A ladle

By incorporating a drive assembly and a detachable spring-loaded component on the container lid, the problems of steam condensation and dirt accumulation between the container lid and the spring-loaded lid are solved. This enables convenient opening and improved cleanliness of the container lid, simplifies the installation process, and enhances the user experience and production efficiency.

CN224297851UActive Publication Date: 2026-05-29WUHAN SUPOR COOKWARE
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
WUHAN SUPOR COOKWARE
Filing Date
2025-04-30
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Existing container lids and spring-loaded caps have issues with steam condensation and dirt accumulation, affecting cleanliness and user experience.

Method used

A lifting device was designed, with a drive component and a detachable spring-loaded component on the container lid. After being unlocked by the drive component, the spring-loaded component moves along the height direction to lift the container lid, making it easy to open. At the same time, the spring-loaded component and the container lid are detachably connected through a multi-segment groove structure, simplifying installation and cleaning.

Benefits of technology

It improves the cleanliness of the container lid, reduces the risk of dirt and grime buildup, simplifies installation, and enhances production efficiency and user experience.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN224297851U_ABST
    Figure CN224297851U_ABST
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Abstract

The application relates to a saucepan, which comprises a container body and a container cover, the container cover comprises a driving assembly, the driving assembly can move relative to the container body, the driving assembly is used for locking or unlocking the container cover and the container body, the driving assembly comprises a springing piece, during the unlocking of the container cover and the container body, the springing piece can move along the height direction of the saucepan to drive the container cover to be lifted up relative to the container body, and the springing piece is detachably connected with the container cover. The springing piece is detachably connected with the container cover, so that the springing piece and the container cover can be cleaned separately by a user, the risk of dirt being hidden in the container cover is reduced, the cleanliness of the container cover is improved, the cleanliness of the saucepan is improved, and the use experience of the user is improved.
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Description

Technical Field

[0001] This utility model relates to the field of container technology, and in particular to a lifting pot. Background Technology

[0002] Containers generally consist of a container body and a container lid. To facilitate opening the container lid, containers may also be equipped with a spring-loaded cap. However, in commercially available containers, the lid and spring-loaded cap are fixedly connected. There is a risk that vapor inside the container may flow into the gap between the lid and the spring-loaded cap and liquefy upon cooling. Furthermore, dirt and grime can easily accumulate between the lid and the spring-loaded cap, reducing the container's cleanliness. Utility Model Content

[0003] This application provides a lifting pot for improving the cleanliness between the container lid and the spring-loaded lid.

[0004] This application provides a lifting pot, which includes a container body and a container lid. The container lid includes a driving component that is capable of moving relative to the container body. The driving component is used to lock or unlock the container lid from the container body.

[0005] The driving component includes a spring-loaded element. During the process of unlocking the container lid and the container body, the spring-loaded element can move along the height direction of the pot to drive the container lid to lift relative to the container body.

[0006] The spring-loaded component is detachably connected to the container lid.

[0007] In this design, when opening the lid, the user drives the drive assembly to move relative to the container body to the unlocked state. This allows the spring-loaded component to move along the lifting height of the pot. The lid, driven by the spring-loaded component, is lifted relative to the container body, making it easier for the user to lift the lid away from the container body and facilitating opening. Furthermore, this embodiment features a detachable connection between the spring-loaded component and the lid, allowing the user to clean both separately. This reduces the risk of dirt and grime accumulating inside the lid, improving its cleanliness and consequently enhancing the overall cleanliness of the pot, thus improving the user experience.

[0008] In this solution, the spring-loaded component includes a first protrusion, and the container cover includes a mounting groove. The mounting groove includes at least a connecting limiting section and an opening section. The opening section is used for the first protrusion to be mounted in or detached from the mounting groove, and the limiting section is used to restrict the first protrusion from rotating relative to the container cover, so as to restrict the separation of the spring-loaded component from the container cover.

[0009] In this design, when the spring-loaded component is attached to the container lid, the first protrusion is located within the limiting section. When it is necessary to detach the spring-loaded component from the container lid, the spring-loaded component is driven to move relative to the container lid along the lifting height direction, so that the first protrusion moves to a position communicating with the limiting section and the opening section. Then, the spring-loaded component is driven to rotate relative to the container lid, thereby allowing the first protrusion to slide out of the limiting section and then slide out along the opening section, so that the spring-loaded component can be removed from the container lid for easy cleaning by the user.

[0010] When it is necessary to connect the spring-loaded component to the container lid, the first protrusion of the spring-loaded component is driven to slide into the opening section, thereby driving the spring-loaded component to rotate relative to the container lid, so that the first protrusion can slide into the limiting section, thereby connecting the spring-loaded component to the container lid.

[0011] Therefore, compared with the traditional non-detachable connection method where the protrusion on the spring-loaded component directly inserts into the groove of the container lid, this application sets multiple grooves on the container lid to enable the driving spring-loaded component to move relative to the container lid in different directions, so that the spring-loaded component can be detachably connected to the container lid. This installation and disassembly method is simple and quick, reduces installation difficulty, improves production efficiency, and thus reduces production costs.

[0012] In this design, the limiting segment and the opening segment are arranged side by side along the outer periphery of the container lid, and both the limiting segment and the opening segment extend along the height of the lifting pot. The mounting groove also includes a connecting segment that connects the limiting segment and the opening segment.

[0013] In this design, the limiting section and the opening section are connected by a connecting section that extends circumferentially along the lifting of the pot. The connecting section guides the first protrusion to move to the limiting section or the opening section. By arranging the limiting section and the opening section side by side along the outer periphery of the container lid, and by having both the limiting section and the opening section extend along the height direction of the lifting of the pot, the spring-loaded component can first move relative to the height direction of the container lid, then drive the spring-loaded component to rotate relative to the container lid, and then drive the spring-loaded component to move again relative to the height direction of the container lid. This allows the spring-loaded component to be installed on the container lid, or to separate the spring-loaded component from the container lid. In other words, by driving the spring-loaded component to move relative to the container lid in different directions, the risk of the spring-loaded component accidentally detaching from the container lid is reduced.

