Model-making toy capable of forming 3D model by means of foot pressure
By designing a toy shoe sole with a 3D molding groove and a pigment storage cavity, users can create 3D models by stepping on the snow, solving the problem of the lack of interactivity and creativity in snow shoes and improving the entertainment and safety of snow activities.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-12-13
- Publication Date
- 2026-04-02
AI Technical Summary
Existing snow boots fail to enable users to interact directly with the snow, cannot press out and retain 3D models in the snow, and are inadequate in terms of entertainment, durability, ease of use, and safety.
A toy shoe sole body was designed, featuring a 3D molding groove and a contact surface, combined with a pigment storage cavity and friction grooves. The user's foot movements create a 3D model on the snow. It is easily installed through blocking protrusions and strap structures, and is equipped with a pressure sensor and sound unit to indicate when molding is complete.
It enables the free creation of 3D models in the snow, increasing the fun and interactivity of snow activities, ensuring the product's durability, ease of use, and safety, and providing a unique interactive experience and creative enjoyment.
Smart Images

Figure CN2024139332_02042026_PF_FP_ABST
Abstract
Description
Model making toy capable of treading 3D model TECHNICAL FIELD
[0001] The present application belongs to the technical field of toys, and particularly relates to a model making toy capable of treading a 3D model. BACKGROUND
[0002] With the progress of society and the improvement of people's living standards, consumers' requirements for winter outdoor activities are also increasing. It is no longer just to meet the basic warmth, slip resistance and comfort, but to start pursuing more entertainment and creative elements in order to obtain a more rich and diverse experience in outdoor activities. Especially in the scenes of family parent-child tour, friends gathering and the like, a snow shoe product capable of adding interactive fun and inspiring creativity is particularly important. Under this background, many innovative products that attempt to combine entertainment with snow shoes have appeared in the market, such as snow boots with light-emitting devices, ski shoes with adjustable music playing, etc. These products meet the new needs of users for outdoor activities to some extent, but still do not touch the level of directly interacting with snow through the sole and creating personalized 3D models.
[0003] At present, there is no sole product on the market that can directly press and retain a 3D model in the snow. Such products not only require the sole material to have sufficient wear resistance, slip resistance and shape recovery ability, but also need to achieve unique interaction between the user and the snow through ingenious structural design. At the same time, considering the variability and uncertainty of outdoor activities, such products also need to achieve high standards in durability, ease of use and safety. Therefore, the present application aims to fill this market gap by innovative sole design to realize the function of users' free creation of 3D models in the snow, adding new fun and creativity to snow activities. SUMMARY
[0004] To solve the problems raised in the background art, the present application provides a model making toy capable of treading a 3D model, which, in combination with a traditional winter shoe, brings users an unprecedented interactive experience and creative fun.
[0005] To achieve the above-mentioned purpose, the present application provides the following technical solution: a model making toy capable of treading a 3D model, comprising a toy sole main body, the upper surface of the toy sole main body is provided with a shoe tread surface, the bottom surface of the toy sole main body is provided with a ground contact surface; the ground contact surface is provided with a 3D modeling groove; the toy sole main body is provided with a connecting structure for assembling the model making toy to the bottom of the shoe.
[0006] Preferably, the shoe tread surface is integrally formed with a plurality of friction beans, which are arranged at intervals on the shoe tread surface.
[0007] Preferably, the connecting structure comprises a blocking protrusion provided on the shoe tread, and the blocking protrusion is provided with a belt passing hole.
[0008] Preferably, the blocking protrusion comprises a first protrusion located at one end of the toy shoe sole body and two second protrusions located at the other end of the toy shoe sole body, the first protrusion is provided with a first belt passing hole, and the second protrusions are provided with second belt passing holes.
[0009] Preferably, the ground contact surface is provided with a set of friction grooves, and the friction grooves are spaced apart on the ground contact surface.
[0010] Preferably, the interior of the toy shoe sole body is provided with a color storage cavity, and the 3D stereoscopic forming groove is provided with a connecting through hole in communication with the color storage cavity.
[0011] Preferably, the shoe tread is provided with a flow guide slope, and the flow guide slope is provided with a liquid inlet in communication with the color storage cavity.
[0012] Preferably, the interior of the toy shoe sole body is provided with a pressure sensing unit and a sound generating unit for reminding that the 3D stereoscopic model is formed.
