A glass steel bus shelter and its using method
By introducing illuminated shelter frames, energy-saving windows, and control mechanisms into the bus shelters, and utilizing rainwater to drive rotating blades to adjust light transmittance, the lighting problem of the bus shelters during daytime rain has been solved, achieving dynamic supplemental lighting and energy-saving effects.
Patent Information
- Application Number
- CN202510856676.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-25
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2045-06-25
AI Technical Summary
The existing intelligent lighting system in bus shelters cannot be turned on in time when it rains during the day, and the brightness adjustment is not precise enough, resulting in poor lighting effect and serious waste of resources.
Design a fiberglass bus shelter that uses a illuminated frame, energy-saving windows, and a control mechanism. It utilizes rainwater to drive rotating blades to adjust light transmittance, and combines rubber airbags and photovoltaic panels for active adjustment to achieve dynamic supplemental lighting and energy saving.
It automatically adjusts the light intensity in rainy weather, reduces the time the lights are on, achieves energy-saving effects, and adapts to different weather conditions to provide a comfortable lighting environment.
Smart Images

Figure CN120537447B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of fiberglass bus shelters and energy-saving windows, and particularly to a fiberglass bus shelter and its usage method. Background Technology
[0002] Bus shelters, as an important infrastructure of urban public transportation systems, provide passengers with shelter from wind, rain, and sun while waiting for buses, subways, and other modes of transportation. Common materials for bus shelters include fiberglass, stainless steel, aluminum alloy, galvanized steel sheet, and concrete, each with different properties to suit various usage conditions. Among them, fiberglass, due to its high plasticity, is highly advantageous for manufacturing bus shelters with diverse shapes and unique designs. Designers can fully unleash their creativity to design bus shelters in various artistic and modern forms, such as streamlined and biomimetic shapes, making them not only functional buildings but also unique urban landscape features. Furthermore, fiberglass has excellent corrosion resistance, remaining uncorroded for a long time even in harsh climatic conditions such as acid rain and humid environments, significantly extending the service life of the bus shelters. Moreover, its relatively light weight makes installation and transportation easier, reducing construction difficulty and costs.
[0003] With the continuous development of cities and the increasing demands of people for public facilities, the functions and designs of bus shelters are also constantly being improved and perfected. For example, the invention patent with publication number CN109812068A discloses a bus shelter with a rain shelter, which has LED lights installed inside the supporting frame to provide illumination for the bus shelter, allowing people to better see the bus stop information, and has a movable rain shelter and a wind shelter on the bus shelter to protect people from wind and rain.
[0004] During rainy weather, the lighting inside bus shelters is dim. To ensure people can clearly see the bus stop information in the rain, the lighting system needs to be turned on. However, existing intelligent lighting systems primarily focus on nighttime lighting control and do not adequately consider the need for supplemental lighting during rainy days. When it rains during the day, although the ambient light intensity decreases, it may still not reach the activation threshold set by traditional photosensitive sensors, causing the lighting system to fail to turn on in time and thus failing to meet passengers' lighting needs under these special weather conditions. At the same time, some intelligent lighting systems have relatively simple adjustment strategies, only able to achieve simple on / off control, and cannot perform fine-tuning of brightness according to different weather conditions and light intensities. Therefore, when the lighting system is turned on during rainy weather, the lighting effect inside the bus shelter may not be ideal, failing to provide a comfortable and energy-efficient lighting environment. Summary of the Invention
[0005] In view of this, the present invention proposes a fiberglass bus shelter and its usage method, which can provide supplemental lighting to the illuminated shelter frame during rainy weather, thereby reducing the on-time of the lights in the bus shelter and lowering the demand for light intensity of the lights, thus achieving a good energy-saving effect.
[0006] The technical solution of this invention is implemented as follows: On one hand, this invention provides a fiberglass bus shelter, including a illuminated shelter frame, energy-saving windows, and a control mechanism, wherein...
[0007] The top side of the illuminated pavilion frame is provided with a window opening;
[0008] The energy-saving window includes a window frame, a glass panel, and rotating blades. The window frame is fixedly installed inside the window opening; the glass panel is fixedly installed on the top side of the window frame; and the rotating blades are rotatably installed inside the window frame.
