Snow melting machine stable in transmission

By arranging the rear ends of the two processing modules relative to each other in the snow melter and utilizing axially dislocated power components and reduction units, the problems of low space utilization and large size of the snow melter are solved, achieving more efficient space utilization and cost reduction.

CN223298472UActive Publication Date: 2025-09-05HANGZHOU YULAI TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422462325.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-12
Publication Date
2025-09-05
Estimated Expiration
2034-10-12

AI Technical Summary

Technical Problem

Existing snow melters have low space utilization, complex structures, high costs and are too large, making the products inconvenient to store.

Method used

The rear ends of the two processing modules are arranged relative to each other, and the first and second power components are axially staggered to reduce space waste. The motor speed is adjusted through the reduction unit to achieve efficient driving of the stirring paddle.

Benefits of technology

The space utilization rate is improved, the overall volume of the snow melting machine is reduced, making it suitable for home environments, reducing production costs and improving user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a stable-transmission snow melting machine which comprises a machine shell and further comprises two machining modules, the two machining modules are located on the upper portion of the machine shell, the rear ends of the machining modules are oppositely arranged, each machining module comprises a stirring barrel, an evaporator and a stirring paddle, and the evaporator and the stirring paddle are arranged in the stirring barrel. The snow melting machine further comprises a first power assembly and a second power assembly which are clamped between the two machining modules and drive the two machining modules respectively, and the first power assembly and the second power assembly are arranged in a staggered mode in the axial direction of the machining modules. And the first power assembly and the second power assembly are respectively provided with a first driving shaft and a second driving shaft which penetrate through the evaporator to be in power connection with the stirring paddle. The rear ends of the two sets of processing modules are oppositely arranged and clamp the first power assembly and the second power assembly, and the first power assembly and the second power assembly are arranged in a staggered mode, so that the space occupied by the first power assembly and the second power assembly is reduced, the size of the whole snow melting machine is reduced, and use and storage are convenient.
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Description

Technical Field

[0001] The utility model relates to the technical field of snow melting machines, in particular to a snow melting machine with stable transmission. Background Art

[0002] A slush machine is a device that creates molten smoothies. As a key component of existing catering and kitchen appliances, its design and performance are directly related to the user experience and the quality of the drinks. Existing slush machines typically feature a base, with a storage chamber for the liquid beverage. The chamber houses an evaporator for cooling the beverage and a stirring paddle for stirring the beverage. A motor drives the stirring paddle within the base. The evaporator gradually cools the beverage in the chamber to its freezing point, forming an ice-water mixture. The stirring paddle continuously stirs the mixture, creating slush.

[0003] To meet increasingly diverse needs, existing snow melters typically feature multiple processing units to process a variety of cooking ingredients. Furthermore, to ensure optimal cooking performance, the stirring paddles must rotate continuously during operation to stir and tumble the ingredients, preventing uneven cooling and partial freezing. In existing snow melter designs, each processing unit is independent of the others. Specifically, each unit is equipped with a separate storage chamber, evaporator, and stirring paddle. Each stirring paddle is driven by a separate drive motor. Existing solutions are simply a combination of processing units. While this ensures that each unit can function properly, it increases the number of components, bulk, and cost of the snow melter, while also complicating its control. Furthermore, the processing units in existing snow melters are typically arranged side by side, each requiring its own dedicated space for the drive motor. This further increases the overall size of the snow melter and reduces overall space utilization. Summary of the Invention

[0004] In view of the defects and shortcomings of the above-mentioned prior art, the purpose of the present invention is to provide a snow melting machine with stable transmission to solve the technical problems of existing products such as low space utilization, only separate accommodation space can be set between each module, complex product structure and high cost, and large product size that is inconvenient to store.