[0013] The second aspect of the present application provides a method for stepping out a 3D stereoscopic model, which is applied to the model making toy capable of stepping out a 3D stereoscopic model, and the method comprises the following steps: an abutting step of abutting the 3D stereoscopic forming groove with forming material; a forming step of moving the shoe sole body towards the forming material to make the forming material form a model in the 3D stereoscopic forming groove; and a demolding step of moving the shoe sole body away from the forming material to expose the model.
[0014] Preferably, the forming step comprises a shaping step and a treading step; in the shaping step, an acting force is applied to the shoe tread, and the shoe sole body moves towards the forming material to make the forming material fill into the 3D stereoscopic forming groove; and in the treading step, the acting force is continuously applied to the shoe tread to make the 3D stereoscopic forming groove press the forming material to form the model.
[0015] Preferably, the interior of the toy shoe sole body is provided with a color storage cavity, and the treading step further comprises a coloring process, in which the color storage cavity adds color to the model.
[0016] Preferably, the toy shoe sole body is provided with a pressure sensor and a sound generating unit; the pressure sensor is used to detect the value of the forming pressure, and when the value of the forming pressure is greater than a set threshold, the sound generating unit emits a reminding sound.
[0017] The third aspect of the present application provides a model making toy capable of treading a 3D model, comprising a toy shoe sole body, an upper surface of the toy shoe sole body is provided with a tread surface, and the shoe sole body is provided with a 3D modeling protrusion on the side opposite to the tread surface; the toy shoe sole body is provided with a connecting structure for assembling the model making toy to the bottom of a shoe.
[0018] Preferably, the connecting structure comprises a blocking protrusion provided on the tread surface, and the blocking protrusion is provided with a strap hole.
[0019] The fourth aspect of the present application provides a method for treading a 3D model, applied to the model making toy capable of treading a 3D model, and the method comprises the following steps: an abutting step of abutting the 3D modeling protrusion against a modeling material; a molding step of applying a molding pressure to the tread surface to move the shoe sole body towards the modeling material, so that the 3D modeling protrusion forms a model in the modeling material; and a demolding step of moving the shoe sole body away from the modeling material to expose the model.
[0020] Preferably, the molding step comprises a shaping step and a treading step; in the shaping step, an acting force is applied to the tread surface, and the shoe sole body moves towards the modeling material, so that the 3D modeling protrusion is embedded in the modeling material; and in the treading step, the acting force is continuously applied to the tread surface, so that the 3D modeling protrusion presses the modeling material to form the model.
[0021] Preferably, an internal part of the toy shoe sole body is provided with a color storage cavity, and the treading step further comprises a coloring process, in which the color storage cavity adds color to the model.
[0022] Preferably, the toy shoe sole body is provided with a pressure sensor and a sound emitting unit; the pressure sensor is used to detect the value of the molding pressure, and when the value of the molding pressure is greater than a set threshold, the sound emitting unit emits a warning sound.
[0023] The present application has the following beneficial effects:
[0024] The present application can tread various 3D models through simple foot movements when a user walks or plays in the snow, thereby increasing the interest and interactivity of snow activities.
[0025] The blocking protrusion provided in the present application can conveniently connect the strap, and the strap can be easily worn on the ankle and the shoe surface of the consumer when playing in the snow, and the strap can be easily removed when not playing.
[0026] The color storage cavity provided in the present application can conveniently color the 3D model, so that the formed 3D model is more vivid and lifelike, and more interesting.
