Connecting assembly and device with same
By introducing a damper structure and limit design at the connection between the lid and the pot body, the problem of rapid opening and closing of the pot lid is solved, noise reduction and structural simplification are achieved, improving user experience and reducing costs.
Patent Information
- Application Number
- CN202422951530.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-29
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2034-11-29
AI Technical Summary
In the prior art, the pot lid is too fast when opening the lid and is prone to fall off when closed, resulting in high noise, damage to the pot lid and handle, and poor user experience.
The damper structure is adopted. Through the coordination of the limiting ribs and the limiting grooves, the damper shell and the inner core are driven to move relative to each other, generating damping force, slowing down the rotation speed of the pot cover, and simplifying the joint structure and reducing the number of parts through the design of the annular boss and insert block.
It effectively reduces the collision noise between the lid and the pot body, protects the lid and handle, improves the user experience, and reduces the manufacturing cost and number of parts.
Smart Images

Figure CN223270399U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of household electrical appliances, in particular to a connecting component and a device having the connecting component. Background Art
[0002] In the related art, a hinged connection component, such as a lid hinged to a kettle body, has a finger press position behind the hinge of the lid. When the lid needs to be opened, the thumb presses the lid open. When the press position contacts the kettle handle, the lid opens to its fullest position. When the lid needs to be closed, it is simply snapped back into place.
[0003] In the related art, the lid is opened too quickly and easily falls off when closed, making loud noises and easily damaging the lid and handle, resulting in a poor user experience. Utility Model Content
[0004] In view of this, the utility model provides a connecting assembly to solve the problem that the lid is easily dropped when closing the lid due to excessive speed when opening the lid.
[0005] In a first aspect, the present invention provides a connection assembly, comprising:
[0006] A first connecting member having a first hinge hole;
[0007] a second connecting member having a second hinge hole;
[0008] The damper comprises a damper housing and a damper inner core, wherein the damper housing is capable of relative movement with the damper inner core and generates a damping force, and the damper inner core is confined within the first hinge hole;
[0009] The first joint is limited in the second hinge hole, the first joint is provided with one of a limiting groove and a limiting rib, the damper housing is provided with the other of the limiting groove and the limiting rib, and the limiting rib is provided in the limiting groove.
[0010] Beneficial effect: During use of the connecting assembly of the embodiment of the utility model, when the second connecting member rotates relative to the first connecting member, the first joint is carried to rotate, and the first joint drives the damper shell to rotate synchronously through the cooperation of the limiting rib and the limiting groove. The damper inner core is limited in the first hinge hole, so the damper shell and the damper inner core can move relative to each other and generate a damping force, which can slow down the rotation speed of the second connecting member, thereby avoiding the second connecting member rotating at a faster speed and colliding with the first connecting member, resulting in loud noise and damage to the first connecting member or the second connecting member, which helps to improve user experience.
[0011] Since the damper core is limited in the first hinge hole, the damper core can directly cooperate with the hole wall of the first hinge hole for limiting, and there is no need to set a separate joint to limit the end of the damper core. This saves a joint, can reduce the number of parts of the connecting assembly, make the structure of the connecting assembly simpler and more compact, and help reduce the manufacturing cost of the connecting assembly.
[0012] In an optional embodiment, one of the first plug and the first slot is provided on the first joint, the other of the first plug and the first slot is provided on the inner periphery of the second hinge hole, and the first plug is provided in the first slot.
[0013] Beneficial effect: The first plug block can be plugged into the first slot, so that when the second connecting member rotates along the first direction, the first connector can be driven to rotate along the first direction through the first slot.
[0014] On this basis, in the embodiment of the present application, the first connector is limited by the first plug block and the second connector, so that the entire first connector can be set into a ring shape, thereby facilitating the processing of the first connector, making the size of the first connector stable and reliable, and improving the assembly efficiency of the first connector.
[0015] In an optional embodiment, a first plug-in block is provided on the first joint, a limiting groove is provided on the first plug-in block, and a limiting rib is correspondingly provided on the damper housing.
[0016] Beneficial effect: Through such an arrangement, the first plug can be used to limit the first joint in the second hinge hole, and can also be used to limit the first joint and the damper housing. The first plug has multiple functions and can make the structure of the first joint simpler and more compact.
