Energy base station
By designing scalable and adjustable components and a detachable support platform, the problem of poor adaptability and portability of existing outdoor power base stations in different environments has been solved, enabling flexible power supply and convenient equipment adjustment, and improving the convenience and safety of outdoor activities.
Patent Information
- Application Number
- CN202422849075.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-21
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2034-11-21
AI Technical Summary
Existing outdoor energy base stations cannot adjust their length or shape according to actual usage needs, resulting in poor adaptability and portability in different environments. Furthermore, the inseparable lighting device affects flexibility and energy storage efficiency.
Design an energy base station comprising an installation body, an energy storage module, an adjustment component, and a support platform. The adjustment component is retractable, the energy storage module is mounted on the adjustment component, the support platform is detachably connected to the component to be powered, the support rod has a hollow structure, the connecting wires are retractable, and the support component is rotatable, providing height and position adjustment.
This enhances the flexibility and portability of energy base stations, adapting to power supply needs at different heights and locations, and improving the convenience and safety of outdoor activities.
Smart Images

Figure CN223625597U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of outdoor energy base station technology, and more specifically, to an energy base station. Background Technology
[0002] With the increasing popularity of outdoor activities such as camping, hiking, and photography, the demand for portable and reliable energy supply systems has increased significantly. While existing outdoor power stations can provide some power, they typically have the following limitations:
[0003] Most power base stations are designed to a fixed size, and their length or shape cannot be adjusted to meet actual usage needs. This limits their adaptability and portability in different environments. For example, in confined spaces, fixed-length base stations may take up too much space and are not easy to carry and use; while in open areas, fixed sizes may not be able to meet higher lighting or power demands.
[0004] The lighting components are inseparable from the base station body, which limits the scope of use of the lighting device and prevents the lighting direction or position from being freely adjusted as needed. This design not only reduces the flexibility of the lighting but may also affect the portability and energy storage efficiency of the base station, because the lighting components also occupy the volume and weight of the energy base station when not in use. Utility Model Content
[0005] The main objective of this invention is to provide an energy base station to solve the problem of low flexibility of existing outdoor energy base stations.
[0006] To achieve the above objectives, according to one aspect of the present invention, an energy base station is provided, comprising: an installation body; an energy storage module disposed within the installation body for storing and releasing electrical energy; an adjustment component disposed on the installation body, at least a portion of the adjustment component being extendable and retractable along a predetermined direction, and at least a portion of the energy storage module being disposed on the adjustment component; and a support platform disposed on the adjustment component, the support platform being used to support a component to be powered, and the support platform being detachably connected to the component to be powered.
[0007] Furthermore, the adjustment assembly includes: a support rod disposed on the mounting body, the support rod being telescopically disposed in a predetermined direction, and a bearing platform disposed at the top of the support rod.
[0008] Furthermore, the energy base station also includes: a power supply interface, which is located on the first end face of the support platform and is connected to the energy storage module; and an installation component, which is located on the second end face of the support platform and is detachably connected to the component to be powered.
[0009] Furthermore, the mounting component is a connecting rod with external threads; or, the mounting component is a magnetic component, and the component to be powered is attracted to the magnetic component.
[0010] Furthermore, the support rod has a hollow structure; the energy storage module is connected to the power supply interface and the installation components through connecting wires, which are run through the hollow structure of the support rod and are retractable.
[0011] Furthermore, the mounting body is provided with an installation channel, at least a portion of the adjusting component is disposed within the installation channel, and the mounting body is also provided with a baffle, at least a portion of which is opposite to the opening of the installation channel; the adjusting component includes: a fixed sleeve disposed within the installation channel, the top end of the fixed sleeve being disposed opposite to the baffle so that the baffle blocks the fixed sleeve; the top end of the fixed sleeve is also provided with a first blocking member, at least a portion of which protrudes from the inner wall surface of the fixed sleeve; a first sleeve passing through the fixed sleeve, the bottom end of the first sleeve being provided with a first connecting member, the first connecting member being sleeved on the first sleeve, and the first connecting member being interference-fitted with the fixed sleeve; wherein, the first connecting member is elastically disposed, and the first blocking member blocks the first connecting member so that the first sleeve extends to a first predetermined position.