[0027] The present application can make the consumer walk in the product, play a good anti-skid effect, avoid the consumer to slip down and produce the danger through the cooperation of the ground surface and the friction groove. BRIEF DESCRIPTION OF DRAWINGS
[0028] Fig. 1 is a schematic diagram of the three-dimensional structure of the present application;
[0029] Fig. 2 is a schematic diagram of the bottom structure of the present application;
[0030] Fig. 3 is a schematic diagram of the cross-sectional structure of the present application;
[0031] Fig. 4 is an enlarged view of A in Fig. 3 of the present application;
[0032] Fig. 5 is a schematic diagram of the three-dimensional structure of the penguin of the present application;
[0033] Fig. 6 is a schematic diagram of the three-dimensional structure of the pig of the present application;
[0034] Fig. 7 is a flow chart of a method for extruding a 3D model in an exemplary embodiment of the present application;
[0035] Fig. 8 is a flow chart of the forming step in Fig. 7 in an embodiment;
[0036] Fig. 9 is a flow chart of the forming step in Fig. 7 in another embodiment;
[0037] Fig. 10 is a structural diagram of a sole in an exemplary embodiment of the present application;
[0038] Fig. 11 is a perspective view of a sole provided with a 3D bear-shaped forming protrusion in an exemplary embodiment of the present application;
[0039] Fig. 12 is a perspective view of a sole provided with a 3D penguin-shaped forming protrusion in an exemplary embodiment of the present application;
[0040] Fig. 13 is a perspective view of a sole provided with a 3D pig-shaped forming protrusion in an exemplary embodiment of the present application;
[0041] Fig. 14 is a flow chart of another method for extruding a 3D model in an exemplary embodiment of the present application;
[0042] Fig. 15 is a flow chart of the forming step in Fig. 14 in an embodiment;
[0043] Fig. 16 is a flow chart of the forming step in Fig. 14 in another embodiment;
[0044] Fig. 17 is a schematic diagram of the connection of hardware modules in the sole body of the present application;
[0045] Fig. 18 is an activation flow chart of a sound generating unit in an exemplary embodiment of the present application;
[0046] FIG. 19 is an activation flowchart of a communication unit in an exemplary embodiment of the present application. DETAILED DESCRIPTION
[0047] The present application will now be described in detail with reference to the drawings and embodiments. Various examples are provided by way of explanation of the application and are not meant as a limitation of the application. In fact, it will be apparent to those skilled in the art that modifications and variations of the application can be made without departing from the scope or spirit of the application. For example, features as disclosed or described in one embodiment can be used in another embodiment to produce yet another embodiment. It is therefore desired that the present application be considered as encompassing all such modifications and variations as fall within the scope of the appended claims and their equivalents.
[0048] In the description of the present application, the terms "longitudinal", "lateral", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", and the like are terms of convenience and are not to be construed as limiting the present application to any particular position or orientation. The terms "connected", "connecting", "coupled", "coupling", or the like are used herein to mean the following: the object can be directly in contact with the other object, or indirectly in contact with the other object by way of one or more intermediate objects; and can be electrically connected, magnetically connected, or mechanically connected, or any combination thereof.
[0049] One or more examples of implementing the application are illustrated in the accompanying drawings. The detailed description uses numerical and letter designations to refer to features in the drawings. Like or similar designations in the drawings and description have been used to refer to like or similar parts of the application. As used herein, the terms "first", "second", and "third", etc. can be used interchangeably to distinguish one component from another and are not intended to signify location or importance of the individual components.
[0050] Example One
[0051] As shown in FIGS. 1-4, the present application provides a model making toy that can step out a 3D model, including a toy shoe bottom body 1, the toy shoe bottom body 1 can be integrally formed by PVC material, the PVC material is easy to process, convenient for forming, and has strong deformation ability, which can improve the comfort of consumers stepping on the upper surface, and can enhance the applicability to various road surfaces on the bottom surface.
[0052] The specific material of the shoe sole body 1 is not limited, and can also be rubber, silicone, PU (Polyurethane), EVA (Ethylene Vinyl Acetate), TPR (Thermo-Plastic-Rubber material), TPU (Thermoplastic Polyurethane), PVC (Polyvinyl Chloride), artificial leather, natural leather, acrylic, etc.
[0053] The upper surface of the toy shoe sole body 1 is provided with a shoe tread surface 2, which is used for being stepped on by the shoe sole worn by the consumer himself. In the embodiment in which the shoe sole is made of high molecular material such as PVC, it is easy to clean when the product is not used.
[0054] The inside of the toy shoe sole body is provided with a color storage cavity 15, and the 3D stereoscopic forming groove is provided with a connecting through hole in communication with the color storage cavity 15. In the process of forming the 3D model, the color storage cavity 15 can add color to the 3D model to improve the interest.
[0055] The shoe tread surface 2 is provided with a flow guide slope 10, which is an inclined surface, facilitating the flow of color to the center. The inside of the shoe tread surface 2 is provided with a liquid inlet 11 located at the center of the flow guide slope 10. The liquid inlet 11 can drain the color downward into the color storage cavity 15 below. The color storage cavity 15 is funnel-shaped for temporary storage of color. The color can use environmentally friendly color ink, which is a color ink using environmentally friendly raw materials in the production process and meeting environmental protection standards. It does not contain harmful substances such as heavy metals and volatile organic compounds VOCs, and is harmless to the environment and human health.
[0056] The bottom surface of the toy shoe sole body 1 is provided with a ground contact surface 8, which is provided with a plurality of friction grooves 9 spaced apart on the bottom surface of the ground contact surface 8. The friction grooves 9 can be spaced apart on the ground contact surface 8 to provide good anti-skid effect. In snowy weather, the ground is slippery, and the consumer can avoid slipping.
