Fabric machine with water vapor generation module heat insulation structure

By introducing a fixed structure of the thermal insulation rubber sleeve and a housing assembly into the fabric machine, the heat loss and overheating deformation of the water vapor generator are solved, and the steam generation efficiency and the stability of the device are improved.

CN223103254UActive Publication Date: 2025-07-15NINGBO KLINSMANN INTELLIGENT TECH
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422383790.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-29
Publication Date
2025-07-15
Estimated Expiration
2034-09-29

AI Technical Summary

Technical Problem

The water vapor generators of existing fabric machines lack thermal insulation structure, resulting in heat loss, reduced steam generation efficiency, increased energy consumption, and may lead to overheating and deformation of the case and base.

Method used

The thermal insulation components are introduced into the fabric machine, including the first and second thermal insulation rubber sleeves wrap the water vapor generation module, combined with the fixed structure of the housing assembly, ensuring that the thermal insulation components and the water vapor generation module are reliably fixed, and a gap is left at the key parts to prevent heat transfer.

Benefits of technology

It effectively avoids heat loss in the water vapor generator, improves steam generation efficiency, reduces energy consumption, and prevents overheating and deformation of the cabinet and base, improving the stability and safety of the device.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223103254U_ABST
    Figure CN223103254U_ABST
Patent Text Reader

Abstract

The utility model provides a fabric machine with a water vapor generating module heat insulation structure, which comprises a shell, a water vapor generating module and a base, the shell is fixed at the upper end of the base, the fabric machine further comprises a shell component, the water vapor generating module is embedded in the shell component, and a heat insulation part is embedded between the water vapor generating module and the inner wall of the shell component. The shell assembly is fixed to the outer bottom of the machine shell. After the structure is adopted, the heat insulation part can play a role in heat insulation for the steam generation module, so that the heat loss of the steam generation device can be effectively avoided, the steam generation efficiency of the steam generation device can be ensured, and the energy consumption of the fabric machine can be reduced; and the case and the base can be prevented from being deformed due to overheating.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of fabric machines, and in particular to a fabric machine with a heat insulation structure for a water vapor generating module. Background Art

[0002] A fabric machine is a device for surface cleaning of textiles; currently, fabric machines on the market mainly include a housing, a water pump, an air pump, a water vapor generating device, a clean water tank, a waste water tank, a negative pressure fan, and a cleaning head; the water pump, the air pump, the water vapor generating device, and the negative pressure fan are all installed inside the housing, the clean water tank and the waste water tank are connected to the upper part of the housing, the water vapor generating device is connected to the water pump and the air pump, the water pump is connected to the clean water tank, the negative pressure fan is connected to the waste water tank, and the cleaning head is connected to the clean water tank and the waste water tank through pipelines. When the fabric machine is working, the water pump can pump the water in the clean water tank into the water vapor generating device, the air pump can transport compressed air into the water vapor generating device, the water vapor generating device can transport water vapor to the cleaning head through pipelines, and the water vapor ejected from the cleaning head can clean the surface of the textiles. At the same time, when the negative pressure fan is working, it can generate negative pressure in the waste water tank, and the water vapor or liquid water after cleaning the surface of the textiles can be sucked into the waste water tank; however, in the existing fabric machine structure, the water vapor generating device is directly fixed on the inner bottom of the housing, that is, the water vapor generating device does not have a heat insulation structure, which will not only cause heat loss of the water vapor generating device, affect the steam generation efficiency of the water vapor generating device and increase the energy consumption of the fabric machine, but also easily lead to the situation of overheating and deformation of the housing. Summary of the Utility Model

[0003] The technical problem to be solved by the utility model is to provide a fabric machine with a heat insulation structure for a water vapor generating module, which can effectively avoid heat loss of the steam generating device, that is, can ensure the steam generation efficiency of the water vapor generating device and reduce the energy consumption of the fabric machine, and can also avoid the situation of overheating and deformation of the machine shell and the base.

[0004] The utility model provides a fabric machine with a heat insulation structure for a water vapor generating module, which includes a machine shell, a water vapor generating module, and a base. The machine shell is fixed at the upper end of the base. The fabric machine further includes a housing assembly. The water vapor generating module is embedded in the housing assembly. A heat insulation component is embedded between the water vapor generating module and the inner wall of the housing assembly. The housing assembly is fixed on the outer bottom of the machine shell.

