A control method for a shoe drying and dehumidifying machine
By designing the shoe drying and dehumidification integrated machine system and using the central controller to manage various modules, the switching and collaborative work of shoe drying and dehumidification is solved, and the existing shoe drying machine damages shoes and dehumidifiers lacks shoe drying functions are achieved, and functional diversification and resource saving are achieved.
Patent Information
- Application Number
- CN202310023971.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-01-09
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2043-01-09
AI Technical Summary
Existing shoe dryers can easily cause shoes to be degummed and hardened. Existing dehumidifiers lack the function of shoe drying, which cannot achieve diversification of functions and resource conservation.
Design a shoe drying and dehumidification integrated machine system, including temperature monitoring module, humidity monitoring module, collaborative module, timing module and central controller, and centralized management and control of each module through the central controller to realize the switching and coordinated work of shoe drying and dehumidification.
The functions of shoes drying and dehumidification are diversified, avoiding shoe damage caused by heating shoes drying. At the same time, the module is activated only when there are shoes in the shoe cavity when needed, saving resources.
Smart Images

Figure CN116149405B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of shoe drying machines, and in particular to a control method of a shoe drying and dehumidifying integrated machine. Background Art
[0002] Shoe dryers on the market can be divided into two types according to their working methods. One is heat sink heating, and the other is blower heating. The shoe dryer blows the heated clean hot air into the inside of the shoes and boots, while extracting the evaporated hot and humid air, allowing the shoes and boots to dry gently in a static state.
[0003] Existing shoe drying machines heat the shoes, causing them to become detached and hardened, causing significant damage to the shoes and reducing their comfort and service life. Existing dehumidifiers do not have a shoe drying function. There is an urgent need for a shoe drying and dehumidification integrated machine and its control method. Summary of the Invention
[0004] To this end, the present invention provides a control method for a shoe drying and dehumidifying integrated machine to solve the problems raised in the background technology.
[0005] In order to achieve the above-mentioned object, the present invention provides the following technical solution: a shoe drying and dehumidifying integrated system, the integrated system at least comprising:
[0006] A temperature monitoring module is provided with a first temperature sensor and a second temperature sensor, which respectively monitor the temperature of the air inlet and the air outlet of the shoe cavity and feed back the temperature measurement results to the central controller;
[0007] A humidity monitoring module is provided with a first humidity sensor and a second humidity sensor. The first humidity sensor is located at the air inlet of the shoe cavity and is used to monitor the ambient humidity. The second humidity sensor is located inside the shoe cavity and is used to monitor the humidity inside the shoe cavity. The detection results of the first humidity sensor and the second humidity sensor are fed back to the central controller.
[0008] The collaborative module is controlled by the central controller and executes the instructions issued by the central controller after analysis. It regulates the partitions, compressors and fans used to separate the shoe cavity from the outside world in the system;
[0009] A timing module is provided with a purification unit and is connected to the humidity monitoring module. The timing module is used to regularly purify and deodorize the shoe cavity and the shoes inside the shoe cavity;
[0010] And a central controller module, which is provided with a central controller for centrally managing and controlling the temperature monitoring module, the humidity monitoring module, the coordination module and the timing module.
[0011] As the preferred technical solution of this application, this system is used to make a shoe drying and dehumidifying machine.
[0012] The present invention also provides a control method for a shoe drying and dehumidifying integrated system, the specific steps of which include:
[0013] First, the humidity value detected by the first humidity sensor is recorded as P1, the humidity value detected by the second humidity sensor is recorded as P2, the temperature value detected by the first temperature sensor is recorded as H1, the temperature value detected by the second temperature sensor is recorded as H2, the absolute value of the difference between H1 and H2 is recorded as N, and the central controller presets the temperature difference comparison value M;
[0014] S11. When the central controller detects that the humidity values of P1 and P2 are the same, that is, the ambient humidity is equal to the humidity value inside the shoe cavity, indicating that there are no shoes in the shoe cavity, the central controller controls the collaborative module to operate, and the collaborative module controls the partition separating the shoe cavity from the outside to open, and the system enters the dehumidifier mode;
[0015] S12, when the central controller detects that the humidity value P2 is greater than the humidity value P1, it means that there are shoes in the shoe cavity, and the system enters the shoe drying mode. The collaborative module starts the timing module according to the instruction of the constraint controller;
[0016] S13, when N is greater than M, the temperature monitoring module feeds back to the central controller, and the system enters the shoe drying machine mode. The coordination module starts the timing module according to the instruction of the constraint controller.
