Window type energy storage fresh air ventilator

The main casing of the window-type energy storage fresh air unit is manufactured by extrusion molding. Combined with detachable functional modules and louver design, it solves the problems of high construction cost and poor user experience of traditional window-type fresh air units, and realizes flexible installation and intelligent control.

CN224151089UActive Publication Date: 2026-04-21GUANGDONG NEDFON INDOOR AIR SYST TECH
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGDONG NEDFON INDOOR AIR SYST TECH
Filing Date
2025-04-28
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

The casing size of traditional window-type fresh air units cannot be changed, resulting in high construction costs and potential damage to users' existing windows, leading to a poor user experience.

Method used

The main shell is manufactured using an extrusion molding process, cut to the required length according to actual needs, and the two ends of the side shell are sealed with end seals. Combined with detachable functional modules and a flexible louver design, it can adapt to different installation environments.

Benefits of technology

It reduces construction costs, improves installation flexibility and user experience, and also features energy storage and intelligent control capabilities, while enhancing waterproof and insect-proof performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a window type energy storage fresh air ventilator. The window type energy storage fresh air ventilator comprises a main shell, a panel and a plurality of functional modules. The main shell comprises a side shell and two end seals, and the side shell and the end seals surround to form a containing groove; the panel is arranged at the opening; the plurality of functional modules are arranged along a preset direction, the plurality of functional modules are respectively a fresh air module and an energy storage module, or the plurality of functional modules are at least respectively a fresh air module, an energy storage module and an exhaust module. The side shell of the main shell of the window type energy storage fresh air ventilator can be manufactured by adopting an extrusion forming process, the length can be cut as required, and then the two ends of the side shell are sealed through the end seals, so that the main shell is quickly formed into the required size, and the whole shell is relatively simple and flexible to form; the energy storage module can be used for supplying energy, so that the fresh air ventilator can work under the condition that long-term power supply is not convenient; the air detector can detect the indoor air quality, and a user can remotely control the fresh air ventilator in cooperation with the wireless communication module.
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Description

Technical Field

[0001] This utility model relates to the field of window-type energy storage fresh air unit technology, specifically to a window-type energy storage fresh air unit. Background Technology

[0002] With the development of China's economy, the concept of fresh air systems has become widely accepted, and more and more residents have a need for them. However, the proportion of existing houses equipped with fresh air systems was not high in the past, and traditional fresh air units were limited by construction difficulty and cost, which hindered the development of the fresh air industry. Because the environments for renovation vary widely, the size of the unit needs to be adjusted according to the actual situation. Currently, the outer shell of window-type fresh air units is usually made using injection molding. If the installation environment changes, the size of the shell also needs to be changed accordingly. However, the size of the injection-molded shell cannot be changed; the only solution is to produce the required shell by creating a mold of the corresponding size. However, the mold cost is extremely high. Therefore, the current common practice is to cut the existing glass window or modify the window frame, which is costly and troublesome, and sometimes may even damage the user's original window, resulting in a poor user experience. Utility Model Content

[0003] The purpose of this invention is to overcome the shortcomings and deficiencies of the existing technology and provide a window-type energy storage fresh air unit.

[0004] One embodiment of the present invention provides a window-type energy storage fresh air unit, comprising: a main housing, a panel, and multiple functional modules;

[0005] The main housing includes a side shell and two end seals. The side shell has ports at both ends in a preset direction. The two end seals are respectively located at both ends of the side shell in the preset direction and correspondingly close the ports. The side shell and the end seals surround each other to form a receiving groove. One side of the receiving groove has an opening extending along the preset direction.

[0006] The panel is disposed at the opening for opening and closing the opening. The panel and the receiving groove surround to form a receiving cavity, and the receiving cavity has an indoor air vent and an outdoor air vent.

[0007] Multiple functional modules are arranged along the preset direction. When there are two functional modules, each module is a fresh air module and an energy storage module. Alternatively, when there are at least three functional modules, each module is at least a fresh air module, an energy storage module, and an exhaust module.

