A data cable device
By introducing a combination of transparent and shielding components into the data cable structure, the problem of unstable positioning of the data cable adapter structure is solved, resulting in richer appearance effects and greater adaptability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN BASEUS TECH CO LTD
- Filing Date
- 2025-07-16
- Publication Date
- 2026-07-31
AI Technical Summary
The existing data cable adapter structure is too simple and cannot be stably positioned, resulting in an uneven appearance and limiting the adaptability of the data cable.
The design uses a transparent component to wrap around the shielding component. By combining the structure of the shielding component and the fixing component, the transparent component is used to enhance the appearance of the data cable and improve its adaptability.
The transparent design enhances the appearance of the data cable, improves its adaptability and neatness, and solves the problem of unstable positioning of the adapter structure.
Smart Images

Figure CN224582658U_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to the field of data cable technology, and more particularly to a data cable device. Background Technology
[0002] Data cables are generally used to charge electronic devices such as mobile phones and tablets. Related technologies include adapter structures, but these adapter structures are limited in form, resulting in poor adaptability of the data cable design. Utility Model Content
[0003] In view of this, the present disclosure aims to provide a data cable device.
[0004] To achieve the above objectives, the technical solution disclosed herein is implemented as follows:
[0005] This disclosure provides a data cable device, including:
[0006] At least one first cable;
[0007] At least two second cables;
[0008] Adapter components, including:
[0009] A conductive element is electrically connected to the first end of at least one first cable and the first ends of at least two second cables, respectively.
[0010] A fastener is wrapped around the conductive element, the first end of at least one first cable, and the first ends of at least two second cables to secure the conductive element, the first end of at least one first cable, and the first ends of at least two second cables.
[0011] The shielding member includes at least two shielding portions; the at least two shielding portions are adjacent to each other and wrapped around the fixing member;
[0012] A transparent component, which is wrapped around the shielding component and is in a visible state.
[0013] In some embodiments, at least two blocking portions are adjacent to the fastener, and adjacent blocking portions are bonded together; and / or
[0014] At least two shielding parts are wrapped around the fastener by adhesive coating; or, at least two shielding parts are wrapped around the fastener by bonding.
[0015] In some embodiments, the number of at least two shielding parts is two, and the two shielding parts are arranged opposite to each other.
[0016] In some embodiments, the conductive element is a plate-like structure, the fixing element is a plate-like structure, the thickness direction of the conductive element and the thickness direction of the fixing element are the same, and the two shielding portions are arranged opposite to each other in the thickness direction of the conductive element; and / or,
[0017] The two shielding parts are the same size, and the two shielding parts may have the same or different appearances.
[0018] In some embodiments, the transparent element is positioned outside the blocking element; or...
[0019] The transparent component is wrapped around the shielding component by adhesive coating; or...
[0020] The transparent component is attached to the outside of the shielding component by means of adhesive.
[0021] In some embodiments, the transparent element includes at least two transparent portions; the at least two transparent portions are adjacent to each other and wrapped around the shielding element.
[0022] In some embodiments, at least two transparent portions are adjacent to the shielding member, and adjacent transparent portions are bonded together; and / or
[0023] At least two transparent portions are wrapped around the shielding member by adhesive coating; or, at least two transparent portions are wrapped around the shielding member by bonding; or, at least two transparent portions are clipped onto the shielding member.
[0024] In some embodiments, the number of at least two transparent portions is two, and the two transparent portions are arranged opposite to each other.
[0025] In some embodiments, the conductive element is a plate-like structure, the fixing element is a plate-like structure, the shielding element is a plate-like structure, the thickness direction of the conductive element, the thickness direction of the fixing element, and the thickness direction of the shielding element are the same, and the two transparent portions are disposed opposite to each other in the thickness direction of the conductive element; and / or,
[0026] The two transparent parts are the same size, and their appearances may be the same or different.
