Microphone storage assembly and intelligent device
By designing a reciprocating fixing mechanism for the microphone body, the stability problem caused by the complex microphone storage structure was solved, achieving stable storage and convenient retrieval of the microphone, thus improving the user experience.
Patent Information
- Application Number
- CN202422690812.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-05
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-11-05
AI Technical Summary
The microphone storage structure of existing audio systems is relatively complex, which can easily lead to the swing arm failing to swing to the intended position, affecting product stability and user experience.
A microphone storage component was designed, including a barrel and a microphone reciprocating fixing mechanism. The design of sliding grooves with locking and unlocking positions enables stable storage and retrieval of the microphone, while limiting grooves and guide ramps improve movement stability.
This improves the stability of the microphone within the enclosure and enhances the user experience.
Smart Images

Figure CN223515014U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of audio technology, specifically to a microphone storage component and a smart device. Background Technology
[0002] A sound system typically consists of a microphone for receiving sound and a speaker for playing sound. In the past, sound systems were mainly used indoors, so microphones were usually placed directly on a table without a fixed location. However, in recent years, with the rapid development of the live streaming industry, outdoor karaoke has become increasingly popular. But because microphones lack storage space, they currently need to be carried separately, which brings great inconvenience to the carrying and storage of sound systems.
[0003] Existing speakers have a storage structure that uses a torsion spring and a swing arm with a fixing base. This allows the microphone to be inserted and pressed into the storage structure, and then pushed back into the speaker. Pressing the microphone again will pop it out. However, due to the complexity of the storage structure, there is a problem that the torsion spring and the swing arm themselves do not have a large enough compatible angle. This can cause the swing arm to fail to swing to the intended position, resulting in the microphone not locking or popping out, which affects the stability of the product and the user experience. Utility Model Content
[0004] To address this issue, this utility model provides a microphone storage component and a smart device, which solves the technical problem that the storage structure is relatively complex, making it easy for the swing arm to fail to swing to the predetermined position, thus affecting the stability of product use and the user experience.
[0005] To achieve the above objectives, this utility model specifically provides the following technical solution: a microphone storage assembly, comprising: a cylindrical body having a receiving cavity and an opening, the opening being connected to the receiving cavity; the receiving cavity having at least one locking position and at least one unlocking position, a sliding groove being provided between the locking position and the unlocking position, the distance between the locking position and the opening being less than the distance between the unlocking position and the opening; and a microphone reciprocating fixing mechanism for carrying the microphone; the microphone reciprocating fixing mechanism reciprocating between the locking position and the unlocking position to allow the microphone to be stored or removed.
[0006] Optionally, the microphone reciprocating fixing mechanism includes a support base, which is movably disposed within the receiving cavity. The support base is provided with protrusions, which are corresponding to sliding grooves.
[0007] Optionally, a limiting groove is provided on the inner wall of the receiving cavity. The limiting groove is bent to form a first groove, a second groove, a third groove, and a fourth groove. The first groove and the fourth groove both extend in a direction away from the opening. The end of the first groove away from the opening is connected to one end of the second groove, and the end of the fourth groove away from the opening is connected to one end of the third groove. The other end of the second groove is connected to the other end of the third groove. The end of the first groove that connects to the second groove is the first bent end, the end of the second groove that connects to the third groove is the second bent end, and the end of the third groove that connects to the fourth groove is the third bent end. Along the axial direction of the cylinder, the distance between the first bent end and the opening, and the distance between the third bent end and the opening, are both greater than the distance between the second bent end and the opening.
[0008] Optionally, the first groove, the second groove, the third groove, and the fourth groove are all inclinedly extended along a first direction; the first direction is parallel to the axial direction of the cylinder.
[0009] Optionally, a first guide slope is provided at the first bent end, a second guide slope is provided at the second bent end, and a third guide slope is provided at the third bent end.
[0010] Optionally, multiple limiting grooves are provided, and the multiple limiting grooves are arranged around the axis of the cylinder. One end of the first groove of one of two adjacent limiting grooves is connected to one end of the fourth groove of the other limiting groove. Multiple protrusions are provided and arranged around the periphery of the support seat. The multiple protrusions are slidably disposed in the multiple limiting grooves.
[0011] Optionally, the support includes a top seat, a seat body, and a base, with the protrusion disposed on the outer periphery of the seat body; the top seat is disposed on the base, and the seat body is rotatably and movable along the axial direction of the cylinder and sleeved on the top seat and the base, with a first locking tooth disposed at the bottom end of the seat body and a second locking tooth disposed on the base, the first locking tooth and the second locking tooth being engaged with each other.
