JP2011119394A - Solar generation heat collecting unit - Google Patents

Solar generation heat collecting unit Download PDF

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JP2011119394A
JP2011119394A JP2009274578A JP2009274578A JP2011119394A JP 2011119394 A JP2011119394 A JP 2011119394A JP 2009274578 A JP2009274578 A JP 2009274578A JP 2009274578 A JP2009274578 A JP 2009274578A JP 2011119394 A JP2011119394 A JP 2011119394A
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heat
heat collecting
solar
panel
collecting plate
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JP4881996B2 (en
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Yozo Kagami
要三 各務
Keiichi Kuriki
圭一 栗木
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Rinnai Corp
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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
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B10/00Integration of renewable energy sources in buildings
    • Y02B10/10Photovoltaic [PV]
    • 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
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B10/00Integration of renewable energy sources in buildings
    • Y02B10/20Solar thermal
    • 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
    • Y02E10/40Solar thermal energy, e.g. solar towers
    • Y02E10/44Heat exchange systems
    • 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

<P>PROBLEM TO BE SOLVED: To provide a solar generation heat collecting unit that is more excellent in the efficiency of collecting heat while cooling a solar cell. <P>SOLUTION: The solar generation heat collecting unit has, in that order from the side of a surface receiving solar light, a solar-cell panel having a plurality of solar cells disposed thereon, a heat conducting unit filled with a highly heat-conductive material, a heat collecting panel, and a heat insulating unit. The solar generation heat collecting unit uses a heat collecting panel which includes a first heat collecting plate having a swelled section and a second heat collecting plate having a flat surface, the first and second heat collecting plates being stacked and integrated together, and which has an uneven surface on the side of the solar-cell panel and a flat surface on the side of the heat insulating unit, while having an internal passage between the swelled section of the first heat collecting plate and the second heat collecting plate to allow circulation of a heat medium therein. <P>COPYRIGHT: (C)2011,JPO&INPIT

Description

本発明は、太陽光から電力及び熱エネルギーを取り出す太陽光発電集熱ユニットに関する。   The present invention relates to a photovoltaic power collection unit that extracts electric power and thermal energy from sunlight.

従来、太陽電池パネルと熱媒を流通させる内部通路を有する集熱パネルとを積層することにより、太陽光から電力及び熱エネルギーを取り出す太陽光発電集熱ユニットが提案されている。   2. Description of the Related Art Conventionally, there has been proposed a solar power generation heat collecting unit that takes out electric power and heat energy from sunlight by laminating a solar cell panel and a heat collecting panel having an internal passage through which a heat medium flows.

この種の太陽光発電集熱ユニットは、太陽光を受ける表面側から順に、表面保護パネル、接着部、複数の太陽電池セルが配設された太陽電池パネル、伝熱部、集熱パネル、及び断熱部などが積層された構造を有している(例えば、特許文献1)。   This kind of solar power generation heat collecting unit is, in order from the surface side that receives sunlight, a surface protection panel, an adhesion part, a solar battery panel in which a plurality of solar cells are arranged, a heat transfer part, a heat collection panel, and It has a structure in which heat insulating portions and the like are stacked (for example, Patent Document 1).

ところで、太陽電池セルは、それ自体で光電変換動作時に熱を発生し、また太陽光による熱によって温度上昇するが、温度上昇に伴って発電効率が低下する温度特性を有している。そのため、発電効率の低下を抑えるために、太陽電池セルの温度上昇を抑えることが求められる。従って、上記太陽光発電集熱ユニットのように、太陽電池パネルと集熱パネルとを一体化することにより、太陽電池セルから発生する熱を下方に配置された集熱パネルの内部通路を流通する媒体で熱交換すれば、太陽電池セルの冷却も同時に行なうことができ、発電効率の低下を抑えつつ、熱エネルギーを効率的に取り出すことができる。   By the way, the solar cell itself generates heat during the photoelectric conversion operation, and has a temperature characteristic that the temperature rises due to the heat from sunlight, but the power generation efficiency decreases as the temperature rises. Therefore, in order to suppress a decrease in power generation efficiency, it is required to suppress the temperature increase of the solar battery cell. Therefore, like the solar power generation heat collecting unit, by integrating the solar battery panel and the heat collecting panel, heat generated from the solar battery cells is circulated through the internal passage of the heat collecting panel disposed below. If heat exchange is performed using a medium, the solar battery cell can be cooled at the same time, and heat energy can be efficiently extracted while suppressing a decrease in power generation efficiency.

