Integrated wardrobe detection instrument

The integrated wardrobe testing instrument solves the problem of insufficient wardrobe environmental monitoring, realizes automatic constant temperature control and air circulation management inside the wardrobe, prevents clothes from getting damp and moldy, and improves the convenience of use and management efficiency.

CN121879478APending Publication Date: 2026-04-17JIANGSU WISHING TREE SMART HOME TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
JIANGSU WISHING TREE SMART HOME TECH CO LTD
Filing Date
2023-09-25
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing wardrobes lack environmental monitoring functions and cannot detect temperature and humidity in real time, resulting in clothes becoming damp, moldy, and producing odors.

Method used

An integrated wardrobe testing instrument was designed, which includes a temperature control detection mechanism, a blower assembly, a suction assembly, a humidity sensor, and an ultraviolet germicidal lamp. Through automatic constant temperature control, a blower-suction cooling and dust removal system, and air circulation management, it can realize real-time monitoring and management of the wardrobe's internal environment.

Benefits of technology

It achieves automatic temperature control inside the wardrobe, improves air circulation efficiency, prevents clothes from getting damp and moldy, keeps the air fresh, and enhances ease of use and management efficiency.

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Abstract

The invention discloses an integrated wardrobe detection instrument, and belongs to the field of smart home. An integrated wardrobe detection instrument comprises a wardrobe body, an air blowing assembly is arranged on one side in the wardrobe body, an air suction assembly is arranged on the side, away from the air blowing assembly, in the wardrobe body, and an air heater is arranged at the bottom in the wardrobe body; a temperature control detection mechanism is fixed at the top in the wardrobe body through a mounting plate; according to the intelligent wardrobe, an air storage pipe, a shifting piece and a sliding rheostat on the temperature control detection mechanism are matched with an air blowing assembly and an air suction assembly, automatic constant-temperature control over the interior of the wardrobe body is achieved by means of reverse correlation between resistance values and currents, and the situation that clothes placed in the wardrobe body are excessively changed due to the influence of the environment temperature is avoided; through the integrated design, real-time monitoring and management of the internal environment of the wardrobe body are achieved, and the use convenience and the management efficiency of the wardrobe body are improved.
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Description

Technical Field

[0001] This invention relates to the field of smart homes, and more particularly to an integrated wardrobe detection instrument. Background Technology

[0002] A wardrobe is a piece of furniture used to store clothes and other items, typically consisting of a cabinet body, clothes rods, drawers, and storage compartments. It is widely used in homes, hotels, shopping malls, and other places, providing people with a neat and organized storage space for their clothes.

[0003] A search revealed a patent with patent number CN214678149U entitled "A Solid Wood Furniture Wardrobe with Moisture-proof Function." This patent describes how an activated carbon adsorption box and a dehumidifying bag are installed inside the wardrobe. The activated carbon freshens the air inside the wardrobe, adsorbs odors and harmful gases, while the dehumidifying bag removes moisture from the wardrobe, thus achieving a moisture-proof effect.

[0004] Research and analysis revealed that the wardrobe in the cited patent lacks environmental monitoring functions and cannot detect the temperature and humidity inside the wardrobe in real time. During long-term use, this may cause clothes to become damp, moldy, and produce odors. Therefore, it is necessary to improve the shortcomings and defects of the existing technology. Summary of the Invention

[0005] The purpose of this invention is to solve the problem that existing wardrobes lack environmental monitoring functions, making it impossible to detect the temperature and humidity inside the wardrobe in real time. This may lead to clothes getting damp, moldy, and producing odors during long-term use. Therefore, an integrated wardrobe detection instrument is proposed.

[0006] To achieve the above objectives, the present invention adopts the following technical solution:

[0007] An integrated wardrobe testing instrument includes: a wardrobe body, wherein the wardrobe body is divided into three spaces from bottom to top by two sets of fixed horizontal partition mesh panels; a blower assembly is provided on one side of the wardrobe body; a suction assembly is provided on the side of the wardrobe body away from the blower assembly; and a hot air blower is provided at the bottom of the wardrobe body.

[0008] A temperature control detection mechanism is fixed to the top of the wardrobe body via an mounting plate. A U-shaped frame and a sliding rheostat are sequentially fixed to the temperature control detection mechanism via bolts. An air storage pipe is installed on the U-shaped frame, and a sliding rod is slidably connected inside the air storage pipe. A lever is fixed to the top of the sliding rod, and the lever is perpendicular to the sliding rheostat and in contact with its outer surface. Two sets of symmetrically arranged cabinet doors are rotatably connected to the opening direction of the wardrobe body. A control panel is installed and fixed on the cabinet doors. The control panel is electrically connected to the blower assembly, the suction assembly, the temperature control detection mechanism, and the hot air motor.