[0012] Furthermore, a second blocking member is provided at the top of the first sleeve, at least a portion of which protrudes relative to the inner wall surface of the first sleeve. The adjusting assembly also includes: a second sleeve, which is inserted into the first sleeve, and a second connecting member is fitted at the bottom of the second sleeve, the second connecting member being interference-fitted with the first sleeve; wherein the second connecting member is elastically configured, and the second blocking member blocks the second connecting member so that the second sleeve extends to a second predetermined position, and the supporting platform is provided at the top of the second sleeve.
[0013] Furthermore, the adjustment component includes: a first sleeve disposed on the mounting body, the first sleeve having a first positioning part; a second sleeve inserted inside the first sleeve, the second sleeve having a second positioning part, the second positioning part being elastically disposed, the second sleeve being movably disposed relative to the first sleeve, the second positioning part being inserted into the first positioning part to move the second sleeve to a first predetermined position.
[0014] Furthermore, the second sleeve is also provided with a third positioning part, and the adjustment assembly also includes: a third sleeve, which is inserted into the second sleeve, and a fourth positioning part is provided on the third sleeve. The fourth positioning part is elastically set, and the third sleeve is movably set relative to the second sleeve. The fourth positioning part is inserted into the third positioning part so that the third sleeve moves to a second predetermined position; wherein, the bearing platform is set at the end of the third sleeve away from the second sleeve.
[0015] Furthermore, the first sleeve is provided with a first guide portion extending along the axial direction of the first sleeve, and the second sleeve is provided with a second guide portion extending along the axial direction of the second sleeve. The first guide portion and the second guide portion are interlocked to guide the second sleeve during its movement.
[0016] Furthermore, the energy base station also includes a support assembly disposed at the bottom of the mounting body. The support assembly includes multiple support feet, each support foot having a support position and a storage position, and each support foot being rotatably disposed between the support position and the storage position.
[0017] Furthermore, the energy base station also includes: a conductive interface, which is mounted on the mounting body and connected to the energy storage module; a switch button, which is mounted on the mounting body and connected to the energy storage module to control the energy storage module to be in power supply mode or power off mode; and a display component, which is mounted on the mounting body and connected to the energy storage module to display the working status of the energy storage module.
[0018] The energy base station, utilizing the technical solution of this utility model, includes an installation body, an energy storage module, an adjustment component, and a support platform. The energy storage module is housed within the installation body and is used to store and release electrical energy. The adjustment component is mounted on the installation body, with at least a portion of it being extendable and retractable along a predetermined direction. At least a portion of the energy storage module is mounted on the adjustment component. The support platform is mounted on the adjustment component and is used to support the component to be powered. The support platform is detachably connected to the component to be powered. This configuration allows the energy storage module to supply power to the component to be powered. Simultaneously, the support platform, mounted on the adjustment component, can adjust its position as the adjustment component extends and retracts, thus meeting the usage requirements of different locations. Furthermore, the detachable connection between the support platform and the component to be powered facilitates the separate storage of the component, improving the portability of the energy base station and solving the problem of low flexibility in the use of existing energy base stations. Attached Figure Description
[0019] The accompanying drawings, which form part of this application, are used to provide a further understanding of the present invention. The illustrative embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an undue limitation of the present invention. In the drawings:
[0020] Figure 1 A schematic diagram of the structure of the regulating component in the energy base station according to the present invention in an extended state is shown;
[0021] Figure 2 A cross-sectional view of an energy base station according to the present invention is shown;
[0022] Figure 3 A schematic diagram of the structure of the regulating component in the energy base station according to the present invention in the retracted state is shown;
[0023] Figure 4 A cross-sectional view of an energy base station according to the present invention is shown;
[0024] Figure 5 A partial structural schematic diagram of the regulating component in the energy base station according to the present invention is shown;
[0025] Figure 6 A diagram showing the usage status of an energy base station according to this utility model is provided.
