Functional health shoes

By incorporating magnets and springs in the midsole and insole of the shoe, the problem of insufficient vibration is solved, achieving vibration, acupressure, and magnetic therapy effects on the user's feet, improving blood flow and joint protection, and providing a comfortable walking experience.

CN116326881BActive Publication Date: 2026-04-10南熙道
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
南熙道
Filing Date
2021-12-30
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

In existing technologies, vibration devices have limited vibration effects and fail to effectively apply vibration, finger pressure, or magnetic force to the user's feet, resulting in an inability to effectively improve blood flow and joint protection.

Method used

A functional health shoe was designed by incorporating a shell in the midsole and insole. The shell consists of a main body, a first protrusion, and a second protrusion, and contains a vibrating component with magnets and springs. The repulsive force between the magnets generates vibration and acupressure effects, and the magnetic force is combined to apply vibration, acupressure, and magnetic therapy to the sole of the foot.

Benefits of technology

It achieves vibration and acupressure effects on the soles of the user's feet, improving blood flow, protecting joints, and providing a pleasant and refreshing walking experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to a kind of functional health shoes for the user's sole part is applied vibration, finger pressure, magnetic force, and can help the blood flow improvement and joint protection of user, the functional health shoes is configured to have: shell, it is constituted by body, first protruding part and second protruding part, wherein, body can be opened in central part and is installed in shoe insole, first protruding part is set to cylindrical in the upper portion of body and is built into shoe insole, second protruding part is set to cylindrical in the lower portion of body with first protruding part opposite position and is installed in shoe insole;First magnet, it is built into first protruding part;Second magnet, it is set to opposite position with first magnet and is installed in second protruding part;Vibration component, it is set to the inside of body;Third magnet, it is formed in one end of vibration component and generates repulsion with first magnet and second magnet;First spring, it is set to first magnet;And second spring, it is set to second magnet.
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Description

TECHNICAL FIELD

[0001] The present invention relates to a functional health shoe having a magnetic force and an elastic force, and more particularly, to a functional health shoe capable of helping to improve blood flow and protect joints of a user by applying vibration, finger pressure, and a magnetic force to a sole portion of the user. BACKGROUND

[0002] Shoes are articles worn on feet when a person stands or walks on the ground, and most people live their lives wearing shoes most of the time. Therefore, many studies have been conducted to impart functionality to shoes worn most of the time, and in particular, many efforts have been made to develop functionality capable of improving the health of a wearer.

[0003] Shoes having such functionality are composed of an upper wrapping a foot and a sole supporting a sole portion under the lower portion of the upper, and the sole is composed of a mid-sole in which a shoe pad is located, an out-sole attached to the lower portion of the mid-sole, and an in-sole provided on the upper side of the mid-sole, and the above-mentioned shoes refer to shoes in which functionality is imparted to the sole portion to help improve the health of a wearer.

[0004] The above-mentioned out-sole not only increases the grip with the ground to improve walkability, but also plays a role in absorbing the weight and load while absorbing the impact applied to the sole, the mid-sole is located on the upper portion of the out-sole to play a role in providing a cushioning feeling to the sole or dispersing the weight and absorbing the load, the in-sole also plays a role in providing a cushioning feeling and absorbing the load and a role as a finishing material of the inside of the shoe, and the upper is made of leather or fiber or synthetic resin, etc. to be in a form of wrapping the feet of a user.

[0005] The above-mentioned in-sole provides a good cushioning feeling while dispersing the weight of a user, thereby minimizing the fatigue of the feet, and functions as a finishing material of the inside of the shoe, and the above-mentioned in-sole is usually manufactured using a foamed resin such as polyurethane, and is completed by attaching leather or fiber paper, etc. to the surface thereof.

[0006] In addition, recently, technologies such as an impact absorbing structure having an elastic member or an air cushion in the innermost layer of a shoe, a structure in which the innermost layer of a shoe is formed in a circular shape in order to fully utilize the entire sole when walking, and a structure in which vibration can be generated in the innermost layer, etc. are being developed in order to relieve the impact when walking.

[0007] One example of such a technology is disclosed in the following Patent Documents 1 to 3, etc.