[0009] The control mechanism includes a closing rope, a water receiving bucket, and an opening rope. The closing rope is elastically extendable and is fixedly installed between the illuminated pavilion frame and the rotating blade. A water receiving port is provided on the top side of the water receiving bucket. The opening rope is fixedly installed between the water receiving bucket and the rotating blade. In its natural state, the rotating blade is positioned horizontally. When rainwater flows into the water receiving bucket through the water receiving port, the water receiving bucket drives the rotating blade to rotate via the opening rope, causing the rotating blade to be positioned in an inclined or vertical direction.
[0010] Based on the above technical solutions, preferably, the window frame includes a long beam and two wide beams, the two wide beams are respectively fixed at both ends of the long beam, and the wide beams have a hollow structure;
[0011] The rotating blade includes a rotating shaft, a sunshade, and a control plate. The rotating shaft is rotatably disposed between the two wide beams. The sunshade is fixedly disposed on the rotating shaft. The control plate is fixedly disposed at the end of the rotating shaft and located inside the wide beam. The closing rope and the opening rope are respectively connected to the two ends of the control plate.
[0012] More preferably, the window frame further includes two rollers, which are rotatably disposed within the wide beam, and the closing rope and the opening rope are respectively rotatably disposed on the periphery of the two rollers.
[0013] More preferably, the closed rope includes a rope body and a first spring, wherein,
[0014] The rope is rolled around the circumference of the roller, and one end of it is fixed to the control plate.
[0015] The first spring is positioned between the wide beam and the rope.
[0016] Based on the above technical solutions, preferably, the water receiving bucket includes a bucket body, a water receiving pipe, a baffle, and a second spring, wherein,
[0017] The water inlet pipe is slidably disposed on the top side of the barrel and is fixedly disposed through the window frame;
[0018] The baffle is fixedly installed at the bottom end of the water inlet pipe and is located inside the tank;
[0019] The two ends of the second spring abut against the top side of the baffle and the top side of the barrel body, respectively.
[0020] More preferably, the glass plate is provided with water passage holes;
[0021] The water receiving tank also includes a water-gathering ring plate, which is fixedly installed at the top of the water receiving pipe and located inside the water passage hole. The top side of the water-gathering ring plate is concave.
[0022] A further preferred embodiment includes a water receiving mechanism, which comprises a water tank and a connecting pipe, wherein...
[0023] The water tank is fixedly installed on the lighted pavilion frame, and a water inlet is opened on its top side;
[0024] The bottom side of the barrel is provided with a water leakage hole, and the two ends of the connecting pipe are fixedly installed in the water inlet and the water leakage hole, and the connecting pipe can be bent.
[0025] More preferably, the water receiving mechanism further includes a return pipe and a rubber airbag, wherein,
[0026] The return water pipe is fixedly installed through the water storage tank;
[0027] The rubber airbag is fixedly installed on the return water pipe and connected to it, and the rubber airbag is located inside the water storage tank.
[0028] More preferably, the illuminated pavilion frame includes a support frame, a top frame, and multiple cover plates, wherein,
[0029] The top frame is fixedly installed on the top side of the bracket;
[0030] The cover plate includes a plate body, a first enclosure, and a connecting part. The plate body is abutted against the top side of the top frame. The first enclosure is integrally formed on the plate body and abuts against the periphery of the top frame. The connecting part is integrally formed on the plate body, and the cross-section of the connecting part is V-shaped. Two adjacent connecting parts are engaged.
[0031] Secondly, the present invention provides a method for using a fiberglass bus shelter, comprising the following steps:
[0032] S1, connect the air filling / deflating device to the end of the return water pipe located outside the water storage tank;
[0033] S2, inflate the rubber airbag, and use the expanded rubber airbag to squeeze some of the water in the water tank into the barrel, so as to adjust the rotation sensitivity of the rotating blade or adjust the rotation of the rotating blade.
[0034] The fiberglass bus shelter and its usage method of the present invention have the following advantages over the prior art:
[0035] (1) By setting up window frames and glass panels, rotating blades, closing ropes, water buckets and opening ropes, the rotating blades can block the glass panels in sunny weather to provide shade for people inside the bus shelter. In rainy weather, external light can pass through the rotating blades and glass panels to enter the bus shelter, thereby reducing the time the lights in the bus shelter are turned on and reducing the need for light intensity in the bus shelter, thus achieving a good energy-saving effect.