[0014] In this solution, the opening segment has a first end and a second end, one end of the connecting segment is connected to the first end, the other end of the connecting segment is connected to the limiting segment, and the second end penetrates the container lid along the height direction.

[0015] In this design, one end of the connecting section is connected to the first end, and the other end of the connecting section is connected to the limiting section. The second end is an open end. This improves the feasibility and reliability of allowing the first protrusion to move smoothly to the limiting section or the open section by driving the spring-loaded component relative to the container lid, thereby enhancing the feasibility and reliability of the detachable connection between the spring-loaded component and the container lid. Simultaneously, the connecting section between the limiting section and the open section helps reduce the risk of the first protrusion sliding directly from the limiting section to the open section when the pot is lifted and shakes, thus improving the reliability and stability of the connection between the spring-loaded component and the container lid.

[0016] In this solution, the connecting segment is bent relative to the limiting segment and the opening segment, or the connecting segment is arc-shaped, so that the first protrusion can only move to the limiting segment or the opening segment by rotating relative to the container lid, thereby further reducing the risk of the container lid and the spring-loaded component separating due to shaking, and further improving the stability of the connection between the container lid and the spring-loaded component.

[0017] In this solution, along the height direction of the pot lifting section, the two inner walls of the limiting section are adapted to the two outer walls of the first protrusion, and the connecting section is located between the two inner walls of the limiting section along the height direction of the pot lifting section.

[0018] The connecting segment is inclined relative to the limiting segment and the opening segment.

[0019] In this design, the two inner walls of the limiting section are adapted to the two outer walls of the first protrusion along the height direction of lifting the pot, so that the inner walls of the limiting section can effectively limit the risk of the first protrusion detaching from the container lid along the height direction of lifting the pot, further improving the stability of the connection between the container lid and the spring-loaded component. At the same time, the connecting section is inclined relative to the limiting section and the opening section, improving the smoothness of the first protrusion sliding along the connecting section, so that the user can drive the spring-loaded component to rotate relative to the container lid.

[0020] In this solution, the container lid includes an upper lid and a lower lid. The mounting groove is disposed on the upper lid. The spring-loaded component is installed between the upper lid and the lower lid. The upper lid includes at least one second protrusion. The lower lid includes a body. The body is provided with at least one groove and a notch communicating with the groove. The second protrusion can be screwed into the groove through the notch.

[0021] When the second protrusion is located within the groove, the second protrusion abuts against the body along the height direction of the pot.

[0022] In this design, when the second protrusion is located within the groove, it engages with the lower lid. The second protrusion also abuts against the body along the lifting height direction of the pot, preventing the upper and lower lids from separating along this direction and improving the reliability and strength of the connection. Simultaneously, the second protrusion and the inner wall of the groove abut against each other circumferentially while the pot is being lifted, limiting the risk of damage caused by excessive rotation of the upper and lower lids.

[0023] In this solution, the upper cover is also provided with at least one third protrusion, and the body is also provided with at least one hook. When the second protrusion is located in the groove, the hook and the third protrusion abut against each other in the circumferential direction to restrict the relative rotation of the upper cover and the lower cover.

[0024] In this design, when the second protrusion rotates into the groove, the third protrusion abuts against the hook along the circumference of the pot, thereby restricting the upper and lower covers from rotating relative to each other in the direction of disengagement. This ensures a secure connection between the upper and lower covers, reduces the risk of accidental opening of the upper and lower covers, and further improves the strength and stability of the connection between the upper and lower covers.

[0025] In this design, one end of the hook is connected to the body, and the other end is a free end.

[0026] In this design, there is a gap between the hook and the body along the height direction of lifting the pot, so that the part of the hook near the free end can elastically deform along the radial direction of lifting the pot, so that the hook and the third protrusion can be smoothly engaged.

[0027] In this solution, the inner wall of the container body is provided with a snap-fit ​​part, the driving component also includes a locking member, the lower cover is provided with a through hole, and a part of the locking member can extend or retract into the lower cover through the through hole so that the locking member and the snap-fit ​​part can be locked or unlocked.

[0028] When locked, a portion of the locking member abuts against the spring-loaded member along the height direction of the lifting pot to restrict the movement of the spring-loaded member away from the upper cover;

[0029] Upon unlocking, the locking member and the spring-loaded member disengage along the height direction of the lifting pot, allowing the spring-loaded member to move away from the top cover to a position to block the through hole; and / or,

[0030] The drive assembly also includes a plurality of first elastic elements, one end of which is connected to the upper cover and the other end of which is connected to the spring-loaded element along the height direction of the pot.

[0031] In this design, during the process of the container lid being closed onto the container body, i.e., when the locking component switches from the unlocked state to the locked state, the spring-loaded component can be pushed up and retracted by the opening of the container body to avoid the through hole. This allows the locking component to extend out of the through hole and engage with the container body, and to abut against the spring-loaded component along the height direction, thus restricting the movement of the spring-loaded component away from the upper cover. Therefore, when it is necessary to open the container lid, i.e., when switching from the locked state to the unlocked state, it is only necessary to release the engagement between the locking component and the container body. That is, at least a part of the locking component retracts into the lower cover, and then the locking component and the spring-loaded component are released from abutment along the height direction. As a result, the spring-loaded component will move away from the upper cover according to its own elastic force, thereby lifting the container lid.

[0032] Simultaneously, the spring-loaded mechanism extends to block the through-hole and lift the top cover when the locking mechanism is in the unlocked position. By concealing the locking mechanism through the through-hole, impurities are prevented from entering between the top and bottom covers, thus avoiding contamination of the container lid and providing dust protection. Furthermore, the through-hole remains concealed after the container lid is opened, resulting in a pleasing appearance. Additionally, the spring-loaded mechanism also prevents the locking mechanism from extending beyond the bottom cover and continuing to engage with the container body, facilitating smooth opening.