[0005] In order to solve the above technical problems, the present application provides a snow melting machine with stable transmission, including a casing, wherein the snow melting machine also includes two groups of processing modules, the two groups of processing modules are located on the upper part of the casing, and the rear ends of the processing modules are relatively arranged, and the processing modules include a stirring drum, an evaporator and a stirring paddle arranged in the stirring drum. The snow melting machine also includes a first power assembly and a second power assembly clamped between the two groups of processing modules and respectively driving the two groups of processing modules. The first power assembly and the second power assembly are axially staggered in the processing modules, and the first power assembly and the second power assembly are respectively provided with a first drive shaft and a second drive shaft that pass through the evaporator to be powered and connected to the stirring paddle.

[0006] As mentioned above, in the snow melting machine of the prior art, the processing module usually includes a mixing drum, an evaporator and a stirring paddle. The drum is used to hold materials, the evaporator is connected to the refrigeration module to generate low temperature, and the stirring paddle is used to stir and roll the materials held in the mixing drum, so that the materials are evenly cooled and turn into snowmelt. In order to facilitate the user's operation, a feed port is usually provided at the upper end of the mixing drum for pouring materials, and the stirring paddle pushes the materials to roll from the back to the front. At the same time, a discharge port is provided at the front end of the mixing drum, and the processed snowmelt is discharged from the front end. Therefore, the motor usually extends into the mixing drum from the rear end of the mixing drum and drives the stirring paddle. The snow melting machine of the present application includes two groups of processing modules, so that the snow melting machine can provide two different food processing at the same time. In order to reduce the space waste between the two groups of processing modules and improve the space utilization rate, the present application sets the rear ends of the two groups of processing modules relatively to each other, and places the first power assembly and the second power assembly between the two groups of processing modules, and uses the first power assembly and the second power assembly to drive the two groups of processing modules respectively. In particular, the first power assembly and the second power assembly are axially staggered in the processing modules. In this way, the first power assembly and the second power assembly only occupy the radial space of the processing modules and overlap in the axial space, which can make full use of the space between the two groups of processing modules, improve the space utilization rate, and reduce the volume of the snow melting machine, so that the snow melting machine can be suitable for general commercial needs and more suitable for use in a home environment. The drive device is positioned between the two processing modules, allowing the mixing drums of the two processing modules to be placed close together. This reduces the overall size of the snow melter and also reduces the distance and size of the drive module between the two processing modules. Due to the shortened distance, the drive motor can more efficiently drive the mixing paddle through the drive structure, preventing the material from condensing on the condenser due to untimely mixing. The rear ends of the two processing modules are positioned relative to each other, allowing them to extend horizontally, rather than the traditional front-to-back depth extension. This reduces the overall length of the machine, making it particularly suitable for storage environments such as kitchen countertops and desktops, making the snow melter more convenient for home use.

[0007] As an optional solution, the first power assembly includes a first drive motor and a first reduction unit connected to the power of the first drive motor, the first reduction unit is provided with the first drive shaft, the second power assembly includes a second drive motor and a second reduction unit connected to the power of the second drive motor, the second reduction unit is provided with the second drive shaft, and the first drive motor and the first reduction unit are axially offset from the second drive motor and the second reduction unit. A reduction unit is further provided between the power assembly and the drive shaft, and the reduction unit is used to adjust the high-speed rotation of the first drive motor and the second drive motor to the low speed required by the stirring paddle. At the same time, the torque of the first output end and the second output end can also be increased to ensure that the stirring paddle has sufficient power when the processing module realizes large-capacity processing. The first drive motor and the second drive motor only need a smaller volume to meet the requirements of low speed and high torque, thereby also being able to compress the volume of the snow melter.

[0008] As an optional solution, the first power assembly and the second power assembly are arranged in a transverse front-rear direction.

[0009] As an optional solution, the first power assembly and the second power assembly are arranged vertically one above the other. Depending on the different structural and design requirements of the snow melter, the first power assembly and the second power assembly may overlap each other at different locations. For example, the first power assembly and the second power assembly may be at the same horizontal height and arranged in sequence in the front-to-back direction of the snow melter; or the first power assembly and the second power assembly may be arranged vertically in sequence with the same distance in the front-to-back direction. It is understood that the first power assembly and the second power assembly may also be arranged to overlap in an oblique direction, etc.