[0009] Furthermore, the blower assembly is equipped with a blower, which is fixed to space one by bolts. The output end of the blower is connected to a main pipe, and a blower cover is connected to the main pipe through a branch pipe. There are two sets of blower covers located in space two and space three respectively.

[0010] Furthermore, the suction assembly is equipped with a suction fan, which is fixed to space one by bolts. One end of the suction fan is connected to a main pipe two, and a suction hood is connected to the main pipe two via a branch pipe two. There are two sets of suction hoods located in space two and space three respectively.

[0011] Furthermore, the suction hood and the blowing hood are at the same horizontal position and arranged symmetrically. The outer sides of the second main pipe and the first main pipe are both covered with tooling shells, and the tooling shells are fixedly connected to the outer side of the wardrobe body by bolts.

[0012] When the temperature inside the wardrobe becomes too high, the temperature control detection mechanism detects that the temperature exceeds the upper limit and transmits an electrical signal to the control panel. After collection and processing, the control panel sequentially activates the blower on the blower assembly and the suction fan on the suction assembly. After the blower is activated, the airflow passes through main pipe one and branch pipe one, and is discharged into space two and space three through two sets of air blowing hoods. This causes the hot air inside the wardrobe to be blown horizontally towards one side of the suction assembly. At the same time, the suction fan is activated, and the airflow passes through main pipe two and branch pipe two, generating suction at the suction hood. This causes the blown hot airflow and dust particles to be collected into the suction fan, achieving the purpose of cooling and dust removal. It is worth noting that the air blowing hood and the suction hood are at the same horizontal height and are symmetrically arranged. When activated simultaneously, they can form a blowing and suction cooling and dust removal system, effectively creating air convection and promoting cooling and dust removal efficiency.

[0013] Furthermore, an activated carbon filter is detachably installed in the opening direction of the air intake hood.

[0014] Furthermore, a clothes rack is bolted to the top of the second space for hanging clothes, and hooks are bolted to the inside of the cabinet door to increase storage space. Four sets of support legs are bolted to the four feet of the wardrobe body for supporting the wardrobe body and preventing moisture.

[0015] Furthermore, the sliding rheostat is configured from bottom to top as a heating zone, a constant temperature zone, and a cooling zone.

[0016] Furthermore, a humidity sensor and an ultraviolet germicidal lamp are installed inside the wardrobe body by bolts. There are two sets of ultraviolet germicidal lamps located in space three and space two respectively. The humidity sensor and the ultraviolet germicidal lamp are electrically connected to the control panel.

[0017] Users can periodically turn on the ultraviolet germicidal lamp via the control panel to disinfect harmful viruses and microorganisms inside the wardrobe, ensuring the health of users. The humidity sensor detects the humidity inside the wardrobe. When the humidity inside the wardrobe is too high and exceeds the limit, the wardrobe will transmit the collected humidity information to the control panel in the form of an electrical signal. After receiving the signal, the control panel will process it and turn on the blower and suction components to expel the humid air inside by accelerating air circulation, thus preventing clothes from getting moldy.

[0018] Compared with the prior art, the present invention provides an integrated wardrobe testing instrument, which has the following beneficial effects:

[0019] 1. In this invention, by using the air storage pipe, lever, sliding rheostat, blowing component, and suction component on the temperature control detection mechanism, the reverse correlation between resistance value and current is utilized to achieve automatic constant temperature control inside the wardrobe body, thus avoiding the situation where the durability of clothing fabric is reduced due to excessive changes in ambient temperature.

[0020] 2. The blowing and suction cooling and dust removal system, composed of blowing and suction components, effectively creates air convection inside the wardrobe, accelerates air circulation and dehumidification, promotes cooling and dust removal efficiency, and can keep the air inside the wardrobe fresh for a long time, preventing odors from adhering to clothes.

[0021] 3. This invention integrates the temperature control detection mechanism, humidity sensor, control panel, and wardrobe body into a single design, enabling real-time monitoring and management of the wardrobe's internal environment. This improves the ease of use and management efficiency of the wardrobe. This invention has broad application prospects and can be promoted and applied in homes, hotels, shopping malls, and other places. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the structure of an integrated wardrobe testing instrument proposed in this invention;

[0023] Figure 2 This is a top view schematic diagram of an integrated wardrobe testing instrument proposed in this invention;

[0024] Figure 3 This is a schematic diagram of the internal structure of an integrated wardrobe testing instrument proposed in this invention;

[0025] Figure 4 This is a side sectional view of an integrated wardrobe testing instrument proposed in this invention.