[0017] In an optional embodiment, a first annular boss is provided on the inner periphery of the first hinge hole, one of a second plug block and a second slot is provided on the inner core of the damper, and the other of the second plug block and the second slot is provided on the first annular boss.
[0018] Beneficial effect: The second slot can be plugged into the second plug block, so that the damper core is limited in the first hinge hole, ensuring that when the second connecting member rotates, the damper core can move relative to the damper shell, thereby generating a damping force.
[0019] In an optional embodiment, a first avoidance groove is provided on the first annular boss, and the first avoidance groove extends along the circumferential direction of the first annular boss. The first insert block is provided in the first slot and can rotate in the first avoidance groove.
[0020] Beneficial effect: Through such a setting, the first annular boss can limit the damper inner core to ensure that the damper inner core and the first connecting member are relatively stationary, and will not hinder the first joint from rotating relative to the first annular boss under the drive of the second connecting member.
[0021] In addition, the connecting assembly of the embodiment of the present application limits the inner core of the damper through the first annular boss, and there is no need to add a joint in the first hinge hole to cooperate with the inner core of the damper. This saves a joint, can reduce the number of parts of the connecting assembly, make the structure of the connecting assembly simpler and more compact, and help reduce the manufacturing cost of the connecting assembly.
[0022] In an optional embodiment, a second avoidance groove is provided on the first annular boss, the second avoidance groove is provided in the first avoidance groove and extends along the circumferential direction of the first annular boss, and the limiting rib is provided in the second avoidance groove and can rotate in the second avoidance groove.
[0023] Beneficial effect: Through such a setting, the first annular boss can limit the damper inner core to ensure that the damper inner core and the first connecting member are relatively stationary, and will not hinder the damper outer shell from rotating relative to the first annular boss under the drive of the first joint.
[0024] In an optional embodiment, the second hinge holes are arranged in pairs and are respectively arranged on both sides of the first hinge hole. The first joint passes through one of the second hinge holes and is plugged into the damper housing.
[0025] Beneficial effect: By setting two second hinge holes and making the first hinge hole located between the two second hinge holes, the first joint is connected to a second hinge hole and plugged into the damper housing, so that the second connecting member can be stably stressed and is not prone to shaking during rotation.
[0026] In an optional embodiment, the connection component further includes:
[0027] The second joint and the first joint are respectively provided at two ends of the damper, and the second joint is provided in the second hinge hole;
[0028] The hinge shaft passes through the first joint, the damper inner core and the second joint in sequence.
[0029] Beneficial effect: Through such a setting, the first joint can not only be used to promote the synchronous movement of the damper housing and the second connecting member, but also can be used to cooperate with the second joint to limit the damper on the first connecting member to prevent the damper from falling off.
[0030] In an optional embodiment, the hinge shaft is a screw, which passes through one of the first joint and the second joint and is threadedly connected to the other of the first joint and the second joint.
[0031] In an optional embodiment, the first joint further includes an annular body and a second annular boss, the second annular boss is arranged on the inner circumference of the annular body, the screw passes through the inner circumference of the second annular boss, and the screw head is arranged in the annular body.
[0032] Beneficial effect: Through such a setting, the second annular boss can limit the screw head within the first joint. At the same time, the annular body can be used to accommodate the screw head to prevent the screw head from protruding from the first joint and damaging the aesthetics of the connection structure.
[0033] In addition, the first joint is annular as a whole, has low injection molding difficulty, reliable dimensional stability, and the first joint is efficiently installed in the second hinge hole, which helps to improve the assembly efficiency of the connection component.
[0034] In an optional embodiment, the connecting assembly further comprises a nut, which is disposed in the annular body and sleeved on the outside of the screw head.
[0035] Advantageous effect: The nut can be used to wrap the screw head to improve the aesthetics of the connection component.
[0036] In an optional embodiment, the second hinge hole includes a first hole segment and a second hole segment arranged in sequence along a direction close to the first hinge hole, the aperture of the first hole segment is larger than the aperture of the second hole segment, and abutment surface is formed between the first hole segment and the second hole segment, and a third annular boss is respectively provided outside the first joint and the second joint, and the third annular boss is arranged in the first hole segment and abuts against the abutment surface.
[0037] Beneficial effect: Through such an arrangement, the first joint and the second joint can respectively abut against the abutment surface through the third annular boss, thereby limiting the damper in the first hinge hole.
