Kettle lid assembly, liquid storage container and refrigerator

Through the plug-in and sliding cooperation between the movable part and the slide rail, automatic alignment of the liquid storage container cover is achieved, solving the problems of inconvenient operation and appearance damage in the prior art, and improving the user experience and appearance aesthetics.

CN223068303UActive Publication Date: 2025-07-08QINDAO HAIER REFRIGERATOR CO LTD +1
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422027138.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-20
Publication Date
2025-07-08
Estimated Expiration
2034-08-20

AI Technical Summary

Technical Problem

The cover body of the existing liquid storage container is inconvenient to cooperate with the pot body, and the user needs to be manually aligned, and the shaft connection may damage the appearance of the pot lid.

Method used

The plug-in and sliding cooperation between the movable parts and the slide rail is used to realize automatic alignment of the pot cover, avoid the rotating shaft structure, and design it into arc or wavy slide rails to ensure stability and aesthetics.

Benefits of technology

It improves the installation efficiency and user experience of the pot lid, ensures the appearance aesthetics, simplifies the operation process, and avoids foreign matter contamination.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223068303U_ABST
    Figure CN223068303U_ABST
Patent Text Reader

Abstract

The utility model discloses a kettle cover assembly, a liquid storage container and a refrigerator. The kettle cover assembly comprises an installation body and a first covering assembly. The installation body is used for being matched with the first opening of the kettle body in a covering mode. The mounting body is provided with a second opening communicating with the first opening and a sliding rail. The first covering assembly is provided with a movable part, and the movable part is in inserted sliding fit with the sliding rail, so that the first covering assembly comprises an opening state enabling the movable part to be located at the first position and a covering state enabling the movable part to be located at the second position. When the first covering assembly is in the open state, the first covering assembly does not cover the second opening. When the first covering assembly is in the covering state, the first covering assembly is matched with the second opening in a covering mode. According to the kettle cover assembly, the situation that a user needs to spend time and energy on aligning the first covering assembly and the kettle body in actual operation is avoided, and the user experience is optimized. Protruding parts such as a rotating shaft do not need to be arranged, and the appearance attractiveness of the kettle cover is guaranteed.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present application relates to the field of manufacturing liquid storage containers, and particularly to a kettle lid assembly, a liquid storage container, and a refrigerator. Background Art

[0002] In the related art, for the use of liquid storage containers, most of them are fixed by directly snap-fitting the lid and the kettle body. When the user needs to add liquid to the liquid storage container, the user needs to pick up the lid vertically by hand to separate the lid from the kettle body. After adding the liquid, the user needs to align the lid and the kettle body to achieve precise snap-fitting, which brings inconvenience to the user.

[0003] Some manufacturers have tried to use a rotating shaft to realize the rotational connection between the lid and the kettle body to avoid the alignment problem caused by snap-fitting. However, the rotating shaft will inevitably cause a certain convex damage to the original lid and affect the overall appearance. Summary of the Invention

[0004] The present application provides a kettle lid assembly, a liquid storage container, and a refrigerator. The kettle lid assembly in the present application is beneficial to avoid the time and effort required for the user to align the first lid assembly and the kettle body in actual operation, and optimizes the user experience. Moreover, there is no need to provide protruding parts such as a rotating shaft, which ensures the aesthetic appearance of the kettle lid.

[0005] The technical solution is as follows:

[0006] According to the first aspect of the embodiments of the present application, a kettle lid assembly is provided, including an installation body and a first lid assembly.

[0007] Among them, the installation body is used for lid-closure cooperation with the first opening of the kettle body. The installation body is provided with a second opening communicating with the first opening and a slide rail.

[0008] The first lid assembly is provided with a movable member, and the movable member is inserted and slidably matched with the slide rail, so that the first lid assembly includes an open state in which the movable member is in a first position and a lid-closure state in which the movable member is in a second position. When the first lid assembly is in the open state, the first lid assembly does not cover the second opening. When the first lid assembly is in the lid-closure state, the first lid assembly is in lid-closure cooperation with the second opening.

[0009] The technical solutions provided by the embodiments of the present application may include the following beneficial effects:

[0010] By using the insertion and sliding cooperation between the movable member and the slide rail, it is beneficial to realize the automatic alignment when the first lid assembly is closed, without the need for manual alignment by the user, improving the installation efficiency and optimizing the use experience. Further, there is no need to provide rotating parts such as a rotating shaft, avoiding the unevenness caused by the rotating shaft of the kettle lid assembly and ensuring the aesthetic appearance.

[0011] The technical solution will be further described as follows:

[0012] In one embodiment, the movable member switches at least between a first position and a second position, so that at least a partial movement trajectory of the movable member between the first position and the second position is in a curved structure.

[0013] In one embodiment, along the length direction in which the mounting body is mounted and fitted with the first covering assembly, the cross-section of the slide rail in the length direction is in an arc structure.

[0014] And / or, the movable member is inserted and slidably fitted with the slide rail, so that the first covering assembly is rotatably fitted with the mounting body, so that the first covering assembly includes a first position in which it is coveringly fitted with the mounting body and a second position in which it is separated from the mounting body by covering. The rotation angle formed by the first covering assembly between the first position and the second position is 60° to 140°.

