Integrated mounting structure applied to freezer
By setting up an installation frame on the freezer body, the integrated installation of the freezer condensation component and evaporation component is achieved, which solves the problems of assembly complexity and inefficiency in the production process of existing freezers, and improves production efficiency and space utilization.
Patent Information
- Application Number
- CN202422224644.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-11
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2034-09-11
AI Technical Summary
During the production process, the existing freezer has increased the complexity of the assembly steps and has resulted in inefficient production efficiency due to the separate assembly of the evaporation and condensation assembly.
An integrated installation structure applied to the freezer is designed. By setting up an installation frame on the freezer body, the condensation component and the evaporation component are both arranged on the installation frame, thereby achieving integrated installation.
Through the integrated installation structure, the steps and complexity in the assembly process are reduced, production efficiency is improved, and the space of the freezer body is effectively utilized, providing more storage space.
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Figure CN223050280U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of freezer manufacturing, and specifically to an integrated installation structure applied to freezers. Background Art
[0002] As a crucial electrical appliance in households and commercial places, the efficient refrigeration system of freezers can rapidly reduce and maintain the low-temperature environment inside the cabinet, effectively delaying food spoilage, keeping beverages cool, and meeting the high-efficiency requirements of modern society for food preservation, cold drink storage, and space utilization.
[0003] As two core components in the freezer refrigeration system, the evaporation component and the condensation component are often assembled separately during the freezer production process. This assembly method not only increases the complexity of the assembly steps but also leads to low production efficiency and is not conducive to the improvement of overall efficiency.
[0004] The present utility model is studied and proposed in view of the deficiencies of the prior art. Summary of the Utility Model
[0005] In view of the problem that in the production process of existing freezers mentioned above, due to the separate assembly of the evaporation component and the condensation component, the complexity of the assembly steps is increased, resulting in low production efficiency, the technical solution adopted by the present utility model to solve its technical problems is as follows:
[0006] An integrated installation structure applied to freezers, including a freezer body, a condensation component, an evaporation component located on one side of the condensation component, and a mounting frame provided on the freezer body, wherein the condensation component and the evaporation component are both arranged on the mounting frame.
[0007] Further, the condensation component includes a condensation part and a compressor, the evaporation component includes an evaporation fan and an evaporator, and the mounting frame includes a first mounting part for mounting the condensation part and the compressor, and a second mounting part for mounting the evaporation fan and the evaporator.
[0008] Further, a first mounting mechanism is provided between the first mounting part and the compressor, and the compressor is detachably connected to the first mounting part through the first mounting mechanism.
[0009] Further, the first mounting mechanism includes a first connection protrusion located on the first mounting part and a first connection groove located at the bottom of the compressor, and the first connection protrusion and the first connection groove are threadedly connected to detachably connect the compressor and the first mounting part.
[0010] Further, the condensation part includes a condenser and a condensation fan located on one side of the condenser close to the compressor and connected to the condenser. A second mounting mechanism is provided between the condenser and the first mounting part, and the condenser is detachably connected to the first mounting part through the second mounting mechanism.
[0011] Further, the second mounting mechanism includes a second connecting protrusion located on the first mounting part and a second connecting hole located at the bottom of the condenser. The second connecting protrusion and the second connecting hole are threadedly connected so that the condenser and the first mounting part are detachably connected.
[0012] Further, a water receiving tank for collecting condensed water is provided on the first mounting part and located at the bottom of the condenser.
[0013] Further, an air inlet communicating with the inside of the freezer body and an air outlet located on one side of the air inlet and communicating with the inside of the freezer body are provided on the second mounting part. The evaporation fan is located above the air inlet and is detachably connected to the second mounting part, and the evaporator is located above the air outlet and extends along the length direction of the air outlet.
[0014] Further, the evaporation fan is inclined relative to the second mounting part.
[0015] Further, a heat insulation protective cover is detachably covered on the second mounting part, and both the evaporator and the evaporation fan are located within the covering area of the heat insulation protective cover.
