Striped glass ceiling lamp

By designing a liftable first and second striped glass in the striped glass chandelier, and utilizing transmission and drive components to adjust the softness of the light, the problem of existing chandeliers being unable to adjust the softness of the light is solved, meeting the lighting needs of different scenarios and providing decorative effect variations.

CN224188461UActive Publication Date: 2026-05-01DONGGUAN HONGTAI LIGHTING TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
DONGGUAN HONGTAI LIGHTING TECH CO LTD
Filing Date
2025-06-23
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

Existing striped glass chandeliers cannot adjust the softness of the light, thus failing to meet the needs of different lighting scenarios.

Method used

Design a striped glass chandelier by setting up a first and second striped glass that can be raised and lowered inside the housing, and using transmission and drive components to make the two rise and fall alternately to change the softness of the light.

Benefits of technology

It enables adjustment of light softness to meet the lighting needs of different work scenarios, and changes in decorative effect can be achieved by switching different decorative patterns.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a stripe glass ceiling lamp, which relates to the technical field of ceiling lamps and comprises a shell, first stripe glass, second stripe glass and a transmission element. The first striped glass and the second striped glass which are different in roughness are arranged between the shell and the lighting element, and the transmission ring of the transmission element is in transmission connection with the first striped glass and the second striped glass. According to the utility model, the structure is simple, and the first stripe glass and the second stripe glass are driven by the driving element to alternately lift, so that the glass with different roughness can shield the lighting element, and the softness of the light output by the lighting element can be adjusted to meet the light requirements of different working scenes; meanwhile, the surfaces of the first stripe glass and the second stripe glass can be covered with different decorative patterns, and therefore switching of different decorative effects can be achieved when the softness of light is adjusted.
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Description

Technical Field

[0001] This utility model relates to the field of chandelier technology, and in particular to a striped glass chandelier. Background Technology

[0002] A striped glass chandelier is a lighting fixture whose core feature is the use of striped glass as a lampshade. The striped design on the glass surface refracts and diffuses light, creating a soft, layered light and shadow effect. This design not only makes the light distribution more even and avoids glare, but also adds an artistic touch and enhances the aesthetics of the space through the striped pattern.

[0003] Traditional chandeliers typically feature a single striped glass shade, meaning that once a specific chandelier model is selected, the roughness of the striped glass in the shade is fixed, resulting in no adjustment for the softness of the light. However, in work environments requiring strong lighting, users may want to reduce the softness of the light to increase brightness, while in more relaxing atmospheres, a softer light effect is needed. Therefore, the existing single striped glass shade limits the diversity of light softness, preventing users from adjusting the lighting effect according to specific situations. Utility Model Content

[0004] The main purpose of this invention is to propose a striped glass chandelier that aims to solve the technical problem of existing striped glass chandeliers being unable to adjust the softness of the light.

[0005] To achieve the above objectives, this utility model proposes a striped glass chandelier, comprising: a housing for mounting a lighting element, a driving element disposed on the housing, and the lighting element located below the bottom surface of the housing; a first striped glass, coaxially disposed within the housing cavity and capable of rising and falling along the housing axial direction; a second striped glass, coaxially disposed within the first striped glass cavity and capable of rising and falling along the housing axial direction, the lighting element located on the central axis of the second striped glass, the first and second striped glass having different light diffusion effects; and a transmission element, including a transmission ring, the driving element being connected to the transmission ring and driving the transmission ring to rotate, the transmission ring having uniformly arranged transmission protrusions along its circumference; when the transmission ring rotates, the transmission protrusions push the first and second striped glass to rise and fall alternately, so that one of the first or second striped glass descends below the bottom surface of the housing, thereby blocking the circumference of the lighting element.

[0006] Optionally, a first guide protrusion is formed on the inner peripheral wall of the first striped glass; at least two first connecting plates are arranged circumferentially at the top of the second striped glass, and a second guide protrusion is provided on the inner side wall of the first connecting plate, the second guide protrusion abutting against the corresponding transmission protrusion; the first guide protrusion passes through the gap between adjacent first connecting plates and abuts against the corresponding transmission protrusion; adjacent transmission protrusions form grooves, and when the first guide protrusion is located at the top of the transmission protrusion, the second guide protrusion is located at the bottom of the groove between the transmission protrusions.

