KR101282739B1 - Efficiency enhancement equipment for solar photovoltaic power facilities - Google Patents

Efficiency enhancement equipment for solar photovoltaic power facilities Download PDF

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Publication number
KR101282739B1
KR101282739B1 KR1020110077673A KR20110077673A KR101282739B1 KR 101282739 B1 KR101282739 B1 KR 101282739B1 KR 1020110077673 A KR1020110077673 A KR 1020110077673A KR 20110077673 A KR20110077673 A KR 20110077673A KR 101282739 B1 KR101282739 B1 KR 101282739B1
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South Korea
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cooling water
coolant
flow
power generation
rotation
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KR1020110077673A
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Korean (ko)
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KR20130015599A (en
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유상필
정성대
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(주)하이레벤
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Priority to KR1020110077673A priority Critical patent/KR101282739B1/en
Priority to PCT/KR2012/005708 priority patent/WO2013019005A2/en
Publication of KR20130015599A publication Critical patent/KR20130015599A/en
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    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/50Photovoltaic [PV] energy

Abstract

The present invention relates to a facility for improving efficiency of photovoltaic power generation facilities. The efficiency improvement equipment of the photovoltaic power generation equipment according to the present invention, the photovoltaic power generation equipment that maintains or improves the efficiency by spraying cooling water to the photovoltaic power generation equipment comprising a photovoltaic module for collecting electricity to generate electricity In the efficiency improvement apparatus of the storage tank for storing the cooling water: Cooling water injection means for spraying the cooling water to the solar module; And a pump for pumping the cooling water stored in the storage tank and supplying the cooling water to the cooling water injection means through a cooling water supply pipe, wherein the cooling water injection means generates a negative pressure therein to introduce external air to the outside and flows the cooling water. It characterized in that it comprises a rotating means for reciprocating left and right by.
According to the above-described efficiency improving apparatus of the solar power plant according to the present invention, the outside air is injected with the coolant using a venturi tube to improve the cooling and cleaning performance of the solar module through two phase flow. Can reduce the amount of cooling water used. In addition, the cooling water injection means can be reciprocated by a mechanical mechanism using the flow of cooling water without a separate electric power can reduce the operating cost.

Description

[0001] EFFICIENCY ENHANCEMENT EQUIPMENT FOR SOLAR PHOTOVOLTAIC POWER FACILITIES [0002]

The present invention relates to a facility for improving efficiency of a photovoltaic power generation facility, and more particularly, to improve the cooling and cleaning performance of a photovoltaic module and to reduce the amount of cooling water by allowing external air to be injected and sprayed with cooling water. The present invention relates to a facility for improving efficiency of photovoltaic facilities.

Generally, the method of using solar energy is divided into a method using solar heat and a method using sunlight. The method of using solar heat is a method of heating and generating electricity by using water heated by the sun, and a method of using sunlight is a method of generating electricity by using sunlight, It is called solar power generation.

Among the above-mentioned methods, photovoltaic power generation is a photovoltaic effect in which a photovoltaic panel having n-type doping on a silicon crystal and pn-junction is irradiated with sunlight to generate an electromotive force due to the photovoltaic energy, To generate electricity.

For this purpose, a solar cell for collecting sunlight, a photovoltaic module as an aggregate of solar cells, and a solar array for uniformly arranging solar cells are required.

For example, when light is incident on the solar module from the outside, electrons in the conduction band of the p-type semiconductor are excited to the valence band by the incident light energy. One electron-hole pair (EHP) is formed inside the p-type semiconductor, and electrons in the electron-hole pair generated are transferred to the n-type semiconductor by an electric field existing between the pn junctions. It passes over and supplies current to the outside.

Unlike existing energy sources such as fossil raw materials, sunlight is a clean energy source that does not have the danger of global warming, such as greenhouse gas emissions, noise, environmental destruction, etc., and there is no fear of depletion. Unlike other types of wind and seawater, solar power generation facilities are free from installation and maintenance costs.

However, in the case of the most widely used silicon solar cell, when the temperature of the photovoltaic module rises, output decrease of 0.5% per 1 ° C occurs. According to these characteristics, the output of solar power peaks in spring and autumn, not in the summer when the sun is the longest. This increase in temperature is a major cause of lowering the power generation efficiency of photovoltaic power generation.

In addition, such a solar module has disadvantages that dust can be easily accumulated on the solar panel due to weather phenomenon such as yellow dust and bad weather. When dirt accumulates on the solar module, the solar module's light absorption rate is significantly lowered, and therefore the power generation efficiency may also be lowered.

In addition, when rain or snow falls on the solar panel in winter, the power generation efficiency may decrease. In order to prevent such deterioration of power generation efficiency due to dirt, snow, and rain, the efficiency improvement equipment (maintenance equipment) of photovoltaic power generation facilities is used.

In order to improve the efficiency of solar power generation facilities, the cooling module which cools the temperature of the solar module and the cleaning and snow removal of the dirt, snow, rain etc. accumulated on the solar panel, It functions to maintain the solar power generation facilities.

Such efficiency improvement equipment of photovoltaic power generation equipment uses enormous amounts of water (functional water, cooling water, snow removal, etc., but may be collectively referred to as cooling water) for cooling and cleaning solar modules. . Depending on the location, groundwater, tap water, and river water are used as cooling water. In many areas, it is difficult to supply sufficient cooling water, and the electricity used for supplying and spraying the cooling water also reduces the efficiency of the photovoltaic plant as a whole. . Therefore, efficient use of cooling water is one of the most important factors in the design of the device for improving the efficiency of photovoltaic power generation facilities.