[0057] The shoe tread surface 2 is integrally formed with a plurality of friction beans 3, which are arranged in a spaced apart manner on the upper surface of the shoe tread surface 2. Specifically, the friction beans 3 can be arranged in a horizontal and vertical distance on the upper surface of the shoe tread surface 2, increasing the friction between the consumer's own shoe sole and the shoe tread surface 2, and avoiding the phenomenon of product slipping when the consumer wears the product.
[0058] The toy shoe sole body is provided with a connecting structure for assembling the model making toy to the bottom of the shoe. The connecting structure comprises a blocking protrusion arranged on the shoe tread surface for abutting against the user's shoe. The blocking protrusion is provided with a belt passing hole for passing the belt to bind the model making toy to the bottom of the shoe.
[0059] Specifically, the blocking protrusion can include a first protrusion 4 and two second protrusions 6. The first protrusion 4 is located at one end of the toy shoe sole body. The two second protrusions 6 are located at the other end of the toy shoe sole body. The first protrusion 4 is provided with a first belt passing hole 5. The second protrusion 6 is provided with a second belt passing hole 7. By arranging multiple protrusions and belt passing holes, the fixing effect of the model making toy can be improved.
[0060] Specifically, the first protrusion 4 can be integrally formed with the toy shoe sole body. The first protrusion 4 is provided with multiple first belt passing holes 5. After the belt passes through the first belt passing hole 5, the belt can be bound on the consumer's ankle, so that the rear part of the toy shoe sole body is connected and fixed with the shoe heel.
[0061] The two second protrusions 6 can be integrally formed with the toy shoe sole body. The two second protrusions 6 are each provided with a second belt passing hole 7. After the belt passes through the two second belt passing holes 7, the belt can be bound on the shoe upper worn by the consumer, so that the front part of the toy shoe sole body is connected and fixed with the front part of the shoe sole, and finally the overall fixing of the product can be realized.
[0062] The ground surface 8 is provided with a 3D stereoscopic forming groove. The 3D stereoscopic forming groove can be a bear 3D stereoscopic forming groove 12. After the consumer wears the product and steps on the snow, a snowman 3D model can be formed on the snow.
[0063] The connecting through hole can include two bear eye connecting through holes 14. The bear eye connecting through holes 14 are located at the eye positions of the bear 3D stereoscopic forming groove 12. During the forming process, the paint in the paint storage cavity 15 is applied to the eyes of the bear, improving the interestingness.
[0064] The working principle of the embodiment is as follows:
[0065] When the consumer goes out to play snow in the snow, first, the prepared pigment is poured on the guide slope 10, and the pigment is guided by the guide slope 10 and flows into the inside of the pigment storage cavity 15 through the liquid inlet 11. Then, the bandage is sequentially threaded through each first threading hole 5, and then the bandage is tied on the ankle. Then, the other bandage is threaded through the two second threading holes 7, and the bandage is tied on the shoes of the consumer. Then, the consumer can go to the snowfield to play snow. The snow on the ground is pressed into the shape of the bear 3D stereoscopic forming groove 12. The pigment in the inside of the pigment storage cavity 15 can fall on the bear animal eyeball formed by the bear eye connecting through hole 14 to form the bear eye 3D forming groove 13, which is a stroke of genius and brings an unprecedented interactive experience and fun to the user.
[0066] Embodiment two
[0067] As shown in FIG. 5, the difference between the present embodiment and embodiment one is that a model in the shape of a penguin 3D stereoscopic forming groove 16 is formed on the ground, which is different from the bear 3D stereoscopic forming groove 12. The connecting through hole can include two penguin eye connecting through holes 18. The penguin eye connecting through holes 18 are arranged in the penguin 3D stereoscopic forming groove 17. During the forming process, the pigment in the pigment storage cavity 15 is applied to the eyes of the penguin, which improves the interest.
[0068] Embodiment three
[0069] As shown in FIG. 6, the difference between the present embodiment and embodiment one is that a model in the shape of a pig 3D stereoscopic forming groove 16 is formed on the ground, which is different from the bear 3D stereoscopic forming groove 12. The connecting through hole can include two pig eye connecting through holes 21. The pig eye connecting through holes 21 are arranged in the pig eye connecting through hole 20.
[0070] In addition to the bear model, the penguin model, and the pig model, the 3D stereoscopic forming groove can also form a human model such as Santa Claus. The specific type of the 3D stereoscopic forming groove is not limited, and the type of the model can be selected according to the actual needs.
