Snow melting machine stable in transmission

By setting the rear ends of the two sets of processing modules in the snow melt machine, and clamping the two sets of processing modules with a single drive motor and a drive structure between the two sets of processing modules, the complex structure and high cost of the snow melt machine are solved, and a smaller and more stable snow melt machine design is achieved.

CN223169090UActive Publication Date: 2025-08-01HANGZHOU YULAI TECHNOLOGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422468685.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-12
Publication Date
2025-08-01
Estimated Expiration
2034-10-12

AI Technical Summary

Technical Problem

The multiple sets of drives of existing snow melt machines are independent of each other and cannot cooperate with each other between multiple processing units, resulting in complex structures, high cost and waste of space.

Method used

The rear ends of the two sets of processing modules are arranged relative to each other, and the two sets of processing modules are clamped between the two sets of processing modules through a single drive motor and a drive structure, synchronous driving of the two sets of mixing paddles is achieved, the number of power components is reduced, the structure is simplified, and the entire machine volume is compressed.

Benefits of technology

It realizes the simple and efficient structure of the snow melt machine, reduces the volume, improves the operating stability and power transmission efficiency, and is suitable for home use.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223169090U_ABST
    Figure CN223169090U_ABST
Patent Text Reader

Abstract

The utility model provides a stable-transmission snow melting machine which comprises a machine shell and a power assembly located in the machine shell, the snow melting machine further comprises two sets of machining modules 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 and a stirring paddle arranged in the stirring barrel, and the stirring paddles are arranged in the machine shell. The power assembly comprises a driving motor and a driving structure in power connection with the driving motor, the driving structure is clamped between the two machining modules, and the driving structure comprises a first driving shaft and a second driving shaft which penetrate through the stirring barrel and are in power connection with the stirring paddle. The rear ends of the two sets of machining modules are oppositely arranged, the two sets of machining modules can be driven and machined at the same time through a single driving motor, the distance between the machining modules can be compressed, and the machining efficiency of the power assembly is improved. And the space is compressed, so that the snow melting machine is lighter and smaller, and is convenient to store and use.
Need to check novelty before this filing date? Find Prior Art

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 snow melting machine is a device capable of manufacturing molten ice sand. As an important part of existing kitchen appliances, its design and performance are directly related to the user experience and the quality of beverages. Existing snow melting machines usually have a machine base, a storage cavity for storing liquid beverages is arranged on the machine base, an evaporator for cooling the beverage and a stirring paddle for stirring the beverage are arranged in the storage cavity, a driving motor for driving the stirring paddle to rotate is arranged in the machine base, and the beverage stored in the storage cavity gradually decreases in temperature to reach the freezing point under the action of the evaporator, forming an ice-water mixture, and a mixed snow melt is formed under the continuous stirring of the stirring paddle.

[0003] In order to ensure the production effect of the snow melting machine, it is necessary for the stirring paddle to continuously stir the materials to prevent the materials from partially freezing due to uneven cooling. At the same time, in order to achieve a variety of different flavors, existing snow melting machines need to be provided with multiple processing units on the machine base. In existing snow melting machine solutions, each processing unit is independent of each other, that is, a storage cavity, an evaporator and a stirring paddle are respectively arranged between each processing unit. For the driving of each stirring paddle, it depends on the respectively arranged driving motors. The existing solution is only a simple combination of processing units. Although it can ensure the processing work between each processing unit, this causes an increase in the components of the snow melting machine product, increases the volume of the snow melting machine, also increases the cost of the snow melting machine, and causes the control of the snow melting machine to be complex. Summary of the Invention

[0004] In view of the defects and deficiencies of the above-mentioned existing technology, the purpose of the utility model is to provide a snow melting machine with stable transmission, so as to solve the problems that multiple sets of drives in existing products are independent of each other, cannot cooperate with each other between multiple processing units, the structure is complex and the cost is high, and the waste of space and structure caused by independent functions.

[0005] To solve the above technical problems, the present application provides a snow melting machine with stable transmission, including a machine shell and a power assembly located inside the machine shell. Among them, the snow melting machine further includes two processing modules located in the upper part of the machine shell, the rear ends of the processing modules are arranged opposite to each other, the processing module includes a stirring cylinder and a stirring paddle arranged in the stirring cylinder, the power assembly includes a driving motor and a driving structure power-connected to the driving motor, the driving structure is clamped between the two processing modules, and the driving structure includes a first driving shaft and a second driving shaft that pass through the stirring cylinder and are power-connected to the stirring paddle.