[0010] As an optional solution, the rear ends of the mixing drums of the two sets of processing modules are brought into close proximity, forming a storage space for the first power assembly and the second power assembly. Directly placing the rear ends of the mixing drums of the two sets of processing modules close together to form the storage space can significantly reduce the space between the two sets of processing modules, thereby improving the space utilization of the snow melter. The first and second power assemblies are directly arranged within the storage space, eliminating the need for the snow melter to separately wrap and install the power assemblies. This reduces the assembly structure and cost of the snow melter, further reducing the space occupied by the installation structure and improving the space utilization of the snow melter.

[0011] As an optional solution, the rear end portions of the two mixing drums are crossed and overlapped in the axial direction, so that the mixing drums form a receiving portion at the rear end that extends into the opposite mixing drum and an overlapping portion for the opposite mixing drum to extend into, the first power assembly is arranged in the corresponding receiving portion of the first mixing drum, and the second power assembly is arranged in the corresponding receiving portion of the second mixing drum. Preferably, the first power assembly and the second power assembly are arranged in an axially staggered manner, and the rear ends of the mixing drums are staggered and crossed accordingly, so that the mixing drums can also be arranged into a symmetrical structure, and the staggered space is used to arrange the first power assembly and the second power assembly, so that the structural arrangement is more balanced and space waste is reduced.

[0012] As an optional solution, the first power assembly and the second power assembly at least partially extend into the overlapping portion of the opposite stirring paddles. Generally speaking, the rear end of the mixing drum will not completely fit the side wall, and the offset space formed in this way is used to accommodate the power assembly of the opposite processing module. For example, the first processing module connected to the first power assembly forms a accommodating space at the end, and a part of it is used to accommodate the first power assembly. Since the first power assembly and the second power assembly are axially offset, the other part of the accommodating space of the first processing module can be used to accommodate a part of the second assembly; accordingly, the second processing module connected to the second power assembly can also accommodate the second power assembly at the end, as well as a part of the first power assembly.

[0013] As an optional solution, the first power assembly includes a first drive motor and a first transmission member connected to the power of the first drive motor, the second power assembly includes a second drive motor and a second transmission member connected to the power of the second drive motor, the first drive motor and the second drive motor are arranged in the housing, the first transmission member is connected to the power of the first drive shaft, the second transmission member is connected to the power of the second drive shaft, and the first transmission member and the second transmission member are arranged in an axially staggered manner. The transmission member is used to transmit the power of the power assembly upward and to drive the stirring paddle, and the first drive motor and the second drive motor can be arranged in the housing and below the processing module. In this way, only the first transmission member and the second transmission member need to be accommodated between the processing modules, and the preferred first transmission member and the second transmission member can usually be set as a transmission shaft, which can have a smaller size and make the distance between the two groups of processing modules smaller. In the housing supporting the two groups of processing modules, the drive motors can be more fully arranged.

[0014] As an optional solution, the first drive shaft and the second drive shaft are coaxially arranged. The coaxial arrangement of the first drive shaft and the second drive shaft can ensure that the two sets of processing modules have the same rotation center during rotation, which can compress the overall size of the snow melter and ensure that the two sets of processing modules are more stable and reliable during operation, avoiding polarization vibration and noise generated between the two eccentrically arranged processing modules.

[0015] As an optional solution, the snow melter also includes a control unit connected to the first power assembly and the second power assembly. The control unit is further configured to separately control the first and second power assemblies, allowing the two processing modules to operate as needed, without requiring both processing modules to operate or stop simultaneously, thereby improving the processing capabilities of the snow melter. Furthermore, by using the control unit to separately control the two processing modules, the two processing modules can simultaneously process different cooking ingredients, improving user needs of the snow melter and meeting the requirements for intelligent and efficient snow melters. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 This is a structural diagram of the first embodiment of the snow melting machine with stable transmission described in the utility model.