[0071] As shown in FIGS. 1-4 and 7, the present application also provides a method for treading out a 3D stereoscopic model, which is applied to the shoe sole capable of treading out a 3D stereoscopic model in embodiments one to three. The method comprises the following steps:
[0072] S1: abutting step, abutting the 3D stereoscopic forming groove with the forming material.
[0073] S2: forming step, applying forming pressure to the shoe tread 2 to move the shoe sole body 1 towards the forming material, so that the forming material forms a model in the 3D stereoscopic forming groove.
[0074] S3: demolding step, moving the shoe sole body 1 away from the forming material to expose the model.
[0075] The molding material of the present application can be a powdery plastic material. In the process of playing in the snow, the molding material of the 3D model is snow. In other application scenarios, the molding material can be sand. In the abutting step S1, the consumer selects the area where the model needs to be formed and abuts the shoe sole to the selected area. In the molding step S2, the consumer steps down the shoe sole with force, so that the snow can be accommodated into the 3D stereoscopic molding groove, so that the model is formed on the snow. In the demolding step S3, the consumer moves away the shoe sole to enjoy the molded model and the fun of interacting with the snow. The molding of animal models such as bear models, pig models, and penguin models can be realized by the present method, and the molding of human models such as Santa Claus can also be realized, and the specific types are not limited.
[0076] Please refer to Fig. 8, the molding step S2 can include a shaping step S21 and a tamping step S22. In the shaping step, an acting force is applied to the shoe tread 2, and the shoe sole body 1 moves towards the molding material, so that the molding material fills into the 3D stereoscopic molding groove. In the tamping step, the acting force is continuously applied to the shoe tread 2, so that the 3D stereoscopic molding groove compacts the molding material to form the model. By dividing the molding step S2 into the shaping step S21 and the tamping step S22, the stability of the model can be improved, the shape of the model can be maintained, and the model can be prevented from collapsing. In other embodiments, the specific process of the molding step is not limited.
[0077] Please refer to Fig. 9, the tamping step S22 can include a coloring process S221. In the coloring process S221, the color storage cavity 15 adds color to the eye position of the model. By adding color to the eyes of the model, the model becomes more lively and the interest is further improved. In other embodiments, the specific process of the tamping step is not limited.
[0078] As shown in Figs. 10 to 13, in some embodiments, the 3D stereoscopic molding groove can be replaced by a 3D stereoscopic molding protrusion 30 to expand the function of the shoe sole and improve the interest level. The shoe sole body is provided with a 3D stereoscopic molding protrusion 30 on the side opposite to the shoe tread. In these embodiments, the shoe tread can be provided with a blocking protrusion for limiting the shoe. The blocking protrusion is provided with a belt hole for passing through the belt to install the model making toy to the shoe of the user.
[0079] The specific type of the 3D stereoscopic molding protrusion 30 is not limited, for example, it can be a bear 3D stereoscopic molding protrusion 31, a penguin 3D stereoscopic molding protrusion 32, and a pig 3D stereoscopic molding protrusion 33, and other animal-shaped protrusions, or a Santa Claus-shaped protrusion. The following will be described in detail.
[0080] Embodiment Four
[0081] As shown in FIG. 4 and FIG. 11, the 3D stereoscopic forming protrusion 30 is a bear 3D stereoscopic forming protrusion 31. The outer surface of the bear 3D stereoscopic forming protrusion 31 is provided with two bear eye 3D forming protrusions 311, and each of the two bear eye 3D forming protrusions 311 is provided with a first communication hole 312. The first communication hole 312 is arranged in the interior of the shoe sole body 1 and is in communication with the color storage cavity 15, so that the bear model obtained by 3D forming is more lifelike.
[0082] Embodiment five
[0083] As shown in FIG. 4 and FIG. 12, the 3D stereoscopic forming protrusion 30 is a penguin 3D stereoscopic forming protrusion 32. The outer surface of the penguin 3D stereoscopic forming protrusion 32 is provided with two penguin eye 3D forming protrusions 321, and each of the two penguin eye 3D forming protrusions 321 is provided with a second communication hole 322. The second communication hole 322 is arranged in the interior of the shoe sole body 1 and is in communication with the color storage cavity 15, so that the penguin model obtained by 3D forming is more lifelike.