The present invention is to solve this problem, by allowing the external air to be injected with the coolant in the cooling water injection means to improve the cooling and cleaning performance of the photovoltaic module by two phase flow and to reduce the amount of cooling water used It is an object of the present invention to provide a facility for improving efficiency of photovoltaic power generation facilities.

In addition, an object of the present invention is to provide a facility for improving efficiency of a photovoltaic power generation device in which a coolant injection means can reciprocate and rotate by a mechanical mechanism using a flow of coolant without a separate electric power.

In order to achieve the above object, the present invention, by increasing the efficiency of the photovoltaic power generation facilities to maintain or improve the efficiency by spraying the cooling water to the photovoltaic power generation facilities comprising a solar module for collecting electricity to generate electricity An apparatus comprising: a storage tank for storing cooling water: cooling water spraying means for spraying cooling water on the solar module; And a pump for pumping the cooling water stored in the storage tank and supplying the cooling water to the cooling water injection means through a cooling water supply pipe, wherein the cooling water injection means generates negative pressure therein to introduce external air into the flow of the cooling water. It provides an efficiency improving equipment of the solar power plant characterized in that it comprises a rotating means for reciprocating left and right.

The venturi tube may include a cooling water moving path through which the cooling water moves, and the cooling water moving path may include an inlet part through which the coolant is introduced and an outlet part which is narrowed and then widened again in the inlet part.

The venturi tube may have an air inlet hole through which external air is introduced, and the air inlet hole may communicate with an outlet of the coolant movement path.

The venturi tube is an inner tube formed with the cooling water movement path and the air inlet hole; And coupled to the inner tube to surround the inner tube from the outside, it may include an appearance that is fastened to the rotating means.

The inner tube may include a fastening part inserted and fastened to a side into which the coolant is introduced, and the fastening part may have the inlet part.

The inlet portion formed in the fastening portion may have a narrower inner diameter than the outlet portion, and may include a transmission portion for spraying coolant to the outlet portion.

The exterior is formed with a hole through which the outside air is introduced, the air introduced through the hole may be transmitted to the cooling water movement path through the air inlet hole.

The venturi tube may be disposed at the front end of the rotating means based on the movement direction of the cooling water.

The venturi tube may be disposed at the rear end of the rotating means based on the movement direction of the cooling water.

The rotating means may include a housing having inlets and outlets formed at both sides such that cooling water is introduced into and discharged from the outside; Separating diaphragm through which the first and second flow holes having a flow path in different directions so as to pass through the cooling water flows through the inlet is formed in the housing and opposite flow direction components are formed; A rotation aberration rotatably mounted in the housing to reciprocally rotate in both directions by cooling water flow in different directions formed as cooling water passes through the first or second flow holes; A rotation opening / closing unit which reciprocates in both directions in association with the reciprocating rotation of the rotational aberration and alternately opens and closes the first and second flow holes; And it may include a link unit for interlocking the rotation aberration and the rotation opening and closing unit.

The separating diaphragm is fixedly mounted in the transverse direction inside the housing in a flat plate shape, the first and second flow holes are each formed at least one or more so as to have a straight flow path formed inclined with respect to the thickness direction of the separating diaphragm, The inclined directions of the first and second flow holes may be formed to be symmetrical with respect to the thickness direction of the separating diaphragm.

The rotation opening and closing unit, the rotation block portion is coupled to the link unit to rotate; And an opening / closing clutch unit engaged with the separation diaphragm so as to be engaged with the rotary block part and rotate and alternately open and close the first and second flow holes.

The rotation means is disposed on the outside of the housing and in communication with the inner space through the discharge port comprises a spraying unit for injecting the coolant discharged from the housing, the spraying unit is coupled to the rotation opening and closing unit to rotate the It rotates with the switchgear unit and can spray coolant.

According to the above-described efficiency improving apparatus of the solar power plant according to the present invention, the outside air is injected with the coolant using a venturi tube to improve the cooling and cleaning performance of the solar module through two phase flow. Can reduce the amount of cooling water used.

In addition, the cooling water injection means can be reciprocated by a mechanical mechanism using the flow of cooling water without a separate electric power can reduce the operating cost.

1 is a view schematically showing a configuration of an efficiency improving apparatus of a solar power plant according to an embodiment of the present invention.
2 is a perspective view showing the coolant spray means according to an embodiment of the present invention.
3 is a cross-sectional view showing the coolant injection means according to an embodiment of the present invention.
4 is a perspective view showing a venturi tube according to an embodiment of the present invention.
5 is an exploded view showing a venturi tube according to an embodiment of the present invention.
6 is a cross-sectional view showing a venturi tube according to an embodiment of the present invention.
7 is a view for explaining the principle that the outside air flows through the venturi tube.
8 is a perspective view showing a rotating means according to an embodiment of the present invention.
9 is an exploded perspective view showing the configuration of a rotating means according to an embodiment of the present invention.
10 is a cross-sectional view showing the internal structure of the rotating means according to an embodiment of the present invention.
11 is a perspective view showing a connection relationship between the internal components of the rotating means according to an embodiment of the present invention.
12 and 13 are perspective views illustrating a rotation operation structure of the rotation aberration according to the embodiment of the present invention.
FIG. 14 is a bottom view illustrating an opening and closing state of first and second flow holes according to an exemplary embodiment of the present invention. FIG.

Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the accompanying drawings. It is to be understood that the terminology used herein is for the purpose of description and should not be interpreted as limiting the scope of the present invention.

The embodiments described in the present specification and the configurations shown in the drawings are preferred embodiments of the present invention and are not intended to represent all of the technical ideas of the present invention and thus various equivalents and modifications Can be.