[0007] Optionally, a third guide protrusion is provided on the outer peripheral wall of the first striped glass; a first guide groove is provided on the inner peripheral wall of the housing along the axial direction, and the third guide protrusion is slidably installed in the first guide groove.

[0008] Optionally, at least two second connecting plates are spaced apart circumferentially on the top of the first striped glass, with the first guide protrusion and the third guide protrusion located on the inner and outer sidewalls of the second connecting plates, respectively; a second guide groove is provided axially on the inner circumferential wall of the housing, and the second guide groove and the first guide groove are distributed alternately on the inner circumferential wall of the housing; a fourth guide protrusion is provided on the outer sidewall of the first connecting plate, and the fourth guide protrusion protrudes into the second guide groove through the gap between adjacent second connecting plates.

[0009] Optionally, the fourth guide protrusion is semi-cylindrical, and the outer diameter of the fourth guide protrusion gradually increases from the top to the bottom.

[0010] Optionally, the transmission element also includes an adapter ring, a linkage plate, and a transmission shaft. The adapter ring and the transmission ring are coaxially arranged. The bottom end of the adapter ring has several lower protrusions evenly arranged circumferentially. These lower protrusions are staggered above the transmission protrusions, and the lowest point of the lower protrusions is aligned with the bottom of the groove between the transmission protrusions. The highest point of the transmission protrusions is aligned with the highest point of the gap between the lower protrusions. The inner walls of both the adapter ring and the transmission ring are connected to the linkage plate. The transmission shaft is located at the center of the linkage plate and is connected to the drive element.

[0011] Optionally, a top cover is installed on the top of the housing, and the drive element is installed on the top cover. The power output shaft of the drive element passes through the top cover and is connected to the transmission ring. Several lifting lugs are provided on the top cover for lifting the top cover and the housing.

[0012] Optionally, the driving element is a servo motor, the top cover has a first through hole in the center, the transmission shaft of the transmission element has a shaft hole, the power output shaft of the servo motor passes through the first through hole and is installed in the shaft hole; the servo motor is provided with several second through holes, the top cover has several first mounting holes, the servo motor is fixed by bolt assembly, the bolt assembly passes through the second through holes and connects to the first mounting holes.

[0013] Optionally, the top cover is provided with a number of third through holes along the circumference, and the number of third through holes are evenly distributed along the circumference; the top surface of the housing is provided with a number of second mounting holes, and the positions of the number of second mounting holes correspond one-to-one with the third through holes; the top cover is fixed by a locking member, and the locking member passes through the third through holes and connects with the second mounting holes.

[0014] Optionally, a fourth through hole is provided on the top cover, and a wiring hole is provided on the linkage plate, with the fourth through hole aligned with the wiring hole.

[0015] This utility model discloses a striped glass chandelier. It utilizes a first striped glass and a second striped glass with different roughnesses, positioned between the housing and the lighting element. A transmission ring of a transmission element connects the first and second striped glass, and a drive element connects to the transmission element, allowing the first and second striped glass to alternately rise and fall. In use, initially, the first striped glass protrudes below the bottom surface of the housing, obstructing the circumference of the lighting element and softening the light. When switching the softness, the drive element is controlled to raise the first striped glass while the second striped glass descends, switching the obstruction from the first to the second striped glass. The different roughnesses of the first and second striped glass allow for adjustment of the light's softness. To return the light to its initial softness, the drive element moves both the first and second striped glass back to their initial positions. This invention has a simple structure. By driving the first and second striped glass to rise and fall alternately through a driving element, different roughnesses of glass can be used to block the lighting element, thereby adjusting the softness of the light output by the lighting element to meet the lighting needs of different work scenarios. At the same time, the surfaces of the first and second striped glass can be covered with different decorative patterns, so that different decorative effects can be switched when adjusting the softness of the light. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of this utility model 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 utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0017] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0018] Figure 2 This is an exploded view of the present invention;

[0019] Figure 3 for Figure 2 A side view diagram;

[0020] Figure 4 This is a schematic diagram showing the relative positional relationship between the transmission element, the first stripe glass, and the second stripe glass in the initial state.

