water collection trough (121) provided inside the container box (101), the water collection trough (121) is connected to the diversion cavity, two guide grooves (122) are provided at the bottom of the water collection trough (121), the guide grooves (122) are connected to the inner wall of the shell (14), two L-shaped stoppers (123) are fixedly connected to the inner wall of the bottom of the water collection trough (121), two L-shaped diversion grooves (124) are provided on the side wall of the water collection trough (121), the two L-shaped diversion grooves (124) are symmetrically arranged, a Y-shaped diversion groove (125) is provided at the bottom of the water collection trough (121), and two rectangular grooves (126) are provided on the inner wall of the U-shaped collection trough (102), and the two rectangular grooves (126) are symmetrically arranged; The L-shaped guide groove (124) is connected to the rectangular groove (126).

7. The food freezing and preservation device with antibacterial function according to claim 6, characterized in that: The limiting assembly (21) includes a support block (212) fixedly connected to the inner wall of the container box (101), the ventilation shell (213) is fixedly connected to the interior of the ventilation shell (213), and the support block (212) is fixedly connected to the interior of the bevel gear wind wheel motor (214); The bevel-toothed wind wheel motor (214) penetrates the ventilation shell (213) and extends into the interior, the wind wheel end of the bevel-toothed wind wheel motor (214) rotates on the inner wall of the ventilation shell (213), a horizontal ultraviolet lamp (19) is fixedly connected to the interior of the ventilation shell (213), and two vertical ultraviolet lamps (20) are fixedly connected to the interior of the U-shaped collecting trough (102).

8. The food freezing and preservation device with antibacterial function according to claim 7, characterized in that: The obstruction assembly (22) includes a rotating plate (221) rotatably connected to the interior of the ventilation shell (213), a spring rotating plate (222) rotatably connected to the interior of the ventilation shell (213), a spring end of the spring rotating plate (222) fixedly connected to the inner wall of the ventilation shell (213), a fixing block 1 (223) fixedly connected to the inner wall of the ventilation shell (213), and a fixing block 2 (224) fixedly connected to the interior of the ventilation shell (213); Wherein, the side wall of the rotating plate (221) rotates on the top arc surface of the spring rotating plate (222), and the side wall of the spring rotating plate (222) rotates on the top arc surface of the second fixed block (224).

9. The food freezing and preservation device with antibacterial function according to claim 8, characterized in that: The driving assembly (31) comprises a double-cone gear shaft (311) meshedly connected to a side wall of a bevel-gear wind wheel motor (214); a triple-cone gear shaft (312) meshedly connected to a bottom outer wall of the double-cone gear shaft (311); two bevel-gear slotted wheels (313) meshedly connected to a side of the triple-cone gear shaft (312) away from the double-cone gear shaft (311); and the two bevel-gear slotted wheels (313) are symmetrically arranged. The double-bevel gear shaft (311) is arranged inside the support block (212), the triple-bevel gear shaft (312) is arranged inside the container body (101), and the two bevel gear slotted wheels (313) are arranged inside the container body (101).

10. The food freezing and preservation device with antibacterial function according to claim 9, characterized in that: The sliding assembly (32) includes a U-shaped sleeve block (321) sleeved on the outer wall of the bevel toothed slotted wheel (313), the outer walls of the two U-shaped sleeve blocks (321) are fixedly connected to the inner wall of the U-shaped collecting trough (102), a plurality of fixed rods (322) are fixedly connected to the inner wall of the U-shaped collecting trough (102), and a sliding halberd-shaped block (323) is slidably connected to the outer walls of the two fixed rods (322), the spring end of the L-shaped spring connecting rod plate (324) is fixedly connected to the inside of the rectangular groove (126), the L-shaped spring connecting rod plate (324) extends to the inside of the U-shaped collecting trough (102), and the inside of the base (13) is provided with a collecting trough (325); The collecting trough (325) is connected to the Y-shaped guide trough (125), and the bottom outer wall of the sliding halberd-shaped block (323) is slidably connected to the groove on the outer wall of the bevel-toothed slotted wheel (313).