[0005] After the present utility model adopts the above structure, the heat insulation component can play a role in heat insulation for the water vapor generation module, thereby effectively avoiding the loss of heat of the steam generation device, that is, ensuring the steam generation efficiency of the steam generation device and reducing the energy consumption of the fabric machine, and also avoiding the overheating and deformation of the machine shell and the base; the housing assembly can realize the reliable fixing effect on the water vapor generation module and the heat insulation component, and can reliably fix the water vapor generation module and the heat insulation component on the outer bottom of the machine.

[0006] In a possible implementation manner, the housing assembly includes a bottom shell and an upper cover, and the lower end of the upper cover is fixed to the upper end of the bottom shell; the heat insulation component includes a first heat insulation rubber sleeve and a second heat insulation rubber sleeve, and the first heat insulation rubber sleeve and the second heat insulation rubber sleeve are respectively wrapped on the upper half and the lower half of the water vapor generation module; the first heat insulation rubber sleeve, the water vapor generation module and the second heat insulation rubber sleeve are pressed between the upper cover and the bottom shell; after adopting this structure, since the first heat insulation rubber sleeve and the second heat insulation rubber sleeve are respectively wrapped on the upper half and the lower half of the water vapor generation module, the heat insulation component can play an effective heat insulation role on the water vapor generation module, thereby avoiding the heat generated by the water vapor generation module from affecting the machine shell and the base, that is, avoiding the overheating and deformation of the machine shell and the base; in addition, the upper cover and the bottom shell in the housing assembly can realize the reliable fixing effect on the water vapor generation module and the heat insulation component.

[0007] In a possible implementation manner, a positioning boss is circumferentially arranged on the lower end of the first heat insulation rubber sleeve, and a positioning step is circumferentially arranged on the upper end of the second heat insulation rubber sleeve. The lower end of the first heat insulation rubber sleeve abuts against the upper end of the second heat insulation rubber sleeve and the positioning boss is fitted into the positioning step; after adopting this structure, after the first heat insulation rubber sleeve and the second heat insulation rubber sleeve are respectively wrapped on the upper half and the lower half of the water vapor generation module, the lower end of the first heat insulation rubber sleeve can abut against the upper end of the second heat insulation rubber sleeve and the positioning boss can be fitted into the positioning step, so that the first heat insulation rubber sleeve and the second heat insulation rubber sleeve can reliably wrap the water vapor generation module, that is, further improve the heat insulation effect on the water vapor generation module. In addition, the limiting effect on the first heat insulation rubber sleeve and the second heat insulation rubber sleeve can be realized, that is, it is convenient for the assembly of the first heat insulation rubber sleeve and the second heat insulation rubber sleeve with the water vapor generation module, and the reliability after the assembly of the first heat insulation rubber sleeve and the second heat insulation rubber sleeve with the water vapor generation module can be improved.

[0008] In a possible implementation, a plurality of snap buttons are circumferentially arranged at the lower end of the upper cover, and hooks corresponding to the plurality of snap buttons one by one in the vertical direction are circumferentially arranged at the upper end of the bottom shell. Each snap button is engaged and latched with the hook at the corresponding position. After adopting this structure, after the upper cover and the bottom shell compress the first heat insulation rubber sleeve, the steam generation module and the second heat insulation rubber sleeve, each snap button can be engaged and latched with the hook at the corresponding position, so that the upper cover and the bottom shell can be assembled together reliably and conveniently. In addition, after each snap button is engaged and latched with the hook at the corresponding position, the upper cover and the bottom shell can reliably compress the first heat insulation rubber sleeve, the steam generation module and the second heat insulation rubber sleeve.

[0009] In a possible implementation, a plurality of connecting ears are circumferentially arranged on the outer wall of the bottom shell, and studs corresponding to each connecting ear one by one in the vertical direction are arranged at the bottom of the machine shell. The housing assembly is fixed on the outer bottom of the machine shell by screws passing through the connecting ears and threadedly connected to the studs. After adopting this structure, the housing assembly can be reliably fixed on the outer bottom of the machine shell, that is, the steam generation module and the heat insulation component can be reliably fixed on the outer bottom of the machine shell.

