Supporting mechanism and outdoor illuminating lamp
By incorporating a large-capacity battery component into the telescopic assembly of the outdoor lighting fixture, and combining it with a buffer and locking structure, the problem of short battery life caused by small battery capacity is solved, thereby extending the usage time and improving power supply stability without increasing the size of the device.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- GUANGZHOU TUOHUA INTELLIGENT MANUFACTURING TECHNOLOGY CO LTD
- Filing Date
- 2026-03-23
- Publication Date
- 2026-05-12
AI Technical Summary
Existing outdoor lighting fixtures have short battery life due to their small built-in battery capacity, which cannot meet the needs of long-term use.
The device employs a telescopic assembly to house a large-capacity battery pack. A buffer structure and a locking structure ensure the stability of the battery pack within the housing and maintain its power supply connection. Combined with a connecting assembly, a reliable electrical connection between the battery pack and the power-consuming components is achieved.
Without increasing the size of the main power components or base, the battery capacity is significantly increased, extending the usage time after a single charge, and improving power supply stability and device portability.
Smart Images

Figure CN122015053A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of outdoor lighting technology, and more particularly to a support mechanism and an outdoor lighting fixture. Background Technology
[0002] Outdoor lighting is a key piece of equipment in scenarios without power, such as outdoor camping and nighttime construction work. Its battery life, portability, and structural stability directly determine the user experience.
[0003] Outdoor lighting primarily relies on built-in batteries for power, which are typically integrated into the lamp body or base. However, to meet the demands of portability and stable placement, the overall size of the battery housed within the lamp body or base is limited, resulting in outdoor lighting fixtures with small built-in battery capacity and short battery life. Summary of the Invention
[0004] This application proposes a support mechanism to effectively solve the technical problems of small built-in battery capacity and short battery life in related technologies.
[0005] This application also proposes an outdoor lighting fixture that includes the aforementioned support structure.
[0006] The first aspect of this application provides a support mechanism, including: a telescopic component and a battery component;
[0007] The telescopic component is used to install the electrical components and can adjust the position of the electrical components by telescoping.
[0008] The telescopic assembly has a receiving cavity formed inside;
[0009] The battery assembly is disposed within the receiving cavity and is used to supply power to the power-consuming component.
[0010] Furthermore, the receiving cavity is provided with a buffer structure, which is used to floatably limit the battery assembly to a predetermined position within the receiving cavity.
[0011] Furthermore, there is an expansion gap between the battery assembly and the inner wall of the receiving cavity, and the buffer structure is located at one end of the battery assembly near the power-consuming component and is used to floatably limit the axial position of the battery assembly.
[0012] Furthermore, the buffer structure is made of buffer cotton.
[0013] Furthermore, the telescopic assembly includes a first rod and at least one second rod, each of the second rods being axially movable relative to the first rod to achieve telescopic adjustment. The first rod and each of the second rods are sequentially sleeved from the outside to the inside, and the innermost second rod is used to house the electrical component.
[0014] Furthermore, the receiving cavity is formed within the innermost part of the second rod.
[0015] Furthermore, the telescopic assembly includes a locking structure, which is used to limit the second rod body during telescopic adjustment to prevent it from retracting.
[0016] Furthermore, the support mechanism also includes a connecting component for mounting the power-consuming component. The connecting component is mounted on the innermost second rod, and the battery assembly is electrically connected to the power-consuming component through the connecting component.
[0017] Furthermore, the telescopic assembly includes a battery protection plate for opening or closing the receiving cavity to allow the battery assembly to be detachably disposed within the receiving cavity.
[0018] As can be seen from the above technical solutions, the embodiments of this application have at least the following beneficial effects: by forming a receiving cavity inside the telescopic component, a large-capacity battery component is installed in the receiving cavity, thereby significantly increasing the capacity of the battery component without increasing the volume of the main body or base of the power component. Through the integrated layout of the telescopic component and the battery component, the effective usage time of the power component after a single charge is greatly extended.
[0019] A second aspect of this application provides an outdoor lighting fixture, including a support structure as described in the first aspect of this application.
[0020] It is easy to understand that the outdoor lighting in the second aspect embodiment of this application has the same technical effect as the support mechanism in the first aspect embodiment, and therefore will not be described again.
