Heat dissipation intelligent shoe

By setting up ventilation channels and air supply components inside the shoe body and combining it with a temperature control system, the problem of poor air permeability of the shoes is solved, efficient circulation and renewal of air inside the shoes is achieved, and wearing comfort and aesthetics are improved.

CN223335651UActive Publication Date: 2025-09-16DONGGUAN MENGQIAN TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422600776.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-28
Publication Date
2025-09-16
Estimated Expiration
2034-10-28

AI Technical Summary

Technical Problem

Existing shoes have poor air permeability, resulting in poor air circulation inside the shoes, which easily breeds foot skin diseases and affects wearing comfort and health.

Method used

A ventilation channel is set up inside the shoe body and is equipped with an air supply component. It is connected to the ventilation channel through a connecting groove to supply external air to the ventilation channel. The air temperature is adjusted in combination with the temperature control system to achieve efficient circulation and renewal of the air inside the shoe body.

Benefits of technology

It improves the smoothness of air circulation in the shoe, reduces moisture accumulation, reduces the stuffiness of the feet, improves wearing comfort, and maintains the aesthetics of the shoe.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223335651U_ABST
    Figure CN223335651U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of intelligent wearable equipment, in particular to a heat dissipation intelligent shoe which comprises a shoe body. The breathable channel is arranged in the shoe body, and the breathable channel is used for being in contact with and covering the sole position of a user; the air conveying assembly is arranged at the position, corresponding to the shoe sole, in the shoe body, the air conveying assembly communicates with the ventilation channel and is used for conveying external air to the ventilation channel, a communicating groove is formed in the bottom in the shoe body, and the air conveying assembly communicates with the ventilation channel through the communicating groove. The shoe has the effects that moisture accumulation in the shoe body is reduced, the stuffiness feeling of the foot is reduced, and the wearing comfort of a user is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of intelligent wearable devices, in particular to a heat dissipation intelligent shoe. Background Art

[0002] Shoes are essential daily wear items. Their quality and comfort directly affect people's physical health and quality of life. However, since the inside of shoes is a relatively closed environment with poor air circulation, it is easy to breed foot skin diseases, which has a certain negative impact on wearing comfort and human health.

[0003] In the prior art, in order to improve the breathability of shoes, methods such as punching holes in the upper, mesh uppers, and sponge insoles are often used to improve the breathability. However, the air flow inside the shoe is still slow, resulting in poor heat dissipation effect inside the shoe, which urgently needs to be solved. Utility Model Content

[0004] In response to the above-mentioned deficiencies in the prior art, the present application provides a heat-dissipating smart shoe.

[0005] The above-mentioned invention objectives of this application are achieved through the following technical solutions:

[0006] Shoe body;

[0007] A ventilation channel is provided inside the shoe body and is used to contact and cover the sole of the user's foot;

[0008] An air supply component is arranged inside the shoe body at a position corresponding to the sole of the shoe. The air supply component is connected to the ventilation channel and is used to supply external air to the ventilation channel. A connecting groove is provided on the inner bottom of the shoe body, and the air supply component is connected to the ventilation channel via the connecting groove.

[0009] By adopting the above technical solution, a ventilation channel is set inside the shoe body, which can cover the areas where the user is prone to sweating and requires good ventilation. At the same time, the air supply component is used to continuously supply external air to the ventilation channel, so that the soles of the user's feet can receive the output of fresh air in all directions, thereby achieving efficient circulation and renewal of air inside the shoe body, effectively reducing moisture accumulation inside the shoe body, reducing the stuffiness of the feet, and improving the user's wearing comfort. In addition, by setting the air supply component at the bottom of the shoe body, the air supply component can be cleverly hidden, which not only maintains the aesthetics of the shoe body, but also realizes the air supply function by connecting the ventilation channel through the connecting groove, which is suitable for working conditions of various types of shoes.

[0010] In a preferred example, the present application can be further configured as follows: the ventilation channel includes an insole and a delivery tube, the insole is made of a breathable material, the delivery tube is buried inside the insole and arranged around the edge of the insole, the delivery tube is connected to the air delivery component via the connecting groove, the delivery tube is provided with a plurality of air delivery holes, and the plurality of air delivery holes are arranged along the circumference of the delivery tube and all face the inside of the insole.