[0015] In one embodiment, the mounting body is further provided with a first limiting member, and the first limiting member is arranged on the slide rail, so that when the movable member is in the second position, one end of the movable member abuts and cooperates with the first limiting member.

[0016] In one embodiment, the mounting body is further provided with a second limiting member. The second limiting member is telescopically movable on the slide rail, and the second limiting member includes a compressed state and an extended state. When the movable member is in the first position, the second limiting member is in the extended state, and the second limiting member abuts and fixes with one end of the movable member. When the movable member is in the second position, the movable member presses against the second limiting member to make the second limiting member in the compressed state.

[0017] In one embodiment, the second limiting member includes a bearing member and a spring mounted on the bearing member. The movable member is telescopically fitted with the spring through the bearing member, so that the spring drives the bearing member to switch between the extended state and the compressed state.

[0018] Or, the second limiting member includes a telescopic rubber. The movable member is telescopically fitted with the telescopic rubber, so that the telescopic rubber switches between the extended state and the compressed state.

[0019] In one embodiment, along the length direction in which the mounting body is mounted and fitted with the first covering assembly, the cross-section of the slide rail in the length direction is in a quasi-wave structure.

[0020] In one embodiment, the mounting body includes a first body and a second body. The first body is bent and connected to the second body. The second opening is arranged on the second body. The slide rail is embedded in the second body. There is a fitting gap between one side of the first covering assembly close to the first body and the first body, so that through the fitting gap, the movable member is rotationally and slidably fitted with the slide rail.

[0021] And / or, the pot lid assembly further comprises a sealing member, which is interference fit with the first cover assembly or the first opening, so that the first cover assembly is sealed and plug-fitted with the first opening through the sealing member.

[0022] In one embodiment, the pot lid assembly further comprises a second cover assembly. One of the second cover assembly and the mounting body is provided with a rotating shaft, and the other is provided with a rotational matching portion. The second cover assembly can be rotatably arranged on the mounting body through the rotational matching portion and the rotating shaft.

[0023] According to a second aspect of the embodiments of the present application, a liquid storage container is provided, comprising a kettle body and the kettle cover assembly in the above-mentioned embodiments, wherein the kettle body is provided with a flow guiding structure, a first opening, and a liquid storage cavity connected with the flow guiding structure and the first opening, the flow guiding structure is connected with the first opening, and the kettle cover assembly is fitted with the first opening. The liquid storage cavity is used to store liquid. The liquid is guided out of the liquid storage cavity through the flow guiding structure. In particular, along the length direction of the sliding fit between the movable part and the slide rail, the flow guiding structure is arranged on the side of the kettle body in the length direction away from the first covering assembly.

[0024] The technical solution provided by the embodiments of the present application may have the following beneficial effects:

[0025] The arrangement of the pot cover assembly in the above embodiment is conducive to realizing quick and convenient opening of the pot cover assembly of the liquid storage container, thereby improving the efficiency of injecting liquid. Furthermore, the arrangement of the flow guide structure can stabilize the flow rate of the fluid during the process of pouring out the liquid, thereby preventing the liquid from spilling.

[0026] According to a third aspect of an embodiment of the present application, a refrigerator is provided, comprising a cabinet assembly provided with a freezer compartment, a cabinet door assembly and the liquid storage container of the above embodiment, wherein the cabinet door assembly is hingedly cooperated with the cabinet assembly, and the liquid storage container is fixedly mounted on the cabinet door assembly or the cabinet assembly so that the liquid storage container is arranged in the freezer compartment.

[0027] The technical solution provided by the embodiments of the present application may have the following beneficial effects:

[0028] By setting the liquid storage container in the above embodiment, the lid assembly of the liquid storage container can be easily disassembled and assembled, and the efficiency of injecting liquid can be improved. Furthermore, by setting the liquid storage container in the freezer, the coldness of the refrigerator can be used to prepare frozen liquid, provide frozen drinks for users, and optimize the user experience.

[0029] It should be understood that the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the present application. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] The accompanying drawings here are incorporated into the specification and form a part of this specification, showing embodiments consistent with this application, and are used together with the specification to explain the principles of this application.

[0031] Figure 1 It is a schematic structural diagram of a refrigerator in an embodiment.