[0021] Additional aspects and advantages of this application will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this application. Attached Figure Description
[0022] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0023] Figure 1 This is a schematic diagram of the structure of an outdoor lighting lamp provided in one embodiment of this application;
[0024] Figure 2 A cross-sectional view of a support mechanism provided in one embodiment of this application;
[0025] Figure 3 for Figure 2 A magnified view of A in the middle.
[0026] Figure label:
[0027] 100. Telescopic assembly; 101. Receiving cavity; 1011. Expansion gap; 110. Buffer structure; 120. First rod; 130. Second rod; 140. Locking structure; 150. Battery protection board;
[0028] 200. Battery components;
[0029] 300. Electrical components;
[0030] 400. Connection components. Detailed Implementation
[0031] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0032] See Figures 1 to 3 As shown, an embodiment of the first aspect of this application discloses a support mechanism, including a telescopic component 100 and a battery component 200;
[0033] The telescopic component 100 is used to set the power component 300 and can adjust the position of the power component 300 by telescopic movement; a receiving cavity 101 is formed inside the telescopic component 100; the battery component 200 is disposed in the receiving cavity 101 and is used to supply power to the power component 300.
[0034] In the embodiments of this application, by forming a receiving cavity 101 inside the telescopic component 100, a large-capacity battery component 200 is installed in the receiving cavity 101, thereby significantly increasing the capacity of the battery component 200 without increasing the volume of the main body or base of the power component 300. Through the integrated layout of the telescopic component 100 and the battery component 200, the effective usage time of the power component 300 after a single charge is greatly extended.
[0035] It should be noted that the telescopic component 100 supports the power component 300 and adjusts its position through telescopic movement to adapt to the positional requirements of different usage scenarios. Furthermore, it forms an internal cavity 101, providing a mounting platform for the battery component 200 without occupying additional external space, thus avoiding an increase in overall size. The battery component 200 is built into the cavity 101 of the telescopic component 100, providing continuous power to the power component 300. The spatial layout of the cavity 101 allows for the installation of a large-capacity battery, overcoming the capacity limitations of traditional power supply components due to space constraints. By integrating the telescopic adjustment structure with the power supply structure, the battery capacity is increased without increasing the size of the main body or base of the power component 300, significantly extending the effective usage time of the power component 300 after a single charge, balancing the compactness of the device with its battery life.
[0036] Specifically, the telescopic component 100 has the dual functions of position adjustment and carrier accommodation. Its internally formed accommodating cavity 101 provides installation space for the battery component 200, realizing the integrated layout of the telescopic component 100 and the battery component 200. The battery component 200 for power supply is installed in the idle space inside the telescopic component 100 without occupying the external volume of the main body or base of the power supply component 300. While retaining the function of the telescopic component 100 to adjust the position of the power supply component 300, the integrated arrangement of the battery component 200 is completed, providing a basis for the improvement of power supply capacity.
[0037] It is understood that the telescopic component 100 can telescopically move in a preset direction, and its interior has a hollow area as a receiving cavity 101, which provides a space for the battery component 200. The top of the telescopic moving end of the telescopic component 100 is equipped with a power component 300, and combined with the electrical connection structure, the battery component 200 can supply power to the top power component 300.
[0038] In some embodiments, the telescopic component 100 is an axially telescopic sleeve structure, composed of multiple concentric nested sleeves, with at least one sleeve forming a hollow structure as a receiving cavity 101. In some embodiments, the telescopic component 100 is an axially telescopic scissor-type structure, consisting of multiple sets of cross-hinged metal rods forming a scissor frame. Axial telescopic movement is achieved by rotating the rods around the hinge points to change the included angle. A hollow region can be formed inside the scissor frame as the receiving cavity 101, or a structural component can be provided within the space enclosed by the scissor frame to form a cavity as the receiving cavity 101. In some embodiments, the telescopic component 100 is an axially telescopic hollow slide rail structure, including a relatively slidable slide rail forming the main telescopic moving end, with a hollow structure formed inside the slide rail as the receiving cavity 101. In some embodiments, the telescopic component 100 is a threaded rod structure, composed of multiple connecting rods connected sequentially by threaded structures at their ends, with at least one connecting rod forming a hollow structure as the receiving cavity 101. It is understood that the telescopic component 100 of this application embodiment can simultaneously fulfill two functions: supporting and adjusting the position of the electrical component 300, and providing power through the built-in battery component 200. Those skilled in the art can choose one of the above embodiments to implement the technical solution of this application, or can make adaptive adjustments to the structure based on the above embodiments to obtain a telescopic component 100 with similar functions. However, it should be understood that simple adaptive improvements made without inventive effort, enabling the resulting telescopic component 100 to be used in other types of products or other technical fields, should also be considered to fall within the scope of protection of this application.