[0033] Furthermore, when the container lid is placed on the container body, the opening of the container body inserts into the upper lid and presses upward against the spring-loaded component. The spring-loaded component moves upward relative to the upper lid, the first elastic component compresses and shortens, and then the locking component engages with the container body, ensuring the container lid is stably closed on the container body. When opening the lid, the locking component is first unlocked, releasing its engagement with the container body. The lower surface of the spring-loaded component abuts against the container body, the bottom end of the first elastic component abuts against the spring-loaded component, and the top end extends to lift the upper lid, thereby lifting the lower lid connected to the upper lid, as well as the locking component connecting the upper and lower lids, facilitating opening the lid.

[0034] It should be understood that the above general description and the following detailed description are merely exemplary and do not limit this application. Attached Figure Description

[0035] Figure 1 This is a schematic diagram of the structure of the pot provided in this application in a specific embodiment, wherein the container lid is in a locked state;

[0036] Figure 2 This is a schematic diagram of the structure of the pot provided in this application in a specific embodiment, wherein the container lid is in an unlocked state;

[0037] Figure 3 An exploded view of the cooking pot provided in this application in a specific embodiment;

[0038] Figure 4 A schematic diagram showing the connection between the top cover and the spring-loaded component provided in this application in one specific embodiment;

[0039] Figure 5 This is a schematic diagram of the structure of the first protrusion installed in the mounting groove in a specific embodiment of the present application;

[0040] Figure 6 This is a schematic diagram of the structure of the first protrusion installed in the mounting groove in a specific embodiment of the present application;

[0041] Figure 7 This is a schematic diagram of the structure of the cover provided in this application in a specific embodiment;

[0042] Figure 8 This is a partial structural diagram of the spring-loaded component provided in this application in a specific embodiment;

[0043] Figure 9 This is a schematic diagram of the mounting slot provided in this application in one specific embodiment;

[0044] Figure 10 This is a schematic diagram of the mounting slot provided in this application in another specific embodiment;

[0045] Figure 11 This is a schematic diagram of the mounting slot provided in this application in another specific embodiment;

[0046] Figure 12 This is a schematic diagram of the snap-fit ​​structure of the upper and lower covers provided in this application in a specific embodiment;

[0047] Figure 13 for Figure 7 The diagram provided in the image shows another view of the top cover's structure.

[0048] Figure 14 for Figure 3 A magnified view of part A in the middle;

[0049] Figure 15 for Figure 1 A magnified view of part B in the middle section.

[0050] Explanation of reference numerals in the attached figures:

[0051] 1- Container lid;

[0052] 11-Top cover;

[0053] 111 - Mounting slot;

[0054] 1111 - Limiting segment;

[0055] 1111a - First inner wall;

[0056] 1111b - Second inner wall;

[0057] 1112 - Connecting segment;

[0058] 1113 - Open segment;

[0059] 1113a - First end;

[0060] 1113b - Second end;

[0061] 112 - Driver components;

[0062] 1121 - Spring-loaded component;

[0063] 1121a - First protrusion;

[0064] 1121b - Extension;

[0065] 1121c - Abutment section;

[0066] 1121d - First outer wall;

[0067] 1122 - Locking element;

[0068] 1122a-locking plate;

[0069] 1122b - Drive unit;

[0070] 1122c - Clearance space;

[0071] 113 - Second protrusion;

[0072] 114 - Third protrusion;

[0073] 115 - First opening;

[0074] 12- Bottom cover;

[0075] 121-Ontology;

[0076] 1211 - Groove;

[0077] 1212 - Gap;

[0078] 1213-Card Hook;

[0079] 1214 - Gap;

[0080] 1215 - Through hole;

[0081] 13-Insulation components;

[0082] 131 - Insulation cavity;

[0083] 14-Storage cavity;

[0084] 2-Container body;

[0085] 21-Connecting part;

[0086] 3-First elastic element;

[0087] 4-Second elastic element.

[0088] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application. Detailed Implementation

[0089] To better understand the technical solution of this application, the embodiments of this application will be described in detail below with reference to the accompanying drawings.

[0090] In one specific embodiment, the present application will be further described in detail below with reference to specific embodiments and accompanying drawings.

[0091] It should be understood that the described embodiments are merely some, not all, of the embodiments in this application. All other embodiments obtained by those skilled in the art based on the embodiments in this application without inventive effort are within the scope of protection of this application.

[0092] The terminology used in the embodiments of this application is for the purpose of describing particular embodiments only and is not intended to be limiting of this application. The singular forms “a,” “the,” and “the” used in the embodiments of this application and the appended claims are also intended to include the plural forms unless the context clearly indicates otherwise.

[0093] It should be understood that the term "and / or" used in this article is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A existing alone, A and B existing simultaneously, and B existing alone. Additionally, the character " / " in this article generally indicates that the preceding and following related objects have an "or" relationship.

[0094] It should be noted that the directional terms such as "upper," "lower," "left," and "right" described in the embodiments of this application are used to describe the angles shown in the accompanying drawings and should not be construed as limiting the embodiments of this application. Furthermore, in the context, it should be understood that when it is mentioned that an element is connected "upper" or "lower" to another element, it can be directly connected to the other element "upper" or "lower," or indirectly connected to the other element "upper" or "lower" through an intermediate element.

[0095] This application provides a method for lifting a pot, such as... Figures 1-3As shown, the lifting pot includes a container body 2 and a container lid 1. The container lid 1 includes a driving assembly 112, which is movable relative to the container body 2. The driving assembly 112 is used to lock or unlock the container lid 1 and the container body 2. The driving assembly 112 includes a spring-loaded member 1121. During the process of unlocking the container lid 1 and the container body 2, the spring-loaded member 1121 can move along the height direction of the lifting pot to drive the container lid 1 to lift relative to the container body 2. The spring-loaded member 1121 is detachably connected to the container lid 1.