[0010] In a possible implementation, a first gap is left between the upper end of the housing assembly and the outer bottom of the machine shell, and a second gap is left between the lower end of the housing assembly and the inner bottom of the base. By setting the first gap between the upper end of the housing assembly and the outer bottom of the machine shell, the heat generated by the steam generation module can be further prevented from being transferred to the machine shell, that is, the situation of overheating and deformation of the machine shell can be further avoided. Similarly, by setting the second gap between the lower end of the housing assembly and the inner bottom of the base, the heat generated by the steam generation module can be further prevented from being transferred to the base, that is, the situation of overheating and deformation of the base can be further avoided.

[0011] In a possible implementation, a plurality of support columns are vertically arranged on the upper end surface of the upper cover, and the upper end of each support column abuts against the outer bottom of the machine shell. After adopting this structure, after the housing assembly is fixed to the outer bottom of the machine shell by screws, the support columns can play a supporting role for the housing assembly, thereby further improving the stability of the housing assembly after being fixed to the outer bottom of the machine shell.

[0012] In a possible implementation, a mica heat insulation sheet is fixed on the inner bottom of the base, and the mica heat insulation sheet corresponds to the housing assembly vertically, and a second gap is formed between the mica heat insulation sheet and the housing assembly. After fixing the mica heat insulation sheet on the inner bottom of the base, the mica heat insulation sheet has a good heat insulation effect, so that the heat generated by the steam generation module can be further prevented from being transferred to the base, that is, the situation of overheating and deformation of the base can be further avoided. In addition, when a person touches the outer bottom of the base, the situation of being scalded can be avoided. Description of the Drawings

[0013] Figure 1 It is a three-dimensional structural schematic diagram of a fabric machine;

[0014] Figure 2 It is a three-dimensional structural exploded schematic diagram of the first part of the fabric machine;

[0015] Figure 3 It is a three-dimensional structural exploded schematic diagram of the second part of the fabric machine;

[0016] Figure 4 It is Figure 3 The enlarged structural schematic diagram of part A in

[0017] Figure 5 It is a three-dimensional structural schematic diagram after the assembly of the housing assembly, the water vapor generation module and the heat insulation component;

[0018] Figure 6 It is a three-dimensional structural exploded schematic diagram after the housing assembly, the water vapor generation module and the heat insulation component are disassembled. Detailed Embodiments

[0019] First of all, those skilled in the art should understand that these embodiments are only used to explain the technical principles of the embodiments of the present application, and are not intended to limit the protection scope of the embodiments of the present application. Those skilled in the art can make adjustments according to needs to adapt to specific application scenarios.

[0020] In the description of the embodiments of the present application, it should be noted that unless otherwise clearly specified and limited, the terms "connected" and "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in the embodiments of the present application can be understood according to specific situations.

[0021] In the embodiments of the present application, unless otherwise clearly specified and limited, the first feature being "on" or "under" the second feature can be that the first and second features are in direct contact, or the first and second features are indirectly in contact through an intermediate medium. Moreover, the first feature being "above", "over" and "on" the second feature can be that the first feature is directly above or obliquely above the second feature, or merely indicates that the first feature is at a higher horizontal level than the second feature. The first feature being "under", "below" and "beneath" the second feature can be that the first feature is directly below or obliquely below the second feature, or merely indicates that the first feature is at a lower horizontal level than the second feature.

[0022] The present application will be further described in detail below with reference to the drawings and specific embodiments.

[0023] SeeFigure 1-6 As shown in Figure 1-6 , an embodiment of the present application discloses a fabric machine with a heat insulation structure for a steam generation module, including a machine shell 1, a steam generation module 2, and a base 3. The machine shell 1 is fixed to the upper end of the base 3. The fabric machine further includes a housing assembly. The steam generation module 2 is embedded in the housing assembly, and a heat insulation component is embedded between the steam generation module 2 and the inner wall of the housing assembly. The housing assembly is fixed to the outer bottom of the machine shell 1.