[0039] In some embodiments, the receiving cavity 101 can be formed by the telescopic component 100 using its own hollow structure or cavity to form a cavity, or it can be indirectly formed within the telescopic component 100 by setting structural members to form a cavity. The receiving cavity 101 can be configured with a corresponding structural shape according to actual installation requirements. For example, it can be configured as a columnar cavity extending along the telescopic direction to adapt to the structure of the battery assembly 200 and better accommodate the battery assembly 200.
[0040] In some embodiments, the battery assembly 200 is disposed within the receiving cavity 101, and the electrical energy of the battery assembly 200 is conducted to the power-consuming component 300 through conductive components. These conductive components may be conductive springs, conductive rings, conductive slip rings, or telescopic spring cables, etc., and can be selected according to actual needs to meet usage requirements. Furthermore, the power-consuming component 300 can be adjusted according to the actual product in which the support mechanism disclosed in this application is applied. For example, when applied to outdoor lighting, the power-consuming component 300 is a lighting component; when applied to outdoor shooting equipment, the power-consuming component 300 is a shooting lens assembly, etc. The support mechanism disclosed in this application can adaptably support and supply power to the power-consuming component 300 according to different application fields and actual conditions.
[0041] The following will combine Figures 1 to 3 The supporting mechanisms disclosed in the embodiments of this application will be explained and described in detail.
[0042] It is understandable that, since the battery assembly 200 is built into the receiving cavity 101 of the telescopic assembly 100, there may be problems with the unstable operation of the battery assembly 200 during actual use. In addition, during actual use, there are inevitably some details such as battery expansion, installation positioning and safety fixation of the battery assembly 200 that need to be paid attention to.
[0043] To address the aforementioned potential technical problems, in some embodiments of this application, such as... Figure 2 A buffer structure 110 is provided within the receiving cavity 101. The buffer structure 110 is used to floatably confine the battery assembly 200 to a preset position within the receiving cavity 101. It is understood that the buffer structure 110 can absorb vibrations and external impacts generated during equipment use, movement, or adjustment of the telescopic component 100, preventing the battery assembly 200 from hard-contacting with the inner wall of the receiving cavity 101, protecting the structural integrity of the battery assembly 200, and preventing the battery power supply contacts from loosening due to impact, ensuring the stability of the power supply connection. Simultaneously, the buffer structure 110 confines the battery assembly 200 to the preset position within the receiving cavity 101, preventing the battery assembly 200 from shifting or shaking within the cavity when the telescopic component 100 extends or retracts, ensuring a stable power supply connection between the battery assembly 200 and the power-consuming component 300 without affecting power supply efficiency. Furthermore, the floating margin does not limit the protective function of the buffer structure 110, achieving compatibility between positioning and buffering.
[0044] In some embodiments, the buffer structure 110, through its own flexibility or elasticity, confines the battery assembly 200 to a preset position in the receiving cavity 101 while allowing for a small amount of movement. It serves a dual purpose of positioning and buffering, balancing battery installation stability and impact resistance, without affecting the position adjustment of the telescopic component 100 or the power supply performance of the battery assembly 200. However, it should be understood that the design of the buffer structure 110 is key to more effectively addressing the issues of positioning, expansion buffering, and secure fixation of the battery assembly 200.
[0045] In some specific embodiments, reference is made to... Figure 2 and Figure 3 There is an expansion gap 1011 between the battery assembly 200 and the inner wall of the receiving cavity 101. The buffer structure 110 is located in the battery assembly 200 near the power component 300 and is used to float the battery assembly 200 axially.
[0046] Understandably, the expansion gap 1011 design provides space for thermal expansion of the battery assembly 200, preventing it from being forced against the inner wall of the housing cavity 101 after thermal expansion, thus preventing battery deformation and damage, and ensuring the integrity and lifespan of the battery structure. The buffer structure 110 provides axial floating limit at the end of the battery closest to the power-consuming component 300, ensuring stable power supply between the battery assembly 200 and the power-consuming component 300, while preventing the power supply end from becoming loose during adjustment of the telescopic component 100 or equipment vibration. Furthermore, the buffer structure 110 absorbs axial vibration and impact, protecting the battery power supply end, and does not restrict slight movement of the battery in other directions due to thermal expansion, thus working in harmony with the expansion gap 1011.
