Intelligent ceramic cup

By installing a detachable display assembly within the interlayer of the smart ceramic cup and securing it with clamping components, the problem of the display screen being prone to getting dirty and detaching is solved, achieving stability and a clear display effect.

CN223817302UActive Publication Date: 2026-01-23ZHONGKE CHANGBAN INTELLIGENT (JIANGSU) TECH CO LTD
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Patent Information

Application Number
CN202520754685.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-18
Publication Date
2026-01-23
Estimated Expiration
2035-04-18

AI Technical Summary

Technical Problem

The display screen of existing smart water bottles is directly exposed to the external environment, making it easy to get dirty and difficult to clean, and it is not securely fixed and is prone to falling off.

Method used

A smart ceramic cup has been designed, in which the display screen assembly is detachably installed in the interlayer of the cup body and secured by a clamping component. Combined with the ceramic cup body, this achieves isolation, protection, and stable installation of the display screen.

Benefits of technology

It improves the installation stability and operational stability of the display screen, avoids the dirt problems caused by direct exposure of the display screen, and ensures clear display through the casing, thus enhancing the user experience.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to an intelligent ceramic cup. The intelligent ceramic cup comprises a cup body, a display screen assembly and a pressing piece. The cup body comprises an inner container, a shell and a bottom cover. The inner container is provided with a cavity with an opening in one end, the inner container is arranged in the cavity of the shell, and the opening end of the inner container is fixedly connected with the shell; a cavity is formed between the inner container and the shell to form an interlayer; the bottom cover is arranged at the bottom of the shell to cover the interlayer; the display screen assembly is detachably arranged in the interlayer, and the display end of the display screen assembly faces the shell. The pressing piece is arranged between the display screen assembly and the inner container so as to abut against the display screen assembly. And the cup body is made of ceramic. The display screen assembly is placed between the shell and the inner container of the cup body, the display screen assembly is isolated and protected, meanwhile, the installation firmness and the working stability of the display screen assembly are improved, and it can be ensured that light emitted by the display screen assembly penetrates through the shell to be displayed outwards under the condition that the cup body is made of the ceramic material.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of cups, and in particular to an intelligent ceramic cup. BACKGROUND

[0002] With the increasing living standards, intelligent cups with display screens that can emit light or display patterns and information to consumers have gradually entered the market. At present, the display screen is generally directly arranged on the outer wall of the cup. Since the display screen is directly exposed to the environment, it cannot be isolated and protected during daily use, and the display screen is easy to get dirty and difficult to clean. Moreover, if the display screen is not firmly fixed, it is easy to fall off the cup. SUMMARY

[0003] Therefore, the present application provides an intelligent ceramic cup.

[0004] According to an aspect of the present application, an intelligent ceramic cup is provided, comprising a cup body, a display screen assembly, and a pressing member.

[0005] The cup body comprises an inner container, an outer shell, and a bottom cover. The inner container has a cavity with one open end. The inner container is arranged inside the cavity of the outer shell, and the open end of the inner container is fixedly connected to the outer shell. A cavity is arranged between the inner container and the outer shell to form a sandwich layer. The bottom cover is arranged at the bottom of the outer shell to cover the sandwich layer.

[0006] The display screen assembly is detachably arranged in the sandwich layer, and the display end of the display screen assembly faces the outer shell.

[0007] The pressing member is arranged between the display screen assembly and the inner container to tightly press the display screen assembly.

[0008] The material of the cup body is ceramic.

[0009] In a possible implementation, the display screen assembly comprises an LED display screen and a heat dissipation layer.

[0010] The LED display screen has a curved surface structure, and the heat dissipation layer is arranged on the back of the LED display screen.

[0011] In a possible implementation, the display screen assembly further comprises a heat conduction layer.

[0012] The heat conduction layer is arranged between the heat dissipation layer and the LED display screen.

[0013] In a possible implementation, the material of the heat dissipation layer is copper foil.

[0014] In a possible implementation, an adhesive layer is arranged between the outer shell, and the bottom cover is adapted to be connected to the outer shell through the adhesive layer.

[0015] In a possible implementation, the bottom of the bottom cover is provided with an anti-skid pad.

[0016] In a possible implementation, the bracket is located between the inner container and the bottom cover; and is suitable for supporting the main control board.

[0017] In a possible implementation, the outer side of the shell is provided with a handle.

[0018] In a possible implementation, the main body of the pressing member is in a ring structure, the inner side of the pressing member is sleeved with the inner container, and the outer side of the pressing member contacts the display screen assembly.

[0019] In a possible implementation, the material of the pressing member is foam.