[0036] (2) By setting up a water inlet pipe, a baffle and a second spring, an upward supporting force can be applied to the barrel, which can not only reduce the burden on the closing rope, but also make the control mechanism have a lag in adjusting the rotation of the rotating blades, so that this bus shelter can be used in different working conditions.
[0037] (3) By setting up a water storage tank, rainwater can be stored for watering the green belt or for people to use. By setting up a return pipe and a rubber air bag, the water in the water storage tank can be poured back into the bucket, thereby realizing the active adjustment of the rotating blades and the adjustment of the lag of the rotating blades. Attached Figure Description
[0038] To more clearly illustrate the technical solutions in the embodiments of the present invention 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 the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0039] Figure 1 This is a perspective view of a fiberglass bus shelter according to the present invention.
[0040] Figure 2 This is a perspective view of a fiberglass bus shelter with a lighted frame according to the present invention.
[0041] Figure 3 This is a top view of a fiberglass bus shelter according to the present invention.
[0042] Figure 4This is a partial perspective view of a rotating blade in a fiberglass bus shelter according to the present invention.
[0043] Figure 5 This is a cross-sectional view of the rotating blade in a fiberglass bus shelter according to the present invention.
[0044] Figure 6 This is a cross-sectional view of the short beam in a fiberglass bus shelter according to the present invention.
[0045] Figure 7 for Figure 6 Enlarged view of point C in the middle.
[0046] Figure 8 for Figure 5 Enlarged view of point A in the middle.
[0047] Figure 9 for Figure 6 Enlarged view of point D in the middle.
[0048] Figure 10 This is a perspective view of the rollers in a fiberglass bus shelter according to the present invention.
[0049] Figure 11 for Figure 5 Enlarged view of point B in the middle.
[0050] Figure 12 This is a perspective view of the water receiving mechanism in a fiberglass bus shelter according to the present invention.
[0051] Figure 13 This is a cross-sectional view of the water tank in a fiberglass bus shelter according to the present invention.
[0052] Figure 14 This is a perspective view of the connecting part in a fiberglass bus shelter according to the present invention.
[0053] The components include: 1. Illuminated pavilion frame; 11. Support frame; 12. Top frame; 13. Cover plate; 131. Panel; 132. First enclosure; 133. Connecting part; 101. Window opening; 2. Energy-saving window; 21. Window frame; 211. Long beam; 212. Wide beam; 213. Roller; 22. Glass plate; 23. Rotating blade; 231. Rotating shaft; 232. Sunshade; 233. Control panel; 201. Water passage hole; 3. Control 31. Closing rope; 311. Rope body; 312. First spring; 32. Water receiving bucket; 321. Bucket body; 322. Water receiving pipe; 323. Baffle; 324. Second spring; 325. Water gathering ring plate; 33. Opening rope; 301. Water inlet; 302. Leakage hole; 4. Water receiving mechanism; 41. Water storage tank; 42. Connecting pipe; 43. Return water pipe; 44. Rubber airbag; 401. Water inlet. Detailed Implementation
[0054] The technical solutions of this invention will be clearly and completely described below with reference to specific embodiments. Obviously, the described embodiments are only a part of the embodiments of this invention, and not all of them. Based on the embodiments of this invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this invention.
[0055] The present invention provides a fiberglass bus shelter, comprising a lighted shelter frame 1, an energy-saving window 2, a control mechanism 3, and a water receiving mechanism 4.
[0056] The illuminated shelter frame 1 is the main frame of the bus shelter. The illuminated shelter frame 1 includes a support 11, a top frame 12 and multiple cover plates 13. The top frame 12 is fixedly installed on the top side of the support 11, and multiple cover plates 13 are laid on the top frame 12 to achieve a sunshade effect. At the same time, the illuminated shelter frame 1 is also equipped with lighting fixtures to illuminate the bus stop signs and other information inside the bus shelter.
[0057] During the hot daytime, the cover plate 13 can prevent sunlight from shining into the bus shelter, and the light inside the bus shelter is sufficient, so there is no need to turn on the lighting fixtures; in rainy weather, the top of the bus shelter still needs to be covered to prevent rainwater from entering the bus shelter. At the same time, the light inside the bus shelter is relatively dim, so it is still necessary to turn on the lighting fixtures.