[0084] Embodiment six
[0085] As shown in FIG. 4 and FIG. 13, the 3D stereoscopic forming protrusion 30 is a pig 3D stereoscopic forming protrusion 33. The outer surface of the pig 3D stereoscopic forming protrusion 33 is provided with two pig eye 3D forming protrusions 331, and each of the two pig eye 3D forming protrusions 331 is provided with a third communication hole 332. The third communication hole 332 is arranged in the interior of the shoe sole body 1 and is in communication with the color storage cavity 15, so that the pig model obtained by 3D forming is more lifelike.
[0086] As shown in FIG. 4 and FIG. 14, the present application also provides a method for stepping out a 3D stereoscopic model, which is applied to the shoe sole capable of extruding a 3D stereoscopic model in the embodiments four to six. The method comprises the following steps:
[0087] S1 abutting step: abutting the 3D stereoscopic forming protrusion 30 against the forming material;
[0088] S2 forming step: applying a forming pressure to the shoe tread 2 to move the shoe sole body 1 towards the forming material, so that the 3D stereoscopic forming protrusion 30 forms a model in the forming material;
[0089] S3 demolding step: moving the shoe sole body 1 away from the forming material to expose the model.
[0090] The molding material can be a powdery plastic material. In the process of playing in the snow, the molding material can be snow. In other application scenarios, the molding material can be sand. In the abutting step S1, the consumer selects the area where the model needs to be formed and abuts the sole to the selected area. In the molding step S2, the consumer steps down the sole with force, so that the 3D protrusions are inserted into the snow, thereby forming the model in the snow. In the demolding step S3, the consumer moves away the sole to enjoy the molded model and the fun of interacting with the snow. The method can be used to form animal models such as bear models, pig models, and penguin models, and can also be used to form human models such as Santa Claus, and the specific types are not limited.
[0091] Please refer to FIG. 15, the molding step S2 can include a shaping step S21 and a tamping step S22. In the shaping step, the sole body 1 moves towards the molding material, so that the 3D protrusions 30 are embedded in the molding material. In the tamping step, the force is continuously applied to the shoe tread 2, so that the 3D protrusions 30 are pressed to form the model. By dividing the molding step S2 into the shaping step S21 and the tamping step S22, the stability of the model can be improved, the shape can be maintained, and the model can be prevented from collapsing. In other embodiments, the specific process of the molding step is not limited.
[0092] Please refer to FIG. 16, the tamping step S22 can include a coloring process S221. In the coloring process S221, the color storage cavity 15 adds color to the eye position of the model. By adding color to the eyes of the model, the model is more lively and the interest is further improved. In other embodiments, the specific process of the tamping step is not limited.
[0093] In some embodiments, as shown in FIG. 17, the sole body 1 can be provided with a processing unit 41, a pressure sensing unit 42, and a sound emitting unit 43. The pressure sensing unit 42 can set a corresponding pressure threshold, and when the detected pressure value reaches the set pressure threshold, the processing unit 41 controls the sound emitting unit 43 to emit a corresponding sound to remind that the 3D model is formed, and the user can move away the model making toy. In this process, the sound emitting unit 43 can also emit a sound matched with the type of the model. For example, the sound of the pig, the penguin, the bear, or the sound effect of Santa Claus.
[0094] In order to improve the user experience, and ensure that the sound unit 43 only makes sound when forming a model, the pressure sensing unit 42 can be dynamically set with a threshold value. When the shoe sole is used, the user's ordinary walking will also produce corresponding pressure. The processing unit 41 can collect these pressures at ordinary times, and use them as pressure thresholds. When the model is formed, the user will consciously increase the force of the foot, at which time the pressure value will be greater than the pressure of the user when walking, and the processing unit 41 determines that this state is in 3D modeling of the model, and the sound unit 43 emits a corresponding sound.
[0095] Because the pressure value measured by the pressure sensing unit 42 will also be larger when the user is running, causing the sound unit 43 to make sound at will. Therefore, a posture detection unit 44, such as a gyroscope, can be provided in the shoe sole, and combined with the data detected by the pressure sensing unit 42, to comprehensively judge whether the user is in a 3D modeling state, improving the accuracy of the use state judgment.
[0096] When the model is formed, the user will consciously pause, so that the posture of the shoe sole is relatively stable. At this time, the data measured by the posture detection unit 44 changes less. When the processing unit 41 detects that the data change of the posture detection unit 44 is small, and at the same time receives large pressure data from the pressure sensing unit 42, it is determined that the user is in 3D modeling of the model, and the sound unit 43 is controlled to emit a sound.