[0008] The fresh air module is detachably installed in the receiving slot to drive air from the outdoor air vent to the indoor air vent;

[0009] The energy storage module is detachably installed in the receiving slot and is electrically connected to the fresh air module;

[0010] When the functional module includes an exhaust module, the exhaust module is detachably installed in the receiving slot and electrically connected to the energy storage module. The exhaust module is used to drive air from the indoor air vent to the outdoor air vent.

[0011] In some optional embodiments, the receiving groove is provided with a plurality of mounting components arranged sequentially along the preset direction, and the functional module is correspondingly disposed between two adjacent mounting components, and the functional module is detachably connected to the mounting component.

[0012] In some alternative embodiments, two fixing grooves are formed on the side shell within the receiving groove, the fixing grooves extending along the preset direction, and the two sides of the mounting member are respectively fitted into the two fixing grooves.

[0013] In some optional embodiments, the outdoor air vent is located on the side shell, and the outer side of the side shell is provided with louvers. The louvers cover the side of the outdoor air vent facing outward from the side shell. The louvers are provided with multiple grid openings, and the grid openings are provided with waterproof and / or insect-proof structures. The grid openings are connected to the outdoor air vent.

[0014] In some optional embodiments, a plurality of louvers are provided on the outer side of the side shell, and two mounting grooves are formed on the side shell. The mounting grooves extend along the preset direction, and the two sides of the louvers are respectively assembled with the mounting grooves. The plurality of louvers are arranged sequentially along the mounting grooves, and the end seal is located at the end of the mounting groove and is matched with the louvers located at the end of the mounting groove.

[0015] In some alternative implementations, the panel is detachably connected to the main housing via a snap-fit ​​structure, a threaded structure, or a magnetic structure.

[0016] In some alternative implementations, the window-type energy storage fresh air unit further includes a gas detector and a wireless communication module. The gas detector is disposed on the panel, the side shell, or the end seal, and the gas detector is signal-connected to the fresh air module. The wireless communication module is signal-connected to the fresh air module.

[0017] In some alternative embodiments, a sealing strip is provided inside the accommodating cavity and arranged around the outdoor air vent, and the fresh air module abuts against the sealing strip.

[0018] In some optional embodiments, one side of the side shell is provided with a glass clamping member, an adjustable clamping member and a locking structure. A glass assembly groove extending along the preset direction is formed between the glass clamping member and the adjustable clamping member. The adjustable clamping member can be adjusted in a direction close to or away from the glass clamping member. The adjustable clamping member is locked to the side shell by the locking structure.

[0019] In some optional embodiments, the side shell is provided with two heat insulation members and two assembly parts. The two heat insulation members are respectively located on both sides of the side shell. The heat insulation members extend along the preset direction. The assembly parts are correspondingly provided on the side of the heat insulation members away from the side shell. The panel is connected to the assembly parts.

[0020] Compared to existing technologies, the side shells of the main casing of this window-type energy storage fresh air unit can be manufactured using an extrusion molding process. The length is cut according to the actual number and length of internal functional modules or the requirements of the actual installation environment. Then, the two ends of the side shells are sealed with end seals, allowing the main casing to be quickly formed to the required size. The overall shell formation is simpler and more flexible, with a wider range of applications and significant cost savings. Furthermore, the use of energy storage modules for power supply allows the fresh air unit to operate even when a long-term power supply is inconvenient. A gas detector can monitor indoor air quality, and with a wireless communication module, users can remotely control the fresh air unit. The louver design facilitates waterproofing and insect prevention. Overall production and assembly are relatively simple and cost-effective.

[0021] To provide a clearer understanding of this invention, the specific embodiments of this invention will be described below in conjunction with the accompanying drawings. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the structure of a window-type energy storage fresh air unit according to an embodiment of the present invention;

[0023] Figure 2 This is a first exploded view of a window-type energy storage fresh air unit according to an embodiment of the present invention;

[0024] Figure 3 This is an exploded view of the main casing of one embodiment of the present invention;

[0025] Figure 4 This is a schematic diagram of the structure of a window-type energy storage fresh air unit with the panel concealed, according to one embodiment of the present invention.