[0027] In some embodiments, it also includes:
[0028] At least one first interface is electrically connected to the second end of at least one first cable;
[0029] At least two second interfaces are electrically connected to the second ends of at least two second cables, respectively.
[0030] The data cable device disclosed herein includes an adapter component comprising a transparent component that is wrapped around and exposed outside the shielding component. This transparent component allows the adapter component to have different appearance effects, increasing the variety of adapter components and thus greatly improving the adaptability of the data cable structure. Attached Figure Description
[0031] Figure 1 This is an exploded view of the data cable device in an embodiment of this disclosure;
[0032] Figure 2 This is a schematic diagram of the data cable device in an embodiment of the present disclosure;
[0033] Figure 3 for Figure 2 Another perspective illustration.
[0034] Reference numerals: 100, adapter assembly; 110, conductive element; 120, fixing element; 130, shielding element; 131, shielding part; 140, transparent element; 141, transparent part; 210, first cable; 220, second cable; 310, first interface; 320, second interface. Detailed Implementation
[0035] The technical solution of this disclosure will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0036] In the embodiments described in this disclosure, it should be noted that, unless otherwise stated and limited, the term "connection" should be interpreted broadly. For example, it can refer to an electrical connection or a connection between two internal components. It can be a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above term according to the specific circumstances.
[0037] It should be noted that the terms "first," "second," and "third" used in the embodiments of this disclosure are merely used to distinguish similar objects and do not represent a specific ordering of objects. It is understood that "first," "second," and "third" can be interchanged in a specific order or sequence where permitted. It should be understood that the objects distinguished by "first," "second," and "third" can be interchanged where appropriate so that the embodiments of this disclosure described herein can be implemented in orders other than those illustrated or described herein.
[0038] The following combination Figures 1 to 3 The data cable device described in the embodiments of this disclosure will be described in detail.
[0039] In embodiments of this disclosure, the data cable device may include at least one first cable 210, at least two second cables 220, and an adapter assembly 100. The adapter assembly 100 includes a conductive element 110, a fixing element 120, a shielding element 130, and a transparent element 140. The conductive element 110 is electrically connected to a first end of at least one first cable 210 and a first end of at least two second cables 220, respectively. The fixing element 120 covers the conductive element 110, the first end of at least one first cable 210, and the first ends of at least two second cables 220 to fix the conductive element 110, the first end of at least one first cable 210, and the first ends of at least two second cables 220. The shielding element 130 includes at least two shielding portions 131; the at least two shielding portions 131 are adjacently wrapped around the fixing element 120. The transparent element 140 is wrapped around the shielding element 130 and is in a visible state.
[0040] In related technologies, data cable structures include adapter structures. The inventors discovered that the flexible wire structures at both ends of the adapter structure cannot be stably positioned, preventing the adapter structure from forming a flat structure through integral molding. For example, the shielding structure formed by integral molding of the adapter structure has problems such as recesses, offsets, and exposed internal structures. This prevents the adapter structure from being transparent, limiting the expansion of the data cable structure's appearance and resulting in a limited form and poor adaptability. In contrast, the data cable device disclosed in this invention includes an adapter component 100 comprising a transparent element 140. The transparent element 140 is wrapped around the shielding element 130 and is in a visible state. The transparent element 140 allows the adapter component 100 to have different appearances, increasing the variety of forms available and significantly improving the adaptability of the data cable structure. Meanwhile, since the adapter assembly 100 includes a shielding member 130, which includes at least two shielding portions 131, and the at least two shielding portions 131 are adjacently wrapped around the fixing member 120, the shielding member 130 can shield the fixing member 120 and prevent the fixing member 120 from being exposed through the transparent member 140. In addition, the at least two shielding portions 131 being adjacently wrapped around the fixing member 120 can improve the uniformity and neatness of the shielding member 130 being wrapped around the fixing member 120, so that the shielding member 130 can be evenly and neatly exposed through the transparent member 140. This can improve the appearance of the data cable device and improve the adaptability of the data cable device.