[0020] Beneficial effects: the interlayer between the shell and the inner container of the cup body is suitable for placing the display screen assembly, the light-emitting surface of the display screen assembly faces the shell of the cup body to emit light, display patterns and information through the outer wall for the user to watch at any time. The bottom cover is suitable for sealing the interlayer to prevent the display screen assembly from falling out of the interlayer. The pressing member in the interlayer is suitable for pressing the display screen assembly on the outer wall, effectively reducing the gap between the display screen assembly and the outer wall to improve the effect of outward light emission and display, and further improving the position stability of the display screen assembly. The overall structure of the present application is compact and has excellent integration effect. The display screen assembly is placed between the shell and the inner container of the cup body, which realizes isolation and protection of the display screen assembly while improving the installation firmness and working stability of the display screen assembly. In addition, the ceramic material used in the cup body can ensure that the light emitted by the display screen assembly is displayed outward through the shell, so that the user can clearly watch.

[0021] Other features and aspects of the present application will become apparent from the following detailed description of the example embodiments, taken in conjunction with the accompanying drawings. BRIEF DESCRIPTION OF DRAWINGS

[0022] The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate example embodiments, features, and aspects of the present application and serve to explain the principles of the present application.

[0023] Figure 1 An exploded view of the structure of the smart ceramic water cup according to the embodiment of the present application is shown;

[0024] Figure 2 A cross-sectional view of the smart ceramic water cup according to the embodiment of the present application is shown;

[0025] Figure 3 A main structure view of the smart ceramic water cup according to the embodiment of the present application is shown;

[0026] Figure 4 A partial structure view of the smart ceramic water cup according to the embodiment of the present application is shown;

[0027] Figure 5This diagram illustrates the main structural structure of a display screen assembly according to an embodiment of this application.

[0028] Figure 6 This diagram illustrates the main structure of an LED display screen according to an embodiment of this application.

[0029] Figure 7 A partial structural diagram of the smart ceramic water cup according to an embodiment of this application is shown;

[0030] Figure 8 This diagram shows the main structural structure of the bracket according to an embodiment of this application;

[0031] Figure 9 This diagram shows the main structural structure of the bracket according to an embodiment of this application;

[0032] Figure 10 This diagram illustrates the connection between the bracket and the main control board according to an embodiment of this application.

[0033] Figure 11 This diagram illustrates the connection between the bracket, main control board, and battery according to an embodiment of this application.

[0034] Figure 12 This diagram shows the main structural structure of the bottom cover according to an embodiment of this application;

[0035] Figure 13 A partial view of the smart ceramic water cup according to an embodiment of this application is shown;

[0036] Figure 14 The bottom view of the smart ceramic water cup according to an embodiment of this application is shown;

[0037] Figure 15 A side view of the smart ceramic water cup according to an embodiment of this application is shown.

[0038] Cup body 100, clamping part 230, inner liner 110, outer shell 120, bottom cover 300, LED display screen 200, heat dissipation layer 220, heat conduction layer 210, FPC flexible board 212, LED lamp bead 211, connecting piece 214, pressure bearing piece 215, main control board 800, handheld part 213, disassembly hole 221, adhesive layer 320, bracket 400, mounting plate 430, suspension part 450, support leg 420, limiting part 440, antenna baffle 470, temperature sensing clamping part 500, heat insulation layer 410, bolt fixing cylinder 460, heat insulation layer mounting groove 432, bolt fixing seat 330, battery 700, charging ring positive terminal 710, charging ring negative terminal 720, electrode hole 360, power switch button 820, anti-slip pad 310. Detailed Implementation

[0039] Various exemplary embodiments, features, and aspects of this application will now be described in detail with reference to the accompanying drawings. The same reference numerals in the drawings denote elements that have the same or similar functions. Although various aspects of the embodiments are shown in the drawings, they are not necessarily drawn to scale unless specifically indicated otherwise.

[0040] It should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," and "circumferential" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this application or to simplify the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0041] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.

[0042] The term “exemplary” as used herein means “serving as an example, embodiment, or illustration.” Any embodiment illustrated herein as “exemplary” is not necessarily to be construed as superior to or better than other embodiments.

[0043] Furthermore, to better illustrate this application, numerous specific details are provided in the following detailed embodiments. Those skilled in the art should understand that this application can be implemented without certain specific details. In some instances, methods, means, components, and circuits well-known to those skilled in the art have not been described in detail in order to highlight the main points of this application.

[0044] Figure 1 An exploded view of the structure of the smart ceramic water cup according to an embodiment of this application is shown; Figure 2 A cross-sectional view of a smart ceramic water cup according to an embodiment of this application is shown; Figure 3 This diagram shows the main structure of the smart ceramic water cup according to an embodiment of this application; as shown... Figure 1As shown, this smart ceramic cup includes: a cup body 100, a display screen assembly, and a clamping member 230; the cup body 100 includes: an inner liner 110, an outer shell 120, and a bottom cover 300; the inner liner 110 has a cavity with an opening 111 at one end, and the inner liner 110 is disposed inside the cavity of the outer shell 120 and the opening end of the inner liner 110 is fixedly connected to the outer shell 120; a cavity is provided between the inner liner 110 and the outer shell 120 to form a sandwich 140; the bottom cover 300 is disposed at the bottom of the outer shell 120 to cover the sandwich 140; the display screen assembly is detachably disposed in the sandwich 140, and the display end of the display screen assembly faces the outer shell 120; the clamping member 230 is disposed between the display screen assembly and the inner liner 110 to press the display screen assembly tightly; the cup body 100 is made of ceramic.