[0047] It should be noted that, in order for the buffer structure 110 to possess multiple functions such as flexible buffering and reliable positioning of the battery assembly 200, the buffer structure 110 can be made of flexible material to meet the requirements of impact resistance and protection, and achieve the positioning and safe fixation of the battery assembly 200 by abutting against it. In some embodiments, the buffer structure 110 can be a flexible pad, a flexible limiting member, a spring, or other structures, thereby simultaneously fulfilling the functions of positioning and protection.
[0048] For example, the buffer structure 110 is a buffer cotton. It is understood that the buffer structure 110 in this embodiment is used to protect the lithium battery. The buffer cotton has a simple structure, is lightweight, and is easy to install. It can be placed on the axial end of the battery without additional fixing structures, facilitating subsequent maintenance. The buffer cotton is used as a flexible constraint for axial floating limit, achieving floating axial limit, while also absorbing axial vibration and impact through flexibility, preventing damage from hard contact between the battery assembly 200 and the receiving cavity 101.
[0049] It should be understood that the structural design of the telescopic component 100 used to house the battery component 200 is crucial in order to increase the capacity of the battery component 200.
[0050] In this regard, in some embodiments of this application, reference is made to Figure 2 and Figure 3 The telescopic assembly 100 includes a first rod 120 and at least one second rod 130. Each second rod 130 is axially movable relative to the first rod 120 to achieve telescopic adjustment. The first rod 120 and each second rod 130 are sequentially sleeved from the outside to the inside, with the innermost second rod 130 used to mount the electrical component 300. It can be understood that the first rod 120 and the second rod 130 are sequentially coaxially sleeved, and the overall length of the telescopic assembly 100 is adjusted through relative axial movement, thereby adjusting the axial position of the electrical component 300. The first rod 120 and the second rod 130 are connected layer by layer from the outside to the inside, so that the telescopic component 100 can take into account both structural strength and telescopic flexibility. The outer first rod 120 provides support for the whole, while the inner second rod 130 is responsible for axial movement to realize the telescopic action. The hollow structure of the second rod 130 serves as a receiving cavity 101, which can smoothly house the large-capacity battery component 200, realizing the integrated layout of the telescopic component 100 and the battery component 200.
[0051] It is understood that the receiving cavity 101 can be formed by the hollow structure inside one or more of the second rods 130. In some embodiments, the hollow structures of at least two adjacent second rods 130 are connected to form the receiving cavity 101. In some embodiments, the hollow structure of one of the second rods 130 may also be selected as the receiving cavity 101. In some embodiments, the hollow structure of at least one second rod 130 corresponding to the adaptation position of the telescopic assembly 100 may be selected as the receiving cavity 101.
[0052] For example, the receiving cavity 101 is formed within the innermost second rod 130. It is understood that the innermost second rod 130, as the farthest telescopic end of the telescopic assembly 100, serves not only to form the receiving cavity 101 but also to house the power-consuming component 300, thereby significantly shortening the physical distance between the battery assembly 200 and the power-consuming component 300, and simplifying the power transmission line. This structure effectively reduces energy loss during power transmission, improves energy efficiency, and also helps maintain overall structural stability and aesthetics.
[0053] Furthermore, it should be noted that the innermost second rod 130 serves two purposes: firstly, to house the electrical component 300, and secondly, to form a receiving cavity 101 to accommodate the battery assembly 200. To prevent this second rod 130 from sliding down during extension and retraction, in some specific embodiments, reference is made to… Figure 3 The telescopic assembly 100 includes a locking structure 140, which is used to limit the return of the second rod 130 during telescopic adjustment.
[0054] Understandably, the locking structure 140 only restricts the unintended retraction of the second rod 130 and does not interfere with normal axial telescopic operation. When the position needs to be adjusted, the locking can be released, and after adjustment, the locking can be achieved automatically or manually, thereby offsetting the downward force of the innermost second rod 130 under load and preventing it from retracting on its own during telescopic adjustment or after adjustment, ensuring the stability of the telescopic position of the electrical component 300 and avoiding affecting the user experience or the stability of the power supply connection.
[0055] In some embodiments, the locking structure 140 can be configured to prevent backflow by cooperating with a locking slot and a limiting member. For example, the locking slot can be located on the innermost second rod 130, and the limiting member can be located at a preset position within the telescopic assembly 100, so that when the second rod 130 is extended to the preset position, the limiting member cooperates with the locking slot to prevent backflow. Furthermore, it can also be configured as an elastic buckle structure for ease of use.