[0021] Figure 5 A schematic diagram of the structure of the first and second striped glass;

[0022] Figure 6 This is a schematic diagram of the shell structure;

[0023] Figure 7 This is a schematic diagram of the transmission element.

[0024] Figure 8 This is a top view of the transmission components;

[0025] Figure 9 This is a schematic diagram of the top cover structure;

[0026] Figure 10 This is a schematic diagram of the driving element.

[0027] Explanation of icon numbers:

[0028] 1. Top cover; 11. Lifting lug; 12. First through hole; 13. First mounting hole; 14. Third through hole; 15. Fourth through hole; 2. Drive element; 21. Second through hole; 3. Housing; 31. First guide groove; 32. Second guide groove; 33. Second mounting hole; 4. Transmission element; 41. Adapter ring; 411. Lower protrusion; 42. Transmission ring; 421. Transmission protrusion; 43. Mounting plate; 44. Transmission shaft; 441. Shaft hole; 45. Wiring hole; 5. First striped glass; 51. Second connecting plate; 52. Third guide protrusion; 53. First guide protrusion; 6. Second striped glass; 61. First connecting plate; 62. Fourth guide protrusion; 63. Second guide protrusion; 7. Lighting element.

[0029] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0030] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0031] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicators will also change accordingly.

[0032] Furthermore, the use of terms such as "first" and "second" in this utility model is for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the term "and / or" throughout the text includes three solutions; taking A and / or B as an example, it includes technical solution A, technical solution B, and a technical solution that simultaneously satisfies A and B. Furthermore, the technical solutions of various embodiments can be combined with each other, provided that they are feasible for those skilled in the art. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.

[0033] This utility model proposes a striped glass chandelier.

[0034] In the embodiments of this utility model, such as Figures 1-5 The illustrated striped glass chandelier includes a housing 3, a first striped glass 5, a second striped glass 6, and a transmission element 4. The housing 3 is used to mount a lighting element 7, and a driving element 2 is provided on the housing 3, with the lighting element 7 located below the bottom surface of the housing 3. The first striped glass 5 is coaxially disposed within the cavity of the housing 3 and can be raised and lowered along the axial direction of the housing 3. The second striped glass 6 is coaxially disposed within the cavity of the first striped glass 5 and can be raised and lowered along the axial direction of the housing 3. The lighting element 7 is located on the central axis of the second striped glass 6. The first striped glass 5 and the second striped glass 6 have different light diffusion effects. The transmission element 4 includes a transmission ring 42, and the driving element 2 is connected to the transmission ring 42 and drives the transmission ring 42 to rotate. The transmission ring 42 is uniformly provided with transmission protrusions 421 along its circumference. When the transmission ring 42 rotates, the transmission protrusions 421 push the first striped glass 5 and the second striped glass 6 to rise and fall alternately, so that one of the first striped glass 5 or the second striped glass 6 descends below the bottom surface of the housing 3, thereby blocking the circumference of the lighting element 7.

[0035] In this embodiment, the first striped glass 5 and the second striped glass 6 have different light-diffusing effects, specifically, the first striped glass 5 and the second striped glass 6 have different light transmittance; this can be achieved by using glass materials with different light transmittance as the first striped glass 5 and the second striped glass 6. Furthermore, stripe patterns with different surface roughness can be formed on the outer surfaces of the first striped glass 5 and the second striped glass 6. These stripes have different frosted textures, which refract and diffuse light, preventing the light from concentrating in the main lighting area, thus making the light distribution more uniform in space and improving the softness of the light. Additionally, the areas of the first striped glass 5 and the second striped glass 6 used to shield the lighting element 7 can also be decorated with different artistic patterns.

