Snow melter with stable structure
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-23
- Publication Date
- 2026-08-11
AI Technical Summary
[0005]鉴于上述现有技术存在的技术缺陷和不足,不实用新型的目的在于提供一种结构稳定的雪融机,以解决现有技术存在的结构稳定性差、产品重心不稳定而影响用户的使用、产品长期使用时结构位移而导致的产品损坏等技术问题
[0025] A control board is provided to better control the operation of the snow melting machine, and a control box is further installed inside the fixed cavity. Specifically, the control box is fixedly connected to both the partition frame and the fixed bracket to better ensure the installation and fixation of the control box and control board. The control box also provides better protection for the control board.
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Figure CN224611762U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of snow melting equipment technology, and in particular to a snow melting machine suitable for home use and for making snow melting products. Background Technology
[0002] Existing snow melting machines typically include a base and a material cylinder mounted on the base. The base contains a power unit and a refrigeration unit. Inside the material cylinder is an evaporator and a stirring paddle fitted outside the evaporator. The beverage is placed in the material cylinder, cooled by the evaporator, and stirred by the stirring paddle to achieve uniform processing.
[0003] Existing slush machines typically process liquid beverages by rotating them in a feeding cylinder, and then discharge them from the cylinder's outlet. To ensure smooth discharge, the feeding cylinder is usually positioned above the machine base, placing it at a high elevation. When the cylinder is full, this shifts the machine's center of gravity upwards, leading to instability. Current solutions require additional counterweights at the bottom to maintain stability, but this only increases the machine's load and makes it inconvenient for users to move the machine.
[0004] Furthermore, due to the significant weight of the material cylinder area, existing product designs employ a separate support structure for the material cylinder. However, insufficient gravity causes stress deviations in the support structure of the snow melting machine. This leads to gradual displacement deviations in the material cylinder area and other areas of the snow melting machine, affecting its structural stability and making it prone to various problems due to structural displacement between different parts. For example, displacement between the power module and the material cylinder due to different installation references can result in poor power module stability, increased vibration, and noise. In the refrigeration module, fluid-connected components such as the compressor, condenser, and evaporator may even face the risk of rupture due to displacement deviations. Utility Model Content
[0005] In view of the technical defects and deficiencies of the existing technology, the purpose of this utility model is to provide a snow melting machine with a stable structure to solve the technical problems of poor structural stability, unstable product center of gravity affecting user use, and product damage caused by structural displacement during long-term use.
[0006] To solve the above-mentioned technical problems, this utility model provides a snow melting machine with a stable structure, characterized by: a base; a support frame including a front support located on the front side of the base and a rear support located on the rear side of the base; a partition frame located at the top of the front and rear supports, the partition frame extending laterally and dividing the snow melting machine vertically into a lower mounting section and an upper operating section, the partition frame having through holes for fluid and electrical connection between the mounting section and the operating section; a fixed support frame located on the operating section and fixed to the rear section of the partition frame, the fixed support frame and the partition frame together forming a fixed cavity; and a manufacturing process. The refrigeration module includes a compressor, a condenser, and an evaporator in fluid communication. The compressor and condenser are located within the mounting section, and the evaporator is located in the operating section and in front of the fixed bracket. The processing module includes a material cylinder located in the operating section and an agitator located within the material cylinder. The material cylinder is detachably mounted on the partition frame and its rear end is sealed to the fixed bracket. The agitator is fitted onto the outside of the evaporator. The power module includes a motor located within the fixed cavity and a drive shaft passing through the evaporator. The motor drives the agitator through the drive shaft.
