Detachable earphone seat and electronic equipment

By using an elastic electrical connector to elastically press against the motherboard in the headphone socket, the problem of complex headphone socket disassembly in the prior art is solved, realizing convenient disassembly and efficient maintenance, and improving maintenance efficiency and the stability of electrical connection.

CN224067932UActive Publication Date: 2026-03-31WUXI WINGTECH INFORMATION TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

The existing detachable headphone jack has a complicated connection method to the device motherboard, which makes disassembly inconvenient and increases maintenance costs and time.

Method used

The headphone jack is easily detached by using a flexible electrical connector as the conductive element and making electrical connection with the motherboard through elastic compression.

Benefits of technology

It simplifies the disassembly process of the headphone jack, reduces maintenance costs, improves maintenance efficiency, and ensures the stability of the electrical connection and the reliability of signal transmission.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of electronic equipment, in particular to a detachable earphone seat and electronic equipment. A detachable earphone seat comprises an earphone seat body and a conducting piece, an earphone jack is arranged in the earphone seat body, the earphone jack is used for plugging an earphone plug, the conducting piece is arranged on the earphone seat body, the conducting piece is used for connecting a mainboard and the earphone plug, and the conducting piece is an elastic electric connecting piece. The elastic electric connecting piece is configured to be electrically connected with the main board through elastic extrusion. When the earphone seat is disassembled, the earphone seat is directly disassembled from the main board by utilizing the elasticity of the conduction piece without other operation steps, so that the earphone seat is convenient to disassemble, the maintenance cost is reduced, and the maintenance efficiency is improved.
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Description

Technical Field

[0001] This application relates to the field of electronic device technology, and more particularly to a detachable headphone holder and an electronic device. Background Technology

[0002] The field of electronic device technology is extremely broad and constantly evolving. It encompasses numerous aspects, from everyday smartphones and tablets to various professional electronic instruments and equipment. This field involves the design, manufacturing, and integration of electronic components, as well as the development of related software. The development of electronic devices aims to achieve multiple goals, including improving performance, reducing size, lowering power consumption, increasing functionality, and enhancing user experience.

[0003] In electronic devices, the headphone jack is a crucial component, responsible for connecting external headphones and enabling users to enjoy audio content. Currently, common headphone jack types in electronic devices, in terms of connection method, include surface mount technology (SMT) and DIP / spring-loaded connectors. Mobile phones commonly use 3.5mm DIP SMT. Due to the connection method between the detachable headphone jack structure and the device's motherboard, disassembling the headphone jack is relatively inconvenient, potentially leading to increased repair costs and extended repair times. Utility Model Content

[0004] This application discloses a detachable headphone holder. The conductive component of the headphone holder is an elastic electrical connector, which is electrically connected to the motherboard of the electronic device through elastic compression. This facilitates the disassembly of the headphone holder from the motherboard, reduces maintenance costs, and improves maintenance efficiency.

[0005] To achieve the above objectives, in a first aspect, embodiments of this application disclose a detachable headphone holder, which is installed in an electronic device, the detachable headphone holder comprising:

[0006] The headphone holder body has a headphone jack inside, which is used to plug in a headphone plug;

[0007] A conductive element is disposed on the headphone socket body. The conductive element is used to connect the motherboard and the headphone plug. The conductive element is an elastic electrical connector, which is configured to be electrically connected to the motherboard by elastic compression.

[0008] As an optional implementation, the conductive element includes a spring sheet, and a first bend is provided at the first end of the conductive element, the first bend being used to abut against the motherboard.

[0009] As an optional implementation, the second end of the conductive member is provided with a second bend, which extends into the headphone jack and abuts against the headphone plug.

[0010] As an optional implementation, the headphone jack extends along a first direction, and there are multiple conductive elements, which are respectively located on both sides of the headphone jack along a second direction, so that when the headphone plug is inserted into the headphone jack along the first direction, the second bent portions of the two conductive elements can abut against the two sides of the headphone plug along the second direction, where the second direction is perpendicular to the first direction.

[0011] As an optional implementation, the headphone holder body has a plurality of conductive elements on each side along the second direction, and the plurality of conductive elements on each side are arranged along the first direction.

[0012] As an optional implementation, the headphone holder body has a positioning member on one side along its thickness direction. The positioning member is used to connect to the housing of the electronic device. The housing has a positioning part. The positioning member cooperates with the positioning part to install the headphone holder body into a preset position of the housing.

