Low-carbon energy-saving curtain wall with heating and heat preservation functions
By introducing cleaning components of wet and dry sponges and heating insulation components with adjustable angles into the energy-saving building curtain walls, the problem of insufficient cleaning effect and insulation performance is solved, and efficient cleaning and low energy consumption heating effects are achieved.
Patent Information
- Application Number
- CN202421676637.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-16
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2034-07-16
AI Technical Summary
The existing energy-saving building curtain walls have shortcomings in terms of cleaning effects and insulation performance. The dry bristles cannot effectively remove dust. The heating area of solar panels is small and the lack of thermal insulation measures has led to an increase in energy consumption.
Wet sponge and dry sponge in the cleaning assembly are used in combination, and the position is adjusted through motor drive to improve the cleaning effect, and the heat insulation assembly is adjusted according to the intensity of the sunlight to enhance the insulation performance. Combining solar panels with the flow stabilizer and battery improves energy utilization efficiency.
It improves the cleaning efficiency of glass curtain walls, reduces dust recontamination, enhances the thermal insulation effect, and reduces energy consumption.
Smart Images

Figure CN223048263U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of building energy conservation, and particularly relates to a low-carbon energy-saving curtain wall with heating and heat preservation functions. Background Technique
[0002] Building energy conservation refers to reducing energy consumption as much as possible under the condition of meeting the same needs or achieving the same purpose during the production of building materials, the construction of buildings and structures, and the use process. In current buildings, curtain walls are often used as the external wall enclosures of buildings, which have a certain decorative effect. Among them, by hanging a low-carbon energy-saving curtain wall on the exterior wall of a building, the energy-saving effect can be greatly improved and energy consumption can be reduced.
[0003] After retrieval, the patent with publication number CN219411428U and application date March 16, 2023 discloses a low-carbon building curtain wall for energy-saving buildings, which relates to the technical field of energy-saving buildings, including two cross columns, one of which is arranged at the bottom of the other, and two vertical columns are fixedly arranged on both sides between the two cross columns through two vertical screws, and a wall panel is fixedly arranged between the two vertical columns through four horizontal screws.
[0004] However, it still has the following drawbacks in actual use:
[0005] 1. When the above-mentioned low-carbon building curtain wall for energy-saving buildings is in use, the brush hairs are driven to move by a forward and reverse motor to clean the surface of the wall panel, but the dry brush hairs cannot remove the dust with strong adhesion on the surface of the wall panel, so the cleaning effect and efficiency of the wall panel will be affected;
[0006] 2. When the above-mentioned low-carbon building curtain wall for energy-saving buildings is in use, sunlight is collected through solar panels, but the heating area of this method is small, and it cannot effectively save energy for heating. At the same time, there are no heat insulation and heat preservation measures on the wall panel and the outside, which will cause energy loss in the room during use and increase energy consumption. Therefore, we provide a low-carbon energy-saving curtain wall with heating and heat preservation functions to solve the above problems. Content of the Utility Model
[0007] The purpose of the utility model is to provide a low-carbon energy-saving curtain wall with heating and heat preservation functions. By setting a cleaning component, the combined use of a wet sponge and a dry sponge can improve the cleaning effect of the glass curtain wall body. Under the action of the dry sponge, the water on the surface of the glass curtain wall body is absorbed, avoiding the glass curtain wall body with a wet surface being contaminated with dust again after cleaning, which affects the cleaning efficiency and effect, and using the heating and heat preservation component can adjust the angle of the heat insulation board according to the actual sunlight irradiation intensity, people's adaptation situation, etc., so as to achieve the purpose of reducing the sunlight irradiation area. And when the heat insulation board is completely closed, the heat insulation and heat preservation effect in the room can be improved, the energy loss in the room can be reduced, and the energy consumption can be reduced at the same time.
