Glare-free uniform light strip lamp
Through the design of the clamping mechanism and the conductive mechanism, the timing conflict problem between the wire connection and the lamp tightening during the installation of the linear light is solved, which enables fast installation and disassembly, and improves the installation efficiency and safety.
Patent Information
- Application Number
- CN202511117345.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-11
- Publication Date
- 2025-09-30
AI Technical Summary
When installing existing linear lights, there are serious spatial and temporal conflicts between the wire connection operation and the lamp fastening operation, which makes the installation process cumbersome and inefficient.
The system uses a snap-in mechanism and a conductive mechanism to achieve an integrated "push-rotate-lock" operation by rotating the snap-in part and the snap-in part, simultaneously achieving mechanical interlocking and power on or off, avoiding conflicts between wire connection and lamp fastening.
It achieves quick installation and disassembly, avoids timing conflicts between wire connection and lamp fastening, improves installation efficiency and safety, and ensures the stability of conductive effect.
Smart Images

Figure CN120720564A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of linear lamps, and in particular relates to a glare-free uniform light linear lamp. Background Art
[0002] Linear lights, widely used for decorative lighting, contouring, and accent lighting indoors and outdoors, are increasingly popular in the market due to their uniform light output, simple design, and flexible installation. Installation often requires mechanical fasteners such as bolts and screws to secure the fixture's main structure, such as the lamp body or mounting bracket, directly to a mounting surface like a ceiling, wall, or keel. This rigid fastening method provides reliable connection strength and long-term stability.
[0003] However, when installing existing linear lights, there is a serious spatial and temporal conflict between the wire connection operation and the lamp fastening operation. That is, the wire connection must be completed at the same time as the lamp fastening is completed, making the entire installation process cumbersome and inefficient. Summary of the Invention
[0004] The present invention provides a glare-free uniform light linear lamp, which aims to solve the problem that during the installation of existing linear lamps, there is a serious spatial and temporal conflict between the wire connection operation and the lamp tightening operation. That is, the wire connection must be completed at the same time as the lamp is tightened, resulting in a cumbersome and inefficient installation process.
[0005] An embodiment of the present invention provides a glare-free uniform light line lamp, including a lamp housing connected to a ceiling through a steel frame, a slot provided at the bottom of the lamp housing, a lamp inserted into the slot, the lamp being divided into a mounting body and a light-emitting body, the light-emitting body being mounted on the lower side of the mounting body, the mounting body being connected to the slot through a snap-fit mechanism, and a conductive mechanism being provided in the snap-fit mechanism.
[0006] Furthermore, the slots are divided into a first slot, a second slot and a third slot from bottom to top, and the first slot, the second slot and the third slot are interconnected.
[0007] By adopting the above technical solution, the first slot guides the initial positioning of the light-emitting body to avoid installation offset; the second slot accommodates the locking block and the card block to provide operating space for mechanical locking; the third slot accommodates the rotating card part to ensure that the vertical movement of the movable column is not interfered with.
[0008] Furthermore, the clamping mechanism includes a rotating clamping portion located in the third slot and a clamping portion located on the mounting body, the rotating clamping portion includes an upper base column fixed to the top of the third slot, a lower base column is provided on the lower side of the upper base column, the lower base column is fixed to the inner wall of the third slot, a movable column is sliding inside the upper base column and the lower base column, a clamping block is provided at the bottom of the movable column, and the clamping block extends into the second slot.
[0009] By adopting the above technical solution, the cooperation between the rotating clamping part and the clamping part realizes the "push-rotate-lock" integrated operation, and the movable column slides up and down in the upper base column and the lower base column; the clamping block extends to the second slot so that it automatically aligns with the clamping part when the lamp is inserted.
[0010] Furthermore, corresponding corrugated grooves are reserved between the upper base column and the lower base column, and a limit block is fixed on the surface of the movable column, and the limit block slides in the corrugated groove.
[0011] By adopting the above technical solution, the corrugated groove is divided into a peak section and a trough section, and the angle between adjacent trough sections is 90°. The bottom of the movable column is connected to the rotating base inside the upper base column by a spring. The rotating base can rotate inside the upper base column. The movable column will always extend downward only under the action of the spring, so that the limit block is always in contact with the trough section. When the movable column is squeezed upward and the spring is compressed, the limit block will slide upward from the trough section to the peak section along the trajectory of the corrugated groove of the lower base column, and then slide from the peak section to the adjacent trough section under the action of the spring. At this time, the spring is reset, thereby realizing a 90° rotation of the rotating base, the movable column and the block.