[0011] By adopting the above technical solution, the air supply component transports external air to the delivery pipe, which releases air from the edge of the insole to the inside of the insole through a number of air supply holes. The air is then output through the insole made of breathable material and covers the sole of the user's foot, thereby completing the effective circulation and renewal of the air in the shoe body. In addition, by burying the delivery pipe inside the insole, the delivery pipe can be cleverly hidden, ensuring smooth air circulation inside the shoe body while keeping the internal environment of the shoe body simple and beautiful.

[0012] In a preferred example, the present application can be further configured as follows: the ventilation channel includes an insole and a delivery tube, the insole is made of a breathable material, the inner bottom of the shoe body is provided with a first installation groove for placing the delivery tube along its own circumference direction, the first installation groove is connected to the connecting groove, the delivery tube is connected to the gas delivery component, the delivery tube is provided with a plurality of gas delivery holes, and the plurality of gas delivery holes are arranged along the circumference direction of the delivery tube and are all located on the upper side of the delivery tube.

[0013] By adopting the above technical solution, the air delivery component delivers external air to the delivery pipe, the delivery pipe releases air upward through a number of air delivery holes, and then outputs the air through the insole made of breathable material and covers the sole of the user's foot, thereby completing the effective circulation and renewal of the air in the shoe body. The first mounting groove can provide an installation position for the delivery pipe, and after the insole is covered on the bottom of the shoe body, the delivery pipe can also be cleverly hidden, ensuring smooth air circulation inside the shoe body while keeping the internal environment of the shoe body simple and beautiful.

[0014] In a preferred example, the present application can be further configured as follows: the ventilation channel includes an insole, the insole is made of a breathable material, a ventilation groove is provided on the inner bottom of the shoe body along its own circumference, the ventilation groove is connected to the connecting groove and the air transmission component, a connecting layer is provided between the insole and the inner bottom of the shoe body, the connecting layer has a plurality of ventilation holes along the length direction of the ventilation groove, and the plurality of ventilation holes are all connected to the ventilation groove.

[0015] By adopting the above technical solution, the ventilation grooves on the bottom of the shoe body and the connecting layer form a closed channel for air circulation. Combined with a number of ventilation holes opened on the connecting layer, air can be output from the ventilation holes to the insole, and then the air is output and covered to the sole of the user's foot through the insole made of breathable material, thereby completing the effective circulation and renewal of the air in the shoe body. There is no need to add additional pipelines, and it can adapt to the working conditions of various types of shoes.

[0016] In a preferred example, the present application can be further configured as follows: the air delivery component includes a blower and a battery module, the blower is electrically connected to the battery module and is connected with a connecting pipe, the connecting pipe is connected to the delivery pipe via the connecting groove, and the shoe body is provided with a ventilation hole for external air to enter at a position corresponding to the sole of the shoe, and the ventilation hole is connected to the blower.

[0017] By adopting the above technical solution, the blower is powered by the battery module, and with the help of the ventilation holes at the bottom of the shoe, it is possible to circulate external air into the inside of the shoe.

[0018] In a preferred example, the present application can be further configured as follows: the gas delivery component also includes a mounting shell, the blower and the battery module are both located inside the mounting shell, a second mounting slot is provided on the shoe body corresponding to the sole, the second mounting slot is connected to the connecting slot, the mounting shell is plugged into and fitted with the second mounting slot, a cover is detachably provided on the open end of the second mounting slot, and the ventilation hole is provided on the cover.

[0019] By adopting the above technical solution, the mounting shell provides an integrated mounting position for the blower and the battery module, thereby improving the compactness and stability of the overall structure. At the same time, the second mounting groove at the position of the shoe body corresponding to the sole forms a plug-in fit with the mounting shell, which can facilitate the disassembly and assembly of the air delivery component and the shoe body. The setting of the cover plate and the ventilation hole can respectively seal the mounting shell, thereby preventing debris from entering the interior of the shoe body and ensuring that external air can enter the interior of the shoe body.

[0020] In a preferred example, the present application can be further configured as follows: the heel of the shoe body is detachably fixedly connected to the sole of the shoe body by a threaded connection, and the second mounting groove and the connecting groove are formed after the heel and sole of the shoe body are connected.

[0021] By adopting the above technical solution, the heel and the sole are connected by a threaded connection, which facilitates the maintenance and replacement of the shoe body, and forms corresponding second installation grooves and connecting grooves according to the working conditions of different shoe types to meet the ventilation needs of different shoe types.

