Snow melting machine
By setting the rear ends of the two sets of processing modules of the snow melt machine, the condensation pipeline and power components are clamped between the processing modules, the compressor and condenser are located in the case, and the fan dissipates heat, the problem of low space utilization of the snow melt machine in the home environment is solved, and more efficient refrigeration and convenient storage are achieved.
Patent Information
- Application Number
- CN202422472878.7
- 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
The existing snow melting machines have low space utilization in the home environment, occupy a large space, cannot be convenient for storage, and have a single function and do not cooperate with each other, which cannot meet the needs of home users.
A snow melting machine is designed. The rear ends of the two sets of processing modules are arranged opposite each other. The mixing drum, evaporator and stirring paddle are opposite each other at the rear end. The condensation pipeline and power assembly are clamped between the two sets of processing modules. The compressor and condenser are located in the casing. The fan dissipates the condenser and compressor heat to optimize the use of space.
It reduces the overall volume of the snow melt machine, improves space utilization, improves refrigeration efficiency, facilitates home use and storage, and is suitable for home kitchen environment.
Smart Images

Figure CN223169091U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of snow melting machines, in particular to a snow melting machine. Background Art
[0002] A snow melting machine is a device capable of producing molten ice sand. As an important part of existing catering and 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, on which there is a storage cavity for storing liquid beverages. 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. 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. Under the continuous stirring of the stirring paddle, a mixed snow melt is formed.
[0003] Existing snow melting machines are mostly used in commercial scenarios. When multiple different materials need to be processed, multiple snow melting machines can be set up, or multiple processing units can be arranged on the machine base, and each processing unit is independent of each other. Since the issue of occupied volume usually does not need to be considered in commercial scenarios, and the snow melting machine usually works continuously without stopping in a commercial use environment. However, with the continuous improvement of people's living standards, snow melting machines are also needed in some small stores and even home environments to improve different beverages. In such usage scenarios, existing snow melting machines have problems such as large occupied space, low space utilization rate, and being not intelligent and reliable enough in production, unable to meet people's needs. Especially due to their large volume, existing snow melting machines cannot be properly placed on a kitchen countertop or even an ordinary table for home use, and cannot be well stored, making the snow melting machine unable to truly meet the usage requirements in a home environment. Summary of the Invention
[0004] In view of the defects and deficiencies of the above-mentioned existing technology, the purpose of the present utility model is to provide a snow melting machine. On the premise of having at least two processing units, it solves the technical problems such as the single function and lack of cooperation of existing snow melting machines, and the complex arrangement of structures such as power components and refrigeration components, resulting in low space utilization rate of the snow melting machine, inconvenience in use and storage of the snow melting machine.
[0005] To solve the above technical problems, the present application provides a snow melter, which includes a housing and a refrigeration component and a power component located inside the housing. Among them, the snow melter further includes two processing modules located at the upper part of the housing. The processing module includes a mixing cylinder, an evaporator disposed inside the mixing cylinder, and a mixing paddle. The mixing paddle is sleeved outside the evaporator. The two processing modules are arranged opposite to each other at the rear end. The refrigeration component includes a compressor, a condenser communicated with the compressor, and a first condensation pipeline and a second condensation pipeline respectively communicated with the two evaporators. The connection ends of the first condensation pipeline and the second condensation pipeline with the two evaporators are clamped between the two processing modules.
[0006] According to the solution of the present application, the snow melter of the present application includes two processing modules. For 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 communicated with the compressor to generate low temperature. The mixing paddle is used to stir the materials held in the mixing cylinder to uniformly cool the materials and generate a snow-melt shape. For the convenience of the user's operation, 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 forward from the rear. 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. In the present application, the rear ends of the two processing modules are arranged opposite to each other, that is, the two mixing cylinders, evaporators, and mixing paddles are opposite to each other at the rear end. Thus, the connection ends of the first condensation pipeline and the second condensation pipeline respectively communicated with the two evaporators are clamped between the two mixing cylinders. The rear ends of the two processing modules are arranged opposite to each other, and the rear-end space of the mixing cylinder is used to accommodate the first condensation pipeline, the second condensation pipeline, and their connection ends. There is no need, as in the prior art, for each processing module, each condensation pipeline needs to be separately provided, and each separate condensation pipeline requires a separate accommodation space. Thus, the overall volume of the snow melter is compressed. Since the rear ends of the two mixing cylinders and the evaporators are adjacent to each other, by setting the first condensation pipeline and the second condensation pipeline with a shorter distance, the connection between the evaporator and the compressor can be achieved, reducing the heat loss of the condensation pipeline and further improving the processing efficiency of the snow melter. In particular, the snow melter usually also has a power component for driving the mixing paddle in the processing module, and the power component can also be clamped between the two processing modules. Thus, the space between the two mixing cylinders is used to accommodate both the power component and the condensation pipeline, further improving the space utilization rate. Finally, since the rear ends of the two processing modules are arranged opposite to each other, the front ends are respectively located on both sides of the snow melter, that is, the discharge ports of the two processing modules are located on both sides of the snow melter. When the user operates the discharge of one processing module, it will not be affected by the other processing module.
