A damped container lid and a damped container
Patent Information
- Application Number
- CN202522010809.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Priority Date
- 2025-07-14
- Filing Date
- 2025-09-18
- Publication Date
- 2026-09-01
- Estimated Expiration
- 2035-09-18
AI Technical Summary
[0002]目前,诸如保温杯、运动水壶等饮水容器为了方便快速饮用,往往在其容器盖上设置有与容器内腔体连通的导出通道、和用于打开或关闭该导出通道的盖子或吸嘴等转动件,如现有技术公开一件名称为带扭簧式杯盖的水杯的实用新型专利(公告号:CN214072784U),其吸嘴通过扭簧连接在杯盖上,操作者在操作吸嘴打开时,导致吸嘴会在扭簧的弹力作用下迅速转动而弹射式打开,容易造成吸嘴弹伤操作者的风险
本实用新型提供的阻尼容器盖,由于在盖本体上设置阻尼组件,且阻尼组件包括阻尼件一和阻尼件二,阻尼件一与活动组件转动轴线同轴布置、并与活动组件同步转动,阻尼件二与盖本体相对固定连接、并能够在阻尼件一转动时提供一个减缓所述阻尼件一转动的摩擦阻力,因此活动组件能够在第一复位件的作用力下转动打开过程中,通过阻尼件一随活动组件相对盖本体上的阻尼件二转动来减缓活动组件的弹起速度,避免活动组件在解锁后快速弹起,而弹伤操作者,大大提高了使用的安全性。
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Figure CN224698965U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of drinking containers, and in particular to a damping container lid and a damping container. Background Technology
[0002] Currently, drinking containers such as thermos cups and sports water bottles often have an outlet channel communicating with the inner cavity of the container on their lids for convenient and quick drinking, as well as rotating parts such as lids or spouts for opening or closing the outlet channel. For example, a utility model patent (publication number: CN214072784U) disclosed in the prior art is a water cup with a torsion spring lid. Its spout is connected to the lid by a torsion spring. When the operator operates to open the spout, the spout will rotate rapidly under the elastic force of the torsion spring and open in a spout-like manner, which can easily cause the spout to jump and injure the operator. Summary of the Invention
[0003] This invention addresses the shortcomings of existing technologies by providing a damping container cover and a damping container, which can slow down the opening speed of the moving components, thereby preventing the moving components from injuring the operator during the opening process and greatly improving the safety of use.
[0004] The technical solution adopted in this utility model is as follows: A damping container cover includes a cover body, a movable component, and a damping component. The cover body is connectable to a container body and has an outlet channel that communicates with a receiving cavity inside the container body. The movable component is rotatably connected to the cover body and can rotate between a closed position that closes the outlet channel and an open position that opens the outlet channel. A first reset member is provided between the movable component and the cover body for resetting the movable component to the open position. The damping component is disposed on the cover body and includes a damping element one and a damping element two. The damping element one is coaxially arranged with the rotation axis of the movable component and rotates synchronously with the movable component. The damping element two is fixedly connected to the cover body and can provide a frictional resistance to reduce the rotation of the damping element one when the damping element one rotates.
[0005] Preferably, the cover body is provided with at least one damping base arranged on the side of the movable component, the second damping element is positioned on the damping base, and the first damping element is positioned on the movable component.
[0006] Preferably, the first damping component includes a damping shaft, and the second damping component includes a damping sleeve. The damping shaft is sleeved inside the damping sleeve and is connected to the damping sleeve by an interference fit through a flexible structure. The flexible structure is configured as a portion of the outer wall of the damping shaft; or... The flexible structure is configured as a portion of the inner wall of the damping sleeve; or... The flexible structure is configured as a portion of the outer wall of the damping shaft and a portion of the inner wall of the damping sleeve; or... The flexible structure is configured to be arranged between the outer wall of the damping shaft and the inner wall of the damping sleeve.
[0007] Preferably, the damping component one further includes a damping positioning part one disposed on the damping shaft, and the movable component is provided with a damping mounting part one that matches the damping positioning part one. The damping component one and the movable component are installed and positioned by the damping positioning part one and the damping mounting part one cooperating.
[0008] Preferably, the damping positioning part 1 protrudes outward from the end face of the damping shaft, and the damping mounting part 1 is configured as a groove structure on the movable component that matches the damping positioning part 1. The damping component 1 and the movable component are installed and positioned in the damping mounting part 1 through the concave-convex fit of the damping positioning part 1.
[0009] Preferably, the second damping component further includes a second damping positioning part disposed on the damping sleeve, and a second damping mounting part disposed on the damping base that matches the second damping positioning part. The second damping component and the damping base are installed and positioned by the cooperation of the second damping positioning part and the second damping mounting part.
[0010] Preferably, the second damping positioning part protrudes outward from the outer side wall of the damping sleeve, and the second damping mounting part is configured as a groove structure on the damping base. The second damping element and the damping base are installed and positioned within the second damping mounting part through the concave-convex fit of the second damping positioning part.
[0011] Preferably, the device further includes a locking element and a handle. The locking element is movably connected to the cover body or the movable component and configured to selectively hold the movable component in the closed position. The locking element is movable relative to the cover body or the movable component between a locked state and an unlocked state. In the locked state, the locking element holds the movable component in the closed position, and in the unlocked state, the locking element allows the movable component to return to the open position. The handle is rotatably connected to the cover body and is rotatably connected to switch from a first state that holds the locking element in the locked state to a second state that releases the locking element.
[0012] Preferably, the top of the cover body is recessed with a receiving groove, and the left and right side walls of the receiving groove are respectively set as side baffles; the movable component is set as a suction nozzle structure, the suction nozzle structure includes a rotating wheel, rotating shafts protruding from both sides of the rotating wheel along the rotation axis of the suction nozzle structure, and a suction nozzle connected to the rotating wheel. The suction nozzle structure is provided with a drinking channel penetrating the rotating wheel and the suction nozzle. The two rotating shafts extend into the rotating shaft holes on the side baffles and are rotatably connected to the cover body; the damping component is set on the side of one of the side baffles away from the receiving groove, and the first reset component is set between the other side baffle and the rotating wheel; when the suction nozzle structure is in the closed position, the suction nozzle structure is housed in the receiving groove and the outlet channel is closed by the outer wall of the rotating wheel; when the suction nozzle structure is in the open position, the drinking channel and the outlet channel are connected.