[0008] For example, in Patent Document 1 (Korean Patent No. 10-2128378, issued on June 24, 2020), a vibration device is disclosed, as shown in Figure 1 The vibration device has a housing in which an accommodation portion 13 is formed by the cooperation of an upper body 11 and a lower body 12, a vibration frame 20 fixed by being pressed by the upper and lower bodies 11 and 12 or fixed by being coupled to the upper and lower bodies 11 and 12 by bolts for cooperation, a vibration main plate 30A having one end connected to the vibration frame 20 and the other end disposed in the accommodation portion 13 of the housing, a vibration sub plate 30B branched from the vibration main plate 30A, a moving magnet 41 provided in one or more of the ends of the vibration sub plate 30B to cause the vibration main plate 30A and the vibration sub plate 30B to vibrate up and down by magnetic force, an upper fixed magnet 42 provided in the upper body 11 of the housing to generate a repulsive force to the moving magnet 41, and a lower fixed magnet 43 provided in the lower body 12 of the housing to generate a repulsive force to the moving magnet 41.

[0009] In addition, in Patent Document 2 (Korean Patent No. 10-1654247, issued on August 30, 2016), a vibration module is disclosed, which includes a vibration plate having one end fixed to a housing and the other end shaken by external impact energy, a first magnet provided in the other end of the vibration plate and having a first N-pole facing one of vibration directions of the vibration plate and a first S-pole facing a direction opposite to the first N-pole, and a second magnet connected to an inner wall of the housing at a location spaced apart from the first magnet provided in the other end of the vibration plate and having a second N-pole and a second S-pole, and provided in a manner that the second N-pole is offset from the first N-pole with the vibration plate as a reference.

[0010] On the other hand, in Patent Document 3 (Korean Patent No. 10-1978880, issued on May 9, 2019), a vibrator is disclosed, which includes a housing, a first fixed magnet formed in at least a portion of an upper side of the housing, a second fixed magnet formed in a region opposite to the first fixed magnet in a lower side of the housing, first and second vibration plates capable of vibrating in an inner space of the housing, a first moving magnet formed in one end of the first vibration plate and generating a repulsive force with the first fixed magnet, a second moving magnet formed in one end of the second vibration plate and generating a repulsive force with the second fixed magnet, and a vibration frame fitted along an outer periphery of the housing. SUMMARY

[0011] PROBLEMS TO BE SOLVED BY THE INVENTION

[0012] A vibration device using a uniform vibration and a magnetic force capable of amplifying the vibration and transmitting the vibration to the outside is disclosed in Patent Document 1 described above, but the vibration is not large, and a technique of applying a finger pressure or a magnetic force to a user's foot is not disclosed.

[0013] In addition, Patent Document 2 described above is a configuration in which a first magnet and a second magnet are disposed from a neutral position of a vibration plate to an extension line, and has the same problem as Patent Document 1 described above that the vibration is not large, and Patent Document 3 is a configuration in which a vibrator is vibrated by a magnetic force generated between each fixed magnet and each moving magnet, and a technique of applying a finger pressure or a magnetic force to a user's foot is not disclosed in Patent Document 2 and Patent Document 3 described above.

[0014] The present application has been achieved to solve the problems described above, and an object of the present application is to provide a functional health care shoe which applies a vibration effect and a finger pressure effect to a user's foot portion, thereby helping a user's blood flow improvement and joint protection.

[0015] Another object of the present application is to provide a functional health care shoe which simultaneously applies a vibration, a finger pressure, and a magnetic force to a user's foot portion.

[0016] Still another object of the present application is to provide a functional health care shoe which enables a user to walk happily and comfortably.

[0017] Solution to the problem

[0018] To achieve the above object, a functional health care shoe according to the present application is configured of an upper wrapping a user's foot, a midsole supporting a foot portion at a lower portion of the upper and on which an insole is disposed, an outsole attached to a lower portion of the midsole, and the insole provided on an upper side of the midsole, and is characterized by comprising: a housing composed of a body, a first protruding portion, and a second protruding portion, wherein the body is open at a central portion and is mounted to the midsole, the first protruding portion is provided in a cylindrical shape at an upper portion of the body and is built in the insole, and the second protruding portion is provided in a cylindrical shape at a position of a lower portion of the body opposite to the first protruding portion and is mounted to the midsole; a first magnet built in the first protruding portion; a second magnet disposed at a position opposite to the first magnet and mounted to the second protruding portion; a vibration member disposed inside the body; a third magnet formed at one end of the vibration member and generating a repulsive force with the first and second magnets; a first spring disposed at the first magnet; and a second spring disposed at the second magnet, the vibration member including a vibration plate and generating a vibration by a magnetic force generated between the first and second magnets and the third magnet, and the first and second springs realizing a finger pressure function.