[0056] In some embodiments, the locking structure 140 can also be a commonly used anti-return structure, such as a structure composed of a ratchet mechanism, a self-locking mechanism, etc. Those skilled in the art can implement the setting of the locking structure 140 according to conventional design methods, which will not be described in detail here.
[0057] It should be understood that, in order to further simplify wiring, shorten the distance between the power supply and the lamp holder, and improve the overall aesthetics, reference is made to some embodiments of this application. Figures 1 to 2 The support mechanism also includes a connecting component 400, which is used to set the power supply component 300. The connecting component 400 is set on the innermost second rod 130, and the battery component 200 is electrically connected to the power supply component 300 through the connecting component 400.
[0058] Understandably, the connecting component 400, as an integrated transfer carrier for mechanical fixation and electrical connection, serves two purposes. On the one hand, it is located on the innermost second rod 130 for the stable installation of the power-consuming component 300. On the other hand, it establishes a circuit conduction path between the battery component 200 and the power-consuming component 300, enabling the battery component 200 to supply power to the power-consuming component 300. This prevents the power-consuming component 300 from being pulled or loosened during use and during the adjustment of the telescopic component 100, ensuring the continuity of power supply and organizing the power supply line layout.
[0059] In some embodiments, the connection component 400 includes a housing structure and a circuit structure, such as a PCB board, built into the housing structure. The bottom surface of the housing structure is disposed on the innermost second rod 130. The surface of the housing structure is used to install the power component 300, and the interior of the housing structure is used for circuit installation and electrical connection.
[0060] In some specific embodiments, refer to Figure 2 and Figure 3 The telescopic assembly 100 includes a battery protection plate 150, which is used to open or close the receiving cavity 101 so that the battery assembly 200 can be detachably disposed within the receiving cavity 101. It is understood that when the battery protection plate 150 is open, it provides a channel for the insertion and removal of the battery assembly 200, facilitating battery replacement, inspection, and maintenance; when closed, it forms a closed space within the receiving cavity 101, confining the battery assembly 200 to a preset position within the cavity to ensure normal use.
[0061] In some embodiments, the battery protection plate 150 is disposed at the bottom of the battery assembly 200. In addition to opening or closing the receiving cavity 101, it can also support the battery assembly 200 and provide a certain degree of protection through the flexible material or buffer design of the battery protection plate 150.
[0062] The second aspect of this application discloses an outdoor lighting fixture, including: the support structure of the first aspect of this application.
[0063] In some embodiments, since the support mechanism of this application is used as part of the outdoor lighting fixture, in order to ensure stable placement during outdoor use, reference is made to... Figure 1 The support mechanism also includes a support frame assembly, which is detachably arranged around the telescopic assembly 100. This allows the outdoor lighting fixture to be placed stably when the support frame assembly is deployed around the first rod 120 of the telescopic assembly 100, which helps to maintain the overall structural stability and aesthetics of the lighting fixture.
[0064] It is easy to understand that the outdoor lighting in the second aspect embodiment of this application has the same technical effect as the support mechanism in the first aspect embodiment, and therefore will not be described again.
[0065] It should be noted that the support mechanism of this application embodiment can be used in the field of portable projection devices, outdoor monitoring devices, portable audio devices, or mobile lighting devices, which require both portability and long battery life. It should be understood that, based on the disclosure of the embodiments of this application, any adaptive and simple improvements made by those skilled in the art without inventive effort, enabling the resulting support mechanism to be used in other types of products or other technical fields, should also be considered within the scope of protection of this application.
[0066] The support structure and outdoor lighting of this application embodiment are described in detail below with a specific example. It should be noted that the following embodiment is merely an exemplary description and should not be construed as limiting the embodiments of this application.
[0067] To address the problem that existing outdoor lighting fixtures suffer from small built-in battery capacity and short battery life due to their limited overall size, the core innovation of the support mechanism and outdoor lighting fixture in this embodiment lies in integrating the power supply component within the telescopic component 100 of the outdoor lighting fixture.