[0045] It should be noted that the inner liner 110 of the cup body 100 is suitable for holding drinking water or various beverages, and is suitable for pouring drinking water or various beverages into the inner liner 110 through the opening 111 at the top of the inner liner 110; the interlayer 140 between the outer shell 120 of the cup body 100 and the inner liner 110 is suitable for placing the display screen assembly. The display end of the display screen assembly faces the outer shell 120, that is, the light-emitting surface of the display screen assembly faces the outer shell 120 of the cup body 100 so that it can emit light, display patterns, and display information through the outer shell 120 for the user to view at any time. The bottom cover 300 is designed to seal the interlayer 140 to prevent the display screen assembly from falling out of the interlayer 140 and to improve the overall aesthetics of the cup body 100. The clamping member 230 inside the interlayer 140 is used to press the display assembly onto the outer shell 120, effectively reducing the gap between the display assembly and the outer shell 120 to improve the outward light emission effect, while further improving the positional stability of the display assembly; and under the action of the clamping member 230, the connection strength between the cup wall and the inner liner 110 can be improved to a certain extent. In summary, the overall structure of this application is compact and the integration effect is excellent. By placing the display assembly between the outer shell 120 and the inner liner 110 of the cup body 100, it avoids direct exposure to the external environment, achieving isolation and protection for the display assembly while improving the installation firmness and working stability of the display assembly, preventing the display assembly from falling off the cup body 100, and the ceramic material used in the cup body 100 ensures that the light emitted by the display assembly can be displayed outward through the outer shell 120, making it easy for the user to view clearly.

[0046] In one possible implementation, such as Figure 2 and Figure 3As shown, the inner liner 110 has a cylindrical structure with a circular opening 111 at the top and a hollow cavity inside; the outer shell 120 has a frustum structure with openings at both ends and a hollow cavity inside; the inner liner 110 is located inside the cavity of the outer shell 120, the opening end of the inner liner 110 matches the opening end of the outer shell 120, and the opening end of the inner liner 110 and the opening end of the outer shell 120 are integrally formed.

[0047] Preferably, the opening end of the inner liner 110 matches and is integrally connected with the small-diameter opening end of the outer shell 120, that is, the small-diameter side of the outer shell 120 is the water inlet end, and the large-diameter side of the outer shell 120 is the bottom surface, which is suitable for contacting tabletops, etc.

[0048] In one possible implementation, the maximum width of the interlayer 140 (i.e., the maximum distance between the inner liner 110 and the outer shell 120) is in the range of 10-15 mm.

[0049] In one possible implementation, such as Figure 1 As shown, the display assembly includes an LED display 200 and a heat dissipation layer 220. The LED display 200 has a curved structure, and the heat dissipation layer 220 is attached to the back of the LED display 200. It should be noted that the curved structure of the LED display 200 is designed to fit the shape of the outer shell 120 of the cup body 100, allowing the LED display 200 to be smoothly inserted into the interlayer 140 and fit snugly against the outer shell 120. Similarly, the heat dissipation layer 220 is also curved to fit snugly against the back of the LED display 200. The heat dissipation layer 220 improves the heat dissipation efficiency of the LED display 200, ensuring that the LED display 200 will not experience performance issues due to localized overheating during long-term operation. It also keeps the surface temperature of the LED display 200 below 40°C, extending its lifespan and improving safety during human-computer interaction, preventing user discomfort from contact with overheated surfaces.

[0050] In one possible implementation, the display assembly further includes a thermally conductive layer 210; the thermally conductive layer 210 is disposed between the heat dissipation layer 220 and the LED display 200. It should be noted that the thermally conductive layer 210 is a heat-conducting medium and serves as a connecting bridge between the heat dissipation layer 220 and the LED display 200. By completely adhering to the space between the LED display 200 and the heat dissipation layer 220, it effectively fills the tiny gap between them, ensuring that the heat from the LED display 200 can be quickly and effectively transferred to the heat dissipation layer 220.

[0051] In one possible implementation, the main body of the heat dissipation layer 220 is a quadrilateral sheet structure, and the thickness of the heat dissipation layer 220 ranges from 0.3 to 1.0 mm. Preferably, the optimal thickness of the heat dissipation layer 220 is 0.5 mm.

[0052] Furthermore, the heat dissipation layer 220 is made of copper foil or aluminum, preferably copper foil.

[0053] In one possible implementation, the thickness of the thermally conductive layer 210 ranges from 0.3 to 0.5 mm. Preferably, the optimal thickness of the thermally conductive layer 210 is 0.3 mm.

[0054] Furthermore, the thermal conductive layer 210 is made of thermally conductive silicone grease.