[0013] This utility model also provides a damping container, including a container body having a receiving cavity and a damping container cover as described above connected to the container body.
[0014] The beneficial effects achieved by this utility model are as follows: The damping container lid provided by this utility model has a damping component on the lid body, which includes a damping element one and a damping element two. The damping element one is arranged coaxially with the rotation axis of the movable component and rotates synchronously with the movable component. The damping element two is fixedly connected to the lid body and can provide a frictional resistance to slow down the rotation of the damping element one when the damping element one rotates. Therefore, during the opening process of the movable component under the action of the first reset element, the pop-up speed of the movable component is slowed down by the rotation of the damping element one relative to the damping element two on the lid body of the movable component, so as to avoid the movable component popping up quickly after unlocking and injuring the operator, which greatly improves the safety of use.
[0015] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0016] The accompanying drawings, which are included to provide a further understanding of the present invention and form part of this application, illustrate exemplary embodiments of the present invention and, together with the description thereof, serve to explain the present invention and do not constitute an undue limitation thereof. In the drawings: Figure 1 This is a schematic diagram of the structure of the damping container cover according to the first embodiment of this utility model.
[0017] Figure 2 This is an exploded view of the damping container cover according to the first embodiment of this utility model.
[0018] Figure 3This is an exploded view of the active component and damping component of the first embodiment of the present invention.
[0019] Figure 4 This is a partial structural schematic diagram of the damping container cover according to the first embodiment of the present invention.
[0020] Figure 5 A cross-sectional view of the damping container cover according to the first embodiment of this utility model. Figure 1 .
[0021] Figure 6 A cross-sectional view of the damping container cover according to the first embodiment of this utility model. Figure 2 .
[0022] Figure 7 This is an exploded view of a portion of the structure of the damping container cover according to the second embodiment of this utility model.
[0023] Figure 8 This is a partial structural schematic diagram of the damping container cover according to the second embodiment of the present invention.
[0024] Figure 9 This is an exploded view of the damping container cover according to the second embodiment of this utility model.
[0025] Figure 10 This is a schematic diagram of the structure of the damping container cover according to the third embodiment of this utility model.
[0026] Figure 11 This is an exploded view of a portion of the structure of the damping container cover according to the third embodiment of this utility model.
[0027] Figure 12 This is a partial structural schematic diagram of the damping container cover according to the third embodiment of this utility model.
[0028] Figure 13 This is an exploded view of the damping container cover according to the third embodiment of this utility model.
[0029] Figure 14 This is a schematic diagram of the damping container according to the fourth embodiment of the present invention.
[0030] Reference numerals: Cover body 1, Storage base 11, Outlet channel 12, Receiving groove 13, Rear partition 131, Side partition 132, Rotary shaft hole 1321, Flexible part 133, Exhaust channel 1331, Straw connection part 1332, Locking channel 134, Damping base 14, Damping mounting part 2 141, Connecting seat 15, Shaft channel 1 151, Upper body 10, Lower body 20, Straw base 20b, Cover part 30, Silicone sealing gasket 40, Buckle 3 40a, Groove 3 40b, Movable component 2, Rotary wheel part 21, Rotary shaft 211, Damping mounting part 1 212, Damping mounting plate 213, Nozzle part 22, Locking buckle 1 221, Exhaust plug 222, Drinking channel 23, Nozzle opening 231, Handle ring 3, Drive shaft 31, Lifting ring body 32. Locking component 4. Locking body 41. Locking arm 42. Pressure plate 43. First reset component 6. Second reset component 7. Damping assembly 8. Damping component one 81. Damping pivot 811. Damping positioning part one 812. Damping component two 82. Damping sleeve 821. Damping positioning part two 822. Container body 9. Drive part 101. Trigger part 102. Top pressure surface 1021. Locking part one 103. Locking part two 104. Closed position A1. Open position A2. Locked state B1. Unlocked state B2. First state X1. Second state X2. Storage position Y1. Carrying position Y2. Drive position Y3. First rotation direction M. Second rotation direction N. Handle ring rotation axis L1. Movable component rotation axis L2. Locking body rotation axis L3. Detailed Implementation
[0031] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this utility model. All other embodiments obtained by those skilled in the art based on the described embodiments of this utility model without creative effort are within the scope of protection of this utility model.
[0032] In the description of this utility model, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0033] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0034] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0035] Unless otherwise defined, the technical or scientific terms used herein shall have the ordinary meaning as understood by one of ordinary skill in the art to which this invention pertains. The terms “first,” “second,” and similar terms used in this patent application specification and claims do not indicate any order, quantity, or importance, but are merely used to distinguish different components. Similarly, the terms “an” or “a” and similar terms do not indicate a limitation of quantity, but rather indicate the presence of at least one.
[0036] like Figures 1-6 As shown, in the first embodiment of this utility model, a damping container cap is provided for covering the container body of a drinking container. The damping container cap includes a cap body 1, a movable component 2, and a damping component 8, wherein the movable component 2 is configured as a spout structure.
[0037] The lid body 1 can be connected to the container body and is provided with an outlet channel 12 that can communicate with the containment cavity inside the container body, so that the liquid container medium such as water and beverage in the containment cavity can be exported to the outside through the outlet channel 12.
[0038] The movable component 2, which is the suction nozzle structure in this embodiment, is rotatably connected to the cap body 1 and is configured to selectively close the outlet channel 12. It can rotate between the closed position A1 of closing the outlet channel 12 and the open position A2 of opening the outlet channel 12. When the movable component 2, which is the suction nozzle structure in this embodiment, is in the closed position A1, the movable component 2, which is the suction nozzle structure in this embodiment, closes the outlet channel 12. At this time, the liquid containing medium in the receiving cavity of the container body cannot be discharged to the outside through the outlet channel 12. When the movable component 2, which is the suction nozzle structure in this embodiment, is in the open position A2, the movable component 2, which is the suction nozzle structure in this embodiment, does not close the outlet channel 12. At this time, the liquid containing medium in the receiving cavity of the container body can be discharged to the outside through the outlet channel 12. A first reset member 6 is provided between the movable component 2 (i.e., the suction nozzle structure in this embodiment) and the cover body 1 to reset the movable component 2 (i.e., the suction nozzle structure in this embodiment) to the open position A2. This first reset member 6 is a torsion spring, so that after the movable component 2 (i.e., the suction nozzle structure in this embodiment) is unlocked, it can automatically spring up to the open position A2 under the force of the first reset member 6, and hold the movable component 2 (i.e., the suction nozzle structure in this embodiment) in the open position A2, thereby facilitating the opening of the movable component 2 (i.e., the suction nozzle structure in this embodiment). In other embodiments, the first reset member 6 can also be a rubber band, tension spring, compression spring, elastic silicone, or other elastic components that can provide a reset force.