[0012] Furthermore, the snap-in portion includes a groove on the upper surface of the mounting body, and two L-shaped locking blocks are relatively fixed on both sides of the groove on the upper surface of the mounting body. The snap-in blocks are rectangular, the length of the snap-in blocks is greater than the gap between the two locking blocks, and the width of the snap-in blocks is less than the gap between the two locking blocks.
[0013] By adopting the above technical solution, the width of the card block is smaller than the gap of the locking block, and when insertion is allowed, the card block can smoothly pass through the gap and enter between the two locking blocks; the length of the card block is greater than the gap of the locking blocks to ensure that the card block cannot fall out laterally after rotating 90°, thereby realizing mechanical interlocking.
[0014] Furthermore, the conductive mechanism includes two fixed rods fixed at the bottom of the groove, a pressure rod sliding on the fixed rods, the pressure rod and the bottom of the groove are connected by an elastic member, a guide column is fixed between the two fixed rods, a movable sleeve slides on the guide column, the movable sleeve and the pressure rod are connected by a telescopic rod, and a conductive part is provided on the top of the movable sleeve.
[0015] By adopting the above technical solution, a fulcrum is provided between the middle part of the telescopic rod and the bottom of the groove, so that the telescopic rod can act as a lever. After the card block passes through the gap of the locking block, it will first press the pressure rod downward, and the pressure rod will push the movable sleeve through the telescopic rod. The movable sleeve will rise vertically along the guide column, and then the conductive part can be connected to the connecting groove at the lower end of the card block. The elastic part can use a spring to provide rebound force, so that the conductive part will automatically separate during disassembly to avoid the risk of live operation.
[0016] Furthermore, the conductive part includes an extension rod fixed on the top of the movable sleeve, a conductive frustum is fixed on the top of the extension rod, an unlocking frustum is slid on the extension rod, the unlocking frustum is located on the lower side of the conductive frustum and is symmetrically arranged with it, and a circular conductive groove is provided on the lower surface of the conductive frustum.
[0017] By adopting the above technical solution, the inclined surfaces on the circumferential sides of the conductive truncated cone and the unlocking truncated cone can achieve the purpose of quick disassembly.
[0018] Furthermore, the conductive part also includes a connecting groove that is concave upward at the center of the bottom of the card block, and a receiving groove is reserved on the inner wall surface of the connecting groove. A conductive block slides in the receiving groove through an elastic guide member, and the conductive contacts on the upper surface of the conductive block are adapted to the conductive groove.
[0019] By adopting the above technical solution, the end of the conductive block away from the receiving groove is in the shape of a downward slope. After the conductive cone is inserted into the connecting groove, its slope will push the conductive block to both sides until the conductive cone slides to the upper side of the conductive block. At this time, under the action of the elastic guide, the conductive block is reset, and then the contacts on the surface of the conductive block are plugged into the conductive groove for conduction.
[0020] Furthermore, elastic contacts are arranged around the inner wall of the conductive slot.
[0021] By adopting the above technical solution, the conductive contacts protruding from the conductive block can squeeze the elastic contacts to prevent loosening, thereby improving the overall conductive effect.
[0022] Furthermore, balls are provided on the top of the pressure rod and the peripheral side of the mounting body located in the groove, and a circular guide groove is provided on the bottom of the clamping block, and the balls on the top of the pressure rod roll along the circular guide groove.
[0023] By adopting the above technical solution, the ball converts the sliding friction of the block during rotation into rolling friction, reducing the friction during rotation; the circular guide groove constrains the ball path, ensuring that the pressure rod always moves vertically, and can also avoid the deviation of the conductive mechanism.
[0024] The beneficial effects of the present invention are:
[0025] 1. The present invention realizes the integrated operation of "push-in-rotate-lock" by setting the clamping mechanism and cooperating the rotating clamping part with the clamping part, thereby realizing mechanical interlocking and rapid installation and disassembly without the need for cumbersome installation and disassembly using bolts.
[0026] 2. The present invention realizes the effects of power on and power off simultaneously during the installation and removal process by setting up the conductive mechanism, without the need for additional wire connection, thus avoiding the conflict problem between installation and removal and power on and off.