[0032] Figure 2 For Figure 1 It is a schematic structural diagram of the cooperation between the liquid storage container and the door assembly shown in

[0033] Figure 3 For Figure 2 It is a schematic structural diagram of the liquid storage container shown in

[0034] Figure 4 For Figure 3 It is a schematic structural diagram of the kettle body shown in

[0035] Figure 5 For Figure 3 It is a schematic structural diagram of the cooperation between the installation body and the kettle body shown in

[0036] Figure 6 For Figure 5 It is a top view of the installation body shown in

[0037] Figure 7 For Figure 3 It is a schematic diagram of the cooperation between the moving part and the slide rail in the first position in an embodiment shown in

[0038] Figure 8 For Figure 7 It is a schematic diagram of the cooperation between the moving part and the slide rail in the second position in the same embodiment shown in

[0039] Figure 9 For Figure 3 It is a schematic diagram of the cooperation between the moving part and the slide rail in the first position in another embodiment shown in

[0040] Figure 10 For Figure 9 It is a schematic diagram of the cooperation between the moving part and the slide rail in the second position in the same another embodiment shown in

[0041] Figure 11 For Figure 3 It is a schematic structural diagram of the installation body in an embodiment shown in

[0042] Figure 12 For Figure 3 It is a schematic structural diagram of the covering state of the second covering assembly in an embodiment shown in

[0043] Figure 13 For Figure 12 It is a schematic structural diagram of the installation structure of the rotating shaft part on the installation body shown in

[0044] Figure 14 is Figure 12 a schematic diagram of the open state of the second covering assembly shown in the figure.

[0045] Figure 15 is Figure 3 a schematic structural diagram of the stepped portion in an embodiment shown in the figure.

[0046] Figure 16 is Figure 15 a sectional view of the stepped portion in an embodiment shown in the figure. Description of the drawings:

[0048] 10. Refrigerator; 100. Liquid storage container; 110. Kettle lid assembly; 111. Mounting body; 1111. Second opening; 1112. Slide rail; 1113. First limiting member; 1114. Second limiting member; 1115. First body; 1116. Second body; 1117. Fitting gap; 1118. Rotating shaft member; 112. First covering assembly; 1121. Movable member; 120. Kettle body; 121. Flow guiding structure; 122. First opening; 123. Liquid storage cavity; 130. Sealing member; 140. Second covering assembly; 141. Rotational fitting portion; 200. Box body assembly; 210. Freezing compartment; 300. Door assembly of the refrigerator. Detailed Description of the Embodiments

[0049] Here, exemplary embodiments will be described in detail, and examples are shown in the drawings. When the following description refers to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with the present application. On the contrary, they are merely examples of devices and methods consistent with some aspects of the present application as detailed in the appended claims.

[0050] Currently, many users have the habit of drinking ice water, so they will put bottled water into the refrigerator 10 to obtain ice water for direct drinking. In the related art, in order to meet the needs of users, many manufacturers often provide a corresponding kettle in the refrigerator 10 to facilitate users to carry water in the kettle for freezing use. However, currently, for this configured kettle, most often use the method of manually clamping, covering, separating, and removing the entire lid assembly to achieve the injection and discharge of water volume. This method has relatively high positioning requirements for manual alignment and clamping fixation, and foreign objects are likely to enter through the overly large opening after removing the lid assembly, damaging the water quality.

[0051] Based on this, the present application provides a refrigerator 10, as Figures 1 to 2As shown, it includes a liquid storage container 100, a box body assembly 200, and a box door assembly 300. The box door assembly 300 is hinged to the box body assembly 200 to achieve the rotational opening and closing of the box door assembly 300. The liquid storage container 100 is fixedly arranged on the box door assembly 300.

[0052] Specifically, as Figures 3 to 4 shown, the liquid storage container 100 includes a kettle lid assembly 110 and a kettle body 120. The kettle body 120 is provided with a diversion structure 121, a first opening 122, and a liquid storage cavity 123 communicating with the diversion structure 121 and the first opening 122. The diversion structure 121 communicates with the first opening 122. The kettle lid assembly 110 is in a covering fit with the first opening 122. The liquid storage cavity 123 is used for storing liquid. The liquid is led out of the liquid storage cavity 123 through the diversion structure 121. The diversion structure 121 is located at one end of the kettle body 120 close to the first opening 122, and the upper edge of the diversion structure 121 also serves as a part of the edge of the first opening 122, so that the first opening 122 protrudes partially.

[0053] Among them, as Figures 5 to 8 shown, the kettle lid assembly 110 includes an installation body 111 and a first covering assembly 112.

[0054] The installation body 111 is used for covering and fitting with the first opening 122 of the kettle body 120. The installation body 111 is provided with a second opening 1111 communicating with the first opening 122 and a slide rail 1112.

[0055] The first covering assembly 112 is provided with a movable part 1121. The movable part 1121 is inserted and slidably fitted with the slide rail 1112, so that the first covering assembly 112 includes an open state in which the movable part 1121 is in the first position and a covering state in which the movable part 1121 is in the second position.

[0056] Specifically, a first through hole is provided on the installation body 111. Among them, the first through hole communicates with the slide rail 1112, so that the movable part is inserted into the slide rail 1112 through the first through hole and is slidably inserted and fitted in the slide rail 1112. When the first covering assembly 112 is in the open state, the first covering assembly 112 does not cover the second opening 1111. When the first covering assembly 112 is in the covering state, the first covering assembly 112 is in a covering fit with the second opening 1111. Along the length direction X of the sliding fit between the movable part 1121 and the slide rail 1112, the diversion structure 121 is arranged on one side of the kettle body 120 away from the first covering assembly 112 in the length direction X.