[0012] Optionally, the inner wall of the receiving cavity is further provided with an assembly groove, which extends along the axial direction of the cylinder and is connected to the end of the first groove near the opening.
[0013] Optionally, the depth of the assembly groove should be less than or equal to the depth of the limiting groove.
[0014] Additionally, a smart device is provided, which includes the microphone storage component described above.
[0015] Compared with the prior art, this utility model has the following advantages: In this embodiment, the microphone can be placed into the receiving cavity from the opening, so that the microphone reciprocating fixing mechanism abuts against and carries the microphone, and moves away from the opening to drive the microphone reciprocating fixing mechanism to move. After the microphone reciprocating fixing mechanism moves to the locking position, the microphone can be located in the receiving cavity, so that the cylinder can store the microphone through the receiving cavity. The microphone reciprocating fixing mechanism can stop moving towards the opening, improving the stability of the microphone in the receiving cavity. Since the distance between the locking position and the opening is less than the distance between the unlocking position and the opening, the microphone reciprocating fixing mechanism can move from the unlocking position to the locking position, so that the microphone reciprocating fixing mechanism can drive the microphone to pop out from the opening. The microphone reciprocating fixing mechanism can reciprocate between the locking position and the unlocking position through the limiting groove, which has high stability, making the microphone storage component more stable and improving the user experience. Attached Figure Description
[0016] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0017] Figure 1 A schematic diagram of the structure of a microphone storage assembly provided in an embodiment of this utility model;
[0018] Figure 2 A cross-sectional view of the cylindrical body of a microphone storage assembly provided in an embodiment of this utility model;
[0019] Figure 3 for Figure 1 A cross-sectional view of a microphone storage assembly provided in an embodiment of the present utility model;
[0020] Figure 4 A schematic diagram of the structure of a carrier for a microphone storage assembly provided in an embodiment of this utility model;
[0021] Figure 5 A schematic diagram of the structure of a carrier for a microphone storage assembly provided in another embodiment of the present invention;
[0022] Figure 6 This is a schematic diagram of the structure of the smart device and microphone provided in an embodiment of the present utility model.
[0023] Figure label:
[0024] Microphone 10; tube body 100; receiving cavity 110; conical abutment surface 111; opening 120; limiting groove 130; first groove 131; second groove 132; third groove 133; fourth groove 134; assembly groove 135; return groove 136; fifth groove 137; sixth groove 138; first bent end 140; first guide slope 141; second bent end 150; second guide slope 151; third bent end 160; third guide slope 161; bearing seat 200; protrusion 201; top seat 210; locking claw 211; seat body 220; first locking tooth 221; base 230; second locking tooth 231; elastic element 300. Detailed Implementation
[0025] To make the utility model's objectives, features, and advantages more apparent and understandable, the technical solutions in the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the embodiments described below are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present utility model.
[0026] The technical solution of this utility model will be further described below with reference to the accompanying drawings and specific embodiments.
[0027] In the description of this utility model, it should be understood that the terms "upper", "lower", "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.
[0028] The following is for reference. Figures 1 to 6 This invention describes a microphone storage component and a smart device according to the present invention.
[0029] According to a first aspect of the present invention, a microphone storage assembly includes a cylindrical body 100 and a microphone reciprocating fixing mechanism; the cylindrical body 100 is provided with a receiving cavity 110 and an opening 120, the opening 120 being connected to the receiving cavity 110; the receiving cavity 110 is provided with at least one locking position and at least one unlocking position, a sliding groove 139 being provided between the locking position and the unlocking position, the distance between the locking position and the opening 120 being less than the distance between the unlocking position and the opening 120; the microphone reciprocating fixing mechanism is used to carry the microphone 10; the microphone reciprocating fixing mechanism reciprocates between the locking position and the unlocking position to store or remove the microphone 10.