1 is a view schematically showing a configuration of an efficiency improving apparatus of a solar power plant according to an embodiment of the present invention.

Referring to FIG. 1, solar modules 7 for concentrating sunlight to generate electricity are listed, and an efficiency improving facility is installed as a facility for maintaining and managing solar modules 7 by spraying cooling water. It is.

The photovoltaic module 7 is an assembly of a plurality of solar cells. When light enters the photovoltaic module 7 from the outside, the photovoltaic module 7 is housed by the light energy in which electrons of the conduction band of the p-type semiconductor are incident. The excited electrons are excited in a valence band, and the excited electrons form an electron hole pair (EHP) inside the p-type semiconductor, and the electrons in the electron-hole pair thus generated are interposed between the pn junctions. The existing electric field (electron field) is transferred to the n-type semiconductor to supply the current to the outside.

However, since the solar module 7 is installed outside to collect sunlight, it is exposed to the external environment as it is, and contaminants such as scattering dust, algae secretions, and yellow sand are attached, thereby reducing the amount of light collected, thereby reducing power generation efficiency. Done. In addition, by being continuously exposed to sunlight and heated by solar heat, the internal resistance of the photovoltaic module is increased, which is also a factor for lowering the power generation efficiency.

The present invention relates to an efficiency improving apparatus capable of maintaining and improving the efficiency of photovoltaic power generation by cooling and washing the photovoltaic module 7 using cooling water.

As shown in FIG. 1, the efficiency improving apparatus of the solar power plant according to an embodiment of the present invention includes a storage tank 1, a coolant spray means 6, a coolant supply pipe 5, a pump 25, and a valve. 20 and the control part 3 are included.

Cooling water injection means (6) is installed to correspond to each of the solar modules (7) is a means for injecting the coolant to spray the coolant to the solar module (7). When cooling water is poured into the solar module 7 or sprayed weakly, it is difficult to obtain sufficient cooling and cleaning effects. In this embodiment, the impingement jet of cooling water is sprayed on the solar module 7.

The impingement jet has excellent heat and mass transfer effects from the coolant to the impingement surface, thereby improving the cooling and cleaning effect and reducing the generation of scale. However, in order to generate a collision jet, the speed of the coolant is 30 m / s or more and the pressure is 1.6 kg / cm 2 or more, based on the inlet of the coolant spray means 6 for injecting the coolant into the solar module 7. desirable. Here, the inlet of the coolant spray means 6 refers to the end of the coolant spray means 6 into which coolant is injected to the outside.

The cooling water supply pipe 5 serves to deliver the cooling water supplied from the storage tank 1 to the injection means 6 through the pump 25. The cooling water supply pipe 5 is preferably buried in the ground to maintain the temperature of the cooling water.

The pump 25 pumps the cooling water stored in the storage tank 1 to supply the cooling water to the cooling water injection means 6 through the cooling water supply pipe 5, and the valve 20 opens and closes the cooling water supply pipe 5 to spray the cooling water. The means 6 controls the cooling water injection.

The control part 3 is a part which controls the drive part 9 including the pump 25 and the valve 20, drives or stops the pump 25, and opens or closes the valve 20. FIG.

The manner in which the control unit 3 controls the pump 25 and the valve 20 is not particularly limited, but is preferably designed to maximize the use efficiency of the cooling water. A control method capable of improving the use efficiency of the cooling water will be described as an example.

As a first example, this is a time-based control scheme. Specifically, the control unit 3 determines whether the drive start time, and if the drive start time drive the pump 25, and opens and closes the valve 20 for a set time sequentially. The start time of the driving and the opening time of the valve 20 may be set in consideration of the region of the solar power generation facility and the characteristics of the facility.

Another example is the temperature control method. Specifically, it is determined whether the measured temperature difference between the temperature of the module 7 and the cooling water is equal to or greater than the set temperature difference between the temperature of the module 7 and the cooling water, and the measured temperature difference between the temperature of the module 7 and the cooling water is determined. If the temperature difference between the temperature of the module 7 and the cooling water is greater than or equal to the set value, the pump 25 is driven and the valve 20 is sequentially opened and closed until it is less than that. The temperature difference setting value of the temperature of the module 7 and the cooling water may be set in consideration of the region where the solar power generation facility is installed and the characteristics of the facility.

Whatever control method is selected, it is preferable to measure the pressure in the cooling water supply pipe 5 and to terminate the start of the efficiency improving equipment when the pressure is out of the predetermined pressure range. If the measured pressure exceeds the maximum value of the set pressure range, a problem such as freezing of the coolant occurs in the coolant supply pipe 5, and if the measured pressure does not reach the minimum value of the set pressure range, the coolant supply pipe Since a problem such as water leakage occurs in (5), start-up is stopped to prevent the failure of the equipment and to efficiently use the cooling water.

In addition, in consideration of the amount of cooling water stored in the storage tank 1 and the supply speed of the cooling water supplied to the storage tank 1, it is preferable to control the injection amount of the cooling water so that the cooling water is properly distributed during the driving time. In this case, the injection amount of the cooling water may be controlled to be sprayed at the same speed every hour, or may be controlled to be sprayed at different time intervals.

In addition, if it is determined that the rain sensor 43 is on or off and is raining, the operation is terminated, and it is determined whether the temperature of the module 7 is equal to or higher than the temperature of the cooling water. Can be used more efficiently.

The cooling water injection means 6 according to the present invention includes a venturi tube for generating negative pressure therein and introducing external air, and rotating means for reciprocating left and right by flow of cooling water.