[0096] Specifically, when opening the lid, the user drives the drive assembly 112 to move relative to the container body 2 to the unlocked state, allowing the spring-loaded component 1121 to move along the height direction of lifting the pot. Under the action of the spring-loaded component 1121, the container lid 1 is lifted relative to the container body 2, making it easier for the user to lift the lid 1 away from the container body 2 and facilitating opening. Simultaneously, in this embodiment, the spring-loaded component 1121 is detachably connected to the container lid 1, allowing the user to clean both the spring-loaded component 1121 and the container lid 1 separately. This reduces the risk of dirt and grime accumulating inside the container lid 1, improves its cleanliness, and consequently enhances the cleanliness of lifting the pot, thus improving the user experience.

[0097] In one possible implementation, such as Figures 3-5 , Figure 7 and Figure 8 As shown, the spring-loaded member 1121 includes a first protrusion 1121a, and the container cover 1 includes a mounting groove 111. The mounting groove 111 includes at least a connecting limiting section 1111 and an opening section 1113. The opening section 1113 is used for the first protrusion 1121a to be mounted in or detached from the mounting groove 111, and the limiting section 1111 is used to restrict the first protrusion 1121a from rotating relative to the container cover 1, so as to restrict the spring-loaded member 1121 from separating from the container cover 1.

[0098] When the spring-loaded component 1121 is connected to the container lid 1, the first protrusion 1121a is located within the limiting section 1111. When it is necessary to disassemble the spring-loaded component 1121 from the container lid 1, the spring-loaded component 1121 is driven to move relative to the container lid 1 along the height direction of lifting the pot, so that the first protrusion 1121a moves to a position communicating with the limiting section 1111 and the opening section 1113. Then, the spring-loaded component 1121 is driven to rotate relative to the container lid 1, thereby allowing the first protrusion 1121a to slide out of the limiting section 1111 and then slide out along the opening section 1113, so that the spring-loaded component 1121 can be removed from the container lid 1 for easy cleaning by the user.

[0099] When it is necessary to connect the spring-loaded member 1121 to the container lid 1, the first protrusion 1121a of the spring-loaded member 1121 is driven to slide into the opening section 1113, thereby driving the spring-loaded member 1121 to rotate relative to the container lid 1, so that the first protrusion 1121a can slide into the limiting section 1111, thereby connecting the spring-loaded member 1121 to the container lid 1.

[0100] Therefore, compared with the traditional non-detachable connection method where the protrusion on the spring-loaded component directly inserts into the groove of the container lid, this application sets multiple grooves on the container lid 1 to enable the spring-loaded component 1121 to move relative to the container lid 1 in different directions, so that the spring-loaded component 1121 can be detachably connected to the container lid 1. This installation and disassembly method is simple and quick, reduces installation difficulty, improves production efficiency, and thus reduces production costs.

[0101] In one possible implementation, such as Figures 5-7 As shown, the limiting section 1111 and the opening section 1113 are arranged side by side along the outer periphery of the container cover 1, and both the limiting section 1111 and the opening section 1113 extend along the height direction of lifting the pot. The mounting groove 111 also includes a connecting section 1112, which connects the limiting section 1111 and the opening section 1113.

[0102] In this embodiment, the limiting segment 1111 and the opening segment 1113 are connected by the connecting segment 1112, which extends circumferentially along the lifting of the pot. The connecting segment 1112 guides the first protrusion 1121a to move to the limiting segment 1111 or the opening segment 1113. By having the limiting segment 1111 and the opening segment 1113 each extend along the height direction of the lifting of the pot, and the limiting segment 1111 and the opening segment 1113 are arranged side by side along the outer periphery of the container lid 1, the spring-loaded member 1121 can first move relative to the height direction of the container lid 1, then drive the spring-loaded member 1121 to rotate relative to the container lid 1, and then drive the spring-loaded member 1121 to move relative to the height direction of the container lid 1 again, so that the spring-loaded member 1121 can be installed on the container lid 1, or separated from the container lid 1. That is, by driving the spring-loaded member 1121 to move relative to the container lid 1 in different directions, the risk of the spring-loaded member 1121 accidentally detaching from the container lid 1 is reduced. Meanwhile, when the first protrusion 1121a is located in the limiting section 1111, that is, when the spring member 1121 is connected to the container lid 1, when unlocking the container lid 1 and the container body 2, the limiting section 1111 extends along the height direction of lifting the pot, so that the first protrusion 1121a can slide within the limiting section 1111, that is, the spring member 1121 can move along the height direction of lifting the pot, so that the spring member 1121 can drive the container lid 1 to be lifted, making it easier to open the container lid 1.

[0103] In one possible implementation, such as Figures 5-7As shown, the opening section 1113 has a first end 1113a and a second end 1113b arranged along the height direction of the pot. One end of the connecting section 1112 is connected to the first end 1113a, and the other end of the connecting section 1112 is connected to the limiting section 1111. The second end 1113b penetrates the container lid 1 along the height direction.

[0104] Specifically, the second end 1113b of the opening segment 1113 is the opening end, that is, the second end 1113b penetrates the container lid 1 along the height direction of the pot.

[0105] When the spring-loaded member 1121 needs to be connected to the container lid 1, the first protrusion 1121a is aligned with the second end 1113b of the opening section 1113 so that the first protrusion 1121a can slide into the opening section 1113. Then, the spring-loaded member 1121 is driven to rotate relative to the container lid 1 so that the first protrusion 1121a can slide into the connecting section 1112 through the first end 1113a of the opening section 1113. Then, the first protrusion 1121a slides into the limiting section 1111 through the connecting section 1112, thereby limiting the first protrusion 1121a in the limiting section 1111, thereby connecting the container lid 1 and the spring-loaded member 1121.

[0106] When it is necessary to detach the spring-loaded member 1121 from the container lid 1, the spring-loaded member 1121 is driven to move relative to the container lid 1 along the height direction of lifting the pot, so that the first protrusion 1121a moves to the position shown in the figure. Figure 6 The position shown indicates that the first protrusion 1121a has moved to the position where the limiting section 1111 and the connecting section 1112 are connected. Then, the spring-loaded member 1121 is driven to rotate relative to the container lid 1, causing the first protrusion 1121a to slide into the connecting section 1112, and the first protrusion 1121a moves to the position shown. Figure 5 As shown, the first protrusion 1121a slides into the first end 1113a of the opening section 1113, thereby driving the spring-loaded member 1121 to move relative to the container lid 1 along the height direction of lifting the pot, so that the first protrusion 1121a slides from the first end 1113a to the second end 1113b, thereby removing the spring-loaded member 1121 from the container lid 1.

