A snow melting machine

Through the design of double-sided support arms, rails and locking structures, the innovative three-dimensional frame of the bottom fixed bracket of the material cylinder and the spring-loaded water receiving tray, the problems of time-consuming and laborious disassembly and assembly of the snow melting machine material cylinder and the cumbersome disassembly of the water receiving tray are solved, the assembly accuracy and operational stability are improved, and the snow melting texture is ensured to be fine.

CN224268158UActive Publication Date: 2026-05-26白璐
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
白璐
Filing Date
2025-07-01
Publication Date
2026-05-26

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Abstract

This utility model belongs to the field of refrigeration equipment technology, and in particular to a snow melting machine. It includes a material cylinder with support brackets on both sides; and a stirring assembly including a main body upper shell, one side of which has a stirrer extending into the material cylinder, and a driving mechanism for driving the stirrer. This utility model achieves sliding positioning and precise locking of the material cylinder through double-sided support arms, a track, and a locking structure, improving assembly accuracy and operational stability. The bottom fixed bracket of the material cylinder is embedded in the refrigeration component support groove to form a three-dimensional frame, dispersing and transmitting the discharge pressure and handling pull force to the housing, preventing component deformation, protecting the material cylinder connection structure from deformation under stress, and featuring a spring-loaded water tray for quick one-handed disassembly, simplifying the cleaning process. The three-bladed propeller is directly connected to the condenser to improve stirring uniformity. Combined with sealed bearings and a keyed transmission, it eliminates sticking and slippage, ensuring a fine snow melting texture, meeting user needs, and has broad application prospects.
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Description

Technical Field

[0001] This utility model relates to the field of refrigeration equipment technology, specifically a snow melting machine. Background Technology

[0002] Frozen beverage maker, also known as semi-frozen beverage maker or crushed ice beverage maker, typically comprises a transparent tank or mixing container that receives and processes beverage products. This processing involves cooling, often transforming the beverage product from a pure liquid (or a combination of liquid and ice portions) into a frozen or semi-frozen product, such as slushies, smoothies, fruit juices, ice cream, or other frozen or semi-frozen products, which are then dispensed. The cooled product is typically dispensed via a tap, faucet, or dispenser located near the front and bottom of the container.

[0003] Existing snow melting machines suffer from time-consuming and labor-intensive disassembly and assembly processes, poor assembly stability, stress concentration leading to component deformation, and cumbersome disassembly of the water receiving tray, all of which affect operational stability and snow melting quality, resulting in unsatisfactory performance.

[0004] Therefore, we propose a snow melting machine to solve the above problems. Utility Model Content

[0005] (a) Technical problems to be solved

[0006] To address the shortcomings of existing technologies, this utility model provides a snow melting machine that solves the problems mentioned in the background art, such as the time-consuming and labor-intensive process of disassembling and assembling the material cylinder, poor assembly stability, deformation of components caused by concentrated stress, and cumbersome disassembly of the water receiving tray.

[0007] (II) Technical Solution

[0008] To achieve the above objectives, this utility model specifically adopts the following technical solution:

[0009] A snow melting machine, comprising:

[0010] The material cylinder is equipped with support brackets on both sides;

[0011] A stirrer assembly includes a main body shell, on one side of which is a stirrer extending into the interior of a barrel and a drive mechanism for driving the stirrer.

[0012] The upper shell of the main body is provided with support arms on both sides, which are respectively corresponding to two support brackets. A transverse track is formed inside the support arm, and the support bracket can slide along the track to position the material cylinder to the working position.

[0013] A refrigeration component, the top of which is detachably connected to a water receiving tray located below the material cylinder, and the main body upper shell is fixedly installed on the top of the refrigeration component;

[0014] A fixed bracket is disposed at the bottom of one end of the barrel, the bottom of which contacts the top of the refrigeration component, and is configured to transmit the operating load to the refrigeration component.

[0015] Furthermore, the stirrer includes a condenser and a three-bladed propeller sleeved outside the condenser. The drive mechanism includes a drive motor fixedly installed inside the upper shell of the main body via a module bracket. One end of the output shaft of the drive motor passes through the condenser and is connected to one end of the three-bladed propeller via a flat key and a keyway. One end of the condenser is movably sleeved with the output shaft via a sealed bearing.