[0030] In this embodiment of the invention, the microphone 10 can be placed into the receiving cavity 110 from the opening 120, so that the microphone reciprocating fixing mechanism abuts against and supports the microphone 10, and moves away from the opening 120 to drive the microphone reciprocating fixing mechanism to move. After the microphone reciprocating fixing mechanism moves to the locking position, the microphone 10 can be located in the receiving cavity 110, so that the cylinder 100 can store the microphone 10 through the receiving cavity 110. The microphone reciprocating fixing mechanism can stop moving towards the opening 120, improving the stability of the microphone 10 in the receiving cavity 110. Since the distance between the locking position and the opening 120 is smaller than the distance between the unlocking position and the opening 120, the microphone reciprocating fixing mechanism can move from the unlocking position to the locking position, so that the microphone reciprocating fixing mechanism can drive the microphone 10 to pop out from the opening 120. The microphone reciprocating fixing mechanism can reciprocate between the locking position and the unlocking position through the limiting groove 130, which has high stability, making the microphone storage component more stable to use and providing a better user experience.
[0031] The sliding groove 139 can be directly set on the inner wall of the receiving cavity 110, or another mounting component can be set on the inner wall of the receiving cavity 110. The sliding groove 139 can be directly set on the side wall of the mounting component. The mounting component can be a filler. After the mounting component is worn to a predetermined degree by the sliding of the microphone reciprocating fixing mechanism, it can be easily replaced.
[0032] The sliding groove 139 can be arranged circumferentially along the inner wall of the receiving cavity 110, and can be either unidirectional or bidirectional reciprocating, thus improving the convenience of use.
[0033] Reference Figure 2 It is understood that the microphone reciprocating fixing mechanism includes a carrier 200, which is movably disposed in the receiving cavity 110. The carrier 200 is provided with a protrusion 201, which corresponds to the sliding groove 139.
[0034] In this embodiment of the invention, the microphone 10 can be placed into the receiving cavity 110 through the opening 120, and the microphone 10 can abut against the support 200, causing the support 200 to move away from the opening 120. The support 200 slides in the groove via the protrusion 201 and can slide between the unlocked position and the locked position. Specifically, after the support 200 is pushed away from the opening 120, the protrusion 201 on the side of the support 200 can slide along the sliding groove 139 to the locked position to lock the support. The position of the carrier 200 is designed to prevent it from moving towards the opening 120. When the microphone 10 needs to be removed, the protrusion 201 slides from the locked position to the unlocked position via the sliding groove 139, allowing the elastic element 300 to push the carrier 200 and the microphone 10 upwards. By setting the sliding groove 139, the path of the protrusion 201 can be limited, making the movement of the protrusion 201 within the sliding groove 139 more stable. This results in higher stability of the microphone storage assembly and a better user experience.
[0035] Reference Figure 2 It is understood that a limiting groove 130 is provided on the inner wall of the receiving cavity 110. The limiting groove 130 is bent to form a first groove 131, a second groove 132, a third groove 133, and a fourth groove 134. The first groove 131 and the fourth groove 134 both extend in a direction away from the opening 120. The end of the first groove 131 away from the opening 120 is connected to one end of the second groove 132. The end of the fourth groove 134 away from the opening 120 is connected to one end of the third groove 133. The other end of the second groove 132 is connected to the third groove 133. The other end is connected; the end connecting the first groove 131 and the second groove 132 is the first bent end 140, the end connecting the second groove 132 and the third groove 133 is the second bent end 150, and the end connecting the third groove 133 and the fourth groove 134 is the third bent end 160. Along the axial direction of the cylinder 100, the distance between the first bent end 140 and the opening 120, and the distance between the third bent end 160 and the opening 120 are both greater than the distance between the second bent end 150 and the opening 120.
[0036] Reference Figure 2 and Figure 3In this embodiment of the invention, the third groove 133 is a sliding groove 139, which allows the microphone 10 to be placed into the receiving cavity 110 from the opening 120, and allows the microphone 10 to abut against the support 200, causing the support 200 to move away from the opening 120. The protrusion 201 on the side of the support 200 is initially located in the first groove 131. After the support 200 is pushed away from the opening 120, the protrusion 201 on the side of the support 200 can move along the first groove 131 until the protrusion 201 moves to the first bend. Since the distance between the first bend end 140 and the opening 120 is greater than the distance between the second bend end 150 and the opening 120 along the axial direction of the cylinder 100, after the support 200 stops being pushed away from the opening 120, and the protrusion 201 on the side of the support 200 can... Sliding into the second groove 132, since the distance between the third bent end 160 and the opening 120 is greater than the distance between the second bent end 150 and the opening 120 along the axis of the cylinder 100, the elastic element 300 can continuously push the support seat 200 to limit the position of the support seat 200, so that the support seat 200 is locked relative to the cylinder 100. After pushing the microphone 10 again to push the support seat 200 to move away from the opening 120, the protrusion 201 can slide into the third groove 133 until the protrusion 201 moves to the third bent end 160, and the protrusion 201 can slide into the fourth groove 134. By setting the limiting groove 130, the movement path of the protrusion 201 can be limited, so that the movement of the protrusion 201 in the limiting groove 130 is more stable, so that the microphone storage component is more stable in use and can provide a better user experience.