[0038] In an optional embodiment, the second connector is plugged into the second connecting member.
[0039] Beneficial effect: Through such a setting, the second joint and the second connecting member can be relatively stationary, so when the second connecting member rotates, the first joint and the second joint can both rotate synchronously with the second connecting member, and the first joint and the second joint will not move relative to each other, which can avoid the screw loosening due to the relative movement of the first joint and the second joint.
[0040] In a second aspect, the present invention further provides a device having a connection assembly, comprising:
[0041] The first aspect of the present utility model provides a connection assembly.
[0042] Beneficial effect: The device with a connecting component in the second aspect of the present invention includes or uses the connecting component in the first aspect of the present invention, and thus has its beneficial effect, that is, during use of the device with a connecting component in an embodiment of the present invention, when the second connecting member rotates relative to the first connecting member, the first joint is carried to rotate, and the first joint drives the damper shell to rotate synchronously through the cooperation of the limiting rib and the limiting groove, and the damper inner core is limited in the first hinge hole, so that the damper shell and the damper inner core can move relative to each other, and a damping force can be generated between the damper shell and the damper inner core, which can slow down the rotation speed of the second connecting member, thereby avoiding the second connecting member rotating at a faster speed and colliding with the first connecting member, resulting in loud noise and easy damage to the first connecting member or the second connecting member, which helps to improve user experience.
[0043] Since the damper core is limited in the first hinge hole, the damper core can directly cooperate with the hole wall of the first hinge hole, and there is no need to set up a separate joint to cooperate with the damper core. This saves a joint, can reduce the number of parts of the connecting assembly, make the structure of the connecting assembly simpler and more compact, and help reduce the manufacturing cost of the device.
[0044] In an optional embodiment, the device having the connecting assembly is an electric kettle, the first connecting member is a handle of the kettle body, and the second connecting member is a kettle lid.
[0045] Beneficial effect: In this embodiment, when the lid is opened, the lid can drive the first joint and the damper shell to rotate together, the damper core and the handle are relatively stationary, the damper shell and the damper core move relative to each other, and the damping medium in the damping chamber generates a damping force to slow down the rotation speed of the lid.
[0046] When the lid is closed, the lid can drive the first joint and the damper shell to rotate together. The damper core and the handle are relatively stationary, and the damper shell and the damper core move relative to each other. The damping medium in the damping chamber generates a damping force to slow down the rotation speed of the lid. BRIEF DESCRIPTION OF THE DRAWINGS
[0047] In order to more clearly illustrate the specific implementation methods of the utility model or the technical solutions in the prior art, the drawings required for use in the specific implementation methods or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are some implementation methods of the utility model. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0048] Figure 1 This is an exploded view of a connection assembly according to an embodiment of the present utility model;
[0049] Figure 2 for Figure 1 A side view of a connection assembly is shown;
[0050] Figure 3 for Figure 2 A partial enlarged schematic diagram;
[0051] Figure 4 A three-dimensional diagram of a damper of a connecting assembly according to an embodiment of the present utility model;
[0052] Figure 5 A perspective view of a first connector of a connecting assembly according to an embodiment of the present invention;
[0053] Figure 6 A first connecting member of a connecting assembly according to an embodiment of the present utility model;
[0054] Figure 7 for Figure 6 A partial enlarged schematic diagram of B in the middle;
[0055] Figure 8 This is a front view of a first connecting member of a connecting assembly according to an embodiment of the present utility model;
[0056] Figure 9 for Figure 8 A partial enlarged schematic diagram of center C;
[0057] Figure 10 This is a front view of a connection assembly according to an embodiment of the present utility model;
[0058] Figure 11 for Figure 10 A local enlarged schematic diagram of point D in FIG.
[0059] Figure 12 A perspective view of a second connecting member of a connecting assembly according to an embodiment of the present utility model;
[0060] Figure 13 A three-dimensional view of a second connector of a connecting assembly according to an embodiment of the present invention at an angle;
[0061] Figure 14 This is a three-dimensional view of the second connector of a connecting assembly according to an embodiment of the present invention from another angle.