[0016] Furthermore, the refrigeration component includes a base and a housing disposed on the top of the base. A middle frame is fixedly embedded in the top of the housing. One end of the middle frame is provided with a support groove and a slot located on one side of the support groove. The water receiving tray is movably disposed inside the middle frame, and one end of the water receiving tray is provided with a spring buckle that engages with the slot.

[0017] Furthermore, the bottom end of the fixed bracket is movably fitted inside the support groove, and a reinforcing rib is provided inside the support groove, with one end extending into the interior of the fixed bracket.

[0018] Furthermore, a compressor and a heat exchanger connected to the compressor via pipes are provided on the top of the base. The compressor is provided with a liquid-cooled delivery pipe that passes through the middle frame and the upper shell of the main body and extends into the condenser. The heat exchanger is installed on the top of the base via a rear bracket. A cooling fan is also provided on one side of the rear bracket. A wastewater box lower cover is movably provided at one end of the base, and a wastewater box upper cover is provided on the top of the wastewater box lower cover.

[0019] Furthermore, the housing includes two opposing base covers, with a rear cover and a front shell bracket respectively disposed between the two ends of the two base covers. A display screen and a control module are disposed on one side of the front shell bracket, and a panel is disposed on the other side. A front bracket is also disposed on the top of the base. The tops of both the front and rear brackets are fixedly connected to the bottom of the middle frame. The top of the rear cover extends into the interior of one side of the main body upper shell.

[0020] Furthermore, a barrel cover is provided at one end of the barrel, and a discharge handle is provided at the other end. A feed cover is provided at the top of the barrel. A sensing column is provided on one side of the barrel cover. A face cover is provided on one side of the main body upper shell. An infrared probe corresponding to the sensing column is provided on the face cover. A barrel sealing ring is also provided on one side of the face cover. The end of the condenser away from the sealing bearing passes through the barrel sealing ring and is fixed to the face cover. After the barrel cover is installed in place with the barrel, it presses the barrel sealing ring tightly.

[0021] Furthermore, the support bracket is in the shape of a "straight line", and positioning pins are provided on both sides of the material cylinder. A latch is movably provided on one side of the support arm, and a positioning channel is provided on one side of the latch. A notch for connecting the positioning channel and the positioning pin is provided at one end of the track. The latches on the two support arms rotate synchronously through a rotating shaft.

[0022] Furthermore, the side of the latch away from the positioning channel is snapped with a latch handle inner shell, and a latch handle outer shell is provided on one side of the latch handle inner shell. A power module is also provided inside the main body upper shell.

[0023] Furthermore, the discharge handle includes a support fixedly mounted on one end of the material cylinder and a discharge trough movably engaged with the outside of the support. The discharge trough is perpendicular to the top cover of the wastewater box. A handle is rotatably mounted inside the support. A connecting rod is hinged to the bottom of the handle. A discharge trough support bracket is hinged to the bottom of the connecting rod. A discharge cover is movably mounted at the bottom of the discharge trough support bracket. A sealing ring is fitted on one side of the discharge cover. A discharge port that fits against the sealing ring is provided on one side of the material cylinder.

[0024] (III) Beneficial Effects

[0025] Compared with the prior art, this utility model provides a snow melting machine with the following beneficial effects:

[0026] This utility model features a double-sided support arm, track, and locking structure that enables sliding positioning and precise locking of the material cylinder, improving assembly accuracy and operational stability. The bottom fixed bracket of the material cylinder is embedded in the support groove of the refrigeration component to form a three-dimensional frame, dispersing and transmitting the discharge pressure and handling tension to the box body, preventing component deformation, protecting the material cylinder connection structure, and preventing deformation under stress. The spring-loaded water tray with a quick-release design simplifies the cleaning process. The three-bladed propeller is directly connected to the condenser to improve mixing uniformity. Combined with sealed bearings and a key transmission, it eliminates sticking and slippage, ensuring a fine texture in the melted snow, meeting user needs, and has broad application prospects. Attached Figure Description

[0027] Figure 1 This is a schematic diagram of the material cylinder structure of this utility model;