[0107] In this embodiment, one end of the connecting segment 1112 is connected to the first end 1113a, and the other end of the connecting segment 1112 is connected to the limiting segment 1111. The second end 1113b is an open end. This improves the feasibility and reliability of allowing the first protrusion 1121a to move smoothly to the limiting segment 1111 or the open segment 1113 by driving the spring-loaded member 1121 to move relative to the container lid 1. This improves the feasibility and reliability of the detachable connection between the spring-loaded member 1121 and the container lid 1. Simultaneously, the connecting segment 1112 is provided between the limiting segment 1111 and the open segment 1113. When the pot is lifted and shakes, this reduces the risk of the first protrusion 1121a detaching from the limiting segment 1111 and sliding directly to the open segment 1113, thereby improving the reliability and stability of the connection between the spring-loaded member 1121 and the container lid 1.

[0108] In one possible implementation, such as Figure 7 and Figures 9-11 As shown, the connecting segment 1112 is bent relative to the limiting segment 1111 and the opening segment 1113, or the connecting segment 1112 is arc-shaped.

[0109] In some embodiments, such as Figure 7 , Figure 9 and Figure 10 In the illustrated embodiment, the connecting segment 1112 is bent relative to the limiting segment 1111 and the opening segment 1113, or, as shown Figure 11 In the embodiment shown, the connecting segment 1112 can also be arc-shaped, so that the first protrusion 1121a can only move to the limiting segment 1111 or the opening segment 1113 by rotating relative to the container lid 1, further reducing the risk of the container lid 1 and the spring member 1121 detaching from each other due to shaking, and further improving the stability of the connection between the container lid 1 and the spring member 1121.

[0110] In one possible implementation, such as Figure 6 As shown, along the height direction of lifting the pot, the two inner walls of the limiting section 1111 are adapted to the two outer walls of the first protrusion 1121a, and the connecting section 1112 is located between the two inner walls of the limiting section 1111 along the height direction of lifting the pot.

[0111] The connecting segment 1112 is inclined relative to the limiting segment 1111 and the opening segment 1113.

[0112] In this embodiment, by adapting the two inner walls of the limiting segment 1111 to the two outer walls of the first protrusion 1121a along the height direction of lifting the pot, the inner walls of the limiting segment 1111 can effectively limit the risk of the first protrusion 1121a detaching from the container lid 1 along the height direction of lifting the pot, thereby further improving the stability of the connection between the container lid 1 and the spring-loaded member 1121.

[0113] Specifically, such as Figure 6 As shown, along the height direction of the pot, the limiting section 1111 has a first inner wall 1111a and a second inner wall 1111b. The first inner wall 1111a is located on the side of the second inner wall 1111b away from the container body 2. The connecting section 1112 is located between the first inner wall 1111a and the second inner wall 1111b, so that the first protrusion 1121a can slide smoothly into the connecting section 1112.

[0114] In the unlocked state, the first protrusion 1121a abuts against the second inner wall 1111b to reduce the risk of the spring-loaded member 1121 moving towards the container body 2 along the lifting height direction and detaching from the container lid 1. In the locked state, the first protrusion 1121a abuts against the first inner wall 1111a to reduce the risk of the spring-loaded member 1121 moving away from the container body 2 along the lifting height direction and detaching from the container lid 1, further improving the stability of the connection between the container lid 1 and the spring-loaded member 1121.

[0115] Meanwhile, the first protrusion 1121a includes two parallel first outer walls 1121d, which can be arranged parallel to the inner wall of the connecting section 1112 to improve the smoothness of the drive spring 1121 rotating relative to the container cover 1, making it easier for the user to drive.

[0116] In this embodiment, the connecting segment 1112 is inclined relative to the limiting segment 1111 and the opening segment 1113, which helps to further reduce the risk of the first protrusion 1121a sliding out from the limiting segment 1111 to the connecting segment 1112 due to shaking, and further improves the stability of the connection between the container lid 1 and the spring-loaded component 1121. At the same time, the first outer wall 1121d is parallel to the inner wall of the connecting segment 1112, which improves the smoothness of the sliding of the first protrusion 1121a along the connecting segment 1112, so that the user can drive the spring-loaded component 1121 to rotate relative to the container lid 1, thereby improving the convenience of installing or removing the spring-loaded component 1121 and improving the user experience.

[0117] In other embodiments, along the height direction of the pot, the distance between the two inner walls of the connecting segment 1112 can be slightly greater than the distance between the two first outer walls 1121d of the first protrusion 1121a, and the first outer walls 1121d may not be parallel to the inner walls of the connecting segment 1112.

[0118] Furthermore, the first inner wall 1111a and the second inner wall 1111b are both arranged parallel to the first outer wall 1121d. In the unlocked or locked state, this allows the first protrusion 1121a to fit well with the second inner wall 1111b or the first inner wall 1111a, improving the stability of the contact between the first protrusion 1121a and the second inner wall 1111b or the first inner wall 1111a, and greatly improving the stability of the connection between the container lid 1 and the spring-loaded member 1121.

[0119] In its particular embodiments, such as Figures 9-11 As shown, the first inner wall 1111a and the second inner wall 1111b can be arranged radially parallel to the container lid 1, and the first outer wall 1121d can also be arranged radially parallel to the container lid 1, that is, the first inner wall 1111a, the second inner wall 1111b and the first outer wall 1121d are all arranged horizontally.

[0120] In other embodiments, such as Figure 9 and Figure 10 As shown, the connecting section 1112 can also be arranged perpendicularly to the limiting section 1111 and the opening section 1113, that is, the inner wall of the connecting section 1112 can be arranged radially parallel to the container cover 1.