特開平9−96451号公報JP 9-96451 A

しかしながら、上記従来の太陽光発電集熱ユニットにおいては、太陽電池パネルと集熱パネルとを積層するために太陽電池パネル側の集熱パネルの上面は平坦面となっていることから、受熱効果が低く、太陽電池セルの冷却が不十分となりやすいという問題がある。また、内部通路を形成するために断熱部側の集熱パネルの下面には凹凸面が形成されているため、断熱部側で集熱板の面積が増大し、その結果、断熱効果も低くなってしまい、集熱パネルでの集熱効率が低下するという問題がある。   However, in the above conventional solar power generation heat collecting unit, since the upper surface of the heat collecting panel on the solar cell panel side is a flat surface for laminating the solar cell panel and the heat collecting panel, there is a heat receiving effect. There exists a problem that it is low and the cooling of a photovoltaic cell tends to become inadequate. In addition, since an uneven surface is formed on the lower surface of the heat collecting panel on the heat insulating portion side to form the internal passage, the area of the heat collecting plate is increased on the heat insulating portion side, and as a result, the heat insulating effect is also lowered. Therefore, there is a problem that the heat collection efficiency in the heat collection panel is lowered.

本発明は上記課題を解決するためになされたものであり、太陽電池セルの冷却を図りつつ、より集熱効率に優れた太陽光発電集熱ユニットを提供することを目的とする。   The present invention has been made to solve the above-described problems, and an object of the present invention is to provide a solar power generation heat collecting unit that is more excellent in heat collecting efficiency while cooling a solar battery cell.

本発明は、太陽光を受ける表面側から順に、
複数の太陽電池セルが配設された太陽電池パネルと、
高熱伝導性材料が充填された伝熱部と、
集熱パネルと、
断熱部とを有する太陽光発電集熱ユニットであって、
前記集熱パネルが、膨出部を有する第1の集熱板と、平板状の第2の集熱板とが積層一体化されて構成されており、前記太陽電池パネル側に凹凸面及び前記断熱部側に平坦面を有するとともに、前記第1の集熱板の膨出部と前記第2の集熱板との間に熱媒を流通させる内部通路を有する太陽光発電集熱ユニットである。
The present invention, in order from the surface side receiving sunlight,
A solar panel in which a plurality of solar cells are disposed;
A heat transfer section filled with a high thermal conductivity material;
A heat collecting panel;
A solar heat collecting unit having a heat insulating part,
The heat collecting panel is configured by laminating and integrating a first heat collecting plate having a bulging portion and a flat plate-like second heat collecting plate, and an uneven surface on the solar cell panel side and the A solar power generation heat collecting unit having a flat surface on the heat insulating portion side and having an internal passage through which a heat medium flows between the bulging portion of the first heat collecting plate and the second heat collecting plate .