[0062] Description of reference numerals:
[0063] 1. First connecting member; 101. First hinge hole; 102. First annular boss; 1021. Second slot;
[0064] 1022, first avoidance slot; 1023, second avoidance slot;
[0065] 2. Second connecting member; 201. Second hinge hole; 2011. First hole segment; 2012. Second hole segment; 2013. First slot;
[0066] 3. Damper; 301. Damper housing; 3011. Position limiting rib; 302. Damper core; 3021. Second plug;
[0067] 4. First joint; 401. Positioning groove; 402. First plug; 403. Annular body; 404. Third annular boss; 405. Second annular boss;
[0068] 5. Articulated shaft;
[0069] 6. Second connector; 601. Third plug;
[0070] 7. Nut. DETAILED DESCRIPTION
[0071] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the embodiments described are part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without making creative efforts shall fall within the scope of protection of the present invention.
[0072] The following combination Figures 1 to 14 , describing the embodiments of the present utility model.
[0073] According to an embodiment of the present invention, on one hand, a connection assembly is provided, including a first connection member 1 , a second connection member 2 , a damper 3 and a first joint 4 .
[0074] The first connecting member 1 has a first hinge hole 101. The second connecting member 2 has a second hinge hole 201. The damper 3 includes a damper housing 301 and a damper core 302. The damper housing 301 is capable of relative motion with the damper core 302 and generates a damping force. The damper core 302 is confined within the first hinge hole 101. The first joint 4 is confined within the second hinge hole 201. The first joint 4 is provided with one of a limiting groove 401 and a limiting rib 3011. The damper housing 301 is provided with the other of the limiting groove 401 and the limiting rib 3011. The limiting rib 3011 is provided within the limiting groove 401.
[0075] During use of the connecting assembly of the embodiment of the present invention, when the second connecting member 2 rotates relative to the first connecting member 1, the first joint 4 is carried to rotate, and the first joint 4 drives the damper shell 301 to rotate synchronously through the cooperation of the limiting rib 3011 and the limiting groove 401. The damper core 302 is limited in the first hinge hole 101, so that the damper shell 301 and the damper core 302 can move relative to each other. A damping force can be generated between the damper shell 301 and the damper core 302, which can slow down the rotation speed of the second connecting member 2, thereby avoiding the second connecting member 2 from rotating at a faster speed and colliding with the first connecting member 1, resulting in loud noise and damage to the first connecting member 1 or the second connecting member 2, which helps to improve user experience.
[0076] Since the damper core 302 is limited in the first hinge hole 101, the damper core 302 can directly cooperate with the hole wall of the first hinge hole 101 for limiting, and there is no need to set a separate joint to limit the end of the damper core 302. This saves a joint, can reduce the number of parts of the connecting assembly, make the structure of the connecting assembly simpler and more compact, and help reduce the manufacturing cost of the connecting assembly.
[0077] In the embodiment of the present application, the damper core 302 is confined within the first hinge hole 101, which means that the damper core and the first hinge hole are relatively stationary. The first joint 4 is confined within the second hinge hole 201, which means that the first joint and the second hinge hole are relatively stationary and rotate synchronously with the second connecting member 2 when the second connecting member 2 rotates.
[0078] In one embodiment, multiple damping cavities are formed between the damper core 302 and the damper shell 301, and damping medium is provided in the damping cavity. When the damper shell 301 rotates relative to the damper core 302 under the action of the second connecting member 2, the damping medium in one damping cavity can flow to the adjacent damping cavity through the gap between the second rib and the damper core 302, thereby generating a damping force.
[0079] The damping medium is preferably but not limited to damping oil.
[0080] In one embodiment, two second ribs are provided on the inner wall of the damper housing 301, and two third ribs are provided on the outer side of the damper core 302. The second ribs are loosely fitted with the damper core 302, and the third ribs are in contact with the inner wall of the damper housing 301. The space between the second ribs and the third ribs forms the damping cavity.
[0081] As an alternative embodiment, a friction surface is formed between the damper inner core 302 and the damper outer shell 301. The friction surface has a large damping coefficient, so that a damping force can be generated after the damper outer shell 301 rotates relative to the damper inner core 302.
[0082] In one embodiment, Figure 5 As shown, the first connector 4 is provided with one of a first plug block 402 and a first slot 2013 .
[0083] like Figure 12 As shown, the other of the first inserting block 402 and the first slot 2013 is provided on the inner periphery of the second hinge hole 201 , and the first inserting block 402 is provided in the first slot 2013 .