[0017] As the preferred technical solution of this application, in the dehumidifier mode, the operation steps of the collaborative module include:
[0018] S21. When frost forms on the evaporator surface, the partition separating the shoe chamber from the outside world closes, the shoe drying and dehumidifying machine circulates, and the hot air blows toward the evaporator;
[0019] S22. Wait until the frost on the surface of the evaporator melts, the partition opens, dehumidification continues, and the compressor operates normally.
[0020] As the preferred technical solution of the present application, the system adjusts the shoe drying temperature range to 45-55°C in the shoe drying machine mode.
[0021] As the preferred technical solution of the present application, the system adjusts the shoe drying temperature range to 45°C in the shoe drying machine mode.
[0022] As the preferred technical solution of the present application, the system adjusts the shoe drying temperature range to 55°C in the shoe drying machine mode.
[0023] As the preferred technical solution of the present application, the system adjusts the shoe drying temperature range to 50°C in the shoe drying machine mode.
[0024] As the preferred technical solution of this application, in the shoe drying machine mode, the operation steps of the collaborative module include:
[0025] S31, the central controller opens the partition, so that the shoe cavity and the outside air exchange heat, and the temperature in the shoe cavity decreases;
[0026] S32. When N decreases to M, the partition is closed, and the hot air continues to circulate in the shoe drying and dehumidifying machine to dry the shoes until they are dry.
[0027] As the preferred technical solution of this application, the specific steps of the purification module include:
[0028] The timing module is initially in an open state and is used to establish a connection with the humidity monitoring module. The timing module can only work when it receives instructions from the humidity monitoring module. The purification unit also includes a deodorizing device and a pressure device. The deodorizing device is injected with liquid deodorant. The deodorizing device is arranged in the shoe drying and dehumidifying machine and is connected to the shoe cavity. After the pressure device is pressurized, the electric valve connecting the deodorizing device and the shoe cavity is opened, and the liquid deodorant is sprayed out through the atomizing nozzle installed on the deodorizing device.
[0029] S41, when the central controller detects that the humidity values of P1 and P2 are the same, there is no shoe in the shoe cavity, and the timing module and the humidity monitoring module are not connected, and the purification module does not work;
[0030] S42. When the central controller detects that the humidity values of P1 and P2 are different, there are shoes inside the shoe cavity. At this time, the timing module establishes a connection with the humidity monitoring module. At this time, the timing module works and the purification unit performs regular deodorization on the shoes inside the shoe cavity.
[0031] As a preferred technical solution of the present application, after the timing module works for the first time after establishing a connection with the humidity monitoring module, it works every 10-15 minutes thereafter until P2 does not change, and the timing module stops working.
[0032] As a preferred technical solution of the present application, after the timing module works for the first time after establishing a connection with the humidity monitoring module, it works every 10 minutes thereafter until P2 does not change, and the timing module stops working.
[0033] As a preferred technical solution of the present application, after the timing module works for the first time after establishing a connection with the humidity monitoring module, it works every 15 minutes thereafter until P2 does not change, and the timing module stops working.
[0034] As a preferred technical solution of this application, the time setting step of the shoe drying mode includes:
[0035] S51, set the shoe drying time t1. When the shoe drying reaches t1, the compressor stops working and the fan continues to work. After t2, if the humidity P2 rises rapidly, the compressor continues to work and continues to dry the shoes for dehumidification.
[0036] S52: If the value of P2 does not change, it means that the shoes have been dried and the fan stops working;
[0037] S53, and so on, until the humidity of P2 remains stable, which means the shoes have been dried, the compressor stops working, the fan stops working, and the shoe drying is completed.
[0038] As a preferred technical solution of the present application, the deodorizing device is provided with a regulating valve, and the spraying amount of the liquid deodorant is controlled to be 1-3 ml each time.