[0039] The damping assembly 8 is disposed on the cover body 1. The damping assembly 8 includes a damping element 1 81 and a damping element 2 82. The damping element 1 81 is arranged coaxially with the rotation axis L2 of the movable component, which is the rotation axis of the suction structure in this embodiment, and rotates synchronously with the movable component 2, which is the suction structure in this embodiment. The damping element 2 82 is fixedly connected to the cover body 1 and can provide a frictional resistance to reduce the rotation of the damping element 1 81 when the damping element 1 81 rotates.
[0040] In this embodiment, the damping container lid has a damping component 8 on the lid body 1. Therefore, during the rotational opening process of the movable component 2, which is the suction nozzle structure in this embodiment, the damping component 1 81 rotates with the movable component 2, which is the suction nozzle structure in this embodiment, relative to the damping component 2 82 on the lid body 1. This slows down the pop-up speed of the movable component 2, which is the suction nozzle structure in this embodiment, and prevents the movable component 2, which is the suction nozzle structure in this embodiment, from popping up quickly after unlocking and injuring the operator, thus greatly improving the safety of use. In addition, it can also prevent the movable component 2, which is the suction nozzle structure in this embodiment, from ejecting the liquid in the container cavity and splashing it onto the operator or scalding the operator.
[0041] like Figure 2 , Figure 3As shown, in some specific embodiments, a damping base 14 is provided on the cover body 1, arranged on the side of the movable component 2, i.e., the suction nozzle structure in this embodiment. A second damping element 82 is positioned and installed on the damping base 14, and a first damping element 81 is positioned and installed on the movable component 2, i.e., the suction nozzle structure in this embodiment, facilitating the assembly and positioning of the damping component 8. In this embodiment, the second damping element 82 is detachably positioned and connected to the damping base 14, and the first damping element 81 is detachably positioned and connected to the movable component 2, i.e., the suction nozzle structure in this embodiment, facilitating subsequent replacement or maintenance of the damping component 8. In other embodiments, the second damping element 82 can also be fixedly positioned and connected to the damping base 14, and the first damping element 81 can also be fixedly positioned and connected to the movable component 2, i.e., the suction nozzle structure in this embodiment, to improve the stability of the connection. In other embodiments, two or more damping bases 14 can be provided, and correspondingly, two or more damping components 8 can also be provided.
[0042] like Figure 3 As shown, in some specific embodiments, damping component one 81 includes a damping shaft 811, and damping component two 82 includes a damping sleeve 821. The damping shaft 811 is sleeved inside the damping sleeve 821 and is connected to the damping sleeve 821 by an interference fit through a flexible structure. This flexible structure can be a portion of the outer wall of the damping shaft 811, or a portion of the inner wall of the damping sleeve 821, or a portion of both the outer wall of the damping shaft 811 and the inner wall of the damping sleeve 821, or a structure arranged between the outer wall of the damping shaft 811 and the inner wall of the damping sleeve 821. All of these configurations can increase the frictional resistance between damping component one 81 and damping component two 82. The flexible structure is made of flexible materials such as flexible silicone or flexible rubber, and can be interference-fitted between the damping shaft 811 and the damping sleeve 821.
[0043] In some specific embodiments, the damping component 81 further includes a damping positioning part 812 disposed on the damping shaft 811. The movable component 2, which is the suction nozzle structure in this embodiment, is provided with a damping mounting part 212 that matches the damping positioning part 812. The damping component 81 and the movable component 2, which is the suction nozzle structure in this embodiment, are installed and positioned by the damping positioning part 812 and the damping mounting part 212, which facilitates the assembly of the damping component 81 and the movable component 2, which is the suction nozzle structure in this embodiment.
[0044] In some specific embodiments, the damping positioning part 812 protrudes outward from the end face of the damping shaft 811, and the damping mounting part 212 is configured as a groove structure on the movable component 2, i.e., the suction nozzle structure in this embodiment, that matches the damping positioning part 812. The damping component 81 and the movable component 2, i.e., the suction nozzle structure in this embodiment, are installed and positioned within the damping mounting part 212 through the concave-convex fit of the damping positioning part 812. The structure is simple and easy to assemble and position. As another embodiment of this utility model, the damping positioning part 812 can also be recessed inward from the end face of the damping shaft, and the damping mounting part 812 can be configured as a protrusion structure on the movable component, i.e., the suction nozzle structure in this embodiment, that matches the damping positioning part 812. This also allows the damping component 812 and the movable component, i.e., the suction nozzle structure in this embodiment, to be installed and positioned within the damping mounting part 812 through the concave-convex fit of the damping positioning part 812.
[0045] In some specific embodiments, the second damping component 82 further includes a second damping positioning part 822 disposed on the damping sleeve 821, and a second damping mounting part 141 that matches the second damping positioning part 822 is disposed on the damping base 14. The second damping component 82 and the damping base 14 are installed and positioned by the cooperation of the second damping positioning part 822 and the second damping mounting part 141, which facilitates the assembly of the second damping component 82 and the damping base 14.
[0046] In some specific embodiments, the second damping positioning part 822 protrudes outward from the outer wall of the damping sleeve 821, and the second damping mounting part 141 is configured as a groove structure on the damping base 14. The second damping member 82 and the damping base 14 are installed and positioned within the second damping mounting part 141 through the concave-convex fit of the second damping positioning part 822. The structure is simple and the assembly and positioning are convenient. As another embodiment of this utility model, the second damping positioning part can also be recessed inward from the outer wall of the damping sleeve, and the second damping mounting part can be configured as a protrusion structure on the damping base that matches the second damping positioning part. This also allows the second damping member and the damping base to be installed and positioned within the second damping mounting part through the concave-convex fit of the second damping positioning part. In other embodiments, the second damping positioning part can also be located at the end of the damping sleeve or at other positions.