上記太陽光発電集熱ユニットによれば、集熱パネルが太陽電池パネル側に凹凸面を有しているから、集熱パネルの上面の受熱面積を大きくすることができる。また、集熱パネルが断熱部側に平坦面を有しているから、集熱パネルの下面の放熱面積を小さくすることができる。そして、上記集熱パネルを構成する第1の集熱板の膨出部と平板状の第2の集熱板との間に熱媒を流通させる内部通路を形成することができるから、高熱伝導性材料が充填された伝熱部を介して集熱パネルに伝熱されてきた熱を、内部通路を流通する熱媒により効率的に熱交換を行なうことができ、太陽電池セルの冷却を図りつつ、高い集熱効率で熱エネルギーを取り出すことができる。   According to the solar power generation heat collecting unit, since the heat collecting panel has an uneven surface on the solar cell panel side, the heat receiving area on the upper surface of the heat collecting panel can be increased. Moreover, since the heat collection panel has a flat surface on the heat insulating portion side, the heat radiation area on the lower surface of the heat collection panel can be reduced. And since the internal channel which distribute | circulates a heat medium can be formed between the bulging part of the 1st heat collecting plate which comprises the said heat collecting panel, and the flat 2nd heat collecting plate, it is highly heat conductive. The heat transferred to the heat collection panel through the heat transfer section filled with the heat-sensitive material can be efficiently exchanged by the heat medium flowing through the internal passage, thereby cooling the solar cells. However, heat energy can be taken out with high heat collection efficiency.

上記断熱部は、真空断熱材からなることが好ましい。上記太陽光発電集熱ユニットによれば、集熱パネルから断熱部への放熱がより少なくなり、集熱効率を一層向上させることができる。   The heat insulating part is preferably made of a vacuum heat insulating material. According to the solar power generation heat collecting unit, heat radiation from the heat collecting panel to the heat insulating portion is reduced, and the heat collecting efficiency can be further improved.

以上のように、本発明によれば、太陽電池セルの冷却を図りつつ、より集熱効率に優れた太陽光発電集熱ユニットを提供することができる。   As described above, according to the present invention, it is possible to provide a solar power collection unit that is more excellent in heat collection efficiency while cooling a solar battery cell.

図1は、本発明の実施の形態に係る太陽光発電集熱ユニットの外観を示す概略斜視図である。FIG. 1 is a schematic perspective view showing an external appearance of a solar power generation heat collecting unit according to an embodiment of the present invention. 図2は、図1のA−A線における要部拡大断面概略図である。2 is an enlarged schematic cross-sectional view of a main part taken along line AA in FIG. 図3は、本発明の実施の形態に係る太陽光発電集熱ユニットの断熱部に用いられる断熱材の他の一例を示す断面概略図である。FIG. 3 is a schematic cross-sectional view showing another example of the heat insulating material used in the heat insulating portion of the solar power generation heat collecting unit according to the embodiment of the present invention.

以下、図面を参照しながら本発明の実施の形態に係る太陽光発電集熱ユニットについて説明する。   Hereinafter, a solar power generation heat collecting unit according to an embodiment of the present invention will be described with reference to the drawings.

図1は、本発明の実施の形態に係る太陽光発電集熱ユニットの外観を示す概略斜視図であり、図2は、図1のA−A線における要部拡大断面概略図である。   FIG. 1 is a schematic perspective view showing an appearance of a solar power generation heat collecting unit according to an embodiment of the present invention, and FIG. 2 is an enlarged schematic cross-sectional view of a main part taken along line AA of FIG.

図1に示すように、本実施の形態の太陽光発電集熱ユニット1は、住宅等の屋根の上に設置されて、ソーラーハウスを構成するものである。なお、図示しないが、太陽電池パネル4から引き出された電気配線は、屋内に設置されたインバータへ導かれ、太陽電池セル41で発電された電力がインバータに集められて、インバータにより直流から交流に変換され、屋内配線に供給される。また、集熱パネル内の内部通路は、配管を介して貯湯タンクと接続されており、貯湯タンクで加熱された水が屋内給湯設備に供給される。   As shown in FIG. 1, the solar power generation heat collecting unit 1 of this Embodiment is installed on roofs, such as a house, and comprises a solar house. Although not shown, the electrical wiring drawn out from the solar battery panel 4 is led to an inverter installed indoors, and the electric power generated by the solar battery cells 41 is collected in the inverter. Converted and supplied to indoor wiring. Moreover, the internal passage in the heat collecting panel is connected to a hot water storage tank via a pipe, and water heated in the hot water storage tank is supplied to an indoor hot water supply facility.