[0026] Figure 5This is a schematic diagram of the temperature control detection mechanism of an integrated wardrobe testing instrument proposed in this invention;

[0027] Figure 6 This is a schematic diagram of the blowing component and suction component of an integrated wardrobe testing instrument proposed in this invention;

[0028] Figure 7 This invention relates to a temperature control detection mechanism for an integrated wardrobe testing instrument. Figure 6 Schematic diagram of part A in the middle.

[0029] In the diagram: 1. Wardrobe body; 101. Space 1; 102. Space 2; 103. Space 3; 2. Divider mesh panel; 3. Blower assembly; 31. Blower; 32. Main pipe 1; 33. Branch pipe 1; 34. Air blower hood; 4. Suction assembly; 41. Suction fan; 42. Main pipe 2; 43. Branch pipe 2; 44. Suction hood; 5. Activated carbon filter; 6. Temperature control detection mechanism; 60. Mounting plate; 61. U-shaped frame; 62. Air storage pipe; 63. Slide rod; 64. Paddle; 65. Sliding rheostat; 651. Heating zone; 652. Constant temperature zone; 653. Cooling zone; 7. Humidity sensor; 8. Ultraviolet germicidal lamp; 9. Hot air blower; 10. Clothes hanging rod; 11. Hook; 12. Tooling shell; 13. Support legs; 14. Cabinet door; 15. Control panel. Detailed Implementation

[0030] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0031] In the description of this invention, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc., 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 invention 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 invention.

[0032] Example

[0033] Reference Figure 1-7 An integrated wardrobe testing instrument includes: a wardrobe body 1, the wardrobe body 1 is divided into three spaces 101, 102 and 103 from bottom to top by two sets of fixed horizontal partition mesh plates 2, a blower component 3 is provided on one side of the wardrobe body 1, a suction component 4 is provided on the side of the wardrobe body 1 away from the blower component 3, and a hot air blower 9 is provided at the bottom of the wardrobe body 1.

[0034] A temperature control detection mechanism 6 is fixed to the top of the wardrobe body 1 via a mounting plate 60. A U-shaped frame 61 and a sliding rheostat 65 are sequentially fixed to the temperature control detection mechanism 6 via bolts. An air storage pipe 62 is installed on the U-shaped frame 61. A slide rod 63 is slidably connected inside the air storage pipe 62. A lever 64 is fixed to the top of the slide rod 63. The lever 64 is perpendicular to the sliding rheostat 65 and is in contact with its outer surface. Two sets of symmetrically arranged cabinet doors 14 are rotatably connected to the opening direction of the wardrobe body 1. A control panel 15 is installed and fixed on the cabinet doors 14. The control panel 15 is electrically connected to the blower assembly 3, the suction assembly 4, the temperature control detection mechanism 6, and the hot air blower 9.

[0035] The blower assembly 3 is equipped with a blower 31, which is fixed in space 101 by bolts. The output end of the blower 31 is connected to the main pipe 32, and the main pipe 32 is connected to the air blowing cover 34 by the branch pipe 33. There are two sets of air blowing covers 34 located in space 2 102 and space 3 103 respectively.

[0036] The suction assembly 4 is equipped with a suction fan 41, which is fixed in space 101 by bolts. One end of the suction fan 41 is connected to a main pipe 42, and a suction hood 44 is connected to the main pipe 42 via a branch pipe 43. There are two sets of suction hoods 44 located in space 102 and space 103 respectively.

[0037] The suction hood 44 and the blowing hood 34 are at the same horizontal position and are arranged symmetrically. The outer sides of the main pipe 2 42 and the main pipe 1 32 are covered with tooling shell 12, and the tooling shell 12 is fixedly connected to the outer side of the wardrobe body 1 by bolts.

[0038] like Figure 3 , Figure 6 As shown, when the temperature inside the wardrobe body 1 is too high, the temperature control detection mechanism 6 detects that the temperature exceeds the upper limit and transmits an electrical signal to the control panel 15. After collection and processing, the control panel 15 sequentially turns on the blower 31 on the blower assembly 3 and the suction fan 41 on the suction assembly 4. After the blower 31 is turned on, the airflow passes through the main pipe 1 32 and the branch pipe 1 33 in sequence and is discharged into the space 2 102 and the space 3 103 through the two sets of air blowing hoods 34, so that the hot air inside the wardrobe body 1 is blown horizontally to one side of the suction assembly 4. At the same time, the suction fan 41 is turned on, and the airflow passes through the main pipe 2 42 and the branch pipe 2 43 in sequence to generate suction at the suction hood 44, so that the blown hot airflow and dust particles are collected into the suction fan 41, achieving the purpose of cooling and dust removal. It is worth noting that the air blowing hood 34 and the suction hood 44 are at the same height in the horizontal direction and are arranged symmetrically. When they are turned on at the same time, they can form a blowing and suction cooling and dust removal system, which effectively forms air convection and promotes cooling and dust removal efficiency.