[0016] The beneficial effects of the present utility model are as follows:
[0017] 1. By providing a mounting frame on the freezer body in the present utility model, both the condensation component and the evaporation component are arranged on the mounting frame. During the production process of the freezer, only the mounting frame provided with the condensation component and the evaporation component needs to be installed on the freezer body, which can greatly reduce the steps and complexity in the assembly process, making the assembly process more efficient, and effectively solving the problem that in the production process of the existing freezer, due to the separate assembly of the evaporation component and the condensation component, the complexity of the assembly steps is increased, resulting in low production efficiency.
[0018] 2. Both the condensation component and the evaporation component are arranged on the mounting frame, thus forming a relatively compact whole, effectively avoiding the waste of space caused by the separate installation of the condensation component and the evaporation component, and enabling the space of the freezer body to be utilized more efficiently.
[0019] The present utility model will be further described below in conjunction with the accompanying drawings and specific embodiments. Description of the Drawings
[0020] Figure 1Schematic diagram of the structure of the freezer body of the present utility model;
[0021] Figure 2 One of the exploded views of the condensation component, evaporation component and mounting frame of the present utility model;
[0022] Figure 3 Schematic diagram of the structure of the mounting frame of the present utility model;
[0023] Figure 4 Another exploded view of the condensation component, evaporation component and mounting frame of the present utility model;
[0024] Figure 5 Another exploded view of the condensation component, evaporation component and mounting frame of the present utility model;
[0025] Figure 6 Another exploded view of the condensation component, evaporation component and mounting frame of the present utility model. Detailed implementation mode
[0026] The following will describe the implementation mode of the present utility model in detail with reference to the drawings.
[0027] As Figures 1 to 6 An integrated installation structure applied to a freezer shown in the figure, including a freezer body 1, a condensation component 2 is provided on the freezer body 1, an evaporation component 3 located on one side of the condensation component 2, and a mounting frame 4, and both the condensation component 2 and the evaporation component 3 are arranged on the mounting frame 4;
[0028] In the present utility model, by providing a mounting frame on the freezer body, and both the condensation component and the evaporation component are arranged on the mounting frame. During the production process of the freezer, only the mounting frame provided with the condensation component and the evaporation component needs to be installed on the freezer body, which can greatly reduce the steps and complexity in the assembly process, making the assembly process more efficient, and effectively solving the problem that in the production process of existing freezers, due to the separate assembly of the evaporation component and the condensation component, the complexity of the assembly steps is increased, resulting in low production efficiency.
[0029] Furthermore, both the condensation component 2 and the evaporation component 3 are arranged on the mounting frame 4, thus forming a relatively compact whole, effectively avoiding the waste of space caused by the separate installation of the condensation component 2 and the evaporation component 3, so that the space of the freezer body 1 can be utilized more efficiently.
[0030] Further, the condensation component 2 and the evaporation component 3 are arranged on the top of the freezer body 1 through the installation frame 4, effectively reducing the space occupied inside the freezer body 1, thereby providing more storage space inside the freezer body 1, and enabling users to store more food ingredients or items. Secondly, the condensation component 2 is installed on the top of the freezer body 1, which is beneficial to air circulation and reduces the heat dissipation problem caused by poor ventilation.
[0031] Optionally, in some embodiments, the installation frame 4 is snap-connected to the freezer body 1.
[0032] Optionally, in some embodiments, the installation frame 4 is thread-connected to the freezer body 1.
[0033] Optionally, in some embodiments, the installation frame 4 is latch-connected to the freezer body 1.
[0034] As Figures 1 to 6 shown, the condensation component 2 includes a condensation part 21 and a compressor 22, the evaporation component 3 includes an evaporation fan 31 and an evaporator 32, and the installation frame 4 includes a first installation part 41 for installing the condensation part 21 and the compressor 22, and a second installation part 42 for installing the evaporation fan 31 and the evaporator 32.
