WO2012074341A2 - 나무 형태의 태양전지 모듈 - Google Patents
나무 형태의 태양전지 모듈 Download PDFInfo
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- WO2012074341A2 WO2012074341A2 PCT/KR2011/009342 KR2011009342W WO2012074341A2 WO 2012074341 A2 WO2012074341 A2 WO 2012074341A2 KR 2011009342 W KR2011009342 W KR 2011009342W WO 2012074341 A2 WO2012074341 A2 WO 2012074341A2
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- Prior art keywords
- module
- tree
- solar cell
- frame
- branch
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Images
Classifications
-
- H01L31/042—
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24S—SOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
- F24S25/00—Arrangement of stationary mountings or supports for solar heat collector modules
- F24S25/10—Arrangement of stationary mountings or supports for solar heat collector modules extending in directions away from a supporting surface
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24S—SOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
- F24S25/00—Arrangement of stationary mountings or supports for solar heat collector modules
- F24S25/60—Fixation means, e.g. fasteners, specially adapted for supporting solar heat collector modules
- F24S25/65—Fixation means, e.g. fasteners, specially adapted for supporting solar heat collector modules for coupling adjacent supporting elements, e.g. for connecting profiles together
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02S—GENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
- H02S20/00—Supporting structures for PV modules
- H02S20/10—Supporting structures directly fixed to the ground
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02S—GENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
- H02S20/00—Supporting structures for PV modules
- H02S20/20—Supporting structures directly fixed to an immovable object
- H02S20/22—Supporting structures directly fixed to an immovable object specially adapted for buildings
- H02S20/23—Supporting structures directly fixed to an immovable object specially adapted for buildings specially adapted for roof structures
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02S—GENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
- H02S20/00—Supporting structures for PV modules
- H02S20/30—Supporting structures being movable or adjustable, e.g. for angle adjustment
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24S—SOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
- F24S25/00—Arrangement of stationary mountings or supports for solar heat collector modules
- F24S25/60—Fixation means, e.g. fasteners, specially adapted for supporting solar heat collector modules
- F24S2025/6003—Fixation means, e.g. fasteners, specially adapted for supporting solar heat collector modules by clamping
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02A—TECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
- Y02A40/00—Adaptation technologies in agriculture, forestry, livestock or agroalimentary production
- Y02A40/10—Adaptation technologies in agriculture, forestry, livestock or agroalimentary production in agriculture
- Y02A40/22—Improving land use; Improving water use or availability; Controlling erosion
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02B—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
- Y02B10/00—Integration of renewable energy sources in buildings
- Y02B10/10—Photovoltaic [PV]
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/40—Solar thermal energy, e.g. solar towers
- Y02E10/47—Mountings or tracking
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/50—Photovoltaic [PV] energy
Definitions
- the means of the solar cell is modularized into a solar cell in the form of a tree and installed for the purpose of solar power generation.
- the module can be easily installed and installed in various places.
- the solar cell module in the form of a tree can produce electricity required in a house while securing a green space in a yard, a garden, or a building roof.
- Tree-type solar cell modules can be installed at regular intervals such as rice fields, fields, orchards, edges, and headlands to benefit from solar power generation, and create resistance to wind to prevent crops from direct damage from typhoons. This can cause crops to fall through typhoons or prevent falling fruits.
- the solar cell module in the form of a tree can be solar-powered while operating a ranch by installing a tree at regular intervals and spaced it like a tree.
- the solar cell module in the form of a tree can be installed at an edge along a railroad to cover electricity required by a train.
- the solar cell module in the form of a tree may have functions such as roadside trees, power poles, street lights, antennas, and traffic lights on both sides of the road.
- the solar cell module in the form of a tree can be installed around the waterway, around the reservoir, around the lake, and around the dam to generate sunlight.
- the solar cell module in the form of a tree can be installed without damaging the greenery by installing it among the existing lumbers of Yasan, and it can be easily installed in a hilly mountain that cannot be used for farming and farming because the slope is very inclined so that the hilly mountain can be used effectively have.
- the solar cell module in the form of a tree can be installed as a tree in the desert for solar power generation, and the wind resistance prevents the wind from blowing hard to prevent the movement of sand. Plants, such as grass and trees, can grow, and there is a great possibility of turning deserts into green spaces through the country's anti-desorption and green development programs.
- the solar cell module installed in the desert is installed in the form of a large tree, it is provided away from the ground of the desert, so that the effect of radiant heat on the high ground of the desert can be reduced, so that the temperature, which is a disadvantage of the silicon crystalline solar cell, increases. There are strengths to make up for the disadvantages of poor efficiency.
- Conventional solar cell modules include panel type, condensing type, solar cell cells arranged in a panel, wired and wired, and then the cover is heated and fixed to make a large area solar cell module and use it as a means of solar power generation. It is installed in small places on the roof or on large scales, in mountainous areas, on tidal flats, and arranges solar cells in desert areas and installs solar power.
- the solar power plant made of a conventional panel module has some disadvantages.
- the green area is damaged in the process of clearing the mountains unsuitable for renewable energy, and when the tidal flat or the sea is installed, the tidal flat or the sea ecosystem is There are some disadvantages, so solar power is not green energy, but green energy.
- the present invention describes and refers to the information of the original application, priority claim 1, priority claim 2.
- Patent 3 Japanese Laid-Open Patent Publication 2004-281788 (2004, 10, 07)
- the solar power module is to make a tree-shaped module, a tree-shaped module, and a combination of a tree-shaped solar cell module.
- the solar cell module in the form of a tree acts as a pole, a street lamp, and the dynamic composition of the wind.
- Triangular tree-shaped module equipped with solar cells by making a triangular frame of about 2m to 3m in length from one of materials such as concrete, wood, ceramic, and plastic, and storing and assembling solar cells on three sides of the triangular frame.
- An octagonal frame of about 6m to 10m length is made, and solar cells are housed and assembled on eight sides of the octagonal frame to form a wooden column module equipped with solar cells.
- One end of the triangular tree-shaped module is provided with a fixing plate that can be fixed to the outer peripheral side of the wooden columnar module.
- a nut hole means for fixing a triangular tree branch module is arranged at regular intervals on the outer circumference of the side of the wooden pillar module.
- the triangular tree-shaped module, wooden columnar module can be made in the form of a polygonal frame including a triangular frame, square frame, pentagonal frame, hexagonal frame, octagonal frame, octagonal frame, circular frame.
- the triangular tree-shaped module, the wooden column module is assembled on each side of the polygonal frame including a triangular frame, square frame, pentagonal frame, hexagonal frame, octagonal frame, octagonal frame, circular frame to facilitate solar cell storage assembly.
- the space part is provided.
- the triangular tree-shaped module, wooden columnar module is provided with a hollow inner frame groove, inside the polygonal frame including a triangular frame, square frame, pentagonal frame, hexagonal frame, octagonal frame, octagonal frame, circular frame.
- the assembly space portion is provided with a wiring storage groove for storing and arranging the wiring of the solar cell.
- the wiring housing groove is provided with a through hole arranged at a predetermined interval from the wiring inner groove.
- the wiring is arranged in the wiring storage groove and the wiring is arranged in the frame inner groove again.
- the triangular tree-shaped module is assembled and fixed to a nut hole provided at the outer circumference of the wooden pillar module in which the solar cell is assembled in the assembly space to form a solar cell module in a tree shape.
- the upper part of the tree-shaped solar cell module has a function of the power pole by installing a shoulder strap, a transformer which is a component of the power pole.
- LED module is assembled on one side of the triangular tree-shaped module module has the function of street light.
- the triangular tree-shaped module of the solar cell module of the tree type does not use a leaf-shaped solar cell, there is no part shaking in the wind.
- the solar cell module in the form of a tree can be installed in a similar operation to planting trees without having to trim the ground by clearing the ground where sunlight is irrespective of a steep mountain or a flat field.
- Grass can grow in the surrounding fields and plains where the solar cell modules are installed in the form of trees, so it is a good environment for farming and farming, so it fits well with nature like renewable energy.
- FIG. 1 is a view showing a perspective view of the triangular tree branch module 100
- b is a view showing a cross section of the triangular frame
- c is a cross-sectional view showing the assembly process of the solar cell (18).
- FIG. 2 is a perspective view of the square branch module 110
- e is a perspective view of the rhombus branch module 120
- f is a cross-sectional view of the square frame (10a)
- g is a solar cell simple module ( 22) is a cross-sectional view of the assembly process.
- 3 h is a cross-sectional view of the hexagonal frame 10b
- k is a cross-sectional view of the assembly process of the solar cell simple module 22.
- n is a cross-sectional view of the circular frame (10d)
- p is a perspective view of the assembly process of the solar cell simple module (22d).
- FIG. 5 is a plan view showing the assembly process of the triangular holding means 40, the module auxiliary frame means 50 and the solar cell simple module 22, r is a perspective view.
- 6 s is a plan view showing the assembly process of the module auxiliary frame means 50 and the solar cell simple module 22 having a triangular holding means 40 and the angled end 55b, t is a perspective view.
- v is a perspective view.
- FIG. 8 is a plan view showing the assembly process of the circular holding means (40d), the module auxiliary frame means (50b) and the solar cell simple module 22, x is a perspective view.
- FIG. 9 is a plan view showing a process of assembling the circular holding means 40d, the module auxiliary frame means 50b, and the solar cell simple module 22c, and z is a perspective view.
- FIG. 10 is a plan view of assembling the solar cell simple module 22 in the branch module frame 60, and b1 is a perspective view.
- FIG. 11 is a plan view of a process of assembling the solar cell simple module 22 in the branch module pair 60a, and d1 is a perspective view.
- FIG. 12 is a plan view of a process of assembling the solar cell simple module 22 in the branch module multiple frame 60b, and f1 is a perspective view.
- FIG. 13 is a plan view of a process of assembling the solar cell simple module 22d in the branch module frame curve type 60d, and h1 is a perspective view.
- FIG. 14 is a partial perspective view showing the process of fixing the wooden columnar module 200 to the supporting means 85, and the wiring means 89 is wired in the ground in the wiring configuration 88 of the supporting means 85. .