[0017] Figure 2 This is a cross-sectional view of a top view of the second embodiment of the snow melter with stable transmission described in the present invention.

[0018] Figure 3 This is a structural diagram of the third embodiment of the snow melting machine with stable transmission described in the present utility model. DETAILED DESCRIPTION

[0019] To more clearly illustrate the overall concept of this application, the following detailed description is provided with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are intended solely to illustrate the relevant application and are not intended to limit the application. It should also be noted that, for ease of description, only portions relevant to the application are shown in the accompanying drawings.

[0020] It should be noted that, unless there is a conflict, the embodiments in this application and the features in the embodiments can be combined with each other. The present application will be described in detail below with reference to the accompanying drawings and in conjunction with the embodiments. The terms used in this application are only for the purpose of describing specific embodiments and are not intended to limit this application. The singular forms of "a", "said" and "the" used in this application and the appended claims are also intended to include plural forms, unless the context clearly indicates otherwise. It should also be understood that the term "and / or" used herein refers to and includes any or all possible combinations of one or more associated listed items.

[0021] like Figure 1-3As shown, the utility model discloses a snow melting machine with stable transmission, including a housing and two groups of processing modules located on the upper side of the housing, including a first processing module and a second processing module, the rear ends of the first processing module and the second processing module are arranged relative to each other, wherein the first processing module includes a first stirring drum, a first evaporator and a first stirring paddle, and the second processing module includes a second stirring drum, a second evaporator and a second stirring paddle. The snow melting machine also includes a first power assembly and a second power assembly clamped between the ends of the first stirring drum and the second stirring drum, the first power assembly is provided with a first drive shaft passing through the first evaporator and connected to the first stirring paddle, and the second power assembly is provided with a second drive shaft passing through the second evaporator and connected to the second stirring paddle. The first power assembly and the second power assembly are axially staggered in the first processing module and the second processing module so that the axial projection areas of the first power assembly and the second power assembly overlap. With this arrangement, the first power assembly and the second power assembly only occupy the radial space of the space formed at the rear end of the first processing module and the second processing module, while in the axial space, the first power assembly and the second power assembly have an overlapping portion. Therefore, the axial size of the snow melter is compressed, thereby fully utilizing the space between the two sets of processing modules, improving space utilization, and thus reducing the volume of the snow melter. The snow melter not only meets the requirements of general commercial use, but is also more suitable for use in a home environment, expanding the scope of use of the snow melter and improving user satisfaction. The first power assembly and the second power assembly are arranged between the rear ends of the first mixing drum and the second mixing drum, so that the first mixing drum and the second mixing drum can be arranged close together, compressing the volume of the snow melter as a whole, and also compressing the distance and size between the first power assembly and the second power assembly. Due to the shortened distance, the transmission efficiency of the first power assembly and the second power assembly is improved.

[0022] Example 1.

[0023] As the first embodiment of the snow melting machine with stable transmission described in the utility model, Figure 1As shown. Specifically, the snow melter includes a housing 1, with two processing modules located above the housing 1, including a first processing module 2 and a second processing module 3. The first processing module 2 includes a first mixing drum 4, a first evaporator 6, and a first stirring paddle 8, while the second processing module includes a second mixing drum 5, a second evaporator 7, and a second stirring paddle 9. The first evaporator 6 and the first stirring paddle 8 are located within the first mixing drum 4, and the first stirring paddle 8 is mounted outside the first evaporator 6. The first mixing drum 4 is used to hold processed ingredients. The first evaporator 6 is connected to the refrigeration assembly for cooling. The first stirring paddle 8 causes the ingredients to tumble and scrapes off the first evaporator 6 to prevent them from freezing on the first evaporator 8. A first feed port 12 is also located above the first mixing drum 4, through which ingredients are fed into the first mixing drum 4. The second processing module 3 has the same functions as the first processing module 2. The corresponding second evaporator 7 and second stirring paddle 9 are located within the second mixing drum 5. The second processing module 3 also includes a second feed port 13.