[0041] In this embodiment, the shielding member 130 includes at least two shielding portions 131, which are adjacent to each other and wrapped around the fixing member 120. Here, during the manufacturing process, the at least two shielding portions 131 can be processed separately. For example, one of the shielding portions 131 can be processed first. In this case, the adapter component 100 can be positioned by the area of the fixing member 120 where the shielding portion 131 has not been processed. When at least one shielding portion 131 has been processed, and the remaining shielding portions 131 are processed, the adapter component 100 can be positioned by the shielding portion 131 that has been processed first. Thus, by setting the shielding member 130 to have at least one shielding portion 131 adjacent to each other and wrapped around the fixing member 120, the problem of the shielding member 130 not being able to be stably positioned can be solved, thereby improving the uniformity and neatness of the shielding member 130 wrapped around the fixing member 120, so that the shielding member 130 can be uniformly and neatly exposed through the transparent member 140.
[0042] In this embodiment of the disclosure, the first cable 210 is used to transmit electrical signals. The number of at least one first cable 210 is not limited. For example, such as... Figures 1 to 3 As shown, the number of at least one first cable 210 can be one. Alternatively, the number of at least one first cable 210 can be at least two, three, four, etc.
[0043] In this embodiment of the disclosure, the second cable 220 is used to transmit electrical signals. The number of at least two second cables 220 is not limited. For example, as... Figures 1 to 3 As shown, the number of at least two second cables 220 can be three. Alternatively, the number of at least two second cables 220 can be two, four, five, etc.
[0044] In this embodiment of the disclosure, the adapter component 100 is used to electrically connect at least one first cable 210 to at least two second cables 220 respectively, so that electrical signals can be transmitted between at least one first cable 210 and at least two second cables 220.
[0045] As an example, such as Figures 1 to 3 As shown, a first cable 210 and three second cables 220 are electrically connected via an adapter assembly 100, enabling the transmission of electrical signals between the first cable 210 and the three second cables 220. For example, the first cable 210 can be electrically connected to a power source, and the three second cables 220 can be electrically connected to three different electrical devices, allowing simultaneous charging of the three devices via the data cable device. As another example, the first cable 210 can be electrically connected to one electronic device, and one of the three second cables 220 can be electrically connected to another electronic device, enabling data transmission between the two electronic devices via the data cable device.
[0046] In the embodiments disclosed herein, the structure of the conductive element 110 is not limited. For example, the conductive element 110 may be a conductive structure such as copper or aluminum.
[0047] The shape of the conductive element 110 is not limited. For example, the conductive element 110 can be a block structure, a strip structure, etc. As an example, Figure 1 As shown, the conductive element 110 can be a plate-like structure. Here, the conductive element 110 can be a circuit board, and different conductive paths can be provided in the conductive element 110 so that at least one first cable 210 and at least two second cables 220 can be electrically connected through different conductive paths.
[0048] At least one first cable 210 and at least two second cables 220 can be electrically connected to the conductive component 110 by means of bonding, welding or other methods.
[0049] The locations where at least one first cable 210 and at least two second cables 220 are electrically connected to the conductive element 110 are not limited. For example, such as Figure 1 As shown, at least one first cable 210 and at least two second cables 220 can be located on opposite sides of the conductive member 110. Of course, at least one first cable 210 and at least two second cables 220 can also be located on adjacent sides of the conductive member 110.
[0050] In this embodiment of the present disclosure, by wrapping the conductive member 110, the first end of at least one first cable 210 and the first ends of at least two second cables 220 with the fastener 120, the strength of the electrical connection between the conductive member 110 and the first ends of at least one first cable 210 and at least two second cables 220 can be improved. It can also seal the area where the conductive member 110 is electrically connected to the first ends of at least one first cable 210 and at least two second cables 220, and can also insulate the conductive member 110, the first ends of at least one first cable 210 and at least two second cables 220. Furthermore, it can also improve the compression resistance of the conductive member 110, the first ends of at least one first cable 210 and at least two second cables 220.