[0006] As described above, in the snow melter of the prior art, the processing module generally includes a mixing cylinder, an evaporator and a mixing paddle. The mixing cylinder is used to hold materials. The evaporator is connected to a compressor to generate low temperature. The mixing paddle is used to stir the materials held in the mixing cylinder, so that the materials are evenly cooled and turned into a snow-melt state. To facilitate the operation of the user, a feed port is usually provided at the upper end of the mixing cylinder for pouring materials. The mixing 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 cylinder for the processed snow melt to be discharged from the front end. Thus, the motor usually extends into the mixing cylinder from the rear end of the mixing cylinder and drives the mixing paddle. The snow melter provided by the present application includes two sets of processing modules. Further, the rear ends of the two sets of processing modules are arranged opposite to each other, and the driving device of the power assembly is clamped between the two sets of processing modules in this way. In this way, by setting a single driving motor for the power assembly, the mixing paddles in the two sets of processing modules can be driven simultaneously, and it is not necessary to set a power assembly for each set of processing modules. The number of power assemblies is reduced, the structure is made simpler and more efficient, and the volume of the whole snow melter can be reduced, making the snow melter more suitable for use in a home environment. And by setting the driving device between the two sets of processing modules, the mixing cylinders of the two processing modules can be arranged closely, that is, the volume of the whole snow melter is compressed, and the distance and size of the driving module between the two processing modules are also compressed. Due to the shortening of the distance, the driving motor can drive the mixing paddle more efficiently through the driving structure, avoiding the condensation of materials on the condenser due to untimely stirring. The driving structure is clamped between the two sets of processing modules arranged opposite to each other. The driving structure will transmit power to both sides at the same time. The power source is located in the middle of the whole machine, and the transmitted power on both sides is balanced, making the overall operation of the snow melter more stable and avoiding the poor working stability caused by the offset of the power source when the existing power assembly is arranged on one side.

[0007] As an optional solution, the driving motor includes a first output end and a second output end. The first output end and the second output end are respectively power-connected to the first driving shaft and the second driving shaft. Depending on the relative arrangement of the rear ends of the two sets of processing modules, the driving motor that extends into the processing module from the rear end and realizes driving directly sets the first output end and the second output end. Then, depending on the first output end and the second output end, the first driving shaft and the second driving shaft respectively placed in the two sets of processing modules can be driven. And due to the compact space, not too many transmission structures are needed, and the driving of different processing modules can be realized simultaneously on the basis of a single power source.

[0008] As an alternative solution, the drive motor is clamped between two sets of the processing modules, and the motor shaft of the drive motor extends out from both ends and respectively forms the first output end and the second output end. Generally, the drive motor consists of a stator and a rotor. The drive motor has a motor shaft. By directly using the motor shaft to extend out to both sides to form the first output end and the second output end, the processing modules located on both sides of the drive motor can be directly power-connected to the motor shaft of the drive motor, with a simple and efficient structure. Clamping the drive motor directly by two sets of processing modules also reduces the installation structure of the drive motor, which not only ensures the efficient power transmission of the drive motor to the stirring paddle but also reduces the volume of the whole snow melter.

[0009] As an alternative solution, the drive motor is further provided with a transmission structure. The transmission structure is clamped between two sets of the processing modules, and the transmission structure forms the first output end and the second output end. By further setting the transmission structure to form the first output end and the second output end in this way, the drive motor can be arranged under the two sets of processing modules. The power source of the drive motor is transmitted downward through the transmission structure and decomposed into two output ends to ensure the efficient output at one end of the drive motor. At the same time, the transmission structure can also adjust the positions of the outputs at both ends according to requirements to meet the power requirements of different processing modules.

[0010] As an alternative solution, the transmission structure includes a speed reduction unit. The motor shaft of the drive motor drives the first output end and the second output end through the speed reduction unit. By further setting the speed reduction unit, the high speed of the drive motor is adjusted to the low speed required by the stirring paddle, and at the same time, the torque of the first output end and the second output end is increased to ensure that the stirring paddle can still stir the food materials stably and reliably in a large-capacity workpiece environment.