[0019] In addition, the functional health care shoe according to the present application is characterized in that the first and second magnets are set to have a size greater than that of the third magnet.

[0020] In addition, the functional health care shoe according to the present application is characterized in that the first and second magnets are set to have a magnetic force greater than that of the third magnet.

[0021] In addition, the functional health care shoe according to the present application is characterized in that the first and second magnets are built in a structure fitted to portions of steps formed in the first and second protruding parts, respectively, the first spring is set as a compression spring and inserted into an upper portion of the first magnet, and the second spring is set as a compression spring and inserted into a lower portion of the second magnet.

[0022] In addition, the functional health care shoe according to the present application is characterized in that a fourth magnet is further provided on the first spring.

[0023] In addition, the functional health care shoe according to the present application is characterized in that a partition is provided inside a body of the housing to divide a space of the body into two parts, a fifth magnet opposite to the first magnet, a sixth magnet opposite to the second magnet, and a third spring between the fifth and sixth magnets are provided on the partition, and the vibration plates are provided on upper and lower portions of the partition, respectively, and are provided between the first and fifth magnets and between the second and sixth magnets, respectively.

[0024] In addition, the functional health care shoe according to the present application is characterized in that the first and second magnets are built in a structure fitted to portions of steps formed in the first and second protruding parts, respectively, the first spring is set as a compression spring and inserted into a lower portion of the first magnet, and the second spring is set as a compression spring and inserted into an upper portion of the second magnet.

[0025] In addition, the functional health care shoe according to the present application is characterized in that the vibration plates are provided with oval or circular expansion portions.

[0026] Effects of the Invention

[0027] As described above, the functional health care shoe according to the present application can apply a vibration effect and a finger pressure effect to a sole portion of a user by the housing composed of the body, the first and second protruding parts, and the magnets and springs provided in the first and second protruding parts.

[0028] In addition, with the functional health shoes according to the present application, the effect of simultaneously applying vibration, finger pressure, and magnetic force to the sole portion of the user is obtained by the first magnet, the first spring, and the fourth magnet provided on the first spring. BRIEF DESCRIPTION OF DRAWINGS

[0029] Figure 1 is a view showing a case including a vibration module according to the related art.

[0030] Figure 2 is a view showing one example of functional health shoes to which the present application is applied.

[0031] Figure 3 is a view showing Figure 2 the configuration of the sole shown in

[0032] Figure 4 is a view showing Figure 2 the mounting state of the case shown in

[0033] Figure 5 is a view showing a first embodiment of a vibration generation configuration built in the case shown in Figure 4

[0034] Figure 6 is a view showing the configuration of the vibration member shown in Figure 5

[0035] Figure 7 is a view showing a second embodiment of a vibration generation configuration built in the case shown in Figure 4

[0036] Figure 8 is a view showing a third embodiment of a vibration generation configuration built in the case shown in Figure 4

[0037] Figure 9 is a view showing a fourth embodiment of a vibration generation configuration built in the case shown in Figure 4

[0038] Figure 10 is a view showing a fifth embodiment of a vibration generation configuration built in the case shown in Figure 4

[0039] Figure 11 is a view showing another configuration of the vibration member shown in Figure 6

[0040] Figure 12 is a view showing still another configuration of the vibration member shown in Figure 6 DETAILED DESCRIPTION ​​​​​​​​

[0041] The above objects and other objects and novel features of the present application will be more clearly understood from the following description taken in conjunction with the accompanying drawings, in which:

[0042] The term "magnet" used in the present application is a permanent magnet having N and S poles, which can use any one of a neodymium magnet, a NIB magnet, or a ferrite magnet, and the term "vibration member" refers to a plate-shaped member capable of generating a certain vibration by repulsive force of the magnet. In addition, the term "shoes" applicable to the present application refers to sports shoes, hiking shoes, golf shoes, work shoes, boots, kitchen shoes, bathroom shoes, hunting shoes, slippers, sandals, indoor shoes, special shoes, and the like.