- FIG. 15 is a partial perspective view of the wooden pillar-shaped module 200 fixed to the supporting means 85 in FIG. 14, and the lightning rod 1 is formed at the support end 83.
- Figure 16 is a perspective view showing an enlarged portion of the wooden columnar module 200.
- FIG. 17 is a view illustrating the completion of the tree-shaped positive battery module 400 by assembling a rhombus tree branch module 120 to the tree columnar module 200.
- FIG. 18 is an enlarged perspective view illustrating a portion of the rhombus branch module 120 assembled in FIG. 17.
- Figure 19 is a perspective view of the process of assembling the branch fasteners 90 to the wooden columnar module 200.
- FIG. 20 is a perspective view illustrating the branch fasteners 90 assembled to the wooden pillar module 200 in FIG. 19.
- FIG. 21 is a perspective view illustrating the rhombus branch module 120 assembled to each connection portion 92 of the branch fastener 90 in FIG. 20.
- FIG. 22 is a view showing a tree-shaped positive battery module 500 made using a branch fastener 90.
- FIG. 23 is a view illustrating an integrated support 35 and a fixing plate 36 capable of assembling a branched module to a wooden columnar module 200.
- FIG. 24 is a perspective view of a tree-shaped positive battery module 600 having a pole pole, a traffic light, and a street lamp having a pole pole throttle means 2.
- the tree-shaped positive battery module 650 of FIG. 25 is integrated by fixing the tree pot 77 having an inner space in the fixing portion 78 of one or more portions of the lower end of the tree-shaped module 200 and actually living in the space portion.
- k1 is a perspective view of the tree solar cell module 700
- m1 is an enlarged perspective view of a part of the branch module 140.
- N1 in FIG. 27 is a perspective view of the tree solar cell module 710, and p1 is an enlarged perspective view of a part of the branch module 150.
- q1 is a perspective view of the tree solar cell module 720
- r1 is an enlarged perspective view of a part of the branch module 160.
- s1 is a perspective view of the tree solar cell module 730
- t1 is an enlarged perspective view of a part of the branch module 170.
- FIG. 30 is a plan view of the tree solar cell module 730.
- 31 is a perspective view of a tree solar cell module 730 made by assembling a large number of branch modules 170.
- FIG. 32 is a plan view of the tree solar cell module 730 of FIG.
- FIG. 33 represents a triangular tree branch module 100, a square tree branch module 110, a rhombus tree branch module 120, a circular tree branch module 130, and the like.
- FIG. I s a diagram illustrating the installation in an upward position when assembling and installing, u is a diagram illustrating installation in a horizontal direction, and v is a diagram illustrating installation in a downward direction.
- Circular holding means 40d Internal space 41, 41b, 41c, 41d
- Branch Module Pair 60a
- Branch Module Multiple Frame 60b
- Branch module frame curve type 60d
- corner parts 63
- 63a 63
- Branch Module 140 Branch Module 150
- Branch Module 160 Branch Module 170
- Tree pillar type module 200 Tree type positive battery module 400
- Tree Shape Battery Module (500) Tree Shape Battery Module (600)
- Tree Shape Battery Module (650) Tree Shape Battery Module (700)
- Tree Shape Battery Module 710 Tree Shape Battery Module 720
- FIG. 1 a is a perspective view of the triangular tree branch module (100).
- the triangular tree branch module 100 is assembled by assembling a solar cell that is generated by receiving sunlight on three sides of a triangular shape holding frame, and the triangular tree branch module 100 is a wooden pillar of a tree column type described later.
- the triangular frame 10 which is a component of the triangular branch module 100, may be made by extrusion, molding, assembly, or cutting, and the material may be aluminum or stainless steel.
- Metals, including glass, ceramics, including concrete can be used, resins, including plastics, vinyl resins and composites thereof, and even wood can be used, and when using concrete, concrete mixed with cement in the mold
- waterproof chemical treatment is performed so that moisture is not absorbed. It can be used to prevent it.
- Each of the three sides of the triangular frame (10) is provided with a groove space of about 5mm to 10mm depth to provide an assembly space portion 12, which is for assembling solar cells, of course, to maximize the area in each of the three sides It is provided with a large area, and both ends of each corner 11 is provided with a protruding jaw 13 protruding relatively due to the lower assembly space 12 is protruded as opposed to the assembly space 12.
- the inner frame 16 is provided in the interior of the triangular frame 10, the city of the present invention is also shown as a triangle. However, it should be noted that during manufacture, it may be made of a polygon including a circle, or a triangular frame 10 filled without the inner groove 16 of the frame may be made. However, in the configuration of the present invention, it is advantageous for the wiring arrangement that the frame inner groove 16 is provided, and its shape and size may be selectively determined and used according to a design for maintaining strength according to the material of the triangular frame 10. .
- the assembly space part 12 is provided with one or more wiring storage grooves 14 lowered in the direction of the frame inner groove 16.
- the electrical wiring of the solar cell is to be arranged.
- Home means.
- the longitudinal direction of the triangular frame 10 corresponds to the longitudinal direction of the fixing part 26 at the module end 23 of the triangular tree branch module 100.
- the wiring housing groove 14 of the triangular frame 10 in the direction of the frame inner groove 16 and the hole penetrating is provided at a predetermined distance to the wiring of the solar cell assembled in the assembly space (12) wiring storage groove ( 14), it can be put back inside the frame inner groove 16 through the through-hole to arrange.
- One end of the triangular frame 10 is provided with a fixed plate 24 used as an assembly means when assembling as a twig around the outer periphery of the wooden columnar module 200 which will be described later, the fixed plate 24 and the triangular frame ( The angle of the triangular frame 10 and the direction of the triangular plane with respect to the vertical angle of the fixing plate 24 are determined according to the angle and the direction in which the fixed part 26 is fixed and integrated.
- the triangular frame 10 may be provided upwardly, may be provided horizontally, or may be provided in a downward direction.
- the fixed position of the triangular tree branch module 100 with respect to the vertical of the tree columnar module 200 The direction of the upward, horizontal, downward direction is determined, and the angle is obvious that it can be manufactured by selecting at an angle within a range less than 180 degrees of the characteristics of the vertical material of the wooden column-shaped module 200 used as a wooden pillar. .
- triangular tree branch module 100 completed by the solar cell assembled in the triangular frame 10 is assembled to the wooden columnar module 200
- three sides of the triangular frame 10 are respectively 0 degrees and 120 degrees.
- the direction of the fixed plate 24 to be provided by selecting in all directions of 360 degrees according to the manufacturer's selection It can be fixed by fixing, and the viewing direction of the solar cell simple module 22 to be assembled to the triangular frame 10 can be assembled in the direction of the sunlight.
- Fixing plate 24 is a means of the plate that can be fixed to the wooden pillar-shaped module 200 is provided with a plurality of fixing holes 27 that are fixed to the wooden pillar-shaped module 200 through the edge of the fixed plate 24. .
- a wiring hole 25 penetrating through a portion of the center of the fixing plate 24 is connected to the frame inner groove 16 of the triangular frame 10.
- Each electrical wiring 20 of the solar cells 18, which is a component of the solar cell simple module 22, is arranged in the wiring housing groove 14, and arranged in the frame inner groove 16, and then, the wiring of the fixing plate 24 is again arranged.
- the wiring drawn out through the hole 25 and the wiring coming out of the wiring hole 25 is called a connecting wiring 30, and a connecting plug 31 is provided at the end thereof.
- the shape of the fixing plate 24 is shown and described in the shape of a rectangle in the illustrated figure of the present invention, when manufacturing can take the shape of a square, it can be made into a polygonal form including a circle.
- the fixing plate 24 has a shape of a semicircle so that the fixed plate 24 can be fixed to the circular support, and can be easily installed on the support corresponding to the diameter.
- a male screw or a female screw corresponding to the circumference of the wooden pillar module 200 may be provided and used as a screw assembly means.
- FIG. C a cross-sectional view of a process of assembling and fixing the sheet 17, the solar cell 18, the light-transmitting glass 19, and the like to the assembly space part 12 of the triangular frame 10 is provided.
- Sheet 17 is first assembled in the assembling space 12 of 12), and the solar cell 18 is stored therein, and the wiring 20 is arranged in the wiring storage groove 14 and the frame inner groove 16, and then flooded.
- the process of covering and fixing the glass 19 may be repeated to form a long branch module.
- the fixing of the sheet 17, the solar cell 18, and the transparent glass 19 is fixed to the protruding jaw 13, which is an edge of the assembling space 12, by means of an adhesive process, and is fixed by an adhesive process. To be possible.
- screw holes are formed in a part of the sheet 17, the solar cell 18, and the transparent glass 19, and screw holes are formed in the assembly space portion 12 corresponding thereto.
- the adhesive fixing as an adhesive means is advantageous for assembly, the adhesive means can be used as an adhesive means used in the industry, including silicon.
- the triangular tree branch module 100 As described above, there is a method of making the triangular tree branch module 100 by assembling the sheet 17, the solar cell 18, and the light-transmitting glass 19 sequentially to the triangular frame 10 separately.
- the sheet 17, the solar cell 18, the transparent glass 19 is assembled and modularized to make the solar cell simple module 22 can be used.
- the solar cell simplified module 22 or the solar cell simplified module 22d may be illustrated and described in order to simplify the description.
- the solar cell means that can be assembled in the assembly space portion 12 of the triangular frame 10 is configured to assemble the solar cell simple module 22 made in advance, and assembled and fixed in the assembly space portion 12 By doing so, it is possible to make the triangular tree branch module 100 easily, accurately and quickly.
- FIG. 1B is a cross-sectional view of the triangular frame 10
- FIG. C is a sheet 17, a solar cell 18, and a transparent glass 19 in the assembly space part 12 of the triangular frame 10.
- the process of making a triangular tree-shaped module 100 is shown and described in a cross-sectional view.