[0022] In a preferred example, the present application can be further configured as follows: the heat dissipating smart shoes also include a temperature control system, which is controlled and connected to the air delivery component, and the temperature control system is used to monitor the temperature inside the shoe body and regulate the temperature of the air output by the air delivery component.

[0023] By adopting the above technical solution and setting up a temperature control system, the temperature inside the shoe body can be detected in real time, and the air temperature output by the air supply component can be accurately adjusted according to the preset temperature range, thereby improving the user's wearing comfort.

[0024] In a preferred example, the present application can be further configured as follows: the temperature control system is connected to a wireless Bluetooth module, the wireless Bluetooth module establishes a Bluetooth communication transmission protocol with the Bluetooth interface of the smart terminal, and the smart terminal is installed with an APP software for controlling the connection to the temperature control system, and the APP software calls the Bluetooth interface of the smart terminal for data transmission.

[0025] By adopting the above technical solution, users can monitor and control the temperature of the circulating air inside the shoe through the APP software installed on their own smart terminals, thereby improving the user experience.

[0026] In a preferred example, the present application can be further configured as follows: the temperature control system is connected to a WIFI connection module, the WIFI connection module establishes a WIFI transmission protocol with the WIFI interface of the smart terminal, and the smart terminal is installed with an APP software for controlling the connection to the temperature control system, and the APP software calls the WIFI interface of the smart terminal for data transmission.

[0027] By adopting the above technical solution, users can monitor and control the temperature of the circulating air inside the shoe through the APP software installed on their own smart terminals, thereby improving the user experience.

[0028] In summary, this application includes at least one of the following beneficial technical effects:

[0029] 1. A ventilation channel is set inside the shoe body to cover the areas where the user is prone to sweating and requires good ventilation. At the same time, an air supply component is used to continuously supply external air to the ventilation channel so that the soles of the user's feet can receive the output of fresh air in all directions, thereby achieving efficient circulation and renewal of air inside the shoe body, effectively reducing the accumulation of moisture inside the shoe body, reducing the stuffiness of the feet, and improving the user's wearing comfort. In addition, by setting the air supply component at the bottom of the shoe body, the air supply component can be cleverly hidden, which not only maintains the aesthetics of the shoe body, but also realizes the air supply function by connecting the ventilation channel through the connecting groove, which is suitable for the working conditions of various types of shoes.

[0030] 2. The air delivery component delivers external air to the delivery pipe, which releases air from the edge of the insole to the inside of the insole through several air delivery holes. The air is then output through the insole made of breathable material and covers the sole of the user's foot, thereby completing the effective circulation and renewal of air in the shoe body. By burying the delivery pipe inside the insole, the delivery pipe can be cleverly hidden, ensuring smooth air circulation inside the shoe body while keeping the internal environment of the shoe body simple and beautiful.

[0031] 3. The air delivery component delivers external air to the delivery pipe, which releases air upward through a number of air delivery holes. The air is then output through the insole made of breathable material and covers the sole of the user's foot, thereby completing the effective circulation and renewal of the air in the shoe body. The first mounting groove can provide an installation position for the delivery pipe, and after the insole is covered on the bottom of the shoe body, the delivery pipe can be cleverly hidden, ensuring smooth air circulation inside the shoe body while keeping the internal environment of the shoe body simple and beautiful.

[0032] 4. The ventilation grooves on the bottom of the shoe and the connecting layer form a closed channel for air circulation. Combined with several ventilation holes opened on the connecting layer, air can be output from the ventilation holes to the insole. The air is then output and covered to the sole of the user's foot through the insole made of breathable material, thereby completing the effective circulation and renewal of air in the shoe. There is no need to add additional pipelines, and it can adapt to the working conditions of various types of shoes. BRIEF DESCRIPTION OF THE DRAWINGS

[0033] Figure 1 This is a schematic diagram of the overall structure of the heat dissipation smart shoes in one embodiment of the present application;

[0034] Figure 2 This is a schematic structural diagram of the heat dissipation smart shoe in Example 1 of the present application after a portion of the shoe body and insole are removed;

[0035] Figure 3 This is a schematic structural diagram of the heat dissipation smart shoe in Example 2 of the present application after a portion of the shoe body is removed;

[0036] Figure 4 This is a schematic diagram of the assembly relationship of the heat dissipation smart shoes in Example 3 of the present application;

[0037] Figure 5 This is a schematic diagram of a partial structure of the sole of a shoe body in one embodiment of the present application;

[0038] Figure 6 This is a schematic diagram of the partial structure of the sole of the shoe body in Example 4 of the present application.