[0028] Figure 2 This is a schematic diagram of the stirrer structure of this utility model;

[0029] Figure 3 This is a schematic diagram of the power module structure of this utility model;

[0030] Figure 4 This is a schematic diagram of the rotating shaft structure of this utility model;

[0031] Figure 5 This is a schematic diagram of the material cylinder cover structure of this utility model;

[0032] Figure 6 This is a schematic diagram of the fixed bracket structure of this utility model;

[0033] Figure 7 This is a schematic diagram of the locking structure of this utility model;

[0034] Figure 8 This is a schematic diagram of the middle frame structure of this utility model;

[0035] Figure 9 This is a cross-sectional view of the material cylinder structure of this utility model;

[0036] Figure 10 This is an exploded view of the refrigeration component structure of this utility model;

[0037] Figure 11 This is an exploded view of the material discharge handle structure of this utility model.

[0038] In the diagram: 1. Barrel; 11. Support bracket; 12. Barrel cover; 121. Induction column; 13. Discharge handle; 131. Support; 132. Discharge chute; 133. Handle; 134. Connecting rod; 135. Discharge chute bracket; 136. Discharge cover; 137. Sealing ring; 14. Feed cover; 15. Positioning pin; 16. Discharge port; 2. Agitator assembly; 21. Main body shell; 211. Module bracket; 212. Power module; 22. Agitator; 221. Condenser; 2211. Sealed bearing; 222. Three-bladed propeller; 23. Drive mechanism; 231. Drive motor; 232. Output shaft; 233. Flat key; 234. Keyway; 24. Support arm; 241. Track; 242. Notch; 25. Top cover; 251. Red... 26. External probe; 27. Barrel sealing ring; 28. Locking buckle; 29. ​​Positioning channel; 20. Snap buckle; 20. Rotating shaft; 21. Inner shell of locking handle; 22. Outer shell of locking handle; 3. Refrigeration components; 31. Water receiving tray; 32. Spring buckle; 33. Base; 34. Front bracket; 35. Lower cover of wastewater box; 36. Upper cover of wastewater box; 37. Housing; 38. Base cover; 39. Rear cover; 30. Front shell bracket; 31. Display screen; 32. Control module; 33. Panel; 34. Middle frame; 35. Support groove; 35. Snap-in groove; 35. Reinforcing rib; 35. Compressor; 36. Piping; 36. Liquid cooling delivery pipe; 37. Heat exchanger; 38. Rear bracket; 39. Cooling fan; 4. Fixed bracket. Detailed Implementation

[0039] 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.

[0040] Example

[0041] like Figure 1-11 As shown, an embodiment of the present invention provides a snow melting machine, which includes a material cylinder 1, with support brackets 11 on both sides.

[0042] The stirrer assembly 2 includes a main body upper shell 21, on one side of which is a stirrer 22 extending into the inside of the material barrel 1 and a drive mechanism 23 for driving the stirrer 22.

[0043] The upper shell 21 of the main body is provided with support arms 24 on both sides, which are respectively corresponding to two support brackets 11. A transverse track 241 is formed inside the support arm 24. The support bracket 11 can slide along the track 241 to position the material cylinder 1 to the working position.

[0044] The refrigeration component 3 has a water receiving tray 31 detachably connected to its top, located below the material cylinder 1, and the main body upper shell 21 is fixedly installed on the top of the refrigeration component 3.

[0045] A fixed bracket 4 is disposed at the bottom of one end of the material cylinder 1. The bottom of the fixed bracket 4 contacts the top of the refrigeration component 3, and is configured to transmit the operating load to the refrigeration component 3.

[0046] The structure of double-sided support arms 24, rails 241, and locking buckles 27 enables sliding positioning and precise locking of the material cylinder 1, improving assembly accuracy and operational stability. The bottom fixed bracket 4 of the material cylinder 1 is embedded in the support groove 351 of the refrigeration component 3 to form a three-dimensional frame, dispersing and transmitting the discharge pressure and handling pull force to the box 34, preventing component deformation, protecting the connecting structure of the material cylinder 1, and preventing deformation under stress. The spring-loaded water tray 31 with a quick-release design simplifies the cleaning process. The three-bladed propeller 222 is directly connected to the condenser 221 to improve the uniformity of mixing. Combined with the sealed bearing 2211 and the flat key 233 for transmission, it eliminates sticking and slippage, ensuring a fine texture of melted snow, meeting user needs, and has broad application prospects.