[0035] Refrigeration principle:
[0036] The condensation part 21 includes a condenser 211 and a condensation fan 212 located on the side of the condenser 211 close to the compressor 22 and connected to the condenser 211. The compressor 22 converts the low-temperature and low-pressure refrigerant gas into a high-temperature and high-pressure gas. The high-temperature and high-pressure gas enters the condenser 211. The condenser 211 and the condensation fan 212 cooperate to enable the high-temperature and high-pressure gas to release heat and be cooled into a high-pressure liquid state. The cooled high-pressure liquid refrigerant passes through a throttle valve (not shown in the figure) and enters the evaporator 32. The liquid refrigerant absorbs the heat inside the freezer body 1 under the action of the evaporator 32 and evaporates into a low-temperature gas. The evaporation fan 31 blows the low-temperature gas into the freezer body 1 to achieve the refrigeration effect.
[0037] Further, the condensation part 21 and the compressor 22 are installed on the first installation part 41, and the evaporation fan 31 and the evaporator 32 are installed on the second installation part 42, so that the condensation component 2 and the evaporation component 3 can be tightly integrated on the installation frame 4, thereby reducing the gap between the components and making the structure of the freezer body 1 more compact.
[0038] Furthermore, the first mounting portion 41 and the second mounting portion 42 are integrally formed, and the cross-sections of both the first mounting portion 41 and the second mounting portion 42 are rectangular. The integrally formed setting of the first mounting portion 41 and the second mounting portion 42 makes the entire mounting frame 4 more robust, helping to reduce vibrations or looseness caused by loose components or insecure connections. Secondly, the rectangular cross-section setting has good structural strength and load-bearing capacity, which can more effectively disperse and resist external loads, facilitating ensuring the stable operation of the condensation component 2 and the evaporation component 3 after installation and making them less likely to deform or be damaged.
[0039] As Figures 1 to 6 shown, a first mounting mechanism 5 is provided between the first mounting portion 41 and the compressor 22, and the compressor 22 is detachably connected to the first mounting portion 41 through the first mounting mechanism 5.
[0040] Furthermore, the detachably connected setting makes the installation and disassembly of the compressor 22 simpler and quicker. When the user needs to maintain or replace the compressor 22, there is no need to disassemble the entire freezer body 1. Just disassemble the first mounting mechanism 5, and then the compressor 22 can be maintained or replaced, which helps to save time and labor.
[0041] Optionally, in some embodiments, the first mounting mechanism 5 includes a card slot located on the first mounting portion 41 and a buckle located on the compressor 22 and snap-fitted with the card slot.
[0042] Optionally, in some embodiments, the first mounting mechanism 5 includes a slide rail located on the first mounting portion 41 and a slide groove located on the compressor 22 and slidably connected to the slide rail.
[0043] Furthermore, as a preferred but non-limiting manner of the present invention, the first mounting mechanism 5 includes a first connecting protrusion 51 located on the first mounting portion 41 and a first connecting groove 52 located at the bottom of the compressor 22 and threadedly connected to the first connecting protrusion 51.
[0044] As Figures 1 to 6 shown, the first mounting mechanism 5 includes a first connecting protrusion 51 located on the first mounting portion 41 and a first connecting groove 52 located at the bottom of the compressor 22. The first connecting protrusion 51 and the first connecting groove 52 are threadedly connected, so that the compressor 22 and the first mounting portion 41 are detachably connected.
[0045] Furthermore, the threadedly connected setting provides a very stable connection, which can withstand large vibrations and impacts, facilitating ensuring that the compressor 22 will not become loose during operation. Secondly, the stable connection setting of the threaded connection effectively ensures the overall safety of the freezer body 1 and avoids potential failures or accidents caused by insecure connections.
[0046] Specifically, the first connecting protrusion 51 is provided so that the user can ensure the accurate connection between the compressor 22 and the first mounting portion 41. The user can determine the mounting position of the compressor 22 according to the position of the first connecting protrusion 51, which is beneficial to preventing installation errors.