[0024] The snow melter also includes a first power assembly and a second power assembly clamped between the rear ends of the first mixing drum 4 and the second mixing drum 5. The first power assembly includes a first drive motor 12 and a first drive shaft 10, and the second power assembly includes a second drive motor 13 and a second drive shaft 11. The first drive shaft 10 passes through the first evaporator 6 and is connected to the first stirring paddle 8 by power, and the second drive shaft 11 passes through the second evaporator 7 and is connected to the second stirring paddle 9 by power. The first power assembly and the second power assembly are staggered with each other in the axial direction in which the first processing module 2 and the second processing module 3 extend, so that the projections of the first power assembly and the second power assembly in the axial direction have overlapping parts. That is, preferably, as Figure 1 As shown, the first drive motor 12 is located below the second drive motor 13 .

[0025] Typically, the first stirring paddle 8 is located at the bottom of the first mixing drum 4, and the second stirring paddle 9 is located at the bottom of the second mixing drum 5, so as to achieve better stirring in the mixing drum and prevent the material from settling in the mixing drum. For the first drive motor 12 and the second drive motor 13 arranged above and below, a first transmission shaft 14 is arranged between the first drive motor 12 on the lower side and the first drive shaft 10, and the first transmission shaft 14 extends horizontally; a second transmission shaft 15 is arranged between the second drive motor 13 on the upper side and the second drive shaft 11, and the second transmission shaft 15 includes a transmission structure for transmitting dislocated power to the second drive shaft 11. For example, the second transmission shaft 15 includes a horizontal section, a vertical section, and a horizontal section that are connected in sequence, or the second transmission shaft 15 is provided with a universal joint, or the second transmission shaft 15 is a flexible shaft, so as to achieve power transmission between the second drive motor 13 on the upper side and the second transmission shaft 11 on the lower side. In this way, the coaxial arrangement between the first drive shaft 10 and the second drive shaft 11 can be ensured.

[0026] Preferably, the first power assembly further includes a first reduction unit 16, and the first drive motor 12 drives the first transmission shaft 14 through the first reduction unit 16, and further drives the first drive shaft 10 through the first transmission shaft 14; the second power assembly further includes a second reduction unit 17, and the second drive motor 13 drives the second transmission shaft 15 through the second reduction unit 17, and further drives the second drive shaft 11 through the second transmission shaft 15. For the first and second stirring paddles, an excessively high rotational speed is usually not required, and for the drive motors themselves, conventional motors usually have a relatively high rotational speed. The first power assembly and the second power assembly are respectively provided with reduction units, which usually convert the high rotational speed of the motor into the rotational speed required by the stirring paddle; at the same time, the stirring paddle requires a large torque, and the cost of a motor that increases the large torque is relatively high. Through the reduction structure, the low torque of the motor can be increased to the high torque required by the stirring paddle, so as to meet the working requirements of the snow melter without improving the motor properties.

[0027] The first and second processing modules are directly arranged relative to each other at the rear end, the first power assembly and the second power assembly are directly clamped between the first and second processing modules, and the first and second power assemblies are staggered in the axial direction. This can reduce the space occupied by the first and second power assemblies between the first and second processing modules, which is beneficial to reducing the volume of the snow melting machine. It also improves the transmission efficiency of the first and second power assemblies by reducing the transmission distance between the first and second power assemblies. The reduction in the volume of the snow melting machine improves the volume utilization rate of the snow melting machine. The first and second processing modules are arranged horizontally, which reduces the space occupied by the snow melting machine in front and behind, making it easier for users to use it on kitchen counters and desktops at home, and facilitating the expansion of the snow melting machine to home environments.

[0028] As an optional solution, the first power assembly and the second power assembly are arranged horizontally front and back. That is, the first power assembly and the second power assembly clamped between the two groups of processing modules are arranged horizontally front and back, and are respectively connected to the first processing module and the second processing module.