[0007] The slush machine described in this application comprises a base, a support, and a partition frame to form its installation framework. Specifically, the partition frame is integrally designed, dividing the slush machine into an installation section and an operating section. Components such as the press and condenser are located within the installation section, while externally operated components such as the evaporator, material tank, and stirring paddle are located in the operating section. Because the partition frame is integrally designed, other components are assembled based on its installation position, ensuring stable and reliable structural positioning of all components and effectively preventing product displacement deviation. The integrally designed partition frame itself has better strength; even if the material tank at the top is filled with more beverages, it will not affect the partition frame. Simultaneously, the base, support, and partition frame form a robust installation structure, providing better support for the material tank and preventing product swaying due to the higher center of gravity when the tank is filled with beverages. Furthermore, the base, bracket, and partition frame together form a stable mounting part, and the compressor, condenser, and other components are placed inside the mounting part. Without additional fittings, this increases the weight of the snow melting machine at the bottom, preventing the overall center of gravity of the snow melting machine from shifting upwards, thereby further improving the stability of the snow melting machine.
[0008] As an optional solution, the snow melting machine also includes a left side plate, a right side plate, and a front side plate, which are respectively connected to the base and the partition frame to cover the mounting part.
[0009] Based on the installation structure of the base, bracket, and partition, a left side plate, a right side plate, and a front side plate are further provided. In particular, the left side plate, right side plate, and front side plate are directly fixedly connected to the base and partition, and are not related to the bracket. The left side plate, right side plate, and front side plate, together with the base and partition, form the appearance standard of the snow melting machine. This avoids the left side plate, right side plate, and front side plate from being easily deformed or displaced by the force of the bracket when they are associated with the bracket, thus better ensuring the shape stability of the snow melting machine.
[0010] As an optional solution, the front support includes a support foot fixedly connected to the base, a vertically extending support column, and a top frame fixedly connected to the partition frame. Two support feet and two support columns are provided on each side of the snow melting machine, and the top frame is connected to the support columns on both sides.
[0011] The front support located at the front can mainly support the material cylinder. In order to ensure the stability of the snow melting machine, corresponding accessories can be set below the material cylinder to ensure the stability of the snow melting machine's center of gravity. The front support is composed of support feet, support columns, and a top frame. The support feet and support columns are set as two and located on both sides respectively. The top frame connects the support columns on both sides. In this way, the front support will not occupy too much space while ensuring the stability and reliability of the support. This allows more accessories to be set in the mounting part. For example, the condenser of the evaporator can be set in the mounting part and located below the material cylinder, thereby balancing the center of gravity of the snow melting machine.
[0012] As an optional solution, the front bracket is formed by integrally bending the bracket feet, support columns, and top frame.
[0013] The front bracket is integrally bent, which ensures the strength of the front bracket itself and can also effectively reduce the cost of the front bracket. At the same time, the dimensional consistency between the various mating positions of the integrally processed front bracket is better, which can ensure that the installation of the front bracket with the base and the partition is more secure.
[0014] As an optional solution, the rear support includes an upper frame fixedly connected to the partition frame, a lower frame fixedly connected to the base, and side frames on both sides of the upper frame and the lower frame respectively. The upper frame, the lower frame, and the side frames form an opening-shaped mounting platform, and the condenser is disposed in the mounting platform.
[0015] For the front and rear supports, one approach is to design both supports with identical structures, which improves versatility and facilitates production. However, since the snow melting machine has different fits within the mounting section, preferably, the rear support is designed as a hollow, open-shaped structure, including an upper frame, a lower frame, and side frames on both sides. Furthermore, the condenser is fixed within the mounting platform formed by the rear support. On one hand, the hollow frame structure of the rear support provides better support and ensures its strength; on the other hand, the rear support can also utilize the strength of the condenser itself to further enhance the support effect.
[0016] As an optional solution, the condenser includes a condenser body and a fan for dissipating heat from the condenser, the fan being located between the upper and lower frames and between the condenser body and the compressor.
[0017] To improve heat dissipation for the condenser, a fan is provided for cooling the condenser. Preferably, the fan is positioned between the upper and lower frames and fixed within the mounting platform of the rear bracket. The rear bracket enhances the fan's stability. Furthermore, positioning the fan between the condenser body and the compressor improves both heat dissipation for the condenser body and compressor.
