A mobile electric rail device
Patent Information
- Application Number
- CN202522029551.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-22
- Publication Date
- 2026-09-01
- Estimated Expiration
- 2035-09-22
AI Technical Summary
[0002]在现代生产生活中,电力分配装置是保障用电设备运行的关键设施,传统装置以固定墙面插座、普通插线板为主,却存在诸多适配性缺陷:其一,移动性差,固定安装后无法随设备位置变动或临时用电需求调整,需依赖延长线,加剧环境杂乱;其二,功能单一,多仅提供交流强电接口,手机、平板等弱电设备需额外适配器,增加使用成本与接口混乱问题;其三,扩展性不足,接口数量、位置固定,设备增多时需级联插线板,放大安全隐患;其四,缺乏辅助结构,用电设备无专属放置空间,易因随意摆放掉落损坏
1.提升移动灵活性:装置可整体移动,无需受固定插座位置限制,能随用电设备位置变动或临时需求灵活调整摆放位置,摆脱传统装置移动性差的局限,适配多场景用电。
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Figure CN224709113U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of power distribution and household appliance technology, specifically to a mobile electric track device. Background Technology
[0002] In modern production and daily life, power distribution devices are crucial facilities for ensuring the operation of electrical equipment. Traditional devices, mainly fixed wall sockets and ordinary power strips, have many adaptability defects: First, they have poor mobility, and once fixed, they cannot be adjusted according to the location of the equipment or temporary power needs, requiring extension cords and exacerbating environmental clutter. Second, they have limited functionality, mostly providing only AC high-voltage interfaces, while low-voltage devices such as mobile phones and tablets require additional adapters, increasing usage costs and interface confusion. Third, they lack expandability, with the number and location of interfaces fixed, requiring cascading power strips when more devices are added, amplifying safety hazards. Fourth, they lack auxiliary structures, with no dedicated placement space for electrical equipment, making them prone to falling and damage due to haphazard placement. Utility Model Content
[0003] To address the shortcomings of the prior art, this utility model provides a mobile electric track device.
[0004] The technical solution adopted by this utility model is: a mobile electric rail device, including a plug, a support body, an electric rail and a tray; The main body of the bracket includes a base and a shell vertically mounted on the base; The power rail is housed inside the housing and is magnetically slidably connected to one or more rail socket modules and one or more magnetic low-voltage function modules. The tray is slidably connected to the outer shell through a sleeve hole on the tray.
[0005] Furthermore, the housing is divided into a high-voltage area and a low-voltage area. The power rail includes a high-voltage power rail and a low-voltage power rail. The high-voltage power rail is located inside the housing of the high-voltage area, and one or more rail socket modules are slidably connected to the high-voltage power rail. The low-voltage power rail is located inside the housing of the low-voltage area, and one or more magnetically attached low-voltage functional modules are slidably connected to the low-voltage power rail in a magnetic manner.
[0006] Furthermore, the plug is electrically connected to the high-voltage power rail via a high-voltage wire, and connected to the low-voltage power rail via a power adapter and a low-voltage wire.
[0007] Furthermore, a mounting surface is provided on one side of the housing, the power rail is arranged along the length of the mounting surface, and a plug-in groove is provided on the mounting surface.
[0008] Furthermore, it also includes a strip light and a control switch, wherein the strip light is selectively connected to a high-voltage wire or a low-voltage wire via the control switch, and the control switch is located on the top cover of the housing.
[0009] Furthermore, the magnetic low-voltage functional module can be a magnetic USB module, a magnetic reading light, a magnetic aromatherapy diffuser, or a magnetic speaker.
[0010] The beneficial effects of this utility model are: 1. Enhanced mobility: The device can be moved as a whole, without being restricted by the location of a fixed socket. It can be flexibly adjusted to suit the changing location of electrical equipment or temporary needs, overcoming the limitations of poor mobility of traditional devices and adapting to various power usage scenarios.
[0011] 2. Simplified power supply process: The power rail magnetic sliding connection between the rail socket module and the magnetic low-voltage function module allows strong and weak current equipment to be directly connected to the corresponding module without the need for additional adapters. This solves the problems of single function and confusing interfaces in traditional devices and reduces the cost of use.
[0012] 3. Enhanced expandability and adaptability: The modules can be flexibly added, removed, and adjusted by sliding, and can dynamically adapt to changes in the number and location of electrical equipment, avoiding safety hazards caused by insufficient expandability of traditional devices.
