Water-light storage assembly type low-carbon fence system and mounting method thereof
By integrating the storage functions of water and light energy in the fence system, the existing fence technology has been solved, the problems of single functions, complex construction and serious pollution have been achieved, the goals of low-carbon environmental protection, energy conservation and emission reduction have been achieved, and sustainable construction energy solutions have been provided.
Patent Information
- Application Number
- CN202311457310.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-11-03
- Publication Date
- 2025-05-06
AI Technical Summary
The existing fence technology has problems such as single functions, numerous construction links, extended construction period, serious pollution, high technical requirements, easy rust at the connection parts, difficult to remove, high cost and poor reusability, which violates the principles of low carbon and environmental protection, energy conservation and emission reduction.
A water-optical storage prefabricated low-carbon fence system is developed, which integrates the storage functions of water and light energy, including power generation panel modules, water resource collection units, water storage units, energy storage modules and dust capture units. By integrating rainwater and solar energy collection and storage, it provides the energy required at the construction site, and reduces dust accumulation through the dust capture unit.
It has achieved the division of construction boundaries, and at the same time, it has effectively collected and stored rainwater and solar energy, provided energy for the construction site, reduced dust accumulation, extended the service life of power generation panels, improved the reusability and economical applicability of the fence, and complied with the principles of low carbon, environmental protection, energy conservation and emission reduction.
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Figure CN119933442A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of enclosure technology, and in particular to a water-solar-storage assembled low-carbon enclosure system and an installation method thereof. Background Art
[0002] In order to ensure that the "dual carbon" goals are achieved on schedule, the construction engineering field, as a high-carbon emission field, plays a particularly critical role. We must deeply analyze every link in the construction engineering field and organically integrate energy into all fields, industries, and links in the entire life cycle of the construction project, especially transforming traditional passive buildings into active buildings and utilizing the natural advantages of the integration of buildings and energy, which will be conducive to achieving the "dual carbon" goals. In the field of construction engineering, enclosure refers to the measures taken to isolate the construction site from the external environment and make the construction site a relatively closed space, including walls built with various masonry materials and protective bodies composed of various molded panels.
[0003] At present, most enclosures are made of single-layer iron sheet, which are mainly connected to the bracket by simple screws or directly welded on site to maintain stability. This method leads to numerous on-site construction links, extended construction period, and a lot of pollution. At the same time, it has high requirements on the technical ability of construction personnel. In addition, this kind of enclosure has a relatively single function and is mainly used for isolation. Since the connection parts are prone to rust, it is often difficult to dismantle. Moreover, due to the large number of disposable parts, its reusability is greatly reduced, that is, the cost is high and there is no benefit, which is contrary to the principles of low-carbon environmental protection and energy conservation and emission reduction.
[0004] Therefore, this application urgently needs to develop a water-solar-storage assembled low-carbon enclosure system and its installation method. The system integrates the storage functions of water and light energy, which not only meets the requirements of construction boundary division, but also can effectively collect and store rainwater and solar energy to supply the necessary energy for the construction site. Summary of the invention
[0005] The purpose of this application is to provide a water-solar-storage assembled low-carbon enclosure system and its installation method. The system integrates the storage functions of water and light energy, which not only meets the requirements for the division of construction boundaries, but also can effectively collect and store rainwater and solar energy to supply the necessary energy for the construction site.
[0006] The present application provides a water-solar-storage assembled low-carbon enclosure system, including: a power generation plate module, a water resource collection unit, a water storage unit, an energy storage module, and a dust capture unit;
[0007] Among them, the power generation plate module is configured to provide the electrical energy converted from light energy to the energy storage module through a first circuit; the water resource collection unit is located below the power generation plate module, the water resource collection unit is configured to collect rainwater, the water storage unit is used to receive the rainwater collected by the water resource collection unit, and the dust capture unit uses the rainwater in the water storage unit to capture dust in the surrounding environment of the power generation plate module, thereby achieving the purpose of dust reduction, and further reducing the accumulation of dust on the power generation plate.
[0008] In another preferred example, the dust capture unit is located above the power generation plate module, and the low-carbon enclosure system also includes a water pump, through which rainwater in the water storage unit is guided to the dust capture unit, and the energy storage module provides power to the water pump through the second circuit.
[0009] In another preferred example, a fourth circuit is further included, and the energy storage module provides power to a third party through the fourth circuit.
[0010] In another preferred example, it further includes a first vertical support assembly, and the power generation plate module includes a plurality of groups of power generation plate assemblies, and the plurality of groups of power generation plate assemblies are fixedly connected to the first vertical support assembly.
[0011] In another preferred example, the first vertical support assembly includes a support member body, and the support member body includes a vertical guide groove and a vertical support foot.
[0012] In another preferred example, the first vertical support assembly is provided with a top mounting plane, and the system further comprises a lighting unit, and the lighting unit is mounted and fixed on the top mounting plane.