[0039] Figure numerals: 1. shoe body; 2. ventilation channel; 21. insole; 22. delivery pipe; 23. air delivery hole; 24. first mounting groove; 25. ventilation groove; 26. connecting layer; 27. air hole; 3. air delivery assembly; 31. blower; 32. battery module; 33. connecting pipe; 34. ventilation hole; 35. mounting shell; 36. second mounting groove; 37. cover plate; 4. connecting groove. DETAILED DESCRIPTION

[0040] The following description of exemplary embodiments of the present application is made in conjunction with the accompanying drawings, including various details of the embodiments of the present application to facilitate understanding. These details should be considered as merely exemplary. Therefore, those skilled in the art will recognize that various changes and modifications may be made to the embodiments described herein without departing from the scope and spirit of the present application. Similarly, for the sake of clarity and conciseness, descriptions of well-known functions and structures are omitted in the following description.

[0041] It should be noted that the terms "first," "second," and the like in this disclosure are used to distinguish similar objects and are not necessarily used to describe a specific order or precedence. It should be understood that the terms used in this manner are interchangeable where appropriate, so that the embodiments of the disclosure described herein can be implemented in an order other than that illustrated or described herein. The embodiments described in the following exemplary embodiments are not intended to represent all embodiments consistent with the present disclosure.

[0042] In this document, the term "and / or" simply describes a relationship between related objects, indicating that three possible relationships exist. For example, "A and / or B" can represent: A exists alone, A and B exist simultaneously, or B exists alone. Furthermore, the character " / " in this document, unless otherwise specified, generally indicates an "or" relationship between the related objects.

[0043] The following describes a heat dissipation smart shoe of the present application with reference to the accompanying drawings.

[0044] Reference Figures 1 to 6 As shown, the heat dissipation smart shoe includes a shoe body 1, a ventilation channel 2 and an air supply component 3. The ventilation channel 2 is arranged inside the shoe body 1. The ventilation channel 2 is used to contact and cover the sole of the user's foot. The air supply component 3 is arranged inside the shoe body 1 at a position corresponding to the sole of the shoe. Preferably, it can be arranged inside the shoe body 1 at a position corresponding to the heel of the shoe. The air supply component 3 is connected to the ventilation channel 2 and is used to supply external air to the ventilation channel 2. A connecting groove 4 is opened at the bottom of the shoe body 1, and the air supply component 3 is connected to the ventilation channel 2 via the connecting groove 4.

[0045] Specifically, the shoe body 1 can be any conventional shoe. The ventilation channel 2 is arranged at the inner bottom of the shoe body 1 to correspond to the position of the user's sole, and can cover the area where the user is prone to sweating and requires good ventilation. At the same time, the air supply component 3 is used to continuously supply external air to the ventilation channel 2, so that the user's sole can receive the output of fresh air in all directions, thereby realizing efficient circulation and renewal of the air inside the shoe body 1, effectively reducing the accumulation of moisture inside the shoe body 1, reducing the stuffiness of the foot, and improving the user's wearing comfort. In addition, by arranging the air supply component 3 at the heel position inside the shoe body 1, the air supply component 3 can be cleverly hidden, which not only maintains the aesthetics of the shoe body 1, but also realizes the air supply function by connecting the ventilation channel 2 through the connecting groove 4, and is suitable for the working conditions of various shoe bodies 1.

[0046] In one embodiment (this embodiment is designated as embodiment 1), as Figure 2 As shown, the ventilation channel 2 includes an insole 21 and a delivery pipe 22. The insole 21 is made of a breathable material. The delivery pipe 22 is buried inside the insole 21 and arranged around the edge of the insole 21. The delivery pipe 22 is connected to the air delivery component 3 through the connecting groove 4. The delivery pipe 22 is provided with a plurality of air delivery holes 23. The plurality of air delivery holes 23 are arranged along the circumference direction of the delivery pipe 22 and are all facing the insole 21. The external air is delivered to the delivery pipe 22 through the air delivery component 3. The delivery pipe 22 passes through the plurality of air delivery holes 23 from the edge of the insole 21. The air is released from the edge of the insole 21 to the inside of the insole 21. Preferably, the delivery tube 22 releases air from the edge of the insole 21 to the center of the insole 21 through a plurality of air delivery holes 23, and then the air is output and covered to the sole of the user's foot through the insole 21 made of breathable material, thereby completing the effective circulation and renewal of the air in the shoe body 1. In addition, by burying the delivery tube 22 inside the insole 21, the delivery tube 22 can be cleverly hidden, ensuring smooth air circulation inside the shoe body 1 while keeping the internal environment of the shoe body 1 simple and beautiful.