[0051] The structure of fastener 120 is not limited. For example, such as Figure 1 As shown, the fastener 120 can be a plate-like structure. Alternatively, the fastener 120 can be a block-like structure. The material of the fastener 120 can be non-conductive materials such as plastic or rubber.
[0052] The fastener 120 can be wrapped around the conductive element 110, the first end of at least one first cable 210, and the first ends of at least two second cables 220 by means of bonding, welding, injection molding, or encapsulation. This can improve the strength of the electrical connection between the conductive element 110 and the first ends of at least one first cable 210 and at least two second cables 220, respectively, and prevent external forces from pulling and disconnecting the electrical connection between the first ends of at least one first cable 210 and at least two second cables 220 and the conductive element 110. This improves the stability of the electrical connection between the first ends of at least one first cable 210 and at least two second cables 220 and the conductive element 110.
[0053] In this embodiment, the shielding member 130 is used to shield the surface of the fixing member 120. The shielding member 130 can be exposed through the transparent member 140, thereby making the overall adapter assembly 100 smoother and neater.
[0054] The material of the shielding component 130 is not limited. For example, the shielding component 130 can be made of materials such as plastic or rubber. The material of the shielding component 130 can be elastic or inelastic. The color of the shielding component 130 is not limited. For example, the shielding component 130 can be black, white, gray, etc.
[0055] At least two shielding portions 131 are adjacent to each other and wrapped around the fixing member 120. This not only ensures that the adapter assembly 100 is free of visual defects, but also further prevents leakage of the area where the fixing member 120, the first end of at least one first cable 210, and the first ends of at least two second cables 220 are electrically connected. It also further seals the area where the fixing member 120 and the conductive member 110 are electrically connected to the first ends of at least one first cable 210 and at least two second cables 220, respectively. Furthermore, it improves the connection strength between the conductive member 110 and the first ends of at least one first cable 210 and at least two second cables 220, respectively. It also further insulates the area where the conductive member 110, the first end of at least one first cable 210, and at least two second cables 220 are electrically connected, and further improves the compression resistance of the conductive member 110, the first end of at least one first cable 210, and the first ends of at least two second cables 220.
[0056] The manner in which at least two shielding portions 131 are adjacently wrapped around the fastener 120 is not limited. For example, at least two shielding portions 131 can be adjacently wrapped around the fastener 120 by means of bonding, ultrasonic welding, etc. As an example, at least two shielding portions 131 can be wrapped around the fastener 120 by means of adhesive, bonding agent, injection molding, etc. For another example, at least two shielding portions 131 can be wrapped around the fastener 120 by overmolding; here, at least two shielding portions 131 of thermoplastic elastomer TPE / TPR, silicone, or other elastomeric materials can be bonded and wrapped onto the surface of the fastener 120 by injection molding to form an integrated composite structure with the fastener 120, thereby improving both the connection strength between the at least two shielding portions 131 and the fastener 120 and the deformability of the shielding portions 131.
[0057] At least two shielding portions 131 may be adjacent to the fastener 120. For example, at least two shielding portions 131 may be wrapped around the fastener 120 by injection molding, ultrasonic welding, or overmolding, and at least two shielding portions 131 may be adjacent to the fastener 120, where there are no other structural components between the at least two shielding portions 131 and the fastener 120. Of course, at least two shielding portions 131 may also not be adjacent to the fastener 120. For example, at least two shielding portions 131 may be wrapped around the fastener 120 by adhesive or other adhesive-based bonding methods, where there is adhesive or other bonding between the at least two shielding portions 131 and the fastener 120.
[0058] Two adjacent shielding parts 131 can be bonded together by injection molding, ultrasonic welding, overmolding, adhesive, or other methods, thereby forming at least two shielding parts 131 into a single shielding component 130. This facilitates the processing of the shielding parts 131 and makes it easier to achieve a neater and smoother outer surface. Of course, in some other embodiments, two adjacent shielding parts 131 may only contact each other without being connected.