[0058] like Figure 14 As shown, the cover plate 13 includes a plate body 131, a first enclosure 132, and a connecting part 133. The plate body 131 is abutted against the top side of the top frame 12. The first enclosure 132 is integrally formed at the edge of the plate body 131 and abuts against the outer side of the top frame 12. The connecting part 133 is integrally formed on the plate body 131. The cross-section of the connecting part 133 is V-shaped. Two adjacent connecting parts 133 are engaged to limit the lateral movement of the cover plate 13 and strengthen the fixing of the cover plate 13.
[0059] The lighting fixtures in existing bus shelters typically lack brightness adjustment functions. Daytime rainy weather conditions differ from nighttime conditions, except that the light is relatively dim. If the lighting is not turned on, people will have difficulty seeing the bus stop information. If the lighting is turned on, excessive brightness can cause discomfort and also lead to resource waste.
[0060] In addition, most bus shelters use traditional timer switches for their lighting, automatically turning on after dark and turning off at dawn. During rainy days, the lights need to be manually turned on, which is inconvenient.
[0061] Photosensitive switches are another method of controlling the switching of lighting fixtures in bus shelters. They contain a photosensitive sensor that detects ambient light intensity and automatically controls the lighting system based on the detection result. During rainy weather, although the ambient light intensity decreases, it may still not reach the activation threshold set by the photosensitive sensor, causing the lighting fixtures to fail to turn on in time and thus failing to meet the lighting needs of passengers under these special weather conditions.
[0062] In summary, existing bus shelter lighting systems suffer from energy waste and an inability to dynamically adjust to actual lighting conditions. However, the fiberglass bus shelter of this invention utilizes an energy-saving window 2 and a control mechanism 3 to automatically supplement the lighting inside the shelter during rainy weather, reducing the need for additional lighting fixtures and achieving excellent energy-saving results.
[0063] Specifically, the energy-saving window 2 includes a window frame 21, a glass panel 22, and rotating blades 23, such as Figure 2 As shown, the cover plate 13 does not completely cover the top frame 12, leaving a window opening 101 on the top side of the illuminated pavilion frame 1, as... Figure 3 and Figure 5 As shown, the window frame 21 is fixedly installed inside the window opening 101, the glass panel 22 is fixedly installed on the top side of the window frame 21, and the rotating blade 23 is rotatably installed inside the window frame 21; wherein, the glass panel 22 is transparent, which not only prevents rainwater from entering the waiting shelter, but also allows light to pass through the glass panel 22. Figure 8 As shown, when the rotating blade 23 is set in the horizontal direction, the rotating blade 23 blocks and seals the glass plate 22, thereby preventing sunlight from shining into the waiting shelter and achieving a sunshade effect. This condition is suitable for hot days. When the rotating blade 23 is set in the inclined or vertical direction, sunlight can pass through the glass plate 22 and the rotating blade 23 and shine into the waiting shelter, thereby supplementing the interior of the waiting shelter and reducing the need for lighting fixtures. This condition is suitable for rainy days.
[0064] The control mechanism 3 includes a closing rope 31, a water receiving bucket 32, and an opening rope 33. The closing rope 31 is capable of elastic extension and retraction, such as... Figure 10 As shown, the closing rope 31 is fixedly installed between the light-covered pavilion frame 1 and the rotating blade 23. The elastic support of the closing rope 31 against the rotating blade 23 allows the rotating blade 23 to be positioned horizontally in its natural state, thereby sealing the glass panel 22. Figure 3 and Figure 10As shown, a water inlet 301 is provided on the top side of the water receiving bucket 32. The opening rope 33 is fixedly installed between the water receiving bucket 32 and the rotating blade 23. When it rains, rainwater flows into the water receiving bucket 32 through the water inlet 301, and the overall weight of the water receiving bucket 32 increases and it moves downward. When its overall weight is greater than the resistance force of the closing rope 31 on the rotating blade 23, the water receiving bucket 32 drives the rotating blade 23 to rotate through the opening rope 33, so that the rotating blade 23 is set in an inclined or vertical direction, thus not blocking the glass plate 22. That is, when it rains, outside light can enter the bus shelter through the energy-saving window 2 to supplement the lighting of the bus shelter, reduce the need for lighting fixtures in the bus shelter during rainy weather, and achieve the effect of saving energy and dynamically adjusting the brightness inside the bus shelter.