[0026] The above figures include the following reference numerals:
[0027] 1. Mounting body; 10. Mounting channel; 11. Baffle; 2. Energy storage module; 3. Adjustment component; 4. Bearing platform; 30. Support rod; 31. Fixing sleeve; 32. First sleeve; 320. First connector; 321. Second blocking component; 322. First guide part; 33. Second sleeve; 330. Second connector; 331. Third blocking component; 332. Second guide part; 34. Third sleeve; 340. Third connector; 341. Third guide part;
[0028] 40. Power supply interface; 41. First end face; 42. Mounting component; 43. Second end face; 44. Connecting wire; 5. Support assembly; 50. Support foot; 6. Conductive interface; 7. Switch button; 8. Display component;
[0029] 100. Components to be powered. Detailed Implementation
[0030] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0031] As mentioned in the background section, existing outdoor power base stations can provide lighting or other power needs. However, lighting components are generally fixed to the power base station, and the power base station's storage is fixed, making it impossible to adjust its length or shape according to actual usage needs. This results in insufficient flexibility to meet higher lighting or power demands. Therefore, to address the aforementioned technical problems, the power base station provided in this application has an adjustment component 3 on the mounting body 1. At least a portion of the adjustment component 3 is telescopically oriented along a predetermined direction. At least a portion of the energy storage module 2 is mounted on the adjustment component 3, allowing its position to be adjusted as the adjustment component 3 extends and retracts. A support platform 4 is mounted on the adjustment component 3 and is used to support the component to be powered. The support platform 4 is detachably connected to the component to be powered. This allows for adjustment of the component's position according to actual needs and also facilitates storage. Compared to a structure where the component to be powered and the support platform 4 are integrated, this arrangement provides separate protection for the component to be powered, increasing the flexibility of the power base station.
[0032] Please refer to Figures 1 to 5 This application provides an energy base station, comprising: an installation body 1; an energy storage module 2 disposed within the installation body 1 for storing and releasing electrical energy; an adjustment component 3 disposed on the installation body 1, at least a portion of the adjustment component 3 being extendably and retractably disposed along a predetermined direction, and at least a portion of the energy storage module 2 being disposed on the adjustment component 3; and a support platform 4 disposed on the installation body 1 for supporting a component to be powered, the support platform 4 being detachably connected to the component to be powered.
[0033] The energy base station provided in this application includes an installation body 1, an energy storage module 2, an adjustment component 3, and a support platform 4. The energy storage module 2 is disposed within the installation body 1 and is used to store and release electrical energy. The adjustment component 3 is disposed on the installation body 1, and at least a portion of the adjustment component 3 is extendable and retractable along a predetermined direction. At least a portion of the energy storage module 2 is disposed on the adjustment component 3. The support platform 4 is disposed on the adjustment component 3 and is used to support the component to be powered. The support platform 4 is detachably connected to the component to be powered. This configuration allows the energy storage module 2 to supply power to the component to be powered. Simultaneously, the support platform 4, being disposed on the adjustment component 3, can adjust its position as the adjustment component 3 extends and retracts, thus meeting the usage requirements of different locations. Furthermore, the detachable connection between the support platform 4 and the component to be powered facilitates the separate storage of the component, improving the portability of the energy base station and solving the problem of low flexibility in the use of existing energy base stations.
[0034] In this application, by adjusting the height of component 3, the energy base station can adapt to components of different heights, such as various electronic devices and lamps, ensuring the flexibility and applicability of power supply. It is particularly suitable for scenarios that require frequent adjustment of power supply position, such as outdoor camping. Users can quickly adjust the height of the energy base station according to different activity needs, such as nighttime picnics and tent lighting, to meet different lighting or equipment power supply needs, greatly improving the convenience and safety of outdoor activities.