[0039] As a preferred technical solution of the present application, the deodorizing device is provided with a regulating valve, and the spraying amount of the liquid deodorant is controlled to be 1 ml each time.
[0040] As a preferred technical solution of the present application, the deodorizing device is provided with a regulating valve, and the spraying amount of the liquid deodorant is controlled to be 2 ml each time.
[0041] As a preferred technical solution of the present application, the deodorizing device is provided with a regulating valve, and the spraying amount of the liquid deodorant is controlled to be 3 ml each time.
[0042] Beneficial effects
[0043] 1. The present invention adopts the integrated shoe drying and dehumidifying machine system to design an integrated shoe drying and dehumidifying machine. The central controller analyzes and processes the temperature and humidity monitoring module and issues instructions to control the partition, compressor and fan in the system that separate the shoe cavity from the outside world. Compared with the existing technology, this machine can be used as both a shoe drying machine and a dehumidifier. When the dehumidifier is working, it will generate hot air. The hot air generated by the dehumidifier and the dehumidification function are used to dry the shoes, avoiding problems such as degumming and hardening of the shoes caused by heating and drying the shoes. At the same time, when not used as a shoe drying machine, it can be used as a dehumidifier, realizing diversified functions.
[0044] 2. The present invention cooperates with the humidity monitoring module through the timing module to purify and deodorize the shoe cavity and the canvas shoes inside the shoe cavity at a fixed time. Compared with the existing technology, it realizes the functional expansion of the shoe drying machine. The starting module is only started when there are shoes in the shoe cavity, which has a better resource-saving effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0045] Figure 1 This is a flow chart of the control method of the shoe drying and dehumidifying machine provided by the present invention. DETAILED DESCRIPTION
[0046] The following describes the implementation of the present invention using specific embodiments. Those skilled in the art will readily understand the other advantages and benefits of the present invention from the disclosure herein. Obviously, the embodiments described are only a portion of the present invention, not all of it. All other embodiments derived by persons of ordinary skill in the art based on the embodiments of the present invention without inventive effort are intended to fall within the scope of protection of the present invention.
[0047] Example 1
[0048] Put 6 pairs of used canvas shoes into the shoe cavity of the shoe drying and dehumidifying machine made of the shoe drying and dehumidifying machine system for drying;
[0049] Refer to the instruction manual Figure 1 This embodiment provides a shoe drying and dehumidifying integrated system, which includes:
[0050] A temperature monitoring module is provided with a first temperature sensor and a second temperature sensor, which respectively monitor the temperature of the air inlet and the air outlet of the shoe cavity and feed back the temperature measurement results to the central controller;
[0051] A humidity monitoring module is provided with a first humidity sensor and a second humidity sensor. The first humidity sensor is located at the air inlet of the shoe cavity and is used to monitor the ambient humidity. The second humidity sensor is located inside the shoe cavity and is used to monitor the humidity inside the shoe cavity. The detection results of the first humidity sensor and the second humidity sensor are fed back to the central controller.
[0052] The collaborative module is controlled by the central controller and executes the instructions issued by the central controller after analysis. It regulates the partitions, compressors and fans used to separate the shoe cavity from the outside world in the system;
[0053] A timing module is provided with a purification unit. The timing module is connected to the humidity monitoring module and is used to purify and deodorize the shoe cavity and the canvas shoes inside the shoe cavity at regular intervals.
[0054] And a central controller module, which is provided with a central controller for centrally managing and controlling the temperature monitoring module, the humidity monitoring module, the coordination module and the timing module.
[0055] As the preferred technical solution of this application, this system is used to make a shoe drying and dehumidifying machine.