[0068] Specifically, see Figures 1 to 3 As shown, the telescopic assembly 100 is a telescopic structure composed of multiple rods sequentially connected. The first rod 120 serves as the base end for fixed installation, and multiple second rods 130 are telescopically connected. When the telescopic assembly 100 extends, the interior of the topmost second rod 130 forms a receiving cavity 101. The high-capacity battery assembly 200 is equipped with a battery protection plate 150, allowing it to be detachably or fixedly installed in the receiving cavity 101. This integrated layout significantly increases the capacity of the battery assembly 200 without increasing the volume of the lamp body or base, thereby greatly extending the effective lighting time after a single charge. Furthermore, since the battery assembly 200 is directly built into the telescopic assembly 100, which serves as the supporting structure, the physical distance between the power supply and the LED module located at the lamp head is significantly shortened, and the power transmission line is simplified accordingly. This arrangement effectively reduces energy loss during power transmission, improves energy efficiency, and also helps maintain the overall structural stability and aesthetics of the lamp body.
[0069] It is understandable that by embedding the lithium battery within the telescopic component 100, and installing anti-collision cushioning cotton above the battery, the lithium battery is protected. By embedding the battery component 200 within the last section of the telescopic component 100, the positioning, expansion cushioning, and secure fixing of the battery component 200 are solved while achieving an integrated design of power supply and structure. Furthermore, the telescopic component 100 restricts the position of the battery component 200 through the locking structure 140 to prevent it from sliding down during telescopic movement. At the same time, the receiving cavity 101 is designed with a margin to accommodate battery expansion, working in conjunction with the foam to achieve a dual function of fixing and cushioning. Combined with a simplified wiring design that shortens the distance between the power supply and the lamp head, the overall aesthetics and ease of use are improved. The support mechanism and outdoor lighting of this embodiment do not rely on external power supply, making them suitable for power-free scenarios such as outdoor camping and construction site work. The weight of the battery component 200 has a minimal impact on overall stability and does not significantly alter the center of gravity distribution. Unlike traditional external battery solutions, it has the advantages of high structural integration and ease of operation.
[0070] In the description of this application, it should be understood that the terms "center", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.
[0071] The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, unless otherwise stated, "multiple" means two or more. It should be noted that the term "and / or" used herein is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A alone, A and B simultaneously, or B alone. Similarly, at least one of A or B can also represent: A alone, A and B simultaneously, or B alone.
[0072] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.
[0073] In the foregoing description of this specification, references to terms such as "one embodiment," "another embodiment," or "some embodiments" indicate that a specific feature, structure, material, or characteristic described in connection with an embodiment or example is included in at least one embodiment or example of this application. In the description of this specification, specific features, structures, materials, or characteristics may be combined in any suitable manner in one or more embodiments or examples.
Claims
1. A support mechanism, characterized in that, include: Telescopic components and battery components; The telescopic component is used to install the electrical components and can adjust the position of the electrical components by telescoping. The telescopic assembly has a receiving cavity formed inside; The battery assembly is disposed within the receiving cavity and is used to supply power to the power-consuming component.
2. The support mechanism according to claim 1, characterized in that: The receiving cavity is provided with a buffer structure, which is used to floatably limit the battery assembly to a preset position within the receiving cavity.
3. The support mechanism according to claim 2, characterized in that: There is an expansion gap between the battery assembly and the inner wall of the receiving cavity, and the buffer structure is located at one end of the battery assembly near the power-consuming component and is used to floatably limit the axial position of the battery assembly.
4. The support mechanism according to claim 2, characterized in that: The cushioning structure is cushioning cotton.
5. The support mechanism according to claim 1, characterized in that: The telescopic assembly includes a first rod and at least one second rod. Each second rod can move axially relative to the first rod to achieve telescopic adjustment. The first rod and each second rod are sequentially sleeved from the outside to the inside. The innermost second rod is used to house the electrical component.
6. The support mechanism according to claim 5, characterized in that: The receiving cavity is formed within the innermost part of the second rod.
7. The support mechanism according to claim 5, characterized in that: The telescopic assembly includes a locking structure, which is used to limit the second rod body during telescopic adjustment to prevent it from retracting.
8. The support mechanism according to claim 5, characterized in that: The support mechanism further includes a connecting component for mounting the power-consuming component. The connecting component is mounted on the innermost second rod, and the battery assembly is electrically connected to the power-consuming component through the connecting component.
9. The support mechanism according to claim 1, characterized in that: The telescopic assembly includes a battery protection plate for opening or closing the receiving cavity to allow the battery assembly to be detachably disposed within the receiving cavity.
10. An outdoor lighting fixture, characterized in that, include: The support mechanism as described in any one of claims 1 to 9.