[0008] To solve the above technical problems, the utility model is realized through the following technical solutions:
[0009] The utility model relates to a low-carbon energy-saving curtain wall with heating and heat preservation functions, which includes an outer frame and a glass curtain wall body installed at the rear inside thereof. A lower sliding groove and an upper sliding groove are respectively arranged at the bottom and top of the front end face of the glass curtain wall body. A sliding frame is arranged on one side between the lower sliding groove and the upper sliding groove. A cleaning component is arranged inside the sliding frame, and a heating and heat preservation component is arranged at the front end inside the outer frame;
[0010] The cleaning component includes a first motor and a driving gear disc installed on its output shaft. A driven gear disc is arranged on one side of the driving gear disc, and the gear on the outer wall of the driving gear disc meshes with the gear on the outer wall of the driven gear disc. A hollow rod is installed at the center position of the upper surface of the driven gear disc;
[0011] The heating and heat preservation component includes a left side plate and a second motor installed on its outer wall. The output shaft of the second motor penetrates through the bearing on the left side plate and is connected with a transmission shaft through a coupling. The other end of the transmission shaft is installed in the bearing on the inner wall of the right side plate. The outer walls of the left side plate and the right side plate are fixed on the inner wall of the outer frame.
[0012] The utility model is further arranged such that solar panels are arranged on both sides of the front end face of the outer frame. A driving mechanism is arranged at the bottom of the sliding frame, and the driving mechanism is located inside the lower sliding groove.
[0013] The utility model is further arranged such that the bottom end of the hollow rod sequentially penetrates through the center position of the upper surface of the driven gear disc and the bearing at the top of the sliding frame and is connected with the bearing at the inner bottom of the sliding frame. A rotating frame is sleeved outside the outer wall of the hollow rod.
[0014] The utility model is further arranged such that water passing holes are evenly spaced from top to bottom on one outer wall of the hollow rod and the rear end face of the rotating frame in a corresponding manner. A wet sponge is installed inside the rear end face of the rotating frame, and a dry sponge is installed inside the front end face of the rotating frame.
[0015] The utility model is further arranged such that the water inlet end at the top of the hollow rod is connected with a connecting pipe through a pipe joint. The other end of the connecting pipe is connected with a water pump through a pipe joint. The water inlet end of the water pump is connected with an external water pipe through a pipe joint.
[0016] The utility model is further arranged such that driving tapered wheels are evenly spaced along the horizontal direction on the outer wall of the transmission shaft. Driven tapered wheels are correspondingly arranged on one side at the bottom of the driving tapered wheels. The gear on the outer wall of the driving tapered wheel meshes with the gear on the outer wall of the driven tapered wheel.
[0017] The utility model is further arranged such that a rotating shaft is installed at the center position at the bottom of the driven tapered wheel. The bottom end of the rotating shaft is installed in the bearing at the inner bottom of the outer frame. A heat insulation plate is sleeved outside the outer wall of the rotating shaft.
[0018] The utility model is further arranged such that heat insulation pads are provided on the outer walls on both sides of the heat insulation board, and a solar panel is provided at the center of the outer wall of the heat insulation board.
[0019] The utility model has the following beneficial effects:
[0020] 1. By arranging a cleaning component in the utility model, when the water pump operates, external water can be immersed into the wet sponge. The wet sponge can be used to improve the cleaning effect of the glass curtain wall body. At the same time, the position of the wet sponge and the dry sponge is adjusted by the first motor, so that the two are used in cooperation. Under the action of the dry sponge, the water on the surface of the glass curtain wall body is sucked dry, avoiding the glass curtain wall body with a wet surface after cleaning from being contaminated with dust again, which affects the cleaning efficiency and effect. It solves the problem that in the use of the low-carbon building curtain wall of the energy-saving building, the wall panel surface is cleaned by driving the bristles to move through a forward and reverse motor, and the dry bristles cannot remove the dust with strong adhesion on the wall panel surface, so it will affect the cleaning effect and efficiency of the wall panel.