[0047] like Figure 7As shown, in some embodiments, the stirrer 22 includes a condenser 221 and a three-bladed propeller 222 sleeved outside the condenser 221. The drive mechanism 23 includes a drive motor 231 fixedly installed inside the main body upper shell 21 via a module bracket 211. One end of the output shaft 232 of the drive motor 231 passes through the condenser 221 and is connected to one end of the three-bladed propeller 222 via a flat key 233 and a keyway 234. One end of the condenser 221 is movably sleeved with the output shaft 232 via a sealed bearing 2211.

[0048] A flat key 233 is located at one end of the conveyor shaft, and a keyway 234 is located inside one end of the three-bladed propeller 222. The flat key 233 is inserted into the keyway 234 to realize the transmission connection between the conveyor shaft and the three-bladed propeller 222. The three-bladed propeller 222 improves the material mixing efficiency, avoids ice adhesion, and ensures uniform snow melting texture. The flat key 233 and keyway 234 work together to ensure the reliability of power transmission and prevent the three-bladed propeller 222 from slipping with the output shaft 232. The sealed bearing 2211 prevents materials from entering the interior of the condenser 221.

[0049] The drive motor 231 directly drives the three-bladed propeller 222 to rotate through the output shaft 232, stirring the material in the material barrel 1. The condenser 221 serves as a static cold source to achieve direct heat exchange. The sealed bearing 2211 allows the output shaft 232 to rotate freely inside the condenser 221 while maintaining a tight seal.

[0050] like Figure 3 and Figure 10 As shown, in some embodiments, the refrigeration component 3 includes a base 32 and a housing 34 disposed on the top of the base 32. A middle frame 35 is fixedly embedded on the top of the housing 34. One end of the middle frame 35 is provided with a support groove 351 and a slot 352 located on one side of the support groove 351. The water receiving tray 31 is movably disposed inside the middle frame 35, and one end of the water receiving tray 31 is provided with a spring buckle 311 that engages with the slot 352.

[0051] The spring clip 311 and slot 352 design enable quick one-handed installation and removal of the drip tray 31, facilitating the cleaning of condensate. The support slot 351 provides horizontal positioning to prevent the drip tray 31 from shifting and causing leakage. During installation, one end of the drip tray 31 is pushed in along the middle frame 35. Once in place, the spring clip 311 at the other end is pressed down, deformed under pressure, and then locked into the slot 352. During disassembly, the spring clip 311 is squeezed out of the slot 352 and can be removed. The support slot 351 restricts the displacement of the drip tray 31, ensuring stability during use.

[0052] like Figure 6-9 As shown, in some embodiments, the bottom end of the fixed bracket 4 is movably sleeved inside the support groove 351, and a reinforcing rib 353 extending into the fixed bracket 4 is provided inside the support groove 351.

[0053] The reinforcing rib 353 is embedded inside the fixed bracket 4, which significantly improves the support rigidity of the material cylinder 1 and avoids structural deformation caused by long-term load. The fixed bracket 4 distributes and transmits the operating pressure of the material cylinder 1 to the cooling component 3 housing 34. The fixed bracket 4 mainly bears the force applied to the material cylinder 1 by the user when using or moving the machine. The fixed bracket 4 mainly bears the force in two directions: the force of the user pressing down the discharge handle 13 when using the machine, and the downward pull force of the machine itself on the material cylinder 1 when moving the machine. It mainly strengthens the fixation of the material cylinder 1 to the two side support arms 24 and the locking buckle 27 to prevent damage caused by uneven force on the components.

[0054] The fixed bracket 4 moves horizontally with the material cylinder 1. When the material cylinder 1 is positioned at the working position, the fixed bracket 4 is pushed into the support groove 351. At the same time, the reinforcing rib 353 is inserted into the fixed bracket 4 to form a three-dimensional support frame, which distributes and transmits the operating pressure of the material cylinder 1 to the middle frame 35, the box 34 and the base 32.