[0056] The present invention also provides a control method for a shoe drying and dehumidifying integrated system, the specific steps of which include:
[0057] First, the humidity value detected by the first humidity sensor is recorded as P1, the humidity value detected by the second humidity sensor is recorded as P2, the temperature value detected by the first temperature sensor is recorded as H1, the temperature value detected by the second temperature sensor is recorded as H2, the absolute value of the difference between H1 and H2 is recorded as N, and the central controller presets the temperature difference comparison value as 2;
[0058] S11. When the central controller detects that the humidity values of P1 and P2 are the same, that is, the ambient humidity is equal to the humidity value inside the shoe cavity, indicating that there is no canvas shoe in the shoe cavity, the central controller controls the collaborative module to operate, and the collaborative module controls the partition separating the shoe cavity from the outside to open, and the system enters the dehumidifier mode;
[0059] S12, when the central controller detects that the humidity value P2 is greater than the humidity value P1, it means that there are shoes in the shoe cavity, and the system enters the shoe drying mode. The collaborative module starts the timing module according to the instruction of the constraint controller;
[0060] S13, when N is greater than 2, the temperature monitoring module feeds back to the central controller, and the system enters the shoe drying mode. The coordination module starts the timing module according to the instruction of the constraint controller.
[0061] As the preferred technical solution of this application, in the dehumidifier mode, the operation steps of the collaborative module include:
[0062] S21. When frost forms on the evaporator surface, the partition separating the shoe chamber from the outside world closes, the shoe drying and dehumidifying machine circulates, and the hot air blows toward the evaporator;
[0063] S22. Wait until the frost on the surface of the evaporator melts, the partition opens, dehumidification continues, and the compressor operates normally.
[0064] As the preferred technical solution of the present application, the system adjusts the shoe drying temperature range to 55°C in the shoe drying machine mode.
[0065] As the preferred technical solution of this application, in the shoe drying machine mode, the operation steps of the collaborative module include:
[0066] S31, the central controller opens the partition, so that the shoe cavity and the outside air exchange heat, and the temperature in the shoe cavity decreases;
[0067] S32. When N drops to 2, the partition is closed, and the hot air continues to circulate in the shoe drying and dehumidifying machine to dry the shoes until the canvas shoes are dried.
[0068] As the preferred technical solution of this application, the specific steps of the purification module include:
[0069] The timing module is initially in an open state and is used to establish a connection with the humidity monitoring module. The timing module can only work when it receives instructions from the humidity monitoring module. The purification unit also includes a deodorizing device and a pressure device. The deodorizing device is injected with liquid deodorant. The deodorizing device is arranged in the shoe drying and dehumidifying machine and is connected to the shoe cavity. After the pressure device is pressurized, the electric valve connecting the deodorizing device and the shoe cavity is opened, and the liquid deodorant is sprayed out through the atomizing nozzle installed on the deodorizing device.
[0070] S41, when the central controller detects that the humidity values of P1 and P2 are the same, there is no shoe in the shoe cavity, and the timing module and the humidity monitoring module are not connected, and the purification module does not work;
[0071] S42. When the central controller detects that the humidity values of P1 and P2 are different, there are shoes inside the shoe cavity. At this time, the timing module establishes a connection with the humidity monitoring module. At this time, the timing module works and the purification unit performs regular deodorization on the canvas shoes inside the shoe cavity.
[0072] As a preferred technical solution of the present application, after the timing module works for the first time after establishing a connection with the humidity monitoring module, it works every 10 minutes thereafter until P2 does not change, and the timing module stops working.
[0073] As a preferred technical solution of this application, the time setting step of the shoe drying mode includes:
[0074] S51, set the shoe drying time to 40min. When the shoe drying reaches 40min, the compressor stops working and the fan continues to work. After 10min, if the humidity of P2 rises rapidly, the compressor continues to work and continues to dry the shoes for dehumidification.
[0075] S52: If the value of P2 does not change, it means that the canvas shoes have been dried and the fan stops working;
[0076] S53, and so on, until the humidity of P2 remains stable, which means the canvas shoes have been dried, the compressor stops working, the fan stops working, and the shoe drying is completed.
[0077] As a preferred technical solution of the present application, the deodorizing device is provided with a regulating valve, and the spraying amount of the liquid deodorant is controlled to be 1 ml each time.
[0078] Six pairs of canvas shoes were dried after 40 minutes. No odor was detected in the shoe drying and dehumidifying machine, and the shoes showed no signs of degumming or hardening. At this point, N = 2. The following table shows the measured values of P2 and H2 within 1 hour. The timing module operated four times. The initial humidity value of P2 was 30.89%, and the deodorant capacity was 50 ml when fully filled.