図2に示すように、この太陽光発電集熱ユニット1においては、太陽光を受ける表面側から順に、表面保護パネル2と、接着樹脂からなる接着部3と、複数の太陽電池セル41が配設され、太陽電池セル41が電気的に接続された太陽電池パネル4と、太陽光や太陽電池セル41からの熱を伝熱する伝熱部5と、集熱パネル6と、断熱部7とが積層されており、これらの構成部材が枠体8によって積層一体化されている。   As shown in FIG. 2, in this solar power generation heat collecting unit 1, a surface protection panel 2, an adhesive portion 3 made of an adhesive resin, and a plurality of solar cells 41 are arranged in order from the surface side that receives sunlight. Solar cell panel 4 to which solar cells 41 are electrically connected, heat transfer unit 5 for transferring sunlight and heat from solar cells 41, heat collecting panel 6, and heat insulating unit 7 Are laminated, and these constituent members are laminated and integrated by the frame body 8.

表面保護パネル2としては、従来公知の透明ガラス基板や、高湿透明樹脂板などを用いることができる。また、太陽電池パネル4としては、例えば、シリコン系半導体、化合物系半導体等の結晶系(単結晶系や多結晶系)半導体やアモルファス系半導体などからなる太陽電池セル41が電気配線で直/並列に接続されたもの用いることができる。   As the surface protection panel 2, a conventionally known transparent glass substrate, a high-humidity transparent resin plate, or the like can be used. Moreover, as the solar cell panel 4, for example, solar cells 41 made of a crystalline (single crystal or polycrystalline) semiconductor such as a silicon-based semiconductor or a compound-based semiconductor, an amorphous semiconductor, or the like are connected in series / parallel with electric wiring. The one connected to can be used.

接着部3は、太陽電池パネル4の上面を封止して、太陽光発電集熱ユニット1の耐候性を高めるとともに、表面保護パネル2の下面と太陽電池パネル4の上面とを接着させる機能を有している。接着部3に用いられる接着樹脂としては、従来公知のEVA、PVB、PET、ブタジエン系樹脂、フッ化ビニル樹脂などを用いることができる。   The bonding portion 3 seals the upper surface of the solar cell panel 4 to enhance the weather resistance of the solar power generation heat collecting unit 1 and also has a function of bonding the lower surface of the surface protection panel 2 and the upper surface of the solar cell panel 4. Have. Conventionally known EVA, PVB, PET, butadiene-based resin, vinyl fluoride resin, or the like can be used as the adhesive resin used for the bonding portion 3.

伝熱部5は、太陽電池パネル4の下面を封止し、集熱パネル6の上面と太陽電池パネル4の下面とを接着させるとともに、太陽光からの熱及び太陽電池セル41から発生する熱を集熱パネル6に伝熱する機能を有している。   The heat transfer unit 5 seals the lower surface of the solar battery panel 4 and adheres the upper surface of the heat collecting panel 6 and the lower surface of the solar battery panel 4, and heat from sunlight and heat generated from the solar battery cells 41. Has a function of transferring heat to the heat collecting panel 6.