[0007] At the same time, the processing components of the existing snow melting machine extend in the front-back direction, which makes the products of the snow melting machine have relatively large dimensions in the front-back direction. This has no excessive impact when used commercially. However, when used in a household environment, the front-back depth of a general kitchen countertop or a general household tabletop is usually much smaller than the width. The existing snow melting machine is not suitable for use in such an environment. By extending the two sets of processing modules in the width direction on both sides, whether during use or storage, more space on both sides of the countertop is occupied, which can facilitate the placement and storage of the snow melting machine. And since the distance between the processing modules is compressed, the snow melting machine does not require an overly large size in the overall width direction.
[0008] As an optional solution, the first condensing pipe includes a first capillary tube and a first copper tube, and the second condensing pipe includes a second capillary tube and a second copper tube. The first capillary tube and the first copper tube, and the second capillary tube and the second copper tube are respectively connected to the two sets of evaporators, and the connection ends with the two sets of evaporators are clamped between the rear ends of the two sets of processing modules. By using the first condensing pipe and the second condensing pipe to communicate with the evaporators, the cooling capacity of the evaporators of the two-stage processing modules can be adjusted according to different processing requirements, and finally different production materials can be obtained. The evaporator cools the food ingredients. The refrigerant flowing into and out of the evaporator needs different states. Therefore, the capillary tube and the copper tube are respectively provided to realize the inflow and outflow of the refrigerant in different states. Among them, the first copper tube and the second copper tube are respectively connected to the evaporator and the compressor, and the first capillary tube and the second capillary tube are respectively connected to the evaporator and the condenser, and the compressor is then connected to the condenser. In this way, the processing of the evaporator can be better guaranteed, and it is also convenient to connect separately to reduce the volume occupied by the first condensing pipe and the second condensing pipe between the two sets of processing modules.
[0009] As an optional solution, the first capillary tube and the second capillary tube communicate with the two sets of evaporators and the condenser, and a condensing main pipe is also provided between the first capillary tube and the second capillary tube and the condenser. Using the condensing main pipe to connect the first capillary tube, the second capillary tube and the condenser avoids the need for the condenser to set up a connection structure for each capillary tube, simplifies the structure of the condenser itself, and improves the general adaptability of the condenser. Usually, the condenser is arranged in the machine shell, and in order to support the two sets of processing modules, the machine shell usually has sufficient internal volume. Therefore, it can be used to fully install the condenser and the condensing main pipe; further, by using a replaceable condensing main pipe to connect with the condenser, other functional modules can be superimposed according to needs.
[0010] As an alternative solution, the first capillary tube and the second capillary tube connect the condenser and the two groups of evaporators, and solenoid valves are respectively arranged between the first capillary tube and the second capillary tube and the condenser. The solenoid valves are used to control the first capillary tube and the second capillary tube respectively. When the processing module reaches the preset refrigeration requirement, the cooling supply to the evaporator can be controlled to be disconnected to avoid overcooling the food ingredients; when one of the processing modules does not need to be processed, the cooling supply to it can also be controlled to be cut off to reduce energy consumption.
[0011] As an alternative solution, a compression main pipe is further arranged between the first copper tube and the second copper tube and the compressor. Correspondingly, the compression main pipe is used to connect the compressor, the first copper tube and the second copper tube to improve the general adaptability of the compressor, and at the same time make full use of the space inside the casing to accommodate the compression main pipe.