[0026] Figure 5 This is a second exploded view of a window-type energy storage fresh air unit according to an embodiment of the present invention;

[0027] Figure 6 This is a cross-sectional view of a window-type energy storage fresh air unit according to an embodiment of the present invention.

[0028] Explanation of reference numerals in the attached figures:

[0029] 10. Main shell; 11. Side shell; 111. Port; 112. Louver; 113. Mounting groove; 114. Glass clamping element; 115. Adjustable clamping element; 116. Glass assembly groove; 117. Thermal insulation element; 118. Assembly part; 12. End seal; 13. Receiving groove; 141. Opening; 142. Fixing groove; 143. Mounting element; 20. Panel; 21. Control panel; 30. Functional module; 31. Fresh air module; 32. Energy storage module; 33. Fixing element; 40. Receiving cavity; 41. Indoor air outlet; 42. Outdoor air outlet; 43. Sealing strip. Detailed Implementation

[0030] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present utility model. In the description of the present utility model, unless otherwise stated, "a plurality of" means two or more, and "a number" means one or more. In addition, unless otherwise stated, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features.

[0031] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "lateral", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0032] In the description of this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0033] In the description of this utility model, references to terms such as "one embodiment," "some alternative implementations," or "some optional embodiments," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this utility model. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0034] Please see Figures 1 to 4 One embodiment of this utility model provides a window-type energy storage fresh air unit, including: a main housing 10, a panel 20 and multiple functional modules 30.

[0035] The main housing 10 includes a side shell 11 and two end seals 12. The side shell 11 has ports 111 at both ends in a preset direction. The two end seals 12 are respectively located at both ends of the side shell 11 in the preset direction and correspondingly close the ports 111. The side shell 11 and the end seals 12 surround to form a receiving groove 13. An opening 141 extending in a preset direction is provided on one side of the receiving groove 13.

[0036] The panel 20 is provided at the opening 141 for opening and closing the opening 141. The panel 20 and the receiving groove 13 surround to form a receiving cavity 40, which has an indoor air vent 41 and an outdoor air vent 42.

[0037] Multiple functional modules 30 are arranged along a preset direction. When there are two functional modules 30, the two functional modules 30 are a fresh air module 31 and an energy storage module 32, respectively. Alternatively, when there are at least three functional modules 30, the multiple functional modules 30 are at least a fresh air module 31, an energy storage module 32, and an exhaust module. It should be noted that when there are three functional modules 30, the three functional modules 30 are at least a fresh air module 31, an energy storage module 32, and an exhaust module, respectively. When there are four or more functional modules 30, three of the functional modules 30 are... Block 30 consists of a fresh air module 31, an energy storage module 32, and an exhaust module. Other functional modules can be modules that perform other functions. For example, a functional module can be a humidification module, which has a humidifier installed inside. The humidifier can humidify the fresh air blown out by the fresh air module 31, and then the humidified fresh air is blown out from the indoor air outlet 41. Alternatively, a functional module can be a sterilization module, which has an ultraviolet germicidal lamp installed inside, which can sterilize the fresh air blown out by the fresh air module 31, and then the sterilized fresh air is blown out from the indoor air outlet 41. This is not an isolated example.

[0038] The fresh air module 31 is detachably installed in the receiving slot 13 to drive air from the outdoor air outlet 42 to the indoor air outlet 41, so that fresh air from the outside can enter the room. The structure of the fresh air module 31 can be selected according to actual needs. The fresh air module 31 is usually equipped with a fresh air fan. The fresh air fan drives air from the outdoor air outlet 42 into the receiving cavity 40, and then the air passes through the fresh air module 31 and is blown out from the indoor air outlet 41.

[0039] The energy storage module 32 is detachably installed in the receiving slot 13 and is electrically connected to the fresh air module 31 to supply power to the fresh air module 31.