[0043] On the other hand, it is well known that the skeletal structure of the human body is suitable for vertical direction movement, and thus if subjected to a bias, horizontal vibration, a phenomenon such as stress or dizziness is induced.

[0044] The present application in order to improve such a phenomenon, and the inside of the shoe built-in vibration generating configuration to generate vertical direction vibration, thus can realize comfortable walking, and by the vertical direction vibration generated by walking movement can promote blood circulation and relieve swelling and pain of the foot. In addition, the finger pressure function is provided, thus can also add the function of improving blood flow and protecting the joints.

[0045] [First Embodiment]

[0046] Hereinafter, referring to Figures 2 to 5 The configuration of the functional health shoes according to the first embodiment of the present application will be described.

[0047] Figure 2 is a view showing one example of the functional health shoes to which the present application is applied, Figure 3 is a view showing Figure 2 the configuration of the sole shown in Figure 4 is a view showing Figure 2 the mounting state of the housing shown in Figure 5 is a view showing the vibration generating configuration built-in Figure 4 the housing shown in

[0048] As shown in Figure 2 the functional health shoes according to the present application are configured of an upper 100 wrapping a user's foot, a sole 200 being the bottommost part provided to the lower surface of the upper 100 to protect the foot from the ground, and a vibration generating configuration, thus imparting functionality to the inherent function of the shoes, and thus comfortable walking of the user can be realized.

[0049] As shown in Figure 3As shown, the sole 200 can also be composed of a midsole 220 that supports the foot at the bottom of the upper 100 and is where the insole is located, an outsole 230 attached to the bottom of the midsole 220, and an insole 210 on the upper side of the midsole 220. The housing 300 can be installed on the insole 210 and the midsole 220.

[0050] That is, such as Figure 4 and Figure 5 As shown, the housing 300 is composed of a body 301 that can be opened in a generally central portion, a first protrusion 302 that is cylindrical in shape on the upper part of the body 301, and a second protrusion 303 that is cylindrical in shape on the lower part of the body 301 opposite to the first protrusion 302. The first protrusion 302 is built into a first groove formed in the lower part of the insole 210. The body 301 and the second protrusion 303 can also be built into a second groove formed in the upper part of the midsole 220. The insole 210 can be bonded to the midsole 220 by means of an adhesive or the like.

[0051] The main body 301, the first protrusion 302, and the second protrusion 303 of the aforementioned housing 300 can be integrated as a single unit. The material of the housing 300 only needs to be sufficient to transmit vibrations generated by the main body to the outside, and is preferably made of elastic materials such as plastic, rubber, or silicone, rather than metal. Furthermore, the first protrusion 302 and the second protrusion 303 of the housing 300 can be configured to provide acupressure functionality at the bottom of the user's foot.

[0052] Next, refer to Figure 5 and Figure 6 The vibration-generating structure provided inside the aforementioned housing 300 will be described.

[0053] Figure 6 It is shown Figure 5 A diagram showing the construction of the vibrating component.

[0054] like Figure 5 As shown, the vibration generating structure according to the present invention can include: a first magnet 310 disposed in the first protrusion 302 of the housing 300 and built into the insole 210 portion of the shoe; a second magnet 320 disposed in the second protrusion 303 of the housing 300 at a position opposite to the first magnet 310 and mounted on the midsole 220 of the shoe; a vibration member 400 disposed within the body 301 of the housing 300; a third magnet 330 formed at one end of the vibration member 400 and generating a repulsive force with the first magnet 310 and the second magnet 320; a first spring 311 disposed in the first magnet 310; and a second spring 321 disposed in the second magnet 320.