[0047] like Figure 1 , Figure 3As shown, in some specific embodiments, the top of the cover body 1 is recessed with a receiving groove 13, and the left and right side walls of the receiving groove 13 are respectively set as side baffles 132. The movable component 2, which is the suction structure in this embodiment, includes a rotating wheel 21, rotating shafts 211 protruding on both sides of the rotating wheel 21 along the rotation axis L2 of the movable component, which is the rotation axis of the suction structure in this embodiment, and a suction part 22 connected to the rotating wheel 21. The suction structure is provided with a drinking channel 23 that passes through the rotating wheel 21 and the suction part 22. The two rotating shafts 211 extend into the rotating shaft holes 1321 on the side baffles 132 and are rotatably connected to the front of the cover body 1. The damping component 8 is disposed on one side of one of the side baffles 132 away from the receiving groove 13, and the first reset component 6 is disposed between the other side baffle 132 and the rotating wheel 21. The structure is cleverly arranged. One of the rotating shafts 211 has a damping mounting plate 213 protruding radially therefrom. The damping mounting plate 213 is arranged on the side of the side partition 132 away from the receiving groove 13. The damping mounting part 212 is provided on the damping mounting plate 213, so that the damping mounting part 212 can be hidden inside the cover body 1. In other embodiments, the damping mounting part 212 can also be provided on the outer wall of the rotating part or other positions. When the movable component 2, that is, the suction structure in this embodiment, is in the closed position A1, the movable component 2, that is, the suction structure in this embodiment, is housed in the receiving groove 13, and the suction part 22 is arranged facing the rear of the cover body 1. The outlet channel 12 is closed by the outer wall of the rotating part 21. At this time, the liquid holding medium in the receiving cavity of the container cannot be discharged to the outside through the outlet channel 12. When the active component 2, which is the nozzle structure in this embodiment, is in the open position A2, the drinking channel 23 is connected to the outlet channel 12. At this time, the liquid holding medium in the container cavity can be discharged to the outside from the outlet channel 12 through the drinking channel 23.
[0048] like Figure 2As shown, in some specific embodiments, the cover body 1 includes a cover base, the cover base includes an upper body 10 and a lower body 20 detachably connected to the lower side of the upper body 10. The upper body 10 and the lower body 20 are detachably connected by fasteners such as screws (not shown in the figure), and a silicone sealing gasket 40 is provided at the fastener connection to improve the sealing performance of the connection. After connection, the upper body 10 and the lower body 20 form an installation chamber around each other. The damping component 8 is arranged in the installation chamber, and the receiving groove 13 and the rotating shaft hole 1321 are both formed by the upper body 10 and the lower body 20, which facilitates the assembly of the damping component 8 and the movable component 2, which is the suction nozzle structure in this embodiment. A flexible member 133 is installed on the bottom wall of the receiving groove 13. The outlet channel 12 is provided through the flexible member 133 and the lower body 20. When the movable component 2, that is, the suction nozzle structure in this embodiment, is in the closed position A1, it can be press-fitted with the outer wall of the rotating part 21 to seal the outlet channel 12 and prevent liquid from leaking to the outside from the gap between the outlet channel 12 and the outer wall of the rotating part 21. A venting channel 1331 is also provided through the flexible component 133 and the lower body 20. A vent plug 222, corresponding to the venting channel 1331, is provided on the nozzle 22. When the movable component 2, i.e., the nozzle structure in this embodiment, is in the open position A2, the drinking channel 23 is connected to the outlet channel 12, and the venting channel 1331 is open, allowing air to circulate between the container's cavity and the outside, thus balancing the air pressure within the cavity. When the movable component 2, i.e., the nozzle structure in this embodiment, is in the closed position A1, the outlet channel 12 is closed by the rotating wheel 21, and the venting channel 1331 is closed by the vent plug 222, thereby preventing liquid in the cavity from leaking to the outside through the drinking channel 23 or the venting channel 1331. A straw base 20b for connecting a straw that extends into the cavity is also provided at the bottom of the lower body 20. In other embodiments, the upper body and lower body can also be detachably connected by a snap-fit structure or fixedly connected by ultrasonic welding, adhesive bonding, or other methods.
[0049] like Figure 4 As shown, in some specific embodiments, a locking element 4 and a handle ring 3 are also included.
[0050] The locking member 4 is movably connected to the cover body 1 and is configured to selectively hold the movable component 2, i.e., the suction nozzle structure in this embodiment, in the closed position A1. The locking member 4 is movable relative to the cover body 1 between a locked state B1 and an unlocked state B2. In the locked state B1, the locking member 4 holds the movable component 2, i.e., the suction nozzle structure in this embodiment, in the closed position A1, and at this time, the movable component 2, i.e., the suction nozzle structure in this embodiment, is not allowed to rotate from the closed position A1 to the open position A2 under the action of the first reset member 6. In the unlocked state B2, the locking member 4 allows the movable component 2, i.e., the suction nozzle structure in this embodiment, to rotate from the closed position A1 to the open position A2 under the action of the first reset member 6.
[0051] The handle 3 is rotatably connected to the lid body 1. The handle 3 can be rotated to switch from a first state X1, where the locking member 4 is in a locked state B1, to a second state X2, where the locking member 4 is in an unlocked state B2. The handle 3 is in the first state X1 when it is in the storage position Y1 and the carrying position Y2. The storage position Y1 is the position where the handle 3 is resting or closed on the storage seat 11 on the outside of the lid body 1, and the carrying position Y2 is the position where the handle 3 is raised for lifting the container.
[0052] The container lid of this embodiment includes a lid body 1, a movable component 2 (i.e., the suction nozzle structure in this embodiment), a locking member 4, and a handle 3. The handle 3 can be rotated to switch from a first state X1 (keeping the locking member 4 in a locked state B1) to a second state X2 (keeping the locking member 4 in an unlocked state B2). This allows the operator to rotate the handle 3 from the first state X1 to the second state X2, thereby moving the locking member 4 from the locked state B1 to the unlocked state B2, thus unlocking the movable component 2 (i.e., the suction nozzle structure in this embodiment). Based on the lever principle, this operation is easier and less strenuous than the button-based unlocking mechanism in existing technologies. Furthermore, the handle 3 is in the first state X1 when at the carrying position Y2. That is, when the operator pulls the handle 3 to move the container, the handle 3 remains in the first state X1 (keeping the locking member 4 in the locked state B1). In state X1, the handle ring 3 prevents the locking member 4 from unlocking the movable component 2 (the suction nozzle structure in this embodiment) during container lifting and movement. This prevents accidental unlocking of the movable component 2 (the suction nozzle structure in this embodiment). Furthermore, the handle ring 3 can rotate to rest or close in the storage base 11, facilitating container placement in a backpack. When the handle ring 3 is in storage position Y1, it is in state X1, ensuring that the locking member 4 is locked in state B1. This prevents the handle ring 3 from unlocking the movable component 2 (the suction nozzle structure in this embodiment) during container carrying, thus ensuring safety during container lifting and carrying while allowing the locking member 4 to be unlocked by rotating the handle ring 3.