[0012] As an alternative solution, the compressor and the condenser are arranged inside the casing and below the processing module, and a blower for dissipating heat from the condenser is also arranged inside the casing. As mentioned above, arranging the compressor and the condenser inside the casing and below the processing module can save the installation space of the compressor casing, the compressor and the condenser, and improve the utilization efficiency of the casing space of the snow melting machine. A blower is further arranged to dissipate heat from the condenser to improve the heat dissipation efficiency of the condenser, and further improve the refrigeration efficiency of the refrigeration component, ensuring that the snow melting machine can process quickly.
[0013] As an alternative solution, the blower is located between the condenser and the compressor. The blower is located between the condenser and the compressor, which can dissipate heat from both the condenser and the compressor at the same time, further improving the cooling effect of the refrigeration component and ensuring the continuous and efficient operation of the refrigeration component.
[0014] As an alternative solution, an air inlet communicating with the outside is further arranged at the bottom of the casing.
[0015] As an alternative solution, an air outlet communicating with the outside is further arranged on the rear side wall of the casing. Usually, the compressor, the condenser and the blower are arranged inside the casing and below the processing module to make full use of the space inside the casing and improve the space utilization rate of the snow melting machine; directly arranging an air inlet and a corresponding air outlet on the casing facilitates introducing the outside cold air into the casing through the blower, and at the same time blowing out the hot air inside the casing to improve the cooling effect on the compressor and the condenser.
[0016] As an alternative, the power assembly is clamped between two groups of the processing modules. Further clamping the power assembly between two groups of processing modules allows the mixing drums of the two processing modules to be arranged adjacent to each other, which not only compresses the volume of the entire snow melter, but also enables the distance and size of the drive module between the two processing modules to be compressed. Due to the shortened distance, the drive motor can more efficiently drive the mixing paddle through the drive structure, avoiding the condensation of materials on the condenser due to untimely mixing. Description of the Drawings
[0017] Figure 1 Schematic diagram of the overall structure of the first embodiment of the snow melter according to the present invention.
[0018] Figure 2 Schematic diagram of the blowing direction of the fan in the first embodiment of the snow melter according to the present invention.
[0019] Figure 3 Schematic diagram of the arrangement structure of the fan and the compressor in the first embodiment of the snow melter according to the present invention.
[0020] Figure 4 Schematic diagram of the arrangement and blowing direction of the fan and the compressor in the second embodiment of the snow melter according to the present invention. Detailed Description of the Invention
[0021] In order to more clearly illustrate the overall concept of the present application, the following will be described in detail by way of examples in conjunction with the 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 only the parts related to the application are shown in the drawings for the sake of convenience of description.
[0022] It should be noted that, without conflict, the embodiments in the present application and the features in the embodiments can be combined with each other. The following will refer to the drawings and describe the present application in detail in conjunction with the embodiments. The terms used in the present application are only for the purpose of describing specific embodiments and are not intended to limit the present application. The singular forms "a", "the" and "said" used in the present 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.
[0023] Such as Figures 1-4As shown in the figure, the present utility model discloses a snow melter, which includes a machine shell 1, a refrigeration component and a power component located inside the machine shell 1. The snow melter further includes two processing modules located at 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 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, so that the rear ends of the first stirring cylinder 4 and the second stirring cylinder 5 are close to each other.
[0024] The refrigeration component includes a compressor 20 and a condenser 21. The compressor 20 and the condenser 21 are connected to the first evaporator 7 through a first condensation pipeline, and the compressor 20 and the condenser 21 are connected to the second evaporator 8 through a second condensation pipeline. The connection end of the first condensation pipeline and the first evaporator, and the connection end of the second condensation pipeline and the second evaporator are clamped between the first processing module and the second processing module at the same time.
[0025] By arranging two processing modules with opposite rear ends, the snow melter can directly form an installation space by means of the rear ends of the first stirring cylinder and the second stirring cylinder, that is, it reduces the separately arranged space installation structure, simplifies the installation structure of the whole snow melter, and reduces the space volume occupied by the installation structure. Furthermore, the volume of the whole snow melter is optimized and reduced. The adjacent two processing modules also shorten the connection distance of the first condensation pipeline and the second condensation pipeline respectively connecting the two processing modules, reduce the heat loss of the first condensation pipeline and the second condensation pipeline, and improve the refrigeration efficiency. It is also convenient for the power component and the refrigeration component to be clamped between the two processing modules together, better improving the space utilization rate of the snow melter. The horizontally extended processing module is convenient for the use and storage of the snow melter, especially suitable for the home use environment, and improves the user satisfaction of the snow melter.