[0055] The first magnet 310 and the second magnet 320 can be configured to be approximately circular, and can also be configured to be the same size. The size of the first magnet 310 and the second magnet 320 can be configured to be larger than the size of the third magnet 330 to increase the repulsive force between the first magnet 310 and the third magnet 330, as well as the repulsive force between the second magnet 320 and the third magnet 330. In addition, the magnetic force of the first magnet 310 and the second magnet 320 can be configured to be greater than the magnetic force of the third magnet 330. For example, the first magnet 310 and the second magnet 320 can also be configured to be neodymium magnets or NIB magnets with strong magnetic force, and the third magnet 330 can be configured to be a ferrite magnet. That is, a neodymium magnet with a length of 40 × width of 25 × thickness of 10 can be set to have 4,020 gauss, and a ferrite magnet with a length of 40 × width of 25 × thickness of 10 can be set to have 1,169 gauss.

[0056] Furthermore, although the above description describes a structure in which the size of the first magnet 310 and the second magnet 320 is larger than the size of the third magnet 330, conversely, the size of the first magnet 310 and the second magnet 320 can also be set to be smaller than the size of the third magnet 330, and the magnetic force of the first magnet 310 and the second magnet 320 can also be set to be smaller than the magnetic force of the third magnet 330.

[0057] In addition, such as Figure 5 As shown, the first magnet 310 and the second magnet 320 can be housed in a configuration that partially engages with the steps 304 formed on the first protrusion 302 and the second protrusion 303 of the housing, respectively. Therefore, it is possible to prevent the first magnet 310 and the second magnet 320 from disengaging from the first protrusion 302 and the second protrusion 303 during the user's walking movements.

[0058] like Figure 5 As shown, the first spring 311 is configured as a compression spring and inserted into the upper part of the first magnet 310, and the second spring 321 is also configured as a compression spring and inserted into the lower part of the second magnet 320. The first spring 311 and the second spring 321 elastically contract and expand with the user's walking movements, simultaneously applying pressure to the soles of the feet to provide acupressure and massage, thereby improving blood flow to the feet and contributing to improved foot health. Furthermore, the positions of the first magnet 310 and the second magnet 320 change due to the compression and expansion of the first spring 311 and the second spring 321, causing a change in their distance from the third magnet 330. This alters the repulsive force generated between the first magnet 310 and the second magnet 320 and the third magnet 330, thereby increasing the vibration of the vibrating component 400.

[0059] As shown in Figure 5 , the above-described vibration member 400 is provided at a central portion of the body 301 of the case 300, i.e., between the first magnet 310 and the second magnet 320, and is configured to generate vibration by repulsive force generated between the first magnet 310 and the second magnet 320 and the third magnet 330.

[0060] As shown in Figure 6 , the vibration member 400 is of an elastic material, and can be configured by a vibration frame 410 and a vibration plate 420, wherein the vibration frame 410 is fixed to one side of the case 300, and the vibration plate 420 is configured to be curved with a certain curvature and to extend from a central portion of the vibration frame 410 toward the inside of the body 301.

[0061] As shown in Figure 5 , a third magnet 330 is attached to the upper portion of the end portion of the vibration plate 420, and is preferably formed in a thin and long shape to have high elasticity, and can be made of an alloy of copper and zinc.

[0062] In addition, the configuration in which the third magnet 330 is provided at the upper portion of the vibration plate 420 is shown in Figure 5 , but is not limited thereto, and the third magnet 330 can also be provided at the lower portion of the vibration plate 420. On the other hand, in the absence of an external force, the third magnet 330 does not move, and the vibration plate 420 is located at substantially the center of the body 301, and an example of a state in which the vibration plate 420 moves toward the first magnet 310 due to the repulsive force of the second magnet 320 is shown in Figure 5 .

[0063] In addition, the configuration in which the case 300 is provided only in the heel region is shown in Figure 3 , but is not limited thereto, and can also be provided only in the ball of the foot region or the arch of the foot region, and can also be provided in the heel region, the ball of the foot region, and the arch of the foot region, respectively. In addition, the configuration in which one case 300 is provided in the heel region is shown in Figure 3 , but is not limited thereto, and a plurality of cases can also be provided in the heel region. On the other hand, the configuration in which one third magnet 330 is provided on the vibration plate 420 is shown in Figure 5 , but a configuration in which a plurality of third magnets are attached can also be applied.