[0013] As an optional implementation, the positioning element is integrally formed with the headphone base body.

[0014] As an optional implementation, the headphone holder body is made of plastic.

[0015] As an optional implementation, the conductive element is made of a metallic material.

[0016] Secondly, this application also discloses an electronic device, the electronic device comprising:

[0017] The headphone jack body as described in any of the first aspects;

[0018] The housing, wherein the headphone base body abuts against the housing;

[0019] A motherboard is connected to the housing and abuts against the conductive element to achieve an electrical connection with the conductive element.

[0020] Compared with the prior art, the beneficial effects of this application are:

[0021] This application provides a detachable headphone holder, including a headphone holder body and a conductive component. The headphone holder body has a headphone jack for inserting a headphone plug. The conductive component is disposed in the headphone holder body and is used to connect the motherboard and the headphone plug. The conductive component is an elastic electrical connector, configured to make an electrical connection with the motherboard through elastic compression. When disassembling the headphone holder, the elasticity of the conductive component allows the headphone holder to be directly removed from the motherboard without other steps, facilitating disassembly, reducing maintenance costs, and improving maintenance efficiency. Attached Figure Description

[0022] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0023] Figure 1 This is a schematic diagram of the structure of an electronic device disclosed in an embodiment of this application (excluding the housing);

[0024] Figure 2 This is a schematic diagram of the detachable headphone holder disclosed in an embodiment of this application from a first-view perspective.

[0025] Figure 3 This is a schematic diagram of the detachable headphone holder disclosed in an embodiment of this application from a second-view perspective.

[0026] Figure 4 This is a schematic diagram of the detachable headphone holder disclosed in an embodiment of this application from a third-person perspective.

[0027] Explanation of reference numerals in the attached figures:

[0028] 100-Detachable headphone holder; 1-Headphone holder body; 11-Headphone jack; 2-Conductor; 21-Spring; 211-First bend; 212-Second bend; 213-Contact; 22-Positioning element; 200-Electronic device; 3-Main board; 4-Headphone plug; X-First direction; Y-Second direction. Detailed Implementation

[0029] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0030] In this application, the terms "inner," "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for the purpose of better describing this application and its embodiments, and are not intended to limit the indicated device, element, or component to having a specific orientation, or to be constructed and operated in a specific orientation.

[0031] Furthermore, in addition to indicating location or positional relationship, some of the aforementioned terms may also have other meanings. For example, the term "above" may also be used in some cases to indicate a certain dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.

[0032] Furthermore, the terms "installation," "setup," "equipped with," and "connection" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral structure; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium, or an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.

[0033] Furthermore, the terms "first," "second," etc., are primarily used to distinguish different devices, elements, or components (which may be the same or different in specific type and construction), and are not intended to indicate or imply the relative importance or quantity of the indicated devices, elements, or components. Unless otherwise stated, "a plurality of" means two or more.

[0034] The field of electronic device technology is extremely broad and constantly evolving. It encompasses numerous aspects, from everyday smartphones and tablets to various professional electronic instruments and equipment. This field involves the design, manufacturing, and integration of electronic components, as well as the development of related software. The development of electronic devices aims to achieve multiple goals, including improving performance, reducing size, lowering power consumption, increasing functionality, and enhancing user experience.

[0035] In electronic devices, the headphone jack is a crucial component, responsible for connecting external headphones and enabling users to enjoy audio content. Currently, headphone jacks come in a wide variety of types. In terms of interface standards, there are 2.5mm and 3.5mm standards, with the 3.5mm standard being more common and widely used in various audio devices. Structurally, there are three-section and four-section designs, primarily to match the headphone plug design to achieve different functions; some are purely for audio transmission, while others also include microphone functionality. Regarding the presence or absence of a switch, headphone jacks with switches can control the on / off state of the device's audio output when headphones are plugged in and out, which helps save power and improves user convenience in some devices. In terms of pin count, there are 5-pin and 6-pin designs, with different pin numbers determining the internal circuit connection methods and the functions that can be implemented. Finally, in terms of mounting methods, there are on-board and off-board types, mainly related to the design and manufacturing process of the circuit board. In terms of connection methods, surface mount technology (SMT), dual in-line package (DIP), and spring contact type each have their own characteristics. Among them, the commonly used form for mobile phones is the 3.5mm DIP pin SMT method, which combines the stability of DIP pins with the high-efficiency production of SMT technology.