[0047] In another embodiment (this embodiment is designated as embodiment 2), as Figure 3As shown, the ventilation channel 2 includes an insole 21 and a delivery tube 22. The insole 21 is made of a breathable material. A first mounting groove 24 for placing the delivery tube 22 is opened along the circumference direction of the inner bottom of the shoe body 1. The first mounting groove 24 is connected to the connecting groove 4. The delivery tube 22 is connected to the air delivery component 3. The delivery tube 22 is provided with a plurality of air delivery holes 23. The plurality of air delivery holes 23 are arranged along the circumference direction of the delivery tube 22 and are all located on the upper side of the delivery tube 22. External air is delivered to the delivery tube 22 through the air delivery component 3. The delivery tube 22 releases air upward through the plurality of air delivery holes 23, and then the air is output through the insole 21 made of a breathable material and covers the sole of the user's foot, thereby completing the effective circulation and renewal of the air in the shoe body 1. The first mounting groove 24 can provide a mounting position for the delivery tube 22, and after the insole 21 is covered on the inner bottom of the shoe body 1, the delivery tube 22 can also be cleverly hidden, while ensuring smooth air circulation inside the shoe body 1 and keeping the internal environment of the shoe body 1 simple and beautiful.

[0048] In another embodiment (this embodiment is designated as embodiment 3), as Figure 4 As shown, the ventilation channel 2 includes an insole 21, which is made of a breathable material. A ventilation groove 25 is provided along the circumference of the inner bottom of the shoe body 1. The ventilation groove 25 is connected to the connecting groove 4 and the air supply component 3. A connecting layer 26 is provided between the insole 21 and the inner bottom of the shoe body 1. The connecting layer 26 has a plurality of ventilation holes 27 along the length direction of the ventilation groove 25. The plurality of ventilation holes 27 are all connected to the ventilation groove 25. A closed channel is formed through the ventilation groove 25 and the connecting layer 26 on the inner bottom of the shoe body 1 for air circulation. The plurality of ventilation holes 27 provided on the connecting layer 26 allow air to be output from the ventilation holes 27 to the insole 21, and then the air is output and covered to the sole of the user's foot through the insole 21 made of a breathable material, thereby completing the effective circulation and renewal of the air in the shoe body 1. There is no need to add a pipeline design, and it can adapt to the working conditions of various types of shoe bodies 1.

[0049] In addition, in Examples 1 and 2, Figure 2 and Figure 3 As shown, in order to realize the gas delivery function of the gas delivery component 3, the gas delivery component 3 includes a blower 31 and a battery module 32. The blower 31 is electrically connected to the battery module 32 and is connected with a connecting pipe 33. The connecting pipe 33 is connected to the delivery pipe 22 via the connecting groove 4. A ventilation hole 34 for external air to enter is opened at the position of the sole corresponding to the shoe body 1. Preferably, the ventilation hole 34 can be set at the position of the heel corresponding to the shoe body 1. The ventilation hole 34 is connected to the blower 31. The blower 31 is powered by the battery module 32, and with the action of the ventilation hole 34 at the heel position of the shoe body 1, it can realize the circulation of external air to the inside of the shoe body 1.

[0050] It should be noted that if Figure 4As shown, the difference between the air delivery component 3 in Example 3 and Examples 1 and 2 is that in Example 3, there is no need to set the delivery pipe 22. The connecting pipe 33 can be connected to the ventilation groove 25 through the connecting groove 4, so that the blower 31 can directly drive the external air to be delivered to the ventilation groove 25 to complete the air circulation.