[0057] It can be understood that the lid assembly 110 in the present application can achieve at least three ways of accessing the lid. Specifically, first, through the cooperation of the first closing component 112 and the installation body 111, the lid can be opened by sliding fit. At this time, the second opening 1111 can cooperate with other water injection components to add the liquid to be frozen into the liquid storage cavity 123. The size of the second opening 1111 is smaller than that of the first opening 122. By performing water injection cooperation through the second opening 1111, it is beneficial to reduce the open area and avoid excessive foreign objects from entering the liquid storage cavity 123 to contaminate the water source. Further, the plug-in and sliding fit between the movable part 1121 and the slide rail 1112 can drive the limit movement of the first closing component 112, improve the movement stability of the first closing component 112, thereby reducing the time for the user to align the first closing component 112 with the kettle body 120 to achieve closure, simplifying the user operation, and optimizing the user experience.

[0058] Second, the installation body 111 can be directly separated from the first opening 122. At this time, this usage mode can be applied to the cleaning usage scenario of the liquid storage cavity 123, which is beneficial for the user to insert cleaning tools such as brushes for cleaning.

[0059] Third, a diversion structure 121 can be provided on the side away from the kettle body 120 and away from the first closing component 112 in the length direction X, which can realize the diversion of the liquid in the liquid storage cavity 123. At this time, the smaller diversion structure 121 is convenient for controlling the flow rate of the liquid being diverted, making the diversion process more stable and avoiding excessive liquid overflow.

[0060] It should be noted that the diversion structure 121 can be of any shape, such as a drainage nozzle or a diversion port with a certain inclination angle, etc., and no more restrictions are imposed here.

[0061] In one example, see Figure 4 As shown, the diversion structure 121 includes a diversion member body and a diversion port provided on the diversion member body. The diversion port is communicated with the liquid storage cavity 123. The diversion member body is inclinedly connected to the kettle body 120 so that the included angle formed by the outer side wall of the diversion member body and the outer side wall of the kettle body 120 is an obtuse angle. When the kettle body 120 is inclined at a certain angle, the liquid water can be drained out through the design of the inclined plane, improving the stability of the liquid diversion.

[0062] It should be noted that the sliding fit between the movable part 1121 and the slide rail 1112 can be a sliding fit with horizontal movement, or the movement trajectory between the first position and the second position is a curved sliding fit, or a combination of the above two, etc., and no more restrictions are imposed here.

[0063] In one embodiment, see Figure 3As shown, the movable member 1121 is in translational sliding fit with the slide rail 1112, and the movable member 1121 is located on the same straight line at the first position and the second position. Specifically, in one example, in the length direction X of the installation body 111 and the first covering assembly 112 installed and fitted together, at this time, the slide rail 1112 can be arranged on the installation body 111 along the length direction X, and at this time, the movable member 1121 moves along the length direction X. Or, in another example, assuming that the length direction X is the width direction, the slide rail 1112 can be arranged on the installation body 111 along the second direction perpendicular to the length direction X (i.e., the width direction), and the movable member 1121 moves along the width direction. It can be understood that by analogy, the slide rail 1112 can also be arranged in the height direction to enable the first covering assembly 112 to move up and down to achieve opening and closing. In this way, the translational telescopic movement matching setting is simple and the operation is convenient. In addition, the translational movement method will not cause interference in the movement between the first covering assembly 112 and the installation body 111, and there is no need to set an avoidance space, and the design is simpler.

[0064] In another embodiment, the movable member 1121 at least switches between the first position and the second position, so that at least part of the movement trajectory of the movable member 1121 between the first position and the second position is a curved structure. That is to say, at least part of the movement trajectory of the movable member 1121 between the first position and the second position is a curve. It should be noted that there can be various shapes of the curve, such as wavy, arc-shaped, hyperbolic, etc., and no excessive restrictions are made here. In this way, at least part of the movement trajectory is a curved structure, which can make the size of the slide rail 1112 in a single direction not have to be too large to meet the movement requirements, which is beneficial to saving the processing space of the installation body 111 and promoting the miniaturization of the kettle lid assembly 110.

[0065] In one example, see the appendix Figures 7 to 8As shown, in the length direction X where the installation body 111 and the first covering component 112 are installed and matched, the cross-section of the slide rail 1112 in the length direction X is in a wave-like structure. That is to say, at this time, the movement track of the movable part 1121 between the first position and the second position is in a wave-like structure. Correspondingly, at this time, the movable part 1121 is also in a wave-like structure and is in limit sliding fit with the slide rail 1112. Specifically, assuming that a point on the movable part 1121 is A and point A is at the trough of the movable part 1121. When point A is at the first position, at this time, point A on the movable part 1121 is in limit fit with the wave crest B on the slide rail 1112 to realize the limit movement of the movable part 1121 on the slide rail 1112, so that the first covering component 112 is in the open state. And due to the limit movement of the movable part 1121 and the slide rail 1112, at this time, without being affected by external forces, the first covering component 112 will not reset. When a user or an operating component applies an external force to the first covering component 112, at this time, assuming that point A moves to the second position, at this time, point A is in limit fit with the wave crest B' on the slide rail 1112, and the wave crest B of the slide rail 1112 is in limit fit with point A' on the movable part 1121. At this time, the first covering component 112 is in the closed state, and due to the limit movement of the movable part 1121 and the slide rail 1112, locking can be achieved and it is not easy to reset.