[0029] As an optional solution, the first power assembly and the second power assembly clamped between the two groups of processing modules are staggered in the front and back positions and the up and down positions; for example, the first power assembly and the second power assembly are tilted in the front and back positions.

[0030] Example 2.

[0031] As a second embodiment of the snow melting machine with stable transmission described in the present invention, Figure 2 As shown, compared to Example 1, the rear ends of the first and second mixing drums in this embodiment are arranged relative to each other to form an accommodation space, and the first drive motor 12 and the second drive motor 13 are located in the accommodation space. It should be noted that the specific examples 1 and 2 described separately do not mean that the two examples are completely independent of each other. They are only for the purpose of specifically illustrating the two preferred technical solutions. The technical features and technical solutions of the two examples are common and can be used for reference.

[0032] like Figure 2As shown, the front sides of the first mixing drum 4 and the second mixing drum 5 are formed with processing chambers for accommodating processed ingredients. The rear ends of the first mixing drum 4 and the second mixing drum 5 are arranged close to and adjacent to each other, forming a storage space 18 between the rear ends of the first mixing drum 4 and the second mixing drum 5. Specifically, a first storage space 19 is formed at the rear end of the first mixing drum 4, and a second storage space 20 is formed at the rear end of the second mixing drum 5. The first storage space 19 and the second storage space 20 are internally connected to form the storage space 18.

[0033] Preferably, the first and second power assemblies, clamped at the rear ends of the first and second mixing drums 4 and 5, are located within the accommodation space 18. Specifically, the main portion of the first drive motor 12 of the first power assembly is located within the first accommodation space 19; the main portion of the second drive motor 13 of the second power assembly is located within the second accommodation space 20. Simultaneously, the distal end of the first drive motor 12 extends into the second accommodation space 20; correspondingly, the distal end of the second drive motor 13 extends into the first accommodation space 19.

[0034] By directly utilizing the first and second mixing drums to form a storage space at the rear end, and arranging the first power assembly and the second power assembly in the storage space, the snow melter can be reduced from having to be provided with a separate mounting structure for mounting and accommodating the first and second power assemblies, thereby optimizing and reducing the volume of the snow melter and facilitating user use and storage. The first drive motor and the second drive motor are usually not of exactly the same volume at the front and back ends. In particular, when a reduction unit is provided between the drive motor and the drive shaft, the drive motor and the reduction unit together will occupy a larger volume, while the volume at the rear end is relatively smaller. The first drive motor and the second drive motor are offset from each other and partially extended into the storage space of the opposing mixing drums, fully utilizing the spatial volume formed at the front end of the mixing drums, while the small volume portion at the rear end is formed by means of the space formed by the opposing mixing drums. In this way, the space utilization rate of the snow melter is higher.

[0035] As an optional solution, the rear ends of the first and second mixing drums are arranged in a cross-step shape. When the rear ends of the first and second mixing drums are arranged relative to each other, the rear ends of the first and second mixing drums partially intersect and at least partially overlap axially at the rear ends. That is, the stepped mixing drums are offset and fit together, and ultimately, the cross-staggered mixing drums are sandwiched between the rear ends to form a storage space for accommodating the drive motor. In this way, the drive motor can be completely accommodated in the corresponding mixing drum. For example, the first drive motor is completely accommodated in the first storage space at the rear end of the first mixing drum, so that when the first and second mixing drums are disassembled, the drive motor can still be completely blocked by the corresponding mixing drum.

[0036] Example 3.

[0037] As a third embodiment of the snow melting machine with stable transmission described in the present invention, Figure 3 As shown, compared to the second embodiment, the first drive motor and the second drive motor in this embodiment are disposed within the housing and are dynamically connected to the drive shaft via a transmission member. It should be noted that the specific embodiments 1, 2, and 3 described separately do not mean that the individual cases of the embodiments are completely independent of each other. They are merely for the purpose of specifically illustrating several preferred technical solutions. The technical features and technical solutions of the several embodiments are common and can be mutually referenced.