伝熱部5に用いられる高熱伝導性材料としては、シリコーングリースやシリコーンゴムなどを用いることができる。これらの中でも、熱伝導性、絶縁性、及び弾力性に優れるシリコーンゴムが好ましい。太陽電池パネル4と集熱パネル6とでは熱膨張率が相違するため、温度上昇に伴い、太陽電池パネル4と集熱パネル6との間に変形が生じやすいが、上記シリコーンゴムを有する伝熱部5であれば、そのような温度上昇に伴う変形を吸収することができる。なお、伝熱部5は、伝熱性を高めるために、金属酸化物などのフィラーを含有してもよい。市場で入手可能なシリコーンゴムとしては、例えば、信越シリコーン社製のTCシリーズのシリコーンゴムが挙げられる。   Silicone grease, silicone rubber, or the like can be used as the high thermal conductivity material used for the heat transfer section 5. Among these, silicone rubber excellent in thermal conductivity, insulation, and elasticity is preferable. Since the solar cell panel 4 and the heat collection panel 6 have different coefficients of thermal expansion, the solar cell panel 4 and the heat collection panel 6 are likely to be deformed as the temperature rises. If it is the part 5, the deformation | transformation accompanying such a temperature rise can be absorbed. In addition, the heat transfer part 5 may contain fillers, such as a metal oxide, in order to improve heat transfer property. Examples of the silicone rubber available on the market include TC series silicone rubber manufactured by Shin-Etsu Silicone.

断熱部7は、グラスウールや発泡スチロール・発泡ウレタンなどの発泡体からなる断熱材を板状にしたものを用いることができる。また、図3に示すように、断熱部7には、断熱材71を芯材とし、金属製フィルム72で断熱材71を真空密封した真空断熱材を用いてもよい。このような真空断熱材を用いれば、集熱パネル6から断熱部7への放熱がより少なくなり、集熱効率を一層向上させることができる。また、真空断熱材は、薄くても断熱性に優れるため、太陽光発電集熱ユニット全体を薄層化及び軽量化することもできる。市場で入手可能な真空断熱材としては、例えば、クラボウ社製のクランバックが挙げられる。   The heat insulation part 7 can use what made the heat insulating material which consists of foams, such as glass wool, a polystyrene foam, and urethane foam, into plate shape. As shown in FIG. 3, a vacuum heat insulating material in which the heat insulating material 71 is a core material and the heat insulating material 71 is vacuum-sealed with a metal film 72 may be used for the heat insulating portion 7. If such a vacuum heat insulating material is used, the heat radiation from the heat collecting panel 6 to the heat insulating portion 7 is reduced, and the heat collecting efficiency can be further improved. Moreover, since a vacuum heat insulating material is excellent in heat insulation even if it is thin, the whole photovoltaic power generation heat collecting unit can also be reduced in thickness and weight. As a vacuum heat insulating material available on the market, for example, a cranback manufactured by Kurabo Industries Co., Ltd. may be mentioned.