[0026] Embodiment 1.
[0027] As the first embodiment of the snow melter of the present utility model, as Figures 1-3As shown in the figure. Specifically, the snow melter includes a housing 1, a refrigeration component and a power component are provided inside the housing 1, and two processing modules are arranged above the housing 1, including a first processing module 2 and a second processing module 3. Among them, the first processing module 2 includes a first stirring cylinder 4, a first evaporator 6 and a first stirring paddle 8, and the second processing module includes a second stirring cylinder 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 stirring cylinder 4, and the first stirring paddle 8 is sleeved outside the first evaporator 6. The first stirring cylinder 4 is used to hold processed food materials. The first evaporator 6 is communicated with the refrigeration component for cooling. The first stirring paddle 8 drives the food materials to roll over 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 inlet 10 is further provided above the first stirring cylinder 4, and the food materials are put into the first stirring cylinder 4 through the first feed inlet 10; a first handle 12 and a first discharge port 13 are provided at the front end of the first stirring cylinder 4. Operating the first handle 12 to open the first discharge port 13, and under the drive of the paddle 8, the food materials in the first stirring cylinder 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 stirring cylinder 5. The second processing module 3 further includes a second feed inlet 11, a second handle 14 and a second discharge port 15.
[0028] The refrigeration component includes a compressor 16 and a condenser 17 arranged inside the housing 1. The compressor 16 and the condenser 17 are communicated with the first evaporator 6 through a first condensation pipeline and with the second evaporator 7 through a second condensation pipeline. Specifically, the first condensation pipeline includes a first capillary tube 19 and a first copper tube 21, and the first capillary tube 19 and the first copper tube 21 are communicated with the first evaporator 6 at the rear end of the first processing module; the second condensation pipeline includes a second capillary tube 20 and a second copper tube 22, and the second capillary tube 20 and the second copper tube 22 are communicated with the second evaporator 7 at the rear end of the second processing module. Thus, the connection ends of the first condensation pipeline and the second condensation pipeline are located between two opposite processing modules. The first capillary tube 19 and the second capillary tube 20 are communicated with the condenser 17 through a condensation main pipeline 23, and the first copper tube 21 and the second copper tube 22 are communicated with the compressor 16 through a compression main pipeline 24. Preferably, a first solenoid valve 25 and a second solenoid valve 26 are respectively provided between the first capillary tube 19 and the second capillary tube 20 and the condensation main pipeline 17.
[0029] As a preferred solution, as Figure 1 、 2, as shown in FIGS. 3, the refrigeration assembly further includes a blower 18 disposed in the housing 1, and the blower 18 is located between the condenser 17 and the compressor 16. As Figure 3 shown, the compressor 16, the condenser 17 and the blower 18 are directly mounted on the bottom wall of the housing 1, and then the side wall of the housing 1 is covered on the bottom wall to completely shield the compressor 16, the condenser 17 and the blower 18. An air inlet 29 is provided at the bottom of the housing 1, and the compressor 16 is located on the downstream side of the air outlet of the blower 18. When the blower 18 operates, it blows the air flow and forms a negative pressure in the housing 1. Therefore, the external air flow is sucked into the housing 1 from the air inlet 29, first flows through the condenser 17 to dissipate heat from the condenser 17, then passes through the blower 18, and then flows through the compressor 16. Preferably, an air outlet communicating with the outside is further provided on the rear side wall of the housing 1, and the internal hot air flow blows out from the air outlet on the rear side of the housing 1, thereby forming a heat dissipation air duct for simultaneously dissipating heat from the condenser 17 and the compressor 16 in the housing 1.
[0030] Preferably, the power assembly includes a driving motor 30 and a driving structure, and the driving motor 30 and the driving structure are clamped together between the first processing module 2 and the second processing module 3. With such a setting, a single driving motor 30 can be used to simultaneously drive the first stirring paddle 8 and the second stirring paddle 9, without separately providing driving motors for the first stirring paddle 8 and the second stirring paddle 9. While reducing the volume, it can also improve the effective utilization rate of the driving motor, and reduce the transmission distance between the driving motor and the first and second stirring paddles, thereby improving the transmission efficiency.
