Frame type supporting structure and beverage making machine
Through a frame-type support structure and optimized air circulation design, the problems of shaking and maintenance during the use of beverage making machines have been solved, achieving stable operation and efficient maintenance of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-14
- Publication Date
- 2026-03-27
AI Technical Summary
Beverage making machines are prone to shaking due to collisions or vibrations during placement and use, and the outer casing is fixed and difficult to open quickly, affecting equipment stability and maintenance efficiency.
The frame-type support structure, including the base, first bracket, second bracket and top shell assembly, forms a stable installation space, distributes weight and external pressure, ensures centralized management and functional coordination of the internal components of the equipment, and optimizes air circulation through ventilation holes.
It improves the structural stability of the equipment and the working environment of its internal components, simplifies the maintenance process, and enhances the operational reliability and production efficiency of the equipment.
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Figure CN224038966U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of beverage manufacturing machine, in particular to frame type support structure and beverage manufacturing machine. BACKGROUND
[0002] The beverage manufacturing machine is in actual placement and use scene, is subjected to inadvertent collision or the vibration produced by the equipment self operation, can appear to shake even to dump, influence equipment normal operation. When the equipment appears the breakdown or needs to carry out daily cleaning maintenance, because the shell fixed difficultly, equipment is opened fast again. UTILITY MODEL CONTENT
[0003] Based on this, it is necessary to provide a frame type support structure and beverage manufacturing machine for the structural stability problem of the existing beverage machine manufacturing machine.
[0004] A frame type support structure, comprising: a base; a first support, the first support is arranged on the base; a second support, the second support is arranged on the base, the second support and the first support are arranged at intervals; a top shell assembly, the top shell assembly is arranged on the first support and the second support, and the top shell assembly, the first support, the base and the second support form an installation space.
[0005] The application discloses a frame type support structure, by arranging the first support and the second support on the base respectively and at intervals, they play a strong supporting role to the top shell assembly from different positions. The arrangement of the support can share the weight borne by the top shell assembly and the pressure, impact force and the like possibly from the outside, effectively prevent the top shell assembly from deforming, sinking and the like, guarantee the structural integrity of the installation space, so that various equipment components installed in the installation space can work in a relatively stable environment. Through the installation space formed between the top shell assembly, the first support, the base and the second support, centralized management of the internal components of the equipment is realized. Various components with different functions can be placed in this relatively independent space, which is convenient for overall function coordination and avoids problems such as line disorder and mutual interference caused by scattered placement of components, improves the compactness and logicality of the internal structure of the equipment, makes the operation of the equipment more stable and reliable, and also facilitates subsequent maintenance and troubleshooting work.
[0006] In one of the embodiments, a control panel and a back panel are further included, which are located on opposite sides of the base and the top shell assembly, and are connected to the base and the top shell assembly respectively. The control panel and the back panel are located on opposite sides, which forms a clear functional division, helps to improve the overall coordination of the device, and makes the user focus more on the functional operation of the control panel when operating the device. Meanwhile, the maintenance personnel can pay more attention to the internal components and circuit conditions from the back panel side when maintaining and repairing the device, which improves the efficiency of device use and maintenance, and makes the overall design of the device more reasonable and orderly.
[0007] In one of the embodiments, a side plate assembly is further included, which is two in number, and is located on opposite sides of the base and the top shell assembly respectively, and is connected to the base and the top shell assembly respectively. The side plate assembly, the base, the top shell assembly, the control panel and the back panel form an accommodation space, and the first support and the second support are located in the accommodation space. The side plate assembly participates in forming the accommodation space, and together with other components, completely wraps the first support, the second support and various device components placed in the space. This complete space forming method provides a relatively closed and independent working environment for the internal components, effectively blocks dust, water vapor and sundries from entering the accommodation space from the side, and improves the working stability and service life of the internal components. Meanwhile, the staff can maintain and clean the components in the installation space by opening one side of the side plate assembly.