[0066] In this way, this setting is beneficial to realizing the stability of the first covering component 112 in the open state and the covering state, not being easy to reset, and avoiding the user from having to constantly adjust the covering direction of the first covering component 112. Further, different from a serrated or other curve slide rail 1112, the wave crests and wave troughs formed by the wave-like curve slide rail 1112 are beneficial to reducing the movement resistance of the movable part 1121, thereby improving the movement smoothness of the movable part 1121 and facilitating the user's operation and movement.

[0067] In another example, referring back to the appendix Figures 9 to 10 As shown, in the length direction X where the installation body 111 and the first covering component 112 are installed and matched, the cross-section of the slide rail 1112 in the length direction X is in an arc structure. That is to say, the slide rail 1112 is designed in an arc structure. At this time, the movement tracks of the movable part 1121 at the first position and the second position are designed in an arc structure. In this way, compared with the wave-like structure design in the above embodiment, the slide rail 1112 with an arc structure design has a simpler structure and is convenient for processing, which is beneficial to improving the processing efficiency of the kettle lid assembly 110.

[0068] Further, in some embodiments, referring back to the appendix Figure 9As shown, the installation body 111 is further provided with a first limiting member 1113, and the first limiting member 1113 is arranged on the slide rail 1112 so that when the moving member 1121 is in the second position, one end of the moving member 1121 is in abutting cooperation with the first limiting member 1113. That is, when the first covering assembly 112 needs to be closed, the movement of the moving member 1121 can be limited through the setting of the first limiting member 1113 to prevent the first covering assembly 112 from being overly closed and embedded into the second opening 1111. In this way, the accuracy of the movement positioning of the moving member 1121 in the second position can be improved.

[0069] It should be noted that the first limiting member 1113 can be, but is not limited to, a rigid member, or a flexible member such as rubber, etc., and no more restrictions are made here.

[0070] In one example, the first limiting member 1113 can be a flexible member such as rubber. At this time, when the moving member 1121 returns to the second position, the flexible member such as rubber can play a role of buffering and limiting, reducing the impact force of the moving member 1121 on the first limiting member 1113, and improving the service life of the kettle lid assembly 110.

[0071] In addition, in some other embodiments, refer to the appendix Figure 9 As shown, the installation body 111 is further provided with a second limiting member 1114, and the second limiting member 1114 is telescopically movable on the slide rail 1112. The second limiting member 1114 includes a compressed state and an extended state. It can be understood that when the moving member 1121 is in the first position, the second limiting member 1114 is in the extended state, and the second limiting member 1114 is in abutting and limiting fixation with one end of the moving member 1121. When the moving member 1121 is in the second position, the moving member 1121 presses the second limiting member 1114 to make the second limiting member 1114 in the compressed state. At this time, the moving member 1121 can move on the slide rail 1112.

[0072] In this way, through the setting of the second limiting member 1114, the telescopic action of the second limiting member 1114 can be used to form a limiting and locking effect on the moving member 1121 when the first covering assembly 112 is in the open state, thereby preventing the moving member 1121 from driving the first covering assembly 112 to fall and reset, improving the opening stability of the first covering assembly 112, eliminating the need for the user to hold it fixed, and optimizing the user experience.

[0073] It should be noted that the second limiting member 1114 can be, but is not limited to, an elastic member such as a spring, or a flexible elastic member such as silica gel, etc., and no more restrictions are made here.

[0074] In one example, the second limiting member 1114 includes a carrier and a spring mounted on the carrier. The movable member 1121 is telescopically engaged with the carrier and the spring, so that the spring drives the carrier to switch between an extended state and a compressed state. That is, an elastic telescopic member is formed by the cooperation of the spring and the carrier, so that when the movable member 1121 is in the first position, the carrier can serve as a movement limiting member for the movable member 1121 to prevent the movable member 1121 from resetting and moving along the second position. When the movable member 1121 is in the second position, the movable member 1121 presses against and compresses the carrier so that the spring is in a compressed state. At this time, the presence of the carrier will not interfere with the movement of the movable member 1121. In this way, through the setting of the spring, the structure is simple, easy to set, and conducive to improving the processing efficiency. In addition, the property of the spring swinging left and right can also provide a certain buffering force for the movement of the movable member 1121 in the first position, avoiding damage caused by excessive impact of the movable member 1121 on the second limiting member 1114.

[0075] It should be noted that the shape of the carrier can be various, such as an inclined surface, an arc surface, etc., and no excessive restrictions are imposed here.

[0076] In a specific embodiment, one side of the carrier is designed as an inclined surface, and the movable member 1121 is slidably engaged with the inclined surface. When the movable member 1121 is in the first position, the movable member 1121 presses against and is fixed on the inclined surface. When the user applies a pressure to the first covering assembly 112 to compress the spring inward against the inclined surface, so that the spring is in a compressed state. In this way, through the guiding design of the inclined surface, the movement resistance of the movable member 1121 in the slide rail 1112 is reduced, facilitating the user to move it.