[0047] As Figures 1 to 6 The condenser part 21 shown includes a condenser 211 and a condensing fan 212 located on one side of the condenser 211 close to the compressor 22 and connected to the condenser 211. A second mounting mechanism 6 is provided between the condenser 211 and the first mounting portion 41, and the condenser 211 is detachably connected to the first mounting portion 41 through the second mounting mechanism 6;
[0048] Furthermore, the detachable connection is provided to make the installation and disassembly of the condenser 211 simpler and faster. When the user needs to maintain or replace the condenser 211, it is not necessary to disassemble the entire freezer body 1. Only by disassembling the second mounting mechanism 6 can the condenser 211 be maintained or replaced, which is beneficial to saving time and labor.
[0049] Optionally, in some embodiments, the second mounting mechanism 6 includes a card slot located on the first mounting portion 41 and a buckle located on the condenser 211 and snap-fitted with the card slot.
[0050] Optionally, in some embodiments, the second mounting mechanism 6 includes a slide rail located on the first mounting portion 41 and a sliding groove located on the condenser 211 and slidably connected to the slide rail.
[0051] Furthermore, as a preferred but non-limiting manner of the present invention, the second mounting mechanism 6 includes a second connecting protrusion 61 located on the first mounting portion 41 and a second connecting hole 62 located at the bottom of the condenser 211 and threadedly connected to the second connecting protrusion 61.
[0052] Specifically, the condenser 211 and the condensing fan 212 are threadedly connected.
[0053] As Figures 1 to 6 The second mounting mechanism 6 shown includes a second connecting protrusion 61 located on the first mounting portion 41 and a second connecting hole 62 located at the bottom of the condenser 211. The second connecting protrusion 61 and the second connecting hole 62 are threadedly connected so that the condenser 211 and the first mounting portion 41 are detachably connected;
[0054] Furthermore, the threaded connection provides a very stable connection that can withstand large vibrations and impacts, which is conducive to ensuring that the condenser 211 and the condensing fan 212 will not become loose during operation. Secondly, the stable connection setting of the threaded connection effectively ensures the overall safety of the freezer body 1 and avoids potential failures or accidents caused by insecure connections.
[0055] Specifically, the setting of the second connecting protrusion 61 enables the user to ensure the accurate connection between the condenser 211 and the first mounting portion 41. The user can determine the installation position of the condenser 211 according to the position of the second connecting protrusion 61, which is conducive to preventing installation errors.
[0056] As Figures 1 to 6 shown, a water receiving groove 7 for collecting condensed water and located at the bottom of the condenser 211 is provided on the first mounting portion 41;
[0057] Furthermore, the setting of the water receiving groove 7 can effectively collect the condensed water dripping from the bottom of the condenser 211, prevent the condensed water from directly dripping onto the surroundings of the components or the ground, and is conducive to reducing the potential impact of the condensed water on the components or the environment. By setting the water receiving groove 7 to collect the condensed water, the water receiving groove 7 helps to maintain a dry environment around the components and is conducive to reducing corrosion or damage caused by moisture to the components or the surrounding structure.
[0058] Specifically, the water receiving groove 7 is integrally formed on the first mounting portion 41.
[0059] As Figures 1 to 6 shown, an air inlet 421 communicating with the interior of the freezer body 1 and an air outlet 422 communicating with the interior of the freezer body 1 and located on one side of the air inlet 421 are provided on the second mounting portion 42. The evaporation fan 31 is located above the air inlet 421 and is detachably connected to the second mounting portion 42. The evaporator 32 is located above the air outlet 422 and extends along the length direction of the air outlet 422;
[0060] Furthermore, the evaporation fan 31 is located above the air inlet 421, which can suck the air in the freezer body 1 through the air inlet 421. Under the action of the evaporation fan 31, the air accelerates the heat exchange with the evaporator 32 and then enters the interior of the freezer body 1 through the air outlet 422, which is conducive to optimizing the air circulation path and improving the cooling effect.