[0038] like Figure 3 As shown, the first processing module 2 and the second processing module 3 are arranged opposite each other, wherein the first processing module 2 includes a first mixing drum 4, a first evaporator 6, and a first stirring paddle 8, and the second processing module includes a second mixing drum 5, a second evaporator 7, and a second stirring paddle 9. The first evaporator 6 and the first stirring paddle 8 are located within the first mixing drum 4, and the first stirring paddle 8 is mounted outside the first evaporator 6. The first mixing drum 4 is used to hold processed ingredients. The first evaporator 6 is connected to the refrigeration component for cooling. The first stirring paddle 8 drives the ingredients to roll and scrapes off the ingredients on the first evaporator 6 to prevent the ingredients from freezing on the first evaporator 8. A first feed port 12 is also provided above the first mixing drum 4, through which ingredients are added to the first mixing drum 4. The second processing module 3 has the same function as the first processing module 2. The corresponding second evaporator 7 and the second stirring paddle 9 are located within the second mixing drum 5. The second processing module 3 also includes a second feed port 13.

[0039] The rear ends of the first mixing drum 4 and the second mixing drum 5 are positioned adjacent to each other, minimizing the gap between the first processing module 2 and the second processing module 3. The first drive motor 12 and the second drive motor 13 are positioned below the first processing module 2 and the second processing module 3. The first drive motor 12 is power-connected to the first drive shaft 10 via a first transmission member 21, and the second drive motor 13 is power-connected to the second drive shaft 11 via a second transmission member 22.

[0040] Preferably, a control unit 22 is further provided in the machine base 1. The control unit 22 is electrically connected to the first drive motor 12 and the second drive motor 13, respectively. The control unit 22 can control the first drive motor 12 and the second drive motor 13, respectively, so that the first drive motor 12 and the second drive motor 13 operate according to the processing requirements of the snow melter. Furthermore, the control unit can also control the operation of the first evaporator and the second evaporator, so that the first processing module and the second processing module of the snow melter operate according to their respective processing requirements. This can enable the first processing module and the second processing module to produce exactly the same materials, or enable the first processing module and the second processing module to process different materials. It can also control one of the processing modules to operate while the other does not need to operate according to the requirements.

[0041] The base is typically larger in size to support the first and second processing modules, with sufficient internal space for installation. The first and second drive motors are located within the base's internal space, occupying only the existing installation space within the base without significantly increasing the base's volume. Transmission components are used to transmit the power of the first and second drive motors to the agitator to achieve processing in the snow melter. This allows the space above the base to be fully utilized for the processing modules. The base not only supports the processing modules but also utilizes the space created by the base to accommodate the power components. This allows for more efficient use of the space within the snow melter, resulting in a higher space utilization rate.

[0042] As an optional solution, the first drive motor and the second drive motor are placed up and down in the machine base, or the first drive motor and the second drive motor are placed front and back in the machine base, or the first drive motor and the second drive motor are placed left and right in the machine base.

[0043] As an optional solution, the first drive motor and the second drive motor are placed vertically in the machine base, that is, the motor shafts of the drive motors extend vertically and are dynamically connected to the transmission shaft through a connecting member.

[0044] In the description of this application, it should be understood that the directions or positional relationships indicated by directional words such as "front, back, up, down, left, right", "horizontal, vertical, vertical, horizontal" and "top, bottom" are usually based on the directions or positional relationships shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description. Unless otherwise specified, these directional words do not indicate or imply that the device or element referred to must have a specific direction or be constructed and operated in a specific direction. Therefore, they cannot be understood as limiting the scope of protection of this application; the directional words "inside and outside" refer to the inside and outside relative to the outline of each component itself.

[0045] For ease of description, spatially relative terms such as "above", "above", "on the upper surface of", "above", etc. may be used herein to describe the spatial positional relationship of a device or feature to other devices or features as shown in the figures. It should be understood that spatially relative terms are intended to include different orientations of the device in use or operation in addition to the orientation described in the figures. For example, if the device in the drawings is inverted, the device described as "above other devices or structures" or "above other devices or structures" will be positioned "below other devices or structures" or "below other devices or structures", but it does not mean that the actual device is inverted. Therefore, the exemplary term "above" can include both "above" and "below". The device can also be rotated 90 degrees or in other orientations in other same orientations, and the spatially relative descriptions used here are interpreted accordingly.