[0097] The specific process can be seen in Figure 18. First, the processing unit 41 obtains the value X1 of the pressure sensing unit 42 and the value change X2 of the posture detection unit in a unit time (the unit time can be 1 second, etc.). Among them, the larger the value of X1, the greater the pressure generated by the user, and the user applies greater force. The smaller the value of X2, the smaller the change in the posture of the shoe sole, and the user pauses. Second, determine whether X1 is greater than the set pressure threshold, and whether X2 is less than the set posture change threshold. When X1 is greater than the pressure threshold, and X2 is less than the posture change threshold, the sound unit 43 is activated to emit a sound.
[0098] In other embodiments, only the pressure sensing unit 42 or only the posture detection unit 44 can be used to judge the use state. For example: when only X1 is greater than the pressure threshold, or only X2 is less than the posture change threshold, the sound unit is activated to emit a sound.
[0099] In some embodiments, as shown in Figure 17, a communication unit 45 can also be arranged in the shoe sole body 1 for connecting with a mobile terminal such as a mobile phone. Since the shoe sole body 1 is provided with the pressure sensing unit 42 and the posture detecting unit 44, the data of the pressure sensing unit 42 and the posture detecting unit 44 can be monitored to determine whether the user has fallen down, and the communication unit 45 can send an alarm to the mobile terminal. When a child falls down in the snow, the parents can be timely aware and take measures.
[0100] When the user falls down, the value of the pressure sensing unit 42 will decrease due to the separation from the ground. At the same time, under normal walking, the shoe sole is basically in a horizontal position or has a small angle with the horizontal direction. When the user falls down, the posture of the shoe sole will change to a vertical position or have a large angle with the horizontal direction. Therefore, the angle between the shoe sole body 1 and the horizontal direction can be detected by the posture detecting unit 44 to determine the falling behavior of the user. By comprehensively detecting the values of the pressure sensing unit 42 and the posture detecting unit 44, the accuracy of detecting the falling of the user is improved.
[0101] The specific process can be referred to Figure 19. First, the processing unit 41 obtains the value A1 of the pressure sensing unit 42 and the value A2 of the posture detecting unit 44. The smaller the value of A1, the greater the pressure generated by the user, and the user has a behavior of leaving the ground. The greater the value of A2, the greater the angle between the shoe sole and the horizontal direction, and the user has a behavior of falling down. When it is detected that the value of A1 is less than the pressure threshold value and the value of A2 is greater than the angle threshold value, the processing unit 41 determines that the current user has fallen down and activates the communication unit 45 to send warning information to the mobile terminal.
[0102] In other embodiments, only the pressure sensing unit 42 or only the posture detecting unit 44 can be used to detect the falling of the user. For example, when only the value of A1 is less than the pressure threshold value or only the value of A2 is greater than the angle threshold value, the communication unit 45 is activated to send warning information to the mobile device.
[0103] The shoe sole of the present application is provided with a 3D forming groove or a 3D forming protrusion, so that when the user plays in the snow, the corresponding animal model can be formed on the snow, such as a pig, a bear, a penguin, Santa Claus, etc. Moreover, by arranging a color storage cavity, the model can be colored, which has high interest.
[0104] By arranging the processing unit 41, the pressure detecting unit 42 and the sound generating unit 43 in the shoe sole body, the user can be reminded that the model is completed during the forming process, the user is reminded to move away the model to make toys, or a sound matched with the type of the model is emitted, which further improves the interest.
[0105] Meanwhile, by setting the posture detection device 44, the state detection of the sole on the user is more accurate. On the one hand, it can be detected whether the user is shaping or walking normally, so as to judge whether the corresponding sound needs to be issued, and improve the user experience. On the other hand, it can detect the user's fall and issue a warning to the electronic device through the communication module 45.
[0106] The above only describes the preferred embodiments of the present application and is not used to limit the present application. For those skilled in the art, the present application can have various modifications and changes. Any modification, equivalent replacement, improvement, etc. within the spirit and principles of the present application shall be included in the protection scope of the present application.
Claims
1. A model making toy in which a 3D model can be traced, comprising a toy shoe sole main body, characterized in that, The upper surface of the toy shoe sole body is provided with a shoe tread surface, and the bottom surface of the toy shoe sole body is provided with a ground contact surface; the ground contact surface is provided with a 3D stereoscopic forming groove; the toy shoe sole body is provided with a connecting structure for assembling the model making toy to the bottom of the shoe.
2. The modeling toy of claim 1, wherein, The shoe tread surface is integrally formed with a plurality of friction beans, which are arranged at intervals on the shoe tread surface.