[0055] In one possible implementation, such as Figure 5 As shown, the LED display screen 200 includes: an FPC flexible board 212 and two or more LED beads 211; the two or more LED beads 211 are arranged in an array on one side of the FPC flexible board 212, and the two or more LED beads 211 are connected in parallel. Figure 6 As shown, the main body of the FPC flexible board 212 has a fan-shaped sheet structure; a touch part is provided on one side of the FPC flexible board 212.

[0056] Furthermore, two or more LED beads 211 are arranged in a fan-shaped array on one side of the FPC flexible board 212, and the distance between any two adjacent rows of LED beads 211 is the same, that is, each row of LED beads 211 is evenly arranged along the width direction of the FPC flexible board 212, and the distance between any two adjacent LED beads 211 in each row is the same, that is, the beads in each row are evenly arranged along the length direction of the FPC flexible board 212; the distance between two adjacent columns of LED beads 211 gradually decreases from bottom to top along the width direction of the FPC flexible board 212, that is, the distance between any two adjacent LED beads 211 in the upper row is smaller than the distance between any two adjacent LED beads in the lower row. In summary, the circumference of the outer casing 120 is directly proportional to the spacing of the LED beads 211 in each row. Since the main body of the outer casing 120 has a frustum structure, as the circumference of the outer casing 120 gradually increases from top to bottom, the spacing of the LED beads 211 in the next row needs to be greater than the spacing of the LED beads 211 in the previous row. This setting is suitable for adapting to the shape of the FPC flexible board 212 and the shape of the outer casing 120, which can improve the uniformity of the distribution of all LED beads 211, improve the display effect and aesthetics of the pattern, and avoid the phenomenon of local clustering of LED beads 211 on the FPC flexible board 212, which would affect the overall aesthetics of the pattern display.

[0057] The spacing between any two adjacent LED beads 211 in the next row is 0.03mm greater than the spacing between any two adjacent LED beads 211 in the previous row. That is, from bottom to top, the spacing between the LED beads 211 in each row increases by 0.03mm.

[0058] The distance between the two rows of LED beads 211 is 3-3.5mm.

[0059] Furthermore, each LED bead 211 is attached to the FPC flexible board 212 using SMT surface mount technology.

[0060] In one possible implementation, there are 512 LED beads 211 arranged in a 16-row, 32-column layout, with a distance of 3.5mm between the upper and lower rows of LED beads 211.

[0061] In one possible implementation, such as Figure 6 As shown, the touch unit includes a connecting piece 214 and a pressure plate 215. The main bodies of both the connecting piece 214 and the pressure plate 215 are rectangular sheet structures. The side of the FPC flexible board 212 is fixedly connected to one side of the length of the connecting piece 214, and the opposite side of the connecting piece 214 is connected to one side of the length of the pressure plate 215. Under the connecting action of the connecting piece 214, the pressure plate 215 protrudes relative to the FPC flexible board 212 so that the pressure plate 215 can be tightly attached to the housing 120. When a person touches the housing 120 to issue a command, the pressure plate 215 on the inside of the housing 120 can be sensitively triggered. This is suitable for changing the content information displayed by the display screen component by triggering the touch unit.

[0062] In one possible implementation, two grooves are provided on the side of the pressure plate 215 away from the connecting plate 214, which can improve the sensitivity of the pressure plate 215 when triggered and prevent the pressure plate 215 from cracking during installation.

[0063] Furthermore, the connecting piece 214 and the pressure-bearing piece 215 are made of copper.

[0064] The FPC flexible board is connected to the main control board 800 via five wires to provide power and ensure that the LED beads 211 can light up normally, and to enable signal transmission between the FPC flexible board and the main control board 800. One end of each of the five wires is soldered to the FPC flexible board, and the other end of each wire is connected to a 5-pin terminal block on the main control board 800.

[0065] In one possible implementation, such as Figure 5As shown, a rectangular sheet-like handheld part 213 protrudes from one side of the FPC flexible board 212. The handheld part 213 and the touch part are respectively disposed on adjacent sides of the FPC flexible board 212, and the handheld part 213 is opposite to the relief groove 222 of the heat dissipation layer 220. It should be noted that when the LED display screen 200 needs to be inspected and maintained, in order to easily separate the LED display screen 200 from the heat dissipation layer 220, the LED display screen 200 can be torn off through the handheld part 213.

[0066] Furthermore, the relief groove 222 of the heat dissipation layer 220 is formed on one side of the body length of the heat dissipation layer 220.

[0067] In one possible implementation, such as Figure 5 As shown, multiple disassembly holes 221 are provided on both opposite sides of the heat dissipation layer 220, and the multiple disassembly holes 221 are evenly arranged along the side of the heat dissipation layer 220. These holes are suitable for removing the display assembly from the interlayer 140 of the cup body 100 through the disassembly holes 221. Maintenance personnel can use hooks to hold the disassembly holes 221, and then smoothly remove the display assembly from the interlayer 140 of the cup body 100 by rotating and pulling simultaneously. The design of the disassembly holes 221 makes the disassembly process of the display assembly simpler and can be completed smoothly without damaging the display assembly and the cup body 100.