[0039] An activated carbon filter 5 is detachably installed in the opening direction of the intake hood 44; such as Figure 7 As shown, by installing an activated carbon filter 5 at the opening of the air intake hood 44, odors inside the wardrobe body 1 can be absorbed, keeping the air inside the wardrobe body 1 fresh, and large particulate matter in the air can be filtered when the hood is activated.

[0040] The top of the space 102 is fixed with a clothes rod 10 by bolts for hanging clothes. The inside of the cabinet door 14 is fixed with hooks 11 by bolts to increase storage space. The four legs on the bottom of the wardrobe body 1 are fixed with four sets of support legs 13 by bolts for supporting the wardrobe body 1 and preventing moisture.

[0041] Working Principle: When using this invention, firstly, the internal electrical equipment is electrically connected to an external power source, and the corresponding program is set on the control panel 15. When the temperature inside the wardrobe body 1 rises or falls above a certain value, the volume of gas in the gas storage pipe 62 on the temperature control detection mechanism 6 expands or contracts, which further causes the slider 63 to move up or down within the gas storage pipe 62, and drives the lever 64 to slide on the sliding rheostat 65, thereby changing the resistance value at the sliding rheostat 65. Since the sliding rheostat 65 is electrically connected to the blower assembly 3, the suction assembly 4, and the hot air blower 9, the air entering the blower assembly 3 will be... The current at the suction component 4 and the hot air blower 9 also changes, reaching different temperature states. The blowing component 3 and the suction component 4 are activated to complete the cooling, and the hot air blower 9 is activated to complete the heating, so that the wardrobe body 1 is always kept in a constant temperature state within a certain range. This avoids the clothes placed in the wardrobe body 1 from being affected by the large changes in ambient temperature, which would reduce the durability of the clothing fabric. At the same time, the blowing and suction cooling and dust removal system composed of the blowing component 3 and the suction component 4 effectively forms air convection, accelerates air circulation, and promotes cooling and dust removal efficiency. It can keep the air inside the wardrobe body 1 fresh for a long time and prevent odors from adhering to the clothes.

[0042] The sliding rheostat 65 is configured from bottom to top as a heating zone 651, a constant temperature zone 652, and a cooling zone 653.

[0043] The wardrobe body 1 is equipped with a humidity sensor 7 and an ultraviolet germicidal lamp 8, which are fixed by bolts. There are two sets of ultraviolet germicidal lamps 8, located in space 3 103 and space 2 102 respectively. The humidity sensor 7 and the ultraviolet germicidal lamp 8 are electrically connected to the control panel 15.

[0044] like Figure 4 , Figure 5As shown, under normal temperature conditions, the lever 64 on the temperature control detection mechanism 6 is located within the constant temperature zone 652 on the sliding rheostat 65. The heating zone 651 and cooling zone 653 are equivalent to two symmetrically wound resistors. When the temperature inside the wardrobe body 1 rises above the constant temperature range, the gas volume in the gas storage pipe 62 expands, causing the slider 63 to move the lever 64 upward to contact the cooling zone 653. The greater the upward distance of the lever 64 in the cooling zone 653, the smaller the resistance value at the cooling zone 653. Specifically, this is manifested by the airflow entering the blower assembly 3 and the suction assembly 4. The larger the current, the faster the temperature inside the wardrobe body 1 will drop. When the temperature inside the wardrobe body 1 drops below the constant temperature range, the gas volume in the gas storage pipe 62 will contract, and the lever 64 will move down to contact the heating zone 651. The greater the distance the lever 64 moves up and down in the heating zone 651, the smaller the resistance value at the heating zone 651. Specifically, the larger the current entering the hot air blower 9, the faster the temperature inside the wardrobe body 1 will rise. In this way, by utilizing the inverse correlation between resistance and current, automatic constant temperature control inside the wardrobe body 1 is achieved, which saves energy to a certain extent.