[0027] 3. The present invention provides a conductive part. After installation, the conductive truncated cone squeezes the conductive contacts protruding from the upper surface of the conductive block from top to bottom under the action of gravity to avoid loosening and improve the overall conductive effect.
[0028] Other features and advantages of the present invention will be described in the following description, and in part will become apparent from the description, or will be understood by practicing the present invention. The purpose and other advantages of the present invention can be realized and obtained through the structures particularly pointed out in the description and the drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention. In the accompanying drawings:
[0030] Figure 1 This is a schematic side view of the overall structure of an embodiment of the present invention;
[0031] Figure 2 Schematic diagram of the overall side cross-sectional structure of an embodiment of the present invention;
[0032] Figure 3 Schematic diagram of the side cross-sectional structure of a lamp housing according to an embodiment of the present invention;
[0033] Figure 4 This is a schematic diagram of the cross-sectional structure of the pressure rod in an embodiment of the present invention when it is not pressed down;
[0034] Figure 5 Schematic diagram of the cross-sectional structure of the compression rod according to an embodiment of the present invention;
[0035] Figure 6 This is a bottom-view structural diagram of a clamping block in a rotating state according to an embodiment of the present invention;
[0036] Figure 7 This is a schematic diagram of the cross-sectional structure of the upper base column in the lifted state of the clamping portion according to an embodiment of the present invention;
[0037] Figure 8 This is a schematic diagram of the enlarged structure of the conductive frustum in an embodiment of the present invention when it is not powered and moves upward;
[0038] Figure 9 This is a schematic diagram of the enlarged structure of the conductive truncated cone extruded conductive block according to an embodiment of the present invention;
[0039] Figure 10 This is a schematic diagram of an enlarged structure of a conductive frustum after extrusion is completed according to an embodiment of the present invention;
[0040] Figure 11 This is a schematic diagram of an enlarged structure of a conductive contact according to an embodiment of the present invention;
[0041] Figure 12 This is a schematic diagram of an enlarged structure of the conductive portion exit according to an embodiment of the present invention;
[0042] Figure 13 A schematic diagram of a contact structure of an embodiment of the present invention;
[0043] Figure 14 This is a schematic diagram of the wire routing structure of an embodiment of the present invention;
[0044] Figure 15 An exploded view of a lamp and a schematic diagram of the light-emitting body structure according to an embodiment of the present invention;
[0045] Figure numerals: 1. lamp housing; 2. slot; 21. first slot; 22. second slot; 23. third slot; 3. lamp; 4. mounting body; 5. light-emitting body; 6. clamping mechanism; 61. clamping part; 611. upper base column; 612. lower base column; 613. movable column; 6131. limiting block; 614. clamping block; 62. clamping part; 621. groove; 622. locking block; 7. conductive mechanism; 71. fixing rod; 72. pressure rod; 73. elastic member; 74. guide column; 75. movable sleeve; 76. conductive part; 761. extension rod; 762. conductive round table; 763. unlocking round table; 764. conductive slot; 765. connecting slot; 766. storage slot; 767. conductive block. DETAILED DESCRIPTION
[0046] In order to make the purpose, technical solution and advantages of the technical solution of the present invention clearer, the technical solution of the embodiment of the present invention will be clearly and completely described below in conjunction with the drawings of specific embodiments of the present invention. The same figure marks in the drawings represent the same components. It should be noted that the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Based on the described embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0047] Reference Figures 1-15An embodiment of the present invention provides a glare-free uniform light line lamp, comprising a lamp housing 1 connected to a ceiling via a steel frame, a slot 2 being provided at the bottom of the lamp housing 1, a lamp 3 being inserted into the slot 2, the lamp 3 being divided into a mounting body 4 and a light-emitting body 5, the slot 2 being divided from bottom to top into a first slot 21, a second slot 22, and a third slot 23, the first slot 21, the second slot 22, and the third slot 23 being interconnected, the first slot 21 guiding the initial positioning of the light-emitting body 5 to avoid installation offset; the second slot 22 accommodating a locking block 622 and a card block 614 to provide operating space for mechanical locking; the third slot 23 accommodating a rotating card portion 61 to ensure that the vertical movement of the movable column 613 is not interfered with.