[0053] In this embodiment, the handle 3 is in the first state X1 when it rotates from the storage position Y1 to the carrying position Y2 along the first rotation direction M. After the handle 3 rotates a set angle from the carrying position Y2 along the first rotation direction M, it drives the locking member 4 to move relative to the movable component 2, which is the suction nozzle structure in this embodiment, and enters the second state X2. In the second state X2, the locking member 4 is in the unlocked state B2, and the movable component 2, which is the suction nozzle structure in this embodiment, can rotate relative to the cover body 1 to the open position A2 under the force of the first reset member 6. In this embodiment, the handle 3 needs to rotate a set angle before it can switch from the carrying position Y2 to the second state X2. This can prevent the handle 3 from driving the locking member 4 to unlock the movable component 2, which is the suction nozzle structure in this embodiment, due to the shaking of the container during the operation of the operator lifting the handle 3 to move the container, thus ensuring the safety of the container when it shakes during the lifting and moving process.
[0054] like Figure 6As shown, in some specific embodiments, when the handle ring 3 rotates from the storage position Y1 to the driving position Y3 along the first rotation direction M, it is in the first state X1. The driving position Y3 is the position where the handle ring 3 triggers the locking member 4 to move from the locked state B1 to the unlocked state B2. The carrying position Y2 is located between the storage position Y1 and the driving position Y3. The locking member 4 is not triggered when the handle ring 3 rotates along the first rotation direction M between the storage position Y1 and the driving position Y3, or rotates along the second rotation direction N opposite to the first rotation direction M. In this embodiment, when the operator rotates the handle ring 3 along the first rotation direction M, it can sequentially pass through the storage position Y1, the carrying position Y2, and the driving position Y3 to the second state X2. Thus, while opening the handle ring 3 along the first rotation direction M, the active component 2, i.e., the suction nozzle structure in this embodiment, can be unlocked simultaneously. Opening the handle ring 3 and unlocking the active component 2, i.e., the suction nozzle structure in this embodiment, can be done in one step, making the operation simple and convenient. After rotating a set angle from the storage position Y1 along the first rotation direction M, the handle 3 enters the carrying position Y2, so that the carrying position Y2 and the storage position Y1 are spaced apart to form a certain set angle. This can prevent the handle 3 from interfering with the movement of the locking member 4 toward the unlocked state B2 when the operator pulls the handle 3 in the carrying position Y2 and operates the movable component 2, i.e., the suction nozzle structure in this embodiment, to lock. After rotating a set angle from the carrying position Y2 along the first rotation direction M, the handle 3 enters the driving position Y3, so that the carrying position Y2 and the driving position Y3 are spaced apart to form a certain set angle. This can prevent the handle 3 from driving the locking member 4 to unlock the movable component 2, i.e., the suction nozzle structure in this embodiment, when the operator pulls the handle 3 to move the container in the carrying position Y2, due to the shaking of the container.
[0055] like Figure 4 As shown, in some specific embodiments, the movable component 2, which is the suction nozzle structure in this embodiment, includes a locking part 103, and the locking member 4 includes a locking part 2 104 arranged corresponding to the locking part 103. The locking part 2 104 can extend movably into the receiving groove 13. When the locking member 4 is in the locked state B1, the movable component 2, which is the suction nozzle structure in this embodiment, can be kept in the closed position A1 by locking the locking part 2 104 and the locking part 103 together. When the locking member 4 is in the unlocked state B2, the movable component 2, which is the suction nozzle structure in this embodiment, can be allowed to move relative to the cover body 1 to the open position A2 by separating the locking part 2 104 and the locking part 103.
[0056] In some specific embodiments, a second reset member 7 is provided between the locking member 4 and the cover body 1. The second reset member 7 is configured as a compression spring, which is used to reset the locking member 4 to the locked state B1. After the handle ring 3 drives the locking member 4 to move to the unlocked state B2, the locking member 4 can automatically spring back to the locked state B1 under the force of the second reset member 7 by releasing the handle ring 3, thereby making it convenient to keep the locking member 4 in the locked state B1.
[0057] like Figure 4As shown, in some specific embodiments, the locking member 4 includes a trigger part 102, and the handle ring 3 includes a lifting ring part and a driving part 101. The lifting ring part includes a lifting ring body 32 and two driving shafts 31. The lifting ring body 32 is constructed as a non-closed ring structure. The two driving shafts 31 are respectively connected to both ends of the lifting ring body 32 and are arranged coaxially with the rotation axis L1 of the handle ring. The two driving shafts 31 are rotatably connected to both sides of the cover body 1. Two driving parts 101 are provided, and the two driving parts 101 are respectively protruding from the ends of the two driving shafts 31. The locking member 4 is provided with two trigger parts 102 corresponding to the two driving parts 101. The trigger parts 102 and the corresponding driving parts 101 are located on the same rotation plane arranged along the first rotation direction M, and the driving parts 101 can rotate with the rotation of the handle ring 3 around the rotation axis L1 of the handle ring between the two sides of the trigger parts 102 arranged along the rotation axis L1 of the handle ring. When the handle 3 is in the storage position Y1, the handle body 32 is stably placed on the storage base 11 for easy storage of the handle 3. At this time, the drive unit 101 is located on one side of the trigger unit 102 along the handle rotation axis L1. When the handle 3 is in the carrying position Y2, the side of the handle body 32 away from the handle rotation axis L1 is spaced above the storage base 11, making it convenient for the operator to lift the handle 3 to move the container. At this time, the drive unit 101 is located on the trigger unit 102 along the handle rotation axis L1. The two sides of the drive unit 101 arranged along the rotation axis L1 of the handle ring are spaced apart from the two sides of the trigger unit 102 arranged along the rotation axis L1 of the handle ring. This avoids the drive unit 101 and the trigger unit 102 abutting against each other, which would cause the handle ring 3 to interfere with the movement of the locking member 4 toward the unlocked state B2 during the operation of the movable component 2, i.e., the suction nozzle structure in this embodiment, when locking. It also avoids the drive unit 101 and the trigger unit 102 abutting against each other, which would cause the operation of the trigger unit 102 to interfere with the movement of the locking member 4 toward the unlocked state B2. During the process of moving the container by lifting the handle 3, the container shook, causing the handle 3 to drive the locking member 4 to unlock the movable component 2, which is the suction nozzle structure in this embodiment. When the handle 3 is in the driving position Y3, the side of the handle body 32 away from the handle rotation axis L1 is arranged at intervals on the rear side of the storage base 11. At this time, the driving part 101 is located on the other side of the trigger part 102 arranged along the handle rotation axis L1, and the two driving parts 101 abut against the trigger parts 102 arranged therewith, and can rotate with the two driving shafts 31 along the first rotation direction M, and synchronously push the trigger parts 102 arranged therewith along the tangent direction of the first rotation direction M, so as to jointly drive the locking member 4 from the locked state B1 to the unlocked state B2. Thus, the rotation of the handle 3 drives the locking member 4 to move from the locked state B1 to the unlocked state B2, so that the movable component 2, which is the suction nozzle structure in this embodiment, moves from the closed position A1 to the open position A2 under the action of the first reset member 6.When the handle ring 3 is in the undriven position between the storage position Y1 and the driving position Y3, the driving unit 101 does not trigger the trigger unit 102 to move when it rotates along the first rotation direction M or along the second rotation direction N.