[0036] Specifically, by setting a first striped glass 5 and a second striped glass 6 with different roughness between the housing 3 and the lighting element 7, and driving the first striped glass 5 and the second striped glass 6 through the transmission ring 42 of the transmission element 4, and then driving the first striped glass 5 and the second striped glass 6 through the drive element 2, the first striped glass 5 and the second striped glass 6 can be driven to rise or fall alternately. In use, in the initial state, the first striped glass 5 protrudes below the bottom surface of the housing 3 and blocks the circumference of the lighting element 7, thereby softening the light from the lighting element 7. When it is necessary to switch the softness, by controlling the action of the drive element 2, the first striped glass 5 rises, and at the same time, the second striped glass 6 falls, so that the first striped glass 5 blocking the lighting element 7 is replaced by the second striped glass 6. The first striped glass 5 and the second striped glass 6 have different roughness, thereby realizing the adjustment of the softness of the light from the lighting element 7. When it is necessary to switch the light from the lighting element 7 back to the initial softness, the drive element 2 drives the first striped glass 5 and the second striped glass 6 back to the initial position. This utility model has a simple structure. The driving element 2 drives the first striped glass 5 and the second striped glass 6 to rise and fall alternately, thereby achieving the blocking of the lighting element 7 by glass with different roughness, realizing the adjustment of the softness of the light output by the lighting element 7 to meet the lighting needs of different work scenarios. At the same time, the surfaces of the first striped glass 5 and the second striped glass 6 can be covered with different decorative patterns, so that different decorative effects can be switched when adjusting the softness of the light.

[0037] Optionally, a first guide protrusion 53 is provided on the inner peripheral wall of the first striped glass 5; at least two first connecting plates 61 are provided at circumferential intervals on the top of the second striped glass 6, and a second guide protrusion 63 is provided on the inner side wall of the first connecting plate 61, the second guide protrusion 63 abuts against the corresponding transmission protrusion 421; the first guide protrusion 53 passes through the gap between adjacent first connecting plates 61 and abuts against the corresponding transmission protrusion 421; adjacent transmission protrusions 421 form grooves, and when the first guide protrusion 53 is located at the top of the transmission protrusion 421, the second guide protrusion 63 is located at the bottom of the groove between the transmission protrusions 421.

[0038] Specifically, both the first striped glass 5 and the second striped glass 6 are annular. The first guide protrusion 53 protrudes into the annular cavity of the second striped glass 6 and abuts against the transmission protrusion 421 located above the second striped glass 6. This allows the transmission protrusion 421 on the circumferential edge of the transmission ring 42 to alternately abut against and push the first guide protrusion 53 to rise and fall when the transmission element 4 drives the transmission ring 42 to rotate. When the first guide protrusion 53 is at the highest point of the transmission protrusion 421, the first striped glass 5 is completely contained within the cavity of the housing 3. When the first guide protrusion 53 is at the bottom of the groove between the transmission protrusions 421, the first striped glass 5 protrudes downwards beyond the bottom surface of the housing 3, blocking the circumferential light of the lighting element 7. This causes the light from the lighting element 7 to be diffused circumferentially through the first striped glass 5, becoming softer. Similarly, the second guide protrusion 63 moves in the same way as the first guide protrusion 53, but the second guide protrusion 63 and the first guide protrusion 53 are staggered. When the first guide protrusion 53 is located at the top of the transmission protrusion 421, the second guide protrusion 63 is located at the bottom of the groove between the transmission protrusions 421. At this time, the first striped glass 5 is housed in the inner cavity of the housing 3, and the bottom end of the second striped glass 6 protrudes below the bottom surface of the housing 3, thus blocking the circumference of the lighting element 7, allowing light to pass through the second striped glass 6. Conversely, when the first guide protrusion 53 is located at the bottom of the groove between the transmission protrusions 421, the second guide protrusion 63 is located at the top of the transmission protrusion 421. At this time, the bottom end of the first striped glass 5 protrudes below the bottom surface of the housing 3, thus blocking the circumference of the lighting element 7, and the second striped glass 6 is completely housed in the inner cavity of the housing 3.