[0013] 4. Optimized user experience: The tray slides onto the outer shell through a sleeve hole and is height-adjustable, providing dedicated placement space for mobile phones, tablets and other electrical devices, preventing them from falling off and improving the convenience and safety of using electricity.
[0014] In addition to the objectives, features and advantages described above, this utility model has other objectives, features and advantages.
[0015] The present invention will now be described in further detail with reference to the accompanying drawings. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the structure of the present invention.
[0017] Figure 2 This is a structural schematic diagram from another perspective of the present invention.
[0018] Figure 3 This is a schematic diagram of the internal component connections of the present invention.
[0019] Figure 1-3Components: 1. Plug; 2. Base; 3. Housing; 4. High-voltage area; 5. Low-voltage area; 6. High-voltage power rail; 7. Low-voltage power rail; 9. Magnetic low-voltage functional module; 10. Rail socket module; 11. High-voltage wire; 12. Power adapter; 13. Low-voltage wire; 14. Mounting surface; 15. Plug slot; 16. Strip light; 17. Control switch; 18. Tray; 19. Sleeve hole; 20. Top cover. Detailed Implementation
[0020] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments 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 of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0021] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicators will also change accordingly.
[0022] This utility model provides a mobile electric track device.
[0023] In this embodiment, refer to Figure 1-3 The mobile electric rail device includes a plug 1, a support body, an electric rail, and a tray 18; The main body of the support includes a base 2 and a shell 3 vertically mounted on the base; The power rail is installed inside the housing 3, and the power rail is magnetically slidably connected to one or more rail socket modules 10 and one or more magnetic low-voltage function modules 9. The tray is slidably connected to the outer shell through the sleeve hole 19 on the tray 18.
[0024] The above technical solution includes a plug, a bracket body, a power rail, and a tray. The plug is connected to the mains power supply for overall power supply; the base of the bracket body provides stable support, and the vertical shell provides an installation carrier for the power rail; the power rail uses a magnetic sliding structure to achieve a detachable and slidable connection between the rail socket module and the magnetic low-voltage functional module; the tray forms a sliding fit with the shell through a sleeve hole, and its height can be adjusted along the vertical direction of the shell, thus constructing a "power supply + load-bearing" collaborative architecture.
[0025] Breaking away from the limitations of traditional fixed sockets that are "immutable in position and lack load-bearing capacity," the magnetic sliding connection solves the problem of module position adjustment, and the tray provides space for equipment placement, initially improving the flexibility and convenience of power use, preventing equipment from falling off due to random placement, and reducing the messy problem of traditional devices relying on extension cords.
[0026] Specifically, the outer casing is divided into a high-voltage area 4 and a low-voltage area 5. The power rails include a high-voltage power rail 6 and a low-voltage power rail 7. The high-voltage power rails are located inside the outer casing of the high-voltage area, and one or more rail socket modules are slidably connected to the high-voltage power rails. The low-voltage power rails are located inside the outer casing of the low-voltage area, and one or more magnetically attached low-voltage functional modules are slidably connected to the low-voltage power rails in a magnetic manner.
[0027] In this embodiment, the power rails are divided into two categories—high-voltage and low-voltage—through physical partitioning of the outer casing (high-voltage zone and low-voltage zone): the high-voltage power rails are adapted to rail socket modules to supply power to high-voltage equipment; the low-voltage power rails are adapted to low-voltage functional modules through a magnetic structure. This spatial and functional separation of high-voltage and low-voltage boundaries ensures that each type of module corresponds to its appropriate rail, preventing misconnection. This addresses the safety hazard of "unisolated high-voltage and low-voltage circuits" in traditional devices, clearly defining the adaptation paths for high-voltage and low-voltage modules. This avoids signal interference and prevents equipment damage caused by mis-insertion, while also clearly defining the high-voltage and low-voltage functional zones, allowing users to quickly identify the corresponding modules and improving operational convenience.
[0028] Specifically, the plug 1 is electrically connected to the high-voltage power rail 6 via a high-voltage wire 11, and is connected to the low-voltage power rail via a power adapter 12 and a low-voltage wire 13.