[0021] 2. By arranging a heating and heat preservation component in the utility model, under the action of the second motor, the angle of the heat insulation board can be adjusted according to the actual sunlight irradiation intensity, people's adaptation situation, etc., so as to achieve the purpose of reducing the sunlight irradiation area. And when the heat insulation board is completely closed, the heat insulation and heat preservation effect indoors can be improved, reducing the energy loss indoors. At the same time, solar panels are provided on the outer walls of the outer frame and the heat insulation board, and they are used in cooperation with a current stabilizer, a storage battery, etc., which can greatly improve the utilization efficiency of sunlight and reduce energy consumption. It solves the problem that in the use of the low-carbon building curtain wall of the energy-saving building, sunlight is collected through a solar panel, but the heating area of this method is small and it cannot effectively save energy for heating. At the same time, there is a lack of heat insulation and heat preservation measures on the wall panel and the outside, which will cause energy loss indoors and increase energy consumption during use.
[0022] Of course, it is not necessary for any product implementing the utility model to achieve all the above-mentioned advantages simultaneously. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] In order to more clearly illustrate the technical solutions of the embodiments of the utility model, the drawings required for describing the embodiments will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the utility model. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0024] Figure 1 It is a schematic structural diagram of a low-carbon energy-saving curtain wall with a heating and heat preservation function.
[0025] Figure 2 It is a cross-sectional view of a low-carbon energy-saving curtain wall with a heating and heat preservation function.
[0026] Figure 3 It is an exploded view of the outer frame, lower sliding groove, upper sliding groove and sliding frame.
[0027] Figure 4 It is a structural diagram of the sliding frame.
[0028] Figure 5 It is an exploded view of the cleaning component.
[0029] Figure 6 It is a structural diagram of the heating and heat preservation component.
[0030] In the attached drawings, the list of components represented by each reference numeral is as follows:
[0031] 1 - Outer frame, 101 - Solar panel, 102 - Glass curtain wall body, 103 - Lower sliding groove, 104 - Upper sliding groove, 105 - Sliding frame, 105a - Driving mechanism, 2 - Cleaning component, 201 - First motor, 201a - Driving gear disk, 202 - Hollow rod, 202a - Driven gear disk, 203 - Rotating frame, 204 - Water passing hole, 205 - Wet sponge, 206 - Dry sponge, 207 - Connecting pipe, 208 - Water pump, 3 - Heating and heat preservation component, 301 - Left side plate, 302 - Right side plate, 303 - Second motor, 303a - Transmission shaft, 303b - Driving conical pulley, 304 - Rotating shaft, 304a - Driven conical pulley, 305 - Heat insulation plate. Specific implementation manners
[0032] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the protection scope of the present utility model.
[0033] Embodiment 1
[0034] Please refer to Figures 1 to 5, the utility model is a low-carbon energy-saving curtain wall with heating and heat preservation functions, including an outer frame 1 and a glass curtain wall body 102 installed at the rear inside thereof. A lower sliding groove 103 and an upper sliding groove 104 are respectively arranged at the bottom and top of the front end face of the glass curtain wall body 102. A sliding frame 105 is arranged on one side between the lower sliding groove 103 and the upper sliding groove 104. A cleaning component 2 is arranged inside the sliding frame 105; the cleaning component 2 includes a first motor 201 and a driving gear disc 201a installed on its output shaft. A driven gear disc 202a is arranged on one side of the driving gear disc 201a, and the gear on the outer wall of the driving gear disc 201a meshes with the gear on the outer wall of the driven gear disc 202a. A hollow rod 202 is installed at the center position of the upper surface of the driven gear disc 202a.