[0040] When the functional module 30 includes an exhaust module, the exhaust module is detachably installed in the receiving slot 13 and electrically connected to the energy storage module 32, so that the energy storage module 32 can supply power to the exhaust module. The exhaust module is used to drive air from the indoor air vent 41 to the outdoor air vent 42, so that fresh air from the outside can enter the room. The structure of the exhaust module can be selected according to the actual needs. The exhaust module is usually equipped with an exhaust fan. The exhaust fan drives air from the indoor air vent 41 into the receiving cavity 40, and then the air passes through the exhaust module and is blown out from the outdoor air vent 42, so as to facilitate the exhaust of the indoor stale air.

[0041] In this embodiment, there are two functional modules 30, namely the fresh air module 31 and the energy storage module 32. The installation method and electrical connection method of the exhaust module can be referred to the fresh air module 31.

[0042] The side shell 11 can be manufactured using a profile extrusion process. The required length in a preset direction can be cut according to actual needs. The length cut does not affect the structure of the end of the side shell 11. Therefore, the end seal 12 can match side shells 11 of different lengths. Thus, there is no need to change the structure of the end seal 12 and perform multiple mold openings, which helps to reduce costs.

[0043] The panel 20 is designed to be detachable, which makes it convenient to inspect the functional modules 30 after opening the panel 20. Moreover, the functional modules 30 are arranged along a preset direction, so that each functional module 30 can be seen directly after opening the panel 20, which is convenient for inspection and avoids the functional modules 30 from blocking each other and affecting the inspection operation.

[0044] It should be noted that the installation order of each functional module 30 in the accommodating cavity 40 along the preset direction can be selected according to actual needs without any restrictions.

[0045] In this embodiment, the outdoor air vent 42 is located on the side shell 11, and the indoor air vent 41 is located on the panel 20. The panel 20 is located indoors, which makes it convenient for maintenance and does not require staff to stick their bodies out of the window.

[0046] Please see Figure 5 In some optional embodiments, the receiving groove 13 is provided with a plurality of mounting parts 143 arranged sequentially along a preset direction. The functional module 30 is correspondingly arranged between two adjacent mounting parts 143. The functional module 30 is detachably connected to the mounting parts 143. The same functional module 30 is connected to the mounting parts 143 at both ends of the preset direction, so that the functional module 30 is installed stably.

[0047] The connection method between the functional module 30 and the mounting part 143 can be selected according to actual needs. For example, the two ends of the functional module 30 can be provided with fasteners 33, which are locked to the mounting part 143 by threaded parts, or the fasteners 33 are snapped into the mounting part 143 by snap-fit ​​connection.

[0048] Please see Figure 6 In some optional embodiments, two fixing slots 142 are formed on the side shell 11 within the receiving groove 13. The fixing slots 142 extend along a preset direction, and the two sides of the mounting member 143 are respectively fitted into the two fixing slots 142. The mounting member 143 can be interference-fitted with the fixing slot 142, or the mounting member 143 can be snapped or hooked with the fixing slot 142, etc. This is not limited to this example. Since the functional modules 30 such as the fresh air module 31, the energy supply module, and the exhaust module may increase in structure due to power requirements, the length of the functional modules 30 may change. The mounting member 143 can be adjusted to install in the fixing slot 142, thereby changing the position of the mounting bracket along the preset direction to accommodate functional modules 30 of different sizes. This makes the installation of the internal structure more flexible, and the side shells 11 of different lengths can also better adapt to the installation of various functional modules 30. It should be noted that since the fixing groove 142 is formed on the side shell 11 and extends along a preset direction, when the side shell 11 is cut to the required length, the fixing groove 142 is also cut to the corresponding length.