[0059] The number of at least two blocking parts 131 is not limited. For example, the number of at least two blocking parts 131 can be two, three, four, etc.
[0060] The dimensions of at least two shielding parts 131 may be the same or different. As an example, the dimensions of at least two shielding parts 131 are the same, which is convenient for processing and can make the shielding parts 131 as a whole neater by using at least two shielding parts 131 of the same size.
[0061] The appearance of at least two shielding portions 131 may be the same or different. Here, the appearance of at least two shielding portions 131 may differ by means of color, surface texture, surface roughness, etc. As one example, the colors of at least two shielding portions 131 may be different, thus making their appearances different. As another example, the surface textures of at least two shielding portions 131 may be different, thus making their appearances different. As yet another example, the surface roughness of at least two shielding portions 131 may be different, thus making their appearances different.
[0062] As an example, such as Figure 1 As shown, the number of at least two shielding parts 131 can be two, and the two shielding parts 131 can be arranged opposite each other; thereby enabling the two shielding parts 131 to be arranged more evenly and neatly relative to the fixing member 120.
[0063] Here, as Figure 1 As shown, the conductive element 110 can be a plate-like structure, and the fixing element 120 can also be a plate-like structure. The thickness direction of the conductive element 110 and the thickness direction of the fixing element 120 can be the same, so that the fixing element 120 can be substantially uniformly wrapped around the conductive element 110, the first end of at least one first cable 210, and the first ends of at least two second cables 220, and the installation volume of the fixing element 120 can be reduced. The two shielding parts 131 can be arranged opposite each other in the thickness direction of the conductive element 110; here, the conductive element 110 can include a length direction, a width direction, and a thickness direction. The dimension of the conductive element 110 in the length direction can be larger than its dimension in the width direction, and the dimension of the conductive element 110 in the width direction can be larger than its dimension in the thickness direction. Thus, by using one shielding part 131, the larger surface area of the fixing element 120 can be completely shielded, making the larger surface area of the fixing element 120 smoother and neater, thereby further improving the appearance flatness and neatness of the adapter assembly 100. Here, the two shielding parts 131 can be bonded together on the smaller side of the fastener 120 by injection molding, ultrasonic welding, overmolding, adhesive, or other bonding agents, so that the two shielding parts 131 form an integral shielding part 130, which can further improve the flatness of the adapter assembly 100.
[0064] Of course, in other embodiments, the two blocking portions 131 may also be arranged opposite each other in other directions of the conductive member 110. For example, the two blocking portions 131 may also be arranged opposite each other in the length direction or the width direction of the conductive member 110.
[0065] The two blocking parts 131 can have the same or different dimensions. As an example, ... Figure 1As shown, the two shielding parts 131 are the same size, which is convenient for processing and can make the shielding part 130 more neat overall by using two shielding parts 131 of the same size.
[0066] The two shielding portions 131 may have the same or different appearances. Here, the two shielding portions 131 can have different appearances through color, surface texture, surface roughness, etc. As one example, the two shielding portions 131 have different colors, thus making their appearances different. As another example, the two shielding portions 131 have different surface textures, thus making their appearances different. As yet another example, the two shielding portions 131 have different surface roughness, thus making their appearances different.
[0067] In this embodiment of the disclosure, the transparent element 140 is wrapped around the shielding element 130 and is in a visible state. Here, the transparent element 140 can be the outermost structure of the adapter assembly 100. The transparent element 140 can both expose the shielding element 130 and protect the shielding element 130, preventing wear and tear on the shielding element 130 and affecting the display effect of the shielding element 130 through the transparent element 140.