[0077] In another specific embodiment, the carrier is designed as a sphere. At this time, when the movable member 1121 is in the first position, the movable member 1121 can press against and be fixed on one side of the sphere. When it is necessary to switch the movable member 1121 to the second position, only need to move the movable member 1121 along the slide rail 1112. At this time, press against the upper surface of the sphere, so that the sphere and the spring are compressed, without hindering the movement of the movable member 1121.

[0078] In this way, through the spherical design, it is beneficial to minimize the movement resistance of the movable member 1121 during movement, thus maximizing the convenience for the user to move the first covering assembly 112.

[0079] In another example, the second limiting member 1114 includes an elastic spring piece. The elastic spring piece can be a metal spring piece, and the shape of the metal spring piece can be an inclined surface or an arc surface, etc., so that the movable member 1121 is elastically engaged with the second limiting member 1114 to realize the limiting in the first position and not to block the movement of the movable member 1121 on the slide rail 1112 in the second position.

[0080] In some embodiments, the second limiting member 1114 may also be a flexible elastic member. Specifically, the second limiting member 1114 includes a telescopic glue. The movable member 1121 is telescopically engaged with the telescopic glue to enable the telescopic glue to switch between an extended state and a compressed state. It should be noted that the telescopic glue may be silicone, rubber, etc., and no excessive restrictions are imposed here.

[0081] In this way, the design of the telescopic glue enables the positioning cooperation between the second limiting member 1114 and the movable member 1121 at the second position to have a certain buffer, reducing the impact force between the second limiting member 1114 and the movable member 1121, thereby improving the service life of the second limiting member 1114 and the movable member 1121.

[0082] It should be noted that the shape of the mounting body 111 may be a plane, a stepped shape, or other shapes, etc., which can be designed according to actual needs.

[0083] Combined with any embodiment of the above-mentioned mounting body 111, as Figure 11 shown, the mounting body 111 includes a first body 1115 and a second body 1116. The first body 1115 covers a part of the first opening 122 so that the non-covered part of the first opening 122 forms a second opening 1111. The first body 1115 is bent and connected to the second body 1116. The second opening 1111 is provided on the second body 1116. The slide rail 1112 is embedded in the mounting body 111 (or, the slide rail 1112 can also penetrate through the second body 1116 and at least part of the first body 1115, and is specifically set according to the length of the slide rail 1112). There is a fitting gap 1117 between the side of the first covering assembly 112 close to the first body 1115 and the first body 1115, so that through the fitting gap 1117, the movable member 1121 is rotationally and slidably engaged with the slide rail 1112.

[0084] It can be understood that the mounting body 111 is designed in a stepped shape, which is beneficial to reducing the protruding size of the first covering assembly 112 on the mounting body 111, making the kettle lid assembly 110 more beautiful. Further, the existence of the fitting gap 1117 enables the rotation of the first covering assembly 112 not to be limited and interfered by the mounting body 111, and can achieve a preset opening angle.

[0085] In one example, the slide rail 1112 is provided on the second body 1116 and is located on the side of the second body 1116 facing the kettle body 120.

[0086] In some embodiments, the upper surfaces of the first body 1115 and the first covering assembly 112 are in the same plane. In this way, the flush design makes the kettle lid assembly 110 more beautiful.

[0087] In order to improve the sealing performance of the liquid storage container 100, in combination with any of the embodiments of the above-mentioned kettle lid assembly 110, the kettle lid assembly 110 further includes a seal 130, and the seal 130 is in interference fit with the first lid assembly 112 or the first opening 122, so that the first lid assembly 112 is in sealing plug-in fit with the first opening 122 through the seal 130. In this way, through the design of the seal 130, the sealing property between the first lid assembly 112 and the installation can be strengthened, thereby improving the sealing performance of the liquid storage container 100 and preventing foreign objects from entering the liquid storage cavity 123 and contaminating the stored liquid (such as drinking water).

[0088] It should be noted that the size of the fitting gap 1117 and the length of the slide rail 1112 can determine the movement limit of the first lid assembly 112. Specifically, the length of the slide rail 1112 determines the curve track distance of the moving part 1121 moving at a linear velocity, and the size of the fitting gap 1117 determines the angular track of the moving part 1121 moving at an angular velocity (that is, the range of rotation angle). In one example, when the fitting gap 1117 is at a first distance, the first lid assembly 112 forms a first angle with the installation body 111 at the first position, and at this time, the first lid assembly 112 just presses against the side wall of the first body 1115 to realize rotational fixed limit.

[0089] In another example, the fitting gap 1117 is at a second distance. At this time, the first lid assembly 112 forms a second angle with the installation body 111 at the first position. At this time, the first lid assembly 112 realizes movement limit through the second limiting member 1114, and there is still a gap between the first lid assembly 112 and the side wall of the first body 1115. Among them, the first distance is less than the second distance, and the first angle is less than or equal to the second angle.