[0037] The locking position is located at the second bend end 150, and the unlocking position is located at the third bend end 160. The unlocking position is a limiting abutment structure. After unlocking, the protrusion 201 abuts and is locked inside the unlocking position. The unlocking position is 20mm to 25mm higher than the locking position to facilitate the removal of the protrusion 201.
[0038] Reference Figure 5It is understood that in some other embodiments of this utility model, the inner wall of the receiving cavity 110 also includes a return groove 136. The two ends of the return groove 136 are respectively connected to the second groove 132 and the fourth groove 134. In the axial direction of the cylinder 100, the distance between the return groove 136 and the opening 120 is greater than the distance between the third groove 133 and the fourth groove 134 in the direction of the opening 120. This allows the protrusion 201 located in the fourth groove 134 to return from the return groove 136 to the second groove 132. Thus, the second groove 132, the third groove 133, the fourth groove 134 and the return groove 136 can be integrated into a loop, improving the space utilization rate of the inner wall of the receiving cavity 110. Furthermore, the protrusion 201 can move continuously along the loop, improving the stability of the microphone storage assembly. The return slot 136 is composed of a fifth slot 137 and a sixth slot 138. The two ends of the fifth slot 137 are connected to the second slot 132 and the sixth slot 138, respectively, while the two ends of the sixth slot 138 are connected to the fifth slot 137 and the fourth slot 134, respectively. In addition, along the axial direction of the cylinder 100, the fifth slot 137 is located on the side of the third slot 133 away from the opening 120, and the sixth slot 138 is located on the side of the fourth slot 134 away from the opening 120. The end of the fifth slot 137 away from the opening 120 is connected to the end of the sixth slot 138 away from the opening 120.
[0039] Specifically, refer to Figure 3 The microphone reciprocating fixing mechanism also includes an elastic element 300, which is disposed in the receiving cavity 110 and connected to the cylinder 100 and the support 200; the elastic element 300 has an elastic restoring force that pushes the cylinder 100 toward the opening 120.
[0040] In this embodiment of the invention, the microphone 10 can be placed into the receiving cavity 110 through the opening 120, and the microphone 10 can abut against the support 200, causing the support 200 to move away from the opening 120. The protrusion 201 on the side of the support 200 is initially located in the first groove 131. After the support 200 is pushed away from the opening 120, the protrusion 201 on the side of the support 200 can move along the first groove 131 until the protrusion 201 moves to the first bend, and the support 200 can compress the elastic member 30. 0. Since the distance between the first bent end 140 and the opening 120 is greater than the distance between the second bent end 150 and the opening 120 along the axial direction of the cylinder 100, after the support seat 200 stops being pushed away from the opening 120, the elastic member 300 has an elastic restoring force that pushes the cylinder 100 toward the opening 120. The elastic member 300 can push the support seat 200 toward the opening 120, and the protrusion 201 on the side of the support seat 200 can slide into the second groove 132. The elastic member 300 continues to push the support seat... The seat 200 moves until the protrusion 201 is located at the second bent end 150. Since the distance between the third bent end 160 and the opening 120 is greater than the distance between the second bent end 150 and the opening 120 along the axial direction of the cylinder 100, the elastic member 300 can continuously push the support seat 200 to limit the position of the support seat 200, so that the support seat 200 is locked relative to the cylinder 100. After pushing the microphone 10 again to push the support seat 200 to move away from the opening 120, the protrusion 201 can slide into the third groove 133 until... The protrusion 201 moves to the third bend end 160, which allows the support seat 200 to compress the elastic element 300. After the microphone 10 is released, the elastic element 300 can push the support seat 200 to move, and the protrusion 201 can slide into the fourth groove 134, so that the support seat 200 and the microphone 10 can be pushed upward by the elastic element 300. By setting the limiting groove 130, the movement path of the protrusion 201 can be limited, so that the movement of the protrusion 201 within the limiting groove 130 is more stable, which makes the microphone storage component more stable to use and provides a better user experience.
[0041] Reference Figure 2 It is understood that the first groove 131, the second groove 132, the third groove 133 and the fourth groove 134 are all inclined and extended along the first direction; the first direction is parallel to the axis of the cylinder 100.