[0065] like Figure 3 As shown, the window frame 21 includes a long beam 211 and two wide beams 212. The two wide beams 212 are fixedly installed at both ends of the long beam 211, and both the long beam 211 and the wide beams 212 are hollow structures.
[0066] like Figure 4 and Figure 7 As shown, the rotating blade 23 includes a rotating shaft 231, a sunshade 232, and a control plate 233. The rotating shaft 231 is rotatably disposed between two wide beams 212. The sunshade 232 is fixedly disposed on the rotating shaft 231. The control plate 233 is fixedly disposed at the end of the rotating shaft 231 and located inside the wide beams 212. The closing rope 31 and the opening rope 33 are respectively connected to the two ends of the control plate 233. The angles of the control plate 233 and the sunshade 232 are different, so that the angle of the sunshade 232 can be better controlled by using the closing rope 31 and the opening rope 33.
[0067] Meanwhile, in order to allow the sunshade 232 to be suspended in a designated position, two limiting protrusions can be set on the wide beam 212. When the control plate 233 is engaged with one of the limiting protrusions, the sunshade 232 is set in the horizontal direction. When the control plate 233 is engaged with the other limiting protrusion, the sunshade 232 is set in the vertical direction to avoid the sunshade 232 rotating too much.
[0068] To change the direction of the closing rope 31 and the opening rope 33 and prevent them from rubbing against the wide beam 212, two rollers 213 are installed in the window frame 21. Figure 10 As shown, both rollers 213 are rotatably mounted inside the wide beam 212, and the closing rope 31 and the opening rope 33 are respectively rolled on the periphery of the two rollers 213.
[0069] like Figure 9As shown, the closing rope 31 includes a rope body 311 and a first spring 312. The rope body 311 is rolled around the circumference of the roller 213, and one end is fixedly mounted on the control plate 233. The first spring 312 is abutted between the wide beam 212 and the rope body 311. By using the abutment of the first spring 312 on the end of the rope body 311 away from the control plate 233, the rope body 311 can be pulled on the control plate 233, thereby causing the sunshade 232 to be in a certain position. Figure 8 The horizontal state shown.
[0070] The water receiving bucket 32 includes a bucket body 321, a water receiving pipe 322, a baffle 323, and a second spring 324, such as Figure 9 As shown, the water inlet pipe 322 is slidably disposed on the top side of the barrel body 321 and is fixedly disposed on the long beam 211. The baffle 323 is fixedly disposed at the bottom end of the water inlet pipe 322 and located inside the barrel body 321. The two ends of the second spring 324 abut against the top side of the baffle 323 and the top side inside the barrel body 321, respectively.
[0071] In its natural state, the second spring 324 holds the barrel 321 upward to reduce the tension of the opening rope 33 on the control plate 233, thereby reducing the holding burden of the first spring 312. At the same time, compared to not having the second spring 324, the barrel 321 needs to store more rainwater to drive the sunshade 232 to rotate, thus causing the rotating blade 23 to have a lag, so as to prevent the rotating blade 23 from rotating when a small amount of water such as water from the green belt irrigation enters the barrel 321.
[0072] The water receiving bucket 32 is also equipped with a water-gathering ring plate 325, such as Figure 11 As shown, the glass plate 22 is provided with a water passage hole 201, and the water collection ring plate 325 is fixedly installed at the top of the water receiving pipe 322 and located inside the water passage hole 201. The water collection ring plate 325 and the baffle 323 are both provided with through holes and are connected to the inside of the water receiving pipe 322. The top side of the water collection ring plate 325 is concave, so that rainwater can flow into the water receiving pipe 322 and the barrel 321 better.
[0073] The water receiving mechanism 4 includes a water storage tank 41, a connecting pipe 42, a return pipe 43, and a rubber airbag 44. The water storage tank 41 is fixedly installed on the light-lit pavilion frame 1 and is located below the barrel body 321. A water inlet 401 is opened on the top side of the water storage tank 41, and a drain hole 302 is opened on the bottom side of the barrel body 321. Both ends of the connecting pipe 42 are fixedly installed in the water inlet 401 and the drain hole 302. Rainwater in the barrel body 321 can flow into the water storage tank 41 through the connecting pipe 42 for storage, so as to irrigate the green belt or for people to use. At the same time, a corresponding drain pipe should be installed on the water storage tank 41.