[0039] Preferably, the first guide protrusion 53 and the second guide protrusion 63 are either spherical or cylindrical, and the edge of the transmission protrusion 421 has rounded corners to reduce the contact area between the first guide protrusion 53 and the second guide protrusion 63 and the transmission protrusion 421, thereby reducing the friction between the first guide protrusion 53 and the second guide protrusion 63, so that the first striped glass 5 and the second striped glass 6 can be more easily pushed up and down by the transmission protrusion 421.

[0040] In this embodiment, as Figure 5 and Figure 6 As shown, a third guide protrusion 52 is provided on the outer peripheral wall of the first striped glass 5; a first guide groove 31 is provided on the inner peripheral wall of the housing 3 along the axial direction, and the third guide protrusion 52 is slidably installed in the first guide groove 31.

[0041] Specifically, the first guide groove 31 guides the third guide protrusion 52, ensuring that the third guide protrusion 52 can only rise or fall along the first guide groove 31, thereby preventing the first striped glass 5 from rotating with the transmission ring 42. Furthermore, the end wall of the first guide groove 31 supports the third guide protrusion 52, so that when the first guide protrusion 53 is located at the bottom of the groove between the transmission protrusions 421, the third guide protrusion 52 contacts the end wall of the bottom of the first guide groove 31, thus bearing the weight of the first striped glass 5. This ensures that the transmission element 4 only needs to bear the weight of either the first striped glass 5 or the second striped glass 6 at any given time during use.

[0042] Specifically, the first connecting plate 61 is spaced apart, so that only the part of the second striped glass 6 used to block the lighting element 7 is a complete ring. This can reduce the material used in the second striped glass 6 as a whole, saving costs and reducing the weight of the second striped glass 6, thus requiring less power to raise and lower the second striped glass 6.

[0043] In this embodiment, as Figure 5 and Figure 6 As shown, at least two second connecting plates 51 are spaced apart circumferentially on the top of the first striped glass 5. The first guide protrusion 53 and the third guide protrusion 52 are located on the inner and outer sidewalls of the second connecting plates 51, respectively. A second guide groove 32 is provided axially on the inner peripheral wall of the housing 3. The second guide groove 32 and the first guide groove 31 are distributed alternately on the inner peripheral wall of the housing 3 circumferentially. A fourth guide protrusion 62 is provided on the outer sidewall of the first connecting plate 61. The fourth guide protrusion 62 protrudes into the second guide groove 32 through the gap between adjacent second connecting plates 51.

[0044] Specifically, the second guide groove 32 is used to limit and guide the fourth guide protrusion 62, so that the fourth guide protrusion 62 can only move up and down along the second guide groove 32, preventing the second striped glass 6 from rotating with the transmission element 4.

[0045] Meanwhile, in this embodiment, the first connecting plate 61 and the second connecting plate 51 should have sufficient length so that when the first striped glass 5 and the second striped glass 6 are switched between lifting and lowering, the first guide protrusion 53 and the third guide protrusion 52 will not interfere with the second striped glass 6, and the second guide protrusion 63 and the fourth guide protrusion 62 will not interfere with the first striped glass 5.

[0046] Preferably, the fourth guide protrusion 62 and the third guide protrusion 52 are both semi-cylindrical, and the first guide groove 31 and the second guide groove 32 are both arc-shaped grooves.

[0047] Optionally, the fourth guide protrusion 62 is semi-cylindrical, and the outer diameter of the fourth guide protrusion 62 gradually increases from the top to the bottom. The first connecting plate 61 and the second connecting plate 51 can be made of materials different from the first striped glass 5 and the second striped glass 6, or the first connecting plate 61 can be made of a certain length to ensure that the first connecting plate 61 has a certain elastic margin in the length direction. There is a gap between the first striped glass 5 and the second striped glass 6.