[0068] By enclosing the shielding member 130 with the transparent member 140, the area where the conductive member 110 is electrically connected to the first end of at least one first cable 210 and the first ends of at least two second cables 220 can be further sealed. This can also further improve the connection strength between the conductive member 110 and the first ends of at least one first cable 210 and at least two second cables 220. Furthermore, it can provide insulation and waterproofing for the area where the conductive member 110, the first end of at least one first cable 210, and the first ends of at least two second cables 220 are electrically connected. It can also further improve the compression resistance of the conductive member 110, the first end of at least one first cable 210, and the first ends of at least two second cables 220.
[0069] The material of the transparent component 140 is not limited. For example, the transparent component 140 can be made of materials such as plastic or rubber. The material of the transparent component 140 can be elastic or inelastic. The transparent component 140 can be a colorless transparent structure. Of course, the transparent component 140 can also be a colored transparent structure. The color of the transparent component 140 is not limited. For example, the transparent component 140 can be red, white, gray, yellow, etc.
[0070] The manner in which the transparent component 140 is wrapped around the shielding component 130 is not limited. For example, the transparent component 140 can be snapped onto the shielding component 130. As an example, the transparent component 140 can be a cylindrical structure, and it can be sleeved over the shielding component 130. Here, the transparent component 140 and the shielding component 130 can be interference-fitted to make the transparent component 140 more securely snapped onto the shielding component 130. Another example is that the transparent component 140 can be wrapped around the shielding component 130 by overmolding. Here, the transparent component 140, made of thermoplastic elastomer (TPE / TPR), silicone, or other elastomeric materials, can be bonded to the surface of the shielding component 130 by injection molding to form an integrated composite structure. Yet another example is that the transparent component 140 can be wrapped around the shielding component 130 by adhesives, bonding agents, injection molding, or other adhesive methods.
[0071] The transparent element 140 can be a single, integral structure. Alternatively, it can be a separate structure. As an example, the transparent element 140 may include at least two transparent portions 141; these at least two transparent portions 141 may be adjacent to and surround the blocking element 130. The number of the at least two transparent portions 141 is not limited. For example, the number of at least two transparent portions 141 may be two, three, four, etc.
[0072] The manner in which at least two transparent portions 141 are wrapped around the shielding member 130 is not limited. For example, at least two transparent portions 141 may be snapped onto the shielding member 130. Here, at least two transparent portions 141 can be connected by a snap-fit structure, a threaded structure, or other structure, and at least two transparent portions 141 can be snapped onto the shielding member 130. Another example is that at least two transparent portions 141 can be wrapped around the shielding member 130 by adhesive, bonding agent, injection molding, or other adhesive methods. Yet another example is that at least two transparent portions 141 can be wrapped around the shielding member 130 by overmolding; here, at least two transparent portions 141 of thermoplastic elastomers such as TPE / TPR or silicone can be bonded and coated onto the surface of the shielding member 130 by injection molding to form an integrated composite structure with the shielding member 130.
[0073] At least two transparent portions 141 can be respectively disposed adjacent to the shielding member 130. Here, there may be no other structure between the at least two transparent portions 141 and the shielding member 130, thereby reducing the size of the adapter assembly 100. For example, the at least two transparent portions 141 can be snapped onto the outside of the shielding member 130. Alternatively, the at least two transparent portions 141 can be bonded to the outside of the shielding member 130 by ultrasonic welding, injection molding, or other methods. Of course, in other embodiments, other structures may also be provided between the at least two transparent portions 141 and the shielding member 130. For example, the at least two transparent portions 141 can be bonded to the outside of the shielding member 130 by adhesive, bonding agent, or other means.
[0074] Adjacent transparent portions 141 can be bonded together using methods such as ultrasonic welding, injection molding, overmolding, adhesives, or bonding agents, thereby increasing the connection strength between adjacent transparent portions 141 and enabling at least two transparent portions 141 to form an integral structure, thus increasing the strength of the transparent component 140 formed by at least two transparent portions 141. Of course, in other embodiments, adjacent transparent portions 141 may also be in direct contact without being connected.
[0075] The dimensions of at least two transparent portions 141 may be the same or different. As an example, the dimensions of at least two transparent portions 141 are the same, which facilitates processing and makes the overall appearance of at least the transparent part 140 neater.