[0055] like Figure 9-10 As shown, in some embodiments, a compressor 36 and a heat exchanger 37 connected to the compressor 36 via a pipe 361 are provided on the top of the base 32. The compressor 36 is provided with a liquid-cooled delivery pipe 362 that passes through the middle frame 35 and the upper shell 21 of the main body and extends into the condenser 221. The heat exchanger 37 is mounted on the top of the base 32 via a rear bracket 371. A cooling fan 38 is also provided on one side of the rear bracket 371. A wastewater box lower cover 33 is movably provided at one end of the base 32, and a wastewater box upper cover 331 is provided on the top of the wastewater box lower cover 33.

[0056] The compressor 36, heat exchanger 37, condenser 221, and closed-loop pipeline 361 optimize heat transfer efficiency. The split wastewater box lower cover 33 and wastewater box upper cover 331 facilitate cleaning. The cooling fan 38 actively dissipates heat from the heat exchanger 37. The rear bracket 371 centrally fixes the core components and improves shock resistance and stability.

[0057] After the compressor 36 pressurizes the refrigerant, it is injected into the condenser 221 through the liquid-cooled delivery pipe 362. The refrigerant, after absorbing heat and vaporizing, returns to the heat exchanger 37 and is forced to liquefy by the cooling fan 38, thus completing the cycle. The wastewater box cover 331 is mesh-like, and after filtering the wastewater, the wastewater enters the interior of the wastewater box cover 33. The wastewater box cover 33 and the base 32 are connected by a movable snap-fit, making disassembly and cleaning more convenient.

[0058] like Figure 10As shown, in some embodiments, the housing 34 includes two opposing base covers 341. A rear cover 342 and a front shell bracket 343 are respectively provided between the two ends of the two base covers 341. A display screen 344 and a control module 345 are provided on one side of the front shell bracket 343, and a panel 346 is provided on the other side. A front bracket 321 is also provided on the top of the base 32. The tops of the front bracket 321 and the rear bracket 341 are fixedly connected to the bottom of the middle frame 35. The top of the rear cover 342 extends into the interior of one side of the main body upper shell 21.

[0059] The front bracket 321 and the rear bracket 371 support the middle frame 35 to form a load-bearing skeleton, improving the overall structural strength. The front shell integrates the control panel 346 and the display screen 344. The display screen 344 is a touch screen, which centralizes human-computer interaction. The panel 346 is made of transparent material, so it will not affect the display and touch operation of the display screen 344. The rear cover 342 extends and is embedded in the upper shell 21 of the main body, simplifying the appearance gaps. The interior of the rear cover 342 is hollowed out for heat dissipation.

[0060] The base cover 341, the front shell bracket 343, and the rear cover 342 constitute the housing 34, which is fixed on the top of the base 32. The control module 345 receives instructions and regulates the operation of the machine through the panel 346.

[0061] like Figure 3 , Figure 5 and Figure 10 As shown, in some embodiments, one end of the material cylinder 1 is provided with a material cylinder cover 12, and the other end is provided with a discharge handle 13. The top of the material cylinder 1 is provided with a feed cover 14. A sensing column 121 is provided on one side of the material cylinder cover 12. A face cover 25 is provided on one side of the main body upper shell 21. An infrared probe 251 corresponding to the sensing column 121 is provided on the face cover 25. A material cylinder sealing ring 26 is also provided on one side of the face cover 25. The end of the condenser 221 away from the sealing bearing 2211 passes through the material cylinder sealing ring 26 and is fixed to the face cover 25. After the material cylinder cover 12 is installed in place with the material cylinder 1, it presses the material cylinder sealing ring 26.