[0084] The first plug block 402 can be plugged into the first slot 2013 , so that when the second connector 2 rotates in the first direction, the first connector 4 can be driven to rotate in the first direction through the first slot 2013 .
[0085] On this basis, in the embodiment of the present application, the first connector 4 is limitedly engaged with the second connector 2 through the first plug block 402, so that the entire first connector 4 can be set into a ring shape, thereby facilitating the processing of the first connector 4, and making the size of the first connector 4 stable and reliable, thereby improving the assembly efficiency of the first connector 4.
[0086] As a convertible embodiment, in an embodiment not shown in the accompanying drawings, the second hinge hole 201 is a special-shaped hole, and the shape of the first joint 4 is set to be adapted to the second hinge hole 201, so that when the second connecting member 2 rotates relative to the first connecting member 1, the first joint 4 can rotate synchronously with the first connecting member 1.
[0087] In one embodiment, the size of the first slot 2013 along the circumference of the second hinge hole 201 can be optionally configured to be compatible with the first insert block 402 , so as to drive the first joint 4 to rotate synchronously when the second connecting member 2 rotates.
[0088] As a convertible implementation, in an embodiment not shown in the drawings, the size of the first slot 2013 along the circumference of the second hinge hole 201 is larger than the size of the first inserting block 402 .
[0089] By such an arrangement, when the second connecting member 2 rotates in the first direction relative to the first connecting member 1, at the beginning, the first plug block 402 can not abut against the groove wall of the first slot 2013, and the first plug block 402 can rotate in the first slot 2013. At this time, the second connecting member 2 can rotate quickly relative to the first connecting member 1.
[0090] When the first inserting block 402 abuts against the wall of the first slot 2013 , the second connecting member 2 rotates synchronously with the damper housing 301 , and causes the damper housing 301 and the damper inner core 302 to move relative to each other.
[0091] A damping force can be generated between the damper housing 301 and the damper core 302, thereby slowing down the rotation speed of the second connecting member 2 and preventing the second connecting member 2 from quickly colliding with the first connecting member 1, generating noise, or causing damage to the first connecting member 1 or the second connecting member 2.
[0092] In one embodiment, Figure 5 As shown, a first plug block 402 is provided on the first connector 4 , a limiting groove 401 is provided on the first plug block 402 , and a limiting rib 3011 is correspondingly provided on the damper housing 301 .
[0093] By such a configuration, the first plug block 402 can be used to limit the first joint 4 in the second hinge hole 201, and can also be used to limit the first joint 4 and the damper housing 301. The first plug block 402 has multiple functions and can make the structure of the first joint 4 simpler and more compact.
[0094] As a convertible implementation, in an embodiment not shown in the accompanying drawings, a first slot 2013 is provided on the first joint 4, a limiting protrusion is provided in the first slot 2013, and a limiting groove 401 for accommodating the limiting protrusion is correspondingly provided on the damper housing 301.
[0095] In one embodiment, a first annular boss 102 is provided on the inner periphery of the first hinge hole 101 (see FIG. Figure 7 ), the damper inner core 302 is provided with a second plug block 3021 and a second slot 1021 (see Figure 4 ) One of the two, the first annular boss 102 is provided with the other of the second plug block 3021 and the second slot 1021.
[0096] The second slot 1021 can be plugged into the second plug block 3021, so that the damper core 302 is limited in the first hinge hole 101, ensuring that when the second connecting member 2 rotates, the damper core 302 can move relative to the damper shell 301, thereby generating a damping force.
[0097] In one embodiment, Figure 7 As shown, a first avoidance groove 1022 is provided on the first annular boss 102. The first avoidance groove 1022 extends along the circumferential direction of the first annular boss 102. The first inserting block 402 is provided in the first slot 2013 and can rotate in the first avoidance groove 1022.
[0098] By such a configuration, the first annular boss 102 can both limit the damper core 302 to ensure that the damper core 302 and the first connecting member 1 are relatively stationary, and will not hinder the first joint 4 from rotating relative to the first annular boss 102 driven by the second connecting member 2.
[0099] In addition, the connecting assembly of the embodiment of the present application limits the damper inner core 302 through the first annular boss 102, and there is no need to add a joint in the first hinge hole 101 to cooperate with the damper inner core 302. This saves a joint, can reduce the number of parts of the connecting assembly, make the structure of the connecting assembly simpler and more compact, and help reduce the manufacturing cost of the connecting assembly.