[0008] In one of the embodiments, a first ventilation hole is formed in the side plate assembly, which communicates with the installation space. The side plate assembly is provided with a ventilation hole communicating with the installation space, which realizes multi-directional air circulation and optimizes the air circulation path inside the device. This helps to evenly dissipate the heat in the installation space and avoid local overheating.
[0009] In one of the embodiments, a second ventilation hole is formed in the back panel, which communicates with the installation space. The back panel is provided with a ventilation hole communicating with the installation space, which realizes multi-directional air circulation and optimizes the air circulation path inside the device. The second ventilation hole in the back panel communicates with the installation space, which provides a direct and effective dissipation path for the heat generated by the components in the installation space during operation.
[0010] In one of the embodiments, the top shell assembly comprises an upper shell and an outer shell assembly, the upper shell is connected with the control panel away from the base, the upper shell is connected with the first support, the upper shell is provided with a mounting groove, the upper shell is used for mounting the evaporator, the outer shell assembly is connected with the upper shell and the second support respectively, a first cavity is formed between the inner wall of the outer shell assembly and the back plate, and the first cavity is communicated with the mounting space. The upper shell is provided with a mounting groove, and the upper shell is used for mounting the evaporator. This design provides a special placement position for the evaporator, so that the evaporator can be stably installed in the equipment, and the mounting groove facilitates the collection of condensed water generated during the operation of the evaporator. The inner wall of the outer shell assembly and the back plate form a first cavity, which expands the additional functional space of the equipment. The first cavity is communicated with the mounting space, which creates good conditions for the air circulation inside the equipment, and the communication design enables the functional components arranged in the first cavity to work better with the components in the mounting space.
[0011] In one of the embodiments, the upper shell comprises an upper bottom shell and a mixing container, the upper bottom shell is arranged on the first support and the outer shell assembly, the upper bottom shell is provided with the mounting groove, the mixing container is provided with a second cavity, and the first cavity is communicated with the second cavity. The first cavity is communicated with the second cavity, which creates good conditions for the air circulation inside the equipment, and the communication design enables the functional components arranged in the first cavity to work better with the components in the second cavity.
[0012] In one of the embodiments, the mixing container comprises a mixing container body and a cover, the mixing container body is arranged on the upper bottom shell, the mixing container body is provided with the second cavity, an opening is arranged on the mixing container body and communicated with the second cavity, and the cover is movably arranged on the mixing container body and located at the opening. An opening is arranged on the mixing container body and communicated with the second cavity, so that the operator can easily pour the material into the second cavity through the opening without the need for complex auxiliary tools or special operation procedures, thereby improving the efficiency and accuracy of adding materials. When it is necessary to observe, detect or sample the substances in the cavity, the opening provides a convenient way. The cover is movably arranged on the mixing container body and located at the opening, and when the cover is in the closed state, it can effectively block dust, impurities and microorganisms in the outside world from entering the second cavity. The movable arrangement of the cover makes it highly flexible and convenient during use. The cover is opened when it is necessary to add materials, stir, observe and other operations, and it can be quickly closed after the operation is completed.
[0013] In one of the embodiments, a water collecting box and a water pipe are further included, the water collecting box is arranged on the control panel and located at a side away from the base, the upper shell is provided with a water hole communicating with the mounting groove, and the water pipe communicates with the water hole and the water collecting box respectively. The water collecting box is arranged on the control panel and located at a side away from the base, so that it is located at a proper position for collecting accumulated water. The condensed water generated by the evaporator is accumulated in the mounting groove, and the accumulated water flows into the water collecting box through the water hole and the water pipe, so as to prevent the accumulated water from penetrating into the electronic components and the circuit and causing short circuit or rust. The water collecting box is arranged on the control panel and located at a side away from the base, and is located outside the mounting space. When the water collecting box collects a certain amount of accumulated water, the user or the maintenance personnel need not disassemble the equipment complicatedly, but only need to take down the water collecting box, pour out the accumulated water and clean the water collecting box, so that the operation process is simple and fast.