The Venturi tube uses the Venturi effect to introduce external air into the cooling water to increase the injection pressure of the cooling water and generate two phase flow. The impingement flow, that is, the impingement jet using the mixed coolant of air and water has a much better heat transfer and momentum transfer effect than the impingement jet using only the coolant, thereby improving the cooling and washing efficiency and reducing the amount of cooling water used.

In addition, the rotating means can reciprocally rotate the coolant jetting means 6 through a mechanical mechanism using a flow of coolant without additional power to cool and wash the front surface of the solar module 7 evenly, and greatly increase the operating cost. Can be saved.

Hereinafter, the cooling water injection means 6 according to an embodiment of the present invention will be described in more detail with reference to FIGS. 2 to 14. 2 and 3 are a perspective view and a cross-sectional view showing a cooling water injection means according to an embodiment of the present invention, Figures 4 to 6 are a perspective view, an exploded view and a cross-sectional view showing a venturi tube 30 according to an embodiment of the present invention. 7 is a view for explaining the principle that the outside air flows through the venturi tube (30). In addition, Figure 8 is a perspective view showing a rotating means 40 according to an embodiment of the present invention, Figure 9 is an exploded perspective view showing the configuration of the rotating means 40 according to an embodiment of the present invention, Figure 10 Cross-sectional view showing the internal structure of the rotating means 40 according to an embodiment of the present invention, Figure 11 is a perspective view showing the connection of the internal components of the rotating means 40 according to an embodiment of the present invention, Figure 12 And FIG. 13 is a perspective view illustrating a rotation operation structure of a rotary aberration according to an embodiment of the present invention, and FIG. 14 is a bottom view illustrating an opening and closing state of the first and second flow holes according to an embodiment of the present invention.

Cooling water injection means 6 according to an embodiment of the present invention includes a venturi tube 30 and the rotation means 40.

The venturi tube 30 receives cooling water from the cooling water supply pipe 5 and generates negative pressure therein to introduce external air into the cooling water and discharge the mixed air together with the air. An inner tube 70 having a cooling water moving path and the The inner tube 70 is composed of an exterior 60 coupled with the inner tube 70 to surround the outer tube 70.

The cooling water moving path is a path through which the cooling water received from the cooling water supply pipe 5 moves, and the cooling water moved through the cooling water moving path is transferred to the rotating means 40.

The cooling water moving path is composed of an inlet 75 at the side into which the coolant flows and an outlet 77 at the side at which the coolant is discharged. The inlet 75 has an inner diameter at a point connected to the outlet 77. It is formed smaller than the inner diameter of the outlet portion 77. Preferably, the inflow portion 75 has a structure that maintains a constant inner diameter while maintaining a constant inner diameter when the inner diameter becomes narrower and narrower when the inlet portion 75 is viewed based on the traveling direction of the coolant.

In order to more easily form the inlet portion 75 of the above structure, the inner tube 70 further includes a fastening portion 80 inserted and inserted into the side into which the coolant flows, and the fastening portion 80 has a cooling water traveling direction. As a reference, while maintaining a constant inner diameter, the inner diameter becomes narrower and then the inlet portion 75 having a structure for maintaining the constant inner diameter is formed. A portion connected to the outlet portion 77 while maintaining a narrow inner diameter of the inlet portion 75 is called a transfer portion 76.

The inner pipe 70 is formed with an air inlet hole 71 so that external air can flow into a portion of the cooling water movement path communicating with the outlet 77.

In the exterior 60, a hole 61 is formed to allow external air to flow therein, and the air introduced through the hole 61 is transferred to the outlet 77 of the coolant movement path through the air inlet hole 71. The space portion 63 is formed between the exterior 60 and the inner tube 70 so as to be possible.

A thread 68 is formed on the outer side of the exterior 60 to be coupled with the housing lid 120 of the rotating means 40, and the housing cover has an inlet 121 side for screwing with the exterior 60. Thread 93 is formed in the.

In addition, a thread is formed on the lower outer side of the inner tube 70 and may be screwed to the cooling water supply pipe 5.

Referring to Figure 7 describes the process of the abnormal flow occurs in the Venturi tube 30.

The coolant delivered from the coolant supply pipe 5 flows into the inlet 75 of the venturi tube 30 to pass through the narrow delivery part 76, and the coolant passing through the delivery part 76 has an outward diameter widened. It is ejected to the part 77.

At this time, the cooling water sprayed to the outlet 77 is ejected in the longitudinal direction of the outlet 77 by the ejection pressure, the negative pressure is generated in the portion connected to the air inlet hole 71 of the outlet 77.

As a result, the outside air is introduced through the hole 61 by the negative pressure generated in the outlet 77, and mixed with the coolant while being introduced into the outlet 77 through the space 63 and the air inlet hole 71. Abnormal flow occurs.

The rotating means 40 discharges the cooling water (ideal flow) supplied from the venturi tube 30 to the outside through the injection unit 600, and rotates reciprocally by the flow of the cooling water.

As shown in FIG. 8, a housing 100 receives cooling water from the venturi tube 30, and an injection unit 600 mounted on the outside of the housing 100, and an injection unit for spraying cooling water ( 600 is configured to be rotatable through a mechanical mechanism without a separate electric power.

Rotating means 40 according to an embodiment of the present invention is a component for enabling the rotatable injection unit 600, as shown in Figures 9 and 10 separating plate 200 in the housing 100, The rotary aberration 300, the rotation opening and closing unit 400, and the link unit 500 are mounted.