[0011] As an alternative solution, the power assembly further includes a clutch structure located between the drive motor and the drive structure. The clutch structure is respectively power-connected or separated from the first drive shaft and the second drive shaft. Although two sets of processing modules are set at the same time, for the user, it is not necessary for the two sets of processing modules to work simultaneously. When one set of processing modules does not need to work, the drive motor still needs to drive the other set of processing modules. By setting the clutch structure, the power can be connected or separated between the two sets of processing modules. Thus, for the processing module that does not need to work, the power separation is controlled through the clutch structure, which not only avoids the waste of power but also avoids the idling of the processing module when no food materials are placed.

[0012] As an alternative solution, the clutch structure includes a first clutch structure connected to the first drive shaft and a second clutch structure connected to the second drive shaft.

[0013] As an alternative, the first clutch structure includes a first output head and a first engagement head respectively connected to the drive motor and the first drive shaft, and the second clutch structure includes a second output head and a second engagement head respectively connected to the drive motor and the second drive shaft. The first clutch structure and the second clutch structure are respectively provided, and the first output head and the first engagement head, as well as the second output head and the second engagement head are respectively provided to ensure the stable and reliable power connection between the drive motor and the processing module.

[0014] As an alternative, the power assembly further includes a triggering device for driving the first clutch structure and the second clutch structure.

[0015] As an alternative, the triggering device includes a trigger rod for controlling and pushing the first clutch structure or the second clutch structure; alternatively, the triggering device includes a control unit and a pushing unit electrically connected to the control unit, and the control unit controls the pushing unit and the pushing unit pushes the first clutch structure or the second clutch structure. By providing the clutch structure, it is possible to control the unnecessary processing module to stop working. Further, by providing the triggering device, the triggering device can efficiently select between the output ends and achieve power connection or separation when needed. For example, by providing a trigger rod, the user can directly manipulate the trigger rod to trigger the required power, which is more direct and efficient; or by providing a control unit and a pushing unit, the control unit is controlled by the control logic of the snow melting machine and applies a signal to the pushing unit, and under the satisfied conditions, it selects between different output ends to meet the intelligent and efficient requirements of the snow melting machine. Description of the Drawings

[0016] Figure 1 It is a cross-sectional view of the overall structure of the first embodiment of the snow melting machine with stable transmission according to the present invention.

[0017] Figure 2 It is a functional schematic diagram of the overall structure of the first embodiment of the snow melting machine with stable transmission according to the present invention.

[0018] Figure 3 It is a functional schematic diagram of the overall structure of the second embodiment of the snow melting machine with stable transmission according to the present invention.

[0019] Figure 4 It is a functional schematic diagram of the overall structure of the third embodiment of the snow melting machine with stable transmission according to the present invention. Detailed Description of the Invention

[0020] To more clearly illustrate the overall concept of this application, the following will be described in detail by way of examples in conjunction with the accompanying drawings of the specification. It can be understood that the specific embodiments described herein are only used to explain the relevant application and do not limit the application. Additionally, it should be noted that for the convenience of description, only the parts related to the application are shown in the drawings.

[0021] It should be noted that, without conflict, the embodiments and features in the embodiments of this application can be combined with each other. The following will describe this application in detail with reference to the 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 "a", "the", and "said" 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" used herein refers to and includes any or all possible combinations of one or more of the associated listed items.

[0022] As Figures 1-4 shown, the present utility model discloses a snowmelt machine with stable transmission, including a machine shell 1 and a power assembly located inside the machine shell 1. Two sets of processing modules are provided on the upper part of the machine shell 1, including a first processing module 2 and a second processing module 3. The first processing module 2 includes a first stirring cylinder 4, a first evaporator 6, and a first stirring paddle 8. The first evaporator 6 and the first stirring paddle 8 are arranged inside the first stirring cylinder 4, and the first stirring paddle 8 is sleeved outside the first evaporator 6. The second processing module 3 includes a second stirring cylinder 5, a second evaporator 7, and a second stirring paddle 9. The second evaporator 7 and the second stirring paddle 9 are arranged inside the second stirring cylinder 5, and the second stirring paddle 9 is sleeved outside the second evaporator 7. The rear ends of the two sets of processing modules are arranged opposite to each other, that is, the rear ends of the first processing module 2 and the second processing module 3 are arranged opposite to each other. It should be noted that the rear end and the front end here are relative directions with respect to the flow direction of the material and the operation of the user. For the processing module, the material is usually put into the stirring cylinder from the rear end, the stirring paddle stirs the material and drives the material to move from the rear to the front, and the processed material is discharged from the discharge port at the front end.