[0018] As an optional solution, the top of the separator is provided with a receiving cavity to accommodate the material cylinder, and the bottom of the material cylinder extends into the receiving cavity.
[0019] To better ensure the secure installation of the material cylinder, a receiving cavity is preferably provided at the top of the separator frame, with the bottom of the material cylinder extending into the receiving cavity for installation and positioning. This ensures a more stable and reliable installation of the material cylinder on the separator frame. Furthermore, during operation, as the food inside the material cylinder is continuously cooled, condensation will form on the outside of the cylinder. The receiving cavity ensures that the condensation is collected inside and does not flow out, keeping the snow melting machine clean and tidy.
[0020] As an optional solution, the bottom of the receiving cavity is provided with a wastewater hole, and the mounting part is provided with a wastewater pipe that connects the wastewater hole and the outside.
[0021] Wastewater holes and corresponding wastewater pipes are provided at the bottom of the receiving cavity. On the one hand, the condensate formed outside the material cylinder can be discharged more thoroughly. On the other hand, since the evaporator is usually fixed above the receiving cavity, the cleaning water generated when cleaning the evaporator is collected by the receiving cavity and can be conveniently discharged from the wastewater holes and wastewater pipes, making it more convenient to use.
[0022] As an optional solution, the snow melting machine also includes a rear side plate, which extends upward from the base and respectively covers the mounting part and the fixing cavity. The rear side plate is provided with heat dissipation holes corresponding to the mounting part and the fixing cavity.
[0023] The fixing bracket is typically located at the rear end of the partition frame. Preferably, the rear end of the fixing bracket is aligned with the base and the partition frame. This arrangement of the rear side plate for the mounting section and the fixing cavity ensures a consistent overall appearance of the snow melting machine and enhances the product's visual appeal. Furthermore, the rear side plate is provided with heat dissipation holes for the mounting section and the fixing cavity to facilitate heat dissipation for the compressor and condenser located in the mounting section, as well as for the motor located in the fixing cavity.
[0024] As an optional solution, the snow melting machine is fixedly connected to the control box of the partition frame and the fixed bracket respectively. The control box is equipped with a control board, which is electrically connected to the refrigeration module and the power module respectively.
[0025] A control board is provided to better control the operation of the snow melting machine, and a control box is further installed inside the fixed cavity. Specifically, the control box is fixedly connected to both the partition frame and the fixed bracket to better ensure the installation and fixation of the control box and control board. The control box also provides better protection for the control board. Attached Figure Description
[0026] Figure 1 This is an exploded view of the overall structure of the snow melting machine described in this utility model.
[0027] Figure 2 This is a schematic diagram showing the second state of the overall structure of the snow melting machine described in this utility model.
[0028] Figure 3 This is a partial sectional view of the snow melting machine described in this utility model.
[0029] Figure 4 This is a schematic diagram of the snow melting machine partition frame structure described in this utility model.
[0030] Figure 5 This is a cross-sectional view of the snow melting machine partition frame structure described in this utility model.
[0031] Figure 6 This is a schematic diagram of the front support structure of the snow melting machine described in this utility model.
[0032] Figure 7 This is a schematic diagram of the rear support structure of the snow melting machine described in this utility model.
[0033] Figure 8 This is a schematic diagram of the overall assembly method of the snow melting machine described in this utility model.
[0034] Figure 9 This is a schematic diagram of the second assembly method of the snow melting machine described in this utility model.
[0035] Figure 10 This is a cross-sectional view of the overall structure of the snow melting machine described in this utility model.