[0058] like Figure 1 As shown, in some specific embodiments, the storage base 11 is arranged in front of the handle ring rotation axis L1, and the cover body 1 includes two connecting seats 15 arranged behind the storage base 11, with a locking member 4 arranged between the two connecting seats 15. The two connecting seats 15 are arranged at intervals along the handle ring rotation axis L1, forming a gap area between them, and two trigger parts 102 are arranged in the gap area. The two ends of the handle ring 3 are rotatably connected to the two connecting seats 15 respectively via drive shafts 32. In this embodiment, the two drive shafts 31 are respectively configured as convex shaft structures protruding from the inner sidewalls of the two ends of the handle ring body 32. The two connecting seats 15 are respectively provided with shaft channels 151 arranged corresponding to the drive shafts 31 along the handle ring rotation axis L1. The two drive shafts 31 extend into the shaft channels 151 and are rotatably connected to the two connecting seats 15. After connection, the drive part 101 is arranged in the gap area. In this embodiment, when the handle ring 3 rotates, the handle ring body 32 rotates on the outside of the connecting seat 15, and the driving part 101 rotates in the interval area inside the connecting seat 15. Thus, by rotating the handle ring body 32 on the outside of the connecting seat 15, the driving part 101 inside the connecting seat 15 drives the trigger part 102 in the interval area to move.
[0059] like Figure 2 As shown, in some specific embodiments, the cover body 1 also includes a cover 30 mounted on the cover base for covering the locking member 4, and the connecting seat 15 is configured as part of the cover base and the cover 30.
[0060] In some specific embodiments, the locking member 4 is slidably connected to the cover body 1 in the front-back direction. When the locking member 4 is in the locked state B1, the trigger part 102 is arranged above the handle ring rotation axis L1. When the handle ring 3 is in the driving position Y3, the trigger part 102 can move behind the handle ring rotation axis L1 under the pushing force of the driving part 101, so as to drive the locking member 4 to move backward from the locked state B1 to the unlocked state B2. The second reset member 7 is arranged between the locking member 4 and the cover body 1 in the front-back direction. Under its elastic force, it can push the locking member 4 to move forward from the unlocked state B2 to the locked state B1.
[0061] like Figure 4As shown, in some specific embodiments, the locking part 103 is set as the mouthpiece 231 at the free end of the drinking channel 23. When the locking member 4 is in the locked state B1, the mouthpiece structure can be held in the closed position A1 by the locking part 204 extending into the mouthpiece 231. When the movable component 2, that is, the mouthpiece structure in this embodiment, is in the open position A2, the locking part 204 is separated from the mouthpiece 231, and the drinking channel 23 can be connected to the outlet channel 12. At this time, the liquid holding medium in the container cavity can be discharged to the outside from the outlet channel 12 through the drinking channel 23. In this embodiment, the mouthpiece 231 serves as both part of the drinking channel 23 and the locking part 103, and the structural design is simple and ingenious. In other embodiments, the locking part 1 can also be set as a separate structure on the outer wall of the mouthpiece or the rotating wheel, or other parts.
[0062] like Figure 2 As shown, in some specific embodiments, the rear sidewall of the receiving groove 13 is configured as a rear partition 131, and the locking member 4 is arranged on the rear side of the rear partition 131. The locking member 4 includes a locking body 41, a second locking part 104 protruding from the front side of the locking body 41, and two trigger parts 102 protruding from both sides of the locking body 41 along a line parallel to the rotation axis L1 of the handle ring. The front side of the trigger part 102 forms a contact surface 1021 for abutting against the drive part 101. A locking channel 134 corresponding to the second locking part 104 is provided through the rear partition 131, and the second locking part 104 is retractably arranged in the locking channel 134. In this embodiment, when the locking member 4 is in the locked state B1, the second locking part 104 can extend into the receiving groove 13 and lock with the first locking part 103. The first reset member 6 is arranged in the front-rear direction between the front wall of the locking member 4 and a part of the cover body 1 behind the front wall of the locking member 4. When the operator rotates the handle ring 3 in the first rotation direction M to switch from the minimum driving position Y3 to the second state X2, the driving part 101 pushes the abutment surface 1021 and pushes the trigger part 102 to move backward with the rotation of the driving shaft 31. The trigger part 102 locks the body. 41 drives the second locking part 104 to extend and retract relative to the locking channel 134 until the second locking part 104 separates from the first locking part 103, so that the locking member 4 moves to the unlocked state B2, thereby unlocking the movable component 2, which is the suction nozzle structure in this embodiment; after the operator releases the handle ring 3, the locking member 4 can move forward under the action of the second reset member 7 to abut against the rear side of the rear partition 131, so that the locking member 4 is reset to the locked state B1, and at the same time drives the handle ring 3 to rotate along the second rotation direction N to the minimum drive position Y3.
[0063] like Figures 7-9 As shown, as a second embodiment of this utility model, a damping container cover is also provided.
[0064] like Figure 7 As shown, the difference between the second embodiment and the first embodiment is that the damping mounting part 212 is provided on the outer side wall of the wheel part 21.