[0014] In one of the embodiments, the first support is provided with a positioning hole, the bottom of the top shell assembly is provided with a positioning rib, and the positioning rib is fitted and mounted with the positioning hole. In the assembly process of the equipment, the positioning rib at the bottom of the top shell assembly is only needed to be aligned with the positioning hole on the first support, so that the correct mounting position of the top shell assembly can be quickly determined, without spending a lot of time to repeatedly measure and adjust the position, so that the assembly efficiency is greatly improved. Meanwhile, after the positioning rib is fitted with the positioning hole, a stable connection structure is formed between the two. In the operation process of the equipment, whether the vibration generated by the self operation or the external force such as the external impact, shaking and the like is received, the top shell assembly is not easy to be displaced or loosened relative to the first support. The stable connection guarantees the integrity of the whole equipment structure, and avoids the connection loosening, deformation and the like of other components caused by the instability of the top shell assembly.
[0015] The second aspect of the present application discloses a beverage manufacturing machine, comprising: the frame support structure of any one of the preceding embodiments; an evaporator arranged on the top shell assembly; a motor assembly arranged on the top shell assembly; a condensing assembly arranged on the base and located in the mounting space; and a stirring assembly sleeved on the evaporator, and the motor assembly is in transmission connection with the stirring assembly.
[0016] The beverage manufacturing machine disclosed in the application can drive the stirring assembly to rotate and stir through the motor assembly, ensure that the beverage uniformly exchanges heat on the evaporator surface, accelerate the ice formation speed, and ensure uniform mixing of the beverage ingredients, thereby improving the quality of the frozen beverage. The close connection and reasonable layout ensure the efficiency and stability of power transmission between the evaporator and the stirring assembly, so that the evaporator can stably operate in the predetermined working mode, achieve better refrigeration and stirring effect, and improve the production efficiency of the beverage manufacturing machine. The condensing assembly is arranged on the base and located in the mounting space. The refrigerant absorbs heat at the evaporator, returns to the condensing assembly to release heat, and completes the refrigeration cycle. The condensing assembly is arranged in the mounting space with good heat dissipation, and the released heat is transmitted to the outside through the ventilation holes formed in the side plate assembly or the back plate, thereby achieving heat dissipation. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 It is a first perspective view of a frame support structure.
[0018] Figure 2 It is an exploded view of a frame support structure.
[0019] Figure 3 It is a second perspective view of a frame support structure.
[0020] Figure 4 It is a third perspective view of a frame support structure.
[0021] Figure 5 It is Figure 2 A partial enlarged view of the A part.
[0022] Figure 6 It is Figure 3 A partial enlarged view of the B part.
[0023] Figure 7 It is Figure 4 A partial enlarged view of the C part.
[0024] Figure 8 It is a perspective view of a beverage manufacturing machine.
[0025] Figure 9 It is a side view of a beverage manufacturing machine.
[0026] Figure 10 It is a partial exploded view of a beverage manufacturing machine.
[0027] Figure 11 It is a sectional view of a mixing container.
[0028] Correspondence between the reference signs and the component names is as follows:
[0029] 100 frame support structure
[0030] 1 base
[0031] 2. First bracket, 201 positioning hole;
[0032] 3. Second support;
[0033] 4. Top shell assembly, 41. Upper shell, 4101. Mounting groove, 4102. Drainage hole, 411. Upper bottom shell, 412. Mixing container, 41201. Second cavity, 4121. Mixing container body, 412101. Opening, 4122. Cover, 42. Outer shell assembly, 4201. First cavity, 43. Positioning rib.
[0034] 5. Control Panel;
[0035] 6. Back panel;
[0036] 7. Side panel assembly;
[0037] 8 water collection boxes;
[0038] 9 water pipes;
[0039] 200 evaporator;
[0040] 300 motor assembly;
[0041] 400 condenser assembly. Detailed Implementation
[0042] To better understand the above-mentioned objectives, features, and advantages of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.