[0031] The first mixing drum and the second mixing drum are oppositely arranged at the rear end to form an installation space, and then the first condensation pipe and the second condensation pipe are clamped between the first mixing drum and the second mixing drum. Preferably, the power assembly can also be further clamped between the first mixing drum and the second mixing drum. This reduces the structural volume and the extra structural space increased by separately arranging an installation structure for the snow melter. Without affecting the normal accommodation of processed food materials by the mixing drum, the volume of the non-processing space of the snow melter is reduced, thereby improving the effective space utilization rate of the snow melter. In addition, both the first condensation pipe and the second condensation pipe are respectively communicated with the evaporator through the space between the first mixing drum and the second mixing drum, shortening the connection distance between the first condensation pipe and the second condensation pipe, reducing heat loss, and improving the refrigeration efficiency. And because the first condensation pipe and the second condensation pipe are arranged at the same spatial position, an insulation component can be further arranged in the installation space to further prevent heat loss of the first condensation pipe and the second condensation pipe, without the need for additional cost increase when each is separately arranged. Finally, since the rear ends of the two processing modules are oppositely arranged, the front ends are respectively located on both sides of the snow melter, that is, the discharge ports of the two processing modules are located on both sides of the snow melter. When the user operates the discharge of one processing module, it will not be affected by the other processing module.
[0032] As an optional solution, the pipelines connecting the first condensation pipe, the second condensation pipe to the evaporator and the compressor can also be set as the same connecting pipes to improve the general adaptability of the cooperation.
[0033] As an optional solution, the first capillary tube and the second capillary tube can be directly communicated with the condenser without the need to set a separate condensation main pipe. In this way, the connection efficiency of the first capillary tube and the second capillary tube can be improved through a specific condenser, and the connection control of the first capillary tube and the second capillary tube can be directly set on the condenser. Correspondingly, the first copper tube and the second copper tube can also be directly communicated with the compressor without the need to set a compression main pipe. <T
[0034] As an optional solution, the air inlet and the air outlet positions of the machine base can also be selected according to different placement positions. For example, the air inlet and the air outlet can be directly arranged on both sides of the machine shell. After the gas flows in integrally, it is blown out directly from the other side by the blower; or, the air inlet and the air outlet are both arranged at the rear side or the bottom of the machine shell, and a separate air duct structure is arranged inside the machine shell to better introduce the air flow to the condenser.
[0035] As an optional solution, the blower can also be arranged on one side of the condenser and the compressor. For example, the condenser and the compressor are arranged side by side, and the blower is arranged in parallel with the condenser and the compressor to blow the air flow to the condenser and the compressor at the same time.
[0036] As an alternative solution, an installation structure for separately installing the compressor, condenser and blower may also be provided inside the casing.
[0037] As an alternative solution, if the compressor and condenser can fully meet the processing requirements independently, the blower may not be added anymore.
[0038] As an alternative solution, the air flow blown by the blower inside the casing may be from left to right or from right to left.
[0039] Embodiment 2.
[0040] As the second embodiment of a snow melting machine according to the present utility model, as Figure 4 shown, compared with Embodiment 1, the discharge positions of the compressor, condenser and blower in this embodiment are different. It should be noted that the specific Embodiment 1 and Embodiment 2 described separately do not mean that the cases of the two embodiments are completely independent of each other. It is only to specifically illustrate two preferred technical solutions, and the technical features and technical solutions of the two embodiments are common and can be mutually borrowed.
[0041] As Figure 4 shown, inside the casing 1, the compressor 16 is located at the front side of the snow melting machine, the condenser 17 is located at the rear side of the compressor 16, and the blower 18 is clamped between the compressor 16 and the condenser 17. Air inlets are provided on both sides of the casing 1, and an air outlet is provided at the rear side of the casing 1. The blower 18 drives the air flow to flow into the casing from the air inlets, cools the compressor 16 and the condenser 17, and then discharges from the rear end.