[0068] Furthermore, three disassembly holes 221 are provided on each of the opposite sides of the heat dissipation layer 220; the diameter of the disassembly hole 221 ranges from 1 to 5 mm; preferably, the diameter of the disassembly hole 221 is 4 mm.

[0069] In one possible implementation, such as Figure 1 and Figure 2 As shown, the main body of the clamping member 230 has a ring-shaped structure. The inner sleeve 110 is fitted inside the clamping member 230, and the outer side of the clamping member 230 contacts the display screen assembly. Furthermore, the clamping member 230 has an opening, the opening of which can be adjusted to facilitate removal or installation from the inner sleeve 110. It should be noted that the circumference of the clamping member 230 is greater than the maximum circumference of the FPC flexible board 212 of the LED display screen 200. The clamping member 230 not only ensures the stable installation of the display screen assembly, but also, because the clamping member 230 is ring-shaped and has a sufficiently large circumference, allows the LED beads 211 of the curved structure LED display screen 200 to fit tightly against the inner wall of the outer casing 120, reducing the gap between the LED beads 211 and the outer casing 120, thereby improving display clarity.

[0070] Preferably, the clamping component 230 is made of foam; it should be noted that foam has a heat insulation effect, which can prevent the heat of the water in the inner tank 110 from being transferred to the display component, so as to ensure that the display component works in a normal temperature environment.

[0071] Furthermore, two clamping members 230 are provided, and the two clamping members 230 are stacked in the interlayer 140; they are suitable for jointly clamping the display screen assembly. The arrangement of the two clamping members 230 further increases the fit between the LED display screen 200 and the housing 120; ensuring that all LED beads 211 on the LED display screen 200 are pressed towards the housing 120, avoiding the phenomenon that some LED beads 211 are not properly fitted to the housing 120, which would lead to a decrease in light transmittance and display brightness.

[0072] Furthermore, the distance between the edges of the two clamping members 230 is in the range of 5-10mm; the ratio of the area of ​​the LED display screen 200 clamped by the two clamping members 230 to the total area of ​​the LED display screen 200 is 1:2.

[0073] In one possible implementation, such as Figure 7 As shown, an adhesive layer 320 is provided between the outer casing 120 and the bottom cover 300, and the bottom cover 300 is adapted to be connected to the outer casing 120 via the adhesive layer 320. It should be noted that the adhesive layer 320 is used to securely connect the bottom cover 300 to the outer casing 120, preventing the bottom cover 300 from detaching from the outer casing 120. Furthermore, as... Figure 12 As shown, the main body of the bottom cover 300 is a disc structure. An annular groove 321 is provided at the top edge of the bottom cover 300. The adhesive layer 320 is located in the annular groove 321. The bottom of the outer shell 120 is pressed and contacted with the adhesive layer 320.

[0074] Furthermore, the adhesive layer 320 is made of sealant; before assembly, the sealant is injected into the annular groove 321 of the bottom cover 300, and then the outer shell 120 is placed on the bottom cover 300 and pressed tightly.

[0075] In one possible implementation, a bracket 400 is also included; the bracket 400 is located between the inner liner 110 and the bottom cover 300; it is suitable for supporting the main control board 800. Further, a distance is provided between the bottom surface of the inner liner 110 and the bottom cover 300 to form a placement space; the bracket 400 is placed on the top surface of the bottom cover 300, and the main control board 800 is suspended below the bracket 400. It should be noted that the bracket 400 not only enables the placement and fixation of the main control board 800 but also isolates the main control board 800 from the inner liner 110.

[0076] Furthermore, the distance between the bottom surface of the inner liner 110 and the bottom cover 300 ranges from 10 to 25 mm, with the optimal value being 15 mm.

[0077] In one possible implementation, such as Figure 9As shown, the bracket 400 includes: a mounting plate 430, two or more suspension members 450, and two or more support legs 420; the main body of the mounting plate 430 is circular, and a clearance hole 431 is provided in the center of the mounting plate 430; two or more suspension members 450 are provided at the bottom of the mounting plate 430, and the two or more suspension members 450 are arranged sequentially along the circumference of the mounting plate 430; two or more support legs 420 are provided at the bottom of the mounting plate 430, and the two or more support legs 420 are arranged sequentially along the circumference of the mounting plate 430. It should be noted that the support legs 420 are used to support and raise the mounting plate 430, so that the mounting plate 430 is placed stably on the bottom cover 300, and to make way for the main control board 800 below the mounting plate 430; the suspension members 450 are used to connect the main control board 800, so that the main control board 800 is placed stably below the mounting plate 430 through the suspension members 450.

[0078] Furthermore, such as Figure 9 As shown, the main body of the suspension component 450 is a block structure with an "L" shaped cross-section. One end of the suspension component 450 is fixedly connected to the mounting plate 430, and the other end of the suspension component 450 is suitable for placing the main control board 800.