[0035] Specifically, such as Figure 2 As shown, the adjustment component 3 includes a support rod 30, which is mounted on the mounting body 1. The support rod 30 is telescopically mounted in a predetermined direction, and the support platform 4 is mounted on the top of the support rod 30. The telescopic design of the support rod 30 not only provides height adjustment but also allows the device to be folded and stored when not in use, saving space and making it easy to carry and store.
[0036] In practical implementation, the energy base station also includes: a power supply interface 40, which is located on the first end face 41 of the support platform 4 and connected to the energy storage module 2; and a mounting component 42, located on the second end face 43 of the support platform 4, which is detachably connected to the component to be powered. This design allows the component to be powered to be quickly and easily connected or disconnected from the energy base station, improving power supply efficiency and user operation convenience, and is especially suitable for occasions requiring rapid replacement of power supply equipment.
[0037] In the embodiments provided in this application, the mounting component 42 is a connecting rod with external threads; or, the mounting component 42 is a magnetic component, and the component to be powered is attracted to the magnetic component. Using an externally threaded connecting rod or a magnetic component as the mounting component not only ensures the stability of the connection but also adapts to different types of components to be powered, enhancing the versatility and compatibility of the device, and is particularly suitable for scenarios requiring stable power supply and frequent equipment replacement.
[0038] Specifically, in one embodiment provided in this application, the support rod 30 has a hollow structure; the energy storage module 2 is connected to the power supply interface 40 and the mounting component 42 respectively via connecting wires 44. The connecting wires 44 are inserted into the hollow structure of the support rod 30 and are telescopically designed. The hollow design of the support rod 30 not only reduces the overall weight but also protects the connecting wires. The connecting wires 44 are spring-loaded wires, which prevent damage to the wires during extension and retraction, while maintaining the neat appearance of the device.
[0039] In another embodiment provided in this application, an installation channel 10 is provided inside the installation body 1, at least a portion of the adjustment component 3 is disposed within the installation channel 10, and a baffle 11 is also provided on the installation body 1, at least a portion of the baffle 11 being opposite to the opening of the installation channel 10; the adjustment component 3 includes: a fixed sleeve 31 disposed within the installation channel 10, the top end of the fixed sleeve 31 being opposite to the baffle 11 so that the baffle 11 blocks the fixed sleeve 31; a first blocking member is also provided at the top end of the fixed sleeve 31, at least a portion of the first blocking member protruding from the inner wall surface of the fixed sleeve 31; a first sleeve 32 passing through the fixed sleeve 31, the bottom end of the first sleeve 32 being provided with a first connecting member 320, the first connecting member 320 being sleeved on the first sleeve 32, the first connecting member 320 and the fixed sleeve 31 being interference-fitted; wherein, the first connecting member 320 is elastically disposed, and the first blocking member blocks the first connecting member 320 so that the first sleeve 32 extends to a first predetermined position. This configuration uses baffle 11 to limit the fixed sleeve 31, preventing the fixed sleeve 31 from moving when the first sleeve 32 is pulled out. In addition, the first connecting member 320 is set as an elastic member to ensure that the first sleeve 32 can move relative to the fixed sleeve 31, thereby preventing the first sleeve 32 from getting stuck. The first blocking member limits the first connecting member 320 to prevent the first sleeve 32 from coming out of the fixed sleeve 31, and the interference fit keeps the first sleeve 32 in the first predetermined position.