[0024] The housing assembly includes a bottom shell 4 and an upper cover 5. The lower end of the upper cover 5 is fixed to the upper end of the bottom shell 4. The heat insulation component includes a first heat insulation rubber sleeve 6 and a second heat insulation rubber sleeve 7. The first heat insulation rubber sleeve 6 and the second heat insulation rubber sleeve 7 respectively wrap around the upper half and the lower half of the steam generation module 2. The first heat insulation rubber sleeve 6, the steam generation module 2, and the second heat insulation rubber sleeve 7 are pressed between the upper cover 5 and the bottom shell 4. By adopting this structure, since the first heat insulation rubber sleeve and the second heat insulation rubber sleeve respectively wrap around the upper half and the lower half of the steam generation module, the heat insulation component can effectively insulate the steam generation module, thereby avoiding the heat generated by the steam generation module from affecting the machine shell and the base, that is, avoiding the overheating and deformation of the machine shell and the base. In addition, the upper cover and the bottom shell in the housing assembly can reliably fix the steam generation module and the heat insulation component.

[0025] A positioning boss 61 is circumferentially provided on the lower end of the first heat insulation rubber sleeve 6, and a positioning step 71 is circumferentially provided on the upper end of the second heat insulation rubber sleeve 7. The lower end of the first heat insulation rubber sleeve 6 abuts against the upper end of the second heat insulation rubber sleeve 7 and the positioning boss 61 is fitted into the positioning step 71. By adopting this structure, after the first heat insulation rubber sleeve and the second heat insulation rubber sleeve respectively wrap around the upper half and the lower half of the steam generation module, the lower end of the first heat insulation rubber sleeve can abut against the upper end of the second heat insulation rubber sleeve and the positioning boss can be fitted into the positioning step, so that the first heat insulation rubber sleeve and the second heat insulation rubber sleeve can reliably wrap the steam generation module, that is, can further improve the heat insulation effect on the steam generation module. In addition, it can also realize the limiting function of the first heat insulation rubber sleeve and the second heat insulation rubber sleeve, that is, it can facilitate the assembly of the first heat insulation rubber sleeve and the second heat insulation rubber sleeve with the steam generation module, and can improve the reliability of the assembly of the first heat insulation rubber sleeve and the second heat insulation rubber sleeve with the steam generation module.

[0026] A number of elastic buckles 51 are circumferentially arranged at the lower end of the upper cover 5, and a number of hooks 41 vertically corresponding to the elastic buckles 51 one by one are circumferentially arranged at the upper end of the bottom shell 4. Each elastic buckle 51 is engaged and clamped with the hook 41 at the corresponding position. After adopting this structure, after the upper cover and the bottom shell compress the first heat-insulating rubber sleeve, the steam generating module and the second heat-insulating rubber sleeve, each elastic buckle can be engaged and clamped with the hook at the corresponding position, so that the upper cover and the bottom shell can be assembled together reliably and conveniently. In addition, after each elastic buckle is engaged and clamped with the hook at the corresponding position, the upper cover and the bottom shell can reliably compress the first heat-insulating rubber sleeve, the steam generating module and the second heat-insulating rubber sleeve.

[0027] A number of connecting ears 42 are circumferentially arranged on the outer wall of the bottom shell 4, and studs 11 vertically corresponding to each connecting ear 42 one by one are arranged at the bottom of the machine shell 1. The housing assembly is fixed on the outer bottom of the machine shell 1 by screws passing through the connecting ears 42 and threadedly connected with the studs 11. After adopting this structure, the housing assembly can be reliably fixed on the outer bottom of the machine shell, that is, the steam generating module and the heat-insulating component can be reliably fixed on the outer bottom of the machine shell.

[0028] A first gap is left between the upper end of the housing assembly and the outer bottom of the machine shell 1, and a second gap is left between the lower end of the housing assembly and the inner bottom of the base 3. By setting a first gap between the upper end of the housing assembly and the outer bottom of the machine shell, the heat generated by the steam generating module can be further prevented from being transferred to the machine shell, that is, the situation of overheating and deformation of the machine shell can be further avoided. Similarly, by setting a second gap between the lower end of the housing assembly and the inner bottom of the base, the heat generated by the steam generating module can be further prevented from being transferred to the base, that is, the situation of overheating and deformation of the base can be further avoided.