- the triangular frame 10 refers to a frame means in which the solar cell 18 or the solar cell simple module 22 is not assembled in the assembling space 12, and the triangular tree-shaped module ( The solar cell 18 or the solar cell simple module 22 is assembled in the assembly space portion 12 of the triangular frame 10, and the fixing plate 24 is provided at one end thereof. Indicates that the connection wiring 30 and the connection plug 31 are provided at the end thereof with the wiring hole 25 of the ().
- the length of the triangular frame 10 can be selected and manufactured according to the size of the solar cell module of the tree shape to be made, and also, the material of the triangular frame 10 It may vary depending on the strength of the.
- the thickness of the solar cell module can be selected and manufactured at the time of manufacture.
- the thickness of the triangular frame 10 may be determined by the size of the solar cell, that is, based on the size of the commercially available standard solar cell, it can be designed in the form of fitting the assembly space portion 12. .
- the width of the assembly space 12 can be made about 160mm wide.
- the width of the corner portion 11 and the corner portion 11 on one side of the triangular frame 10 is 20 mm. Plus 160mm plus 20mm can be made in a size similar to the total 200mm and the thickness of the triangular frame 10 to make a triangular tree-shaped module 100.
- the length of the triangular frame 10 is a solar cell 18 that is assembled when the horizontal and vertical sizes of the solar cells 18 in the assembly space portion 12 to 156mm, 156mm, or when assembled using the solar cell simple module 22. It is determined according to the quantity of), that is, if the number of solar cells 18 is assembled to 10 using the length of the fixed plate 24 to 1560mm, the length of the triangular frame 10 may have a length of about 1600mm. .
- the length of the triangular tree branch module 100 is determined according to the quantity of solar cells 18 assembled by the manufacturer.
- an LED module assembled in the size of the solar cell simple module 22 may be assembled into one assembly space unit 12.
- the surface on which the LED module is assembled is directed in a downward direction and installed like a twig in a pillar module described later, in the dark evening. It is obvious that if the LED module is turned on, it can act as a street lamp.
- a reflective module using a glass mirror capable of reflecting light instead of an LED module or a reflective film made by depositing aluminum may be assembled into the assembly space part 12 of the one surface.
- the triangular tree branch module 100 installed immediately below By reflecting light on the solar cell simple module 22, it is possible to increase power generation efficiency and reduce manufacturing costs.
- the module end 23 of the triangular tree-shaped module 100 may be provided by assembling a small solar cell simple module 22 corresponding to it because it is a part of the sunlight well.
- the LED module may be assembled in place of the solar cell simple module 22 at the module end 23 so that the LED flashes in the evening to identify each triangular branch module 100. .
- connection wiring 30 is rearranged into the frame inner groove 16 through the wiring hole 25 of the fixing plate 24, and the connection plug 31 is provided at the end thereof.
- connection plug 31 it is possible to electrically connect to the connection socket 34 provided in the wooden column-shaped module 200 to be described later.
- the triangular tree branch module 100 is used as a solar cell module in the form of a tree branch, and there is no leaf so that it does not shake in the wind, and by selecting its thickness and length according to the size of the solar cell of the tree shape to be made In the manufacturing method, a small sized or large sized solar cell module can be made.
- the triangular tree branch module (100) is a smaller form of the remaining topographical module having a similar shape to the same principle as the triangular tree branch module (100). It can be installed by fixing the topographical module like the twigs attached to the branches of the tree on the side, but has the disadvantage of increasing the wind resistance, the disadvantage of shading, and the disadvantage of increasing the manufacturing cost.
- the use of the present invention is shortened because it is not shown in the present invention because it serves as a disadvantage in many uses, but it is revealed that the residual terrain module in the form of twigs can be configured when necessary when manufacturing.
- the light-receiving part of the solar cell simple module 22, that is, the outside of the light-transmitting glass 19, has a function of self-cleaning so that foreign matters such as dust can easily fall off.
- the projections can be raised or coated with a self-cleaning coating to enable the self-cleaning function.
- Fine projections such as the structure of the lotus leaf with self-cleaning
- the coating agent with self-cleaning is a technique already used in the industrial field, and a detailed description of the general components are omitted.
- FIG. 2 it is a perspective view of the square branch module 110. It is made in the same manner as the triangular tree-shaped module 100 described above, and if there is only a difference is the difference between the triangular frame 10 and the square frame (10).
- grooves having a depth of about 5 mm to 10 mm are provided on four surfaces of the rectangular frame 10 a to provide an assembly space part 12. , This is for assembling a solar cell, both ends of each corner 11 is provided with a protruding jaw 13 protruding relatively due to the lower assembly space 12 is protruded in contrast to the assembly space 12. .
- the inner frame 16 is formed in the rectangular frame (10a), one or more wiring storage groove (lower in the direction of the frame inner groove 16 in the assembly space portion 12 ( 14) is provided, although not shown in the figure is arranged at a predetermined distance in the longitudinal direction of the rectangular frame (10a) is provided with a hole penetrating the frame inner groove 16 in the wiring housing groove (14).
- One end of the rectangular frame (10a) is provided with a fixing plate 24 used as a means to be assembled to the wooden column-shaped module 200 described in the future, one end of the fixing plate 24 and the square frame (10a), high
- the angle of the square frame 10a and the direction of the square surface are set according to the direction of the angle fixed to the government part 26.
- the rectangular frame 10a may be provided upward from the fixing part 26, may be provided horizontally, or downward. It may be provided in the direction of.
- the tree pillar module 200 stands vertically as a tree pillar.
- the direction of the up, horizontal, downward direction is determined by the fixed position of the square branch module 110 outside the periphery thereof.
- the square branch module 110 is fixed to the same rectangular direction as the direction of the square fixing plate 24 provided at one end of the square-shaped square frame 10a.
- two symmetrical directions of the solar cell convenience module 22 assembled on the four sides of the square branch module 110 are upward and downward directions, that is, 0 degrees. It is positioned in the direction of 180 degrees, the fixing plate 24 is provided so that another two symmetrical directions can be located at both sides, that is, 90 degrees, 270 directions.
- the square-shaped rectangular frame 10a stands 45 degrees to form a rhombus shape
- the rhombus branch module 120 is fixed by being fixed to the square-shaped fixing plate 24.
- the assembly process is the same as the triangular tree branch module 100 and the square tree branch module 110 described above, when assembled to the wooden column-shaped module 200, the angle of the direction that the solar cell simplified module 22 looks at 45 degrees, 135 degrees, 225 degrees and 315 degrees, the rectangular frame 10a and the fixing plate 24 in the same rectangular direction in the same rectangular direction is shown and described with a fixed angle of 45 degrees, but if necessary, 360 degrees all directions In order to be positioned in the required direction can be fixed to the fixing plate (24).
- the sheet 17, the solar cell 18, and the transparent glass 19 are assembled into the assembly space part 12 of the rectangular frame 10a, or the solar cell simple module 22 is assembled.
- the same as the assembly process of the triangular branch module 100 described above will be omitted.
- the hexagonal frame 10b is a hexagonal frame, and the same principle as the description of the triangular frame 10 and the square frame 10a in the above description, and in the polygonal frame with a larger number of faces.
- an assembly space part 12 and a frame inner groove 16 are provided therein, where solar cells can be assembled, and at least one wiring storage groove in the assembly space part 12 ( 14, and has a hole that penetrates into the inner frame groove 16 in the wiring housing groove (14).
- the sheet 17, the solar cell 18, and the light-transmitting portion are assembled into the assembly space portion 12 of the hexagonal frame 10b in the same manner as the triangular frame 10 and the rectangular frame 10a.
- a hexagonal tree branch module or a hexagonal tree columnar module 200 is made.
- the assembly space portion 12 is provided on each side of the frame of the polygonal shape including a triangle, a square, a pentagon, a hexagon, the inner frame groove 16 therein, the assembly space portion 12 is a wiring
- the wiring housing groove 14 is provided to arrange the housing, and is arranged at regular intervals in the longitudinal direction of both ends of each frame to provide the inner frame 16 and the wiring storage groove 14 and the through holes.
- the solar cell simple module 22 is assembled to the trunk 12 to be modularized to be used as a branch module or a pillar module.
- Triangle, rectangular frame is suitable as branch type module, pentagonal, hexagonal frame is advantageous to use as a wooden column module because, when using the same size solar cell, triangular, square, hexagonal shape This is because the size of the periphery, that is, the thickness is different, it is advantageous to use as a pillar module than the branch module if the perimeter is large.
- the circular frame 10d is a protruding jaw arranged at regular intervals on the surface of the outer periphery in a circular long rod-shaped frame provided with a frame inner groove 16d therein
- An assembly space portion 12d having a width of about 5 mm to 10 mm is provided between the two spaces, and the assembly space portion 12d is rounded like a circumference of a circle of the circular frame 10d, and between the middle portions thereof.
- the solar cell simple module 22d is assembled to the assembly space portion 12d of the circular frame 10d in the manner described above with respect to the assembly space portion 12d, and fixed to the edge and the projection jaw 13 by means of bonding.
- the solar cell simple module 22d has a round shape corresponding to the round shape of the assembly space portion 12d to facilitate assembly.
- the solar cell simple module 22d is a solar cell simple module 22d made by modularizing a round sheet solar cell and a transparent glass corresponding to the round shape of the assembly space part 12d.
- Circular tree branch module 130 having a fixed length (24d) at one end with a circular frame (10d) having a constant length as described above and assembled a solar cell simple module (22d) on the outer periphery is a branch module Can be used, or instead of the fixed plate 24 can be used as a wooden pillar module 200 by configuring a fixed plate 81 which can be fixed vertically described later, the wooden pillar module will be described in detail later.
- Sheet, solar cell in each frame means provided with an assembly space portion, a wire storage groove and the inner frame groove in the center on the outer surface of the polygonal frame including the triangle, square, pentagon, hexagon, and circle described above ,
- Transparent glass or solar cell simple module is assembled to assembly space, waterproof adhesive is fixed to the edge and protruding jaw. That is, it is possible to make a tree branch module having a polygonal shape by drawing out the wiring hole on the side where the fixing plate is provided and having a connecting plug 31 at the end thereof, and instead of the fixing plate fixed to one side of each frame means.