[0079] Furthermore, there are two suspension components 450, which are arranged opposite to each other. The two suspension components 450 are suitable for hanging and placing the main control board 800 on both sides.

[0080] In one possible implementation, such as Figure 9 As shown, the main body of the support leg 420 has a sheet-like structure, and each support leg 420 has a U-shaped first contact member 421 protruding from its outer side wall, such as... Figure 2 As shown, the bottom surface of the first contact 421 is adapted to contact the bottom inner wall of the outer shell 120. Under the action of the first contact 421, the contact between the support 400 as a whole and the outer shell 120 of the cup body 100 can be more stable, so as to avoid the support leg 420 from colliding with the outer shell 120.

[0081] Furthermore, there are eight support legs 420 in total, which are evenly arranged along the circumference of the mounting plate 430 at the bottom edge of the mounting plate 430.

[0082] In one possible implementation, such as Figure 7 and Figure 8 As shown, the top surface of the mounting plate 430 is provided with two or more limiting members 440, which are arranged sequentially along the circumference of the mounting plate 430. The main body of the two or more limiting members 440 is a sheet-like structure, suitable for surrounding the outer side of the inner liner 110. Each limiting member 440 has a second contact member 441 protruding from the side facing the inner liner 110. The second contact member 441 contacts the outer wall of the inner liner 110 to avoid collision and friction between the bracket 400 and the inner liner 110.

[0083] Furthermore, there are four limiting members 440 in total, which are evenly distributed along the circumference of the mounting plate 430 at the top edge of the mounting plate 430.

[0084] In one possible implementation, such as Figure 8 As shown, the bracket 400 also includes an antenna baffle 470; the antenna baffle 470 is vertically disposed at the top edge of the mounting plate 430, and is used to limit the antenna 600 of the main control board 800 between the housing 120 and the antenna baffle 470. The function of the antenna 600 of the main control board 800 is to enable the main control board 800 to connect with the backend server, thereby enabling communication and interaction with the mobile phone.

[0085] In one possible implementation, such as Figure 7 and Figure 8 As shown, a temperature-sensing clamping part 500 is provided in the clearance hole 431 at the center of the mounting plate 430, and the temperature-sensing clamping part 500 has a through groove. The temperature sensor is located at the center of the bottom outer side of the inner tank 110, and is suitable for detecting the temperature of the water inside the inner tank 110. The temperature sensor is connected to the temperature detection pad of the main control board 800 through a thermistor. The temperature-sensing clamping part 500 is located between the main control board 800 and the temperature sensor, and is in close contact with the temperature sensor to clamp the temperature sensor towards the inner tank 110 to ensure the accuracy of the temperature measurement. The through groove in the temperature-sensing clamping part 500 is used to make way for the thermistor between the temperature sensor and the main control board 800.

[0086] Furthermore, such as Figure 7 As shown, the main body of the temperature-sensing pressing part 500 is cylindrical, and the material of the temperature-sensing pressing part 500 is high-temperature resistant foam to ensure that the temperature sensor is always firmly attached to the bottom of the inner liner 110, but without transmitting the high temperature of the water inside the inner liner 110 to the main control board 800.

[0087] Preferably, the entire support 400 is made of polycarbonate (PC).

[0088] In one possible implementation, it also includes: a heat insulation layer 410; the heat insulation layer 410 is disposed on the bracket 400, which is suitable for preventing the temperature of the water inside the inner tank 110 from being transferred to the main control board 800, thus preventing the main control board 800 from burning out or being damaged due to operating in a high-temperature environment. Further, such as Figure 7 and Figure 8 As shown, the main body of the heat insulation layer 410 is a ring-shaped sheet structure; the top surface of the mounting plate 430 is provided with a heat insulation layer mounting groove 432; the heat insulation layer 410 matches the heat insulation layer mounting groove 432, and the heat insulation layer 410 is set in the heat insulation layer mounting groove 432.

[0089] Furthermore, the insulation layer 410 is made of foam, and the outer diameter of the insulation layer 410 ranges from 40 to 50 mm. Preferably, the outer diameter of the insulation layer 410 is 47 mm. The thickness of the insulation layer 410 is 2 mm.

[0090] In one possible implementation, such as Figure 9 As shown, the bottom surface of the mounting plate 430 is provided with two or more bolt fixing cylinders 460; the two or more bolt fixing cylinders 460 are arranged sequentially along the circumference of the mounting plate 430.

[0091] In one possible implementation, such as Figure 12 As shown, the bottom cover 300 is provided with two or more bolt fixing seats 330; the two or more bolt fixing seats 330 are arranged sequentially along the circumference of the bottom cover 300. Furthermore, the number of bolt fixing seats 330 is the same as the number of bolt fixing cylinders 460 on the bracket 400, and each bolt fixing seat 330 is arranged opposite to each bolt fixing cylinder 460.