[0035] Specifically, solar panels 101 are arranged on both sides of the front end face of the outer frame 1. A driving mechanism 105a is arranged at the bottom of the sliding frame 105, and the driving mechanism 105a is located inside the lower sliding groove 103. The bottom end of the hollow rod 202 sequentially passes through the center position of the upper surface of the driven gear disc 202a and the bearing at the top of the sliding frame 105 and is connected to the bearing at the inner bottom of the sliding frame 105. A rotating frame 203 is sleeved on the outer side of the outer wall of the hollow rod 202. Water passing holes 204 are uniformly arranged at intervals from top to bottom on one outer wall of the hollow rod 202 and the rear end face of the rotating frame 203 in a corresponding manner. A wet sponge 205 is installed inside the rear end face of the rotating frame 203, and a dry sponge 206 is installed inside the front end face of the rotating frame 203. The water inlet end at the top of the hollow rod 202 is connected to a connecting pipe 207 through a pipe joint. The other end of the connecting pipe 207 is connected to a water pump 208 through a pipe joint. The water inlet end of the water pump 208 is connected to an external water pipe through a pipe joint.
[0036] Further, the lower sliding groove 103 and the upper sliding groove 104 are correspondingly arranged. The lower sliding groove 103, the upper sliding groove 104, the sliding frame 105, the solar panels 101, the driving mechanism 105a, and related flow stabilizers, storage batteries, etc. are all prior arts, so no more details will be described here. When the first motor 201 operates, it drives the driving gear disc 201a to rotate. Among them, since the gear on the outer wall of the driving gear disc 201a meshes with the gear on the outer wall of the driven gear disc 202a, when the driving gear disc 201a rotates, it will drive the driven gear disc 202a to rotate. The driven gear disc 202a and the rotating frame 203 are both located on the outer wall of the hollow rod 202, so the three can rotate synchronously. The water passing holes 204 are located inside the wet sponge 205, which can make water flow into the wet sponge 205. The pipe joint plays a role in connecting pipelines.
[0037] The operation process of this embodiment is as follows: After the glass curtain wall body 102 is used for a long time, a large amount of dust will adhere to its surface. At this time, start the water pump 208. The water pump 208 operates to pump in external water source, and sends the water into the hollow rod 202 through the connecting rod, and then flows out to the wet sponge 205 on the outside through the water passing holes 204 correspondingly arranged on the surface of the rotating frame 203 and the hollow rod 202, so that the water can soak into the wet sponge 205. Then, under the action of the driving mechanism 105a, the sliding frame 105 is driven to slide horizontally along the lower sliding groove 103 and the upper sliding groove 104. During this process, the surface of the glass curtain wall body 102 can be cleaned under the action of the wet sponge 205, and the cleaning effect can be improved by using the wet sponge 205 dipped in water. After the cleaning is completed with the wet sponge 205, start the first motor 201. The output shaft of the first motor 201 rotates to drive the active gear disc 201a to rotate. The gear on the outer wall of the active gear disc 201a meshes with the gear on the outer wall of the driven gear disc 202a on one side. Therefore, when the active gear disc 201a rotates, it will drive the driven gear disc 202a to rotate, and the hollow rod 202 on its inner wall will rotate. And under the action of the hollow rod 202, the rotating frame 203 on its outer wall can be driven to rotate, so that the positions of the wet sponge 205 and the dry sponge 206 in front of and behind the rotating frame 203 can be adjusted. Then, continue to drive the sliding frame 105 to move under the action of the driving mechanism 105a. At this time, the water on the surface of the glass curtain wall body 102 can be absorbed dry under the action of the dry sponge 206, avoiding the glass curtain wall body 102 with a wet surface after cleaning from being contaminated with dust again, which affects the cleaning efficiency and effect.
[0038] Embodiment 2
[0039] Please refer to Figure 4 and Figure 6 Based on Embodiment 1, the difference from the first embodiment is that a heating and heat preservation component 3 is provided. The heating and heat preservation component 3 includes a left side plate 301 and a second motor 303 installed on its outer wall. The output shaft of the second motor 303 penetrates through the bearing on the left side plate 301 and is connected to the transmission shaft 303a through a coupling. The other end of the transmission shaft 303a is installed in the bearing on the inner wall of the right side plate 302. The outer walls of the left side plate 301 and the right side plate 302 are fixed on the inner wall of the outer frame 1, which solves the problem that in the existing low-carbon building curtain wall of energy-saving buildings, solar panels are used to collect sunlight during use, but the heating area of this method is small, and effective heating and energy saving cannot be achieved. At the same time, there are no heat insulation and heat preservation measures on the wall panels and the outside, which will cause energy loss in the room during use and increase energy consumption.