[0121] In one possible implementation, such as Figure 3 and Figures 12-14 As shown, the container lid 1 includes an upper lid 11 and a lower lid 12. A mounting groove 111 is disposed on the upper lid 11, and a spring-loaded member 1121 is installed between the upper lid 11 and the lower lid 12. The upper lid 11 includes at least one second protrusion 113, and the lower lid 12 includes a body 121. The body 121 is provided with at least one groove 1211 and a notch 1212 communicating with the groove 1211. The second protrusion 113 can be screwed into the groove 1211 through the notch 1212. When the second protrusion 113 is located in the groove 1211, the second protrusion 113 abuts against the body 121 along the height direction of lifting the pot.

[0122] In this embodiment, when the second protrusion 113 is located within the groove 1211, it engages the upper cover 11 with the lower cover 12. The second protrusion 113 abuts against the body 121 along the height direction of lifting the pot, thus preventing the upper cover 11 and the lower cover 12 from separating from each other along the height direction of lifting the pot, improving the reliability and firmness of the connection between the upper cover 11 and the lower cover 12. At the same time, the second protrusion 113 and the inner wall of the groove 1211 can abut against each other along the circumference of lifting the pot, thus preventing the upper cover 11 and the lower cover 12 from continuing to rotate relative to each other and avoiding the risk of damage caused by excessive rotation of the upper cover 11 and the lower cover 12.

[0123] In addition, the container lid 1 may be provided with a plurality of second protrusions 113 and grooves 1211 distributed circumferentially to improve the reliability of the connection between the upper lid 11 and the lower lid 12.

[0124] In one possible implementation, such as Figure 3 and Figures 12-14 As shown, the upper cover 11 is also provided with at least one third protrusion 114, and the body 121 is also provided with at least one hook 1213. When the second protrusion 113 is located in the groove 1211, the hook 1213 and the third protrusion 114 abut against each other in the circumferential direction to restrict the upper cover 11 and the lower cover 12 from rotating relative to each other.

[0125] In this embodiment, when the second protrusion 113 rotates into the groove 1211, the third protrusion 114 abuts against the hook 1213 along the circumference of the pot, so as to restrict the upper cover 11 and the lower cover 12 from rotating relative to each other in the direction of releasing the latch, so as to make the upper cover 11 and the lower cover 12 firmly connected, reduce the risk of the upper cover 11 and the lower cover 12 being opened accidentally, and further improve the firmness and stability of the latching of the upper cover 11 and the lower cover 12.

[0126] In addition, the container lid 1 may be provided with multiple third protrusions 114 and hooks 1213 distributed circumferentially to improve the reliability of the connection between the upper lid 11 and the lower lid 12.

[0127] In one possible implementation, such as Figure 14 As shown, one end of the hook 1213 is connected to the body 121, and the other end is a free end.

[0128] In this embodiment, along the height direction of lifting the pot, there is a gap 1214 between the hook 1213 and the body 121, that is, the hook 1213 is a cantilever structure, so that the part of the hook 1213 near the free end can be elastically deformed along the radial direction of lifting the pot, so that the hook 1213 and the third protrusion 114 can be smoothly engaged.

[0129] In one possible implementation, such as Figures 1-3 As shown, the inner wall of the container body 2 is provided with a snap-fit ​​part 21, the drive assembly 112 also includes a locking member 1122, the lower cover 12 is provided with a through hole 1215, a part of the locking member 1122 can extend or retract into the lower cover 12 through the through hole 1215, so that the locking member 1122 and the snap-fit ​​part 21 can be locked or unlocked.

[0130] In this embodiment, the locking member 1122 is movably disposed between the upper cover 11 and the lower cover 12. When locked, a portion of the locking member 1122 can extend through the through hole 1215 and engage with the latching part 21 radially along the container cover 1. When unlocked, a portion of the locking member 1122 can retract into the lower cover 12 through the through hole 1215 radially along the container cover 1 and disengage from the latching part 21. Therefore, engaging or disengaging the locking member 1122 with the latching part 21 improves the reliability and stability of the connection or disconnection between the container cover 1 and the container body 2.

[0131] Specifically, when locked, a portion of the locking member 1122 abuts against the spring member 1121 along the height direction of the pot to restrict the movement of the spring member 1121 away from the upper cover 11.

[0132] When unlocking, the locking member 1122 and the spring-loaded member 1121 disengage along the height direction of lifting the pot, so that the spring-loaded member 1121 can move away from the top cover 11 to the position used to block the through hole 1215.

[0133] In this example, during the process of the container lid 1 closing onto the container body 2, that is, the locking element 1122 moves from... Figure 2 The unlock status shown has switched to Figure 1 In the locked state, the spring-loaded member 1121 can be pushed up and retracted by the opening of the container body 2 to avoid the through hole 1215, thereby allowing the locking member 1122 to extend out of the through hole 1215 and engage with the container body 2, and abut against the spring-loaded member 1121 in the height direction to restrict the movement of the spring-loaded member 1121 away from the upper cover 11, so that when it is necessary to open the container cover 1, that is, from Figure 1 The locked state shown has been switched to Figure 2 When in the unlocked state, simply release the locking member 1122 from the container body 2, that is, at least a part of the locking member 1122 retracts into the lower cover 12, and then the locking member 1122 and the spring-loaded member 1121 are released from contact in the height direction, so that the spring-loaded member 1121 will move away from the upper cover 11 according to its own elastic force, and then push up the container cover 1.

[0134] Meanwhile, the spring-loaded element 1121 can also extend to block the through hole 1215 and lift the upper cover 11 when the locking element 1122 is in the unlocked position. By blocking the through hole 1215 with the spring-loaded element 1121, the locking element 1122 is hidden. On the one hand, this prevents impurities from entering between the upper cover 11 and the lower cover 12 through the through hole 1215, thus preventing contamination inside the container lid 1 and providing a dustproof function. On the other hand, after the container lid 1 is opened, the through hole 1215 will not be exposed, resulting in a better appearance. In addition, the spring-loaded element 1121 can also prevent the locking element 1122 from extending out of the lower cover 12 and continuing to engage with the container body 2, facilitating smooth opening of the lid.