The housing 100 has an inlet 121 and an outlet 111 formed at both sides in the longitudinal direction so that an accommodation space is formed therein and coolant is introduced into and discharged from the interior space. The shape of the housing 100 is formed in a hollow cylindrical shape in which both sides are closed, and a separate cylindrical support barrel 130 may be provided inside the housing 100 so that the above components can be stably mounted. The support barrel 130 has a fixed support shaft 131 is formed to rotatably mount the rotation aberration 300 and the opening and closing clutch unit 430 to be described later, the separation plate 200 is formed on the fixed support shaft 131 It can be fixedly mounted. The support barrel 130 is fixedly coupled to one side inner surface of the housing 100 in communication with the inlet 121 to be configured to allow the cooling water introduced into the inlet 121 to pass through the interior of the support barrel 130. Can be. However, the support barrel 130 is according to an embodiment of the present invention, and may be configured in such a manner that the fixed support shaft 131 is formed on the inner surface of the housing 100 without the support barrel 130. On the other hand, the housing 100 is coupled to the open body of the housing body 110 and the housing body 110, the outlet 111 is formed on one side of the hollow cylindrical shape of which one surface is open, the housing body 110 and the inlet 121 It may be formed separated into the housing cover 120 is formed.

The separating plate 200 may be formed in a circular plate shape to be coupled to the inside of the housing 100 in the transverse direction. The first and second flow holes 210 and 220 having flow paths in different directions such that the coolant introduced into the housing 100 through the inlet 121 pass through the separation plate 200 to form flow direction components in opposite directions. ) Is formed through. That is, the first and second flow holes 210 and 220 are formed such that a direction component, for example, an X-direction component and a -X-direction component, in which the flow directions of the coolant passing therethrough are opposite to each other, is generated. It will be described later.

The rotation aberration 300 is formed in a shape in which a plurality of rotating blades 310 are spaced at equal intervals along the circumferential direction, and the central axis C is inserted into the coupling groove 415 formed in the fixed support shaft 131. And rotatably coupled to each other and disposed adjacent to one side of the separating diaphragm 200 to rotate by the flow force of the coolant passing through the first and second flow holes 210 and 220 of the separating diaphragm 200. It is configured to. The flow direction of the coolant passing through the first and second flow holes 210 and 220 has components opposite to each other as described above, wherein the first and second flow holes 210 and 220 are rotated open / close unit 400 to be described later. The rotation aberration 300 is reciprocally rotated in both directions by the flow force of the coolant having the components in the opposite direction passed through the first flow hole 210 or the second flow hole 220 so as to be alternately opened and closed by.

The rotation opening / closing unit 400 is rotatably mounted in the housing 100 to reciprocally rotate in conjunction with the reciprocating rotation of the rotation aberration 300, and alternately alternately rotate the first and second flow holes 210 and 220 according to the rotation. It is configured to open and close. The rotation opening and closing unit 400 is interlocked with the rotary aberration 300 by a separate link unit 500, the link unit 500 is a variety of ways through a variety of power transmission mechanical elements, such as a plurality of link plates, chains, belts It may be configured as, it may be configured using a plurality of gears as shown in FIG.

 On the other hand, the injection unit 600 is disposed on the outside of the housing 100 and communicates with the inner space of the housing 100 through the discharge port 111 is configured to spray the coolant discharged from the housing 100. In addition, the injection unit 600 is coupled to the rotation opening and closing unit 400 inside the housing 100 rotates integrally with the rotation opening and closing unit 400 and injects coolant. Therefore, since the injection unit 600 rotates and injects the coolant, the coolant is evenly sprayed on the entire area of the solar module 7.

According to this structure, the rotating means 40 is supplied with cooling water, and the rotary aberration 300 reciprocates and rotates by the flow force of the cooling water alternately passing through the first and second flow holes 210 and 220. ) Rotates and sprays coolant. Therefore, the injection unit 600 is configured to be rotatable through a mechanical mechanism without using an additional electric power, so that the energy efficiency is excellent and the size of the solar module 7 can be smoothly performed. to be.

Next, the mechanism in which the injection unit 600 rotates in both directions will be described in detail.

As described above, the separating diaphragm 200 is fixedly mounted to the inside of the housing 100 in a flat shape as described above, and the first and second flow holes 210 and 220 are formed in the separating diaphragm 200. At least one first and second flow holes 210 and 220 are each formed to have a straight flow path formed to be inclined with respect to the thickness direction of the separation plate 200, and at least one first and second flow holes 210 and 220 are inclined directions of the first and second flow holes 210 and 220. Silver may be formed symmetrically with respect to the thickness direction of the separation plate 200. For example, the first flow hole 210 is formed to be inclined to form a coolant flow force for rotating the rotation aberration 300 in a counterclockwise direction with reference to FIG. 12, and the second flow hole 220 is formed in the rotation aberration ( It may be inclined to form a coolant flow force for rotating the clockwise 300. Accordingly, the coolant passing through the first flow hole 210 has a flow direction component formed along the inclined direction of the first flow hole 210 to rotate the rotation aberration 300 counterclockwise, and the second flow hole ( The coolant passing through 220 forms a flow direction component along the inclination direction of the first flow hole 210 and the second flow hole 220 which are symmetrical with each other, thereby rotating the rotation aberration 300 clockwise. At this time, the first and second flow holes (210, 220) are each other along the circumferential direction to the separation diaphragm 200, as shown in Figures 12 to 14 to enhance the cooling water flow force for rotating the rotary aberration (300) Each of the first and second flow holes 210 and 220 may be formed in alternating positions along the circumferential direction. Dogs and so on will be variously modifiable.