[0064] [Second Embodiment]

[0065] Next, referring to Figure 7The configuration of the functional health shoes according to the second embodiment of the present application is explained. Also, in the second embodiment, the same reference numerals are attached to the same parts as those of the first embodiment, and repeated explanation thereof is omitted.

[0066] Figure 7 is a view showing a vibration generating configuration of the case shown in Figure 4 FIG. 2.

[0067] As shown in Figure 7 , in the functional health shoes according to the second embodiment of the present application, the fourth magnet 340 is provided at a portion of the first protruding part 302 to simultaneously apply vibration, finger pressure, and magnetic force to the sole portion of the user.

[0068] It is also possible to be configured to generate repulsive force between the above-mentioned fourth magnet 340 and the first magnet 310. Therefore, the above-mentioned first spring 311 and second spring 321 are elastically contracted and expanded by the walking action of the user to pressurize the sole, and the magnetic therapy function through the sole of the user is additionally applied by the fourth magnet 340, so that the flow of qi is also able to be harmonized. That is, by providing the fourth magnet 340, the blood molecules in the sole of the user are aligned in order, so that these molecules are easily moved in the body.

[0069] [Third Embodiment]

[0070] Referring to Figure 8 the configuration of the functional health shoes according to the third embodiment of the present application is explained. Also, in the third embodiment, the same reference numerals are attached to the same parts as those of the first embodiment, and repeated explanation thereof is omitted.

[0071] Figure 8 is a view showing a vibration generating configuration of the case shown in Figure 4 FIG. 2.

[0072] In the above-mentioned first embodiment, the configuration in which the first spring 311 is provided at the upper portion of the first magnet 310 and the second spring 321 is provided at the lower portion of the second magnet 320 is shown, but as shown in Figure 8 , in the third embodiment, the configuration in which the first spring 311 is provided at the lower portion of the first magnet 310 and the second spring 321 is provided at the upper portion of the second magnet 320 is applied. That is, as shown in Figure 8 , in the third embodiment, in the case where the user performs a walking action, the distances between the first magnet 310 and the third magnet 330 and between the second magnet 320 and the third magnet 330 are variable by the first spring 311 and the second spring 321, so that the repulsive force between the first magnet 310 and the second magnet 320 and the third magnet 330 is variable, and thus it is also possible to increase the vibration of the vibration member 400.

[0073] In addition, the magnetic therapy function of the first magnet 310 passing through the sole of the user can be added as in the second embodiment.

[0074] [Fourth Embodiment]

[0075] Referring to Figure 9 The configuration of the functional health shoes according to the fourth embodiment of the present application is explained. In addition, in the fourth embodiment, the same reference numerals are attached to the same parts as those of the first embodiment, and the repeated explanation thereof is omitted.

[0076] Figure 9 is a view showing the vibration generation configuration of the case shown in Figure 4 is a view showing the vibration generation configuration of the case shown in

[0077] In the first to third embodiments described above, the configuration in which the first and second springs 311 and 321 are arranged in the vertical direction with respect to the first and second magnets 310 and 320 is shown, but as shown in Figure 9 the second spring 321 can also be arranged to be inclined according to the walking motion of the user in the fourth embodiment.

[0078] The walking motion of the user is generally a state in which the heel region first contacts the ground and then the ball region contacts the ground with the instep moving, and thus the second spring 321 can also be arranged to be inclined toward the heel side to correspond to the heel region of the user with the walking motion. In this way, by arranging the second spring 321 to be inclined, the user can be guided to perform the walking motion more pleasantly and comfortably.

[0079] [Fifth Embodiment]

[0080] Referring to Figure 10 The configuration of the functional health shoes according to the fifth embodiment of the present application is explained. In addition, in the fifth embodiment, the same reference numerals are attached to the same parts as those of the first embodiment, and the repeated explanation thereof is omitted.