[0074] In order to control the volume of water in the tank 321, an adjustment valve can be installed in the connecting pipe 42. When the adjustment valve is turned up so that the drainage speed of the tank 321 is greater than the water inflow speed, the tank 321 can be prevented from descending so that the energy-saving window 2 cannot provide supplemental lighting. When the adjustment valve is turned down so that the drainage speed of the tank 321 is less than the water inflow speed, the tank 321 can be descended so that the energy-saving window 2 can provide supplemental lighting.
[0075] Since the barrel 321 will slide up and down, it is preferable to allow the connecting pipe 42 to be bent.
[0076] A return water pipe 43 is fixedly installed through and on the water storage tank 41. A rubber air bladder 44 is fixedly installed on and connected to the return water pipe 43, and is located inside the water storage tank 41. The rubber air bladder 44 expands when inflated, allowing water in the water storage tank 41 to flow back into the container 321. The method of using the rubber air bladder 44 is as follows:
[0077] S1, connect the air filling / deflating device to the end of the return water pipe 43 located outside the water storage tank 41.
[0078] S2, inflating the rubber airbag 44 using the inflation / deflation device causes the airbag 44 to expand, forcing some water from the water tank 41 into the barrel 321. When the rubber airbag 44 expands to a large volume, a large amount of water enters the barrel 321, causing the barrel 321 to descend and actively adjust the rotation of the rotating blade 23 to adapt to different operating conditions. For example, on cloudy days, this operation can be used to provide active supplemental lighting inside the bus shelter. Conversely, when the rubber airbag 44 expands to a small volume, a small amount of water enters the barrel 321. By injecting a small amount of water into the barrel 321, the elastic force of the first spring 312 and the second spring 324 can be counteracted, thereby eliminating the adjustment lag of the rotating blade 23 and adjusting its rotational sensitivity.
[0079] With the development of the new energy industry, photovoltaic panels will be installed on bus shelters to power the electrical equipment inside. In this case, the photovoltaic panels can be installed on the top side of the rotating blade 23. When the rotating blade 23 is set horizontally, the photovoltaic panels are also set horizontally. When the rotating blade 23 is actively adjusted using the return water pipe 43 and the rubber airbag 44, the angle of the photovoltaic panels can be adjusted so that the angle of the photovoltaic panels can be adapted to different application scenarios, thereby improving the power generation of the photovoltaic system.
[0080] Since the photovoltaic panel is located beneath the glass plate 22, the glass plate 22 provides physical protection for the photovoltaic panel, blocking external wind, sand, rain, snow, and minor impacts, reducing the risk of damage to the photovoltaic panel surface. At the same time, it can also, to a certain extent, isolate the photovoltaic panel from ultraviolet radiation, preventing the photovoltaic panel material from aging and degrading due to long-term UV exposure, thus extending the photovoltaic panel's lifespan and helping to maintain the high efficiency and stability of the photovoltaic system.
[0081] To reduce the longitudinal space occupied by the rotating blade 23, such as Figure 4 and Figure 5 As shown, it is preferable to set multiple rotating blades 23 so that multiple rows of rotating blades 23 are arranged side by side; in order to reduce the span of the rotating blades 23, multiple energy-saving windows 2 can be set in the window opening 101.
[0082] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A fiberglass bus shelter, characterized in that: It includes a lighted pavilion frame (1), energy-saving windows (2), and a control mechanism (3), among which, The top side of the lamp pavilion frame (1) is provided with a window opening (101); The energy-saving window (2) includes a window frame (21), a glass panel (22), and a rotating blade (23). The window frame (21) is fixedly installed inside the window opening (101); the glass panel (22) is fixedly installed on the top side of the window frame (21); and the rotating blade (23) is rotatably installed inside the window frame (21). The control mechanism (3) includes a closing rope (31), a water receiving bucket (32), and an opening rope (33). The closing rope (31) is elastically extendable and is fixedly installed between the lighted pavilion frame (1) and the rotating blade (23). A water inlet (301) is provided on the top side of the water receiving bucket (32). The opening rope (33) is fixedly installed between the water receiving bucket (32) and the rotating blade (23). In its natural state, the rotating blade (23) is set in a horizontal direction. When rainwater flows into the water receiving bucket (32) through the water inlet (301), the water receiving bucket (32) drives the rotating blade (23) to rotate through the opening rope (33), so that the rotating blade (23) is set in an inclined or vertical direction. The water receiving bucket (32) includes a bucket body (321), a water receiving pipe (322), a baffle (323), and a second spring (324). The water receiving pipe (322) is slidably disposed on the top side of the bucket body (321) and is fixedly disposed on the window frame (21). The baffle (323) is fixedly disposed at the bottom end of the water receiving pipe (322) and is located inside the bucket body (321). The two ends of the second spring (324) respectively abut against the top side of the baffle (323) and the top side inside the bucket body (321).