[0062] When assembling the material cylinder 1, the material cylinder 1 slides inside the track 241 via the bracket, achieving smooth movement. The positioning channel 271 on one side of the locking buckle 27 aligns with the positioning pin 15, causing the locking buckle 27 to lift one end of the locking handle outer shell 291 and the locking handle inner shell 29. When the material cylinder 1 moves to the working position and completely covers the agitator 22, the positioning pin 15 aligns with the opening of the positioning channel 271 on one side of the locking buckle 27. The user then lowers the end of the locking handle outer shell 291 and the locking handle inner shell 29 away from the locking buckle 27, causing the locking buckle 27 to rotate. During the rotation of the locking buckle 27, the positioning pin 15... Positioning channel 271 swallows positioning pin 15, and at the same time, the locking handle outer shell 291 and the locking handle inner shell 29 are flipped from their original tilted state to a state that is flush with the support arm 24. When positioning pin 15 is locked, the sensing point on one side of the barrel cover 12 contacts infrared probe 251. Infrared probe 251 triggers feedback that the barrel 1 has been positioned to the working position and controls the module 345. At the same time, barrel cover 12 presses the barrel sealing ring 26 to maintain the sealing of the inside of barrel 1. After assembly, the feed cover 14 can be opened to pour the raw material into the inside of barrel 1 and the operation can begin.

[0063] like Figure 2-5 As shown, in some embodiments, the support bracket 11 is in the shape of a "straight line", and positioning pins 15 are provided on both sides of the material cylinder 1. A latch 27 is movably provided on one side of the support arm 24. A positioning channel 271 is provided on one side of the latch 27. A notch 242 for connecting the positioning channel 271 and the positioning pin 15 is provided at one end of the track 241. The latches 27 on the two support arms 24 rotate synchronously through the rotating shaft 28.

[0064] The sliding engagement of the track 241 with the positioning pin 15 and the support bracket 11 ensures precise guidance of the material cylinder 1. The large contact area between the "I-shaped" support bracket 11 and the track 241 ensures good stability of the material cylinder 1 during and after assembly, even when the bottom is suspended. The overall force is more even, making assembly easier. The double locking buckle 27 further ensures the assembly stability of the material cylinder 1 and makes the force of the material cylinder 1 pressing the sealing ring 26 more even, further improving the sealing performance. The double locking buckle 27 rotates synchronously through the rotating shaft 28, allowing the user to operate the locking handle shell 291 on one side of the main body upper shell 21.

[0065] like Figure 2-5 As shown, in some embodiments, the side of the latch 27 away from the positioning channel 271 is engaged with the latch handle inner shell 29 by a snap fastener 272, and a latch handle outer shell 291 is provided on one side of the latch handle inner shell 29. A power module 212 is also provided inside the main body upper shell 21.

[0066] The inner shell 29 and outer shell 291 of the latch handle are used to drive the latch 27 to rotate. At the same time, after the latch 27 is stopped by the positioning pin 15, the outer shell 291 and inner shell 29 of the latch handle are flush with the support arm 24, which improves the overall appearance of the product and enhances the grip comfort and durability.

[0067] The built-in power module 212 shortens the cable path and reduces the risk of interference. The power module 212 is fixed inside the main body shell 21 and directly supplies power to the drive mechanism 23 and electrical components such as the control module 345, display screen 344, compressor 36, fan, and infrared sensor 251.

[0068] like Figure 11 As shown, in some embodiments, the discharge handle 13 includes a support 131 fixedly disposed at one end of the material cylinder 1 and a discharge trough 132 movably engaged with the outside of the support 131. The discharge trough 132 is perpendicularly opposite to the wastewater box cover 331. A handle 133 is rotatably disposed inside the support 131. A connecting rod 134 is hinged to the bottom end of the handle 133. A discharge trough bracket 135 is hinged to the bottom of the connecting rod 134. A discharge cover 136 is movably disposed at the bottom of the discharge trough bracket 135. A sealing ring 137 is sleeved on one side of the discharge cover 136. A discharge port 16 that fits against the sealing ring 137 is provided on one side of the material cylinder 1.

[0069] The sealing ring 137 ensures the sealing of the discharge port 16 and prevents leakage. The bottom inner cavity of the discharge trough 132 is circular, resulting in more uniform discharge.

[0070] When discharging, place the container on the wastewater box cover 331 and align it with the discharge chute 132. Pull down the handle 133. The handle 133 flips and lifts the connecting rod 134. The connecting rod 134 lifts the discharge chute bracket 135. The discharge chute bracket 135 drives the discharge cover 136 to rise. The discharge cover 136 drives the sealing ring 137 to disengage from the discharge port 16, and then the material can be discharged.