[0048] Specifically, the fourth guide protrusion 62 is shaped like a smaller top and a larger bottom, and the gap between the first striped glass 5 and the second striped glass 6 provides an installation allowance. During installation, the first connecting plate 61 is first inserted from the bottom end of the main body of the second striped glass 6. Since the first connecting plate 61 should have a certain elastic allowance, when the fourth guide protrusion 62 enters the inner cavity of the first striped glass 5, the first connecting plate 61 deforms to allow the fourth guide protrusion 62 to enter the inner cavity of the first striped glass 5. When the fourth guide protrusion 62 passes through the annular part of the first striped glass 5 and enters the gap between the second connecting plates 51, the first connecting plate 61 springs back, allowing the fourth guide protrusion 62 to pass through the gap between the second connecting plates 51.

[0049] In this embodiment, as Figures 1-8 As shown, the transmission element 4 also includes an adapter ring 41, a linkage plate, and a transmission shaft 44. The adapter ring 41 is coaxially arranged with the transmission ring 42. The bottom end of the adapter ring 41 is evenly provided with a plurality of lower protrusions 411 along the circumference. The plurality of lower protrusions 411 are staggered above the transmission protrusions 421, and the lowest point of the lower protrusions 411 is aligned with the bottom of the groove between the transmission protrusions 421. The highest point of the transmission protrusions 421 is aligned with the highest point of the gap between the lower protrusions 411. The inner walls of the adapter ring 41 and the transmission ring 42 are both connected to the linkage plate. The transmission shaft 44 is provided at the center of the linkage plate and is connected to the drive element 2.

[0050] Specifically, the transmission ring 42 and the adapter ring 41 are connected together via a linkage plate.

[0051] More specifically, the inner peripheral walls of the transmission protrusion 421 and the lower protrusion 411 are interlocked with the peripheral wall of the linkage plate, and a wave groove for mounting the first guide protrusion 53 and the second guide protrusion 63 is formed between the transmission protrusion 421 and the lower protrusion 411.

[0052] During installation, after the first striped glass 5 and the second striped glass 6 are assembled, the housing 3 is fitted onto the outside of the first striped glass 5 from bottom to top, so that the third guide protrusion 52 and the fourth guide protrusion 62 are located in the first guide groove 31 and the second guide groove 32 respectively. Finally, the transmission element 4 is placed between the first connecting plate 61 and the second connecting plate 51 from above the second striped glass 6, so that the first guide protrusion 53 and the second guide protrusion 63 are staggered at the crests and troughs of the wave groove.

[0053] In this embodiment, as Figures 1-10 As shown, a top cover 1 is installed on the top of the housing 3, and a drive element 2 is installed on the top cover 1. The power output shaft of the drive element 2 passes through the top cover 1 and is connected to the transmission ring 42. Several lifting lugs 11 are provided on the top cover 1 for lifting the top cover 1 and the housing 3. The drive element 2 is a servo motor. A first through hole 12 is opened in the center of the top cover 1. A shaft hole 441 is opened on the transmission shaft 44 of the transmission element 4. The power output shaft of the servo motor passes through the first through hole 12 and is installed in the shaft hole 441. Several second through holes 21 are provided on the servo motor, and several first mounting holes 13 are opened on the top cover 1. The servo motor is fixed by a bolt assembly, which passes through the second through holes 21 and is connected to the first mounting holes 13. The top cover 1 is provided with a number of third through holes 14 along the circumference, and the number of third through holes 14 are evenly distributed along the circumference; the top surface of the housing 3 is provided with a number of second mounting holes 33, and the positions of the number of second mounting holes 33 correspond one-to-one with the third through holes 14; the top cover 1 is fixed by a locking member, and the locking member passes through the third through holes 14 and connects with the second mounting holes 33.

[0054] Specifically, servo motors have advantages such as low mass and high transmission precision.