[0076] The appearance of at least two transparent portions 141 may be the same or different. Here, the appearance of at least two transparent portions 141 may differ through color, surface texture, surface roughness, etc. As an example, the colors of at least two transparent portions 141 may be different, thus making their appearances different. As another example, the surface textures of at least two transparent portions 141 may be different, thus making their appearances different. As yet another example, the surface roughness of at least two transparent portions 141 may be different, thus making their appearances different.
[0077] As an example, the number of at least two transparent portions 141 can be two, and the two transparent portions 141 can be arranged opposite each other; thereby enabling the two transparent portions 141 to be arranged more evenly and neatly relative to the blocking member 130.
[0078] Here, as Figure 1As shown, the conductive element 110 can be a plate-shaped structure, the fixing element 120 can be a plate-shaped structure, and the shielding element 130 can be a plate-shaped structure. The thickness directions of the conductive element 110, the fixing element 120, and the shielding element 130 can be the same, so that the fixing element 120 can be substantially uniformly wrapped around the conductive element 110, the first end of at least one first cable 210, and the first ends of at least two second cables 220, and the installation volume of the fixing element 120 can be reduced; the shielding element 130 can also be substantially uniformly wrapped around the fixing element 120, and the installation volume of the shielding element 130 can be reduced.
[0079] Two transparent portions 141 can be arranged opposite each other in the thickness direction of the conductive member 110. Here, the conductive member 110 can include a length direction, a width direction, and a thickness direction. The dimension of the conductive member 110 in the length direction can be larger than its dimension in the width direction, and the dimension of the conductive member 110 in the width direction can be larger than its dimension in the thickness direction. Thus, a single transparent portion 141 can completely cover the larger surface area of the shielding member 130, making the larger surface area of the transparent member 140 smoother and neater, thereby further improving the appearance flatness and neatness of the adapter assembly 100. Here, the two transparent portions 141 can be bonded together on the smaller side of the shielding member 130 by injection molding, ultrasonic welding, overmolding, adhesive, or bonding agent, so that the two transparent portions 141 form an integral transparent member 140, thereby further improving the appearance flatness of the adapter assembly 100.
[0080] Of course, in other embodiments, the two transparent portions 141 may also be arranged opposite each other in other directions of the conductive member 110. For example, the two transparent portions 141 may also be arranged opposite each other in the length direction or the width direction of the conductive member 110.
[0081] The two transparent parts 141 can have the same or different dimensions. As an example, ... Figure 1 As shown, the two transparent parts 141 are the same size, which is convenient for processing and makes the transparent part 140 more neat overall by using two transparent parts 141 of the same size.
[0082] The two transparent portions 141 may have the same or different appearances. Here, the two transparent portions 141 can have different appearances through color, surface texture, surface roughness, etc. As one example, the two transparent portions 141 have different colors, thus making their appearances different. As another example, the two transparent portions 141 have different surface textures, thus making their appearances different. As yet another example, the two transparent portions 141 have different surface roughness, thus making their appearances different.
[0083] In some embodiments of this disclosure, such as Figure 2 and Figure 3 As shown, the data cable device may further include: at least one first interface 310 and at least two second interfaces 320. At least one first interface 310 may be electrically connected to the second end of at least one first cable 210; at least two second interfaces 320 may be electrically connected to the second ends of at least two second cables 220 respectively; thereby enabling at least one first cable 210 and at least two second cables 220 to be quickly electrically connected to external power supply equipment, electrical equipment, electronic equipment, etc. through the first interface 310 and the second interface 320.
[0084] The type of the first interface 310 is not limited. For example, the first interface 310 can be a Type-C or USB-C interface. Another example is that the first interface 310 can be a Lightning interface. Yet another example is that the first interface 310 can be a USB-A interface.