[0043] Many specific details are set forth in the following description in order to provide a full understanding of the invention. However, the invention may also be practiced in other ways different from those described herein, and therefore the scope of protection of the invention is not limited to the specific embodiments disclosed below.
[0044] The following describes some embodiments of the frame support structure and beverage manufacturing machine of the present invention with reference to the accompanying drawings.
[0045] like Figures 1 to 2 As shown, this embodiment discloses a frame-type support structure, including: a base 1; a first bracket 2, which is disposed on the base 1; a second bracket 3, which is disposed on the base 1, and the second bracket 3 and the first bracket 2 are spaced apart; and a top shell assembly 4, which is disposed on the first bracket 2 and the second bracket 3, and an installation space is formed between the top shell assembly 4, the first bracket 2, the base 1 and the second bracket 3.
[0046] The frame support structure disclosed in the present application, by arranging the first support 2 and the second support 3 on the base 1 respectively and at intervals, they play a strong supporting role to the top shell assembly 4 from different positions. The arrangement of the supports can share the weight borne by the top shell assembly 4 and the pressure, impact force and the like possibly from the outside, effectively prevent the top shell assembly 4 from deforming, sinking and the like, guarantee the structural integrity of the installation space, so that various equipment components installed in the installation space can work in a relatively stable environment. Through the installation space formed between the top shell assembly 4, the first support 2, the base 1 and the second support 3, the centralized management of the internal components of the equipment is realized. Various components with different functions can be placed in this relatively independent space, which is convenient for overall functional coordination and avoids problems such as line clutter and mutual interference caused by scattered placement of components, improves the compactness and logicality of the internal structure of the equipment, makes the operation of the equipment more stable and reliable, and also facilitates subsequent maintenance and troubleshooting work.
[0047] As shown in Figure 2 In addition to the features of the above-mentioned embodiments, the present embodiment further limits that: it further comprises a control panel 5 and a back plate 6, the control panel 5 and the back plate 6 are located on opposite sides of the base 1 and the top shell assembly 4, the control panel 5 is connected with the base 1 and the top shell assembly 4 respectively, and the back plate 6 is connected with the base 1 and the top shell assembly 4 respectively. The control panel 5 and the back plate 6 are located on opposite sides, and this layout forms a clear functional division, which helps to improve the overall coordination of the equipment, so that the user can focus more on the functional operation on the control panel 5 when operating the equipment, and the maintenance personnel can also more targetedly pay attention to the internal components and line conditions from the back plate 6 side when maintaining and repairing the equipment, which improves the efficiency of equipment use and maintenance, and also makes the overall design of the equipment more reasonable and orderly.
[0048] As shown in Figure 2 In addition to the features of the above-mentioned embodiments, the present embodiment further limits that: it further comprises a side plate assembly 7, the number of the side plate assembly 7 is two, the two side plate assemblies 7 are located on opposite sides of the base 1 and the top shell assembly 4 respectively, the side plate assembly 7 is connected with the base 1 and the top shell assembly 4 respectively, and the two side plate assemblies 7, the base 1, the top shell assembly 4, the control panel 5 and the back plate 6 enclose to form an accommodation space, and the first support 2 and the second support 3 are located in the accommodation space. The side plate assembly 7 participates in enclosing to form the accommodation space, and together with other components completely wraps the first support 2, the second support 3 and various equipment components placed in the space. This complete space enclosing mode provides a relatively closed and independent working environment for the internal components, effectively blocks dust, water vapor, sundries and the like from the side into the accommodation space, improves the working stability and service life of the internal components. At the same time, the staff can open one side of the side plate assembly to maintain and clean the components in the installation space.