[0023] The power assembly includes a driving motor 14 and a driving structure. The driving structure is located between the first processing module 2 and the second processing module 3. The driving structure includes a first driving shaft 10 and a second driving shaft 11. The first driving shaft 10 passes through the first evaporator 6 and is connected to the first stirring paddle 8 to drive the first stirring paddle 8. The second driving shaft 11 passes through the second evaporator 7 and is connected to the second stirring paddle 9 to drive the second stirring paddle 9.

[0024] Set two sets of processing modules opposite to the rear end. By using the driving structure to drive the stirring paddle from the rear end of the processing module, the mixing drums of the two processing modules can be arranged closely. Then, drive the two sets of processing modules through the driving motor and the driving structure, making the structure simpler and more efficient. Since the distance between the two sets of processing modules is compressed by the driving structure, the length of the driving structure and the driving shaft is shortened, and the driving motor can drive the stirring paddle more efficiently through the driving structure. At the same time, the shortening of the distance between the two sets of processing modules and the compression of the driving structure can also greatly reduce the space volume of the machine shell and the whole machine, making the snow melter more portable and compact, meeting the needs of users in multiple usage environments, and especially suitable for meeting the needs of the home usage environment of general users. At the same time, the driving structure is clamped between two sets of processing modules arranged oppositely, and the driving structure will transmit power to both sides simultaneously. The power source is located in the middle of the whole machine, and the transmitted power on both sides is balanced, making the overall operation of the snow melter more stable and avoiding the poor working stability caused by the offset of the power source when the existing power components are arranged on one side.

[0025] Embodiment 1.

[0026] As the first embodiment of the snow melter with stable transmission according to the present invention, as Figures 1-2 shown. Specifically, the snow melter includes a machine shell 1, and a power assembly is provided inside the machine shell 1. Two sets of processing modules are arranged above the machine shell 1, including a first processing module 2 and a second processing module 3. Among them, the first processing module 2 includes a first mixing drum 4, a first evaporator 6 and a first stirring paddle 8. 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 inside the first mixing drum 4, and the first stirring paddle 8 is sleeved outside the first evaporator 6. The first mixing drum 4 is used to hold the processed food materials. The first evaporator 6 is connected to the refrigeration assembly for cooling. The first stirring paddle 8 drives the food materials to tumble and scrapes off the food materials on the first evaporator 6 to prevent the food materials from freezing on the first evaporator 8. A first feed port 12 is further provided above the first mixing drum 4, and the food materials are put into the first mixing drum 4 through the first feed port 12. A first handle 23 and a first discharge port 24 are provided at the front end of the first mixing drum 4. Operate the first handle 23 to open the first discharge port 24, and drive by the first stirring paddle 8, the food materials in the first mixing drum 4 are discharged. The second processing module 3 has the same function as the first processing module 2. Correspondingly, the second evaporator 7 and the second stirring paddle 9 are located inside the second mixing drum 5. The second processing module 3 further includes a second feed port 13, a second handle 25 and a second discharge port 26.

[0027] The power assembly includes a drive motor 14 and a drive structure. The rear ends of the first processing module 2 and the second processing module 3 are arranged opposite to each other. Thus, the drive structure is clamped between the first processing module 2 and the second processing module 3. Wherein, the drive structure includes a first drive shaft 10 and a second drive shaft 11. The first drive shaft 10 passes through the first mixing drum 4 and the first evaporator 6 and is then power-connected to the first mixing paddle 8. The second drive shaft 11 passes through the second mixing drum 5 and the second evaporator 7 and is then power-connected to the second mixing paddle 9. Thus, the drive motor 14 can drive the first mixing paddle 8 and the second mixing paddle 9 respectively or simultaneously through the first drive shaft 10 and the second drive shaft 11.

[0028] As a preferred solution, as Figure 1 , 2 shown, the drive motor 14 is further provided with a transmission structure 15. The output of the drive motor 14 is converted into multi-terminal output through the transmission structure 15. The transmission structure 15 includes a first output end and a second output end. A first clutch structure is provided between the first output end and the first drive shaft 10. A second clutch structure is provided between the second output end and the second drive shaft 11. Wherein, the first clutch structure includes a first output head 16 and a first engaging head 17. The second clutch structure includes a second output head 18 and a second engaging head 19. The first engaging head 17 and the second engaging head 19 are selectively engaged or separated from the first output head 16 and the second output head 18, so that the first mixing paddle 8 and the second mixing paddle 9 are selectively power-connected or disconnected from the drive motor 14 according to functions.