[0065] like Figure 9 As shown, the second difference between the second embodiment and the first embodiment is that the flexible member 133 further includes a straw connection portion 1332 extending to the lower side of the lower body 20, and the straw connection portion 1332 is used to connect a straw that extends into the receiving cavity.
[0066] like Figure 8 As shown, the third difference between the second embodiment and the first embodiment is that: the locking member 4 is rotatably connected inside the cover body 1. When the locking member 4 is in the locked state B1, the trigger part 102 is arranged behind the handle ring rotation axis L1. When the handle ring 3 is in the driving position Y3, the trigger part 102 can move downwards towards the handle ring rotation axis L1 under the pushing force of the driving part 101, so as to drive the locking member 4 to rotate downwards from the locked state B1 to the unlocked state B2. At the same time, the second locking part 104 rotates towards the rear of the cover body 1 to separate from the first locking part 103. The second reset member 7 is arranged in the vertical direction between the locking member 4 and the cover body 1, and can push the locking member 4 to rotate upwards from the unlocked state B2 to reset to the locked state B1 under its elastic force.
[0067] In some specific embodiments, the locking member 4 includes a locking body 41, a locking arm 42 arranged on the front side of the locking body 41 and connected to the locking body 41, and a pressure plate 43 arranged on the rear side of the locking body 41 and connected to the locking body 41. The locking body 41 is rotatably connected to the cover body 1, and the rotation axis L3 of the locking body is arranged parallel to the front of the rotation axis L1 of the handle ring. The second locking part 104 protrudes from the front of the locking arm 42. The trigger parts 102 are arranged on both sides of the rear of the locking body 41 along the parallel line of the rotation axis L1 of the handle ring and are connected to the locking body 41. The upper side of the trigger part 102 forms a contact surface 1021 for abutting against the drive part 101. The pressure plate 43 is arranged between the two trigger parts 102 and is located behind the rotation axis L3 of the locking body. In this embodiment, when the locking member 4 is in the locked state B1, the second locking part 104 can extend into the receiving groove 13 and lock with the first locking part 103. The first reset member 6 is arranged vertically between the pressure plate 43 and a portion of the cover body 1 below the pressure plate 43. When the operator rotates the handle ring 3 in the first rotation direction M to switch from the minimum drive position Y3 to the second state X2, the drive part 101 pushes the abutment surface 1021 and, with the rotation of the drive shaft 31, pushes the trigger part 102 downwards. The trigger part 102 moves downwards through the locking body 41. The second locking part 104 rotates backward relative to the locking channel 134 until the second locking part 104 separates from the first locking part 103, causing the locking member 4 to move to the unlocked state B2, thereby unlocking the movable component 2, which is the suction nozzle structure in this embodiment; after the operator releases the handle ring 3, the locking member 4 can rotate under the action of the second reset member 7 until the locking arm 42 abuts against the rear side of the bottom wall of the locking channel 134, so that the locking member 4 is reset to the locked state B1, and at the same time, the handle ring 3 is driven to rotate along the second rotation direction N to the minimum drive position Y3.
[0068] like Figures 10-13 As shown, as a third embodiment of this utility model, a damping container cover is also provided.
[0069] like Figure 11 As shown, the difference between the third embodiment and the first embodiment is that the damping mounting part 212 is provided on the outer side wall of the wheel part 21.
[0070] like Figure 13 As shown, the second difference between the third embodiment and the first embodiment is that the upper body 10 and the lower body 20 are detachably connected by a snap-fit assembly. The snap-fit assembly includes a plurality of snap-fit three 40a arranged along the inner sidewall of the upper body 10 and a plurality of snap-fit three 40b arranged along the outer sidewall of the lower body 20, which are respectively arranged corresponding to the snap-fit three 40a. The upper body 10 and the lower body 20 are detachably connected by the corresponding snap-fit three 40a extending into and engaging in the snap-fit three 40b.
[0071] like Figure 12 As shown, the third difference between the third embodiment and the first embodiment is that: the locking member 4 is slidably connected in the cover body 1 in the front-back direction. When the locking member 4 is in the locked state B1, the trigger part 102 is arranged below the handle ring rotation axis L1. When the handle ring is in the driving position Y3, the trigger part 102 can move forward towards the handle ring rotation axis L1 under the pushing force of the driving part 101, so as to drive the locking member 4 to move forward from the locked state B1 to the unlocked state B2. The second reset member 7 is arranged between the locking member 4 and the cover body 1 in the front-back direction. Under its elastic force, it can push the locking member 4 to move backward from the unlocked state B2 to the locked state B1.
[0072] The fourth difference between the third embodiment and the first embodiment is that: two locking parts 103 are provided, and the two locking parts 103 are respectively provided on both sides of the movable component 2, that is, the suction nozzle structure in this embodiment. The two locking parts 103 are respectively set as locking buckles 221. The locking member 4 includes a locking body 41 and two locking arms 42. The two locking arms 42 extend from both sides of the locking body 41 toward the front of the handle ring rotation axis L1. Two locking parts 104 are provided, and the two locking parts 104 are respectively protruding on the inner side of the front part of the two locking arms 42. Two trigger parts 102 are respectively provided on both sides of the locking body 41 along a line parallel to the handle ring rotation axis L1. The rear side of the two trigger parts 102 respectively forms a contact surface 1021 for abutting against the correspondingly arranged drive part 101. The locking body 41 is arranged on the rear side of the rear partition 131. The two locking arms 42 are respectively arranged on the side of the two partitions 132 away from the receiving groove 13. The two partitions 132 are respectively provided with locking channels 134 corresponding to the two locking parts 104. The locking parts 104 are slidably arranged in the locking channels 134. The second reset member 7 is arranged between the front wall of the locking body 41 and part of the cover body 1 in front of the front wall of the locking body 41. When the locking member 4 is in the locked state B1, it can be locked by the locking parts 103 and locking parts 104 on both sides of the movable component 2, that is, the suction structure in this embodiment, so that the movable component 2, that is, the suction structure in this embodiment, is stably kept in the locked state B1. When the locking member 4 moves between the locked state B1 and the unlocked state B2 in the front-back direction, it causes the second locking part 104 to move forward relative to the locking channel 134 until it separates from the first locking part 103, or to move backward until it locks into connection with the first locking part 103. After the operator releases the handle ring 3, the locking member 4 can move backward under the action of the second reset member 7 until the second locking part 104 abuts against the rear side wall of the locking channel 134, so that the locking member 4 is reset to the locked state B1, and at the same time, it causes the handle ring 3 to rotate in the second rotation direction N to the minimum drive position Y3.