On the other hand, the rotation opening and closing unit 400 is reciprocating in both directions in conjunction with the reciprocating rotation of the rotary aberration 300 and alternately open and close the first and second flow holes (210, 220). Accordingly, the first and second flow holes 210 and 220 are alternately opened and closed by the reciprocating rotation of the rotary opening and closing unit 400, and the coolant flows through the first and second flow holes 210 and 220 alternately. The power has components opposite to each other, so that the rotation aberration 300 reciprocates, and the reciprocation of the rotation aberration 300 again generates a circulation mechanism for reciprocating the rotation opening and closing unit 400. By this circulation mechanism, the reciprocating rotation of the rotary aberration 300 and the rotary opening / closing unit 400 is continuously repeated as long as cooling water is supplied into the housing 100.

Looking at the configuration of the rotation opening and closing unit 400 in more detail, the rotation opening and closing unit 400 is directly connected and coupled to the link unit 500 according to an embodiment of the present invention to rotate in conjunction with the rotation aberration 300 The rotary block unit 410 and the rotary block unit 410 are engaged with the rotary block unit 410 to rotate integrally with the rotary block unit 410 and to the separation plate 200 to open and close the first and second flow holes 210 and 220 alternately. It is configured to include an opening and closing clutch portion 430 is contacted.

At this time, the rotary block 410 is connected to the link unit 500 in accordance with an embodiment of the present invention so as to communicate with the circular rotary plate 411, the through-hole 416 formed in the center portion, the through-hole 416 A connecting sleeve 412 protruding from one surface of the rotating plate 411 to be coupled to the injection unit 600 and the outer side of the rotating plate 411 to be engaged with the opening / closing clutch unit 430 along the longitudinal direction of the housing 100. It may be configured to include an extended formed locking bar 413, the rotating plate 411, the connecting sleeve 412 and the locking bar 413 is preferably formed integrally, but each formed separately and coupled to each other It can also be produced. At this time, the connection sleeve 412 is configured to be detachably coupled to the injection unit 600, the detachable coupling method may be applied to the screw coupling method as shown in Figure 10, in addition to the fitting method or separate It can be changed in various ways such as bolt fastening method.

In addition, the opening and closing clutch unit 430 is in contact with one side of the separating diaphragm 200 in accordance with an embodiment of the present invention so as to rotate integrally with the operating plate 431, the operating plate 431 It is coupled to engage the engaging bar 413 of the rotary block 410, and includes an operation locking plate 432 formed to protrude to the outside of the separation plate 200 to rotate, the operating plate 431 is rotated The first and second flow holes 210 and 220 may be configured to be opened and closed alternately, and the operating plate 431 and the operating stopping plate 432 may be integrally formed with each other. Meanwhile, the opening and closing clutch unit 430 may further include an elastic spring 433 for elastically biasing the operating plate 431 such that the operating plate 431 rotates in the direction of closing the first flow hole 210. have.

Accordingly, the rotation opening / closing unit 400 is formed of the rotation block part 410 and the opening / closing clutch part 430 to be combined with the injection unit 600 to perform the function of rotating the injection unit 600 and the first and the same. A function of alternately opening and closing the second flow holes (210, 220).

When the operation state of the rotation opening and closing unit 400 is divided into the rotation block unit 410 and the opening / closing clutch unit 430 to examine in more detail, first, the rotation block unit 410 is rotated by the link unit 500 ( Rotate in conjunction with 300). More specifically, as shown in FIG. 11, when the rotary aberration 300 reciprocates, the circular rotary plate 411 and the connecting sleeve 412 which are directly coupled to the link unit 500 reciprocate, and thus The injection unit 600 coupled to the connecting sleeve 412 is reciprocated. In addition, when the connecting sleeve 412 reciprocally rotates, the catching bar 413 extending to the outer side of the connecting sleeve 412 is also reciprocally rotated, in which case the catching bar 413 actuates the engaging plate of the opening / closing clutch unit 430. Since the engaging plate 432 is engaged, the operation stopping plate 432 is reciprocally rotated together with the locking bar 413. When the operation stopping plate 432 reciprocally rotates, the operation plate 431 integrally coupled thereto rotates reciprocally, and the first and second flow holes 210 and 220 alternately according to the reciprocating rotation of the operation plate 431. It is opened and closed. Selective opening and closing of the first and second flow holes 210 and 220 induces reciprocation of the rotation aberration 300 again as described above, and as a result, the rotation opening and closing unit 400 continuously reciprocates.

At this time, the locking bar 413 of the rotary block 410 and the operation locking plate 432 of the opening and closing clutch unit 430 may be formed to be engaged when both of the locking bar 413 rotates in both directions, as shown in FIG. As described above, the engagement bar 413 may be configured to be engaged only in one direction rotation and to be disengaged in the opposite direction. For example, as shown in FIG. 14A, in the state in which the operating plate 431 and the operating stopping plate 432 are rotated with the first flow hole 210 closed, the locking bar 413 When rotating in one direction, the operation stopping plate 432 is engaged with it to rotate to rotate the operating plate 431 to close the second flow hole 220 as shown in (b) of FIG. When the locking bar 413 rotates in the opposite direction while the operation plate 431 closes the second flow hole 220, in this case, the operation locking plate 432 is connected to the locking bar 413. Since the engagement plate 432 and the operation plate 431 do not rotate, the second flow hole 220 is kept closed because it is not engaged. Therefore, in this case, as shown in FIG. 14, the operating plate 431 is rotated to close the first flow hole 210 by a separate elastic spring 433 for elastically biasing the operating plate 431.