[0036] The labels in the diagram correspond to the following names:
[0037] 1. Base; 11. Front panel; 12. Right side panel; 13. Left side panel; 14. Rear panel; 141. Upper heat dissipation hole; 142. Lower heat dissipation hole; 2. Divider frame; 21. Rear limiting platform; 211. Through hole; 22. Right limiting platform; 23. Left limiting platform; 24. Front limiting platform; 25. Receiving cavity; 251. Wastewater hole; 252. Wastewater pipe; 253. Lower water outlet; 3. Fixing bracket; 30. Fixing cavity; 31. Front fixing plate; 32. Upper fixing plate; 41. Condenser; 411. Condenser body; 412. 42. Fan; 43. Compressor; 5. Evaporator; 6. Processing module; 71. Material cylinder; 52. Cylinder cover; 53. Agitator; 6. Motor; 61. Gearbox; 62. Drive shaft; 71. Front bracket; 711. Right bracket foot; 712. Left bracket foot; 713. Right support column; 714. Left support column; 715. Top frame; 72. Rear bracket; 721. Lower frame; 722. Right side frame; 723. Left side frame; 724. Upper frame; 725. Fixing ring; 726. Fixing platform; 81. Control box; 82. Control board. Detailed Implementation
[0038] To more clearly illustrate the overall concept of this application, a detailed description is provided below with reference to the accompanying drawings. It is understood that the specific embodiments described herein are merely illustrative of the relevant application and not intended to limit the application. Furthermore, it should be noted that, for ease of description, only the parts relevant to the application are shown in the accompanying drawings.
[0039] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present application will now be described in detail with reference to the accompanying drawings and embodiments. The terminology used in this application is for the purpose of describing particular embodiments only and is not intended to be limiting of the application. The singular forms “a,” “the,” and “the” used in this application and the appended claims are also intended to include the plural forms unless the context clearly indicates otherwise. It should also be understood that the term “and / or” as used herein refers to and includes any or all possible combinations of one or more associated listed items.
[0040] A typical slush machine usually includes a base and a container mounted on the base. The machine typically includes a compressor, condenser, and evaporator connected by pipes, as well as a stirring paddle and a drive motor to drive the paddle. The evaporator and the stirring paddle are usually located inside the container. The compressor forces refrigerant to circulate within the condenser and evaporator, cooling the food placed in the container through the evaporator. The stirring paddle, driven by the drive motor, rotates and moves the beverage along with it, ensuring even cooling. The user places the beverage into the container, where it is processed by the evaporator and the stirring paddle, and then discharged through a discharge port on the front side of the container. This discharge port is usually located at the bottom of the container, ensuring complete drainage of the beverage without residue, and also allowing for thorough removal of cleaning water during container cleaning.
[0041] The stable snow melting machine described in this utility model, such as Figures 1-10 As shown, the snow melting machine includes a base 1, a support, a partition frame 2, and a fixed support 3. The support includes a front support 71 and a rear support 72. The partition frame 2 extends laterally to divide the snow melting machine into a lower mounting section and an upper operating section. The bottoms of the front support 71 and the rear support 72 are fixedly connected to the base 1, and the tops are fixedly connected to the partition frame 2, so that the base 1, the support, and the partition frame 2 together form the mounting section. The partition frame 2 extends integrally from front to back, forming the main reference for mounting the snow melting machine. All components, whether mounted in the lower mounting section or the upper operating section, can rely on the mounting structure of the partition frame, thereby ensuring the stability of the entire snow melting machine's mounting structure. The fixed support 3 is located in the operating section and fixed to the upper rear side of the partition frame 2, and the fixed support 3 and the partition frame 2 together form a fixed cavity 30.