[0013] In another preferred embodiment, a light-transmitting lampshade is provided on the lighting unit.
[0014] In another preferred example, the system further includes an image collecting unit, and the image collecting unit is disposed on the first vertical supporting assembly.
[0015] In another preferred example, the power generation plate assembly includes a substrate end sliding connector, a longitudinal fixing member, and a plurality of power generation plates, wherein the plurality of power generation plates are fixed on one side of the longitudinal fixing member, and the substrate end sliding connector is configured to be inserted into the vertical guide groove and fixedly connected to the vertical support leg.
[0016] In another preferred embodiment, the substrate end sliding connector can slide in the vertical guide groove.
[0017] In another preferred embodiment, the sliding connector at the end of the substrate is a T-shaped component.
[0018] In another preferred embodiment, the longitudinal fixing member is a longitudinal purlin.
[0019] In another preferred embodiment, a plurality of mounting holes are provided on the longitudinal fixing member.
[0020] In another preferred example, the power generation plate assembly further includes vertical purlins, and the vertical purlins protrude from the surface of the power generation plate to avoid damage to the power generation plate during transportation and stacking.
[0021] In another preferred example, the power generation plate assembly further includes a common plate, and the common plate is arranged on a side of the longitudinal fixing member opposite to the power generation plate.
[0022] In another preferred example, the system also includes a low-carbon base, which is located below the water resource collection unit. The low-carbon base includes a low-carbon base inner surface and a low-carbon base outer surface. The low-carbon base inner surface is a vertical plane, and the low-carbon base outer surface is a curved surface. The lowest point of the curved surface maintains a predetermined distance from the ground.
[0023] In another preferred example, the predetermined distance is 5 cm-15 cm, preferably, the predetermined distance is 9 cm.
[0024] In another preferred embodiment, the low-carbon base is made of solid waste materials as the main material.
[0025] In another preferred embodiment, a plurality of base bolts are embedded in the top surface of the low-carbon base.
[0026] In another preferred embodiment, a longitudinal lifting hole is reserved in the low-carbon base.
[0027] In another preferred embodiment, a plurality of transverse lifting holes are reserved under the base.
[0028] In another preferred embodiment, the water resource collection unit includes a water collection trough and a sliding connector at the end of the water collection trough, wherein the sliding connector at the end of the water collection trough is configured to be inserted into the vertical guide groove and fixedly connected to the vertical support leg. The water collection trough is used to collect rainwater.
[0029] In another preferred embodiment, the sliding connector at the end of the water tank is a T-shaped component.
[0030] In another preferred example, the water resource collection unit also includes a longitudinal bottom plate of the trough arranged along the length direction of the water collection trough, and the longitudinal bottom plate of the trough is gradually inclined from both ends of the water collection trough to the middle, so that the water in the water collection trough can flow into the water storage unit through the first water pipe under the action of gravity.
[0031] In another preferred example, the water storage unit is arranged below the ground.
[0032] In another preferred example, the water storage unit includes a water inlet, a water outlet, a filtering device, a water storage tank body, and a water storage tank cover.
[0033] In another preferred example, the water outlet is connected to the water pump through the second water pipe.
[0034] In another preferred example, the water storage unit also includes a water replenishment port.
[0035] In another preferred example, the dust capture unit includes a plurality of dust capture water pipes and a plurality of atomizing nozzles, and the system also includes a second support assembly, wherein the second support assembly is disposed on the dust capture water pipe, and the dust capture unit is fixedly connected to the longitudinal fixing member of the power generation plate assembly through the second support assembly.
[0036] In another preferred example, the dust capture water pipe of the dust capture unit is connected to the water pump through a third water pipe.
[0037] In another preferred example, the second supporting assembly is inserted into the mounting hole on the longitudinal fixing member to fix the dust capturing unit to the longitudinal fixing member.
[0038] In another preferred example, the plurality of atomizing nozzles are arranged on the dust capturing water pipe.
[0039] In another preferred example, the second support assembly is arranged on the dust capture water pipe, and the second support assembly can be fixedly connected to the longitudinal fixing piece of the power generation plate assembly, so as to realize the connection between the dust capture unit and the power generation plate assembly. Preferably, the second support assembly includes a plurality of double-opening parts, each opening direction of the double-opening parts is opposite, one opening is snapped on the dust capture water pipe, and the other opening is snapped on the longitudinal fixing piece of the power generation plate assembly.
[0040] In another preferred embodiment, the dust capture unit is configured to reduce dust around the power generation plate module (4).
[0041] In another preferred embodiment, it also includes a power generation plate self-cleaning unit and a water turbidity testing module, wherein the power generation plate self-cleaning unit includes a fourth water pipe connected to a water pump, a self-cleaning pipe and a self-cleaning nozzle, wherein the self-cleaning nozzle is arranged at an angle to the self-cleaning pipe, and the water turbidity testing module is used to measure the turbidity of water in the sump of the water resource collection unit. Once the turbidity of the water reaches a predetermined value, the power generation plate self-cleaning unit self-cleans the power generation plate in the power generation plate module (4).