[0049] like Figure 2 As shown, in addition to the features of the above embodiments, this embodiment further specifies that: a first ventilation hole is provided on the side panel assembly 7, and the first ventilation hole communicates with the installation space. The ventilation hole in the side panel assembly 7, communicating with the installation space, enables multi-directional airflow and optimizes the air circulation path inside the equipment. This helps to evenly dissipate heat within the installation space and avoids localized overheating.
[0050] like Figure 2 As shown, a second ventilation hole is further provided on the back panel 6, which communicates with the installation space. The presence of ventilation holes communicating with the installation space on the back panel 6 enables multi-directional airflow and optimizes the air circulation path within the equipment. The second ventilation hole on the back panel 6, communicating with the installation space, provides a direct and effective way to dissipate heat generated by the components within the installation space during operation.
[0051] like Figures 2 to 10 As shown, in addition to the features of the above embodiments, this embodiment further defines: the top shell assembly 4 includes an upper shell 41 and an outer shell assembly 42. The upper shell 41 is connected to the end of the control panel 5 away from the base 1, and is connected to the first bracket 2. The upper shell 41 is provided with a mounting groove 4101 for mounting the evaporator 200. The outer shell assembly 42 is connected to the upper shell 41 and the second bracket 3 respectively. The inner wall of the outer shell assembly 42 and the back plate 6 enclose a first cavity 4201, which communicates with the installation space. The upper shell 41 is provided with a mounting groove 4101 for mounting the evaporator 200. This design provides a dedicated placement position for the evaporator 200, allowing it to be stably installed in the equipment. The mounting groove 4101 also facilitates the collection of condensate generated during the operation of the evaporator 200. The inner wall of the outer shell assembly 42 and the back plate 6 enclose the first cavity 4201, which provides additional functional space for the equipment. The first cavity 4201 is connected to the installation space, which creates good conditions for air circulation inside the equipment. The connected design also allows the functional components arranged in the first cavity 4201 to work better with the components in the installation space.
[0052] like Figures 4 to 10As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the upper housing 41 includes an upper bottom housing 411 and a mixing container 412. The upper bottom housing 411 is disposed on the first support 2 and the outer housing assembly 42. The upper bottom housing 411 is provided with a mounting groove 4101. The mixing container 412 is provided with a second cavity 41201. The first cavity 4201 and the second cavity 41201 are in communication. The communication between the first cavity 4201 and the second cavity 41201 creates good conditions for air circulation inside the equipment, and the communication design allows the functional components arranged in the first cavity 4201 to work better with the components in the second cavity 41201.
[0053] like Figure 9 and Figure 11 As shown, in addition to the features of the above embodiments, this embodiment further defines: the mixing container 412 includes a mixing container body 4121 and a cover 4122. The mixing container body 4121 is disposed on the upper bottom shell 411. The mixing container body 4121 has a second cavity 41201. An opening 412101 communicating with the second cavity 41201 is provided on the mixing container body 4121. The cover 4122 is movably disposed on the mixing container body 4121 and located at the opening 412101. The opening 412101 on the mixing container body 4121 communicating with the second cavity 41201 allows operators to easily pour materials into the second cavity 41201 through the opening 412101 without the need for complex auxiliary tools or special operating procedures, thus improving the efficiency and accuracy of adding materials. The opening 412101 also provides a convenient way to observe, test, or sample the substances inside the cavity. The cover 4122 is movably mounted on the mixing container body 4121 and located at the opening 412101. When the cover 4122 is closed, it effectively prevents external dust, impurities, and microorganisms from entering the second chamber 41201. The movable design of the cover 4122 provides high flexibility and convenience during use. The cover 4122 can be opened when adding materials, stirring, or observing, and can be quickly closed after the operation is completed.