On the other hand, the rotation opening and closing unit 400 is to be reciprocated in accordance with the operation principle described above, such a rotation opening and closing unit 400 is a separate rotation stopper so that the reciprocating rotation angle can be adjusted according to an embodiment of the present invention ( 420 may be mounted. That is, as shown in FIG. 11, the rotary stopper 420 protruding outward from the rotary block 410 is coupled to the upper surface of the rotary plate 411 of the rotary block 410, and the inner circumferential surface of the housing 100. On one side, as the rotary stopper 420 rotates, a fixing protrusion 132 that may be engaged with the rotary stopper 420 may be formed. Therefore, the maximum rotation angle of the rotation block 410 is limited by the rotation stopper 420 and the fixing protrusion 132. In this case, the rotary stopper 420 may be coupled to the connection sleeve 412 through the coupling hole 421 to penetrate through the coupling sleeve 412, and the coupling protrusion 422 is formed on the inner circumferential surface of the coupling hole 421. And the outer circumferential surface of the connecting sleeve 412 is formed with a plurality of coupling grooves 415 which can be inserted into the coupling protrusion 422 spaced along the circumferential direction, by the coupling protrusion 422 and the coupling groove 415 The rotary stopper 420 may be detachably coupled to the rotary block 410. Therefore, the coupling position of the rotary stopper 420 is changed to have various relative positions with respect to the rotating plate 411 according to the position of the coupling groove 415 to which the coupling protrusion 422 is coupled among the plurality of coupling grooves 415, According to the change of the coupling position, the maximum rotation angle of the rotation block part 410 limited by the rotation stopper 420 is adjusted.

Next, looking at the link unit 500 for interlocking the rotary opening and closing unit 400 and the rotary aberration 300 in more detail, the hollow cylinder in which the teeth (G) of the gear is formed on the inner peripheral surface of the rotary opening and closing unit 400 Gear teeth 414 are formed, the link unit 500 may be configured to include a plurality of gears that are engaged to the rotation opening and closing unit 400. That is, the link unit 500 is coupled to the central axis C of the rotational aberration 300, the driving gear 510 rotates, and the reduction gear is engaged with the driving gear 510 and transmits the rotational force of the driving gear 510. It may be configured to include a gear unit 520 and a driven gear 530 that is meshed with the reduction gear unit 520 to which the rotational force of the driving gear 510 is transmitted. At this time, the driven gear 530 is mounted to mesh with the gear teeth 414 of the rotation opening and closing unit 400. Therefore, when the rotation aberration 300 rotates, the driving gear 510 coupled to the central axis C of the rotation aberration 300 rotates, and the reduction gear unit 520 according to the rotation of the driving gear 510. ) And the driven gear 530 is rotated accordingly the rotation opening and closing unit 400 is rotated. At this time, the reduction gear unit 520 may be configured through a plurality of compound gears 521 so that the rotational speed of the drive gear 510 can be reduced, by the reduction gear unit 520 rotation opening and closing unit 400 It is preferable that the rotational speed of Rx is relatively slower than the rotational speed of the rotational aberration 300. In addition, the link unit 500 is engaged with the gear tooth 414 to support the rotation opening and closing unit 400 meshed with the driven gear 530 in accordance with one embodiment of the present invention (at least one idle gear ( It is preferably configured to further comprise 540.

The link unit 500 may be mounted through a separate gear box 550 provided in the housing 100 as shown in FIGS. 9 to 11. The gear box 550 is separated into a hollow cylindrical gear box body 551 and a flat gear box cover 553 that closes one surface of the gear box body 551, and is formed inside the gear box body 551. The reduction gear unit 520 may be seated on the gear support 552, and the driven gear 530 and the idle gear 540 may be seated on an upper surface of the gear box cover 553.

On the other hand, the injection unit 600 may be configured in various ways to inject the coolant using the injection nozzle, the injection unit 600 according to an embodiment of the present invention is a rotation opening and closing unit ( It is detachably coupled to 400 and the injection case 610 is formed in the injection passage 611 is formed in communication with the interior of the housing 100 so that the coolant passes therein, and detachably coupled to the outlet of the injection passage 611 It may be configured to include a spray nozzle (620). That is, the injection unit 600 may be detachably coupled to the connection sleeve 412 of the rotation opening and closing unit 400 as shown in FIG. 10, as described above, the connection sleeve 412 and the injection case 610. Screws corresponding to each other can be screwed in a way that is formed, through which the various types of injection unit 600 can be easily exchanged as necessary. In addition, the injection nozzle 620 may be detachably coupled to the injection flow path 611 in a fitting manner as shown in FIG. 10, and the coupling method may be variously changed, such as a bolt coupling method and a screw coupling method. According to this structure, various types of spray nozzles 620 may be easily combined and used.

The foregoing description is merely illustrative of the technical idea of the present invention, and various changes and modifications may be made by those skilled in the art without departing from the essential characteristics of the present invention. Therefore, the embodiments disclosed in the present invention are intended to illustrate rather than limit the scope of the present invention, and the scope of the technical idea of the present invention is not limited by these embodiments. The protection scope of the present invention should be interpreted by the following claims, and all technical ideas within the equivalent scope should be interpreted as being included in the scope of the present invention.