[0090] In combination with any of the embodiments of the above-mentioned first lid assembly 112, see Figure 6 and Figure 8 , the first lid assembly 112 is rotationally fitted with the installation body 111, so that the first lid assembly 112 includes a first position (such as Figure 6 shown) that is in lid-covering fit with the installation body 111 and a second position (such as Figure 8 shown) that is separated from the installation body 111 in lid-covering. The rotation angle formed by the first lid assembly 112 between the first position and the second position is 60° to 140°.

[0091] It can be understood that the size of the rotation gap between the first covering component 112 and the installation body 111 can determine the opening and closing rotation degree of the first covering component 112. If the rotation gap is too small, the rotation angle of the first covering component 112 will be too small, which is not conducive to the water injection operation. Similarly, when the rotation gap is too large, in order to ensure the sealing effect, the proportion of the second opening 1111 in the installation body 111 needs to be reduced, resulting in the second opening 1111 being too small and not conducive to the water injection operation.

[0092] In this way, by setting the rotation angle formed by the first covering component 112 between the first position and the second position to be 60° - 140°, the second opening 1111 does not need to be set too small, and the rotation gap can also be ensured not to be too small, thus ensuring the convenience of the water injection operation and preventing the installation body 111 and the first covering component 112 from interfering with the water injection operation.

[0093] In some embodiments, the rotation angle formed by the first covering component 112 between the first position and the second position is 75° - 125°. In this way, the opening of the first covering component 112 can be controlled more precisely, which is more convenient for precise water injection.

[0094] In other embodiments, the rotation angle formed by the first covering component 112 between the first position and the second position is 80° - 120°. In this way, the above design of 80° and above is sufficient to meet the insertion of the water injection component or direct visual observation by humans, enabling the user to directly see the liquid volume in the liquid storage cavity 123, facilitating the improvement of the judgment accuracy, and further enhancing the convenience of the water injection operation.

[0095] In one example, the rotation angle formed by the first covering component 112 between the first position and the second position can be any one of 85°, 90°, 95°, 100°, 105°, 110°, 115° or 120°, etc., and no more restrictions are imposed here.

[0096] It should be noted that the fixing method of the kettle body 120 and the door assembly 300 can be various, such as snap connection, plug connection, magnetic attraction, etc., and no more restrictions are imposed on the former here.

[0097] Combined with any of the above embodiments of the kettle body 120, the kettle body 120 can also be provided with a handle. In this way, the design of the handle can facilitate the user to pick up the liquid storage container 100, which is convenient for operation. In addition, the handle is arranged on the kettle body 120. Compared with being arranged on the kettle lid assembly 110, there is more space for setting, which is convenient for processing, and is more stable and reliable, improving the stability of the user holding the liquid storage container 100.

[0098] Combined with any of the above embodiments of the kettle body 120, such as Figures 12 to 14As shown, the kettle lid assembly 110 further includes a second closing component 140. One of the second closing component 140 and the mounting body 111 is provided with a rotating shaft member 1118, and the other is provided with a rotating mating portion 141. The second closing component 140 is rotatably arranged on the mounting body 111 through the rotational mating of the rotating shaft member 1118 and the rotating mating portion 141. It can be understood that the hollow design of the hollow hole enables the rotating shaft member 1118 to penetrate through the hollow hole to achieve movement in the hollow hole. In this way, this design is simple, convenient for processing, and has good rotational continuity. It should be noted that the rotating mating portion 141 can be a rotating hole, a rotating groove, etc., and no excessive restrictions are imposed here.

[0099] It should be noted that the number of the rotating shaft members 1118 provided can be one or more. Specifically, in one example, the number of the rotating shafts can be one. At this time, the rotating mating member can be arranged on the second closing component 140, and the rotating shaft member 1118 can be fixedly arranged on the mounting body 111. (If the second closing component 140 rotates along the length direction, the rotating shaft member 1118 is arranged along the width direction; if the second closing component 140 rotates along the width direction, the rotating shaft member 1118 is arranged along the length direction). Further, in order to improve the movement stability of the first closing component 112, the first bearing member can be arranged in the middle of the first closing component 112 along the width direction to enable the rotating shaft member 1118 to rotate relative to the rotating mating portion 141, thereby realizing the rotation of the second closing component 140.

[0100] In another example, the number of the rotating shafts can be two, and the rotating shaft members 1118 rotate relative to each other in the rotating mating portion 141. At this time, the rotating mating portion 141 can be relatively arranged on the first closing component 112, or can be arranged on the mounting body 111, and no excessive restrictions are imposed here. The following will be described in detail with an example:

[0101] As Figure 14 and 15 shown, at least two relatively spaced-apart rotating shaft members 1118 are provided on the inner side wall of the second closing component 140, and at least two relatively spaced-apart rotating mating portions 141 are provided on the mounting body 111. The rotating shaft members 1118 and the rotating mating portions 141 are rotationally mated one by one. It can be understood that different from the setting of one rotating shaft member 1118 which requires increasing the size of the rotating shaft member 1118 to ensure the rotation effect, through at least two relatively spaced-apart rotating shaft members 1118 and the rotating mating portions 141 corresponding to each other one by one, it is beneficial to reduce the size setting of the rotating shaft member 1118 in the spanning direction, thereby saving space and processing materials.