[0042] Furthermore, the snow melting machine also includes a refrigeration module, a processing module 5, and a power module. The refrigeration module includes a compressor 42, a condenser 41, and an evaporator 43 in fluid communication. Refrigerant flows between the compressor 42, condenser 41, and evaporator 43 to achieve cooling processing. The compressor and condenser are installed within the mounting section, while the evaporator is located in the operating section. Preferably, the rear end of the evaporator is fixed to the front side of the fixed bracket 3. The partition frame 2 also has a through hole 211 for the pipes of the refrigeration module to pass through. The processing module 5 includes a material cylinder 51, a cylinder cover 52, and a stirring paddle 53 located in the operating section. The stirring paddle 53 is sleeved on the outside of the evaporator 43, and the material cylinder 51 is further sleeved on the outside of the stirring paddle 53 and the evaporator 43. The rear end of the material cylinder 51 is sealed to the fixed bracket 3, forming a processing chamber for containing beverages within the material cylinder 51. The evaporator 43 cools the beverages within the processing chamber, and the stirring paddle 53 rotates under the drive of the power module, causing the ingredients to be processed evenly. To facilitate the user's material addition, an opening is provided at the top of the material cylinder 51. Preferably, a cylinder cover 52 is provided at the opening to cover and seal the material cylinder 51.
[0043] like Figures 1-3 As shown, the fixed bracket 3 includes a front fixed plate 31 and an upper fixed plate 32. The evaporator 43 is fixed to the upper front fixed plate 31. The rear end of the material cylinder 51 is sealed to the front fixed plate 31 and sleeved on the outside of the evaporator 43. The power module includes a motor 6 disposed in the fixed cavity 30. In a preferred embodiment, the power module also includes a reduction gearbox 61 and a drive shaft 62. The reduction gearbox 61 is poweredly connected to the motor 6, and the drive shaft 62 is located at the output end of the reduction gearbox 61, and the drive shaft 62 passes through the evaporator 43 and is poweredly connected to the stirring paddle 53. Of course, the power module may also only include a motor, and the stirring paddle may be directly driven by the motor shaft of the motor.
[0044] The slush machine described in this embodiment relies on the base, support, and partition frame to form the assembly reference for the slush machine. Specifically, the partition frame extends laterally forward and backward, dividing the slush machine into an installation section and an operating section. Processing components such as the material cylinder are located in the operating section on the partition frame, while the power unit is directly assembled to the rear of the material cylinder. Since the material cylinder and power unit are both disassembled on the integrally extended partition frame, the partition frame ensures that the material cylinder and power unit will not shift relative to each other, thus guaranteeing the structural stability of the food processing machine. The compressor and condenser of the refrigeration module are reliably assembled in the installation section, unaffected by external structures or user influence. The compressor and condenser also help balance the center of gravity of the slush machine, ensuring stable and reliable operation.
[0045] As a preferred implementation method, such as Figures 1-3 As shown, the snow melting machine also includes a front side plate 11, a right side plate 12, and a left side plate 13. The front side plate 11, right side plate 12, and left side plate 13 are fixedly connected to the base 1 and the partition frame 2, respectively, to shield and enclose the mounting part of the snow melting machine. This prevents the user from directly contacting the functional components located in the mounting part, such as the evaporator and condenser, thus preventing potential risks. The front side plate 11, right side plate 12, and left side plate 13 are directly fixedly connected to the base 1 and the partition frame 2 and are not interconnected with the support frame, preventing the front side plate 11, right side plate 12, and left side plate 13 from being stretched and deformed by the support frame under stress. Furthermore, the front side plate 11, right side plate 12, and left side plate 13 can also provide some support. It is understood that the snow melting machine can also be equipped with an integrated side plate, simultaneously covering the front, left, and right sides of the snow melting machine. Alternatively, the front panel, right side panel, and left side panel are fixedly connected to the bracket and the divider, respectively, and are fitted between the bottom end and the base to cover the base, but are not directly fixedly connected to the base.
[0046] In a preferred embodiment, the snow melting machine further includes a rear side plate 14, which extends upward from the base 1 and respectively covers the mounting part and the fixing cavity 30. Preferably, the rear side plate 14 is also provided with a lower heat dissipation hole 142 and an upper heat dissipation hole 141 corresponding to the mounting part and the fixing cavity 30. The fixing bracket 3 fixed to the rear side of the partition frame 2 is preferably flush with the rear side of the mounting part. Thus, the integrated rear side plate can simultaneously cover the mounting part and the fixing cavity, improving the overall appearance of the snow melting machine. The lower and upper heat dissipation holes on the rear side plate 14 can simultaneously dissipate heat from the refrigeration module and the power module. Furthermore, since both the lower and upper heat dissipation holes face the rear side of the snow melting machine, the exhausted hot air will not be directly directed towards the user, improving the user experience.