[0055] Specifically, the lifting lug 11 is used to connect with components such as hanging ropes and chains to suspend the entire striped glass chandelier from the ceiling. The top cover 1 and the housing 3 are connected and fixed by a locking device, preferably a screw. The second mounting hole 33 is a threaded hole, and the locking device passes through the third through hole 14 and is threadedly connected to the second mounting hole 33. The power output shaft of the servo motor passes through the first through hole 12 and is fixedly connected to the shaft hole 441, so that the power output shaft of the servo motor can drive the drive shaft 44 to rotate. The first mounting hole 13 is also a threaded hole, and the bolt assembly passes through the second through hole 21 on the servo motor and is threadedly connected to the first mounting hole 13.

[0056] In this embodiment, a fourth through hole 15 is provided on the top cover 1, and a wiring hole 45 is provided on the linkage plate. The fourth through hole 15 and the wiring hole 45 are aligned. The wiring hole 45 is arc-shaped, and the arc of the wiring hole 45 does not exceed π. Correspondingly, the arc of the linkage plate rotation does not exceed π, thereby ensuring that the wires passing through the wiring hole 45 will not be rotated when the linkage plate rotates. Correspondingly, the servo motor realizes the alternating raising and lowering of the first striped glass 5 and the second striped glass 6 by rotating forward and backward, and the arc of the forward and reverse rotation of the servo motor does not exceed π. In the initial state, the first guide protrusion 53 is located at the bottom of the groove between the transmission protrusions 421, and the second guide protrusion 63 is located at the top of the transmission protrusions 421. When switching the second striped glass 6 to block the lighting element 7, the servo rotates forward, causing the transmission ring 42 to rotate forward, thereby causing the transmission protrusions 421 to push the first guide protrusion 53 up to the top of the transmission protrusions 421, and the second guide protrusion 63 to descend to the bottom of the groove between the transmission protrusions 421. When it is necessary to switch to the first striped glass 5 to block the lighting element 7, the servo rotates in reverse, causing the first guide protrusion 53 to descend to the bottom of the groove between the transmission protrusions 421, and the second guide protrusion 63 to be pushed to the top of the transmission protrusions 421.

[0057] In this embodiment, the lighting element 7 can be installed at the bottom of the drive shaft 44 so as to rotate with the drive shaft 44, or it can be suspended between the lines within the annular space formed by the second striped glass 6.

[0058] The above description is only a preferred embodiment of the present utility model and does not limit the patent scope of the present utility model. All equivalent structural transformations made under the inventive concept of the present utility model using the contents of the present utility model specification and drawings, or direct / indirect applications in other related technical fields, are included within the patent protection scope of the present utility model.

Claims

1. A striped glass chandelier, characterized in that, include: A housing (3) is used to install a lighting element (7), a driving element (2) is provided on the housing (3), and the lighting element (7) is located below the bottom surface of the housing (3); The first striped glass (5) is coaxially disposed in the inner cavity of the housing (3) and can be raised and lowered along the axial direction of the housing (3); The second striped glass (6) is coaxially disposed in the inner cavity of the first striped glass (5) and can be raised and lowered along the axial direction of the housing (3). The lighting element (7) is located on the central axis of the second striped glass (6). The first striped glass (5) and the second striped glass (6) have different light diffusion effects. The transmission element (4) includes a transmission ring (42). The driving element (2) is connected to the transmission ring (42) and drives the transmission ring (42) to rotate. The transmission ring (42) is uniformly provided with transmission protrusions (421) along the circumference. When the transmission ring (42) rotates, the transmission protrusions (421) push the first striped glass (5) and the second striped glass (6) to rise and fall alternately, so that one of the first striped glass (5) or the second striped glass (6) falls below the bottom surface of the housing (3), thereby forming a circumferential shielding of the lighting element (7).

2. A striped glass chandelier as described in claim 1, characterized in that, A first guide protrusion (53) is provided on the inner peripheral wall of the first striped glass (5); The top of the second striped glass (6) is provided with at least two first connecting plates (61) spaced apart along the circumference. The inner sidewall of the first connecting plate (61) is provided with a second guide protrusion (63). The second guide protrusion (63) abuts against the corresponding transmission protrusion (421). The first guide protrusion (53) passes through the gap between adjacent first connecting plates (61) and abuts against the corresponding transmission protrusion (421). The adjacent transmission protrusions (421) are formed with grooves. When the first guide protrusion (53) is located at the top of the transmission protrusion (421), the second guide protrusion (63) is located at the bottom of the groove between the transmission protrusions (421).