[0040] Furthermore, a second blocking member 321 is provided at the top end of the first sleeve 32, at least a portion of which protrudes relative to the inner wall surface of the first sleeve 32. The adjusting assembly 3 also includes a second sleeve 33, which passes through the first sleeve 32. A second connecting member 330 is fitted at the bottom end of the second sleeve 33, and the second connecting member 330 is interference-fitted with the first sleeve 32. The second connecting member 330 is elastically configured, and the second blocking member 321 blocks the second connecting member 330, allowing the second sleeve 33 to extend to a second predetermined position. The supporting platform 4 is located at the top end of the second sleeve 33. This configuration allows the second sleeve 33 to move relative to the first sleeve 32 using the elastic force of the second connecting member 330, while the second blocking member 321 limits the movement of the second sleeve 33, and the interference fit keeps the second sleeve 33 in the second predetermined position.
[0041] In this embodiment, in order to improve the overall height range of the energy base station, the adjustment component 3 also includes a third sleeve 34. The bottom end of the third sleeve 34 is fitted with a third connector 340, and the top end of the second sleeve 33 is provided with a third blocking member 331. The third sleeve 34 passes through the second sleeve 33. The third connector 340 is elastically set and has an interference fit with the second sleeve 33, so that the third sleeve 34 can be pulled out relative to the second sleeve 33 and fixed at a third predetermined position. The bearing platform 4 is set at the top end of the third sleeve 34, which can improve the height adjustment range of the energy base station.
[0042] This embodiment uses three sleeves as an example. In actual implementation, different numbers of sleeves can be set according to actual usage needs to increase the flexibility of height adjustment.
[0043] The multi-stage sleeve structure and positioning part work together to ensure the stability of the device during the extension and retraction process. At the same time, it provides multiple height adjustments to meet the height requirements of different users and scenarios. It is especially suitable for occasions that require precise height adjustment, such as in a home office environment. Users can precisely adjust the height of the power base station according to their personal work habits and desktop height to achieve the optimal power supply position for the equipment, thereby improving work comfort and efficiency.
[0044] In order to guide the second sleeve 33 during its movement, the first sleeve 32 is provided with a first guide portion 322, which extends along the axial direction of the first sleeve 32. The second sleeve 33 is provided with a second guide portion 332, which extends along the axial direction of the second sleeve 33. The first guide portion 322 and the second guide portion 332 are interlocked to guide the second sleeve 33 during its movement. Preferably, the first guide portion 322 is a first protrusion protruding towards the center of the first sleeve 32, and the second guide portion 332 is a first groove recessed towards the center of the second sleeve 33. Simultaneously, a second protrusion is formed on the inner wall of the second sleeve 33, and the first protrusion is inserted into the first groove, guiding the second sleeve 33 during its movement. Furthermore, the third sleeve 34 is provided with a third guide portion 341, which is a second groove recessed towards the center of the third sleeve 34. A third protrusion is formed on the inner wall of the third sleeve 34, and the second protrusion is inserted into the second groove, guiding the third sleeve 34 during its movement. This design, combined with the positioning portions, improves the positioning accuracy when the sleeves move relative to each other, ensuring smoothness and stability during the extension and retraction process, preventing sleeves from shifting or jamming during movement, and improving the reliability of the device and user experience. In addition, a fourth protrusion is provided on the inner wall of the fixed sleeve 31. The fourth protrusion is inserted into the groove on the outer wall of the first sleeve 32 that corresponds to the first protrusion, forming a guide structure for the first sleeve 32.
[0045] In this application, as Figure 2 As shown, the energy base station also includes a support assembly 5, which is disposed at the bottom of the mounting body 1. The support assembly 5 includes multiple support feet 50, each support foot 50 having a supporting position and a retracted position, and each support foot 50 is rotatably disposed between the supporting position and the retracted position. The rotatable design of the support feet 50 allows the device to be placed stably under different ground conditions, providing stable support whether in a flat indoor environment or on rugged outdoor terrain.