[0046] In addition, it should be noted that the use of terms such as "first" and "second" to limit components is only for the convenience of distinguishing the corresponding components. Unless otherwise specified, the above terms have no special definition and therefore cannot be understood as limiting the scope of protection of this application.

[0047] The above description is merely a preferred embodiment of the present application and an illustration of the technical principles employed. Those skilled in the art should understand that the scope of application of this application is not limited to technical solutions formed by specific combinations of the aforementioned technical features, but also encompasses other technical solutions formed by any combination of the aforementioned technical features or equivalent features without departing from the scope of the present application. For example, technical solutions formed by replacing the aforementioned features with (but not limited to) technical features with similar functions disclosed in this application will not be listed here.

Claims

1. A snow melter with stable transmission, comprising a housing, characterized in that: The snow melter also includes two groups of processing modules, which are located on the upper part of the casing, and the rear ends of the processing modules are arranged relative to each other. The processing modules include a stirring drum, an evaporator and a stirring paddle arranged in the stirring drum. The snow melter also includes a first power assembly and a second power assembly clamped between the two groups of processing modules and respectively driving the two groups of processing modules. The first power assembly and the second power assembly are axially staggered in the processing modules, and the first power assembly and the second power assembly are respectively provided with a first drive shaft and a second drive shaft that pass through the evaporator to be powered and connected to the stirring paddle.

2. The snow melter with stable transmission as claimed in claim 1, characterized in that: The first power assembly includes a first drive motor and a first reduction unit connected to the first drive motor, the first reduction unit is connected to the first drive shaft, the second power assembly includes a second drive motor and a second reduction unit connected to the second drive motor, the second reduction unit is connected to the second drive shaft, and the first drive motor and the first reduction unit are axially offset from the second drive motor and the second reduction unit.

3. The snow melter with stable transmission as claimed in claim 1, characterized in that: The first power assembly and the second power assembly are arranged in a transverse front-rear direction.

4. The snow melter with stable transmission as claimed in claim 1, characterized in that: The first power assembly and the second power assembly are arranged vertically up and down.

5. The snow melter with stable transmission as claimed in claim 1, characterized in that: The rear ends of the mixing drums of the two groups of processing modules are close to each other, and the rear ends of the two mixing drums form an accommodating space for accommodating the first power assembly and the second power assembly.

6. The snow melter with stable transmission as claimed in claim 5, characterized in that: The rear end portions of the two mixing drums intersect and overlap in the axial direction, so that the mixing drum forms a receiving portion at the rear end that extends into the opposite mixing drum and an overlapping portion for the opposite mixing drum to extend into, the first power component is arranged in the receiving portion of the corresponding first mixing drum, and the second power component is arranged in the receiving portion of the corresponding second mixing drum.

7. The snow melter with stable transmission as claimed in claim 6, characterized in that: The first power assembly and the second power assembly at least partially extend into the overlapping portions of the opposite stirring paddles.

8. The snow melter with stable transmission as claimed in claim 1, characterized in that: The first power assembly includes a first drive motor and a first transmission member connected to the first drive motor, the second power assembly includes a second drive motor and a second transmission member connected to the second drive motor, the first drive motor and the second drive motor are arranged in the housing, the first transmission member is connected to the first drive shaft, the second transmission member is connected to the second drive shaft, and the first transmission member and the second transmission member are axially staggered.

9. The snow melter with stable transmission as claimed in claim 1, characterized in that: The first drive shaft and the second drive shaft are coaxially arranged.

10. The snow melter with stable transmission as claimed in claim 1, characterized in that: The snow melter further includes a control unit connected to the first power assembly and the second power assembly respectively.