[0036] Because of the way the detachable headphone jack connects to the device's motherboard, disassembling the headphone jack is relatively inconvenient, which may lead to increased repair costs and extended repair time.

[0037] Based on this, this application discloses a detachable headphone holder. The conductive component of the headphone holder is an elastic electrical connector, which is electrically connected to the motherboard of the electronic device through elastic compression. This facilitates the disassembly of the headphone holder from the motherboard, reduces maintenance costs, and improves maintenance efficiency.

[0038] The technical solution of this application will be further described below with reference to the embodiments and accompanying drawings.

[0039] Please see Figure 1 , Figure 1 This is a schematic diagram (excluding the housing) of an electronic device 200 disclosed in an embodiment of this application. This application also discloses a detachable headphone holder 100, which includes:

[0040] The headphone holder body 1 has a headphone jack 11 inside, which is used to plug in the headphone plug 4.

[0041] The conductive component 2 is disposed on the headphone socket body 1. One end of the conductive component 2 is connected to the motherboard 3, and the other end is connected to the headphone plug 4. The conductive component 2 is an elastic electrical connector, that is, the conductive component 2 is elastic while ensuring electrical connection. The elastic electrical connector is configured to be able to make an electrical connection with the motherboard 3 through elastic compression.

[0042] In traditional headphone sockets (such as 3.5mm DIP-pin SMT headphone sockets), disassembly often requires complex operations due to the way they are connected to the motherboard 3, potentially involving multiple tools and steps, such as requiring soldering tools to disconnect from the motherboard 3. However, the detachable headphone socket 100 in this solution uses a flexible electrical connector 2 as its conductive element. When the headphone socket needs to be disassembled, the elasticity of the conductive element 2 allows it to be directly detached from the motherboard 3. This direct disassembly method avoids the complex procedures of traditional headphone socket disassembly, making the disassembly process simple and quick.

[0043] Traditional headphone jacks are difficult to disassemble, and if a malfunction occurs, repair personnel may need to spend more time and effort to disassemble and repair them. This leads to increased repair costs, including labor costs and the cost of potential equipment damage. The detachable headphone jack 100, due to its ease of disassembly, allows repair personnel to perform repairs more efficiently, reducing labor input during the repair process and thus lowering repair costs.

[0044] Traditional headphone jacks involve complex disassembly procedures, inevitably leading to extended repair times. Given the frequent use of modern electronic devices 200, prolonged repairs negatively impact the user experience. This detachable headphone jack 100, however, requires no additional steps for removal, allowing repair personnel to quickly remove and repair or replace the faulty jack, significantly improving repair efficiency and enabling the electronic device 200 to return to normal operation more quickly.

[0045] As an optional implementation method, combined with Figure 2 , Figure 2 This is a first-view structural diagram of the detachable headphone holder 100 disclosed in this application embodiment. The conductive member 2 includes a spring piece 21, which has a certain elasticity and flexibility. The first end of the conductive member 2 is provided with a first bending portion 211, which is used to abut against the motherboard 3.

[0046] The presence of the first bend 211 allows the conductor 2 to better conform to the surface of the motherboard 3. Compared to a normal flat connection, the bend increases the contact area with the motherboard 3, thereby improving the stability of the electrical connection between the conductor 2 and the motherboard 3. During normal use of the electronic device 200, even under slight vibration or external interference, this stable connection reduces the likelihood of poor contact, ensuring stable transmission of audio signals.

[0047] Moreover, the spring piece 21 has a relatively simple structure and is easy to process and form. The first bending portion 211 can be formed during the manufacturing process of the spring piece 21 through a simple stamping or bending process. When installed onto the headphone socket body 1 and connected to the motherboard 3, the first bending portion 211 can accurately position and abut against the motherboard 3 without the need for a complex adjustment process. In addition, such a detachable headphone socket 100 can adapt to different motherboards 3 (e.g., motherboards 3 that match DIP pin headphone sockets), meeting different market demands. This simple structure and convenient installation method help improve production efficiency, reduce production costs, and reduce assembly errors during the assembly of the headphone socket, thereby improving the overall quality of the product.