[0042] The present application also provides a method for installing the above-mentioned water-solar-storage assembled low-carbon enclosure system, comprising the following steps:
[0043] S1. Harden the ground.
[0044] S2. Arrange multiple low-carbon bases end to end in sequence;
[0045] S3. Fixing the first vertical support assembly to the low-carbon base at a certain interval;
[0046] S4. Insert the water resource collection unit from the vertical guide groove of the first vertical support assembly and fix it to the first vertical support assembly;
[0047] S5. Insert the multiple groups of power generation plate assemblies of the power generation plate module from the vertical guide grooves of the first vertical support assembly and fix them to the first vertical support assembly.
[0048] In another preferred embodiment, the installation method further comprises the following steps:
[0049] S6. The lighting unit is fixed to the top mounting plane of the first vertical support assembly;
[0050] S7. The image collection unit is fixed to the first vertical support assembly;
[0051] S8. Install the second support assembly;
[0052] S9. Install the dust capture unit.
[0053] S10. Construction of water storage unit and water pump pit;
[0054] S11. Install water storage unit and water pump;
[0055] S12. Overlap the first water pipe, the second water pipe and the third water pipe.
[0056] In another preferred embodiment, the installation method further comprises the following steps:
[0057] S13. Construction of energy storage module foundation;
[0058] S14. Install energy storage module;
[0059] S15. Connect the first circuit, the second circuit, the third circuit and the fourth circuit.
[0060] S16. Debugging;
[0061] S17. Run.
[0062] A large number of technical features are recorded in the specification of this application, which are distributed in various technical solutions. If all possible combinations of technical features of this application (i.e., technical solutions) are to be listed, the specification will be too long. In order to avoid this problem, the various technical features disclosed in the above-mentioned invention content of this application, the various technical features disclosed in the various embodiments and examples below, and the various technical features disclosed in the accompanying drawings can be freely combined with each other to form various new technical solutions (these technical solutions are all deemed to have been recorded in this specification), unless the combination of such technical features is technically infeasible. For example, in one example, feature A+B+C is disclosed, and in another example, feature A+B+D+E is disclosed, and features C and D are equivalent technical means that play the same role. Technically, only one can be used, and it is impossible to use them at the same time. Feature E can be combined with feature C technically. Then, the solution of A+B+C+D should not be deemed to have been recorded because it is technically infeasible, and the solution of A+B+C+E should be deemed to have been recorded. BRIEF DESCRIPTION OF THE DRAWINGS
[0063] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings required for use in the embodiments or the prior art descriptions are briefly introduced below. It should be understood that the drawings described below are only some implementation examples of the present invention, and ordinary technicians in this field can also obtain other implementation examples based on these drawings without paying creative work.
[0064] Figure 1 is a schematic diagram of a water-solar-storage assembled low-carbon enclosure system according to an embodiment of the present application;
[0065] Figure 2 is a schematic diagram of a first support assembly according to an embodiment of the present application;
[0066] Figure 3 is a schematic diagram of a low-carbon base according to an embodiment of the present application;
[0067] Figure 4-Figure 5 is a schematic diagram of a water resource collection unit according to an embodiment of the present application;
[0068] Figure 6 is a schematic diagram of a power generation plate module according to an embodiment of the present application;
[0069] Figure 7 is a schematic diagram of a dust capture unit and a second support assembly according to an embodiment of the present application;
[0070] Figure 8 It is a schematic diagram of a water storage unit according to an embodiment of the present application.