[0049] In some alternative embodiments, the outdoor air vent 42 is located on the side shell 11, and a louver 112 is provided on the outer side of the side shell 11. The louver 112 covers the side of the outdoor air vent 42 facing outward from the side shell 11. The louver 112 is provided with multiple grilles, and the grilles are provided with waterproof and / or insect-proof structures. The grilles are connected to the outdoor air vent 42. When fresh air is introduced, the outdoor air can pass through the grilles and then enter the receiving cavity 40 from the outdoor air vent 42. The louver 112 improves the aesthetics and also provides waterproof / insect-proof functions.

[0050] The specific structure of the waterproofing structure can be selected according to actual needs. For example, a waterproof slope can be designed inside the grid opening, gradually sloping downwards in the direction away from the outdoor wind vent 42. Rainwater hitting the waterproof slope can be guided away from the outdoor wind vent 42 by the slope. The specific structure of the insect-proofing structure can be selected according to actual needs. For example, the insect-proofing structure is an insect-proof mesh installed at the grid opening. Waterproofing and insect-proofing structures are common technologies in this field and are not limited to the above.

[0051] Since the length of the main housing 10 needs to be adjusted according to actual conditions, and to facilitate the adaptation of the length of the louvers 112 to the length of the main housing 10, in some optional embodiments, multiple louvers 112 are provided on the outer side of the side housing 11. Two mounting grooves 113 are formed on the side housing 11, extending along a preset direction. The two sides of the louvers 112 are respectively assembled with the mounting grooves 113. Multiple louvers 112 are arranged sequentially along the mounting grooves 113, and the end seal 12 is located at the end of the mounting groove 113, limiting and cooperating with the louvers 112 located at the end of the mounting groove 113. The louvers 112 adopt a splicing design. Multiple louvers 112 are installed on the side housing 11 along the preset direction through the mounting grooves 113. The number of louvers 112 can be increased or decreased according to the length of the side housing 11, or some of the louvers 112 can be cut to the required length. Since the mounting grooves 113 extend along the preset direction, it is convenient to adjust the installation position and number of louvers 112. It should be noted that since the mounting groove 113 is formed on the side shell 11 and extends along a preset direction, when the side shell 11 is cut to the required length, the mounting groove 113 is also cut to the corresponding length. It should also be noted that in the illustration, the multiple louvers 112 are in a spliced ​​state where they abut against each other.

[0052] The method by which the panel 20 opens or closes the opening 141 can be selected according to actual needs. In some optional embodiments, the panel 20 is detachably connected to the main housing 10 through a snap-fit ​​structure, a threaded structure, or a magnetic structure, and the opening 141 is opened and closed by assembling and disassembling the panel 20. For example, in one embodiment, the two sides of the panel 20 are snapped into the portions of the side shell 11 located on both sides of the opening 141 by snap-fit, so that the panel 20 and the side shell 11 are detachably connected. Alternatively, in one embodiment, the side shell 11 is provided with first magnetic elements extending in a preset direction on both sides of the opening 141, and the panel 20 is provided with two second magnetic elements corresponding to the first magnetic elements and magnetically attracted to them. Of course, the panel 20 can also be rotatably connected to the main housing 10 through a pivot structure, and the panel 20 can be rotated to open and close the opening 141, or the panel 20 can be slidably connected to the main housing 10, and the opening 141 can be opened and closed by sliding the panel 20.

[0053] In some optional embodiments, the window-type energy storage fresh air unit also includes a gas detector and a wireless communication module. The gas detector is mounted on the panel 20, side shell 11, or end seal 12, and is signal-connected to the fresh air module 31. The wireless communication module is also signal-connected to the fresh air module 31. The gas detector can be an oxygen detector, carbon dioxide detector, etc. It connects to the fresh air module 31 wirelessly or via a wired connection, or to the wireless communication module. The gas detector detects the corresponding gas content in the room and automatically starts and stops the fresh air module 31 based on the gas content, achieving intelligent control. The principle of intelligent control is well-known to those skilled in the art and will not be elaborated here. The wireless communication module can be a Wi-Fi module, a 3G / 4G / 5G module, a Bluetooth module, etc. Users can establish communication with the wireless communication module via remote control, mobile phone, or other devices, and then transmit control signals to the fresh air module 31 through the wireless communication module, achieving remote control of the fresh air module 31. Of course, the exhaust module or other functional modules 30 can also be signal-connected to the gas detector and the wireless communication module. In this embodiment, a control board 21 is provided on the panel 20. The gas detection chamber and the wireless communication module can be installed on the control board 21. Both the gas detection chamber and the wireless communication module are electrically connected to the control board 21. The control board 21 is electrically connected to each functional module 30. The control board 21 serves as a central control unit, which is convenient for users to operate manually. Remote controls, mobile phones, and other devices can also remotely operate the control board through the wireless communication module, making it convenient for users to use.