[0048] The elastic properties of the spring 21, combined with the special structure of the first bending portion 211, allow the conductive element 2 to better adapt to minor deformations or physical changes such as thermal expansion and contraction of the motherboard 3 during long-term use. For example, when the electronic device 200 is used in different temperature environments, the motherboard 3 may undergo slight expansion or contraction. The first bending portion 211 can adaptively adjust its contact state according to this change in the motherboard 3, ensuring a good electrical connection between the conductive element 2 and the motherboard 3. This adaptive capability improves the reliability and durability of the entire headphone jack and reduces the probability of headphone jack failure due to connection problems.

[0049] It is understood that the first bend 211 can be any possible bend form, and this embodiment does not limit it.

[0050] In some possible implementations, combined Figure 3 , Figure 3 This is a schematic diagram of the detachable headphone holder 100 disclosed in this application from a second perspective. The second end of the conductive member 2 has a second bend 212, which extends into the headphone jack 11 and abuts against the headphone plug 4. This effectively ensures the connection between the headphone plug 4 and the conductive member 2, while also ensuring its position within the headphone jack 11. Compared to a simple conductive member 2 without the second bend 212, the second bend 212 applies pressure along the second direction Y to the headphone plug 4 inserted into the headphone jack 11, ensuring tight contact between the headphone plug 4 and the conductive member 2. In daily use, when the user plugs or unplugs headphones or mobile electronic devices 200, even under external force, the headphone plug 4 is less likely to loosen or experience poor contact due to the limiting and tight abutment effect of the second bend 212, thus ensuring stable audio signal transmission.

[0051] The second bend 212 abuts against the headphone plug 4, providing a more reliable electrical connection path. It can better accommodate headphone plugs 4 of different specifications or degrees of wear. For headphone plugs 4 with slight oxidation or wear on their surfaces, the second bend 212 can form good electrical contact with the surface of the headphone plug 4 through its own elastic deformation. This improves the efficiency of the electrical connection between the headphone holder and the headphone plug 4, reducing the possibility of audio signal attenuation or distortion due to excessive contact resistance.

[0052] Since the second bend 212 extends into the headphone jack 11 to abut against the headphone plug 4, no additional space is needed to arrange a complex connection structure. This compact design helps reduce the overall size of the headphone holder, allowing more space for other components in situations where the internal space of the electronic device 200 is limited. At the same time, the compact structure also reduces the risk of loosening or collisions that may occur due to the dispersion of components, improving the installation stability and overall reliability of the headphone holder in the electronic device 200.

[0053] It is understood that the second bend 212 can be any possible bend form, and this embodiment does not limit it.

[0054] In some alternative implementations, combined with Figures 2 to 4 , Figure 4 This is a schematic diagram of the detachable headphone holder 100 disclosed in this application from a third-person perspective. The headphone jack 11 extends along the first direction X, and there are multiple conductive members 2. The multiple conductive members 2 are respectively located on both sides of the headphone jack 11 along the second direction Y, so that when the headphone plug 4 is inserted into the headphone jack 11 along the first direction X, the second bent portions 212 of the two conductive members 2 can abut against the two sides of the headphone plug 4 along the second direction Y.

[0055] When the headphone plug 4 is inserted into the headphone jack 11 along the first direction X, the second bent portions 212 of the conductive elements 2 on both sides can abut against the two sides of the headphone plug 4 along the second direction Y (perpendicular to the first direction X). This structure secures the headphone plug 4 from both sides, ensuring that during daily use, the headphone plug 4 is not easily dislodged from the headphone jack 11 or becomes loose, regardless of whether the user is walking, exercising, or experiencing minor external impacts. Compared to a single conductive element 2 or unevenly distributed conductive elements 2, this design with double-sided conductive elements 2 greatly improves the stability of the connection between the headphone plug 4 and the headphone socket, ensuring the continuity of audio signal transmission.

[0056] On the other hand, both sides of the headphone plug 4 are in close contact with the conductive element 2, which means that the audio signal can be conducted through multiple stable electrical connection paths during transmission. If one of the conductive elements 2 experiences a slight contact failure, the other conductive elements 2 can still transmit the signal normally, thus greatly improving the reliability of signal transmission. For example, after prolonged use, the conductivity of a certain conductive element 2 may decrease due to wear or oxidation, but because multiple conductive elements 2 work together, the overall impact on the audio signal transmission can be minimized.