2. The fiberglass bus shelter as described in claim 1, characterized in that: The window frame (21) includes a long beam (211) and two wide beams (212), the two wide beams (212) are respectively fixed at both ends of the long beam (211), and the wide beams (212) are hollow structures; The rotating blade (23) includes a rotating shaft (231), a sunshade (232), and a control plate (233). The rotating shaft (231) is rotatably disposed between the two wide beams (212). The sunshade (232) is fixedly disposed on the rotating shaft (231). The control plate (233) is fixedly disposed at the end of the rotating shaft (231) and located inside the wide beam (212). The closing rope (31) and the opening rope (33) are respectively connected to the two ends of the control plate (233).
3. A fiberglass bus shelter as described in claim 2, characterized in that: The window frame (21) also includes two rollers (213), which are rotatably disposed within the wide beam (212), and the closing rope (31) and the opening rope (33) are respectively rolled on the periphery of the two rollers (213).
4. A fiberglass bus shelter as described in claim 3, characterized in that: The closed rope (31) includes a rope body (311) and a first spring (312), wherein, The rope (311) is rolled on the periphery of the roller (213), and one end of it is fixed on the control plate (233); The first spring (312) is abutted between the wide beam (212) and the rope (311).
5. A fiberglass bus shelter as described in claim 1, characterized in that: The glass plate (22) is provided with water passage holes (201); The water receiving bucket (32) also includes a water-gathering ring plate (325), which is fixedly installed at the top of the water receiving pipe (322) and located inside the water passage hole (201). The top side of the water-gathering ring plate (325) is concave.
6. A fiberglass bus shelter as described in claim 1, characterized in that: It also includes a water receiving mechanism (4), which includes a water storage tank (41) and a connecting pipe (42), wherein, The water tank (41) is fixedly installed on the lighted pavilion frame (1), and a water inlet (401) is opened on its top side. The bottom side of the barrel (321) is provided with a water leakage hole (302), and the two ends of the connecting pipe (42) are fixedly installed in the water inlet (401) and the water leakage hole (302), and the connecting pipe (42) can be bent.
7. A fiberglass bus shelter as described in claim 6, characterized in that: The water receiving mechanism (4) also includes a return water pipe (43) and a rubber airbag (44), wherein, The return water pipe (43) is fixedly installed through the water tank (41); The rubber airbag (44) is fixedly installed on the return water pipe (43) and connected to it, and the rubber airbag (44) is located inside the water storage tank (41).
8. A fiberglass bus shelter as described in claim 1, characterized in that: The illuminated pavilion frame (1) includes a support (11), a top frame (12), and multiple cover plates (13), wherein, The top frame (12) is fixedly installed on the top side of the bracket (11); The cover plate (13) includes a plate body (131), a first enclosure (132) and a connecting part (133). The plate body (131) is abutted against the top side of the top frame (12). The first enclosure (132) is integrally formed on the plate body (131) and abuts against the periphery of the top frame (12). The connecting part (133) is integrally formed on the plate body (131). The cross-section of the connecting part (133) is V-shaped, and two adjacent connecting parts (133) are engaged.
9. A method of using the fiberglass bus shelter as described in claim 7, characterized in that, Includes the following steps: S1, connect the air filling and defilling device to the end of the return water pipe (43) located outside the water storage tank (41); S2, inflate the rubber airbag (44) and use the expanded rubber airbag (44) to squeeze part of the water in the water tank (41) into the barrel (321) to adjust the rotation sensitivity of the rotating blade (23) or to adjust the rotation of the rotating blade (23).
Citation Information
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