[0042] After the user inserts the microphone 10 into the receiving cavity 110 through the opening 120, the protrusion 201 can move in the limiting groove 130 in the inclined direction when the support 200 is subjected to a downward force, which reduces the difficulty of moving the protrusion 201 and improves the stability of the movement of the protrusion 201.
[0043] Specifically, refer to Figure 2 The first slot 131 and the third slot 133 are both tilted to the left, while the second slot 132 and the fourth slot 134 are both tilted to the right.
[0044] Reference Figure 2 It is understandable that a first guide slope 141 is provided at the first bending end 140, a second guide slope 151 is provided at the second bending end 150, and a third guide slope 161 is provided at the third bending end 160.
[0045] By setting the first guide slope 141, the protrusion 201 can slide from the end of the first groove 131 to the end of the second groove 132 at the first bent end 140, reducing the difficulty of the protrusion 201 sliding from the first groove 131 into the second groove 132, so as to further improve the stability of the protrusion 201 moving in the limiting groove 130.
[0046] By setting the second guide slope 151, the protrusion 201 can slide from the end of the second groove 132 to the end of the third groove 133 at the second bent end 150, reducing the difficulty of the protrusion 201 sliding from the second groove 132 into the third groove 133, so as to further improve the stability of the protrusion 201 moving in the limiting groove 130.
[0047] By setting the third guide slope 161, the protrusion 201 can slide from the end of the third groove 133 to the end of the fourth groove 134 at the third bending end 160, reducing the difficulty of the protrusion 201 sliding from the third groove 133 into the fourth groove 134, so as to further improve the stability of the protrusion 201 moving in the limiting groove 130.
[0048] By setting the first guide slope 141, the second guide slope 151 and the third guide slope 161, the difficulty of the protrusion 201 sliding in the limiting groove 130 can be reduced, and the stability of the protrusion 201 moving in the limiting groove 130 can be further improved.
[0049] It is understood that the system also includes multiple buffer components, which are respectively located at the first bending end 140, the second bending end 150, and the third bending end 160.
[0050] Because the limiting groove 130 is bent, the damage to the protrusion 201 caused by collision at the first bent end 140, the second bent end 150 and the third bent end 160 can be reduced by setting a buffer, thereby improving the stability of the protrusion 201 moving in the limiting groove 130 and reducing the noise generated by the collision between the protrusion 201 and the cylinder 100.
[0051] Reference Figure 2 It is understood that multiple limiting grooves 130 are provided, and the multiple limiting grooves 130 are arranged around the axis of the cylinder 100. One end of the first groove 131 of one of the two adjacent limiting grooves 130 is connected to one end of the fourth groove 134 of the other limiting groove 130. Multiple protrusions 201 are provided and are arranged around the periphery of the support seat 200. The multiple protrusions 201 are slidably arranged in the multiple limiting grooves 130.
[0052] Specifically, the first groove 131 of one of the two adjacent limiting grooves 130 is connected to the fourth groove 134 of the other limiting groove 130 near the opening 120, so that the protrusion 201 slides from the fourth groove 134 of one limiting groove 130 into the first groove 131 of the other limiting groove 130, improving adaptability, and allowing the support seat 200 to rotate around the axis of the cylinder 100 within the receiving cavity 110.
[0053] Reference Figure 3 and Figure 4 It is understood that the support seat 200 includes a top seat 210, a seat body 220 and a base 230. The protrusion 201 is disposed on the outer periphery of the seat body 220. The top seat 210 is disposed on the base 230. The seat body 220 is rotatably and movable along the axis of the cylinder 100 and is sleeved on the top seat 210 and the base 230. The bottom end of the seat body 220 is provided with a first locking tooth 221 and the base 230 is provided with a second locking tooth 231. The first locking tooth 221 and the second locking tooth 231 are engaged with each other.
[0054] The seat 220 is rotatable relative to the top seat 210 and the base 230 around the axis of the cylinder 100, so that when the protrusion 201 on the outer periphery of the seat 220 moves within the limiting groove 130, the seat 220 can rotate relative to the top seat 210 and the base 230. Furthermore, the seat 220 is rotatable relative to the top seat 210 and the base 230 along the axis of the cylinder 100, so that when the protrusion 201 on the outer periphery of the seat 220 moves within the limiting groove 130, the seat 220 can move relative to the top seat 210 and the base 230. Specifically, the limiting groove 130 extends obliquely away from the opening 120, so that when the protrusion 201 moves within the limiting groove 130, it moves along a direction oblique to the axis of the cylinder 100, allowing the seat 220 to move and rotate simultaneously relative to the top seat 210 and the base 230.