[0040] Specifically, the outer wall of the transmission shaft 303a is evenly spaced with driving conical wheels 303b along the horizontal direction. One side of the bottom of the driving conical wheel 303b is correspondingly provided with a driven conical wheel 304a. The gears on the outer wall of the driving conical wheel 303b are meshed with the gears on the outer wall of the driven conical wheel 304a. The center position of the bottom of the driven conical wheel 304a is provided with a rotating shaft 304. The bottom end of the rotating shaft 304 is installed in the bearing at the bottom end inside the outer frame 1. The outer wall of the rotating shaft 304 is sleeved with a heat insulation plate 305. Heat insulation pads are arranged on the outer walls on both sides of the heat insulation plate 305. The center position of the outer wall of the heat insulation plate 305 is provided with a solar panel 101.
[0041] Further, when the second motor 303 operates, it can drive the transmission shaft 303a to rotate through the coupling. Multiple driving conical wheels 303b are arranged on the outer wall of the transmission shaft 303a, and a driven conical wheel 304a is correspondingly arranged at the bottom of each of the multiple driving conical wheels 303b. Since the gears on the outer wall of the driving conical wheel 303b are meshed with the gears on the outer wall of the driven conical wheel 304a, the two can rotate synchronously. The driven conical wheel 304a and the heat insulation plate 305 are both located on the outer wall of the rotating shaft 304, so the three can rotate synchronously. The heat insulation pads can improve the sealing performance between adjacent heat insulation plates 305 and enhance the heat insulation and heat preservation effect.
[0042] The operation process of this embodiment is as follows: When the sunlight intensity is relatively high outside, start the second motor 303. When the second motor 303 operates, its output shaft rotates and drives the transmission shaft 303a to rotate under the action of the coupling. The rotation of the transmission shaft 303a will drive multiple driving conical wheels 303b on its outer wall to rotate. The gears on the outer wall of the driving conical wheel 303b are meshed with the gears on the outer wall of the corresponding driven conical wheel 304a at the bottom. Therefore, when the driving conical wheel 303b rotates, it will drive the corresponding driven conical wheel 304a to rotate and make the rotating shaft 304 at its bottom rotate. The heat insulation plate 305 on the outer wall of the rotating shaft 304 can be driven to rotate through the rotating shaft 304, so as to adjust the angle of the heat insulation plate 305 according to the actual sunlight irradiation intensity, people's adaptation situation, etc., so as to achieve the purpose of reducing the sunlight irradiation area. And when the heat insulation plate 305 is completely closed, the heat insulation and heat preservation effect inside the room can be improved, the energy loss inside the room can be reduced. At the same time, solar panels 101 are arranged on the outer walls of the outer frame 1 and the heat insulation plate 305. When they are used in cooperation with a current stabilizer, a storage battery, etc., the utilization efficiency of sunlight can be greatly improved and the energy consumption can be reduced.
[0043] In the description of this specification, the descriptions referring to terms such as "one embodiment", "example", "specific example", etc. mean that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present utility model. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described may be combined in a suitable manner in any one or more embodiments or examples.
[0044] The preferred embodiments of the present utility model disclosed above are only used to help explain the present utility model. The preferred embodiments do not describe all the details in detail, nor do they limit the present utility model to the specific embodiments described. Obviously, many modifications and variations can be made according to the content of this specification. These embodiments are selected and specifically described in this specification in order to better explain the principle and practical application of the present utility model, so that those skilled in the relevant technical field can well understand and utilize the present utility model. The present utility model is only limited by the claims and their full scope and equivalents.