[0051] Furthermore, if Figure 5 and Figure 6 As shown, the air delivery component 3 also includes a mounting shell 35, the blower 31 and the battery module 32 are both located inside the mounting shell 35, and a second mounting slot 36 is provided at a position corresponding to the sole of the shoe body 1. Preferably, the second mounting slot 36 can be provided at a position corresponding to the heel of the shoe body 1, and the second mounting slot 36 is connected to the connecting slot 4, and the mounting shell 35 is plugged into and matched with the second mounting slot 36. A cover plate 37 is detachably provided at the open end of the second mounting slot 36, and the ventilation hole 34 is provided on the cover plate 37, wherein the mounting shell 35 provides an integrated mounting position for the blower 31 and the battery module 32, thereby improving the compactness and stability of the overall structure. At the same time, the second mounting slot 36 at the heel position of the shoe body 1 forms a plug-in fitting relationship with the mounting shell 35, which can facilitate the disassembly and assembly of the air delivery component 3 and the shoe body 1, and the setting of the cover plate 37 and the ventilation hole 34 can respectively seal the mounting shell 35 to prevent debris from entering the interior of the shoe body 1 and ensure that external air can enter the interior of the shoe body 1.

[0052] In addition, if Figure 6 As shown, in one embodiment (this embodiment is designated as Embodiment 4), the heel of the shoe body 1 is detachably fixedly connected to the sole of the shoe body 1 by a threaded connection, and the heel and the sole of the shoe body 1 are connected to form a second mounting groove 36 and a connecting groove 4, wherein the heel and the sole are connected by a threaded connection, which facilitates the maintenance and replacement of the shoe body 1, and forms corresponding second mounting grooves 36 and connecting grooves 4 according to the working conditions of different shoe types to meet the ventilation requirements of different shoe types.

[0053] Furthermore, the heat dissipating smart shoes also include a temperature control system (not shown in the figure), which is controlled and connected to the gas supply component 3. Specifically, the temperature control system can be set at a position corresponding to the bottom of the shoe inside the shoe body 1 to facilitate connection with the gas supply component 3. The temperature control system is used to monitor the temperature inside the shoe body 1 and regulate the temperature of the air output by the gas supply component 3. By setting up the temperature control system, the temperature inside the shoe body 1 can be detected in real time, and the air temperature output by the gas supply component 3 can be accurately regulated according to a preset temperature range, thereby improving the user's wearing comfort.

[0054] It should be noted that the temperature control system usually includes sensors, controllers, actuators and refrigeration plates. It is a technical system that can automatically adjust and control the temperature. Its connection structure and working principle are common knowledge to those skilled in the art and will not be elaborated here.

[0055] Furthermore, the temperature control system is connected to a wireless Bluetooth module (not shown in the figure), which establishes a Bluetooth communication transmission protocol with the Bluetooth interface of the smart terminal, and the smart terminal is installed with an APP software for controlling the connection to the temperature control system. The APP software calls the Bluetooth interface of the smart terminal for data transmission, so that the user can monitor and control the temperature of the circulating air inside the shoe body 1 through the APP software installed on his own smart terminal, thereby improving the user experience.

[0056] In addition, in another embodiment, the temperature control system can also be connected to a WIFI connection module (not shown in the figure), the WIFI connection module establishes a WIFI transmission protocol with the WIFI interface of the smart terminal, and the smart terminal is installed with an APP software for controlling the connection to the temperature control system. The APP software calls the WIFI interface of the smart terminal for data transmission, so that the user can monitor and control the temperature of the circulating air inside the shoe body 1 through the APP software installed on his own smart terminal, thereby improving the user experience.

[0057] It should be noted that, in another embodiment, a manual switch (not shown in the figure) can be provided on the shoe body 1. By connecting the manual switch control to the gas supply component and the temperature control system, the user can directly control the start and stop of the gas supply component through the manual switch, and adjust the temperature of the air flowing inside the shoe body 1, thereby improving the user experience.

[0058] The above specific embodiments do not constitute a limitation on the scope of protection of this application. Those skilled in the art will appreciate that various modifications, combinations, sub-combinations, and substitutions may be made based on design requirements and other factors. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application shall be included within the scope of protection of this application.

Claims

1. A heat dissipation smart shoe, characterized in that: include: Shoe body (1); A ventilation channel (2), the ventilation channel (2) being arranged inside the shoe body (1), and the ventilation channel (2) being used to contact and cover the sole of a user's foot; An air supply component (3) is provided inside the shoe body (1) at a position corresponding to the bottom of the shoe. The air supply component (3) is connected to the air permeable channel (2) and is used to supply external air to the air permeable channel (2). A connecting groove (4) is provided on the bottom of the shoe body (1). The air supply component (3) is connected to the air permeable channel (2) via the connecting groove (4).