[0054] like Figures 2 to 7As shown in the drawings, in addition to the features of the above embodiments, the present embodiment is further defined as: further comprising a water collecting box 8 and a water pipe 9, the water collecting box 8 is arranged on the control panel 5 and located away from the base 1, the upper shell 41 is provided with a drain hole 4102 which is in communication with the mounting groove 4101, and the water pipe 9 is in communication with the drain hole 4102 and the water collecting box 8 respectively. The water collecting box 8 is arranged on the control panel 5 and located away from the base 1, which is a suitable position for collecting water. The condensed water generated by the evaporator 200 accumulates in the mounting groove 4101, and then flows into the water collecting box 8 through the water pipe 9 and the drain hole 4102, preventing the condensed water from penetrating into the electronic components and circuitry and causing short circuit or corrosion. The water collecting box 8 is arranged on the control panel 5 and located away from the base 1, outside the mounting space. When the water collecting box 8 collects a certain amount of water, the user or the maintenance personnel can simply remove the water collecting box 8, pour out the water and clean it without complicated disassembly of the device.
[0055] As shown in the drawings, Figures 2 to 6 As shown in the drawings, in addition to the features of the above embodiments, the present embodiment is further defined as: the first support 2 is provided with a positioning hole 201, and the top shell assembly 4 is provided with a positioning rib 43, and the positioning rib 43 is fitted and installed with the positioning hole 201. During the assembly of the device, the positioning rib 43 at the bottom of the top shell assembly 4 is aligned with the positioning hole 201 on the first support 2, so that the correct installation position of the top shell assembly 4 can be quickly determined, without the need to spend a lot of time to repeatedly measure and adjust the position, greatly improving the efficiency of assembly. At the same time, after the positioning rib 43 is fitted with the positioning hole 201, a stable connection structure is formed between them. During the operation of the device, whether it is the vibration generated by itself or the external impact, shaking and other external forces, the top shell assembly 4 is not easy to displace or loosen relative to the first support 2. This stable connection ensures the integrity of the overall structure of the device, avoiding the chain reaction of loosening and deformation of other components caused by the instability of the top shell assembly 4.
[0056] As shown in the drawings, Figures 8 to 10 As shown in the drawings, the present application discloses a beverage manufacturing machine, comprising: the frame support structure 100 of any one of the preceding embodiments; an evaporator 200 arranged on the top shell assembly 4; a motor assembly 300 arranged on the top shell assembly 4; a condensing assembly 400 arranged on the base 1 and located in the mounting space; a stirring assembly sleeved on the evaporator 200, and the motor assembly 300 is in transmission connection with the stirring assembly.
[0057] The second aspect of the application discloses a beverage manufacturing machine, which can drive the stirring assembly to rotate and stir through the motor assembly 300, ensure uniform heat exchange of the beverage on the surface of the evaporator 200, accelerate the freezing speed, and ensure uniform mixing of the ingredients of the beverage, thereby improving the quality of the frozen beverage. This close connection and reasonable layout ensures the efficiency and stability of power transmission between the two, so that the evaporator 200 can operate stably according to the predetermined working mode, achieve better refrigeration and stirring effect, and improve the production efficiency of the beverage manufacturing machine. The condensing assembly 400 is arranged on the base 1 and located in the mounting space, the refrigerant absorbs heat at the evaporator 200, returns to the condensing assembly 400 to release heat, completes the refrigeration cycle, and the condensing assembly 400 is arranged in the mounting space with good heat dissipation, the released heat is transmitted to the outside through the ventilation holes arranged on the side plate assembly 7 or the back plate 6, and heat dissipation is achieved.
[0058] The technical features of the above-described embodiments can be combined in any manner. To make the description concise, all possible combinations of the technical features in the above-described embodiments are not described, but as long as the combinations of the technical features do not contradict, they should be considered within the scope of the present disclosure.
[0059] The above-described embodiments only express several implementation manners of the present application, and the description is relatively specific and detailed, but it should not be understood as a limitation on the scope of the present application. It should be noted that for ordinary skilled persons in the art, without departing from the concept of the present application, a number of modifications and improvements can be made, which are all within the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the appended claims.