[0100] In one embodiment, the angle of the first avoidance groove 1022 can be set according to the maximum rotation angle of the first connecting member 1 and the second connecting member 2 .
[0101] For example, when the connecting component is a connecting component of an electric kettle, the angle of the first avoidance groove 1022 needs to be able to ensure that the kettle lid does not fall automatically when the kettle is placed normally, and generally needs to be greater than 90°.
[0102] In one embodiment, Figure 9 As shown, a second avoidance groove 1023 is provided on the first annular boss 102, the second avoidance groove 1023 is provided in the first avoidance groove 1022, and extends along the circumferential direction of the first annular boss 102, and the limiting rib 3011 is provided in the second avoidance groove 1023 and can rotate in the second avoidance groove 1023.
[0103] By such a configuration, the first annular boss 102 can both limit the damper inner core 302 to ensure that the damper inner core 302 and the first connecting member 1 are relatively stationary, and will not hinder the damper outer shell 301 from rotating relative to the first annular boss 102 driven by the first joint 4.
[0104] As a convertible implementation, in an embodiment not shown in the accompanying drawings, the second avoidance groove 1023 may be optionally not provided in the first avoidance groove 1022, and the limiting rib 3011 of the damper housing 301 can rotate in the first avoidance groove 1022 synchronously with the first plug block 402.
[0105] In one embodiment, Figure 2 and Figure 3 As shown, the second hinge holes 201 are arranged in pairs and are respectively arranged on both sides of the first hinge hole 101 . The first joint 4 passes through one of the second hinge holes 201 and is plugged into the damper housing 301 .
[0106] By setting two second hinge holes 201 and making the first hinge hole 101 located between the two second hinge holes 201, the first joint 4 is connected to one second hinge hole 201 and plugged into the damper housing 301, so that the second connecting member 2 can be stably stressed and is not prone to shaking during rotation.
[0107] For example, in one embodiment, a connecting protrusion is provided on the second connecting member 2, a connecting groove is provided in the middle of the connecting protrusion, and second hinge holes 201 are respectively provided on the groove walls on opposite sides of the connecting groove. The first hinge hole 101 of the first connecting member 1 can be provided in the connecting groove, and both ends are connected to the first second hinge hole 201.
[0108] As a convertible implementation, in an embodiment not shown in the drawings, there is only one second hinge hole 201 , which is provided at one side of the first hinge hole 101 .
[0109] In one embodiment, Figure 3 As shown, the connection assembly further includes a second joint 6. The second joint 6 and the first joint 4 are respectively provided at both ends of the damper 3, and the second joint 6 is provided in the second hinge hole 201. The hinge shaft 5 passes through the first joint 4, the damper inner core 302, and the second joint 6 in sequence.
[0110] The hinge shaft 5 is used to connect the first joint 4, the damper 3 and the second joint 6 into one body, and to hinge the first connecting member 1 and the second connecting member 2 to each other.
[0111] By such a configuration, the first joint 4 can not only be used to promote synchronous movement of the damper housing 301 and the second connecting member 2, but can also be used to cooperate with the second joint 6 to limit the damper 3 on the first connecting member 1 to prevent the damper 3 from falling off.
[0112] In one embodiment, the hinge shaft 5 is a screw, which passes through one of the first joint 4 and the second joint 6 and is threadedly connected to the other one of the first joint 4 and the second joint 6 .
[0113] In one embodiment, Figure 5 As shown, the first joint 4 further includes an annular body and a second annular boss 405. The second annular boss 405 is provided on the inner periphery of the annular body 403, the screw passes through the inner periphery of the second annular boss 405, and the screw head is provided in the annular body 403.
[0114] By such arrangement, the second annular boss 405 can limit the screw head within the first joint 4. At the same time, the annular body 403 can be used to accommodate the screw head to prevent the screw head from protruding from the first joint 4 and damaging the aesthetics of the connection structure.
[0115] In addition, the first joint 4 is annular as a whole, has low injection molding difficulty, and has reliable dimensional stability. The first joint 4 can be efficiently installed into the second hinge hole 201, which helps to improve the assembly efficiency of the connection component.