[0029] A number of support columns 52 are vertically arranged on the upper end surface of the upper cover 5, and the upper end of each support column 52 abuts against the outer bottom of the machine shell 1. After adopting this structure, after the housing assembly is fixed to the outer bottom of the machine shell by screws, the support columns can play a supporting role for the housing assembly, thereby further improving the stability of the housing assembly after being fixed to the outer bottom of the machine shell.

[0030] A mica heat-insulating sheet 8 is fixed on the inner bottom of the base 3. The mica heat-insulating sheet 8 corresponds vertically to the housing assembly, and a second gap is formed between the mica heat-insulating sheet 8 and the housing assembly. After fixing the mica heat-insulating sheet on the inner bottom of the base, the mica heat-insulating sheet has a good heat-insulating effect, so that the heat generated by the steam generating module can be further prevented from being transferred to the base, that is, the situation of overheating and deformation of the base can be further avoided. In addition, when a person touches the outer bottom of the base, the situation of scalding can be avoided.

[0031] As described above, it is only the specific implementation manner of the present application, but the protection scope of the present application is not limited thereto. Any changes or substitutions that can be easily thought of by those skilled in the art within the technical scope disclosed in the present application should be covered within the protection scope of the present application. Therefore, the protection scope of the present application shall be subject to the protection scope of the claims.

Claims

1. A fabric machine with a heat insulation structure for a water vapor generation module, comprising a machine shell (1), a water vapor generation module (2) and a base (3), wherein the machine shell (1) is fixed to the upper end of the base (3), and is characterized in that: The fabric machine further includes a housing assembly. The steam generation module (2) is embedded in the housing assembly. A heat insulation component is embedded between the steam generation module (2) and the inner wall of the housing assembly. The housing assembly is fixed on the outer bottom of the machine housing (1). The housing assembly includes a bottom case (4) and an upper cover (5). The lower end of the upper cover (5) is fixed to the upper end of the bottom case (4). The heat insulation component includes a first heat insulation rubber sleeve (6) and a second heat insulation rubber sleeve (7). The first heat insulation rubber sleeve (6) and the second heat insulation rubber sleeve (7) respectively wrap the upper half and the lower half of the steam generation module (2). The first heat insulation rubber sleeve (6), the steam generation module (2) and the second heat insulation rubber sleeve (7) are pressed between the upper cover (5) and the bottom case (4). A positioning boss (61) is circumferentially arranged on the lower end of the first heat insulation rubber sleeve (6). A positioning step (71) is circumferentially arranged on the upper end of the second heat insulation rubber sleeve (7). The lower end of the first heat insulation rubber sleeve (6) abuts against the upper end of the second heat insulation rubber sleeve (7) and the positioning boss (61) is fitted in the positioning step (71). A plurality of snap buttons (51) are circumferentially arranged on the lower end of the upper cover (5). A plurality of hooks (41) vertically corresponding to the plurality of snap buttons (51) are circumferentially arranged on the upper end of the bottom case (4). Each snap button (51) is engaged with the hook (41) at the corresponding position.

2. The fabric machine with a heat insulation structure for a water vapor generation module according to claim 1, wherein: A plurality of connecting ears (42) are circumferentially arranged on the outer wall of the bottom case (4). A stud (11) vertically corresponding to each connecting ear (42) is arranged on the bottom of the machine housing (1). The housing assembly is fixed on the outer bottom of the machine housing (1) by screws passing through the connecting ears (42) and threadedly connected to the studs (11).

3. The fabric machine with a heat insulation structure for a water vapor generation module according to claim 1, wherein: A first gap is left between the upper end of the housing assembly and the outer bottom of the machine housing (1). A second gap is left between the lower end of the housing assembly and the inner bottom of the base (3).

4. The fabric machine with a heat insulation structure for a water vapor generation module according to claim 3, characterized in that: A plurality of support columns (52) are vertically arranged on the upper end surface of the upper cover (5). The upper end of each support column (52) abuts against the outer bottom of the machine housing (1).

5. The fabric machine with a heat insulation structure for a water vapor generation module according to claim 3, characterized in that: A mica heat insulation sheet (8) is fixed on the inner bottom of the base (3). The mica heat insulation sheet (8) corresponds vertically to the housing assembly. The second gap is formed between the mica heat insulation sheet (8) and the housing assembly.