[0135] In one possible implementation, such as Figure 1 and Figure 3 As shown, the drive assembly 112 also includes a plurality of first elastic elements 3. Along the height direction of lifting the pot, one end of the first elastic element 3 is connected to the upper cover 11, and the other end is connected to the spring-loaded element 1121.

[0136] When locked, the locking member 1122 and the spring member 1121 abut against each other in the height direction, so that the first elastic member 3 is elastically deformed and maintained in a compressed state;

[0137] When unlocking, the locking member 1122 and the spring-loaded member 1121 disengage along the height direction, and the spring-loaded member 1121 moves away from the upper cover 11 under the action of the rebound force of the first elastic member 3.

[0138] Specifically, the spring-loaded member 1121 includes an abutment portion 1121c, which circumferentially presses against the opening of the container body 2, so that when the container lid 1 is closed on the container body 2, the spring-loaded member 1121 can circumferentially and uniformly compress the first elastic member 3, causing the first elastic member 3 to elastically deform. After the locking member 1122 is unlocked, the spring-loaded member 1121 can circumferentially support the opening of the container body 2. The spring-loaded member 1121 moves downward under the action of the rebound force of the first elastic member 3, thereby stably lifting the upper cover 11. The rebound process is stable and reliable.

[0139] The first elastic element 3 is a spring, and there are multiple springs distributed circumferentially along the abutment portion 1121c. When the container lid 1 is closed on the container body 2, the opening of the container body 2 is inserted into the container lid 1 and presses upward against the abutment portion 1121c. The abutment portion 1121c moves upward relative to the upper cover 11, and the first elastic element 3 is compressed and shortened. Then, the locking element 1122 is engaged with the container body 2, so that the container lid 1 is stably closed on the container body 2. When opening the lid, the locking element 1122 is first unlocked, releasing the engagement with the container body 2. The lower surface of the abutment portion 1121c abuts against the container body 2, the bottom end of the first elastic element 3 abuts against the abutment portion 1121c, and the top end extends to lift the upper cover 11, thereby lifting the lower cover 12 connected to the upper cover 11, as well as the locking element 1122 connected between the upper cover 11 and the lower cover 12, making it easy to open the lid.

[0140] Among them, such as Figure 1 and Figure 3 As shown, the spring-loaded component 1121 also includes an extension 1121b protruding along the height direction of the lifted pot. The outer diameter of the extension 1121b matches the inner diameter of the opening of the container body 2, so that the extension 1121b can extend into the container body 2 through the opening of the container body 2. During the process of the container body 2 lifting the spring-loaded component 1121, the extension 1121b can limit the container body 2, which is conducive to the smooth movement of the spring-loaded component 1121.

[0141] The lifting pot may include a second elastic element 4 and two locking elements 1122, such as Figures 1-3 As shown, the second elastic member 4 is used to elastically connect the two locking members 1122. The locking member 1122 includes a driving part 1122b and a locking piece 1122a, with the locking piece 1122a protruding relative to the driving part 1122b.

[0142] When unlocking, the two locking members 1122 approach each other along the radial direction of lifting the pot, the second elastic member 4 elastically deforms, and the locking piece 1122a and the extension 1121b abut against each other along the radial direction of lifting the pot to restrict the second elastic member 4 to remain in a compressed state.

[0143] When locked, the locking piece 1122a and the extension 1121b disengage radially from the lifting pot, and the locking piece 1122a extends out of the through hole 1215 under the action of the rebound force of the second elastic member 4.

[0144] When the container lid 1 is placed on the container body 2, i.e., when locked, simply pressing the container lid 1 down into place causes the spring-loaded member 1121 to move upward, causing the locking piece 1122a to disengage from the extension 1121b along the radial direction of the lifted container. The locking pieces 1122a of the two locking members 1122 then automatically extend out of the through hole 1215 under the rebound force of the second elastic member 4 and engage with the snap-fit ​​part 21 of the container body 2. No additional operation of the locking members 1122 is required from the user, making lid closing convenient. When unlocking is required, simply pinch the two driving parts 1122b to move the two locking pieces 1122a to the unlocked position away from the container body 2; operation is convenient.

[0145] When unlocking, the locking member 1122 tends to reset under the action of the second elastic member 4. However, since the locking piece 1122a and the extension 1121b abut against each other along the radial direction of the pot, the locking member 1122 cannot be re-engaged with the container body 2. This eliminates the need for the user to consider the issue of relocking the container lid 1 and the container body 2. Thus, when opening the lid, there is no need to continuously press the drive part 1122b; the container lid 1 can be lifted directly, making the operation convenient.

[0146] In addition, such as Figure 3 As shown, the top wall of the cover 11 is also provided with a first opening 115, through which the drive unit 1122b is exposed, and the drive unit 1122b is provided with a clearance space 1122c so that the user can drive the drive unit 1122b to facilitate unlocking.

[0147] In one possible implementation, such as Figure 2 As shown, the pot also includes a heat insulation component 13 that is detachably connected to the lower cover 12. The heat insulation component 13 has a heat insulation cavity 131, which is a vacuum, or the heat insulation cavity 131 has a heat insulation material, such as any one of foam plastic (polystyrene foam or polyurethane foam), aerogel, glass fiber, etc.

[0148] Specifically, the heat insulation component 13 is detachably mounted on the bottom of the lower cover 12 for easy cleaning. Furthermore, when the user does not require heat insulation or urgently needs to consume the food or liquid inside the container 2, the heat insulation component 13 can be removed, facilitating rapid cooling of the food or liquid inside the container 2. The heat insulation component 13 and the lower cover 12 can be detachably connected via snap-fit ​​or threaded connection. This application does not specify a particular method for the detachable connection between the heat insulation component 13 and the lower cover 12, as long as the heat insulation component 13 can be removed from the lower cover 12.

[0149] In addition, such as Figure 1As shown, a storage cavity 14 can also be provided between the lower cover 12 and the heat insulation component 13. The storage cavity 14 can store tableware and other items, eliminating the need for users to place tableware separately and improving the user experience.