[0055] The base 220 is connected to the second tooth 231 on the base 230 via the first tooth 221 to prevent the base 220 from rotating in the opposite direction, thereby improving the stability of the protrusion 201 moving within the limiting groove 130 and making the microphone storage assembly more stable in use.
[0056] Specifically, the top mount 210 can be equipped with an insertable charging probe structure, a contact charging probe structure, or a wireless charging structure to meet the different usage requirements of the microphone 10.
[0057] Reference Figure 3 and Figure 4 It is understood that a conical abutment surface 111 is provided on the groove wall of the receiving cavity 110; a locking claw 211 is provided at the top of the top seat 210 corresponding to the position of the conical abutment surface 111. The locking claw 211 can slide downward along the conical abutment surface 111 after being driven to lock the microphone 10, or slide upward along the conical abutment surface 111 to release the microphone 10.
[0058] After the support 200 moves away from the opening 120, the locking claw 211 at the top of the top seat 210 can abut against the conical abutment surface 111 on the groove wall of the receiving cavity 110, so that the locking claw 211 slides down along the conical abutment surface 111 to lock the microphone 10, thereby limiting the position of the microphone 10. Specifically, the microphone 10 housing is provided with a locking groove, and the locking claw 211 can be inserted into the locking groove, increasing the difficulty of locking the microphone 10.
[0059] After the support seat 200 moves toward the direction of the opening 120, the locking claw 211 at the top of the top seat 210 can move toward the direction away from the microphone 10 along the conical abutment surface 111 on the groove wall of the receiving cavity 110, thereby releasing the microphone 10. Specifically, the locking claw 211 on the top seat 210 has an elastic restoring force that moves toward the axis away from the cylinder 100.
[0060] Reference Figure 2 and Figure 3 It is understood that an assembly groove 135 is also provided on the inner wall of the receiving cavity 110. The assembly groove 135 extends along the axial direction of the cylinder 100 and is connected to the end of the first groove 131 near the opening 120.
[0061] The protrusion 201 on the support 200 can slide from the assembly groove 135 into the first groove 131 of the limiting groove 130. By setting the assembly groove 135, the difficulty of installing the support 200 can be reduced.
[0062] Specifically, the length direction of the assembly groove 135 is aligned with the axial direction of the cylinder 100 of the support seat 200.
[0063] Reference Figure 2 and Figure 3 It is understandable that the depth of the assembly groove 135 is less than or equal to the depth of the limiting groove 130.
[0064] The depth of the mounting groove 135 is equal to the depth of the limiting groove 130, which allows the protrusion 201 to return to the mounting groove 135 after each unlocking. Therefore, the height of the fixed seat can be shortened while maintaining the stroke of the load-bearing movement.
[0065] The depth of the assembly groove 135 is less than the depth of the limiting groove 130, so that the protrusion 201 does not need to return to the entrance of the assembly groove 135 after each unlocking, making the movement path of the protrusion 201 simpler and increasing its stability.
[0066] Reference Figures 1 to 6 According to a second aspect of the present invention, the smart device includes the microphone storage component described in the first aspect embodiment.
[0067] When the microphone 10 is connected to the speaker, it will cause feedback if it is too close to the speaker. The harsh feedback sound emitted by the speaker will greatly affect the user experience. Especially when the microphone 10 is stored in the speaker, the probability of feedback is higher due to the impact and friction sound between the microphone 10 and the speaker during the storage process. The microphone 10 can be automatically turned off to prevent feedback from occurring when the microphone 10 is close to the speaker or when the microphone 10 is stored in the speaker.
[0068] In some embodiments, the smart device of this invention can be a smart speaker. The smart speaker of this invention is equipped with a smart microphone 10 receiving assembly. The receiving structure can be a receiving cavity 110 for receiving and storing the microphone 10. The microphone 10 is inserted into the cavity, and the cavity depth is greater than or equal to the length of the microphone 10. The receiving cavity 110 includes an opening 120 through which the microphone 10 is inserted vertically or horizontally along its length direction into the cavity for storage. A microphone 10 fixing structure can be provided inside or outside the opening 120. To ensure the microphone 10 is secured after being stored, the opening 120 can be positioned anywhere on the smart speaker, including the top, side, and bottom surfaces. The storage structure can also be a groove, in which the microphone 10 is fitted and placed. The microphone 10 can be stored by placing it inside or outside the groove. A microphone 10 fixing structure can be provided inside or outside the groove to secure the microphone 10 after it is stored. The microphone 10 is placed vertically or horizontally into the groove along its length to achieve storage. The groove can be positioned anywhere on the smart speaker, including the top, side, and bottom surfaces.