[0116] In one embodiment, Figure 3 As shown, the connection assembly further includes a nut 7, which is disposed in the annular body 403 and sleeved outside the screw head.
[0117] The nut 7 can be used to wrap the screw head to improve the aesthetics of the connection assembly.
[0118] In one embodiment, the nut 7 is flush with the outer end of the first joint 4, which can make the appearance of the connection assembly smooth and beautiful.
[0119] In one embodiment, the second hinge hole 201 includes a first hole segment 2011 and a second hole segment 2012 sequentially arranged in a direction approaching the first hinge hole 101. The diameter of the first hole segment 2011 is larger than the diameter of the second hole segment 2012, and an abutment surface is formed between the first hole segment 2011 and the second hole segment 2012. A third annular boss 404 is respectively provided on the outside of the first joint 4 and the second joint 6. The third annular boss 404 is disposed within the first hole segment 2011 and abuts against the abutment surface.
[0120] By such arrangement, the first joint 4 and the second joint 6 can respectively abut against the abutting surface via the third annular boss 404 , thereby limiting the damper 3 in the first hinge hole 101 .
[0121] In one embodiment, the second connector 6 is plugged into the second connector 2 .
[0122] This arrangement allows the second joint 6 to remain relatively stationary relative to the second connector 2. Therefore, when the second connector 2 rotates, the first joint 4 and the second joint 6 can both rotate synchronously with the second connector 2, preventing relative movement between the first joint 4 and the second joint 6. This prevents the screw from loosening due to relative movement between the first joint 4 and the second joint 6. In one embodiment, the second joint 6 is provided with a third insert 601, and the wall of the second hinge hole 201 is correspondingly provided with a third slot capable of accommodating the third insert 601.
[0123] According to an embodiment of the present invention, on the other hand, a device having a connection assembly is provided, comprising the connection assembly of the first aspect of the present invention.
[0124] The device with a connecting component of the second aspect of the present invention includes or uses the connecting component of the first aspect of the present invention, and thus has its beneficial effects, that is, during use of the device with a connecting component in an embodiment of the present invention, when the second connecting member 2 rotates relative to the first connecting member 1, the first joint 4 is carried to rotate, and the first joint 4 drives the damper shell 301 to rotate synchronously through the cooperation between the limiting rib 3011 and the limiting groove 401, and the damper core 302 is limited in the first hinge hole 101, so that the damper shell 301 and the damper core 302 can move relative to each other, and a damping force can be generated between the damper shell 301 and the damper core 302, which can slow down the rotation speed of the second connecting member 2, thereby avoiding the second connecting member 2 from rotating at a faster speed and colliding with the first connecting member 1, resulting in loud noise and easy damage to the first connecting member 1 or the second connecting member 2, which helps to improve user experience.
[0125] Since the damper core 302 is limited in the first hinge hole 101, the damper core 302 can directly cooperate with the hole wall of the first hinge hole 101, and there is no need to set a separate joint to cooperate with the damper core 302. This saves a joint, can reduce the number of parts of the connecting assembly, make the structure of the connecting assembly simpler and more compact, and help reduce the manufacturing cost of the device.
[0126] In one embodiment, the device having the connecting assembly is an electric kettle, the first connecting member 1 is a handle of the kettle body, and the second connecting member 2 is a kettle lid.
[0127] In this embodiment, when the lid is opened, the lid can drive the first joint 4 and the damper shell 301 to rotate together, the damper core 302 and the handle are relatively stationary, the damper shell 301 and the damper core 302 move relative to each other, and the damping medium in the damping chamber generates a damping force to slow down the rotation speed of the lid.
[0128] When the lid is closed, the lid can drive the first joint 4 and the damper shell 301 to rotate together, the damper core 302 and the handle are relatively stationary, the damper shell 301 and the damper core 302 move relative to each other, and the damping medium in the damping chamber generates a damping force to slow down the rotation speed of the lid.
[0129] It should be noted that the device having the connection assembly may be an electric kettle, but is not limited thereto, and may also be a water cup, an electric rice cooker, and other products.
[0130] Although the embodiments of the present invention have been described with reference to the accompanying drawings, those skilled in the art may make various modifications and variations without departing from the spirit and scope of the present invention, and such modifications and variations shall fall within the scope defined by the appended claims.