[0029] As Figure 4 shown, as a preferred solution, the triggering device further includes a control unit 22 connected to the transmission structure 15. The first clutch structure includes a first output head 16 and a first engaging head 17. The second clutch structure includes a second output head 18 and a second engaging head 19. The control unit 22 selects according to the program and drives the transmission structure 15 to select and trigger or separate between the first clutch structure and the second clutch structure. Under the control of the control unit 22, the transmission structure 15 can push the first clutch structure to trigger or separate the first output head 16 and the first engaging head 17, so that the drive motor 14 drives the first mixing paddle 8 or is power-separated from the first mixing paddle 8; correspondingly, under the control of the control unit 22, the pushing unit can also push the second clutch structure to trigger or separate the second output head 18 and the second engaging head 19, so that the drive motor 14 drives the second mixing paddle 9 or is power-separated from the second mixing paddle 9.

[0030] By arranging the rear ends of the two sets of processing modules opposite to each other, the drive structure for driving the stirring paddle and the refrigeration component for refrigerating the vaporizer are respectively connected to the two sets of processing modules through the space between the two sets of processing modules. The drive motor can drive the two sets of processing modules simultaneously through the drive structure, eliminating the need for a separate drive motor for each processing module, reducing the number of drive units required for the snow melter, simplifying and enhancing the overall structure of the machine, and enabling the reduction of the volume of the snow melter, making it more suitable for home use environments. By arranging the drive device between the two sets of processing modules, the mixing drums of the two processing modules can be placed adjacent to each other, not only compressing the overall volume of the machine but also reducing the distance and size of the drive module between the two processing modules. Due to the shortened distance, the drive motor can drive the stirring paddle more efficiently, improving the efficiency of the drive motor and preventing materials from condensing on the condenser due to insufficient stirring. In particular, due to the improved efficiency of the drive motor, a smaller-sized drive motor can meet the stirring requirements, further reducing the overall volume of the machine by downsizing the drive motor. Moreover, the extension in the width direction facilitates users to store the snow melter in the kitchen or on the table at home, making it more suitable for home use environments. By using the control unit to control the snow melter, the snow melter can perform corresponding processing on different processing modules according to the selected processing functions and programs, making the snow melter more intelligent, reducing the need for direct user participation, and ultimately providing users with a stable, reliable, intelligent, and highly efficient multifunctional snow melter.

[0031] It can be understood that for home use, single processing, or small-scale processing, only one of the two processing modules may be used, or the production of one processing module can be stopped when it has completed processing. Therefore, it is preferred to separately control different processing modules by setting a clutch structure. However, if the snow melter is in a long-term working environment, such as a commercial environment, the two processing modules continuously operate under the drive of the drive motor and the cooling module, the materials in the mixing drums are always in a snow melting state, and are continuously taken and replenished. Therefore, it is not necessary to set a clutch structure either.

[0032] Embodiment Two.

[0033] As the second embodiment of the snow melter with stable transmission according to the present invention, as Figure 3 shown, compared with Embodiment One, in this embodiment, the drive structure further includes a trigger rod for triggering the first clutch structure and the second clutch structure. It should be noted that the separately described specific Embodiment One and Embodiment Two do not mean that the two embodiments are completely independent of each other. They are only for specifically clarifying two preferred technical solutions, and the technical features and technical solutions between the two embodiments are common and can be mutually borrowed.

[0034] AsFigure 3 As shown, the power assembly includes a driving motor 14 and a driving structure. The rear ends of the first processing module 2 and the second processing module 3 are arranged oppositely. The driving structure is clamped between the first mixing drum 4 and the second mixing drum 5. Among them, the driving structure includes a first driving shaft 10 and a second driving shaft 11. The first driving shaft 10 passes through the first mixing drum 4 and the first evaporator 6 and is power-connected to the first mixing paddle 8. The second driving shaft 11 passes through the second mixing drum 5 and the second evaporator 7 and is power-connected to the second mixing paddle 9. The driving motor 14 drives the first mixing paddle 8 and the second mixing paddle 9 respectively or simultaneously through the first driving shaft 10 and the second driving shaft 11.