[0069] In some implementations, the smart speaker can also be connected to the screen via a movable structure, and a screen storage slot can be provided, in which the screen is stored when closed. The storage structure can be located under the screen, so that when the screen is closed, the microphone 10 is completely covered by the screen and completely stored inside the smart speaker.
[0070] In some embodiments, the microphone 10 is automatically powered off by a sensing element detecting the distance between the smart speaker and the microphone 10. Once the sensing element detects that the distance between the smart speaker and the microphone 10 is less than or equal to a preset distance, the microphone 10 automatically powers off. The sensing element can be one or more, and can be a Hall effect sensor, a proximity sensor, an infrared sensor, or any other single electronic component capable of sensing the distance between the smart speaker and the microphone 10, or any combination of electronic components. The sensing element can be positioned on the smart speaker and / or the microphone 10. Specifically, when the microphone 10 is inserted into the cavity, the sensing element can be positioned at the cavity opening 120 so that the microphone 10 powers off immediately upon insertion into the opening 120. The sensing element can also be positioned at the end of the cavity away from the opening 120 to prevent the sensing element from being exposed and aging due to the opening 120 facing outwards. When the microphone 10 is fitted into the groove, the sensing element can be positioned at one end, the middle, or both ends of the groove.
[0071] In some specific embodiments, the sensing element is a Hall element. The smart speaker storage structure and the microphone 10 each have corresponding positions. A magnetic element is provided at the corresponding position of the microphone 10 and a Hall element is provided at the corresponding position of the smart speaker; alternatively, a Hall element is provided at the corresponding position of the microphone 10 and a magnetic element is provided at the corresponding position of the smart speaker. The trigger condition for the Hall element can be that the detected magnetic field strength reaches a preset value. When the detected magnetic field strength is greater than or equal to the preset value, it means that the distance between the smart speaker and the microphone 10 is sufficient to trigger a feedback sound, requiring the microphone 10 to be turned off. Preferably, a magnetic element is provided at the corresponding position of the microphone 10 and a Hall element is provided at the corresponding position of the smart speaker. Since the microphone 10 moves around during karaoke, it may move to other places with strong magnetic fields. A Hall element on the microphone 10 may cause the microphone 10 to turn off incorrectly, thus affecting the experience. The microphone 10 can be inserted into the storage, with the Hall element located at the opening 120 of the smart speaker cavity or at one end away from the opening 120; the microphone 10 can also be placed into the storage, with the Hall element located at one end, the middle, or both ends of the recess.
[0072] In some specific embodiments, the sensing element is a Hall element. The smart speaker is equipped with a corresponding charging structure, and the microphone 10 is equipped with a corresponding power receiving structure. The trigger condition for the Hall element can be the change in magnetic field caused by the instant the microphone 10 is powered on during charging. When the change in magnetic field is detected, it means that the distance between the smart speaker and the microphone 10 is sufficient to trigger a howling sound, and the microphone 10 needs to be turned off. The charging structure can be set on the surface of the smart speaker or corresponding to the storage structure. The microphone 10 can be inserted into the storage, with the charging structure set at the end of the smart speaker cavity away from the opening 120. The bottom or end face of the microphone 10 is correspondingly equipped with a power receiving structure, and the Hall element is set near the charging structure. The Hall element only needs to sense the change in magnetic field caused by the instant the power is applied. Alternatively, the microphone 10 can be placed into the storage, with the charging structure set at one end, the middle, or both ends of the groove in the smart speaker. The microphone 10 is equipped with a corresponding power receiving structure, and the Hall element is set near the charging structure. The Hall element only needs to sense the change in magnetic field caused by the instant the power is applied.