[0079]
[0080]
[0081] After drying the shoes for 40 minutes, if the P2 humidity tends to be balanced and maintained at 48.72% without any signs of rising, the leather shoes have been dried and the fan stops working. At this time, the amount of liquid deodorant used is 4 ml.
[0082] Example 2
[0083] Put 6 pairs of used leather shoes into the shoe cavity of the shoe drying and dehumidifying machine made of the shoe drying and dehumidifying machine system for drying;
[0084] Refer to the instruction manual Figure 1 This embodiment provides a shoe drying and dehumidifying integrated system, which includes:
[0085] A temperature monitoring module is provided with a first temperature sensor and a second temperature sensor, which respectively monitor the temperature of the air inlet and the air outlet of the shoe cavity and feed back the temperature measurement results to the central controller;
[0086] A humidity monitoring module is provided with a first humidity sensor and a second humidity sensor. The first humidity sensor is located at the air inlet of the shoe cavity and is used to monitor the ambient humidity. The second humidity sensor is located inside the shoe cavity and is used to monitor the humidity inside the shoe cavity. The detection results of the first humidity sensor and the second humidity sensor are fed back to the central controller.
[0087] The collaborative module is controlled by the central controller and executes the instructions issued by the central controller after analysis. It regulates the partitions, compressors and fans used to separate the shoe cavity from the outside world in the system;
[0088] A timing module is provided with a purification unit. The timing module is connected to the humidity monitoring module and is used to purify and deodorize the shoe cavity and the canvas shoes inside the shoe cavity at regular intervals.
[0089] And a central controller module, which is provided with a central controller for centrally managing and controlling the temperature monitoring module, the humidity monitoring module, the coordination module and the timing module.
[0090] As the preferred technical solution of this application, this system is used to make a shoe drying and dehumidifying machine.
[0091] The present invention also provides a control method for a shoe drying and dehumidifying integrated system, the specific steps of which include:
[0092] First, the humidity value detected by the first humidity sensor is recorded as P1, the humidity value detected by the second humidity sensor is recorded as P2, the temperature value detected by the first temperature sensor is recorded as H1, the temperature value detected by the second temperature sensor is recorded as H2, the absolute value of the difference between H1 and H2 is recorded as N, and the central controller presets the temperature difference comparison value to 8;
[0093] S11. When the central controller detects that the humidity values of P1 and P2 are the same, that is, the ambient humidity is equal to the humidity value inside the shoe cavity, indicating that there is no canvas shoe in the shoe cavity, the central controller controls the collaborative module to operate, and the collaborative module controls the partition separating the shoe cavity from the outside to open, and the system enters the dehumidifier mode;
[0094] S12, when the central controller detects that the humidity value P2 is greater than the humidity value P1, it means that there are shoes in the shoe cavity, and the system enters the shoe drying mode. The collaborative module starts the timing module according to the instruction of the constraint controller;
[0095] S13, when N is greater than 8, the temperature monitoring module feeds back to the central controller, and the system enters the shoe drying machine mode. The coordination module starts the timing module according to the instruction of the constraint controller.
[0096] As the preferred technical solution of this application, in the dehumidifier mode, the operation steps of the collaborative module include:
[0097] S21. When frost forms on the evaporator surface, the partition separating the shoe chamber from the outside world closes, the shoe drying and dehumidifying machine circulates, and the hot air blows toward the evaporator;
[0098] S22. Wait until the frost on the surface of the evaporator melts, the partition opens, dehumidification continues, and the compressor operates normally.
[0099] As the preferred technical solution of the present application, the system adjusts the shoe drying temperature range to 45°C in the shoe drying machine mode.
[0100] As the preferred technical solution of this application, in the shoe drying machine mode, the operation steps of the collaborative module include:
[0101] S31, the central controller opens the partition, so that the shoe cavity and the outside air exchange heat, and the temperature in the shoe cavity decreases;
[0102] S32. When N drops to 8, the partition is closed, and the hot air continues to circulate in the shoe drying and dehumidifying machine to dry the shoes until the canvas shoes are dried.