[0081] Figure 10 is a view showing the vibration generation configuration of the case shown in Figure 4 is a view showing the vibration generation configuration of the case shown in

[0082] As shown in Figure 10As shown, in the fifth embodiment of the present application, a configuration in which a partition 500 is provided inside the body 301 of the housing 300 to divide the space of the body 301 into two parts is applied. That is, the configurations of the first protruding portion 302 and the second protruding portion 303 are provided to be the same as those of the first embodiment, and a fifth magnet 360 opposite to the first magnet 310, a sixth magnet 370 opposite to the second magnet 320, and a third spring 380 between the fifth magnet 360 and the sixth magnet 370 are provided on the partition 500. Thus, the vibration member 400 is provided on the upper and lower parts of the partition 500, and the vibration plates 420 of the respective vibration members 400 are provided between the first magnet 310 and the fifth magnet 360 and between the second magnet 320 and the sixth magnet 370, respectively.

[0083] Therefore, in the fifth embodiment, by providing two vibration plates 420 in the space divided into two parts, it is possible to increase the amount of vibration more than in the first embodiment.

[0084] Next, other configurations of the vibration member 400 shown in Figure 11 and Figure 12 will be described. Figure 6

[0085] Figure 11 is a view showing another configuration of the vibration member shown in Figure 6 , and Figure 12 is a view showing still another configuration of the vibration member shown in Figure 6 .

[0086] In the vibration member 400 shown in Figure 6 , the vibration plate 420 is configured by a configuration provided to be long in the left-right direction and formed in a plate shape, but is not limited thereto, and the present application can also be configured by providing an expansion portion to a part of the vibration plate 420.

[0087] That is, as shown in Figure 11 , as the expansion portion, it is possible to provide the central part of the vibration plate 420 to be an elliptical shape 421 to increase vibration, or, as shown in Figure 12 , it is also possible to provide the end part of the vibration plate 420 to be a circular shape 422 to increase vibration.

[0088] In addition, it is also possible to install a plurality of third magnets 330 to the above-mentioned elliptical shape 421 or circular shape 422 part to increase the amount of vibration.

[0089] Although the invention completed by the present inventor has been specifically described above according to the above-mentioned embodiments, the present application is not limited to the above-mentioned embodiments, and of course, various modifications can be made within the scope of the gist of the present application.

[0090] Industrial applicability ​

[0091] By using the functional health care shoes according to the present application, a vibration effect and a finger pressure effect can be applied to the sole portion of a user.

Claims

1.A functional health care shoe, which is composed of a shoe upper wrapping a user's foot, a shoe midsole supporting a sole under a lower portion of the shoe upper and a shoe insole provided on an upper side of the shoe midsole, and a shoe outsole attached to a lower portion of the shoe midsole, the functional health care shoe being characterized by comprising: a housing capable of being opened at a central portion and mounted to the shoe midsole, a first protrusion provided in a cylindrical shape on an upper portion of the housing and embedded in the shoe insole, and a second protrusion provided in a cylindrical shape on a lower portion of the housing opposite to the first protrusion and mounted to the shoe midsole; a first magnet embedded in the first protrusion; a second magnet provided opposite to the first magnet and mounted to the second protrusion; a vibration member provided inside the housing; a third magnet formed on one end of the vibration member and generating repulsive force with the first and second magnets; a first spring provided to the first magnet; a second spring provided to the second magnet; and a fourth magnet embedded in the first protrusion and provided on the first spring, the first and second magnets being provided as neodymium magnets or NIB magnets having strong magnetic force, the third magnet being provided as a ferrite magnet, the first and second magnets being embedded in a structure fitted to steps formed on the first and second protrusions of the housing, the vibration member including a vibration plate and generating vibration by magnetic force generated between the first and second magnets and the third magnet, and the first and second springs implementing a finger pressing function. a housing consisting of a body, a first protrusion and a second protrusion, wherein 2.The functional health care shoe according to claim 1, wherein sizes of the first and second magnets are set to be larger than a size of the third magnet. 3.The functional health care shoe according to claim 1, wherein the first and second springs are provided as compression springs. 4.The functional health care shoe according to claim 1, wherein a partition is provided inside the housing to divide a space of the housing into two portions, a fifth magnet opposite to the first magnet, a sixth magnet opposite to the second magnet, and a third spring between the fifth and sixth magnets are provided on the partition, the vibration plate is provided on the upper and lower portions of the partition, respectively, and the vibration plate is provided between the first and fifth magnets and between the second and sixth magnets, respectively. 5.The functional health care shoe according to claim 1, wherein an oval or circular expansion portion is provided on the vibration plate. ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ ​

Citation Information

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