[0071] In the accompanying drawings, the markings are as follows:
[0072] 1-First vertical support assembly
[0073] 101-Vertical guide groove
[0074] 102-Vertical support leg
[0075] 103-Top mounting plane
[0076] 104-First lifting hole
[0077] 105-Lighting unit
[0078] 106-Image Collection Unit
[0079] 107-Translucent lampshade
[0080] 2- Low carbon base
[0081] 21-Low carbon base inner surface
[0082] 22-Low carbon base outer surface
[0083] 23-Base bolt
[0084] 24-Longitudinal lifting hole
[0085] 25-Horizontal lifting hole
[0086] 3- Water resource collection unit
[0087] 31-Sink end sliding connector
[0088] 32-Vertical partition
[0089] 33-Water outlet
[0090] 34- Longitudinal bottom plate of sink
[0091] 35-Dustproof Net
[0092] 4-Power generation plate module
[0093] 41-Substrate end sliding connector
[0094] 42-Longitudinal fixings
[0095] 43-Power generation plate
[0096] 44-Vertical purlin
[0097] 45-Mounting hole
[0098] 46-Ordinary plate
[0099] 5-Dust capture unit
[0100] 51-Dust capture water pipe
[0101] 52-Atomizing Nozzle
[0102] 6- Second support assembly
[0103] 7-First water pipe
[0104] 8- Water storage unit
[0105] 81-Water Inlet
[0106] 82-Water outlet
[0107] 83-Filter device
[0108] 84-Water storage tank
[0109] 85-Water tank cover
[0110] 86-Water supply port
[0111] 9- Second water pipe
[0112] 10-Water Pump
[0113] 11- The third water pipe
[0114] 12-Energy storage module
[0115] 13- First Circuit
[0116] 14-Second Circuit
[0117] 15-Third Circuit
[0118] 16-Fourth Circuit DETAILED DESCRIPTION
[0119] Through extensive and in-depth research, the inventors have developed for the first time a water-solar-storage assembled low-carbon enclosure system, which integrates water collection devices and power generation plates into the enclosure and combines the storage functions of water and light energy. This not only meets the requirements for the division of construction boundaries, but also can effectively collect and store rainwater and solar energy to supply the necessary energy for the construction site. During construction, water storage and energy storage modules can be used to classify and store water and electricity respectively. Secondly, the collected water resources can provide the required water source for the dust reduction unit (dust capture unit) of the enclosure, the power generation plate self-cleaning unit and the construction site. The dust accumulated on the power generation plate is greatly reduced by the setting of the dust capture unit, the power generation plate self-cleaning unit and the water turbidity test module, thereby increasing the service life of the power generation plate and thus increasing the revenue; and the stored electric energy can supply the electricity required for the lighting, warning, advertising and other functions of the enclosure.
[0120] the term
[0121] As used herein, the “longitudinal direction” refers to the length direction of the power generation plate, and the “transverse direction” refers to the width direction of the power generation plate.
[0122] It should be noted that in the application documents of this patent, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that the process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device. In the absence of further restrictions, the elements defined by the sentence "including one" do not exclude the existence of other identical elements in the process, method, article or device including the elements. In the application documents of this patent, if it is mentioned that an action is performed according to an element, it means that the action is performed at least according to the element, which includes two situations: performing the action only according to the element, and performing the action according to the element and other elements. Expressions such as multiple, multiple, and multiple include 2, 2 times, 2 kinds, and more than 2, more than 2 times, and more than 2 kinds.
[0123] In the present invention, all directional indications (such as up, down, left, right, front, back, etc.) are only used to explain the relative position relationship, movement status, etc. between the components in a certain specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indication will also change accordingly.
[0124] This application has at least one of the following advantages
[0125] (a) The water-solar-storage assembled low-carbon enclosure system of the present application integrates the power generation plate and the water collection system into the enclosure, breaking the disadvantage of the original enclosure's single function, effectively collecting resources and achieving positive returns;
[0126] Optionally, (b) the water-solar-storage assembled low-carbon enclosure system of the present application stores the collected resources through water storage and electricity storage (energy storage) modules, which can not only meet the water and electricity needs of the enclosure itself, but also redistribute the surplus;
[0127] Optionally, (c) the water-light storage assembled low-carbon enclosure system of the present application utilizes a recyclable assembled installation method, is produced in a factory in a modular manner, is convenient for transportation, reduces on-site construction procedures, increases reusability, reduces the use of disposable parts, and has the advantages of being economical, applicable, and having low-carbon emission reduction;
[0128] Optionally, (d) the assembled low-carbon enclosure system of the present application utilizes the better sound insulation performance of the power generation plate to effectively block the propagation of noise in the enclosure;
[0129] Optionally, (e) the water-solar-storage assembled low-carbon enclosure system of the present application is a low-carbon enclosure system combining water and light, which provides an innovative, sustainable and effective technical solution for the construction field, which not only helps to promote the realization of the "dual carbon" goals, but also may improve the economic and environmental benefits of construction projects;
[0130] Optionally, (f) the water-solar-storage assembled low-carbon enclosure system of the present application can be applied to various construction engineering fields, such as road construction, railway construction, etc.;
[0131] Optionally, (g) the water-solar-storage assembled low-carbon enclosure system of the present application embodies the organic integration of energy into various fields, industries, and links of the entire life cycle of the building, gradually transforming from traditional passive buildings to active buildings, highlighting the natural advantages of the integration of buildings and energy, and embodying the ideological theory of building-energy integration.
[0132] In the following description, many technical details are provided to help readers better understand the present application. However, those skilled in the art can understand that the technical solution claimed in the present application can be implemented even without these technical details and various changes and modifications based on the following embodiments.