[0054] In some optional embodiments, a sealing strip 43 is provided inside the accommodating cavity 40, surrounding the outdoor air vent 42. The fresh air module 31 abuts against the sealing strip 43. The sealing strip 43 improves the airtightness between the fresh air module 31 and the accommodating cavity 40, so that after air enters the accommodating cavity 40 from the outdoor air vent 42, it directly enters the fresh air module 31, preventing air entering the accommodating cavity 40 from the outdoor air vent 42 from leaking out through the gap between the fresh air module 31 and the accommodating cavity 40. In this embodiment, the air inlet of the fresh air module 31 faces the outdoor air vent 42, and the sealing strip 43 is also arranged around the air inlet of the fresh air module 31.

[0055] In some optional embodiments, a glass clamping member 114, an adjustable clamping member 115, and a locking structure (not shown) are provided on one side of the side shell 11. A glass assembly groove 116 extending in a preset direction is formed between the glass clamping member 114 and the adjustable clamping member 115. The adjustable clamping member 115 can be adjusted in position in the direction close to or away from the glass clamping member 114. The adjustable clamping member 115 is locked in place with the side shell 11 by the locking structure. The glass clamping member 114 and the adjustable clamping member 115 clamp the glass. Since the adjustable clamping member 115 can be adjusted relative to the glass clamping member 114, it can be adapted to clamp window glass of different thicknesses, so that the side of the window glass can be stably fixed in the glass assembly groove 116. The locking structure can be selected according to actual needs. For example, the locking structure includes a threaded locking member. The adjustable clamping member 115 is provided with an adjustment groove extending toward the glass clamping member 114. The threaded locking member passes through the adjustment groove and is locked with the side shell 11. By loosening the threaded locking member, the locking of the adjustable clamping member 115 can be released, and then the adjustable clamping member 115 can move relative to the threaded locking member to adjust its position relative to the glass clamping member 114.

[0056] In some optional embodiments, the side shell 11 is provided with two heat insulation members 117 and two mounting parts 118. The two heat insulation members 117 are respectively located on both sides of the side shell 11 and extend along a preset direction. The mounting parts 118 are correspondingly located on the side of the heat insulation members 117 away from the side shell 11. The panel 20 is connected to the mounting parts 118. In this embodiment, the mounting parts 118 and the panel 20 are detachably connected. After the window-type energy storage fresh air unit is installed, the heat insulation members 117 are located at the position corresponding to the window frame or window glass. For example, the heat insulation members 117 abut against or are inside the window frame, abut against the window glass or are near the window glass. Outdoor heat can be transferred from the side shell 11 to the mounting parts 118 and the panel 20, and then transferred to the interior. Alternatively, indoor heat can be transferred from the mounting parts 118 or the panel 20 to the side shell 11, and then transferred to the outside. Through the heat insulation of the heat insulation members 117, the heat exchange between the outside and the inside is reduced, and the indoor thermal insulation performance is improved. Since the extruded side shell 11 is usually made of metal, such as aluminum, heat is easily transferred through the side shell 11. The insulation effect is improved by the barrier provided by the heat insulation member 117. In this embodiment, the glass clamping member 114 is provided on the assembly part 118, and the adjustable clamping member 115 is provided on the side shell 11.