[0048] Reference Figures 1-15 The light-emitting body 5 is installed on the lower side of the mounting body 4. The PCB board, the diffusion plate and the light-dispersing plate are installed inside the light-emitting body 5 from top to bottom. The mounting body 4 is connected to the slot 2 through a clamping mechanism 6. The clamping mechanism 6 includes a rotating clamping portion 61 located in the third slot 23 and a clamping portion 62 located on the mounting body 4. The rotating clamping portion 61 includes an upper base column 611 fixed to the top of the third slot 23. The lower side of the upper base column 611 is provided with a lower base column 612. The lower base column 612 is connected to the third slot The inner wall of 23 is fixed, and a movable column 613 is slidably provided inside the upper base column 611 and the lower base column 612. A clamping block 614 is provided at the bottom of the movable column 613, and the clamping block 614 extends into the second slot 22. The cooperation of the rotating clamping portion 61 and the snap-in portion 62 realizes the "push-in-rotate-lock" integrated operation, and the movable column 613 slides up and down in the upper base column 611 and the lower base column 612; the clamping block 614 extends to the second slot 22 so that it automatically aligns with the snap-in portion 62 when the lamp 3 is inserted.
[0049] Reference Figures 1-15 The upper and lower base columns 611 and 612 are provided with corresponding corrugated grooves, and a limit block 6131 is fixed on the surface of the movable column 613. The limit block 6131 slides in the corrugated groove. The corrugated groove is divided into a crest section and a trough section, and the angle between adjacent trough sections is 90 degrees. The bottom of the movable column 613 and the rotating base inside the upper base column 611 are connected by a spring. The rotating base can rotate inside the upper base column 611. The movable column 613 will always extend downward only under the action of the spring, so that the limit block 6131 will always contact the trough section. When the movable column 613 is squeezed upward and the spring is compressed, the limit block 6131 will slide upward from the trough section to the crest section along the trajectory of the corrugated groove of the lower base column 612, and then slide from the crest section to the adjacent trough section under the action of the spring. At this time, the spring is reset, thereby realizing the 90° rotation of the rotating base, the movable column 613 and the clamping block 614.
[0050] Reference Figures 1-15The locking portion 62 includes a groove 621 on the upper surface of the mounting body 4, and two L-shaped locking blocks 622 are relatively fixed on the upper surface of the mounting body 4 on both sides of the groove 621. The locking block 614 is rectangular, and the length of the locking block 614 is greater than the gap between the two locking blocks 622, and the width of the locking block 614 is less than the gap between the two locking blocks 622. The width of the locking block 614 is less than the gap between the locking blocks 622, allowing the locking block 614 to smoothly pass through the gap and enter between the two locking blocks 622 when inserted; the length of the locking block 614 is greater than the gap between the locking blocks 622 to ensure that the locking block 614 cannot be dislodged laterally after 90° rotation, thereby realizing mechanical interlocking, wherein the vertical height of the limit block 6131 rising in the corrugated groove is less than the depth of the second slot 22, and when the limit block 6131 rises from the trough section to the peak section and then falls to the adjacent trough section, the second slot 22 has sufficient height to perform the 90° rotation of the locking block 614.
[0051] Reference Figures 1-15 The locking mechanism 6 is provided with a conductive mechanism 7, which includes two fixed rods 71 fixed to the bottom of the groove 621. A pressure rod 72 slides on the fixed rod 71. The pressure rod 72 is connected to the bottom of the groove 621 by an elastic member 73. The elastic member 73 can be a spring. The pressure rod 72 is set at a position where the block 614 can directly touch and press down when it enters the gap of the locking block 622. A guide column 74 is fixed between the two fixed rods 71, and a movable sleeve 75 slides on the guide column 74. The movable sleeve 75 is connected to the pressure rod 72 by a telescopic rod. The top of the movable sleeve 75 is provided with a conductive part 76, and a fulcrum is provided between the middle of the telescopic rod and the bottom of the groove 621, so that the telescopic rod can be lifted. Due to the action of the lever, after the block 614 passes through the gap of the locking block 622, it will first press the pressure rod 72 downward, and the pressure rod 72 pushes the movable sleeve 75 through the telescopic rod. The movable sleeve 75 rises vertically along the guide column 74, and then the conductive part 76 can be connected to the connecting groove 765 at the lower end of the block 614. The elastic member 73 can use a spring to provide rebound force so that the conductive part 76 is automatically separated during disassembly to avoid the risk of live operation. At the same time, during the continuous downward pressure process, the movable column 613 will also be pushed upward, and then the movable column 613 rotates along the corrugated groove under the action of the limit block 6131, so that the block 614 rotates 90°, and the block 614 is locked on the lower side of the two locking blocks 622.