[0133] Water-light storage assembled low-carbon enclosure system
[0134] See also Figure 1 The system includes a first vertical support assembly 1, a low-carbon base 2, a power generation plate module 4, a water resource collection unit 3, a water storage unit 8, an energy storage module 12, and a dust capture unit 5;
[0135] The power generation plate module 4 is configured to provide the electrical energy converted from light energy to the energy storage module 12 through the first circuit 13; the water resource collection unit 3 is located below the power generation plate module 4, and the water resource collection unit 3 is configured to collect rainwater, the water storage unit 8 is used to receive the rainwater collected by the water resource collection unit 3, and the dust capture unit 5 uses the rainwater in the water storage unit 8 to capture the dust in the environment around the power generation plate module 4 to achieve the purpose of dust reduction. The first vertical support assembly 1 is configured to support the power generation plate module 4 and the dust capture unit 5. The low-carbon base 2 is configured below the first vertical support assembly 1, the power generation plate module 4 and the dust capture unit 5, and is used to support the first vertical support assembly 1.
[0136] In a preferred embodiment, the dust capture unit 5 is located above the power generation plate module 4, and the low-carbon enclosure system further includes a water pump 10, through which rainwater in the water storage unit 8 is guided to the dust capture unit 5, and the energy storage module 12 provides power to the water pump through the second circuit 14. In one embodiment, a fourth circuit 16 is further included, through which the energy storage module 12 provides power to a third party.
[0137] In one embodiment, the power generation plate module 4 includes a plurality of power generation plate assemblies, and the plurality of power generation plate assemblies are fixedly connected to the first vertical support assembly 1. Figure 2 , the first vertical support assembly 1 includes a support body, the support body includes a vertical guide groove 101, and a vertical support leg 102. The vertical guide groove 101 and the vertical support leg 102 are configured to install the power generation plate module 4 and the dust capture unit 5. Preferably, the vertical guide groove 101 is rectangular. The support body may include a front surface, a rear surface, a first side surface, a second side surface, and a top / bottom mounting plane 103, wherein the first side surface and the second side surface are opposite, and a vertical guide groove 101 is arranged on the first side surface and the second side surface respectively, so that the power generation plate module 4 and the dust capture unit 5 can be installed on the first side surface and the second side surface of the support body. The vertical support leg 102 is located on one side of the vertical guide groove 101. Preferably, the system also includes a lighting unit 105, which is fixedly mounted on the top mounting plane 103. A light-transmitting lampshade 107 is arranged on the lighting unit 105, which has the function of placing an advertisement or warning light. Preferably, the system further comprises an image collecting unit 106 , and the image collecting unit 106 is disposed on the first vertical supporting component 1 . Preferably, the image collecting unit 106 is disposed on the front surface of the first vertical supporting component 1 .
[0138] In one embodiment, see Figure 6, the power generation plate assembly includes a substrate end sliding connector 41, a longitudinal fixing member 42, and a plurality of power generation plates 43, the plurality of power generation plates 43 are fixed on one side of the longitudinal fixing member 42, and the substrate end sliding connector 41 is configured to be inserted into the vertical guide groove 101 and fixedly connected to the vertical support leg 102. Preferably, the substrate end sliding connector 41 can slide in the vertical guide groove 101. Preferably, the substrate end sliding connector 41 is a "T"-shaped member. Preferably, the longitudinal fixing member 42 is a longitudinal purlin. Preferably, the longitudinal fixing member 42 is provided with a plurality of mounting holes 45, and the mounting holes 45 are used to fix the dust capture unit 5 to the longitudinal fixing member 42. Preferably, the power generation plate assembly also includes a vertical purlin 44, and the vertical purlin 44 protrudes from the surface of the power generation plate 43 to avoid damage to the power generation plate during transportation and stacking. Preferably, the power generation plate assembly further includes a common plate 46 , and the common plate 46 is arranged on a side of the longitudinal fixing member 42 opposite to the power generation plate 43 .
[0139] In one embodiment, see Figure 7 , the dust capture unit 5 includes a plurality of dust capture water pipes 51 and a plurality of atomizing nozzles 52, and the system further includes a second support assembly 6, the second support assembly 6 is arranged on the dust capture water pipe 51, and the dust capture unit 5 is fixedly connected to the longitudinal fixing member 42 of the power generation plate assembly through the second support assembly 6. Preferably, the dust capture water pipe 51 of the dust capture unit 5 is connected to the water pump 10 through the third water pipe 11, so that the dust capture unit 5 can achieve the purpose of dust reduction by removing dust from the environment around the power generation plate module (4). Preferably, the second support assembly 6 is inserted into the mounting hole 45 on the longitudinal fixing member 42 to fix the dust capture unit 5 to the longitudinal fixing member 42.