- the fixing plate 81 is configured to be fixed to the floor has been described that can be used as a pillar module.
- the triangular holding means 40 is provided with an assembly space part 12 and a wiring storing groove 14 at the surface part 42, and is provided at the center thereof.
- a triangular shaped inner space portion 41 is provided, and each of the three surface portions 42 is provided with a screw hole 58 provided to be assembled by a screw means in the direction of the inner space portion 41.
- the triangular holding means 40 may be a material of ceramics, including metals, wood, plastics, vinyl resins, concrete, and the length thereof according to the size of the branch module or column module of the solar cell to be made, Or you can shorten it to the size you want.
- the fixed plate 24 is fixed to one end, and when used as a pillar module, the fixed plate 81 can be used to form a fixed stand vertically at one end.
- the solar cell simple module 22 is assembled to use the module auxiliary frame means 50 is assembled and fixed.
- the module auxiliary frame means 50 is assembled in close contact with the surface portion 42 of the triangular holding means 40, the length of the width of the module auxiliary frame means 50 is the width of the surface portion 42 of the triangular holding means (40) It is easy to assemble by making the length or the same as both ends 55 or the same, the length is provided with the same as the length of the triangular holding means 40, the thickness is about 10mm to 20mm, assembled close to the surface 42
- the rear surface 54 is provided flat without irregularities, the opposite side is provided with an assembly space portion 12 lowered in the direction of the rear surface 54, the assembly space portion 12 is provided with a wire receiving groove 14 and both Protruding jaw 13 is provided in, the end of the protruding jaw 13 is the end portion (55).
- the module auxiliary frame means 50 is provided with a lower assembly space portion 12 than the end portion 55 of the width is relatively high projection jaw 13 inside the end portion 55, the assembly space portion 12
- a plurality of wiring storage grooves 14 are provided in the longitudinal direction to accommodate wiring, and also include a screw assembly hole 53 penetrating from the wiring storage grooves 14 toward the rear surface 54, and the screws
- the assembling hole 53 is provided on the same line as the screw hole 58 of the triangular holding means 40 so that it can be assembled with the fixing screw 59.
- the assembly space portion 12 of the module auxiliary frame means 50 is a space for assembling the solar cell simple module 22, the rear surface of the module auxiliary frame means 50 on the surface portion 42 of the triangular holding means (40) 54), the fixing screw 59 is locked to the screw hole 58 of the triangular holding means 40 by the screw assembling hole 53, and the module auxiliary frame means is formed on each surface 42 of the triangular holding means 40.
- the solar cell simple module 22 is assembled in the assembly space part 12, and is fixed by adhering with the protruding jaw 13 at the edge.
- the module auxiliary frame means 50 ends.
- the 55b is at an angle of 150 degrees rather than a right angle to the rear surface 54, so that each end portion 55b is in close contact with each other without being opened when assembled to the triangular holding means 40.
- the triangular holding means 40 may be made in a polygonal form including a triangle, a pentagon, a hexagon, as well as a triangle, which will be described below.
- the octagonal holding means 40c is illustrated, and the rear surface of the end portion 55b of the module auxiliary frame means 50 is assembled to the polygonal holding means including the octagonal holding means 40c.
- the angle is 150 degrees when assembled into a triangle, 135 degrees when assembled into a rectangle, 126 degrees when it is a pentagon, 120 degrees when it is a hexagon, about 115 degrees when it is a hexagon, about 112.5 degrees when it is an octagon, and when it is an octagon If it is 110 degrees or 10 degrees, it has 108 degrees.
- the size of the same circumference corresponding to the value of the outer circumference of the circle, that is, the outer circumference of the surface portion 42b, is the module auxiliary frame means 50b.
- the rear (54b) of the is attached to the rear surface (54b) of the module auxiliary frame means (50b) to the surface portion (42b) of the circular holding means (40d) is a configuration that is tightly assembled without close gaps.
- the assembly space portion 12 and the protruding jaw 13 of the module auxiliary frame means 50b are angled, and the solar cell easy module 22 is also assembled because it is flat.
- the angle is made according to the quantity of the module, and in reference to w, x of Figure 8, to form an octagon using eight of the module auxiliary frame means (50b), each solar cell easy module 22 part octagon
- the end portion (55b) is the corner portion is to form an octagonal pillar as a whole.
- the outermost transparent glass of the solar cell simplified module 22c assembled in the assembly space portion 12 of the module auxiliary frame means 50b. Can be made into round shape to make circular solar cell pillar module
- the circular holding means 40d has been described as a circular holding means 40d having a cylindrical shape in the longitudinal direction, that is, the same diameter at both ends.
- the circular holding means 40d is tapered. If the circumference has a large diameter and a small diameter at the upper end, such as an electric pole having an angle, the width of both ends of the longitudinal direction of the module auxiliary frame means 50b may be configured to correspond thereto.
- the size of the lower width is made larger than the upper width, the difference in size corresponding to the difference in the dimensions for the parts assembled at each position in the size difference between the diameter of the lower end and the upper end of the circular holding means (40d) module It is apparent that the dimensions of the upper and lower ends of the auxiliary frame means 50b have corresponding dimensions.
- the circular holding means 40d is a means having a difference between the lower end and the upper end like a power pole
- the module auxiliary frame means 50b assembled therein has another size corresponding to the size of the width of the upper end and the width of the lower end. It is self-evident that it is made in the dimensions of.
- the size of the upper end and the lower end of the end portion 55b of both sides of the module auxiliary frame means 50b can be made different in one side and wider than the other, and an assembly space part including the end portion 55b corresponding thereto ( 12) different sizes of the upper and lower ends, such as the width of the solar cell, the solar cell simple module 22, the solar cell simple module 22c, or the solar cell simple module 22, assembled in the assembly space 12, solar cell simple It is apparent that even the sheets, the solar cells, and the transparent glass, which are components of the module 22c, may have sizes of widths corresponding to the assembly spaces 12 having different widths of the upper and lower ends.
- Branch module frame 60 which is a component, is a frame means having one assembly means, that is, one assembly space portion 12 fixed to accommodate and assemble one solar cell simple module 22, and cannot be used as a pillar module. It will be used as a module.
- Branch module frame 60 has a thickness of about 10mm to 20mm, the width of the width, that is, both ends 65 can be manufactured by varying the size according to the assembled solar cell simple module 22, as described above
- the width of the assembling space 12 can be made about 160 mm. Assuming that 20 mm between the protruding jaw 13 and the end 65 of the side is 40 mm on both sides, the sum of the width of the assembly space 12 and the width of 160 mm are all about 200 mm.
- the length of the branch module frame 60 is determined by the number of solar cells assembled in the solar cell simple module 22 assembled in the assembly space 12, the length can be determined according to the manufacturer's choice.
- the assembly space portion 12 is provided on the front surface of the branch module frame 60 is provided with one or more wiring receiving grooves 14, protruding jaw 13 protruded higher than the assembly space portion 12 into the end portion 65. Due to the assembly space 12 is configured to be low, the reinforcement frame 66 is integrally provided in the integral portion 64, which is a part of the rear portion, the length of the branch module frame 60 in a circular shape It is provided in the direction having the same length, the inner space 67 is provided in the center of the circular.
- the solar cell simple module 22 is accommodated in the assembling space 12 by including a plurality of hole means penetrating from the outside of the branch module frame 60 to the inner space 67 and a plurality of bolt holes 68.
- a plurality of hole means penetrating from the outside of the branch module frame 60 to the inner space 67 and a plurality of bolt holes 68.
- the solar cell simple module 22 is assembled to the branch space 140 of the branch module frame 60 in the above-described manner to form the branch module 140.
- the solar cell simplified module 22 assembled in the assembly space 12 of the branch module frame 60 is inserted into the fixed bar in the inner space 67 of the branch module 140.
- the bolt hole 68 is fixed to the bolt hole 68 by means of a bolt and used as a branch module.
- the fixing rod inserted into the inner space portion 67 of the reinforcing frame 66 of the branch module 140 is a rod means fixed in advance to the outer circumference of the pillar-shaped support, and the branch module 140 on the fixing rod. Inserted into the inner space portion 67 of the bolt hole 68 can be fixed to the bolt means to form a solar cell module in the form of a tree.
- the branch module 140 is assembled to each of the fixed rods. That is, if it is described further, the tree-shaped pillars and a layered layer of fixed rods arranged in the outer circumference of the tree-shaped fixed bar, and the branch module 140 is assembled to each of the fixed rods, You can configure the module.
- the shape of the reinforcing frame 66 and the inner space portion 67 may be made in a polygonal shape as well as a circular shape, and the fixing rod assembled therein corresponds to the shape of the inner space portion 67 to include a circle. Can be made into polygons.
- c1 is a plan view of the branch module 150
- d1 is a perspective view
- the branch module 150 applies the branch module 140.
- 66) is made of a branch module pair 60a that can accommodate two solar cell easy module 22, there is provided two assembly space portion 12 for assembling the solar cell simple module 22,
- the edge module 63 of the protruding jaw 13 is composed of the branch module frame 60 is joined to each other at a 120-degree angle is provided with a branch module pair 60a.
- branch module frame 60a is illustrated with two branch module frames 60 at an angle of 120 degrees, it is obvious that the branch module frame 60a can be made by selecting an angle smaller than 120 degrees, or a large angle.
- the branch module twin frame 60a forms 120 angles at the edge portion 63 joined with the two assembly space portions 12, and the rear side of the branch module twin frame 60a has two assembly space portions 12.
- the reinforcing frame 66 provided with the inner space 67 in the integral portion 64a is integrally provided in the same direction and in the same length, and the inner space in the assembly space 12 of the branch module pair 60a.
- a plurality of wiring arranging holes and bolt holes 68 are provided, and the description of the use example is the same as that of the branch module 140 described above.
- e1 is a plan view of the branch module 160
- f1 is a perspective view of the branch module 160
- the branch module 160 may house and store the solar cell simple module 22.
- Assembled space portion 12 is provided with a plurality of branch module multiple frame 60b provided with three, it is a composite form of the branch module frame 60, the branch module frame 60a described above, branch module frame 60
- the shape of the three at each corner portion (63a) of the 135 degrees angle is assembled to the branch module plural frame 60b, the branch module plural frame (60b) has an assembly space portion 12 is 135 degrees It is provided.