[0052] Reference Figures 1-15The conductive portion 76 includes an extension rod 761 fixed to the top of the movable sleeve 75, and a conductive round platform 762 is fixed to the top of the extension rod 761. An unlocking round platform 763 is slid on the extension rod 761, and the unlocking round platform 763 is located on the lower side of the conductive round platform 762 and is symmetrically arranged with it. A circular conductive groove 764 is provided on the lower surface of the conductive round platform 762. The inclined surfaces of the conductive round platform 762 and the unlocking round platform 763 can achieve the purpose of quick disassembly. An elastic component is also provided between the unlocking round platform 763 and the movable sleeve 75 to facilitate the downward rebound of the unlocking round platform 763. The conductive portion 76 also includes a connecting groove 765 recessed upward at the center of the bottom of the block 614. The inner wall surface of the connecting groove 765 is reserved for a receiving groove 766, which slides in the receiving groove 766 through an elastic guide. There is a conductive block 767, and the elastic guide member can be a guide column and a spring. The conductive block 767 slides on the guide column. The bottom of the conductive block 767 is connected to the inner wall of the receiving groove 766 by a spring, so that when the conductive block 767 is squeezed, it can slide into the receiving groove 766, and when released, it can be ejected by the spring. The conductive contact on the upper surface of the conductive block 767 is adapted to the conductive groove 764, and the end of the conductive block 767 away from the receiving groove 766 is in a downward inclined shape. After the conductive round table 762 is inserted into the connecting groove 765, its inclined surface will push the conductive block 767 to both sides until the conductive round table 762 slides to the upper side of the conductive block 767. At this time, under the action of the elastic guide member, the conductive block 767 is reset, and then the contact protruding upward on the surface of the conductive block 767 can be inserted The conductive slot 764 is plugged in for conduction. When the card block 614 is inserted but before it rotates, the conductive block 767 has been squeezed into the storage slot 766. If the lamp 3 is continuously lifted, the card block 614 rotates to be mechanically locked. At this time, under the action of gravity, the raised contact of the conductive block 767 is plugged into the conductive slot 764. At this time, a gap appears between the bottom of the card block 614 and the upper surface of the mounting body 4, causing the pressure rod 72 to be lifted up under the action of the elastic member 73, and then the conductive cone 762 will tend to move downward. However, at this time, due to the upward obstruction of the conductive block 767, the stability is greatly improved and power outages will not occur. In the process of a single rotation of the card block 614, that is, a single lifting, the card block 614 will only rotate once to achieve mechanical locking. After the locking is completed and naturally falls, it will rotate again to unlock if it is lifted up again. As the locking block 614 gradually moves toward the top of the second slot 22, the conductive block 767 will also move to the lower side of the unlocking stage 763, forming an excessive lifting situation. When the lifting is no longer performed, the conductive block 767 will still hold the unlocking stage 763 and cannot be plugged into the conductive slot 764. At this time, the unlocking stage 763 can achieve the effect of falling through the pull of the elastic component at its bottom, such as a spring, so that it is no longer held up by the conductive block 767, which facilitates the smooth plugging of the conductive block 767 and the conductive slot 764. At the same time, the width of the lowermost spacing between the inclined surfaces of the two conductive blocks 767 is greater than the maximum diameter of the unlocking stage 763, which facilitates unlocking.
[0053] Reference Figures 1-15 The inner wall of the conductive groove 764 is ringed with elastic contacts, and the protruding conductive contacts on the conductive block 767 can squeeze the elastic contacts to prevent loosening and improve the overall conductive effect. The protruding conductive contacts on the conductive block 767 are electrically connected to the external power supply, and the external power supply is connected to the inside of the conductive block 767 through the steel frame and the wires hidden inside the ceiling, and then connected to the conductive groove 764 through the contacts. The contacts in the conductive groove 764 are electrically connected to the PCB board inside the light-emitting body 5 through wires, and then after the contacts on the conductive block 767 are in contact with the contacts of the conductive groove 764, the external power supply can generate a circuit with the PCB board and then can be energized to achieve the luminous effect of the light-emitting body 5.