[0047] As a preferred embodiment, such as Figures 1-3 As shown, the snow melting machine also includes a control box 81 and a control board 82. Preferably, the control box 81 is disposed within the fixed cavity 30, and the control box 81 is fixedly connected to the partition frame 2 and the fixed bracket 3 respectively. The control board 82 is disposed within the control box 81 to better fix and limit the control board 82, and also to better protect the control board 82. The control board 82 is electrically connected to the refrigeration module and the power module respectively, so that the refrigeration module and the power module can complete the processing according to the preset processing conditions.
[0048] As a preferred embodiment, such as Figures 1-5As shown, the separator 2 includes a rear limiting platform 21, a right limiting platform 22, a left limiting platform 23, and a front limiting platform 24. The front fixing plate 31 of the fixed bracket 3 is fixedly connected to the rear limiting platform 21. The rear limiting platform 21 has a through hole 211 for communicating with the compressor 42, the condenser 41, and the evaporator 43; and the connecting wires for electrically connecting the control board to the compressor 42 and the condenser 41 also pass through the through hole 211. The rear limiting platform 21, the right limiting platform 22, the left limiting platform 23, and the front limiting platform 24 together form a receiving cavity 25. The material cylinder 51 is detachably installed in the receiving cavity 25, with at least a portion of the bottom of the material cylinder 51 extending into the receiving cavity 25. Since the material cylinder 51 is relatively heavy when filled with processed beverages, assembling it with the receiving cavity 25 on all four sides provides better support for the material cylinder and prevents it from shaking during operation. Figures 1-5 , Figure 10 As shown, the front bottom of the receiving cavity 25 is also provided with a wastewater hole 251, and the mounting part is also provided with a wastewater pipe 252. The base 1 is provided with a lower water outlet 253. The wastewater hole 251 and the lower water outlet 253 are connected through the wastewater pipe 252. When the snow melting machine is working, condensate will be generated on the outside of the material cylinder 51. After the condensate collects in the receiving cavity 25, it can be discharged to the outside of the snow melting machine through the wastewater hole 251, ensuring that the entire snow melting machine is cleaner and more hygienic. At the same time, when cleaning the snow melting machine, since the evaporator is fixedly connected to the fixed bracket and cannot be disassembled for cleaning, a lot of wastewater will be generated when cleaning the evaporator. The receiving cavity can be used to collect and discharge the wastewater more thoroughly. Of course, it is understandable that the volume of the receiving cavity itself can be used without setting the wastewater hole, and the generated condensate and cleaning wastewater can be directly collected in the receiving cavity and then treated. Alternatively, the snow melting machine may also be equipped with a removable wastewater box inside the receiving cavity. The wastewater box can collect condensate and cleaning wastewater, and then the wastewater box can be removed and cleaned, making it convenient to use.