[0029] In this embodiment, the plug is directly connected to the high-voltage power rail via a high-voltage wire, ensuring stable transmission of 220V AC power to meet the needs of high-power devices. Simultaneously, a power adapter converts the mains power to low-voltage DC, which is then connected to the low-voltage power rail via a low-voltage wire. This achieves voltage conversion and power supply link "mains power → adapter → low-voltage rail," distinguishing the transmission paths of high and low voltage at the circuit level and avoiding mixed wiring. This completely solves the problem of "unisolated high and low voltage lines" in traditional devices. Through adapter conversion and independent lines, the output voltage of the low-voltage rail is ensured to be stable and safe, avoiding mutual interference between high and low voltage lines and providing compatible power for low-voltage devices such as mobile phones and tablets. No additional adapter is needed, simplifying the power usage process and reducing the risk of short circuits.
[0030] Specifically, a mounting surface 14 is provided on one side of the housing, the power rail is arranged along the length of the mounting surface 14, and a plug-in groove 15 is provided on the mounting surface.
[0031] In this embodiment, the outer shell can be designed in a columnar shape, such as a cylindrical structure, or a directional columnar shape. Power rails are centrally arranged on a single mounting surface, and the mounting surface's insertion slots form a matching connection structure with the rails and modules: the insertion slots provide guidance for the module's sliding, ensuring that the module maintains a stable electrical connection with the rails during sliding. Simultaneously, the cylindrical outer shell optimizes space utilization and adapts to various placement scenarios.
[0032] Specifically, it also includes a long strip light 16 and a control switch 17. The long strip light is selectively connected to a high-voltage wire or a low-voltage wire via the control switch, and the control switch is located on the top cover 20 of the housing.
[0033] In this embodiment, a "dual power supply link switching" mechanism is constructed through a control switch: the strip light can be selectively connected to a high-voltage wire (220V AC) or a low-voltage wire (low-voltage DC). The control switch is located on the top of the casing for easy user operation. The switch internally uses a contact switching structure to achieve rapid switching between the two power supply modes, meeting the needs of different brightness (high brightness with high voltage, low brightness with low voltage) or scenarios (daily lighting, night light, ambient light).
[0034] Specifically, the magnetic low-voltage functional module is a magnetic USB module, a magnetic reading light, a magnetic aromatherapy diffuser, or a magnetic speaker.
[0035] In this embodiment, the magnetic low-voltage functional module is based on the principle of "magnetic conductivity." The bottom of the module integrates a magnetic structure and conductive contacts, matching the magnetic components and conductive track of the low-voltage power rail. During adsorption, the module's position is fixed by magnetic force, and electrical connection is achieved through the contacts. The module type can be USB, reading light, aromatherapy, or speaker, all compatible with the low-voltage DC power supply of the low-voltage track, ensuring normal module operation. The diverse module types meet users' needs for charging, lighting, aromatherapy, and audio in various scenarios. The magnetic connection method allows for "one-click use and one-click removal," making module replacement convenient and enhancing the device's personalization and practicality. It should be noted that although this utility model has been described according to the specific embodiments above, the concept of this utility model is not limited to this utility model. Any modifications using the concept of this utility model will be included within the scope of protection of this patent.
Claims
1. A mobile electric rail device, characterized in that: Includes plug, bracket body, power rail and tray; The main body of the bracket includes a base and a shell vertically mounted on the base; The power rail is housed inside the housing and is magnetically slidably connected to one or more rail socket modules and one or more magnetic low-voltage function modules. The tray is slidably connected to the outer shell through a sleeve hole on the tray.
2. The mobile electric rail device according to claim 1, characterized in that: The housing is divided into a high-voltage area and a low-voltage area. The power rails include high-voltage power rails and low-voltage power rails. The high-voltage power rails are located inside the housing of the high-voltage area, and one or more rail socket modules are slidably connected to the high-voltage power rails. The low-voltage power rails are located inside the housing of the low-voltage area, and one or more magnetically attached low-voltage functional modules are slidably connected to the low-voltage power rails in a magnetic manner.
3. The mobile electric rail device according to claim 2, characterized in that: The plug is electrically connected to the high-voltage power rail via a high-voltage wire, and to the low-voltage power rail via a power adapter and a low-voltage wire.
4. The mobile electric rail device according to claim 3, characterized in that: The housing has a mounting surface on one side, the power rail is arranged along the length of the mounting surface, and the mounting surface has a plug-in groove.
5. The mobile electric rail device according to claim 1, characterized in that: It also includes a strip light and a control switch, wherein the strip light is selectively connected to a high-voltage or low-voltage wire via the control switch, and the control switch is located on the top cover of the housing.
6. The mobile electric rail device according to claim 2, characterized in that: The magnetic low-voltage functional module can be a magnetic USB module, a magnetic reading light, a magnetic aromatherapy diffuser, or a magnetic speaker.