[0054] Reference Figures 1-14 The top of the pressure rod 72 and the mounting body 4 are provided with a rollable ball on the side of the groove 621, and the bottom of the block 614 is provided with a circular guide groove. The ball on the top of the pressure rod 72 rolls along the circular guide groove, and the ball converts the sliding friction during the rotation of the block 614 into rolling friction, thereby reducing the friction during rotation; the circular guide groove constrains the ball path, ensuring that the pressure rod 72 always moves vertically, and can also avoid the deviation of the conductive mechanism 7. In addition, the lamp 3 will only be inserted into the lamp housing 1 that is adapted to its length and width, and there will be no situation where the lamp 3 is too large or too small to be inserted or does not match after insertion.
[0055] The specific implementation method is as follows: when in use and during installation, first fix the lamp housing 1 to the ceiling through the steel frame to complete the mechanical fastening operation. Then align the mounting body 4 of the lamp 3 with the slot 2 and insert it: the L-shaped locking block 622 on the mounting body 4 enters the guiding direction of the second slot 22; at this time, the rectangular block 614 passes through the gap of the locking block 622 and moves toward the groove 621. During this insertion process, the bottom of the block 614 first contacts the ball on the top of the pressure rod 72 and continues to press down. The lever action of the telescopic rod pushes the movable sleeve 75 up along the guide column 74, driving the conductive stage 762 to move upward. The inclined surface of the conductive stage 762 squeezes the conductive block 767 in the connecting groove 765, causing it to compress the spring and retract into the receiving groove 766. At this time, the circuit has not yet been connected. When the conductive stage 762 rises to the upper side of the locking block 622, the conductive block 767 is reset, and then the conductive block 767 contacts the conductive slot 764 and is energized.
[0056] After power is applied, the lamp 3 is pushed upward. The bottom of the clamping block 614 continues to press on the pressure rod 72. Simultaneously, the upward thrust of the movable column 613 compresses the spring. The stopper 6131 rises along the trough of the corrugated groove of the lower base column 612 to the peak. Then, under the return force of the spring, it slides into the adjacent trough, rotating the clamping block 614 90°. This rotation causes the length of the clamping block 614 to intersect with the locking block 622 at right angles, achieving mechanical interlocking. When the card block 614 is inserted but before it rotates, the conductive block 767 has been squeezed into the storage groove 766. If the lamp 3 is continuously lifted, the card block 614 rotates to be mechanically locked, and the power is cut off at the same time, and the lamp 3 is released. At this time, under the action of gravity, the raised contact of the conductive block 767 is plugged into the conductive groove 764. At this time, a gap appears between the bottom of the card block 614 and the upper surface of the mounting body 4, causing the pressure rod 72 to be lifted up under the action of the elastic member 73, and then the conductive round table 762 will tend to move downward. However, at this time, due to the upward obstruction of the conductive block 767, the stability is greatly improved and the power outage will not occur. In the process of a single rotation of the card block 614, that is, a single lifting, the card block 6 14 will only rotate once to achieve mechanical locking. After the locking is completed and it naturally falls, it will rotate again to unlock by lifting again. When the locking block 614 gradually moves toward the top of the second slot 22, the conductive block 767 will also move to the lower side of the unlocking round platform 763, forming a situation of excessive lifting. When the lifting is no longer performed, the conductive block 767 will still hold up the unlocking round platform 763 and cannot be plugged into the conductive slot 764. At this time, the unlocking round platform 763 can be pulled down by other elastic components such as a spring at its bottom, so that it is no longer held up by the conductive block 767, which facilitates the smooth plugging of the conductive block 767 and the conductive slot 764.
[0057] To disassemble, manually push up on lamp 3. The contacts on conductive block 767 first disengage from conductive slot 764, disconnecting the circuit. Simultaneously, unlocking boss 763 compresses the spring at its base. Unlocking boss 763 presses conductive block 767 to the sides, retracting it back into storage slot 766. Then, under the action of stopper 6131, lamp 3 rotates another 90°. The locking block 614 can then realign the gap between the locking block 622, facilitating the unlocking of the locking block 614. During the rotation and release of the locking block 614, the conductive block 767 gradually slides toward the lower side of the unlocking protrusion 763. Once the locking block 614 has slid to the top of the second slot 22 or the locking block 614 has completed its rotation, the lamp 3 can be pulled downward. During this process, the conductive block 767 simultaneously drives the unlocking protrusion 763 upward until the unlocking protrusion 763 and the conductive protrusion 762 mate. At this point, the conductive block 767 slides along the mateable inclined surface onto the inclined surface of the conductive protrusion 762, achieving the release effect. The lamp 3 can now be smoothly removed. The rolling engagement of the ball bearings and the circular guide groove throughout the entire process greatly reduces rotational friction. The guide groove also constrains the vertical movement of the pressure rod 72, preventing the conductive mechanism 7 from deflecting.