[0140] In one embodiment, see Figure 4-5, the water resource collection unit 3 includes a water collection trough, and a sliding connector 31 at the end of the trough, and the sliding connector 31 at the end of the trough is configured to be inserted into the vertical guide groove 101 and fixedly connected to the vertical support leg 102. The sliding connector 31 at the end of the trough is located at both ends of the water collection trough. Preferably, the sliding connector 31 at the end of the trough is a "T"-shaped component. Preferably, the water resource collection unit 3 also includes a longitudinal bottom plate 34 of the trough arranged along the length direction of the water collection trough, and the longitudinal bottom plate 34 of the trough is gradually inclined from the two ends of the trough to the middle in the length direction of the water collection trough, so that the water in the water collection trough can flow into the water storage unit 8 through the first water pipe 7 under the action of gravity, wherein the length direction of the water collection trough refers to the length direction of the long side of the water collection trough. A longitudinal vertical partition 32 is also provided in the water collecting tank along the length direction of the water collecting tank, and the longitudinal vertical partition 32 is located in the middle of the water collecting tank, thereby dividing the water collecting tank into two partitions, and a water inlet 33 connected to the first water pipe 7 is provided on the longitudinal vertical partition 32. Preferably, the width of the water collecting tank is greater than the thickness of the power generation plate assembly.
[0141] In one embodiment, the water-solar-storage assembled low-carbon enclosure system may also include a power generation plate self-cleaning unit and a water turbidity testing module. The power generation plate self-cleaning unit includes a fourth water pipe connected to a water pump, a self-cleaning pipe and a self-cleaning nozzle. The self-cleaning nozzle is arranged at an angle to the self-cleaning pipe. The water turbidity testing module is used to measure the turbidity of water in the water collection tank of the water resource collection unit. Once the turbidity of the water reaches a predetermined value, it indicates that the dust nearby is relatively large, and the power generation plate self-cleaning unit is activated to self-clean the power generation plate in the power generation plate module (4). The water in the water collection tank may be rainwater or water dripping from the atomizing nozzle of the dust capture unit during atomization, which can directly show the degree of dust nearby. The turbidity of the water in the water collection tank obtained by the water turbidity testing module is used to clean the power generation plate, so that the accumulated dust on the power generation plate is reduced, thereby further increasing the service life of the power generation plate.
[0142] In one embodiment, see Figure 8 The water storage unit 8 is arranged below the ground. The water storage unit 8 includes a water inlet 81, a water outlet 82, a filter device 83, a water storage tank body 84, and a water storage tank cover 85. The water outlet 82 is connected to the water pump 10 through the second water pipe 9, and the water source is provided to the dust capture unit 5 through the water pump 10. Preferably, the water storage unit 8 may also include a water supply port 86.
[0143] In one embodiment, see Figure 3, the low-carbon base 2 is located below the water resource collection unit 3, the low-carbon base 2 includes a low-carbon base inner surface 21 and a low-carbon base outer surface 22, the low-carbon base inner surface 21 is a vertical plane, the low-carbon base outer surface 22 is a curved surface, and the lowest point of the curved surface maintains a predetermined distance from the ground. Preferably, the predetermined distance is 5cm-15cm, preferably, the predetermined distance is 9cm. Preferably, the low-carbon base 2 is made of solid waste material as the main material. Preferably, a plurality of base bolts 23 are embedded in the top surface of the low-carbon base 2. Preferably, a longitudinal lifting hole 24 is reserved in the low-carbon base 2. Preferably, a plurality of transverse lifting holes 25 are reserved under the base.
[0144] In order to make the objectives, technical solutions and advantages of the present invention more clear, the implementation methods of the present application will be further described in detail below with reference to the accompanying drawings.
[0145] Example
[0146] See also Figure 1 The present application provides a water, light and storage assembled low-carbon enclosure system, which includes a first metal support component (i.e., a first support component 1), a low-carbon base 2, a water resource collection unit 3, a power generation plate module 4, a dust capture unit 5, a second metal support component (i.e., a second support component 6), a first water pipe 7, a water storage unit 8, a second water pipe 9, a water pump 10, a third water pipe 11, an energy storage module 12, a first circuit 13, a second circuit 14, a third circuit 15, and a fourth circuit 16.
[0147] The first metal support assembly is fixed to the low-carbon base 2 by bolts; the water resource collection unit 3 is fixed to the first metal support assembly by sliding connectors and bolts; the power generation plate module 4 is fixed to the first metal support assembly by sliding connectors and bolts; the dust capture unit 5 is fixed to the power generation plate module 4 by the second metal support assembly 6; the water resource collection unit 3 is connected to the water storage unit 8 by the first water pipe 7; the water pump 10 is connected to the water storage unit 8 by the second water pipe 9; the dust capture unit 5 is connected to the water pump 10 by the third water pipe 11; the power generation plate module 4 is connected to the energy storage module 23 by the first circuit 13; the water pump 10 is connected to the energy storage module 12 by the second circuit 14; the first metal support assembly is connected to the energy storage module 12 by the third circuit 15. The energy storage module 12 is connected to the power generation plate module 4 by the first circuit 13, the energy storage module 12 is connected to the first metal support assembly by the third circuit 15, and the energy storage module 12 provides power to a third party by the fourth circuit 16.