[0045] Users can periodically turn on the ultraviolet germicidal lamp 8 via the control panel 15 to disinfect harmful viruses and microorganisms inside the wardrobe body 1, ensuring the health of users. The humidity sensor 7 is used to detect the humidity of the air inside the wardrobe body 1. When the humidity inside the wardrobe body 1 is high and exceeds the limit, the wardrobe body 1 will transmit the collected humidity information to the control panel 15 in the form of an electrical signal. After receiving the signal, the control panel 15 processes it and turns on the blower component 3 and the suction component 4 to expel the humid air inside by accelerating air circulation, thus preventing clothes from getting moldy. It should be noted that the humidity sensor 7 in this patent can be of the model SHT-30, which has the advantages of high sensitivity, high accuracy, high chip integration, ease of use, fast response, small size, and high cost performance, but is not limited to this model of sensor. A communication module such as Bluetooth can be embedded in the control panel 15 to wirelessly connect with user devices, allowing users to check the status of the wardrobe body 1 at any time, which can effectively improve the convenience of use and management efficiency of the wardrobe.

[0046] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. An integrated wardrobe detection instrument, characterized in that, include: The wardrobe body (1) is divided into three spaces from bottom to top: space one (101), space two (102), and space three (103) by two sets of fixed horizontal partition mesh panels (2). A blower assembly (3) is provided on one side of the wardrobe body (1), and a suction assembly (4) is provided on the side of the wardrobe body (1) away from the blower assembly (3). A hot air blower (9) is provided at the bottom of the wardrobe body (1). The wardrobe body (1) has a temperature control detection mechanism (6) fixed to the top inside by a mounting plate (60). A U-shaped frame (61) and a sliding rheostat (65) are fixed to the temperature control detection mechanism (6) by bolts. An air storage pipe (62) is provided on the U-shaped frame (61). A sliding rod (63) is slidably connected inside the air storage pipe (62). A lever (64) is fixed to the top of the lever (63). The lever (64) is perpendicular to the sliding rheostat (65) and is in contact with its outer surface. Two sets of cabinet doors (14) are rotatably connected to the opening direction of the wardrobe body (1). A control panel (15) is installed and fixed on the cabinet door (14). The control panel (15) is electrically connected to the blower assembly (3), the suction assembly (4), the temperature control detection mechanism (6), and the hot air blower (9).

2. The integrated wardrobe detection instrument of claim 1, wherein, The blower assembly (3) is equipped with a blower (31), which is fixed in space one (101) by bolts. The output end of the blower (31) is connected to a main pipe (32), and the main pipe (32) is connected to a blower hood (34) by a branch pipe (33). There are two sets of blower hoods (34) located in space two (102) and space three (103) respectively.

3. The integrated wardrobe detection instrument of claim 2, wherein, The suction assembly (4) is equipped with a suction fan (41), which is fixed in space one (101) by bolts. One end of the suction fan (41) is connected to a main pipe two (42), and a suction hood (44) is connected to the main pipe two (42) through a branch pipe two (43). There are two sets of suction hoods (44) located in space two (102) and space three (103) respectively.

4. The integrated wardrobe detection instrument of claim 3, wherein, The suction hood (44) and the blowing hood (34) are at the same horizontal position and are arranged symmetrically. The outer sides of the second main pipe (42) and the first main pipe (32) are covered with tooling shells (12). The tooling shells (12) are fixedly connected to the outer side of the wardrobe body (1) by bolts.

5. The integrated wardrobe detection instrument of claim 3, wherein, An activated carbon filter (5) is detachably installed in the opening direction of the air intake hood (44).

6. The integrated wardrobe detection instrument of claim 1, wherein, The top of the second space (102) is fixed with a clothes rack (10) by bolts for hanging clothes. The inside of the cabinet door (14) is fixed with a hook (11) by bolts for increasing storage space. The four legs on the bottom of the wardrobe body (1) are fixed with four sets of support legs (13) by bolts for supporting the wardrobe body (1) and preventing moisture.

7. The integrated wardrobe detection instrument of claim 1, wherein, The sliding rheostat (65) is configured from bottom to top as a heating zone (651), a constant temperature zone (652), and a cooling zone (653).

8. The integrated wardrobe detection instrument of claim 1, wherein, The wardrobe body (1) is equipped with a humidity sensor (7) and an ultraviolet germicidal lamp (8) fixed by bolts. There are two sets of ultraviolet germicidal lamps (8) located in space three (103) and space two (102) respectively. The humidity sensor (7) and the ultraviolet germicidal lamp (8) are electrically connected to the control panel (15).

Citation Information

Patent Citations

  • Solid wood furniture wardrobe with moisture-proof function

    CN214678149U