[0103] As the preferred technical solution of this application, the specific steps of the purification module include:
[0104] The timing module is initially in an open state and is used to establish a connection with the humidity monitoring module. The timing module can only work when it receives instructions from the humidity monitoring module. The purification unit also includes a deodorizing device and a pressure device. The deodorizing device is injected with liquid deodorant. The deodorizing device is arranged in the shoe drying and dehumidifying machine and is connected to the shoe cavity. After the pressure device is pressurized, the electric valve connecting the deodorizing device and the shoe cavity is opened, and the liquid deodorant is sprayed out through the atomizing nozzle installed on the deodorizing device.
[0105] S41, when the central controller detects that the humidity values of P1 and P2 are the same, there is no shoe in the shoe cavity, and the timing module and the humidity monitoring module are not connected, and the purification module does not work;
[0106] S42. When the central controller detects that the humidity values of P1 and P2 are different, there are shoes inside the shoe cavity. At this time, the timing module establishes a connection with the humidity monitoring module. At this time, the timing module works and the purification unit performs regular deodorization on the canvas shoes inside the shoe cavity.
[0107] As a preferred technical solution of the present application, after the timing module works for the first time after establishing a connection with the humidity monitoring module, it works every 15 minutes thereafter until P2 does not change, and the timing module stops working.
[0108] As a preferred technical solution of this application, the time setting step of the shoe drying mode includes:
[0109] S51, set the shoe drying time to 1 hour. When the shoe drying reaches 1 hour, the compressor stops working and the fan continues to work. After 20 minutes, if the humidity of P2 rises rapidly, the compressor continues to work and continues to dry the shoes for dehumidification;
[0110] S52: If the value of P2 does not change, it means that the canvas shoes have been dried and the fan stops working;
[0111] S53, and so on, until the humidity of P2 remains stable, which means the canvas shoes have been dried, the compressor stops working, the fan stops working, and the shoe drying is completed.
[0112] As a preferred technical solution of the present application, the deodorizing device is provided with a regulating valve, and the spraying amount of the liquid deodorant is controlled to be 3 ml each time.
[0113] Six pairs of canvas shoes were dried after 40 minutes. There was no odor in the shoe drying and dehumidifying machine, and the leather shoes did not show any problems such as degumming or hardening. At this time, N = 8. The following table shows the measured values of P2 and H2 within 1 hour. The initial humidity value of P2 was 23.86%. The timing module worked 4 times. The capacity of the deodorant when it was full was 50ml.
[0114]
[0115]
[0116] After drying the shoes for 40 minutes, if the P2 humidity tends to be balanced and maintained at 37.29% with no signs of rising, the leather shoes have been dried and the fan stops working. At this time, the amount of liquid deodorant used is 6 ml.
[0117] Although the present invention has been described in detail above using general descriptions and specific embodiments, it will be apparent to those skilled in the art that modifications and improvements may be made thereto. Therefore, such modifications and improvements, without departing from the spirit of the present invention, are intended to be within the scope of protection claimed herein.
Claims
1. A shoe drying and dehumidifying integrated system, characterized by: The all-in-one system includes at least: A temperature monitoring module is provided with a first temperature sensor and a second temperature sensor, which respectively monitor the temperature of the air inlet and the air outlet of the shoe cavity and feed back the temperature measurement results to the central controller; A humidity monitoring module is provided with a first humidity sensor and a second humidity sensor. The first humidity sensor is located at the air inlet of the shoe cavity and is used to monitor the ambient humidity. The second humidity sensor is located inside the shoe cavity and is used to monitor the humidity inside the shoe cavity. The detection results of the first humidity sensor and the second humidity sensor are fed back to the central controller. The collaborative module is controlled by the central controller and executes the instructions issued by the central controller after analysis. It regulates the partitions, compressors and fans used to separate the shoe cavity from the outside world in the system; A timing module is provided with a purification unit and is connected to the humidity monitoring module. The timing module is used to regularly purify and deodorize the shoe cavity and the shoes inside the shoe cavity; and a central controller module, which is provided with a central controller for centrally managing and controlling the temperature monitoring module, the humidity monitoring module, the coordination module and the timing module; The above system is used to make a shoe drying and dehumidifying machine; The specific steps of the shoe drying and dehumidifying