- the reinforcing frame 66 having the same length in the longitudinal direction at the middle of the branch module plural frame 60b is integrally provided, and the portion thereof is named as the unit 64a, and the frame reinforcing frame 66 is provided.
- the inner space portion 67 is provided in the center of the central portion, and the inner space portion 67 and the open gap space 72 in the longitudinal direction in one portion of the reinforcing frame 66 and the stone protruding from both sides It is provided with the fixing unit 70, the protruding fixing unit 71, and used as a fixing means, that is, having a plurality of fixing bolt holes 73 on the side of the fixing fixing unit 70, the protruding fixing unit 71 and fixed When the assembly is tightened together with the nut by means of the bolt 74, the inner space 67 is tightened by an operation of tightening the protrusion fixing portion 70 and the protrusion fixing portion 71 by the gap space 72 provided therebetween. When the result is obtained, if there is a circular fixing rod in the inner space
- g1 is a plan view of the branch module 170
- h1 is a perspective view
- the branch module frame curve type 60d of the branch module 170 is shaped like an assembly space 12. It is arched in the shape of a part of a circle, and a plurality of wiring receiving grooves 14 are provided on the surface thereof, and protruding jaws 13 are provided on both sides of the assembly space portion 12d as high as the end portion 65d. As a result, the assembly space portion 12d is provided low.
- the reinforcing frame 66 is integrally provided in the longitudinal direction at the center of the back of the branch module frame curve type 60d, that is, in the middle of the arch shape, in the longitudinal direction.
- the section 67 is provided in the longitudinal direction.
- an inner space portion 67 and an open gap space 72 are formed in a longitudinal direction, and the protrusion fixing portion 70 and the protrusion fixing portion 71 protruding from both sides. And a certain distance from the sides of the protrusion fixing portion 70 and the protrusion fixing portion 71 and provided with a plurality of fixing bolt holes 73 and fixing bolts 74 on the same line to tighten the bolt means. 70, the protrusion fixing part 71 is tightened, and the inner space part (by tightening the gap space 72) by means of being able to be firmly fixed to the circular fixing rod to be inserted into the inner space part (67). 67) is fixed to the circular rod.
- the solar cell simple module 22d which is assembled in the assembly space portion 12d of the branch module frame curve type 60d, also has an advantageous side surface in which an arc-shaped solar cell corresponds to the arch shape of the assembly space portion 12d.
- the wafer is formed into an arch shape, a cutting process is used, and a solar cell is used as a cell process.
- each branch module and each pillar module described above are made long, they can be made straight in the longitudinal direction according to the purpose, or the branch module or the pillar module which is gently curved by making the curve bend in a gentle curve. Free-form curves can be made in the form of wooden solar modules.
- it may have a small angle of twist, or may have a combination of small warpage and twist.
- each branch module and pillar module in a straight line, it can be used for power generation only. It gives a gentle curve and twist to make a beautiful landscaping tree-shaped solar cell module. It can be made and used so that it can have a design that matches the living environment while generating solar power.
- a triangular frame 10 or a square frame 10a, or a hexagonal frame 10b, or an octagonal frame 10c, or a polygonal frame including a circular frame 10, a triangular holding means 40, or Assembling the solar cell simple module 22 in the assembling space portion 12 or the assembling space portion 12d in a polygonal holding means including a blind holding means 40b, an octagonal holding means 40c, or a circular holding means 40d.
- the fixing plate 24 is provided at one end, it is used as a branch module, and if the fixing plate 81 is provided at one end, the pillar module is used in detail.
- the column module that is, in more detail with respect to the column pillar module 200
- a fixed plate 81 is provided at one end of the column pillar module 200
- the plate 82 supports the fixed plate 81 and the wooden columnar module 200, and an assembling bolt hole is provided through each of the reinforcing plates 82.
- the nut hole 84 corresponding to the fixing hole 27 of the fixing plate 24 of the branch module is provided in the portion of the tree module module 200 to fix each branch module of the description.
- Each wiring hole 80 is provided with a separate connecting wiring 33 and a connecting socket 34 at an end thereof, and the connecting wiring 33 is a frame inner groove 16 of the wooden pillar module 200.
- the main wiring 38 housed and housed in the inner frame groove 16d, the inner space portion 41, or the inner space portion 41b, or the inner space portion 41c, or the inner space portion 41d. It is electrically connected in parallel or in series and can be pulled out and arranged under the fixed plate 81.
- a connecting plug 31 is provided at the end of the main wiring 38.
- the inner frame 16, or the inner frame 16d, or the inner space 41, or the inner space 41b, or the inner space 41c, or the inner space 41d is a triangle described above.
- the connecting socket 34 is connected to the grounding means 89 in the ground, and the wiring means 89 is a wiring means connected by a control means such as an inverter on the load side.
- connection plug 31 Connects the connection plug 31, the connection socket 34 and put the fixing plate 81 of the wooden column module 200 on the fixing bolt 86 of the support means 85 and nut means (to the fixing bolt 86) If you lock 87) to lock the installation of the wooden columnar module 200.
- the pillar module is representatively described as a wooden pillar module 200 in each pillar module, and the assembly work of the tree-shaped positive battery module 400 is illustrated and described as a rhombus branch module 120 in each branch module.
- the assembly work of the tree-shaped positive battery module 400 is illustrated and described as a rhombus branch module 120 in each branch module.
- a connecting socket 34 when the fixing plate 24 of the rhombus module 120 is installed in each nut hole 84 of the wooden pillar module 200, Connect the connecting socket 34 and align the fixing hole 27 and the nut hole 84 with the fixing plate 24 of the rhombus module 120 while being pushed into the wiring hole 80 and locked by the fixing bolt means.
- Each rhombus branch module 120 is fixed to the columnar module 200 to complete the tree-shaped positive battery module 400.
- FIG. 16 is an enlarged view of the tree columnar module 200
- FIG. 17 is an installed front view of the tree type battery module 400
- FIG. 18 is a tree type battery module ( 400 is a partially enlarged perspective view of where the rhombus branch module 120 is installed.
- the tree-shaped positive battery module 400 is a triangular tree branch module 100, a square tree branch module 110, a rhombus tree branch module 120, like a tree branch on the outer circumference of the tree columnar module 200. Assemble, etc., each one of the triangular tree branch module 100, the square tree branch module 110, the rhombus tree branch module 120 in one tree type battery module 400 It can be assembled only, or can be assembled in combination.
- the rhombus branch module 120 is installed at a cross angle with the rhombus branch module 120 in the next compartment. Twig module 120 is assembled with the floor, the lower layer, or the upper layer is assembled with each other so that the sunlight can evenly shin.
- Another twig-like module similar to or similar to the side circumference of the rhombus twig module 120 may be installed like a twig attached to a tree branch, but becomes more resistant to wind and is shaded by the twig module. It causes a decrease in efficiency in the development of the tree-shaped module 120 and the pillar-shaped module 200, the power generation efficiency is not large compared to the manufacturing cost of the twig module is not preferable in terms of efficiency, even if the efficiency is reduced only landscaping It can be used only for the purpose and is not shown in the present invention.
- the tree-shaped positive battery module 400 is to be installed, like a method of installing a power pole, deeply digging the ground with a screw drill machine, or digging the ground with a fork lane and burying the base of the wooden pillar module 200. Can be installed by fixing.
- the branch fastener 90 is used as a pair of two independent branch fasteners 90, the configuration is changed according to the shape of the wooden column-shaped module 200 of the intended use, the branch fastener in the present invention
- the branch fastener 90 is shown and described in the corresponding structure when using the applied column pillar module 200 in the form of an octagon, the wooden pillar module
- the branch fastener 90 can be selected and manufactured correspondingly.
- the branch fasteners 90 can be made in two or three parts to be assembled from the side of the circumference of the column-shaped module 200, in the present invention has been shown and described in two parts.
- branch fastener 90 When the branch fastener 90 is made into two parts and assembled, it is assembled into an octagonal shape that can be assembled in an octagonal shape of the outer circumference of the wooden pillar module 200, and one branch fastener 90 is octagonal.
- the octagonal branch fasteners 90 are provided with half of the three sides and half of the sides are provided at both ends, and each of the fastening plates 91 protrudes to the side and integrally. It is provided, one side is provided with one or more fastening holes 95, the fastening hole 95 is provided so as to be on the same line when the two branch fasteners 90 combined.
- Each side of the branch fastener 90 was named as a connecting portion 92, and the connecting portion 92 is provided with one wiring hole 96 into which the connecting socket 34 can be inserted, and around the nut hole. It is possible to fix the fixing plate 24 attached to the rhombus branch module 120 or other twig module means by making a large number of 97, and the nut hole 97 and the fixing hole 27 of the fixing plate 24. The fixing bolts must be assembled on the same line.
- the shape of the branch fastening holes 90 becomes a hemispherical shape that is half of a circle, and the wiring holes 96 are formed by the number of branches to be fixed around the branch fastening holes 90. It is apparent that the nut hole 97 can be used, and the branch fastener 90 of each polygon corresponding to the shape of the column pillar strut to be used can be made and used.
- two branch fasteners 90 are joined to the outer circumference of the tree-shaped module 200, and fastening bolts 98 and fastening nuts are formed in the respective fastening holes 95 of the fastening plates 91. (99) to assemble and fit the nut hole (97) of the connection portion 92, the fixing hole (27) of the fixing plate (24) of the rhombus module module 120 is assembled by tightening with bolts, nuts means A diagram showing a solar cell module 500.
- FIG. 23 a wooden pillar having an integrated support 35 and a fixed plate 36 which can be assembled to a tree-shaped module 200 including a branch module including a square branch module 110 is integrally provided.
- Figure 200 is a diagram illustrating the module 200, the integrated support 35, the fixed plate 36 for assembling the square tree branch module 110, the outer periphery of the column-shaped module 200 can be provided have.