Claims
1. A low-carbon energy-saving curtain wall with heating and heat preservation functions, comprising an outer frame (1) and a glass curtain wall body (102) installed at the rear of the outer frame, wherein a lower slide groove (103) and an upper slide groove (104) are respectively arranged at the bottom and top of the front end surface of the glass curtain wall body (102), and a sliding frame (105) is arranged on one side between the lower slide groove (103) and the upper slide groove (104), characterized in that: A cleaning component (2) is arranged inside the sliding frame (105), and a heating and heat preservation component (3) is arranged at the front end inside the outer frame (1); The cleaning assembly (2) comprises a first motor (201) and a driving toothed disc (201a) mounted on the output shaft thereof, a driven toothed disc (202a) being arranged on one side of the driving toothed disc (201a), and a gear on the outer wall of the driving toothed disc (201a) meshing with a gear on the outer wall of the driven toothed disc (202a), and a hollow rod (202) being mounted at the center of the upper surface of the driven toothed disc (202a); The heating and heat preservation component (3) comprises a left side plate (301) and a second motor (303) mounted on the outer wall thereof, wherein the output shaft of the second motor (303) passes through the bearing on the left side plate (301) and is connected to the transmission shaft (303a) via a coupling, and the other end of the transmission shaft (303a) is mounted in a bearing on the inner wall of the right side plate (302), and the outer walls of the left side plate (301) and the right side plate (302) are fixed to the inner wall of the outer frame (1).
2. The low-carbon energy-saving curtain wall with heating and heat preservation functions according to claim 1 is characterized in that: Solar panels (101) are arranged on both sides of the front end surface of the outer frame (1), and a driving mechanism (105a) is arranged at the bottom of the sliding frame (105), and the driving mechanism (105a) is located inside the lower sliding groove (103).
3. The low-carbon energy-saving curtain wall with heating and heat preservation functions according to claim 1 is characterized in that: The bottom end of the hollow rod (202) sequentially passes through the center position of the upper surface of the driven gear plate (202a) and the top bearing of the sliding frame (105) and is connected to the bearing at the bottom of the sliding frame (105), and a rotating frame (203) is sleeved on the outer side of the outer wall of the hollow rod (202).
4. The low-carbon energy-saving curtain wall with heating and heat preservation functions according to claim 3 is characterized in that: Water holes (204) are evenly spaced and correspondingly arranged on one side outer wall of the hollow rod (202) and the rear end surface of the rotating frame (203) from top to bottom; a wet sponge (205) is installed in the rear end surface of the rotating frame (203); and a dry sponge (206) is installed in the front end surface of the rotating frame (203).
5. The low-carbon energy-saving curtain wall with heating and heat preservation functions according to claim 4 is characterized in that: The water inlet end at the top of the hollow rod (202) is connected to a connecting pipe (207) via a pipe joint, the other end of the connecting pipe (207) is connected to a water pump (208) via a pipe joint, and the water inlet end of the water pump (208) is connected to an external water pipe via a pipe joint.
6. The low-carbon energy-saving curtain wall with heating and heat preservation functions according to claim 2 is characterized in that: The outer wall of the transmission shaft (303a) is sleeved with driving conical wheels (303b) at even intervals in the horizontal direction, and a driven conical wheel (304a) is correspondingly arranged on one side of the bottom of the driving conical wheel (303b), and the gear on the outer wall of the driving conical wheel (303b) is meshed with the gear on the outer wall of the driven conical wheel (304a).
7. The low-carbon energy-saving curtain wall with heating and heat preservation functions according to claim 6 is characterized in that: A rotating shaft (304) is installed at the bottom center of the driven conical wheel (304a), the bottom end of the rotating shaft (304) is installed in a bearing at the bottom end of the outer frame (1), and a heat insulation plate (305) is sleeved on the outer side of the outer wall of the rotating shaft (304).
8. The low-carbon energy-saving curtain wall with heating and heat preservation functions according to claim 7 is characterized in that: Thermal insulation pads are provided on the outer walls of both sides of the thermal insulation board (305), and the solar panel (101) is provided at the center of the outer wall of the thermal insulation board (305).
Citation Information
Patent Citations
Low-carbon building curtain wall of energy-saving building
CN219411428U