[0057] When using this type of headphone plug 4, there may be slight differences in size, shape, or electrode layout. A structure with multiple conductive elements 2 on both sides can better accommodate these differences. This layout achieves an effective electrical connection with the headphone plug 4 by the conductive elements 2 abutting against both sides and undergoing elastic deformation. This improves the compatibility of the headphone holder with different types of headphone plugs 4, making it easier for users to connect various headphone products to electronic devices 200, thus enhancing the product's versatility.

[0058] Optionally, combined Figures 2 to 4 The headphone base body 1 has multiple conductive elements 2 on each side along the second direction Y, and the multiple conductive elements 2 on each side are arranged along the first direction X.

[0059] When the headphone plug 4 is connected to the headphone socket, multiple conductive elements 2 participate in signal transmission on each side. Even if one conductive element 2 fails due to manufacturing defects, wear and tear, or external interference, the other conductive elements 2 can still function normally, providing multiple safeguards for audio signal transmission. This is similar to having multiple parallel lanes on a road; even if one lane is blocked (conductive element 2 fails), the other lanes (conductive elements 2) can still ensure the passage of the vehicle (audio signal), thus improving the reliability of audio signal transmission.

[0060] Different headphone plugs 4 may have slightly different contact points with the conductive elements 2 when inserted into the headphone jack 11. Arranging multiple conductive elements 2 along the first direction X better accommodates these differences. The conductive elements 2 along the first direction X can more effectively contact different parts of the headphone plug 4 in the first direction X, ensuring the stability of the electrical connection. This layout flexibly adapts to different headphone plug insertion situations, improving the headphone holder's adaptability to different headphone plugs 4.

[0061] Furthermore, by providing multiple conductive elements 2 arranged along the first direction X on each side of the headphone holder body 1 along the second direction Y, the structure of the headphone holder on both sides of the headphone jack 11 can be made more balanced. From a mechanical point of view, when the headphone plug 4 is inserted or removed, the multiple conductive elements 2 evenly distributed on both sides can distribute the force more evenly. This helps to reduce local stress concentration, lowers the risk of component damage due to uneven force distribution, and improves the overall stability and durability of the headphone holder structure.

[0062] For example, combined Figure 3 The second end of the plurality of conductive members 2 on one side of the headphone plug 4 along the second direction Y can be either a second bent portion 212 or a contact portion 213. The second end of the conductive member 2 does not need to be bent and directly abuts against the headphone plug 4. This embodiment does not limit this.

[0063] In some embodiments, combined with Figure 2 and Figure 3 The headphone holder body 1 has a positioning member 22 on one side along its own thickness direction. The positioning member 22 is used to connect the housing of the electronic device 200 (not shown in the figure). The housing has a positioning part. The positioning member 22 cooperates with the positioning part to install the headphone holder body 1 into the preset position of the housing.

[0064] In the production and assembly process of electronic device 200, accurate installation position is crucial to ensuring proper alignment between the headphone socket and motherboard 3, and between the headphone jack 11 and headphone plug 4. The cooperation between the positioning component 22 and the positioning part is like a key and a lock, allowing the headphone socket to be precisely installed in the appropriate position, avoiding problems such as poor contact between the headphone socket and motherboard 3 or difficulty in plugging and unplugging the headphone plug 4 that may occur due to inaccurate installation position.

[0065] When the headphone jack needs to be disassembled, the engagement between the positioning component 22 and the positioning part allows the headphone jack to be directly removed from the motherboard 3 using the elasticity of the conductive component 2, without any other steps. This feature greatly improves the convenience of maintenance. Compared to headphone jack designs that require complex disassembly steps (such as removing multiple fixing screws or unfastening complex clips), this design simplifies the maintenance process. Maintenance personnel can disassemble the headphone jack more quickly, reducing maintenance time and thus improving maintenance efficiency. It also reduces maintenance costs because the simple disassembly process does not require additional tools or complex operating skills.

[0066] The cooperation between the positioning component 22 and the positioning part also helps improve the structural stability of the electronic device 200 during normal use. It can prevent the headphone socket from shifting when subjected to external forces (such as dropping the device or being hit). This stable structural design ensures the stability of the electrical connection between the headphone socket and the motherboard 3, reduces the risk of poor contact between the conductive component 2 and the motherboard 3 due to headphone socket shaking, and thus improves the reliability of the entire electronic device 200 in terms of audio transmission and other aspects.