Claims
1. A framed support structure, characterized in that, The frame support structure comprises: a base (1); a first support (2) arranged on the base (1); a second support (3) arranged on the base (1), the second support (3) and the first support (2) being arranged in a spaced manner; a top cover assembly (4) arranged on the first support (2) and the second support (3), the top cover assembly (4), the first support (2), the base (1) and the second support (3) forming a mounting space therebetween.
2. The framed support structure of claim 1, wherein, Further comprising a control panel (5) and a back plate (6), the top cover assembly (4) and the back plate (6) being located on opposite sides of the base (1) and the top cover assembly (4), the top cover assembly (4) being connected with the base (1) and the top cover assembly (4) respectively, and the back plate (6) being connected with the base (1) and the top cover assembly (4) respectively.
3. The framed support structure of claim 2, wherein, Further comprising a side plate assembly (7), the number of the side plate assembly (7) being two, the two side plate assemblies (7) being located on opposite sides of the base (1) and the top cover assembly (4) respectively, the side plate assembly (7) being connected with the base (1) and the top cover assembly (4) respectively, the two side plate assemblies (7), the base (1), the top cover assembly (4), the top cover assembly (4) and the back plate (6) forming an accommodating space therebetween, and the first support (2) and the second support (3) being located in the accommodating space.
4. The frame support structure according to claim 3, wherein a first ventilation hole is formed in the side plate assembly (7), and the first ventilation hole is in communication with the mounting space; and / or a second ventilation hole is formed in the back plate (6), and the second ventilation hole is in communication with the mounting space.
5. The framed support structure of claim 2, wherein, The top cover assembly (4) comprises an upper shell (41) and an outer shell assembly (42), the upper shell (41) being connected with an end of the top cover assembly (4) away from the base (1), the upper shell (41) being connected with the first support (2), the upper shell (41) being provided with a mounting groove (4101), the upper shell (41) being used for mounting an evaporator (200), the outer shell assembly (42) being connected with the upper shell (41) and the second support (3) respectively, a first cavity (4201) being formed between an inner wall of the outer shell assembly (42) and the back plate (6), and the first cavity (4201) being in communication with the mounting space.
6. The framed support structure of claim 5, wherein, The upper shell (41) comprises an upper bottom shell (411) and a mixing container (412), the upper bottom shell (411) being arranged on the first support (2) and the outer shell assembly (42), the upper bottom shell (411) being provided with the mounting groove (4101), and the mixing container (412) being provided with a second cavity (41201), the first cavity (4201) being in communication with the second cavity (41201).
7. The framed support structure of claim 6, wherein, The mixing container (412) comprises a mixing container body (4121) and a cover (4122), the mixing container body (4121) is arranged on the upper bottom shell (411), the mixing container body (4121) is provided with the second cavity (41201), the mixing container body (4121) is provided with an opening (412101) in communication with the second cavity (41201), and the cover (4122) is movably arranged on the mixing container body (4121) and located at the opening (412101).
8. The framed support structure of claim 5, wherein, Further comprising a water receiving box (8) and a water pipe (9), the water receiving box (8) is arranged on the top shell assembly (4) and located away from the base (1), the upper shell (41) is provided with a water hole (4102) in communication with the mounting groove (4101), and the water pipe (9) is in communication with the water hole (4102) and the water receiving box (8) respectively.
9. The framed support structure of claim 1, wherein, The first support (2) is provided with a positioning hole (201), and the top shell assembly (4) is provided with a positioning rib (43) at the bottom, and the positioning rib (43) is matched and mounted with the positioning hole (201).
10. A beverage making machine characterized by, The beverage making machine comprises: The frame support structure (100) according to any one of claims 1 to 9; An evaporator (200) arranged on the top shell assembly (4); A motor assembly (300) arranged on the top shell assembly (4); A condensing assembly (400) arranged on the base (1) and located in the mounting space; A stirring assembly sleeved on the evaporator (200), and the motor assembly (300) is in transmission connection with the stirring assembly.