3. A striped glass chandelier as described in claim 2, characterized in that, A third guide protrusion (52) is provided on the outer peripheral wall of the first striped glass (5); The inner peripheral wall of the housing (3) is provided with a first guide groove (31) along the axial direction, and the third guide protrusion (52) is slidably installed in the first guide groove (31).

4. A striped glass chandelier as described in claim 3, characterized in that, At least two second connecting plates (51) are provided at circumferential intervals on the top of the first striped glass (5), and the first guide protrusion (53) and the third guide protrusion (52) are located on the inner side wall and the outer side wall of the second connecting plate (51), respectively. The inner peripheral wall of the housing (3) is provided with a second guide groove (32) along the axial direction. The second guide groove (32) and the first guide groove (31) are distributed alternately along the circumferential direction on the inner peripheral wall of the housing (3). A fourth guide protrusion (62) is provided on the outer side wall of the first connecting plate (61). The fourth guide protrusion (62) protrudes into the second guide groove (32) through the gap between adjacent second connecting plates (51).

5. A striped glass chandelier as described in claim 4, characterized in that, The fourth guide protrusion (62) is semi-cylindrical, and the outer diameter of the fourth guide protrusion (62) gradually increases from the top to the bottom.

6. A striped glass chandelier as described in claim 1, characterized in that, The transmission element (4) further includes an adapter ring (41), a linkage plate (43), and a transmission shaft (44). The adapter ring (41) is coaxially arranged with the transmission ring (42). The bottom end of the adapter ring (41) is evenly provided with a plurality of lower protrusions (411) along the circumferential direction. The plurality of lower protrusions (411) are staggered above the transmission protrusions (421), and the lowest point of the lower protrusions (411) is aligned with the bottom of the groove between the transmission protrusions (421). The highest point of the transmission protrusions (421) is aligned with the highest point of the gap between the lower protrusions (411). The inner walls of the adapter ring (41) and the transmission ring (42) are connected to the linkage plate (43). The center of the linkage plate (43) is provided with a transmission shaft (44), which is connected to the drive element (2) in a transmission connection.

7. A striped glass chandelier as described in claim 6, characterized in that, The top of the housing (3) is fitted with a top cover (1), the drive element (2) is mounted on the top cover (1), and the power output shaft of the drive element (2) passes through the top cover (1) and is connected to the transmission ring (42) for transmission. The top cover (1) is provided with a number of lifting lugs (11), which are used to lift the top cover (1) and the shell (3).

8. A striped glass chandelier as described in claim 7, characterized in that, The driving element (2) is a servo motor. The top cover (1) has a first through hole (12) in the center. The transmission shaft (44) of the transmission element (4) has a shaft hole (441). The power output shaft of the servo motor passes through the first through hole (12) and is installed in the shaft hole (441). The servo motor is provided with several second through holes (21), and the top cover (1) is provided with several first mounting holes (13). The servo motor is fixed by a bolt assembly, which passes through the second through holes (21) and connects to the first mounting holes (13).

9. A striped glass chandelier as described in claim 7, characterized in that, The top cover (1) is provided with a plurality of third through holes (14) along the circumferential direction, and the plurality of third through holes (14) are evenly distributed along the circumferential direction; the top surface of the shell (3) is provided with a plurality of second mounting holes (33), and the positions of the plurality of second mounting holes (33) correspond one-to-one with the positions of the third through holes (14); The top cover (1) is fixed by a locking member, which passes through the third through hole (14) and connects to the second mounting hole (33).

10. A striped glass chandelier as described in claim 7, characterized in that, The top cover (1) has a fourth through hole (15), and the linkage plate (43) has a wiring hole (45). The fourth through hole (15) is aligned with the wiring hole (45).