machine include: First, the humidity value detected by the first humidity sensor is recorded as P1, the humidity value detected by the second humidity sensor is recorded as P2, the temperature value detected by the first temperature sensor is recorded as H1, the temperature value detected by the second temperature sensor is recorded as H2, the absolute value of the difference between H1 and H2 is recorded as N, and the central controller presets the temperature difference comparison value M; S11. When the central controller detects that the humidity values of P1 and P2 are the same, that is, the ambient humidity is equal to the humidity value inside the shoe cavity, indicating that there are no shoes in the shoe cavity, the central controller controls the collaborative module to operate, and the collaborative module controls the partition separating the shoe cavity from the outside to open, and the system enters the dehumidifier mode; S12, when the central controller detects that the humidity value P2 is greater than the humidity value P1, it means that there are shoes in the shoe cavity, and the system enters the shoe drying mode. The coordination module receives the instruction of the control controller and starts the timing module; S13, when N is greater than M, the temperature monitoring module feeds back to the central controller, and the system enters the shoe drying mode. The coordination module receives the instruction from the control controller and starts the timing module; In the dehumidifier mode, the operation steps of the collaborative module include: S21. When frost forms on the evaporator surface, the partition separating the shoe chamber from the outside world closes, the shoe drying and dehumidifying machine circulates, and the hot air blows toward the evaporator; S22. Wait until the frost on the surface of the evaporator melts, the partition opens, dehumidification continues, and the compressor operates normally.
2. The shoe drying and dehumidifying integrated system according to claim 1, characterized in that: In shoe drying mode, the system adjusts the shoe drying temperature range to 45-55℃.
3. The shoe drying and dehumidifying integrated system according to claim 2, characterized in that: In the shoe drying machine mode, the operation steps of the collaborative module include: S31. The central controller opens the partition, allowing the shoe cavity to exchange heat with the outside air, and the temperature in the shoe cavity to decrease; S32. When N drops to M, the partition closes, and the hot air continues to circulate in the shoe drying and dehumidifying machine to dry the shoes until they are dry.
4. The shoe drying and dehumidifying integrated system according to claim 3, characterized in that: The specific steps of the purification unit operation include: The timing module is initially in an open state and is used to establish a connection with the humidity monitoring module. The timing module can only work when it receives instructions from the humidity monitoring module. The purification unit also includes a deodorizing device and a pressure device. The deodorizing device is injected with liquid deodorant. The deodorizing device is arranged in the shoe drying and dehumidifying machine and is connected to the shoe cavity. After the pressure device is pressurized, the electric valve connecting the deodorizing device and the shoe cavity is opened, and the liquid deodorant is sprayed out through the atomizing nozzle installed on the deodorizing device. S41, when the central controller detects that the humidity values of P1 and P2 are the same, there is no shoe in the shoe cavity, and the timing module and the humidity monitoring module are not connected, and the purification module does not work; S42. When the central controller detects that the humidity values of P1 and P2 are different, there are shoes inside the shoe cavity. At this time, the timing module establishes a connection with the humidity monitoring module. At this time, the timing module works and the purification unit performs regular deodorization on the shoes inside the shoe cavity.
5. The shoe drying and dehumidifying integrated system according to claim 1, characterized in that: After the timing module works for the first time after establishing a connection with the humidity monitoring module, it works every 10-15 minutes thereafter until P2 does not change, and the timing module stops working.
6. The shoe drying and dehumidifying integrated system according to claim 1, characterized in that: The time setting step of the shoe drying mode includes: S51, set the shoe drying time t1. When the shoe drying reaches t1, the compressor stops working and the fan continues to work. After t2, if the humidity P2 rises rapidly, the compressor continues to work and continues to dry the shoes for dehumidification. S52: If the value of P2 does not change, it means that the shoes have been dried and the fan stops working; S53, and so on, until the humidity of P2 remains stable, which means the shoes have been dried, the compressor stops working, the fan stops working, and the shoe drying is completed.
7. The shoe drying and dehumidifying integrated system according to claim 4, characterized in that: The deodorizing device is provided with a regulating valve, and the spraying amount of the liquid deodorant is controlled to be 1-3 ml each time.
Citation Information
Patent Citations
Intelligent shoe cabinet
CN205625175U