[0073] In other embodiments, the damping container lid can also be used to cover the container body of other containers such as food containers and sundries containers, and the outlet channel is configured to communicate with the receiving cavity for storing food, sundries and other holding media, and the food, sundries and other holding media in the receiving cavity can also be discharged through the outlet channel.
[0074] In other embodiments, the active component may also be configured as a flip-top structure or cap structure, or other structures capable of rotating between a closed position of the closed outlet channel and an open position of the open outlet channel.
[0075] In other embodiments, the locking element may be movably connected to the active component, and the locking element may be configured to move between a locked state and an unlocked state relative to the active component. Alternatively, the locking element may be moved from the locked state to the unlocked state by rotating the handle ring from the first state to the second state, thereby unlocking the active component.
[0076] In other embodiments, a button may also be provided to unlock the active component, namely the nozzle structure in this embodiment.
[0077] like Figure 14 As shown, as a fourth embodiment of this utility model, a damping container is also provided, including a container body 9 with a receiving cavity and a damping container cover as in the first embodiment connected to the container body 9. Because this embodiment's damping container is equipped with the damping container cover provided by this utility model, it can also slow down the pop-up speed of the movable component 2 (i.e., the suction structure in this embodiment) during the opening process. This is achieved by the damping element 1 81 rotating with the movable component 2 (i.e., the suction structure in this embodiment) relative to the damping element 2 82 on the cover body 1, thus preventing the movable component 2 (i.e., the suction structure in this embodiment) from popping up rapidly after unlocking and injuring the operator, greatly improving safety. In other embodiments, the damping container cover can also be configured as the damping container cover of other embodiments.
[0078] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this utility model.
[0079] In summary, the above description is only a preferred embodiment of the present utility model. All equivalent changes and modifications made within the scope of the patent application of the present utility model shall fall within the scope of the patent of the present utility model.
Claims
1. A damped container closure characterized by, include: The cover body can be connected to the container body and has an outlet channel that can communicate with the receiving cavity inside the container body. A movable component, rotatably connected to the cover body, is capable of rotating between a closed position that closes the outlet channel and an open position that opens the outlet channel. A first reset member is provided between the movable component and the cover body for resetting the movable component to the open position. A damping assembly is provided on the cover body, including damping element one and damping element two. Damping element one is arranged coaxially with the rotation axis of the movable component and rotates synchronously with the movable component. Damping element two is fixedly connected to the cover body and can provide a frictional resistance to reduce the rotation of damping element one when damping element one rotates.
2. The damping container lid of claim 1, wherein: The cover body is provided with at least one damping base arranged on the side of the movable component, the second damping element is positioned and installed on the damping base, and the first damping element is positioned and installed on the movable component.
3. The damping container lid of claim 2, wherein: The first damping component includes a damping shaft, and the second damping component includes a damping sleeve. The damping shaft is sleeved inside the damping sleeve and is connected to the damping sleeve by an interference fit through a flexible structure. The flexible structure is configured as a portion of the outer wall of the damping shaft; or... The flexible structure is configured as a portion of the inner wall of the damping sleeve. or, The flexible structure is configured as a partial structure of the outer wall of the damping shaft and a partial structure of the inner wall of the damping sleeve. or, The flexible structure is configured to be arranged between the outer wall of the damping shaft and the inner wall of the damping sleeve.
4. The damping container lid of claim 3, wherein: The damping component one further includes a damping positioning part one disposed on the damping shaft, and the movable component is provided with a damping mounting part one that matches the damping positioning part one. The damping component one and the movable component are installed and positioned by the damping positioning part one and the damping mounting part one cooperating.
5. The damping container lid of claim 4, wherein: The damping positioning part 1 protrudes outward from the end face of the damping shaft, and the damping mounting part 1 is configured as a groove structure on the movable component that matches the damping positioning part 1. The damping component 1 and the movable component are installed and positioned in the damping mounting part 1 through the concave-convex fit of the damping positioning part 1.
6. The damping container lid of claim 4, wherein: The second damping component further includes a second damping positioning part disposed on the damping sleeve, and a second damping mounting part disposed on the damping base that matches the second damping positioning part. The second damping component and the damping base are installed and positioned by the cooperation of the second damping positioning part and the second damping mounting part.
7. The damping container lid of claim 6, wherein: The second damping positioning part protrudes outward from the outer side wall of the damping sleeve, and the second damping mounting part is configured as a groove structure on the damping base. The second damping element and the damping base are installed and positioned in the second damping mounting part through the concave-convex fit of the second damping positioning part.
8. The damping container lid of claim 1, wherein, Also includes: A locking element is movably connected to the cover body or the movable component and configured to selectively hold the movable component in the closed position; The locking member is movable relative to the cover body or the movable component between a locked state and an unlocked state. In the locked state, the locking member is able to hold the movable component in the closed position, and in the unlocked state, the locking member is able to allow the movable component to return to the open position. A handle ring is rotatably connected to the cover body, and the handle ring can be rotated to switch from a first state in which the locking member is kept in a locked state to a second state in which the locking member is released.
9. The damping container cover according to any one of claims 1-8, characterized in that: The top of the cover body is recessed with a receiving groove, and the left and right side walls of the receiving groove are respectively set as side baffles; The active component is configured as a suction nozzle structure, which includes a rotating wheel, rotating shafts protruding from both sides of the rotating wheel along the rotation axis of the suction nozzle structure, and a suction nozzle connected to the rotating wheel. The suction nozzle structure is provided with a drinking channel that passes through the rotating wheel and the suction nozzle. The two rotating shafts extend into the rotating shaft holes on the side baffles and are rotatably connected to the cover body. The damping component is disposed on one of the side baffles away from the receiving groove, and the first reset member is disposed between the other side baffle and the wheel portion; When the nozzle structure is in the closed position, the nozzle structure is housed in the receiving groove and the outlet channel is sealed by the outer wall of the rotating part. When the nozzle structure is in the open position, the drinking channel and the outlet channel are connected.
10. A damping container, characterized in that: It includes a container body having a receiving cavity and a damping container cover as described in any one of claims 1-9 attached to the container body.
Citation Information
Patent Citations
Water cup with torsional spring type cup cover
CN214072784U