[0067] Specifically, the positioning element 22 is a reinforcing steel sheet. As a reinforcing material, the reinforcing steel sheet typically possesses high strength and rigidity. In the detachable headphone holder 100, the positioning element 22, used as a reinforcing steel sheet, significantly improves the connection strength between the headphone holder body 1 and the electronic device 200 housing. This structure can better withstand vibrations, impacts, and tensions during daily use, reducing the risk of wear and breakage and extending the product's lifespan. The reinforcing effect of the positioning element 22 may also have a positive impact on the signal transmission stability inside the headphone holder. By reducing signal interference caused by loose connections, the reinforcing steel sheet helps maintain clear audio output. Because the reinforcing steel sheet provides precise positioning and stable support, it reduces reliance on positioning accuracy during production, improving assembly speed and accuracy.

[0068] Optionally, combined Figure 2 and Figure 3 The positioning element 22 is multiplied. Multiple positioning elements 22 provide more even support and pressure distribution, which helps improve the stability of the connection between the headphone holder and the housing of the electronic device 200. Even with frequent plugging and unplugging or under external force, the headphone holder maintains its correct position, reducing damage caused by loosening. Multiple positioning elements 22 can be adjusted according to different models or sizes of electronic devices 200, providing more installation options. This means that the same headphone holder can be used for multiple devices, increasing the product's versatility and market applicability. Moreover, users can more easily install and position the headphone holder, especially in situations with limited space or requiring precise alignment. Furthermore, if maintenance or replacement of the headphone holder is needed, multiple positioning elements 22 facilitate the alignment and securing of the new headphone holder, saving time and reducing maintenance difficulty.

[0069] As an optional implementation, the positioning element 22 is integrally formed with the headphone holder body 1. This eliminates any gaps or weak connection points between the two. In daily use, when the headphone holder is subjected to external forces, such as the pulling force when plugging or unplugging headphones, or when the device is subjected to impacts or vibrations, the integrally formed structure better maintains its integrity. Compared to a separate structure assembled with connectors, the integrally formed positioning element 22 and headphone holder body 1 can more effectively resist external forces, reducing the possibility of structural deformation or damage, thereby improving the overall structural stability of the headphone holder.

[0070] Furthermore, no additional steps are required to assemble the positioning component 22 and the earphone base body 1, reducing production processes. This not only improves production efficiency but also reduces potential errors arising from the assembly process. Simultaneously, the reduced number of parts also lowers the complexity and cost of inventory management. For example, during injection molding, if the positioning component 22 and the earphone base body 1 are integrally molded plastic structures, they can be formed in one piece within the same mold, saving production time and resources.

[0071] In some optional implementations, the headphone jack body 1 is made of plastic. Plastic materials have good insulation properties. In the application of the headphone jack, since there is a conductive element 2 inside the headphone jack for electrical connection, using plastic material for the headphone jack body 1 can effectively prevent current leakage and avoid short circuits between different circuits. This helps to ensure the stability and safety of electrical signal transmission within the headphone jack, ensuring that audio signals can be transmitted normally between the motherboard 3, the conductive element 2, and the headphone plug 4, without interference or damage to the device due to leakage or short circuits.

[0072] Plastic materials are generally inexpensive and easy to mass-produce. Using plastic materials in the mass production of the detachable headphone holder 100 allows for effective cost control. Compared to some metals or other expensive materials, the lower cost of obtaining and processing plastic materials makes the headphone holder more competitively priced in the market, while also meeting the needs of different consumer levels.

[0073] Plastic materials generally also have good corrosion resistance. In different usage environments, such as humid environments or environments containing chemicals, the plastic headphone holder body 1 is not easily corroded. This helps extend the lifespan of the headphone holder, ensuring its normal operation under various environmental conditions and reducing the risk of performance degradation or damage due to corrosion.