[0092] In one possible implementation, such as Figure 11 As shown, the main control board 800 has two or more through holes 810 at its edge; the number of bolt fixing seats 330, bolt fixing sleeves 460, and through holes 810 are all the same and are arranged one-to-one. Bolts are suitable for sequentially passing through bolt fixing seats 330, through holes 810, and bolt fixing sleeves 460 and being threaded into bolt fixing sleeves 460, thereby securely mounting the bracket 400 on the bottom cover 300 and limiting the position of the main control board 800 between the bracket 400 and the bottom cover 300.

[0093] In one possible implementation, the bottom cover 300 has a device clearance groove 350 on the side facing the bracket 400; suitable for making way for electronic devices on the main control board 800.

[0094] In one possible implementation, the bottom cover 300 has four placement plates 340 on the side facing the bracket 400. The four placement plates 340 are arranged in pairs, opposite to each other, within the bottom cover 300 to support the battery 700. Each placement plate 340 is vertically provided with a limiting piece 341, which is suitable for contacting the battery 700. Under the action of the four limiting pieces 341, the battery 700 is limited, preventing displacement of the battery 700.

[0095] In one possible implementation, the bottom cover 300 has four electrode holes 360, and the terminals 711 of the positive terminal 710 of the charging ring and the terminals 721 of the negative terminal 720 of the charging ring are adapted to pass through the electrode holes 360 and enter the interior of the cup body 100.

[0096] like Figure 11As shown, a battery 700 is located below the main control board 800, and the battery 700 is placed on four mounting plates 340 of the bottom cover 300. The power generation terminal of the battery 700 is electrically connected to the main control board 800 via wires, thereby providing operating voltage to the main control board 800. Furthermore, the battery 700 is model 503040, and its voltage is 3.7V.

[0097] Furthermore, a layer of foam adhesive 730 is attached to both the top and bottom sides of the battery 700 to provide heat insulation and prevent the high temperature of the water inside the inner liner 110 from being conducted to the battery 700.

[0098] In one possible implementation, it also includes: a positive terminal 710 of the charging ring and a negative terminal 720 of the charging ring; such as Figure 13 As shown, the positive terminal 710 and the negative terminal 720 of the charging ring are concentrically located at the bottom of the bottom cover 300, with the positive terminal 710 located inside the negative terminal 720. Figure 11 As shown, the two terminals 711 of the positive terminal 710 of the charging ring and the two terminals 721 of the negative terminal 720 of the charging ring respectively pass through the electrode holes 360 of the bottom cover 300 and enter the interior of the cup body 100, and are electrically connected to the charging unit of the main control board 800 through wires to charge the battery 700.

[0099] Furthermore, the positive electrode 710 and the negative electrode 720 of the charging ring are made of brass plated with gold.

[0100] In one possible implementation, a power switch button 820 is located on the bottom of the bottom cover 300. The power switch button 820 is connected to a surface-mount switch on the main control board 800 via a power button cap 750. Pressing the power switch button 820 powers the main control board 800 on or off. It should be noted that the main control board 800 serves several purposes: maintaining connection with the backend server and mobile phone; acquiring usage information about the smart ceramic cup, such as water temperature; enabling various interactions between the user and the smart ceramic cup, such as displaying weather and slogans on the LED display screen 200; and further, the main control board 800 uses an ESP32-C3 chip.

[0101] In one possible implementation, the bottom cover 300 has a vent hole 380 and a keycap through hole 370 for the power button cap 750 to pass through, so that the bottom end of the power button cap 750 can contact the power switch button 820.

[0102] In one possible implementation, the bottom of the bottom cover 300 is provided with an anti-slip pad 310. For example... Figure 14 As shown, the main body of the anti-slip mat 310 is a circular sheet structure. The anti-slip mat 310 is bonded to the bottom cover 300 with double-sided adhesive. It is suitable for improving the friction of the bottom of the bottom cover 300, thereby ensuring the stability of the cup body 100 and achieving cushioning.

[0103] The anti-slip pad 310 has small holes at the positions corresponding to the vent holes 380 of the bottom cover 300 to facilitate ventilation. The round hole in the middle of the anti-slip pad 310 is designed to make way for the positive terminal 710 and the negative terminal 720 of the charging ring, ensuring that the bottom of the positive terminal 710 and the negative terminal 720 of the charging ring are exposed to the outside, which facilitates the connection of the positive terminal 710 and the negative terminal 720 of the charging ring to the external charging base.

[0104] Furthermore, the anti-slip mat 310 is made of silicone, which has a certain degree of softness, allowing the power switch button 820 to be pressed through the anti-slip mat 310.

[0105] In one possible implementation, a handle 130 is provided on the outer side of the outer shell 120 of the cup body 100. Further, the main body of the handle 130 is in the shape of a "Π", and the open end of the "Π" shape is fixedly connected to the outer shell 120 of the cup body 100. Preferably, the outer shell 120 and the handle 130 are integrally formed.

[0106] Preferably, the ratio of the length of the handle 130 to the overall height of the cup body 100 is 2:3.