3. The modeling toy of claim 1, wherein the modeling toy is capable of creating a 3D model by stepping on the modeling toy. The connecting structure includes a blocking protrusion arranged on the shoe tread surface, and the blocking protrusion is provided with a belt hole.
4. The modeling toy of claim 3, wherein the modeling toy is capable of creating a 3D model by the user's foot. The blocking protrusion includes a first protrusion at one end of the toy shoe sole body and two second protrusions at the other end of the toy shoe sole body, the first protrusion is provided with a first belt hole, and the second protrusion is provided with a second belt hole.
5. The modeling toy of claim 1, wherein the modeling toy is capable of creating a 3D model by stepping. The ground contact surface is provided with a plurality of friction grooves, which are arranged at intervals on the ground contact surface.
6. The modeling toy of claim 1, wherein, The inside of the toy shoe sole body is provided with a color storage cavity, and the 3D stereoscopic forming groove is provided with a connecting through hole, which is in communication with the color storage cavity.
7. The modeling toy of claim 6, wherein the modeling toy is capable of creating a 3D model by stepping. The shoe tread surface is provided with a flow guide slope, and the flow guide slope is provided with a liquid inlet connected to the color storage cavity.
8. The modeling toy of claim 1, wherein, The inside of the toy shoe sole body is provided with a pressure sensing unit and a sound generating unit for reminding the completion of the 3D stereoscopic model.
9. A method for stepping out a 3D stereoscopic model, applied to the model making toy capable of stepping out a 3D stereoscopic model according to any one of claims 1-8, the method comprising the following steps: abutting step: abutting the 3D stereoscopic forming groove with the forming material; forming step: applying forming pressure to the shoe tread surface to move the shoe sole body towards the forming material, so that the forming material forms a model in the 3D stereoscopic forming groove; demolding step: moving the shoe sole body away from the forming material to expose the model.
10. The method of claim 9, wherein, The forming step includes a shaping step and a treading step; In the shaping step, an acting force is applied to the shoe tread surface, and the shoe sole body moves towards the forming material, so that the forming material fills into the 3D stereoscopic forming groove; In the treading step, the acting force is continuously applied to the shoe tread surface, so that the 3D stereoscopic forming groove presses the forming material to form a model.
11. The method of claim 10, wherein, The inside of the toy shoe sole body is provided with a color storage cavity, and the treading step further includes a coloring process, in which the color storage cavity adds color to the model.
12. The method of claim 9, wherein, The toy shoe sole body is provided with a pressure sensor and a sound generating unit; the pressure sensor is used to detect the value of the forming pressure, and when the value of the forming pressure is greater than a set threshold, the sound generating unit emits a reminder sound.
13. A model making toy in which a 3D model can be traced, comprising a toy shoe sole body, characterized in that, The upper surface of the toy shoe sole body is provided with a shoe tread surface, and the bottom surface of the toy shoe sole body is provided with a ground contact surface; the ground contact surface is provided with a 3D stereoscopic forming groove; the toy shoe sole body is provided with a connecting structure for assembling the model making toy to the bottom of the shoe.
14. The model making toy in which a 3D model can be traced according to claim 13, wherein The connecting structure includes a blocking protrusion arranged on the shoe tread surface, and the blocking protrusion is provided with a belt hole.
15. A method for creating a 3D model by stepping, applied to the model making toy capable of creating a 3D model by stepping according to claim 13 or claim 14, the method comprising the following steps: abutting step: abutting the 3D modeling protrusion against the modeling material; molding step: applying a molding pressure to the shoe tread to move the shoe body towards the modeling material, so that the 3D modeling protrusion forms a model in the modeling material; demolding step: moving the shoe body away from the modeling material to expose the model.
16. The method of claim 15, wherein, The molding step comprises a shaping step and a stepping-in step; In the shaping step, an acting force is applied to the shoe tread, and the shoe body moves towards the modeling material, so that the 3D modeling protrusion is embedded in the modeling material; In the stepping-in step, the acting force is continuously applied to the shoe tread, so that the 3D modeling protrusion presses the modeling material to form the model.
17. The method of claim 15, wherein, The inside of the toy shoe body is provided with a color storage cavity, and the stepping-in step further comprises a coloring process, in which the color storage cavity adds color to the model.
18. The method of claim 15, wherein, The toy shoe body is provided with a pressure sensor and a sound emitting unit; the pressure sensor is used to detect the value of the molding pressure, and when the value of the molding pressure is greater than a set threshold, the sound emitting unit emits a reminder sound.
Citation Information
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