[0074] For example, the conductive element 2 is made of metal. Metal materials have good electrical conductivity. In the detachable headphone jack 100, the main function of the conductive element 2 is to connect the motherboard 3 and the headphone plug 4 to achieve the transmission of electrical signals. The metal conductive element 2 can ensure a low-resistance electrical connection, minimizing audio signal loss during transmission. This helps to ensure high-quality audio transmission, reduce signal attenuation and distortion, and thus provide users with a clear and pure sound effect. Many metal materials have a certain degree of elasticity, which matches the requirement that the conductive element 2 is an elastic electrical connector. When the headphone plug 4 is inserted into or removed from the headphone jack 11, the metal conductive element 2 can deform elastically to a certain extent, adapting to this insertion and removal operation without being easily damaged. Moreover, the high mechanical strength of the metal material can withstand repeated insertion and removal stresses and minor impacts or compressions that may be experienced in daily use, ensuring the structural integrity of the conductive element 2 and thus maintaining the stability of its electrical connection function.

[0075] It is understood that the headphone holder body 1 and the conductive component 2 can be integrally formed or assembled together, and this embodiment does not limit this.

[0076] Secondly, this application also discloses an electronic device 200, which combines with Figure 1 The electronic device 200 includes a detachable headphone jack 100 as described in the first aspect above, a housing, and a motherboard 3. The headphone jack body 1 abuts against the housing, the motherboard 3 is connected to the housing, and the motherboard 3 abuts against the conductive member 2 to achieve electrical connection with the conductive member 2.

[0077] This integrated design allows the headphone jack to be seamlessly integrated into the overall structure of the electronic device 200. The headphone jack body 1 abuts against the housing, and the main board 3 is connected to the housing and abuts against the conductive element 2 to achieve electrical connection. The connection relationship between the components is clear and tight. This helps to achieve a compact internal structure of the electronic device 200, optimizes the utilization of the internal space, and allows the electronic device 200 to accommodate more functional components within a limited space.

[0078] The headphone jack body 1 provides a headphone jack 11 for plugging in a headphone plug 4. A conductive element 2 connects the motherboard 3 and the headphone plug 4, ensuring the integrity of the audio signal transmission path. This design ensures that users can normally use headphones to listen to audio content, meeting the basic functional requirements of the electronic device 200 as a multimedia device. When disassembling the headphone jack, the elasticity of the conductive element 2 allows for direct removal from the motherboard 3 and the housing without any other steps, facilitating disassembly, reducing maintenance costs, and improving maintenance efficiency.

[0079] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application 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 or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.

Claims

1. A detachable earphone holder installed in an electronic device, characterized in that, The detachable earphone seat comprises: an earphone seat body, which is internally provided with an earphone jack for plugging an earphone plug; a conducting piece, which is arranged on the earphone seat body and is used to connect a mainboard and the earphone plug, and is an elastic electric connecting piece configured to be electrically connected to the mainboard through elastic extrusion.

2. The detachable ear mount of claim 1, wherein, The conducting piece comprises a spring sheet, a first bending part is arranged at a first end of the conducting piece, and the first bending part is used to abut against the mainboard.

3. The detachable ear mount of claim 2, wherein, A second bending part is arranged at a second end of the conducting piece, the second bending part extends into the earphone jack and abuts against the earphone plug.

4. The detachable ear mount of claim 3, wherein, The earphone jack extends along a first direction, and the conducting piece is in plurality, and the plurality of conducting pieces are respectively arranged on both sides of the earphone jack along a second direction, so that when the earphone plug is inserted into the earphone jack along the first direction, the second bending parts of the two conducting pieces can abut against both sides of the earphone plug along the second direction, and the second direction is perpendicular to the first direction.

5. The detachable ear mount of claim 4, wherein, The conducting pieces on each side of the earphone seat body along the second direction are in plurality, and the plurality of conducting pieces on each side are arranged along the first direction.

6. The detachable ear mount of claim 4, wherein, A positioning piece is arranged on one side of the earphone seat body along the thickness direction of the earphone seat body, the positioning piece is used to connect a shell of the electronic device, the shell is provided with a positioning part, and the positioning piece cooperates with the positioning part to enable the earphone seat body to be installed to a preset position of the shell.

7. The detachable ear mount of claim 6, wherein, The positioning piece is integrally formed with the earphone seat body.

8. The detachable ear mount of claim 1, wherein, The earphone seat body is made of plastic material.

9. The detachable ear mount of claim 1, wherein, The conducting piece is made of metal material.

10. An electronic device, comprising: comprise: the detachable earphone seat according to any one of claims 1-9; a shell, the earphone seat body abuts against the shell; a mainboard, which is connected to the shell and abuts against the conducting piece to realize electrical connection with the conducting piece.