[0107] In one possible implementation, the cup body 100 is made entirely of white ceramic, and the thickness of the outer shell 120 ranges from 1.5 to 2.5 mm. It should be noted that while glass has high transparency, it is prone to cracking at high temperatures. Ceramic, on the other hand, is manufactured at temperatures exceeding 1000 degrees Celsius, contains no lead or other harmful substances, and is safe to use. It is not only safe but also heat-resistant and has relatively good heat retention. However, since the light transmittance of ceramic is inversely proportional to its thickness, the thickness of the outer shell 120 will significantly affect the clarity of the patterns and text displayed on the LED display screen 200 within the interlayer 140. Furthermore, the thickness of the outer shell 120 also has a significant impact on the overall structural strength of the cup body 100. In this application, by setting the thickness of the outer shell 120 between 1.5-2.5mm, good light transmittance is ensured. At the same time, combined with the setting of the distance between adjacent LED beads 211 in the LED display screen 210, the LED display screen 200 can be clearly displayed on the outer shell 120 through the outer shell 120. At the same time, it can also ensure that the cup body 100 has strong structural strength and can effectively support the inner liner 110.

[0108] Preferably, the thickness of the outer shell 120 is 2mm.

[0109] Furthermore, the thickness of the inner liner 110 ranges from 1.5 to 3 mm.

[0110] Preferably, the thickness of the inner liner 110 is the same as the thickness of the outer shell 120, both being 2mm.

[0111] Furthermore, the optimal ratio of the height of the inner liner 110 to the height of the outer shell 120 is 4:5.

[0112] In one possible implementation, such as Figure 15 As shown, the main body of the outer shell 120 has a frustum-shaped structure. The tilt angle α (the angle between the generatrix of the frustum-shaped structure of the outer shell 120 and the horizontal plane) of the outer shell 120 ranges from 95° to 100°. It should be noted that by designing the tilt angle of the cup body 100, the tilt effect of a desktop display screen is simulated, ensuring that the displayed content is within the optimal viewing range when viewed by the user. This allows users to view the displayed content from a comfortable angle, whether standing or sitting, and to obtain the best display effect, improving the user experience. It avoids the need for users to adjust the viewing angle and eliminates the need for frequent adjustments to the angle of the cup body 100, making it easy to view the displayed content and improving ease of use. At the same time, the design of the tilt angle α, combined with the aesthetic elements of the cup body 100, makes the product both functional and visually appealing.

[0113] Preferably, the tilt angle α of the outer casing 120 is 95°.

[0114] The various embodiments of this application have been described above. These descriptions are exemplary and not exhaustive, nor are they limited to the disclosed embodiments. Many modifications and variations will be apparent to those skilled in the art without departing from the scope and spirit of the described embodiments. The terminology used herein is chosen to best explain the principles, practical application, or improvement of the technology in the market, or to enable others skilled in the art to understand the embodiments disclosed herein.

Claims

1. A smart ceramic cup, characterized in that, include: Cup body, display screen assembly and clamping components; The cup body includes: an inner liner, an outer shell, and a bottom cover; The inner liner has a cavity with one open end, and the inner liner is disposed inside the cavity of the outer shell and the open end of the inner liner is fixedly connected to the outer shell; a cavity is provided between the inner liner and the outer shell to form a sandwich layer; the bottom cover is disposed at the bottom of the outer shell to cover the sandwich layer. The display assembly is detachably disposed within the interlayer, with the display end of the display assembly facing the outer casing; The clamping member is disposed between the display assembly and the inner liner to clamp the display assembly; The cup body is made of ceramic.

2. The smart ceramic cup according to claim 1, characterized in that, The display assembly includes: an LED display screen and a heat dissipation layer; The LED display screen has a curved structure, and the heat dissipation layer is disposed on the back of the LED display screen.

3. The smart ceramic cup according to claim 2, characterized in that, The display assembly further includes: a heat-conducting layer; The thermally conductive layer is disposed between the heat dissipation layer and the LED display screen.

4. The smart ceramic cup according to claim 2, characterized in that, The heat dissipation layer is made of copper foil.

5. The smart ceramic cup according to claim 1, characterized in that, An adhesive layer is provided between the bottom cover and the outer shell, and the bottom cover is adapted to be connected to the outer shell through the adhesive layer.

6. The smart ceramic cup according to claim 1, characterized in that, The bottom of the cover is equipped with an anti-slip pad.

7. The smart ceramic cup according to claim 1, characterized in that, Also includes: A bracket; the bracket is located between the inner liner and the bottom cover, and is suitable for supporting the main control board.

8. The smart ceramic cup according to claim 1, characterized in that, The outer side of the casing is provided with a handle.

9. The intelligent ceramic cup according to claim 1, characterized in that, The main body of the clamping member has a ring-shaped structure, the inner liner is sleeved on the inner side of the clamping member, and the outer side of the clamping member contacts the display screen assembly.

10. The smart ceramic cup according to claim 9, characterized in that, The clamping component is made of foam.