[0058] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. A glare-free uniform light line light, characterized in that: The invention comprises a lamp housing (1) connected to a ceiling via a steel frame, a slot (2) being provided at the bottom of the lamp housing (1), a lamp (3) being inserted into the slot (2), the lamp (3) being divided into a mounting body (4) and a light-emitting body (5), the light-emitting body (5) being mounted on the lower side of the mounting body (4), the mounting body (4) being connected to the slot (2) via a clamping mechanism (6), and a conductive mechanism (7) being provided in the clamping mechanism (6).
2. The glare-free uniform light line light according to claim 1, characterized in that: The slot (2) is divided into a first slot (21), a second slot (22) and a third slot (23) from bottom to top, and the first slot (21), the second slot (22) and the third slot (23) are interconnected.
3. The glare-free uniform light line light according to claim 2, characterized in that: The clamping mechanism (6) comprises a rotating clamping portion (61) located in the third slot (23) and a clamping portion (62) located on the mounting body (4); the rotating clamping portion (61) comprises an upper base column (611) fixed to the top of the third slot (23); a lower base column (612) is provided on the lower side of the upper base column (611); the lower base column (612) is fixed to the inner wall of the third slot (23); a movable column (613) is slidably provided inside the upper base column (611) and the lower base column (612); a clamping block (614) is provided at the bottom of the movable column (613); and the clamping block (614) extends into the second slot (22).
4. The glare-free uniform light line light according to claim 3, characterized in that: Corrugated grooves corresponding to each other are reserved between the upper base column (611) and the lower base column (612), and a limiting block (6131) is fixed on the surface of the movable column (613), and the limiting block (6131) slides in the corrugated groove.
5. The glare-free uniform light line light according to claim 3, characterized in that: The snap-in portion (62) comprises a groove (621) on the upper surface of the mounting body (4); two L-shaped locking blocks (622) are relatively fixed on the upper surface of the mounting body (4) at two sides of the groove (621); the snap-in block (614) is rectangular; the length of the snap-in block (614) is greater than the gap between the two locking blocks (622); and the width of the snap-in block (614) is less than the gap between the two locking blocks (622).
6. The glare-free uniform light line light according to claim 5, characterized in that: The conductive mechanism (7) comprises two fixed rods (71) fixed at the bottom of the groove (621), a pressure rod (72) sliding on the fixed rods (71), the pressure rod (72) and the bottom of the groove (621) being connected via an elastic member (73), a guide column (74) being fixed between the two fixed rods (71), a movable sleeve (75) sliding on the guide column (74), the movable sleeve (75) and the pressure rod (72) being connected via a telescopic rod, and a conductive portion (76) being provided on the top of the movable sleeve (75).
7. The glare-free uniform light line light according to claim 6, characterized in that: The conductive portion (76) includes an extension rod (761) fixed to the top of the movable sleeve (75), a conductive truncated cone (762) fixed to the top of the extension rod (761), an unlocking truncated cone (763) sliding on the extension rod (761), the unlocking truncated cone (763) being located on the lower side of the conductive truncated cone (762) and symmetrically arranged therewith, and a circular conductive groove (764) being provided on the lower surface of the conductive truncated cone (762).
8. The glare-free uniform light line light according to claim 7, characterized in that: The conductive portion (76) further comprises a connection groove (765) concavely arranged upward at the center of the bottom of the clamping block (614); a receiving groove (766) is reserved on the inner wall surface of the connection groove (765); a conductive block (767) slides in the receiving groove (766) via an elastic guide member; and a conductive contact on the upper surface of the conductive block (767) is adapted to the conductive groove (764).
9. The glare-free uniform light line light according to claim 8, characterized in that: The inner wall surface of the conductive groove (764) is provided with elastic contacts.
10. The glare-free uniform light line light according to claim 6, characterized in that: Ball bearings are provided at the top of the pressure rod (72) and the peripheral side of the mounting body (4) located in the groove (621), and a circular guide groove is provided at the bottom of the clamping block (614), and the ball bearings at the top of the pressure rod (72) roll along the circular guide groove.
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