[0148] See also Figure 2, there is a vertical rectangular guide groove 101 on each side of the first metal support assembly. The rectangular guide groove 101 is open on both sides. There is a vertical support leg 102 on one side of the opening, and there are mounting planes 103 at the bottom and top. There is a lifting hole 104 at the top. The lighting unit 105 is fixed on the mounting plane 103 at the top by bolts. It further includes: the image collection unit 106 is fixed on the first metal support assembly by bolts. There is a light-transmitting lampshade 107 on the lighting unit 105, which can be used for advertising.
[0149] See Figure 3 , the inner side of the low-carbon base 2 (i.e., the inner surface 21 of the low-carbon base) is a vertical surface, and the outer side (i.e., the outer surface 22 of the low-carbon base) is a curved surface about 9 cm or more above the ground. There are several base bolts 23 embedded in the low-carbon base 2 on the top surface. A transverse lifting hole 24 is reserved in the base 2, and multiple longitudinal rectangular lifting holes 25 are reserved below the base 2. The low-carbon base 2 is made mainly of solid waste materials, including: taking industrial materials containing active silicon and aluminum, first subjecting them to one or several treatment methods among alkali activation method, thermal activation method, mechanical activation method, microbial activation method, electrochemical activation method and hydrothermal treatment method to prepare a high-performance cementitious material, and then configuring high-performance concrete based on this cementitious material, and using this high-performance concrete for casting and forming.
[0150] See Figure 4 and Figure 5 , "T"-shaped members (i.e., the sliding connectors 31 at the ends of the water tank) are installed at both ends of the water collection tank of the water resource collection unit 3. The "T"-shaped members are inserted into the guide groove 101 from above the first metal support assembly and fixed on the vertical support legs 102 of the first metal support assembly by bolts. There is a longitudinal vertical partition 32 in the middle along the long side of the water collection tank, and there is a water passing hole 33 below the middle of the longitudinal vertical partition 32. There is a longitudinal bottom plate 34 of the water collection tank along the long side of the water collection tank. Along the long side direction of the water collection tank, the longitudinal bottom plate 34 of the water collection tank slopes gradually from both ends of the water collection tank to the middle, so that the water in the water collection tank can flow into the water storage unit 8 from the water inlet of the water storage unit 8 through the first water pipe 7 under the action of gravity. A dust-proof net 35 is installed above the water collection tank to prevent large-size objects such as leaves from entering the water collection tank.
[0151] See Figure 6The vertical purlins at both ends of the power generation plate module 4 are equipped with "T"-shaped components (i.e., substrate end sliding connectors 41), which are inserted into the guide groove 101 from the top of the first metal support assembly and fixed to the vertical support legs 102 of the first metal support assembly by bolts. Several power generation plates 43 are fixed to the outside of the longitudinal purlins (i.e., the longitudinal fixing members 42) by screws, and the vertical purlins 44 at both ends are protruding from the power generation plates to avoid damage to the power generation plates during transportation and stacking. There are several rectangular mounting holes 45 above the longitudinal purlins, and ordinary plates 46 are fixed to the inside of the longitudinal purlins by screws to avoid dust pollution inside the module, facilitate water collection and beautify the appearance.
[0152] See also Figure 7 The dust capture unit 5 is composed of a plurality of dust capture water pipes 51 and a plurality of atomizing nozzles 52, and is placed on the second metal support assembly. The dust capture unit 5 is connected to the water pump 10 through the third water pipe 11. The second metal support assembly is inserted into a plurality of rectangular mounting holes 45 left above the longitudinal purlins of the power generation plate module 4 to play a fixing role.
[0153] See also Figure 8 The water storage unit 8 includes a water inlet 81, a water outlet 82, a filter device 83, a water storage tank body 84, and a water storage tank cover 85. The water storage unit 8 is located below the ground and has a water supply port 86 on the top. The water inlet of the water pump 10 is connected to the water outlet 82 of the water storage unit 8 through the second water pipe 9.
[0154] This embodiment also provides a method for installing a water-solar-storage assembled low-carbon enclosure system, including the following steps:
[0155] S1. Harden the ground.
[0156] S2. Arrange multiple low-carbon bases 2 end to end;
[0157] S3. Fix the first metal support assembly (except the lighting unit and the image collection unit) to the low-carbon base 2 at a certain interval;
[0158] S4. Insert the dust capture unit 5 from the guide groove 101 of the first metal support assembly and fix it to the first metal support assembly;
[0159] S5. Insert the multiple power generation plate components of the power generation plate module 4 from the first metal support component guide groove 101 and fix them to the first metal support component;
[0160] S6. The lighting unit 105 is fixed to the first metal support assembly mounting plane;
[0161] S7. The image collection unit 106 is fixed to the first metal support assembly;
[0162] S8. Install the second metal support assembly 6;
[0163] S9. Install the dust capture unit 5.