Claims (13)

In the efficiency improvement equipment of the photovoltaic power generation equipment to maintain or improve the efficiency by spraying the cooling water to the photovoltaic power generation equipment comprising a photovoltaic module for collecting electricity to generate electricity,
Storage tank to store coolant:
Coolant injection means for injecting coolant into the solar module; And
A pump for pumping the coolant stored in the storage tank to supply the coolant injection means through a coolant supply pipe;
The cooling water injection means includes a venturi tube for generating negative pressure therein to introduce external air: and rotation means for reciprocating left and right by flow of cooling water.
The venturi tube,
An inner tube in which a coolant movement path and an air inlet hole are formed; And
It is coupled to the inner tube to surround the inner tube from the outside, provided with a hole through which the outside air flows, and includes an appearance that is fastened to the rotating means,
The cooling water moving path includes an inlet portion through which the coolant flows and an outlet portion in which the inner diameter of the cooling water is narrowed and then widened again.
The air inlet hole is in communication with the outlet of the cooling water movement path in which the negative pressure is generated efficiency improvement equipment of the solar power plant.
delete delete delete The method of claim 1,
The inner tube includes a fastening portion inserted into a side into which the coolant is introduced,
The fastening portion is the efficiency of the solar power plant, characterized in that the inlet is formed.
The method of claim 5,
Inlet portion formed in the fastening portion, the inner diameter is narrower than the outlet portion is formed efficiency improvement equipment of the solar power generation equipment, characterized in that it comprises a transmission unit for spraying the coolant to the outlet.
The method of claim 1,
The exterior is formed with a hole through which outside air is introduced,
The air introduced through the hole is the efficiency improvement equipment of the solar power generation facility, characterized in that it is transferred to the cooling water movement path through the air inlet.
The method of claim 1,
The venturi tube is the efficiency improvement equipment of the photovoltaic power generation facility, characterized in that disposed in the front end of the rotating means based on the movement direction of the cooling water.
The method of claim 1,
The venturi tube is disposed on the rear end of the rotating means based on the movement direction of the cooling water efficiency improvement equipment of the solar power plant.
The method of claim 1,
Wherein,
A housing having inlets and outlets formed at both sides thereof to allow the coolant to flow in and out from the outside;
Separating diaphragm through which the first and second flow holes having a flow path in different directions so as to pass through the cooling water flows through the inlet is formed in the housing and opposite flow direction components are formed;
A rotation aberration rotatably mounted in the housing to reciprocally rotate in both directions by cooling water flow in different directions formed as cooling water passes through the first or second flow holes;
A rotation opening / closing unit which reciprocates in both directions in association with the reciprocating rotation of the rotational aberration and alternately opens and closes the first and second flow holes; And
Link unit for interlocking the rotation aberration and rotation opening and closing unit
Efficiency improvement equipment of photovoltaic power generation equipment comprising a.
The method of claim 10,
The separating diaphragm is fixedly mounted in the transverse direction inside the housing in a flat plate shape, the first and second flow holes are each formed at least one or more so as to have a straight flow path formed inclined with respect to the thickness direction of the separating diaphragm, The inclination direction of the first and second flow holes are formed symmetrically to each other with respect to the thickness direction of the separation diaphragm efficiency improvement equipment.
The method of claim 10,
The rotation opening and closing unit,
A rotating block unit connected to the link unit and rotating; And
And an opening and closing clutch part engaged with the separating block to be engaged with the rotary block part and contacted with the separation plate so as to alternately open and close the first and second flow holes.
The method of claim 10,
The rotating means is disposed on the outside of the housing and in communication with the inner space of the housing through the discharge port comprises a spray unit for injecting the coolant discharged from the housing,
The injection unit is coupled to the rotation opening and closing unit to improve the efficiency of the photovoltaic power generation equipment, characterized in that rotating with the rotation opening and closing unit and spraying the cooling water.
KR1020110077673A 2011-08-04 2011-08-04 Efficiency enhancement equipment for solar photovoltaic power facilities KR101282739B1 (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
KR1020110077673A KR101282739B1 (en) 2011-08-04 2011-08-04 Efficiency enhancement equipment for solar photovoltaic power facilities
PCT/KR2012/005708 WO2013019005A2 (en) 2011-08-04 2012-07-17 Efficiency enhancing system for a photovoltaic power generating facility using a two phase flow

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Application Number Priority Date Filing Date Title
KR1020110077673A KR101282739B1 (en) 2011-08-04 2011-08-04 Efficiency enhancement equipment for solar photovoltaic power facilities

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104253574A (en) * 2013-06-26 2014-12-31 中国科学院上海高等研究院 Solar distributed power generation system

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KR100725242B1 (en) * 2004-05-31 2007-06-04 주식회사 케이씨텍 Nozzle for Injecting Sublimable Solid Particles Entrained in Gas for Cleaning Surface and Method for Cleaning Surface using the Nozzle
KR100914965B1 (en) * 2009-05-27 2009-09-02 (주)하이레벤 Washing apparatus for solar photovoltaic power facilities
KR100986706B1 (en) * 2010-03-16 2010-10-08 (주)하이레벤 Efficiency enhancement equipment for solar photovoltaic power facilities
JP2011100782A (en) 2009-11-04 2011-05-19 Toyota Home Kk Device for cooling solar panel

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR100725242B1 (en) * 2004-05-31 2007-06-04 주식회사 케이씨텍 Nozzle for Injecting Sublimable Solid Particles Entrained in Gas for Cleaning Surface and Method for Cleaning Surface using the Nozzle
KR100914965B1 (en) * 2009-05-27 2009-09-02 (주)하이레벤 Washing apparatus for solar photovoltaic power facilities
JP2011100782A (en) 2009-11-04 2011-05-19 Toyota Home Kk Device for cooling solar panel
KR100986706B1 (en) * 2010-03-16 2010-10-08 (주)하이레벤 Efficiency enhancement equipment for solar photovoltaic power facilities

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
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