[0046] The energy base station also includes: a conductive interface 6, mounted on the mounting body 1 and connected to the energy storage module 2; a switch button 7, mounted on the mounting body 1 and connected to the energy storage module 2, to control the energy storage module 2 to be in power-on or power-off mode; and a display component 8, mounted on the mounting body 1 and connected to the energy storage module 2, to display the operating status of the energy storage module 2. The conductive interface 6, switch button 7, and display component 8 provide convenient charging, control, and status monitoring functions. Users can intuitively understand the power status and operating mode of the energy storage module, greatly improving the user experience and the practicality of the device. It is particularly suitable for occasions requiring real-time monitoring of power status, such as outdoor adventures, where adventurers can check the remaining power at any time through the display component to charge in time or plan their itinerary, ensuring the smooth progress of the adventure. Preferably, the display component 8 is an indicator light, with multiple indicator lights; the remaining power of the energy storage module 2 is determined by the number of indicator lights illuminated.
[0047] During use, the connecting wire 44 passes through the bottom of the fixed sleeve 31 and is electrically connected to the energy storage module 2. A sealing ring is also provided at the bottom of the fixed sleeve 31, and at least part of the sealing ring is fitted on the fixed sleeve 31. The sealing ring is provided with a through hole, through which the connecting wire 44 passes and is electrically connected to the energy storage module 2.
[0048] The energy storage module 2 includes a battery and a first circuit board, which is connected to the battery. A second circuit board is located within the support platform 4 and is connected to the power supply interface 40. The two ends of the connecting wire 44 are electrically connected to the first and second circuit boards, respectively. Figure 6 As shown, the component to be powered 100 can be a lamp, a mobile phone, or other electrical appliances. In this embodiment, the component to be powered 100 is a lamp, which is provided with a charging interface. When the component to be powered 100 is connected to the mounting component 42, the two ends of the charging cable are respectively inserted into the power supply interface 40 and the charging interface to achieve continuous power supply to the lamp. In addition, the conductive interface 6 is connected to the battery through the first circuit board. The battery can be charged through the conductive interface 6, or the battery power can be output (e.g., to lamps, mobile phones, or other electrical appliances) through the conductive interface 6.
[0049] The energy base station of this application can intelligently control the charging and discharging process. The combined use of the adjustment component 3 and the support platform 4 allows for the independence and high degree of freedom in adjusting external devices, improving the portability, flexibility, and adaptability of the energy base station. The support component 5 ensures the stability of the energy base station in various outdoor environments, thereby solving the problems of inconvenience, poor flexibility, and low charging and discharging efficiency caused by the fixed length of the energy base station and the integrated design of the lighting device and the base station in the prior art. It provides a more comprehensive, efficient, and safe power supply solution for outdoor activities.
[0050] As can be seen from the above description, the embodiments of this utility model achieve the following technical effects:
[0051] The energy base station provided in this application includes an installation body 1, an energy storage module 2, an adjustment component 3, and a support platform 4. The energy storage module 2 is disposed within the installation body 1 and is used to store and release electrical energy. The adjustment component 3 is disposed on the installation body 1, and at least a portion of the adjustment component 3 is extendable and retractable along a predetermined direction. At least a portion of the energy storage module 2 is disposed on the adjustment component 3. The support platform 4 is disposed on the adjustment component 3 and is used to support the component to be powered. The support platform 4 is detachably connected to the component to be powered. This configuration allows the energy storage module 2 to supply power to the component to be powered. Simultaneously, the support platform 4, being disposed on the adjustment component 3, can adjust its position as the adjustment component 3 extends and retracts, thus meeting the usage requirements of different locations. Furthermore, the detachable connection between the support platform 4 and the component to be powered facilitates the separate storage of the component, improving the portability of the energy base station and solving the problem of low flexibility in the use of existing energy base stations.
[0052] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. An energy base station, characterized in that, include: Install the main body (1); An energy storage module (2) is installed inside the mounting body (1) for storing and releasing electrical energy; An adjustment component (3) is disposed on the mounting body (1), at least a portion of the adjustment component (3) is telescopically disposed in a predetermined direction, and at least a portion of the energy storage module (2) is disposed on the adjustment component (3); A support platform (4) is disposed on the adjustment component (3). The support platform (4) is used to support the component to be powered and is detachably connected to the component to be powered.