- the integrated support 35 may be provided in the form of a polygon including a circle, the direction can be made according to the direction to be installed of the square branch module 110, the shape of the fixed plate 36 Although shown as a rectangle, it can be made of polygonal plates, including circular plates.
- the integrated support 35 and the fixing plate 36 may be made of metal and fixed by welding means.
- the integral support 35 made of a metallic material is welded to the reinforcing reinforcement skeleton to be integrated, and the integrated support 35 is fixed by concrete molding. 36 may be provided.
- the front surface of the fixing plate 36 is connected to the inner space portion of the wooden pillar-shaped module 200 through the inner space portion of the integrated support 35 through the wiring hole 37, the connection socket with the connection socket 34 33 is configured externally through the wiring hole 37.
- the tree-shaped positive battery module of the present invention when installing and using the tree-shaped positive battery module of the present invention that can be installed by applying the installation fixtures necessary for the road around the life, the tree-shaped module of the tree-shaped positive battery module 600 Lightning rod 1, or electric pole throttle means 2, or a transformer, or a traffic light 8, or a street lamp 9, etc. may be installed and used on one portion of the upper portion of the 200, The lower part can be used by installing pots.
- the tree-shaped positive battery module 600 is a lightning rod 1, or electric pole as shown in the upper portion of the upper portion of the wooden columnar module 200 in the above-described tree-shaped positive battery module 400 as shown in the drawings Frame means (2), or a transformer, or a traffic light (8), or a street lamp (9), such as additional installation and the bottom portion is installed to show an example of the use, the tree-shaped positive battery module 600 in the present invention ) And it is described.
- the pole throttle means (2) called bong, wrought iron, shoulder strap, which is an accessory of the power pole to the upper portion of the wooden columnar module 200
- the wire cord like that of the power pole It can be connected, so it can be installed around the road and play a role of power pole while developing.
- the tree type battery module 600 When the tree type battery module 600 is installed in an area where no power pole is installed, and when the generated electricity is connected to the electric facility of KEPCO, the tree type battery module 600 is replaced by a power pole without installing a separate power pole.
- the electricity generated by the sunlight generation of the tree-shaped positive battery module 600 is converted to AC electricity by an inverter, boosted by a transformer electric pole throttle means (2) has the great advantage of being able to transmit directly through the power cord installed in.
- the solar cell may also be provided in the electric pole throttle means 2 or the traffic light support 7 in the manner described in the square branch module 110.
- a portion of the wooden columnar module 200 preferably between about 5m to 7m from the bottom, that is, the height of the tree columnar module at a height corresponding to the height of the traffic light is installed on the road It is possible to fix the traffic light support (7) to the traffic light fastener (6) to the 200 and to install the traffic light (8) integrally at the end thereof.
- the tree-shaped positive battery module 600 can be used as a traffic light while installing solar power on street roads, as a substitute for power poles as described above, while using solar power, and in the same manner by installing signs, intermittent cameras, etc. to achieve the purpose of installation. It can be, by installing a street light (9) has a great advantage that can be used as a street light.
- the tree-shaped positive battery module 650 includes a tree pot 77 having an inner space at a portion between about 3 m to 5 m at the fixed bottom of the installation of the wooden pillar module 200. It will be described below with a view showing a tree-shaped positive battery module 650, which is fixed and integrated and planted the roots of a real living tree in the space to serve as solar power and roadside trees.
- the tree pot 77 is a tool for the purpose of planting a real small tree, the interior of the empty space is added and the upper portion is started, the fixing portion 78 is fixed to the wooden column-shaped module 200 by welding means or It can be fixed and fixed with bolts, and the roots of small trees can be planted in the inner space by filling with crushed soil, or processed ceramic powder, which can act as soil or soil so that the tree can live with roots. have.
- the tree pot 77 may be a polygonal flower pot including a cylindrical shape, the material may be a metal, ceramic, plastic, and the like.
- the tree pot 77 has a fixed angle of the tree has an angle in the tree and can be used within a range of 180 degrees of the columnar module 200.
- the tree planted in the tree pot 77 may serve as a living branch in the tree-shaped module 200 of the tree-shaped positive battery module 650 and may serve as a roadside tree in a downtown area.
- the tree-shaped positive battery module 650 When the tree-shaped positive battery module 650 is installed and used as a roadside tree, people walking on the sidewalk blocks see the actual trees planted in the tree pots 77, and a rhombus branch module at the upper end thereof ( There is an advantage that can be solar-powered in the module module equipped with solar cells, including 120).
- the fixed portion 78 is connected to the grooves penetrated into the grooves inside the frame of the column-shaped module 200
- a bundle of fine tubes serving as capillaries by the penetrated grooves that is, the upper end of the capillary bundle is positioned at the lower end of the inner space of the tree pot 77, and the lower end of the capillary bundle is the lower end of the columnar module 200. Equipped to escape.
- the capillary bundles When installing and fixing the tree-shaped positive battery module 650 so that the capillary bundles escaping to the lower end of the columnar module 200 are deeply buried in the ground, the capillary bundles suck the water from the ground by the principle of capillary, and the tree pots. Moisture can be supplied to the 77 and the tree planted in the tree pollen 77 can be supplied with the moisture.
- the bundle of capillaries is a bundle of fine tubes inside, which can be made of stainless steel, ceramics including glass, plastic resins, and vinyl resins.
- k1 is a perspective view of the tree solar cell module 700
- m1 is an enlarged view of a part of the branch module 140
- the tree solar cell module 700 is the branch module described above. It is a figure which shows the installation example to the support means 45 by the 140
- the support means 45 is a steel support of the metal means which is not provided with a solar cell, or a concrete support means. Insert the rod support into the inner space portion 67 provided in the branch module 140 to the rod support fixed to the holding means 45, and tighten the bolt to fix the wooden solar cell module 700 It can be used for solar power generation.
- n1 is a perspective view of the tree solar cell module 710
- p1 is a partially enlarged view of the branch module 150
- the tree solar cell module 710 is the branch module (described above).
- 150 is a view showing an installation example on the holding means 45
- the rod support is inserted into the inner support portion 67 provided in the branch module 150 to the rod support fixed to the holding means 45 to be inserted into
- the tree solar cell module 710 can be made and used for solar power generation.
- q1 is a perspective view of the tree solar cell module 720
- r1 is an enlarged view of a part of the branch module 160
- the tree solar cell module 720 is a branch module described above.
- 160 is a diagram showing an example of installation on the holding means 45, inserting the rod support to be inserted into the inner space portion 67 provided in the branch module 160 to the rod support fixed to the holding means 45 and By tightening and fixing bolts, the tree solar cell module 720 can be made and used for solar power generation.
- s1 is a perspective view of the tree solar cell module 730
- t1 is an enlarged view of a part of the branch module 170
- the tree solar cell module 730 is a branch module (described above).
- 170 is a view showing an installation example on the holding means 45, the rod support is inserted into the inner support portion 67 provided in the branch module 170 to the rod support fixed to the holding means 45 to be inserted into By tightening the bolts, the wooden solar cell module 730 can be made and used as solar power.
- the tree solar cell module 730 is provided with four radially in one compartment.
- the six modules are arranged at the top and each branch module 170 is divided into 30 degrees.
- the central portion of the branch module 170 has overlapping portions and is formed with gaps in the edge direction.
- 12 solar cell fixing layers are arranged on the tree solar cell module 730 and the angle of the branch module 170 is divided and fixed by 15 degrees, as shown in the plan view of FIG. 32. Even when the sun shines from above, it is partially hidden in the center, and evenly lit at the edge.
- the branch module when installing each branch module described above to a pillar module, the branch module may be installed in a downward direction, may be installed horizontally, or may be installed at an angle in the direction of the upper end thereof.
- each of the triangular tree branch module 100, the square tree branch module 110, the rhombus tree branch module 120, the circular tree branch module 130, and the wooden column module 200 It is shown and described to be fixed upward in the fixing portion, with reference to the drawing u, it is shown and described horizontally, and with reference to the drawing v is shown and described in the downward direction.
- Tree-type solar cell modules do not have solar cells that correspond to leaves, and because there are only solar cells of branch modules, sunlight can be efficiently shined deep into branches, and efficient development of each branch module and pillar module can be achieved. Even though the wind blows, there are no twigs and leaves swaying in the wind, so it can easily withstand strong winds, and because it is installed high, the efficiency decrease is not caused by the high temperature of geothermal heat in the desert area.
- Tree-type solar cell modules are installed directly between small trees in steep slopes, so that power plants can be built without damaging the forest.
- farming can be done between tree-type solar cell modules. You can even farm large crops, such as orchards, corn, or even farm.
- One of the great advantages of the tree-type solar cell module is that if a power plant is installed in the desert of China, the wind resistance is generated by the tree-type solar cell module, and the wind cannot be blown hard. There is ample probability of delaying the process of desertification and making grassland.
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Abstract
Description
Claims (47)
- 상기 나무형태양전지모듈(400);상기 나무형태양전지모듈(400)에 조립되는 상기 삼각나뭇가지형모듈(100);상기 삼각나뭇가지형모듈(100)의 기본 틀 수단인 상기 삼각틀(10);상기 삼각틀(10)의 내부에 구비되는 상기 틀내부홈(16);상기 삼각틀(10)의 각 3 개의 면에 5mm내지 10mm 깊이로 구비된 상기 조립공간부(12), 그 경계에 상기 돌출턱(13);상기 조립공간부(12)에서 상기 틀내부홈(16)의 방향으로 낮아지는 상기 배선수납홈(14);상기 배선수납홈(14)에서 상기 틀내부홈(16)으로 관통되는 구멍;상기 삼각틀(10)의 한쪽 끝 부인 상기 고정부(26)에 구비된 상기 고정판(24);상기 고정판(24)에는 상기 틀내부홈(16)과 관통되어 연결되는 상기 배선구멍(25);상기 고정판(24)의 가장자리에 구비된 상기 고정구멍(27)을 구비한 나무 형태의 태양전지 모듈.
- 제 1항에 있어서,상기 삼각틀(10)에서 상기 틀내부홈(16)이 없거나, 상기 틀내부홈(16)이 원형을 포함한 다각형 형태로 구비된 나무 형태의 태양전지 모듈.