[0042] Since the first condensation pipe and the second condensation pipe are directly clamped between the first processing module and the second processing module, the extension distance of the first condensation pipe and the second condensation pipe is reduced, thereby improving the processing efficiency of the refrigeration component. Correspondingly, the heat generation of the compressor and the condenser is relatively increased. Air inlets are provided on both sides, and an air outlet is provided at the rear side, which fully ensures the cooling of the compressor and the condenser, so that the compressor, the condenser, and the corresponding first evaporator and second evaporator can all stably and reliably complete the refrigeration process. The air outlet is located at the rear side, which can also reduce the impact of the discharged hot air and air flow noise on the user.
[0043] As an alternative solution, the compressor, condenser and blower may also be arranged horizontally.
[0044] As an alternative solution, the compressor and condenser are arranged horizontally at the front side, and the blower is located at the rear side and arranged in parallel.
[0045] In the description of the present application, it should be understood that the orientation or positional relationship indicated by orientation words such as "front, back, top, bottom, left, right", "horizontal, vertical, perpendicular, horizontal" and "top, bottom", etc. 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 explanations, these orientation words do not indicate or imply that the devices or elements 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 relative to the contour of each component itself.
[0046] For ease of description, spatial relative terms such as "above", "over", "on the upper surface", "above-mentioned", etc. can be used here to describe the spatial positional relationship between a device or feature shown in the drawings and other devices or features. It should be understood that spatial relative terms are intended to encompass different orientations in use or operation other than the orientation described in the drawings for the device. For example, if the device in the drawing is inverted, the device described as "above" or "over" other devices or structures will then be positioned "below" or "beneath" other devices or structures, but it does not mean that the actual device is inverted. Thus, the exemplary term "above" can include both the orientations of "above" and "below". The device can also be rotated 90 degrees in the same orientation or in other orientations, and corresponding interpretations should be made for the spatial relative descriptions used here.
[0047] In addition, it should be noted that the use of words such as "first", "second", etc. to limit components is only for the convenience of differentiating the corresponding components. Without additional explanations, the above words have no special definitions. Therefore, it should not be construed as a limitation on the protection scope of the present application.
[0048] The above description is only the preferred embodiments of the present application and an explanation of the applied technical principles. 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 application concept. For example, the technical solutions formed by mutually replacing the above features with the (but not limited to) technical features with similar functions disclosed in the present application are not exemplified one by one here.
Claims
1. A snow melter, comprising a housing and a refrigeration component and a power component located within the housing, characterized in that, The snow melter further includes two processing modules located at the upper part of the casing. The processing module includes a mixing cylinder, an evaporator disposed in the mixing cylinder, and a mixing paddle. The mixing paddle is sleeved outside the evaporator. The rear ends of the two processing modules are disposed opposite to each other. The refrigeration assembly includes a compressor, a condenser communicated with the compressor, a first condensation pipeline and a second condensation pipeline respectively communicated with the two evaporators. The connection ends of the first condensation pipeline and the second condensation pipeline with the two evaporators are clamped between the two processing modules.
2. The snow melter according to claim 1, characterized in that, The first condensation pipeline includes a first capillary tube and a first copper tube. The second condensation pipeline includes a second capillary tube and a second copper tube. The first capillary tube and the first copper tube, and the second capillary tube and the second copper tube are respectively connected to the two evaporators, and the connection ends with the two evaporators are clamped between the rear ends of the two processing modules.
3. The snow melting machine according to claim 2, wherein, The first capillary tube and the second capillary tube communicate the two evaporators and the condenser, and a condensation main pipeline is further disposed between the first capillary tube and the second capillary tube and the condenser.
4. The snow melting machine according to claim 2, wherein The first capillary tube and the second capillary tube communicate the condenser and the two evaporators, and solenoid valves are respectively disposed between the first capillary tube and the second capillary tube and the condenser.
5. The snow melting machine according to claim 2, characterized in that, A compression main pipeline is further disposed between the first copper tube and the second copper tube and the compressor.
6. The snow melting machine according to claim 1, wherein The compressor and the condenser are disposed in the casing and below the processing module, and a blower for dissipating heat from the condenser is further disposed in the casing.
7. The snow melting machine according to claim 6, characterized in that, The blower is located between the condenser and the compressor.
8. The snow melter according to claim 6, characterized in that, An air inlet communicated with the outside is further disposed at the bottom of the casing.
9. The snow melter according to claim 8, wherein, An air outlet communicated with the outside is further disposed on the rear side wall of the casing.
10. The snow melting machine according to claim 1, characterized in that, The power assembly is clamped between the two processing modules.