[0164] S10. Construction of the water storage unit 8 and the water pump 10 foundation pit;
[0165] S11. Install the water storage unit 8 and the water pump 10;
[0166] S12. Overlap water pipes (including the first water pipe 7, the second water pipe 9 and the third water pipe 11).
[0167] S13. Construction of the energy storage module 12 foundation;
[0168] S14. Install the energy storage module 12;
[0169] S15. Lapping circuit (including the first circuit 13, the second circuit 14, the third circuit 15 and the fourth circuit 16).
[0170] S16. Debugging.
[0171] S17. Run.
[0172] All documents mentioned in this application are considered to be included in the disclosure of this application as a whole, so that they can be used as the basis for modification when necessary. In addition, it should be understood that after reading the above disclosure of this application, those skilled in the art can make various changes or modifications to this application, and these equivalent forms also fall within the scope of protection claimed in this application.
Claims
1. A low-carbon water-solar-storage assembled enclosure system, characterized in that: include: A power generation plate module (4), a water resource collection unit (3), a water storage unit (8), an energy storage module (12), and a dust capture unit (5); The power generation plate module (4) is configured to provide the electrical energy converted from light energy to the energy storage module (12) through a first circuit (13); the water resource collection unit (3) is located below the power generation plate module (4); the water resource collection unit (3) is configured to collect rainwater; the water storage unit (8) is used to receive the rainwater collected by the water resource collection unit (3); and the dust capture unit (5) uses the rainwater in the water storage unit (8) to capture dust in the environment surrounding the power generation plate module (4).
2. The low-carbon enclosure system according to claim 1, characterized in that: The dust capture unit (5) is located above the power generation plate module (4), and the low-carbon enclosure system also includes a water pump (10), through which rainwater in the water storage unit (8) is guided to the dust capture unit (5), and the energy storage module (12) provides electricity to the water pump through the second circuit (14).
3. The low-carbon enclosure system according to claim 2, characterized in that: It also includes a first vertical support assembly (1), and the power generation plate module (4) includes multiple groups of power generation plate assemblies, and the multiple groups of power generation plate assemblies are fixedly connected to the first vertical support assembly (1).
4. The low-carbon enclosure system according to claim 3, characterized in that: The first vertical support assembly (1) comprises a support member body, wherein the support member body comprises a vertical guide groove (101) and a vertical support foot (102).
5. The low-carbon enclosure system according to claim 4, characterized in that: The first vertical support assembly (1) is provided with a top mounting plane (103), and the system further comprises a lighting unit (105), wherein the lighting unit (105) is mounted and fixed on the top mounting plane (103).
6. The low-carbon enclosure system according to claim 5, characterized in that: The power generation plate assembly comprises a substrate end sliding connector (41), a longitudinal fixing member (42), and a plurality of power generation plates (43), wherein the plurality of power generation plates (43) are fixed to one side of the longitudinal fixing member (42), and the substrate end sliding connector (41) is configured to be inserted into the vertical guide groove (101) and fixedly connected to the vertical support leg (102).
7. The low-carbon enclosure system according to claim 6, characterized in that: The system further comprises a low-carbon base (2), wherein the low-carbon base (2) is located below the water resource collection unit (3), and the low-carbon base (2) comprises a low-carbon base inner surface (21) and a low-carbon base outer surface (22), wherein the low-carbon base inner surface (21) is a vertical plane, and the low-carbon base outer surface (22) is a curved surface, wherein the lowest point of the curved surface maintains a predetermined distance from the ground.
8. The low-carbon enclosure system according to claim 7, characterized in that: The water resource collection unit (3) comprises a water collection tank and a sliding connection piece (31) at the end of the tank. The sliding connection piece (31) at the end of the tank is configured to be inserted into the vertical guide groove (101) and fixedly connected to the vertical support foot (102).
9. The low-carbon enclosure system according to claim 8, characterized in that: The dust capture unit (5) includes a plurality of dust capture water pipes (51) and a plurality of atomizing nozzles (52). The system also includes a second support assembly (6). The second support assembly (6) is disposed on the dust capture water pipe (51). The dust capture unit (5) is fixedly connected to the longitudinal fixing member (42) of the power generation plate assembly through the second support assembly (6).
10. A method for installing the assembled low-carbon enclosure system for water-solar-storage according to any one of claims 1 to 9, characterized in that: The following steps are involved: S1. Harden the ground; S2. Arrange multiple low-carbon bases (2) end to end in sequence; S3. Fixing the first vertical support assembly (1) to the low-carbon base (2) at a certain interval; S4. Insert the water resource collection unit (3) from the vertical guide groove (101) of the first vertical support assembly (1) and fix it to the first vertical support assembly (1); S5. Insert the multiple groups of power generation plate components of the power generation plate module (4) from the vertical guide groove (101) of the first vertical support component (1) and fix them to the first vertical support component (1).