[0071] During use, the user pushes the support brackets 11 on both sides of the material cylinder 1 to slide along the transverse track 241 inside the support arm 24 of the main body upper shell 21 to position it in the working position. After it is in place, the user presses down the locking buckle 27 to make it rotate. The positioning channel 271 of the locking buckle 27 swallows the positioning pin 15 on the support arm 24 to lock the material cylinder 1. At this time, the sensing post 121 of the material cylinder cover 12 triggers the infrared probe 251 to confirm the positioning and presses the material cylinder sealing ring 26 to ensure the seal. The bottom fixing bracket 4 of the material cylinder 1 moves and embeds into the support groove 351 at the top of the cooling component 3. Its internal reinforcing ribs 353 are inserted into the bracket to form a three-dimensional support frame, which disperses and transmits the user's operation, such as pressing down the handle when discharging or the pulling force of the handling, to the box 34.

[0072] The drive motor 231 drives the three-bladed propeller 222 to rotate and stir the material in the barrel 1 through the output shaft 232. The sealed bearing 2211 prevents the material from entering the condenser 221. The flat key 233 and keyway 234 ensure reliable power transmission and prevent slippage. The compressor 36 pressurizes the refrigerant and injects it into the condenser 221 through the liquid-cooled delivery pipe 362 to absorb heat. The vaporized refrigerant flows back to the heat exchanger 37 in the box 34 and is forced to liquefy by the cooling fan 38 to complete the cycle. The condensate is collected by the water receiving pan 31 below the barrel 1 for easy disassembly and cleaning. When discharging, press down the handle 133 to lift the discharge cover 136 with the sealing ring 137 to open the discharge port 16. The snow melt falls into the container through the discharge trough 132. The wastewater is filtered through the mesh wastewater box cover 331 and then enters the detachable wastewater box cover 33.

[0073] In summary, the structure of double-sided support arms 24, track 241, and locking buckle 27 enables the sliding positioning and precise locking of the material cylinder 1, improving assembly accuracy and operational stability. The bottom fixed bracket 4 of the material cylinder 1 is embedded in the support groove 351 of the refrigeration component 3 to form a three-dimensional frame, dispersing and transmitting the discharge pressure and handling pull force to the box 34, preventing component deformation, protecting the connecting structure of the material cylinder 1, and preventing deformation under stress. The spring-loaded water tray 31 with its quick-release design simplifies the cleaning process. The three-bladed propeller 222 is directly connected to the condenser 221 to improve the uniformity of mixing. Combined with the sealed bearing 2211 and the flat key 233 for transmission, it prevents sticking and slippage, ensuring a fine texture of melted snow, meeting user needs, and has broad application prospects.

[0074] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A snow melting machine, characterized in that, include: The material cylinder (1) has support brackets (11) on both sides; The agitator assembly (2) includes a main body shell (21), on one side of which is provided an agitator (22) extending into the material barrel (1) and a drive mechanism (23) for driving the agitator (22); The upper shell (21) of the main body is provided with support arms (24) on both sides, which are respectively corresponding to two support brackets (11). A transverse track (241) is formed inside the support arm (24). The support bracket (11) can slide along the track (241) to position the material cylinder (1) to the working position. The refrigeration assembly (3) has a water receiving tray (31) detachably connected to its top, located below the material cylinder (1), and the main body upper shell (21) is fixedly installed on the top of the refrigeration assembly (3); A fixed bracket (4) is disposed at the bottom of one end of the barrel (1), the bottom of the fixed bracket (4) being in contact with the top of the refrigeration assembly (3), and is configured to transmit the operating load to the refrigeration assembly (3).

2. A snow melting machine according to claim 1, characterized in that: The stirrer (22) includes a condenser (221) and a three-bladed propeller (222) sleeved outside the condenser (221). The drive mechanism (23) includes a drive motor (231) fixedly installed inside the main body upper shell (21) via a module bracket (211). One end of the output shaft (232) of the drive motor (231) passes through the condenser (221) and is connected to one end of the three-bladed propeller (222) via a flat key (233) and a keyway (234). One end of the condenser (221) is movably sleeved with the output shaft (232) via a sealed bearing (2211).