[0085] The number of first interfaces 310 is the same as the number of first cables 210. The second end of each first cable 210 is electrically connected to a first interface 310 so that each first cable 210 can be quickly electrically connected to external power supply equipment, electronic equipment, etc. through the first interface 310.
[0086] The type of the second interface 320 is not limited. For example, the second interface 320 can be a Type-C or USB-C interface. Another example is that the second interface 320 can be a Lightning interface. Yet another example is that the second interface 320 can be a USB-A interface.
[0087] The number of second interfaces 320 is the same as the number of second cables 220. The second end of each second cable 220 is electrically connected to a second interface 320 so that each second cable 220 can be quickly electrically connected to external electrical equipment, electronic equipment, etc. through the second interface 320.
[0088] The specific technical features described in the specific embodiments can be combined in any suitable manner without contradiction. For example, different combinations of specific technical features can form different embodiments and technical solutions. To avoid unnecessary repetition, the various possible combinations of the specific technical features in this utility model will not be described separately.
[0089] The above description is merely a specific embodiment of this disclosure, but the scope of protection of this disclosure is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this disclosure should be included within the scope of protection of this disclosure. Therefore, the scope of protection of this disclosure should be determined by the scope of the claims.
Claims
1. A data line arrangement, characterized by include: At least one first cable; At least two second cables; Adapter components, including: A conductive element is electrically connected to the first end of at least one first cable and the first ends of at least two second cables, respectively. A fastener is wrapped around the conductive element, the first end of at least one first cable, and the first ends of at least two second cables to secure the conductive element, the first end of at least one first cable, and the first ends of at least two second cables. The shielding member includes at least two shielding portions; the at least two shielding portions are adjacent to each other and wrapped around the fixing member; A transparent component, which is wrapped around the shielding component and is in a visible state.
2. The data line apparatus of claim 1, wherein, At least two shielding parts are adjacent to the fixing member, and adjacent shielding parts are bonded together; and / or, At least two shielding parts are wrapped around the fastener by adhesive coating; or, at least two shielding parts are wrapped around the fastener by bonding.
3. The data line apparatus of claim 1, wherein, The number of at least two shielding parts is two, and the two shielding parts are arranged opposite each other.
4. The data line apparatus of claim 3, wherein, The conductive component is a plate-like structure, the fixing component is a plate-like structure, the thickness direction of the conductive component and the thickness direction of the fixing component are the same, and the two shielding parts are arranged opposite to each other in the thickness direction of the conductive component; and / or, The two shielding parts are the same size, and the two shielding parts may have the same or different appearances.
5. The data line apparatus of claim 1, wherein, The transparent component is positioned outside the blocking component; or... The transparent component is wrapped around the shielding component by adhesive coating; or... The transparent component is attached to the outside of the shielding component by means of adhesive.
6. The data line apparatus of claim 1, wherein, The transparent element includes at least two transparent portions; the at least two transparent portions are adjacent to each other and wrapped around the shielding element.
7. The data line apparatus of claim 6, wherein, At least two transparent portions are adjacent to the shielding member, and adjacent transparent portions are bonded together; and / or, At least two transparent portions are wrapped around the shielding member by adhesive coating; or, at least two transparent portions are wrapped around the shielding member by bonding; or, at least two transparent portions are clipped onto the shielding member.
8. The data line apparatus of claim 6, wherein, The number of at least two transparent parts is two, and the two transparent parts are set opposite to each other.
9. The data cable device according to claim 8, characterized in that, The conductive element is a plate-shaped structure, the fixing element is a plate-shaped structure, and the shielding element is a plate-shaped structure. The thickness directions of the conductive element, the fixing element, and the shielding element are the same. The two transparent portions are arranged opposite each other in the thickness direction of the conductive element; and / or, The two transparent parts are the same size, and their appearances may be the same or different.
10. The data line apparatus of any of claims 1 to 9, wherein, Also includes: At least one first interface is electrically connected to the second end of at least one first cable; At least two second interfaces are electrically connected to the second ends of at least two second cables, respectively.