[0057] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A window type energy storage fresh air machine, characterized by, include: Main casing, panel, and multiple functional modules; The main housing includes a side shell and two end seals. The side shell has ports at both ends in a preset direction. The two end seals are respectively located at both ends of the side shell in the preset direction and correspondingly close the ports. The side shell and the end seals surround each other to form a receiving groove. One side of the receiving groove has an opening extending along the preset direction. The panel is disposed at the opening for opening and closing the opening. The panel and the receiving groove surround to form a receiving cavity, and the receiving cavity has an indoor air vent and an outdoor air vent. Multiple functional modules are arranged along the preset direction. When there are two functional modules, each module is a fresh air module and an energy storage module. Alternatively, when there are at least three functional modules, each module is at least a fresh air module, an energy storage module, and an exhaust module. The fresh air module is detachably installed in the receiving slot to drive air from the outdoor air vent to the indoor air vent; The energy storage module is detachably installed in the receiving slot and is electrically connected to the fresh air module; When the functional module includes an exhaust module, the exhaust module is detachably installed in the receiving slot and electrically connected to the energy storage module. The exhaust module is used to drive air from the indoor air vent to the outdoor air vent.

2. The window-type energy storage fresh air machine according to claim 1, characterized in that: The receiving groove is provided with a plurality of mounting components arranged sequentially along the preset direction. The functional module is correspondingly arranged between two adjacent mounting components, and the functional module is detachably connected to the mounting component.

3. The window-type energy storage fresh air machine according to claim 2, characterized in that: Two fixing grooves are formed on the side shell and located in the receiving groove. The fixing grooves extend along the preset direction, and the two sides of the mounting member are respectively assembled into the two fixing grooves.

4. The window energy storage fresh air machine according to claim 1, characterized in that: The outdoor air vent is located on the side shell, and a louver is provided on the outer side of the side shell. The louver covers the side of the outdoor air vent facing outward from the side shell. The louver is provided with multiple grid openings, and the grid openings are provided with waterproof and / or insect-proof structures. The grid openings are connected to the outdoor air vent.

5. A window-type energy storage fresh air unit according to claim 4, characterized in that: The outer side of the side shell is provided with a plurality of louvers, and two mounting grooves are formed on the side shell. The mounting grooves extend along the preset direction. The two sides of the louvers are respectively assembled with the mounting grooves. The plurality of louvers are arranged sequentially along the mounting grooves. The end seal is located at the end of the mounting groove and is matched with the louvers located at the end of the mounting groove.

6. The window energy storage fresh air machine according to any one of claims 1 to 5, characterized in that: The panel is detachably connected to the main housing via a snap-fit ​​structure, a threaded structure, or a magnetic structure.

7. A window energy storage fresh air unit according to any one of claims 1 to 5, characterized in that, It also includes a gas detector and a wireless communication module. The gas detector is disposed on the panel, the side shell, or the end seal. The gas detector is connected to the fresh air module via signal, and the wireless communication module is connected to the fresh air module via signal.

8. The window energy storage fresh air machine according to any one of claims 1 to 5, characterized in that: The cavity is provided with a sealing strip arranged around the outdoor air vent, and the fresh air module abuts against the sealing strip.

9. A window energy storage fresh air machine according to any one of claims 1 to 5, characterized in that: One side of the side shell is provided with a glass pressing member, an adjustable pressing member, and a locking structure. A glass assembly groove extending along the preset direction is formed between the glass pressing member and the adjustable pressing member. The adjustable pressing member can be adjusted in the direction of approaching or moving away from the glass pressing member. The adjustable pressing member is locked to the side shell by the locking structure.

10. The window energy storage fresh air machine according to any one of claims 1 to 5, characterized in that: The side shell is provided with two heat insulation components and two assembly parts. The two heat insulation components are respectively located on both sides of the side shell. The heat insulation components extend along the preset direction. The assembly parts are correspondingly arranged on the side of the heat insulation component away from the side shell. The panel is connected to the assembly parts.