2. The heat dissipation smart shoe according to claim 1, characterized in that: The ventilation channel (2) comprises an insole (21) and a delivery pipe (22). The insole (21) is made of a breathable material. The delivery pipe (22) is embedded in the insole (21) and arranged around the edge of the insole (21). The delivery pipe (22) is connected to the air delivery component (3) via the connecting groove (4). The delivery pipe (22) is provided with a plurality of air delivery holes (23). The plurality of air delivery holes (23) are arranged along the circumference direction of the delivery pipe (22) and all face the interior of the insole (21).

3. The heat dissipation smart shoe according to claim 1, characterized in that: The ventilation channel (2) comprises an insole (21) and a delivery pipe (22); the insole (21) is made of a breathable material; the inner bottom of the shoe body (1) is provided with a first installation groove (36) for placing the delivery pipe (22) along its own circumference direction; the first installation groove (36) is connected to the communication groove (4); the delivery pipe (22) is connected to the air delivery assembly (3); the delivery pipe (22) is provided with a plurality of air delivery holes (23); the plurality of air delivery holes (23) are provided along the circumference direction of the delivery pipe (22) and are all located on the upper side of the delivery pipe (22).

4. The heat dissipation smart shoe according to claim 1, characterized in that: The ventilation channel (2) comprises an insole (21), the insole (21) is made of a breathable material, the inner bottom of the shoe body (1) is provided with a ventilation groove (25) along its own circumference direction, the ventilation groove (25) is connected to the connecting groove (4) and the air delivery component (3), a connecting layer (26) is provided between the insole (21) and the inner bottom of the shoe body (1), the connecting layer (26) is provided with a plurality of ventilation holes (27) along the length direction of the ventilation groove (25), and the plurality of ventilation holes (27) are all connected to the ventilation groove (25).

5. The heat dissipation smart shoe according to any one of claims 1 to 3, characterized in that: The air delivery assembly (3) comprises a blower (31) and a battery module (32); the blower (31) is electrically connected to the battery module (32) and is provided with a connecting pipe (33); the connecting pipe (33) is connected to the delivery pipe (22) via the connecting groove (4); a ventilation hole (34) for allowing external air to enter is provided on the shoe body (1) at a position corresponding to the sole of the shoe; the ventilation hole (34) is connected to the blower (31).

6. The heat dissipation smart shoe according to claim 5, characterized in that: The gas delivery assembly (3) further comprises a mounting shell (35), the blower (31) and the battery module (32) are both located inside the mounting shell (35), the shoe body (1) is provided with a second mounting slot (24) at a position corresponding to the sole of the shoe, the second mounting slot (24) is communicated with the communication slot (4), the mounting shell (35) is plugged into and matched with the second mounting slot (24), the open end of the second mounting slot (24) is detachably provided with a cover plate (37), and the ventilation hole (34) is provided on the cover plate (37).

7. The heat dissipation smart shoe according to claim 6, characterized in that: The heel of the shoe body (1) is detachably fixedly connected to the sole of the shoe body (1) by means of a threaded connection, and the second mounting groove (24) and the communicating groove (4) are formed after the heel of the shoe body (1) and the sole are connected.

8. The heat dissipation smart shoe according to claim 1, characterized in that: The heat dissipating smart shoe further comprises a temperature control system, which is controllably connected to the air delivery component (3). The temperature control system is used to monitor the temperature inside the shoe body (1) and to regulate the temperature of the air output by the air delivery component (3).

9. The heat dissipation smart shoe according to claim 8, characterized in that: The temperature control system is connected to a wireless Bluetooth module, which establishes a Bluetooth communication transmission protocol with the Bluetooth interface of the smart terminal, and the smart terminal is installed with an APP software for controlling the temperature control system, which calls the Bluetooth interface of the smart terminal for data transmission.

10. The heat dissipation smart shoe according to claim 8, characterized in that: The temperature control system is connected to a WIFI connection module, which establishes a WIFI transmission protocol with the WIFI interface of the smart terminal, and the smart terminal is installed with an APP software for controlling the connection to the temperature control system, which calls the WIFI interface of the smart terminal for data transmission.