[0049] As a preferred embodiment, such as Figure 1 , Figures 6-9As shown, the front support 71 includes support legs, support columns, and a top frame 715. The support legs are fixedly connected to the base 1, and the top frame 715 is fixedly connected to the partition frame 2. Preferably, the support legs include a right support leg 711 and a left support leg 712, which are formed by lateral bending and bending inwards towards each other. The support columns include a right support column 713 connecting the right support leg 711 and the top frame 715, and a left support column 714 connecting the left support leg 712 and the top frame 715. Preferably, the right support leg 711, right support column 713, top frame 715, left support column 714, and left support leg 712 are integrally formed by bending metal parts. This ensures the strength of the front support 71 itself, facilitates its manufacturing, improves its dimensional accuracy, and ultimately guarantees a secure fixation between the front support 71 and the base and partition frame. It is understood that the front support 71 can also be assembled from multiple components; alternatively, the front support may consist of a bottom support leg, a support column, and a top support leg integrally formed, and the front support may include two symmetrically arranged components. Preferably, the front and rear supports of the bracket are configured with the same structure to improve the bracket's versatility; however, depending on different needs, the front and rear supports can also be configured with different structures. Since the material cylinder is mainly located on the front side of the snow melting machine, the center of gravity of the area where the front of the mounting part is located is relatively high. The one-piece molded front bracket can ensure that there is more installation space on the front side of the mounting part so that the compressor can be placed on the front side of the mounting part, thereby balancing the weight of the entire snow melting machine and ensuring that the snow melting machine is more stable and reliable during operation.
[0050] As a preferred embodiment, such as Figure 1 , Figures 6-9 As shown, the rear support 72 includes a lower frame 721, an upper frame 724, a right side frame 722, and a left side frame 723. The lower frame 721 is fixedly connected to the base 1, and the upper frame 724 is fixedly connected to the partition frame 2. The right side frame 722 and the left side frame 723 are respectively connected to the lower frame 721 and the upper frame 724, and integrally form the rear support 72. The lower frame 721, the upper frame 724, the right side frame 722, and the left side frame 723 surround the central area to form a fixing ring 725. The central area of the fixing ring 725 forms a through-type fixing platform 726. Preferably, the condenser 41 is disposed at the fixing platform 726.
[0051] As a preferred embodiment, such as Figure 8As shown, the condenser 41 includes a condenser body 411 and a fan 412. The fan 412 is fixed within the mounting base 726, causing the mounting ring 725 to form an airflow duct structure that guides the airflow, improving the heat dissipation effect on the condenser body 411. Preferably, the fan 412 is located between the condenser body 411 and the compressor 42, so that the fan 412 can simultaneously cool both the condenser body 411 and the compressor 42, improving cooling efficiency. As an optional implementation, such as... Figure 9 As shown, the condenser 41 does not have a fan and is directly fixed to the mounting platform 726. For the condenser, the heat dissipation requirement is greater; therefore, the rear bracket is used to directly fix the condenser, which eliminates the need for a separate mounting structure while ensuring reliable installation.
[0052] The snow melting machine using the solution of this application relies on the integral extension of the partition frame to form a mounting part on the lower side and an operating part on the upper side. The operating part supports the processing module and the power module, ensuring the stability and reliability of the structure and position of the processing module and the power module, and preventing misalignment due to their separate installation positions. Furthermore, the mounting part at the bottom, formed directly by the partition frame, can also house components such as the compressor and condenser, thereby balancing the vertical weight of the snow melting machine and avoiding instability caused by an excessively high center of gravity.
[0053] In the description of this application, it should be understood that the orientation or positional relationship indicated by directional terms such as "front, back, up, down, left, right", "horizontal, vertical, horizontal" and "top, bottom" is usually based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing this application and simplifying the description. Unless otherwise stated, these directional terms do not indicate or imply that the device or element referred to must have a specific orientation or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on the scope of protection of this application; the directional terms "inner" and "outer" refer to the inner and outer contours relative to the outline of each component itself.
[0054] For ease of description, spatial relative terms such as "above," "on top of," "on the upper surface of," "above," etc., are used herein to describe the spatial positional relationship of a device or feature as shown in the figures to other devices or features. It should be understood that spatial relative terms are intended to encompass different orientations in use or operation beyond the orientation of the device as described in the figures. For example, if a device in the figures were inverted, a device described as "above" or "on top of" other devices or structures would subsequently be positioned as "below" or "under" other devices or structures, but this does not imply that the actual device is inverted. Thus, the exemplary term "above" can include both "above" and "below." The device may also be positioned in other orientations, rotated 90 degrees, or in other orientations, and the spatial relative descriptions used herein will be interpreted accordingly.