[0102] It should be noted that the rotating mating portion 141 can be but is not limited to a rotating hole, or a rotating groove, etc., and no excessive restrictions are imposed here.

[0103] In one embodiment, as Figure 15 and 16 shown, the second covering component 140 may also be provided with a stepped portion to assist rotation. In this way, the rotation and use of the second covering component 140 can be facilitated.

[0104] The foregoing are only preferred embodiments of the present application and are not intended to limit the present application. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present application shall be included within the scope of protection of the present application. When some changes or modifications can be made to the above-disclosed technical content to form an equivalent implementation manner of equivalent changes, but as long as the content of the technical solution of the present application is not departed from, any simple modifications, equivalent changes and modifications made to the above embodiments according to the technical essence of the present application shall still fall within the scope of the technical solution of the present application.

Claims

1. A kettle lid assembly, characterized in that, Comprising: An installation body for matingly covering the first opening of the kettle body; the installation body is provided with a second opening communicating with the first opening and a slide rail; A first covering component, the first covering component is provided with a movable member, the movable member is inserted and slidably engaged with the slide rail, so that the first covering component includes an open state in which the movable member is in a first position and a covering state in which the movable member is in a second position; when the first covering component is in the open state, the first covering component does not cover the second opening; when the first covering component is in the covering state, the first covering component is matingly covered with the second opening.

2. The lid assembly according to claim 1, characterized in that, The movable member at least switches between the first position and the second position, so that at least part of the movement trajectory of the movable member between the first position and the second position is a curved structure.

3. The lid assembly according to claim 2, characterized in that, Along the length direction of the installation body and the first covering component being installed and mated, the cross section of the slide rail in the length direction is an arc structure; And / or, the movable member is inserted and slidably engaged with the slide rail, so that the first covering component is rotationally engaged with the installation body, so that the first covering component includes a first position in which it is matingly covered with the installation body and a second position in which it is separated from the mating covering of the installation body; the rotation angle formed by the first covering component between the first position and the second position is 60° to 140°.

4. The lid assembly according to claim 3, wherein, The installation body is further provided with a first limiting member, and the first limiting member is arranged on the slide rail, so that when the movable member is in the second position, one end of the movable member is in abutting engagement with the first limiting member.

5. The lid assembly according to claim 3, characterized in that, The installation body is further provided with a second limiting member, the second limiting member is telescopically movable on the slide rail, and the second limiting member includes a compressed state and an extended state; when the movable member is in the first position, the second limiting member is in the extended state, and the second limiting member is in abutting and fixed connection with one end of the movable member; when the movable member is in the second position, the movable member presses against the second limiting member to make the second limiting member in the compressed state.

6. The lid assembly according to claim 5, wherein The second limiting member includes a bearing member and a spring installed on the bearing member; the movable member is telescopically engaged with the spring through the bearing member, so that the spring drives the bearing member to switch between the extended state and the compressed state; Or, the second limiting member includes a telescopic rubber; the movable member is telescopically engaged with the telescopic rubber, so that the telescopic rubber switches between the extended state and the compressed state.

7. The lid assembly according to claim 2, wherein, Along the length direction of the installation body and the first covering component being installed and mated, the cross section of the slide rail in the length direction is a quasi-wave structure.

8. The lid assembly according to claim 2, wherein, The installation body includes a first body and a second body; the first body is bent and connected to the second body; the second opening is provided on the second body; the slide rail is embedded in the second body; there is a fitting gap between the side of the first closing assembly close to the first body and the first body, so that through the fitting gap, the movable member is rotationally and slidably fitted with the slide rail; And / or, the kettle lid assembly further includes a sealing member, and the sealing member is in interference fit with the first closing assembly or the first opening, so that the first closing assembly is in sealing plug-in fit with the first opening through the sealing member.

9. The lid assembly according to any one of claims 1 to 8, characterized in that, The kettle lid assembly further includes a second closing assembly; one of the second closing assembly and the installation body is provided with a rotating shaft member, and the other is provided with a rotating fitting portion; through the rotational fit of the rotating shaft member and the rotating fitting portion, the second closing assembly is rotatably arranged on the installation body.

10. A liquid storage container, characterized in that, It includes a kettle body and the kettle lid assembly according to any one of claims 1 to 9 above. The kettle body is provided with a guiding structure, a first opening, and a liquid storage cavity communicating with the guiding structure and the first opening. The guiding structure communicates with the first opening. The kettle lid assembly is in covering fit with the first opening; the liquid storage cavity is used for storing liquid; the liquid is led out of the liquid storage cavity through the guiding structure; wherein, Along the length direction of the sliding fit between the movable member and the slide rail, the guiding structure is arranged on the side of the kettle body away from the first closing assembly in the length direction.

11. A refrigerator, characterized in that, It includes a box body assembly provided with a freezing chamber, a box door assembly, and the liquid storage container according to claim 10 above. The box door assembly is hingedly fitted with the box body assembly. The liquid storage container is fixedly arranged on the box door assembly or the box body assembly, so that the liquid storage container is arranged in the freezing chamber.