Claims
1. A connection assembly, characterized in that: include: A first connecting member (1) having a first hinge hole (101); A second connecting member (2) having a second hinge hole (201); A damper (3) comprising a damper outer shell (301) and a damper inner core (302), wherein the damper outer shell (301) is capable of relative movement with the damper inner core (302) and generates a damping force, and the damper inner core (302) is confined within the first hinge hole (101); The first joint (4) is limited in the second hinge hole (201), the first joint (4) is provided with one of a limiting groove (401) and a limiting rib (3011), the damper housing (301) is provided with the other of the limiting groove (401) and the limiting rib (3011), and the limiting rib (3011) is provided in the limiting groove (401).
2. The connection assembly according to claim 1, characterized in that The first joint (4) is provided with one of the first plug block (402) and the first slot (2013), the inner periphery of the second hinge hole (201) is provided with the other of the first plug block (402) and the first slot (2013), and the first plug block (402) is arranged in the first slot (2013).
3. The connection assembly according to claim 2, characterized in that The first joint (4) is provided with a first plug block (402), the first plug block (402) is provided with a limiting groove (401), and the damper housing (301) is correspondingly provided with the limiting rib (3011).
4. The connection assembly according to claim 3, characterized in that A first annular boss (102) is provided on the inner periphery of the first hinge hole (101), one of a second plug-in block (3021) and a second slot (1021) is provided on the damper inner core (302), and the other of the second plug-in block (3021) and the second slot (1021) is provided on the first annular boss (102).
5. The connection assembly according to claim 4, characterized in that A first avoidance groove (1022) is provided on the first annular boss (102), and the first avoidance groove (1022) extends along the circumferential direction of the first annular boss (102). The first insert block (402) is provided in the first slot (2013) and is capable of rotating in the first avoidance groove (1022).
6. The connection assembly according to claim 5, characterized in that A second avoidance groove (1023) is provided on the first annular boss (102), the second avoidance groove (1023) is provided in the first avoidance groove (1022) and extends along the circumferential direction of the first annular boss (102), and the limiting rib (3011) is provided in the second avoidance groove (1023) and is capable of rotating in the second avoidance groove (1023).
7. The connection assembly according to any one of claims 1 to 6, characterized in that: The second hinge holes (201) are arranged in pairs and are respectively arranged on both sides of the first hinge hole (101); the first joint (4) passes through one of the second hinge holes (201) and is plugged into the damper housing (301).
8. The connection assembly according to claim 7, characterized in that The connection component further includes: A second joint (6) and the first joint (4) are respectively provided at two ends of the damper (3), and the second joint (6) is provided in the second hinge hole (201); An articulated shaft (5), the articulated shaft (5) sequentially passes through the first joint (4), the damper inner core (302), and the second joint (6).
9. The connection assembly according to claim 8, characterized in that The hinge shaft (5) is a screw, which passes through one of the first joint (4) and the second joint (6) and is threadedly connected to the other of the first joint (4) and the second joint (6).
10. The connection assembly according to claim 9, characterized in that The first joint (4) comprises an annular body and a second annular boss (405), wherein the second annular boss (405) is arranged on the inner circumference of the annular body (403), the screw passes through the inner circumference of the second annular boss (405), and the screw head of the screw is arranged in the annular body (403).
11. The connection assembly according to claim 10, characterized in that The connecting assembly further comprises a nut (7), which is arranged inside the annular body (403) and sleeved outside the screw head.
12. The connection assembly according to claim 8, characterized in that The second hinge hole (201) comprises a first hole section (2011) and a second hole section (2012) which are sequentially arranged in a direction close to the first hinge hole (101); the aperture of the first hole section (2011) is larger than the aperture of the second hole section (2012); and a contact surface is formed between the first hole section (2011) and the second hole section (2012); and a third annular boss (404) is respectively provided on the outside of the first joint (4) and the second joint (6); the third annular boss (404) is arranged in the first hole section (2011) and contacts the contact surface.
13. The connection assembly according to claim 8, characterized in that The second connector (6) is plugged into the second connector (2).
14. A device having a connection assembly, characterized in that: include: The connection assembly according to any one of claims 1 to 13.
15. The device with a connection assembly according to claim 14, characterized in that The device with the connecting assembly is an electric kettle, the first connecting piece (1) is a handle of the kettle body, and the second connecting piece (2) is a kettle cover.