[0035] The driving motor 14 is also provided with a transmission structure 15, which converts the output of the driving motor 14 into multi-terminal output. For example, the transmission structure 15 is composed of a gearbox, which converts the output end of the driving motor 14 into multi-terminal output through a gear set. The speeds of the multi-terminals are the same or different, and the rotations of the multi-terminals can also be adjusted according to different processing requirements. Preferably, the transmission structure 15 includes a first output end and a second output end. A first clutch structure is provided between the first output end and the first driving shaft 10, and a second clutch structure is provided between the second output end and the second driving shaft 11. Further, the driving structure also includes a triggering device for driving the first clutch structure and the second clutch structure. Preferably, the triggering device is a trigger rod 21 for pushing the first clutch structure or the second clutch structure.

[0036] As Figure 3 shown, the first clutch structure includes a first output head 16 and a first engaging head 17, and the second clutch structure includes a second output head 18 and a second engaging head 19. One end of the trigger rod 21 extends outside the machine housing 1, and the other end is connected to the first clutch structure and the second clutch structure. Preferably, the user directly operates the trigger rod 21 outside to push the first clutch structure, so that the first output head 16 and the first engaging head 17 are triggered or separated, so that the driving motor 14 drives the first mixing paddle 8 or is power-separated from the first mixing paddle 8; correspondingly, the user also pushes the second clutch structure through the trigger rod 21, so that the second output head 18 and the second engaging head 19 are triggered or separated, so that the driving motor 14 drives the second mixing paddle 9 or is power-separated from the second mixing paddle 9.

[0037] A trigger rod is directly arranged outside the casing, and the user can directly manipulate the trigger rod to drive the drive motor to select power output between different processing modules or output power to two processing modules simultaneously. While simplifying the structure, the corresponding power requirements are achieved. Using a mechanical trigger rod for passive clutch drive triggers, it has low cost, a reliable structure, and can also provide convenience in using the whole machine.

[0038] Embodiment Three.

[0039] As the third embodiment of the snow melting machine with stable transmission according to the present invention, as Figure 4 shown, compared with Embodiment Two, in this embodiment, the drive motor is directly clamped between two groups of the processing modules. It should be noted that the specifically described Embodiment One, Embodiment Two, and Embodiment Three are not meant that the cases of the several embodiments are completely independent of each other. It is only for specifically clarifying several preferred technical solutions, and the technical features and technical solutions among the several embodiments are common and can be mutually borrowed.

[0040] As Figure 4 shown, the power assembly includes a drive motor 14 and a drive structure. The rear ends of the first processing module 2 and the second processing module 3 are arranged oppositely, and the drive structure is clamped between the first stirring cylinder 4 and the second stirring cylinder 5. Among them, the drive structure includes a first drive shaft 10 and a second drive shaft 11. The first drive shaft 10 passes through the first stirring cylinder 4 and the first evaporator 6 and is power-connected to the first stirring paddle 8. The second drive shaft 11 passes through the second stirring cylinder 5 and the second evaporator 7 and is power-connected to the second stirring paddle 9. The drive motor 14 drives the first stirring paddle 8 and the second stirring paddle 9 respectively or simultaneously through the first drive shaft 10 and the second drive shaft 11.

[0041] The drive motor 14 is directly clamped between the first stirring cylinder 4 and the second stirring cylinder 5. The drive motor 14 has a first output end 22 and a second output end 23. Preferably, the motor shaft of the drive motor 14 extends from both ends and respectively forms the first output end 22 and the second output end 23. The first output end 22 is power-connected to the first drive shaft 10, and the second output end 23 is power-connected to the second drive shaft 11.

[0042] Directly using the motor shaft of the drive motor to form the output end of the power assembly, the power of the drive motor can be directly transmitted to the stirring paddle, reducing the intermediate transmission process and making the power transmission more efficient.

[0043] It can be understood that a transmission structure may also be provided between the output end of the driving motor and the transmission shaft. For example, the transmission structure may be a reduction unit. The output end of the driving motor is power-connected to the reduction unit. The reduction unit has a first output end and a second output end. The first output end of the reduction unit is power-connected to the first driving shaft, and the second output end of the reduction unit is power-connected to the second driving shaft. Since the driving motor usually has a relatively high rotational speed, there is a large difference from the rotational speed required by the stirring paddle. By using the reduction unit, the driving motor can be decelerated, and the reduction unit can be used to achieve the output of multiple output ends. Moreover, the reduction unit can also increase the torque of the driving motor to ensure that the driving motor can achieve low-speed and high-torque output.