[0061] Furthermore, the evaporator 32 extends along the length direction of the air outlet 422, which is conducive to increasing the contact area between the evaporator 32 and the air, so that more refrigerant can evaporate and absorb the heat in the air, thereby enhancing the refrigeration effect.
[0062] Optionally, in some embodiments, the evaporation fan 31 is snap-connected to the second mounting portion 42.
[0063] Optionally, in some embodiments, the evaporation fan 31 is latched to the second mounting portion 42.
[0064] Optionally, in some embodiments, the evaporation fan 31 is threadedly connected to the second mounting portion 42.
[0065] As Figures 1 to 6 shown, the evaporation fan 31 is inclined relative to the second mounting portion 42;
[0066] Furthermore, the evaporation fan 31 is inclined relative to the second mounting portion 42 so that the contact area between the evaporation fan 31 and the air at the air inlet 421 is increased, thereby improving the driving ability of the evaporation fan 31 for the air, which helps to guide more air to be effectively delivered to the evaporator 32 and is beneficial to optimizing the air flow efficiency.
[0067] Furthermore, by increasing the contact area between the evaporation fan 31 and the air at the air inlet 421, the evaporation fan 31 can more effectively transfer the cold air to the interior of the freezer, thereby improving the cooling performance of the freezer body 1.
[0068] As Figures 1 to 6 shown, the second mounting portion 42 is covered with a heat-insulating protective cover 8 that is detachably connected, and both the evaporator 32 and the evaporation fan 31 are located within the covering area of the heat-insulating protective cover 8;
[0069] Furthermore, the heat-insulating protective cover 8 can effectively isolate the influence of the external environment on the evaporator 32 and the evaporation fan 31, which is beneficial to reducing the loss of the cold generated by the evaporator 32 and the evaporation fan 31 during operation to the external environment, thereby improving the refrigeration energy efficiency. By providing the heat-insulating protective cover 8, it helps to provide a relatively stable working environment for the evaporator 32 and the evaporation fan 31, which is beneficial to maintaining the best working state of the evaporator 32 and the evaporation fan 31 and effectively extending the service life of the device.
[0070] Furthermore, the heat-insulating protective cover 8 can prevent dust, cotton wool and other sundries from entering the areas of the evaporator 32 and the evaporation fan 31, which is beneficial to extending the service life of the equipment and reducing the maintenance frequency; secondly, the detachable setting of the heat-insulating protective cover 8 makes the cleaning and maintenance work easier. Users can regularly clean and maintain it, which helps to keep the device clean and maintain the performance of the device.
[0071] Specifically, the heat-insulating protective cover 8 can completely cover the second mounting portion 42.
[0072] Optionally, in some embodiments, the heat insulation protective cover 8 and the second mounting portion 42 are snap-connected.
[0073] Optionally, in some embodiments, the heat insulation protective cover 8 and the second mounting portion 42 are latched.
[0074] Optionally, in some embodiments, the heat insulation protective cover 8 and the second mounting portion 42 are connected by a slot.
[0075] Optionally, in some embodiments, the heat insulation protective cover 8 and the second mounting portion 42 are threadedly connected.
[0076] The implementation manner of this embodiment is as follows:
[0077] An integrated installation structure applied to a freezer, including a freezer body 1, a condensing assembly 2 provided on the freezer body 1, an evaporation assembly 3 located on one side of the condensing assembly 2, and a mounting frame 4. The condensing assembly 2 includes a condenser 211, a condensing fan 212, and a compressor 22. The evaporation assembly 3 includes an evaporation fan 31 and an evaporator 32. The condensing fan 212 and the condenser 211 are threadedly connected. The mounting frame 4 includes a first mounting portion 41 for mounting the condenser 211 and the compressor 22, and a second mounting portion 42 for mounting the evaporation fan 31 and the evaporator 32. The condensing assembly 2 and the evaporation assembly 3 are both arranged on the mounting frame 4, which can greatly reduce the steps and complexity in the assembly process of the freezer body 1, making the assembly process more efficient and effectively solving the problem that in the production process of existing freezers, due to the separate assembly of the evaporation assembly and the condensing assembly, the complexity of the assembly steps is increased, resulting in low production efficiency.