3. A snow melting machine according to claim 1, characterized in that: The refrigeration component (3) includes a base (32) and a housing (34) disposed on the top of the base (32). A middle frame (35) is fixedly embedded on the top of the housing (34). One end of the middle frame (35) is provided with a support groove (351) and a slot (352) located on one side of the support groove (351). The water receiving tray (31) is movably disposed inside the middle frame (35) and one end of the water receiving tray (31) is provided with a spring buckle (311) that engages with the slot (352).

4. A snow melting machine according to claim 1, characterized in that: The bottom end of the fixed bracket (4) is movably sleeved inside the support groove (351), and a reinforcing rib (353) is provided inside the support groove (351) with one end extending into the fixed bracket (4).

5. A snow melting machine according to claim 3, characterized in that: The top of the base (32) is provided with a compressor (36) and a heat exchanger (37) connected to the compressor (36) via a pipe (361). The compressor (36) is provided with a liquid cooling delivery pipe (362) that passes through the middle frame (35), the upper shell (21) of the main body and extends into the condenser (221). The heat exchanger (37) is installed on the top of the base (32) via a rear bracket (371). A cooling fan (38) is also provided on one side of the rear bracket (371). A wastewater box lower cover (33) is movably provided at one end of the base (32), and a wastewater box upper cover (331) is provided on the top of the wastewater box lower cover (33).

6. A snow melting machine according to claim 3, characterized in that: The housing (34) includes two opposing base covers (341). A rear cover (342) and a front shell bracket (343) are respectively provided between the two ends of the two base covers (341). A display screen (344) and a control module (345) are provided on one side of the front shell bracket (343), and a panel (346) is provided on the other side. A front bracket (321) is also provided on the top of the base (32). The tops of the front bracket (321) and the rear bracket (371) are fixedly connected to the bottom of the middle frame (35). The top of the rear cover (342) extends into the interior of one side of the main body upper shell (21).

7. A snow melting machine according to claim 2, characterized in that: One end of the material cylinder (1) is provided with a material cylinder cover (12), and the other end is provided with a discharge handle (13). The top of the material cylinder (1) is provided with a feed cover (14). A sensing column (121) is provided on one side of the material cylinder cover (12). A face cover (25) is provided on one side of the main body upper shell (21). An infrared probe (251) corresponding to the sensing column (121) is provided on the face cover (25). A material cylinder sealing ring (26) is also provided on one side of the face cover (25). The end of the condenser (221) away from the sealing bearing (2211) passes through the material cylinder sealing ring (26) and is fixed to the face cover (25). After the material cylinder cover (12) is installed in place with the material cylinder (1), it presses the material cylinder sealing ring (26).

8. A snow melting machine according to claim 1, characterized in that: The support bracket (11) is in the shape of a straight line. Positioning pins (15) are provided on both sides of the material cylinder (1). A latch (27) is movably provided on one side of the support arm (24). A positioning channel (271) is provided on one side of the latch (27). A notch (242) for connecting the positioning channel (271) and the positioning pin (15) is provided at one end of the track (241). The latches (27) on the two support arms (24) rotate synchronously through the rotating shaft (28).

9. A snow melting machine according to claim 8, characterized in that: The latch (27) is engaged with the latch handle inner shell (29) on the side away from the positioning channel (271) by a buckle (272). The latch handle outer shell (291) is provided on one side of the latch handle inner shell (29). The power module (212) is also provided inside the main body upper shell (21).

10. A snow melting machine according to claim 7, characterized in that: The discharge handle (13) includes a support (131) fixedly installed at one end of the material cylinder (1) and a discharge trough (132) movably snapped onto the outside of the support (131). The discharge trough (132) is perpendicular to the wastewater box cover (331). A handle (133) is rotatably installed inside the support (131). A connecting rod (134) is hinged to the bottom of the handle (133). A discharge trough support bracket (135) is hinged to the bottom of the connecting rod (134). A discharge cover (136) is movably installed at the bottom of the discharge trough support bracket (135). A sealing ring (137) is fitted on one side of the discharge cover (136). A discharge port (16) that fits against the sealing ring (137) is provided on one side of the material cylinder (1).