[0044] In the description of the present application, it should be understood that the orientation or positional relationship indicated by orientation words such as "front, rear, top, bottom, left, right", "lateral, vertical, perpendicular, horizontal" and "top, bottom" is usually based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present application and simplifying the description. Without contrary description, these orientation words do not indicate and imply that the device or element referred to must have a specific orientation or be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation on the protection scope of the present application; the orientation words "inside, outside" refer to the inside and outside of the contour of each component itself.

[0045] For the convenience of description, spatial relative terms such as "above...", "above...", "on the upper surface of...", "above" can be used here to describe the spatial positional relationship between a device or feature shown in the figure and other devices or features. It should be understood that the spatial relative terms are intended to include different orientations in use or operation other than the orientation described in the figure for the device. For example, if the device in the drawing is inverted, the device described as "above other devices or structures" or "above other devices or structures" will be positioned as "below other devices or structures" or "beneath other devices or structures" afterwards, but it does not mean that the actual device is inverted. Thus, the exemplary term "above..." can include two orientations of "above..." and "below...". The device can also be rotated 90 degrees in the same orientation or in other orientations, and corresponding explanations will be made for the spatial relative descriptions used here.

[0046] In addition, it should be noted that using words such as "first", "second" to limit components is only for the convenience of distinguishing the corresponding components. Without further explanation, the above words have no special definitions. Therefore, it should not be construed as a limitation on the protection scope of the present application.

[0047] The above description is only a preferred embodiment of the present application and an explanation of the technical principles applied. Those skilled in the art should understand that the scope of the application involved in the present application is not limited to the technical solutions formed by the specific combination of the above technical features, and should also cover other technical solutions formed by any combination of the above technical features or equivalent features without departing from the inventive concept of the application. For example, the technical solutions formed by mutually replacing the above features with the technical features (but not limited to) having similar functions disclosed in the present application are not listed one by one here.

Claims

1. A snow melter with stable transmission, comprising a machine shell and a power assembly located inside the machine shell, characterized in that, The snow melter further includes two processing modules located at the upper part of the casing. The rear ends of the processing modules are arranged oppositely. The processing module includes a mixing cylinder and mixing paddles arranged in the mixing cylinder. The power assembly includes a driving motor and a driving structure power-connected to the driving motor. The driving structure is clamped between the two processing modules. The driving structure includes a first driving shaft and a second driving shaft that pass through the mixing cylinder and are power-connected to the mixing paddles.

2. The snow melting machine with stable transmission according to claim 1, characterized in that, The driving motor includes a first output end and a second output end, and the first output end and the second output end are respectively power-connected to the first driving shaft and the second driving shaft.

3. The snow melting machine with stable transmission according to claim 2, wherein, The driving motor is clamped between the two processing modules, and the motor shaft of the driving motor extends out from both ends and respectively forms the first output end and the second output end.

4. The snow melting machine with stable transmission according to claim 2, characterized in that The driving motor is further provided with a transmission structure. The transmission structure is clamped between the two processing modules, and the transmission structure forms the first output end and the second output end.

5. The snow melting machine with stable transmission according to claim 4, wherein, The transmission structure includes a speed reduction unit, and the motor shaft of the driving motor drives the first output end and the second output end through the speed reduction unit.

6. The snowmelt machine with stable transmission according to claim 1, wherein, The power assembly further includes a clutch structure located between the driving motor and the driving structure. The clutch structure is respectively power-connected or separated from the first driving shaft and the second driving shaft.

7. The snow melting machine with stable transmission according to claim 6, wherein, The clutch structure includes a first clutch structure connected to the first driving shaft and a second clutch structure connected to the second driving shaft.

8. The snow melting machine with stable transmission according to claim 7, wherein, The first clutch structure includes a first output head and a first engagement head respectively connected to the driving motor and the first driving shaft. The second clutch structure includes a second output head and a second engagement head respectively connected to the driving motor and the second driving shaft.

9. The snowmelt machine with stable transmission according to claim 7, characterized in that, The power assembly further includes a triggering device for driving the first clutch structure and the second clutch structure.

10. The snow melting machine with stable transmission according to claim 9, wherein, The triggering device includes a trigger rod for controlling and pushing the first clutch structure or the second clutch structure; Alternatively, the triggering device includes a control unit and a pushing unit electrically connected to the control unit. The control unit controls the pushing unit and the pushing unit pushes the first clutch structure or the second clutch structure.