[0150] In one possible implementation, such as Figure 15 As shown, along the height direction of the pot, when locked, at least a portion of the structure of the container lid 1 extends into the container body 2 to a depth of H, satisfying: 15mm ≤ H ≤ 50mm. In some possible embodiments, the depth H can be 15mm, 20mm, 25mm, 30mm, 30.8mm, 31mm, 33mm, 35mm, 40mm, 45mm, 50mm, etc.

[0151] In this embodiment, when the container lid 1 is in the locked state, the locking member 1122, the extension 1121b of the spring-loaded member 1121, the lower lid 12, and the heat insulation member 13 are all located inside the container body 2, which is beneficial to improving the heat preservation effect when lifting the pot. When at least a part of the structure of the container lid 1 extends into the container body 2 to a depth H that satisfies: 15mm≤H≤50mm, a larger part of the container lid 1 can extend into the container body 2, improving the heat preservation effect of the heat insulation member 13 on the food inside the container body 2, thereby improving the heat preservation effect when lifting the pot, and at the same time, it is beneficial to improve the stability and reliability of the container lid 1 when it is closed on the container body 2.

[0152] The above descriptions are merely specific implementations of the embodiments of this application, but the protection scope of the embodiments of this application is not limited thereto. Any changes or substitutions within the technical scope disclosed in the embodiments of this application should be covered within the protection scope of the embodiments of this application. Therefore, the protection scope of the embodiments of this application should be determined by the protection scope of the claims.

Claims

1. A lifting pot, characterized in that, The lifting pot includes: container body(2); A container lid (1) includes a drive assembly (112) that is movable relative to the container body (2) and is used to lock or unlock the container lid (1) and the container body (2). The drive assembly (112) includes a spring-loaded member (1121). During the process of unlocking the container lid (1) and the container body (2), the spring-loaded member (1121) can move along the height direction of the lifting pot to drive the container lid (1) to lift relative to the container body (2). The spring-loaded component (1121) is detachably connected to the container lid (1).

2. The lifting pot according to claim 1, characterized in that, The spring-loaded member (1121) includes a first protrusion (1121a), and the container lid (1) includes a mounting groove (111). The mounting groove (111) includes at least a limiting section (1111) and an opening section (1113) that are connected to each other. The opening section (1113) is used for the first protrusion (1121a) to be mounted in or detached from the mounting groove (111). The limiting section (1111) is used to restrict the first protrusion (1121a) from rotating relative to the container lid (1) so as to restrict the spring-loaded member (1121) from separating from the container lid (1).

3. The lifting pot according to claim 2, characterized in that, The limiting section (1111) and the opening section (1113) are arranged side by side along the outer periphery of the container lid (1), and both the limiting section (1111) and the opening section (1113) extend along the height direction of the lifting pot. The mounting groove (111) also includes a connecting section (1112), which connects the limiting section (1111) and the opening section (1113).

4. The lifting pot according to claim 3, characterized in that, The opening section (1113) has a first end (1113a) and a second end (1113b) arranged along the height direction of the lifting pot. One end of the connecting segment (1112) is connected to the first end (1113a), the other end of the connecting segment (1112) is connected to the limiting segment (1111), and the second end (1113b) penetrates the container cap (1) along the height direction.

5. The lifting pot according to claim 3, characterized in that, The connecting segment (1112) is bent relative to the limiting segment (1111) and the opening segment (1113), or the connecting segment (1112) is arc-shaped.

6. The lifting pot according to claim 3, characterized in that, Along the height direction of the pot lifting section, the two inner walls of the limiting section (1111) are adapted to the two outer walls of the first protrusion (1121a), and the connecting section (1112) is located between the two inner walls of the limiting section (1111) along the height direction of the pot lifting section. The connecting segment (1112) is inclined relative to the limiting segment (1111) and the opening segment (1113).

7. The lifting pot according to any one of claims 2-6, characterized in that, The container lid (1) includes an upper lid (11) and a lower lid (12). The mounting groove (111) is disposed on the upper lid (11). The spring-loaded member (1121) is installed between the upper lid (11) and the lower lid (12). The upper lid (11) includes at least one second protrusion (113). The lower lid (12) includes a body (121). The body (121) is provided with at least one groove (1211). The body (121) is provided with a notch (1212) communicating with the groove (1211). The second protrusion (113) can be screwed into the groove (1211) through the notch (1212). When the second protrusion (113) is located in the groove (1211), the second protrusion (113) abuts against the body (121) along the height direction of the pot.

8. The lifting pot according to claim 7, characterized in that, The upper cover (11) is also provided with at least one third protrusion (114), and the body (121) is also provided with at least one hook (1213). When the second protrusion (113) is located in the groove (1211), the hook (1213) and the third protrusion (114) abut against each other in the circumferential direction to restrict the upper cover (11) and the lower cover (12) from rotating relative to each other.

9. The lifting pot according to claim 8, characterized in that, One end of the hook (1213) is connected to the body (121), and the other end is a free end.

10. The lifting pot according to claim 7, characterized in that, The inner wall of the container body (2) is provided with a snap-fit ​​part (21), the drive assembly (112) further includes a locking member (1122), the lower cover (12) is provided with a through hole (1215), a part of the locking member (1122) can extend or retract into the lower cover (12) through the through hole (1215) so that the locking member (1122) and the snap-fit ​​part (21) can be locked or unlocked; When locked, a portion of the locking member (1122) abuts against the spring member (1121) along the height direction of the lifting pot to restrict the movement of the spring member (1121) away from the upper cover (11); Upon unlocking, the locking member (1122) and the spring-loaded member (1121) disengage along the height direction of the lifting pot, allowing the spring-loaded member (1121) to move away from the upper cover (11) to a position to block the through hole (1215); and / or, The drive assembly (112) also includes a plurality of first elastic elements (3). Along the height direction of the lifting pot, one end of the first elastic element (3) is connected to the upper cover (11), and the other end is connected to the spring-loaded element (1121).