- 제 1항에 있어서,상기 고정판(24)이 평탄하지 않고, 반원의 일부 모양으로 되어 그에 지름에 대응되는 원형의 지주에 설치가 용이한 나무 형태의 태양전지 모듈.
- 제 1항에 있어서,상기 삼각틀(10)의 한쪽 끝 부인 상기 고정부(26)에 구비된 상기 고정판(24)을 기준으로 상기 삼각틀(10)의 각도가 100도 이내의 각도에서 고정하여 사용할 수 있는 나무 형태의 태양전지 모듈.
- 제 1항에 있어서,상기 삼각틀(10)의 한쪽 끝 부인 상기 고정부(26)에 구비된 상기 고정판(24)을 기준으로 상기 삼각틀(10)의 3 개의 면의 방향이 각 각 0도, 120도, 240의 방향으로 위치되게 하거나, 또는 60도, 180, 300도의 방향으로 위치되게 고정된 나무 형태의 태양전지 모듈.
- 제 1항에 있어서,상기 조립공간부(12)에 상기 태양전지간편모듈(22)을 조립하고,상기 돌출턱(13)과 상기 태양전지간편모듈(22)의 가장자리를 접착 고정하며,배선을 상기 배선수납홈(14)에 정리하고 관통된 구멍을 통하여,상기 틀내부홈(16)으로 정리하고,상기 배선구멍(25)으로 빼내어 상기 연결배선(30)을 만들고 그 끝 부에 상기 연결플러그(31)를 구비하여, 상기 삼각나뭇가지형모듈(100)을 구비한 나무 형태의 태양전지 모듈.
- 제 6항에 있어서,상기 조립공간부(12)에 조립되는 상기 태양전지간편모듈(22)의 대신에 상기 시트(17), 상기 태양전지(18), 상기 투광유리(19)를 순차적으로 조립하는 것으로 한 나무 형태의 태양전지 모듈.
- 제 6항에 있어서,상기 조립공간부(12)에 조립되는 상기 태양전지간편모듈(22)의 대신에 상기 LED모듈을 조립할 수 있는 나무 형태의 태양전지 모듈.
- 제 6항에 있어서,상기 조립공간부(12)에 조립되는 상기 태양전지간편모듈(22)의 대신에 상기 반사 모듈을 조립할 수 있는 나무 형태의 태양전지 모듈.
- 상기 나무형태양전지모듈(400);상기 나무형태양전지모듈(400)에 조립되는 상기 사각나뭇가지형모듈(110), 또는 상기 마름모나뭇가지형모듈(120);상기 사각나뭇가지형모듈(110), 또는 상기 마름모나뭇가지형모듈(120)의 기본 틀 수단인 상기 사각틀(10a);상기 사각틀(10a)의 내부에 구비되는 상기 틀내부홈(16);상기 사각틀(10a)의 각 4 개의 면에 5mm내지 10mm 깊이로 구비된 상기 조립공간부(12), 그 경계에 상기 돌출턱(13);상기 조립공간부(12)에서 상기 틀내부홈(16)의 방향으로 낮아지는 상기 배선수납홈(14);상기 배선수납홈(14)에서 상기 틀내부홈(16)으로 관통되는 구멍;상기 사각틀(10a)의 한쪽 끝 부인 상기 고정부(26)에 구비된 상기 고정판(24);상기 고정판(24)에는 상기 틀내부홈(16)과 관통되어 연결되는 상기 배선구멍(25);상기 고정판(24)의 가장자리에 구비된 상기 고정구멍(27)을 구비한 나무 형태의 태양전지 모듈.
- 제 10항에 있어서,상기 사각틀(10a)의 한쪽 끝 부인 상기의 고정판(24)을 기준으로, 상기 사각틀(10a)의 4면의 방향이, 각 각 0도와 90도, 180도, 270도의 방향으로 향할 수 있도록 구비된 나무 형태의 태양전지 모듈.
- 제 10항에 있어서,상기 사각틀(10a)의 한쪽 끝 부인 상기의 고정판(24)을 기준으로, 상기 사각틀(10a)의 4면의 방향이, 각 각 45도와 135도, 225도, 315도의 방향으로 향할 수 있도록 구비된 나무 형태의 태양전지 모듈.
- 제 10항에 있어서,상기 조립공간부(12)의 폭의 넓이는 50mm내지 300mm이내의 치수인 것으로 한 나무 형태의 태양전지 모듈.
- 제 10항에 있어서,상기 사각나뭇가지형모듈(110), 또는 상기 사각나뭇가지형모듈(110)의 길이가 1M내지 10M이내의 치수인 것으로 한 나무 형태의 태양전지 모듈.
- 상기 사각틀(10a)의 상기 조립공간부(12)에 상기 태양전지간편모듈(22)을 조립하고, 상기 돌출턱(13)과 상기 태양전지간편모듈(22)의 가장자리를 접착 고정하며, 배선을 상기 배선수납홈(14)에 정리하고 관통된 구멍을 통하여,상기 틀내부홈(16)으로 정리하고,상기 배선구멍(25)으로 빼내어 상기 연결배선(30)을 만들고 그 끝 부에 상기 연결플러그(31)를 구비하여,상기 사각나뭇가지형모듈(110), 또는 상기 마름모나뭇가지형모듈(120)을 구비한 나무 형태의 태양전지 모듈.
- 상기 틀내부홈(16);상기 조립공간부(12), 그 경계에 상기 돌출턱(13);상기 조립공간부(12)에서 상기 틀내부홈(16)의 방향으로 낮아지는 배선수납홈(14)을 구비한 상기 삼각틀(10), 또는 상기 사각틀(10a)이, 5각틀, 6각틀, 7각틀, 8각틀, 원형 틀을 포함한 다각형틀로 구비할 수 있는 나무 형태의 태양전지 모듈.
- 제 16항에 있어서,다각형틀이 상기 조립공간부(12), 그 경계에 상기 돌출턱(13)이 구비되지 않은 다각형 지주 수단을 구비할 수 있는 나무 형태의 태양전지 모듈.
- 상기 모듈보조틀수단(50);상기 모듈보조틀수단(50)의 전면에 면에 5mm내지 10mm 깊이로 구비된 조립공간부(12), 그 경계에 돌출턱(13);상기 조립공간부(12)에서 상기 후면(54)의 방향으로 낮아지는 배선수납홈(14);상기 조립공간부(12)에서 상기 후면(54)의 방향으로 낮아지는 배선수납홈(14);상기 배선수납홈(14)에서 상기 후면(54)으로 관통되는 나사조립구멍(53);상기 돌출턱(13)의 양 옆의 직각으로 구비된 상기 끝부(55)로 구비한 나무 형태의 태양전지 모듈.
- 제 18항에 있어서,상기 후면(54)이 상기 면부(42b)의 외부 둘레의 값에 대응되는 원주를 가진 후면(54b)으로 구비할 수 있는 나무 형태의 태양전지 모듈.
- 제 18항에 있어서,상기 끝부(55)의 직각의 각도가, 108도, 110도, 112.5도, 115도, 120도, 126도, 135도, 150도,의 각을 가진 상기 끝부(55b)인 것으로 한 나무 형태의 태양전지 모듈.
- 상기 모듈보조틀수단(50);상기 조립공간부(12)에 상기 태양전지간편모듈(22)을 조립하고, 배선을 상기 배선수납홈(14)에 정리하고, 상기 돌출턱(13)과 상기 태양전지간편모듈(22)의 가장자리를 접착 고정하여 구비한 나무 형태의 태양전지 모듈.
- 상기 다각형지주수단의 각 상기 면부(42)에, 상기 태양전지간편모듈(22)이 조립 구비된 상기 모듈보조틀수단(50)의 상기 후면(54)부를 밀착시켜 조립하고, 상기 나사조립구멍(53)에 고정나사(59)로 조립하여, 나뭇가지형모듈, 나무기둥형모듈로 구비할 수 있는 나무 형태의 태양전지 모듈.
- 제 22항에 있어서,상기 모듈보조틀수단(50)이 상기 모듈보조틀수단(50b)이고, 상기 다각형지주수단이 상기 원형지주수단(40d)인 나무 형태의 태양전지 모듈.
- 상기 모듈보조틀수단(50b)의 상기 조립공간부(12)에 상기 태양전지간편모듈(22c)을 조립하고, 그 가장자리와 상기 돌출턱(13)에 실리콘 접착 고정한 나무 형태의 태양전지 모듈.
- 상기 원형지주수단(40d)의 길이 방향의 양 끝부의 지름이 다르며, 그에 대응해서 상기 모듈보조틀수단(50b)의 길이 방향의 양끝 부의 폭이 같은 비율로 다르게 구비되는 나무 형태의 태양전지 모듈.
- 제 25항에 있어서,길이 방향의 양 끝부의 폭이 다른 상기의 모듈보조틀수단(50b)의 조립공간부(12)의 양끝 부에 길이는 같고, 돌출턱(13)의 폭의 길이가 다른 나무 형태의 태양전지 모듈.
- 상기 나무태양전지모듈(700);상기 나무태양전지모듈(700)에 조립되는 가지모듈(140);상기 가지모듈(140)의 기본틀 수단, 상기 가지모듈틀(60);상기 가지모듈틀(60)에 5mm내지 10mm 깊이로 구비된 상기 조립공간부(12), 그 경계에 상기 돌출턱(13);상기 조립공간부(12)에서 낮아지는 상기 배선수납홈(14);상기 가지모듈틀(60)의 배면 상기 일체구성부(64)에서 일체로 구비된 상기 보강구성틀(66);상기 보강구성틀(66)에 구비된 내부공간부(67);상기 보강구성틀(66)에 상기 내부공간부(67)에서 외부로 관통되어 구비된 상기 볼트구멍(68)이 구비된 나무 형태의 태양전지 모듈.
- 제 27항에 있어서,상기 가지모듈틀(60)이 상기 가지모듈틀커브형(60d)으로 구비할 수 있어, 그 모양이 원형의 일부의 모양으로 아치처럼 구비된 나무 형태의 태양전지 모듈.