2. The energy base station according to claim 1, characterized in that, The adjustment component (3) includes: A support rod (30) is provided on the mounting body (1). The support rod (30) is telescopically provided in a predetermined direction. The bearing platform (4) is provided at the top of the support rod (30).
3. The energy base station according to claim 2, characterized in that, The energy base station also includes: A power supply interface (40) is provided on the first end face (41) of the bearing platform (4), and the power supply interface (40) is connected to the energy storage module (2); An installation component (42) is disposed on the second end face (43) of the support platform (4), and the installation component (42) is detachably connected to the component to be powered.
4. The energy base station according to claim 3, characterized in that, The mounting component (42) is a connecting rod, and the connecting rod is provided with external threads; or, The mounting component (42) is a magnetic component, and the component to be powered is attracted to the magnetic component.
5. The energy base station according to claim 3, characterized in that, The support rod (30) has a hollow structure; The energy storage module (2) is connected to the power supply interface (40) and the mounting component (42) respectively via connecting wires (44), and the connecting wires (44) are inserted into the hollow structure of the support rod (30); The connecting wire (44) is retractable.
6. The energy base station according to claim 1, characterized in that, The mounting body (1) is provided with a mounting channel (10), at least a portion of the adjusting component (3) is disposed within the mounting channel (10), and the mounting body (1) is further provided with a baffle (11), at least a portion of the baffle (11) being opposite to the opening of the mounting channel (10); the adjusting component (3) includes: A fixing sleeve (31) is disposed in the installation channel (10). The top end of the fixing sleeve (31) is disposed opposite to the baffle (11) so that the baffle (11) blocks the fixing sleeve (31). The top end of the fixing sleeve (31) is also provided with a first blocking member, at least a portion of which protrudes from the inner wall surface of the fixing sleeve (31). The first sleeve (32) is inserted into the fixed sleeve (31). The bottom end of the first sleeve (32) is provided with a first connector (320). The first connector (320) is sleeved on the first sleeve (32). The first connector (320) is interference-fitted with the fixed sleeve (31). The first connector (320) is elastically configured such that the first blocking member blocks the first connector (320) so that the first sleeve (32) extends to a first predetermined position.
7. The energy base station according to claim 6, characterized in that, The top end of the first sleeve (32) is provided with a second blocking member (321), at least a portion of which protrudes relative to the inner wall surface of the first sleeve (32). The adjusting assembly (3) further includes: The second sleeve (33) is inserted inside the first sleeve (32). The bottom end of the second sleeve (33) is fitted with a second connector (330), and the second connector (330) is interference-fitted with the first sleeve (32). The second connector (330) is elastically configured to be blocked by the second blocking member (321) so that the second sleeve (33) extends to the second predetermined position.
8. The energy base station according to claim 7, characterized in that, The first sleeve (32) is provided with a first guide portion (322) which extends along the axial direction of the first sleeve (32). The second sleeve (33) is provided with a second guide portion (332) which extends along the axial direction of the second sleeve (33). The first guide portion (322) and the second guide portion (332) are interlocked to guide the second sleeve (33) during its movement.
9. The energy base station according to claim 1, characterized in that, The energy base station also includes: A support assembly (5) is disposed at the bottom of the mounting body (1). The support assembly (5) includes a plurality of support feet (50), each of the support feet (50) having a support position and a storage position, and each of the support feet (50) is rotatably disposed between the support position and the storage position.
10. The energy base station according to claim 1, characterized in that, The energy base station also includes: A conductive interface (6) is provided on the mounting body (1) and connected to the energy storage module (2); A switch button (7) is provided on the mounting body (1) and connected to the energy storage module (2) to control the energy storage module (2) to be in power supply mode or power off mode; A display component (8) is disposed on the mounting body (1) and connected to the energy storage module (2) to display the working status of the energy storage module (2).