[0078] The above only further illustrates the technical content of the present invention with embodiments to make it easier for readers to understand, but it does not mean that the implementation manner of the present invention is limited to this. Any technical extension or re-creation based on the present invention is protected by the present invention. The protection scope of the present invention is subject to the claims.
Claims
1. An integrated installation structure for a refrigerator, comprising a refrigerator body (1), characterized in that: The refrigerator body (1) is provided with a condensing assembly (2), an evaporating assembly (3) located on one side of the condensing assembly (2), and a mounting frame (4); the condensing assembly (2) and the evaporating assembly (3) are both arranged on the mounting frame (4).
2. The integrated installation structure for a refrigerator according to claim 1, characterized in that: The condensing assembly (2) comprises a condensing part (21) and a compressor (22), the evaporating assembly (3) comprises an evaporating fan (31) and an evaporator (32), and the mounting frame (4) comprises a first mounting part (41) for mounting the condensing part (21) and the compressor (22), and a second mounting part (42) for mounting the evaporating fan (31) and the evaporator (32).
3. The integrated installation structure for a refrigerator according to claim 2, characterized in that: A first mounting mechanism (5) is provided between the first mounting portion (41) and the compressor (22), and the compressor (22) is detachably connected to the first mounting portion (41) via the first mounting mechanism (5).
4. The integrated installation structure for a refrigerator according to claim 3, characterized in that: The first mounting mechanism (5) comprises a first connecting protrusion (51) located on the first mounting portion (41) and a first connecting groove (52) located at the bottom of the compressor (22); the first connecting protrusion (51) and the first connecting groove (52) are threadedly connected so that the compressor (22) and the first mounting portion (41) are detachably connected.
5. The integrated installation structure for a refrigerator according to claim 2, characterized in that: The condensing portion (21) comprises a condenser (211), and a condensing fan (212) located on a side of the condenser (211) close to the compressor (22) and connected to the condenser (211); a second mounting mechanism (6) is provided between the condenser (211) and the first mounting portion (41); and the condenser (211) is detachably connected to the first mounting portion (41) via the second mounting mechanism (6).
6. The integrated installation structure for a refrigerator according to claim 5, characterized in that: The second mounting mechanism (6) comprises a second connecting protrusion (61) located on the first mounting portion (41) and a second connecting hole (62) located at the bottom of the condenser (211), wherein the second connecting protrusion (61) and the second connecting hole (62) are threadedly connected so that the condenser (211) and the first mounting portion (41) are detachably connected.
7. The integrated installation structure for a refrigerator according to claim 5, characterized in that: The first mounting portion (41) is provided with a water receiving groove (7) for collecting condensed water and located at the bottom of the condenser (211).
8. The integrated installation structure for a refrigerator according to claim 2, characterized in that: The second mounting portion (42) is provided with an air inlet (421) connected to the interior of the refrigerator body (1), and an air outlet (422) located on one side of the air inlet (421) and connected to the interior of the refrigerator body (1); the evaporating fan (31) is located above the air inlet (421) and is detachably connected to the second mounting portion (42); and the evaporator (32) is located above the air outlet (422) and is extended along the length direction of the air outlet (422).
9. The integrated installation structure for a refrigerator according to claim 8, characterized in that: The evaporation fan (31) is arranged at an angle relative to the second mounting portion (42).
10. The integrated installation structure for a refrigerator according to claim 2, characterized in that: The second mounting portion (42) is covered with a detachably connected heat-insulating protective cover (8), and the evaporator (32) and the evaporating fan (31) are both located within the covering area of the heat-insulating protective cover (8).