- 제 27항에 있어서,보강구성틀(66)을 중심으로 일체로 구비된, 상기 일체구성부에서 상기 가지모듈틀이 120도 각을 이루고 2개가 구비되거나, 135도 각으로 3개가 구비되는 나무 형태의 태양전지 모듈.
- 제 27항에 있어서,상기 보강구성틀(66)의 한 부분에서 길이 방향으로 상기 내부공간부(67)와 열려있는 상기 틈새공간(72)을 만들고 그 양쪽으로 돌출되는 상기 돌출고정부(70), 상기 돌출고정부(71)를 구비하며, 상기의 돌출고정부(70), 상기의 돌출고정부(71)의 측면에 다수의 고정볼트구멍(73)을 구비한 나무 형태의 태양전지 모듈.
- 상기 나무형태양전지모듈(400);상기 나무형태양전지모듈(400)의 나무기둥형모듈(200);상기 나무기둥형모듈(200)의 상기, 틀 내부 홈, 또는 내부공간 부;상기 나무기둥형모듈(200)의 외부 둘레에 상기 배선구멍(80), 및 너트구멍(84);상기 나무기둥형모듈(200)의 하단부에 구비되는 상기 고정판(81)상기 틀 내부 홈, 또는 내부공간 부에서 상기 메인배선(38)이 구비되며, 상기 고정판(81)의 하단부로 빼내고, 그 끝 부에 구비된 상기 연결플러그(31);상기 메인배선(38)과 전기적으로 연결되며, 각 상기 배선구멍(80)으로 빼내어 구비된 연결배선(33)과 그 끝 부에 구비된 연결소켓(34)이 구비된 나무 형태의 태양전지 모듈.
- 상기 나무형태양전지모듈(400);상기 나무기둥형모듈(200)의 상기 연결배선(33)의 상기 연결소켓(34)과,상기 마름모나뭇가지형모듈(120)의 상기 연결배선(30)의 상기 연결플러그(31)를 조립하고,상기 나무기둥형모듈(200)의 각 상기 너트구멍(84)에 상기 마름모나뭇가지형모듈(120)의 상기 고정판(24)의 상기 고정구멍(27)을 같은 선상에 맞추고,고정 볼트 수단으로 고정하여, 상기 나무기둥형모듈(200)의 외부 둘레에 상기 마름모나뭇가지형모듈(120)이 구비된 나무 형태의 태양전지 모듈.
- 제 32항에 있어서,상기 나무기둥형모듈(200)의 상기 너트구멍(84)이 구비된 고정부위와 상기 마름모나뭇가지형모듈(120)의 상기 고정판(24)의 사이에 기밀을 요할 수 있는 오링수단을 삽입하거나, 실리콘 접착제를 고루 바르고 고정하는 나무 형태의 태양전지 모듈.
- 제 32항에 있어서,상기 나무기둥형모듈(200)에 조립되는 상기 마름모나뭇가지형모듈(120)이, 상기 삼각나뭇가지형모듈(100), 또는 상기, 사각나뭇가지형모듈(110), 또는 상기 원형나뭇가지형모듈(130)인 나무 형태의 태양전지 모듈.
- 제 32항에 있어서,상기 나무기둥형모듈(200)에 조립되는 상기 마름모나뭇가지형모듈(120)들이 조립되는 각층에 서로 엇갈리게 조립 고정하는 나무 형태의 태양전지 모듈.
- 상기 나무기둥형모듈(200);상기 나무기둥형모듈(200)의 외부 둘레에 체결할 수 있는 상기 가지체결구(90);상기 가지체결구(90)의 상기 3개의 면;상기 3개의 면에 구비된 배선구멍(96)및 너트구멍(97);상기 가지체결구(90)에 구비된 체결판(91);상기 체결판(91)에 상기 체결구멍(95);상기 가지체결구(90)를 2개 마주보게 포개면 상기 체결판(91)이 서로 맞대어 포개지고, 상기 체결구멍(95)이 같은 선상에 구비되며;상기 나무기둥형모듈(200)이 조립될 수 있는 내부 공간부가 구비되는 나무 형태의 태양전지 모듈.
- 제 36항에 있어서,가지체결구(90)의 내부 공간부가 원형을 포함한 다각형으로 만들 수 있는 나무 형태의 태양전지 모듈.
- 상기 나무기둥형모듈(200)의 외부 둘레에 일체로 구비된 일체식지지대(35);상기 일체식지지대(35)의 끝 부에 구비된 상기 고정판(36);상기 고정판(36)에 구비된 상기 배선구멍(37) 및 볼트구멍이 구비된 나무 형태의 태양전지 모듈.
- 상기 나무형태양전지모듈(600);상기 나무형태양전지모듈(600);의 상기 나무기둥형모듈(200);상기 나무기둥형모듈(200)의 외부 둘레에 고정 구비된 상기 삼각나뭇가지형모듈(100), 또는 상기 마름모나뭇가지형모듈(120), 또는 상기 원형나뭇가지형모듈(130);상기 나무기둥형모듈(200)의 상단부에 구비된 상기 전주가로틀수단(2)및 변압기(5);상기 나무기둥형모듈(200)의 상단부에 구비된 상기 피뢰침(1);상기 나무기둥형모듈(200)의 상단부에 구비된 상기 신호등체결구(6);상기 신호등체결구(6)에서 구비된 상기 신호등지지대(7)및 신호등(8);상기 신호등체결구(6)에서 구비된 상기 가로등(9)이 구비된 나무 형태의 태양전지 모듈.
- 제 39항에 있어서,상기 전주가로틀수단(2), 상기 신호등지지대(7)의 한 부분 이상의 외부에 상기 태양전지간편모듈(22)이 구비된 나무 형태의 태양전지 모듈.
- 상기 나무형태양전지모듈(650);상기 나무형태양전지모듈(650)의 상기 나무기둥형모듈(200);상기 나무기둥형모듈(200) 한 부분 이상의 외부 둘레의 상기 고정부(78)에 구비된 상기 나무화분(77);상기 나무화분(77)의 내부에 공간부가 구비되고, 상단부는 개시되어 구비된 나무 형태의 태양전지 모듈.
- 제 41항에 있어서,상기 나무화분(77)의 모양이 다각형으로 구비될 수 있으며, 개시된 상단부가 상향의 방향으로 구비된 나무 형태의 태양전지 모듈.
- 제 41항에 있어서,상기 나무화분(77)의 내부공간부 하단부에서, 상기 모세관 다발이 구비되어 상기 나무기둥형모듈(200)의 상기 고정판(81)의 밑으로 연결된 나무 형태의 태양전지 모듈.
- 제 41항에 있어서,상기 모세관 다발의 재질이 스테인리스 금속, 유리를 포함한 세라믹류, 플라스틱수지류, 비닐 수지류로 인 나무 형태의 태양전지 모듈.
- 상기 나무태양전지모듈(700);상기 나무태양전지모듈(700)의 상기 지주수단(45);상기 지주수단(45)의 외부 둘레에 배열되어 고정된 상기 고정막대;상기 고정막대에 조립고정된 상기 가지모듈(140), 또는 상기 가지모듈(150), 또는 상기 가지모듈(160), 또는 상기 가지모듈(170)이 구비된 나무 형태의 태양전지 모듈.
- 상기 삼각나뭇가지형모듈(100), 상기 사각나뭇가지형모듈(110), 상기 마름모나뭇가지형모듈(120), 상기 원형나뭇가지형모듈(130), 상기 나무기둥형모듈(200), 상기 지주수단(45)이 길이 방향으로 직선 형태이거나, 또는 완만한 곡선으로 휨의 모양을 가질 수 있으며, 또는 완만하게 비틀림을 가질 수 있는 나무 형태의 태양전지 모듈.
- 상기 삼각틀(10), 상기 사각틀(10a), 상기 육각틀(10b), 상기 팔각틀(10c), 상기 원형틀(10d)의 재료가, 알루미늄, 스테인리스를 포함한 금속류, 유리, 콘크리트를 포함한 세라믹류를 사용할 수 있고, 플라스틱을 포함한 수지, 비닐 수지 등과 그들의 복합 재료인 나무 형태의 태양전지 모듈.
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CN201180066841.7A CN103548150A (zh) | 2010-12-03 | 2011-12-02 | 树状的太阳能电池模块 |
US13/989,582 US20130240024A1 (en) | 2010-03-12 | 2011-12-02 | Tree-shaped solar cell module |
EP11844905.7A EP2648228A2 (en) | 2010-12-03 | 2011-12-02 | Tree-shaped solar cell module |
BR112013013586A BR112013013586A2 (pt) | 2010-12-03 | 2011-12-02 | módulo de célula solar em forma de árvore |
AP2013006952A AP2013006952A0 (en) | 2010-12-03 | 2011-12-02 | Tree-shaped solar cell module |
MA36075A MA34808B1 (fr) | 2010-12-03 | 2011-12-02 | Module cellule solaire arborescent |
SG2013042536A SG190963A1 (en) | 2010-12-03 | 2011-12-02 | Tree-shaped solar cell module |
MX2013006189A MX368294B (es) | 2010-12-03 | 2011-12-02 | Modulo de celdas solares en forma de arbol. |
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Also Published As
Publication number | Publication date |
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WO2012074341A3 (ko) | 2012-10-11 |
KR20120061721A (ko) | 2012-06-13 |
GT201300145A (es) | 2014-07-02 |
BR112013013586A2 (pt) | 2017-02-14 |
JP2013544443A (ja) | 2013-12-12 |
MX2013006189A (es) | 2013-11-04 |
PE20140064A1 (es) | 2014-02-09 |
EP2648228A2 (en) | 2013-10-09 |
CN103548150A (zh) | 2014-01-29 |
KR101238955B1 (ko) | 2013-03-11 |
SG190963A1 (en) | 2013-07-31 |
US20130240024A1 (en) | 2013-09-19 |
AP2013006952A0 (en) | 2013-06-30 |
MX368294B (es) | 2019-09-27 |
MA34808B1 (fr) | 2014-01-02 |
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