[0073] In some specific embodiments, the sensing element is a Hall element, the smart speaker is provided with a corresponding charging structure, and the storage structure and microphone 10 are each provided with magnetic components. The magnetic components fix the microphone 10 and are located outside the sensing trigger range of the Hall element. The microphone 10 can be placed in storage, and the charging structure is located at one end, the middle, or both ends of the groove in the smart speaker. The microphone 10 is provided with a corresponding power receiving structure, and the Hall element is located near the charging structure. The Hall element can sense the change in magnetic field caused by the instant of power-on. Preferably, the charging structure is located at one end of the groove in the smart speaker, and the magnetic component is located at the other end or the middle of the groove in the smart speaker. When the microphone 10 is cylindrical, a button is provided on the surface of the microphone 10, and the magnetic component is located on the side opposite to the button, so that the button of the microphone 10 faces outward from the groove.
[0074] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0075] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
[0076] 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 spirit and scope of the technical solutions of the embodiments of this utility model.
Claims
1. A microphone storage assembly, characterized in that, include: The cylindrical body (100) is provided with a receiving cavity (110) and an opening (120), the opening (120) being connected to the receiving cavity (110); the receiving cavity (110) is provided with at least one locking position and at least one unlocking position, a sliding groove being provided between the locking position and the unlocking position, and the distance between the locking position and the opening (120) being less than the distance between the unlocking position and the opening (120); A microphone reciprocating fixing mechanism is used to carry the microphone; the microphone reciprocating fixing mechanism reciprocates between the locking position and the unlocking position to allow the microphone to be stored or removed.
2. The microphone storage assembly according to claim 1, characterized in that, The microphone reciprocating fixing mechanism includes a carrier (200), which is movably disposed in the receiving cavity (110). The carrier (200) is provided with a protrusion (201), which corresponds to a sliding groove.
3. The microphone storage assembly according to claim 1, characterized in that, A limiting groove (130) is provided on the inner wall of the receiving cavity (110). The limiting groove (130) is bent to form a first groove (131), a second groove (132), a third groove (133), and a fourth groove (134). The first groove (131) and the fourth groove (134) both extend away from the opening (120). One end of the first groove (131) away from the opening (120) is connected to one end of the second groove (132). One end of the fourth groove (134) away from the opening (120) is connected to one end of the third groove (133). The other end of the second groove (132) is connected to the other end of the third groove (133). One end is connected; the end of the first groove (131) connected to the second groove (132) is the first bent end (140), the end of the second groove (132) connected to the third groove (133) is the second bent end (150), and the end of the third groove (133) connected to the fourth groove (134) is the third bent end (160). Along the axial direction of the cylinder (100), the distance between the first bent end (140) and the opening (120) and the distance between the third bent end (160) and the opening (120) are both greater than the distance between the second bent end (150) and the opening (120).
4. The microphone storage assembly according to claim 1, characterized in that, The first groove (131), the second groove (132), the third groove (133) and the fourth groove (134) are all inclinedly extended along a first direction; the first direction is parallel to the axial direction of the cylinder (100).
5. The microphone storage assembly according to claim 3, characterized in that, A first guide slope (141) is provided at the first bent end (140), a second guide slope (151) is provided at the second bent end (150), and a third guide slope (161) is provided at the third bent end (160).
6. The microphone storage assembly according to claim 3, characterized in that, Multiple limiting grooves (130) are provided, and the multiple limiting grooves (130) are arranged around the axis of the cylinder (100). One end of the first groove (131) of one of the two adjacent limiting grooves (130) is connected to one end of the fourth groove (134) of the other limiting groove (130). Multiple protrusions (201) are provided and are arranged around the periphery of the support seat (200). The multiple protrusions (201) are slidably arranged in the multiple limiting grooves (130).
7. The microphone storage assembly according to claim 2, characterized in that, The support seat (200) includes a top seat (210), a seat body (220) and a base (230). The protrusion (201) is disposed on the outer periphery of the seat body (220). The top seat (210) is disposed on the base (230). The seat body (220) is rotatably and movable along the axis of the cylinder (100) and is sleeved on the top seat (210) and the base (230). The bottom end of the seat body (220) is provided with a first locking tooth (221), and the base (230) is provided with a second locking tooth (231). The first locking tooth (221) and the second locking tooth (231) are engaged with each other.
8. The microphone storage assembly according to claim 3, characterized in that, An assembly groove (135) is also provided on the inner wall of the receiving cavity (110). The assembly groove (135) extends along the axial direction of the cylinder (100) and is connected to the end of the first groove (131) near the opening (120).
9. The microphone storage assembly according to claim 8, characterized in that, The depth of the assembly groove (135) is less than or equal to the depth of the limiting groove (130).
10. A smart device, characterized in that, include: The microphone storage assembly according to any one of claims 1 to 9.