[0055] Furthermore, it should be noted that the use of terms such as "first" and "second" to define components is merely for the purpose of distinguishing the corresponding components. Unless otherwise stated, the above terms have no special definition and therefore should not be construed as limiting the scope of protection of this application.
[0056] The above description is merely a preferred embodiment of this application and an explanation of the technical principles employed. Those skilled in the art should understand that the scope of this application is not limited to technical solutions formed by specific combinations of the above-described technical features, but should also cover other technical solutions formed by arbitrary combinations of the above-described technical features or equivalent features without departing from the application's concept. For example, technical solutions formed by substituting the above features with (but not limited to) technical features with similar functions disclosed in this application will not be listed here.
Claims
1. A structurally stable snow melter characterized by: include: Base; Support: including a front support located on the front side of the base and a rear support located on the rear side of the base; Divider frame: Located at the top of the front support and the rear support, the divider frame extends laterally and divides the snow melting machine into a lower mounting part and an upper operating part. The divider frame is provided with through holes for fluid and electrical connection between the mounting part and the operating part. Fixed bracket: Located in the operating part and fixed to the rear section of the partition frame, the fixed bracket and the partition frame together form a fixed cavity; Refrigeration module: includes a compressor, a condenser and an evaporator in fluid communication, wherein the compressor and condenser are disposed within the mounting section and the evaporator is located in the operating section and in front of the fixed bracket; Processing module: includes a material cylinder located in the operating section and a stirring paddle located inside the material cylinder. The material cylinder is detachably installed on the partition frame and its rear end is sealed to the fixed bracket. The stirring paddle is sleeved on the outside of the evaporator. Power module: includes a motor disposed in the fixed cavity and a drive shaft passing through the evaporator, wherein the motor drives the stirring paddle through the drive shaft.
2. The structurally stable snow melter of claim 1, wherein: The snow melting machine also includes a left side plate, a right side plate, and a front side plate, which are respectively connected to the base and the partition frame to cover the mounting part.
3. The structurally stable snow melter of claim 1, wherein: The front support includes a support foot fixedly connected to the base, a vertically extending support column, and a top frame fixedly connected to the partition frame. Two support feet and two support columns are provided on each side of the snow melting machine, and the top frame is connected to the support columns on both sides.
4. The snow melting machine with a stable structure as described in claim 3, characterized in that: The front support is formed by bending the support legs, support columns and top frame together.
5. The snow melting machine with a stable structure as described in claim 1, characterized in that: The rear support includes an upper frame fixedly connected to the partition frame, a lower frame fixedly connected to the base, and side frames on both sides of the upper frame and the lower frame respectively. The upper frame, the lower frame, and the side frames form an orifice-shaped mounting platform, and the condenser is disposed in the mounting platform.
6. The snow melting machine with stable structure as described in claim 5, characterized in that: The condenser includes a condenser body and a fan for dissipating heat from the condenser. The fan is located between the upper and lower frames and between the condenser body and the compressor.
7. The snow melting machine with a stable structure as described in claim 1, characterized in that: The top of the separator is provided with a receiving cavity to accommodate the material cylinder, and the bottom of the material cylinder extends into the receiving cavity.
8. The snow melting machine with stable structure as described in claim 7, characterized in that: The bottom of the receiving cavity is provided with a wastewater hole, and the mounting part is provided with a wastewater pipe that connects the wastewater hole and the outside.
9. The snow melting machine with a stable structure as described in claim 1, characterized in that: The snow melting machine also includes a rear side plate, which extends upward from the base and respectively covers the mounting part and the fixing cavity. The rear side plate is provided with heat dissipation holes corresponding to the mounting part and the fixing cavity.
10. The snow melting machine with a stable structure as described in claim 1, characterized in that: The snow melting machine is fixedly connected to the control box of the partition frame and the fixed bracket. The control box is equipped with a control board, which is electrically connected to the refrigeration module and the power module.