集熱パネル6は、図2に示すように、太陽電池パネル4側に膨出する膨出部61aを有するアルミニウム製の第1の集熱板61と、平板状のアルミニウム製の第2の集熱板62とが積層一体化されて構成されている。これにより、集熱パネル6は、太陽電池パネル4側に凹凸面を、断熱部7側に平坦面を有するとともに、第1の集熱板61の膨出部61aと平板状の第2の集熱板62の上面との間に、熱媒が流通する内部通路63を有している。このような構造を有する集熱パネル6を用いれば、集熱パネル6の上面は凹凸面となっているため、太陽電池パネル4側の受熱面積を大きくすることができる。また、集熱パネル6の下面は平坦面となっているため、断熱部7側の放熱面積を小さくすることができ、集熱パネル6から断熱部7への放熱を抑えることができる。その結果、伝熱部5を介して伝熱されてきた熱を効率よく集熱パネル6で集熱することができる。そして、集熱パネル6は、膨出部61aを有する第1の集熱板61と平板状の第2の集熱板62とが積層一体化され、第1の集熱板61の膨出部61aと第2の集熱板62の上面との間に、熱媒が流通する内部通路63が形成されているから、集熱パネル6に伝熱されてきた熱を内部を流通する熱媒(例えば、水、グリコールなどの不凍液)によって効率的に熱交換することができる。その結果、太陽電池セル41を効率的に冷却しながら、高い集熱効率を得ることができる。なお、第1の集熱板61の膨出部61aは熱媒を流通させる内部通路63を形成できる形状であれば、断面半円状以外に、断面多角形状など任意の形状を有していてもよい。   As shown in FIG. 2, the heat collecting panel 6 includes a first heat collecting plate 61 made of aluminum having a bulging portion 61 a bulging on the solar cell panel 4 side, and a second collecting plate made of flat aluminum. The heat plate 62 is laminated and integrated. Thereby, the heat collecting panel 6 has a concavo-convex surface on the solar cell panel 4 side and a flat surface on the heat insulating portion 7 side, and the bulging portion 61a of the first heat collecting plate 61 and the flat plate-like second collecting plate. An internal passage 63 through which the heat medium flows is provided between the upper surface of the hot plate 62. If the heat collecting panel 6 having such a structure is used, since the upper surface of the heat collecting panel 6 is an uneven surface, the heat receiving area on the solar cell panel 4 side can be increased. Moreover, since the lower surface of the heat collecting panel 6 is a flat surface, the heat radiation area on the heat insulating portion 7 side can be reduced, and heat radiation from the heat collecting panel 6 to the heat insulating portion 7 can be suppressed. As a result, the heat transferred through the heat transfer section 5 can be efficiently collected by the heat collecting panel 6. In the heat collecting panel 6, the first heat collecting plate 61 having the bulging portion 61 a and the flat plate-like second heat collecting plate 62 are laminated and integrated, and the bulging portion of the first heat collecting plate 61 is integrated. Since an internal passage 63 through which the heat medium flows is formed between 61 a and the upper surface of the second heat collecting plate 62, the heat medium that circulates the heat transferred to the heat collecting panel 6 ( For example, heat can be exchanged efficiently by using an antifreeze such as water or glycol. As a result, it is possible to obtain high heat collection efficiency while efficiently cooling the solar cells 41. The bulging portion 61a of the first heat collecting plate 61 has an arbitrary shape such as a polygonal cross section in addition to a semicircular cross section as long as it can form the internal passage 63 through which the heat medium flows. Also good.

上記本実施の形態の集熱パネル6の製造方法としては、従来公知の方法を使用することができる。例えば、2枚一対のアルミニウム製の集熱板の一方に、所定の流路パターンが形成されるよう圧着防止剤をプリントし、この所定パターンをプリントした集熱板上に他方の集熱板を重ね合わせて、圧延ローラなどにより両集熱板を圧延、圧着し、断面半円状の反転凹凸パターンが形成された金型と、平坦面を有する金型との間に積層した集熱板を配置し、内部通路63となる一方の端部を封止した状態で、他方の端部から圧着防止剤が塗布された部分に圧搾空気を供給して、一方の集熱板に膨出部を形成することにより、上面に凹凸面を、下面に平坦面を有するとともに、内部に断面半円状の内部通路63を有する集熱パネル6を作製することができる。   As a manufacturing method of the heat collecting panel 6 of the present embodiment, a conventionally known method can be used. For example, an anti-bonding agent is printed on one of a pair of aluminum heat collecting plates so that a predetermined flow path pattern is formed, and the other heat collecting plate is placed on the heat collecting plate on which the predetermined pattern is printed. A heat collecting plate laminated between a die having a flat surface and a die formed with a reverse concavo-convex pattern having a semicircular cross section formed by rolling and pressing both heat collecting plates with a rolling roller or the like. In a state where one end that becomes the internal passage 63 is sealed, compressed air is supplied from the other end to the portion where the anti-crimping agent is applied, and the bulging portion is provided on one heat collecting plate. By forming, the heat collecting panel 6 having an uneven surface on the upper surface and a flat surface on the lower surface and having an internal passage 63 having a semicircular cross section inside can be produced.

本実施の形態の太陽光発電集熱ユニット1を作製する場合、例えば、まず断熱部7と、上記のようにして得られる集熱パネル6とを積層し、集熱パネル6上に高熱伝導性材料を含む伝熱部5を形成する。次いで、伝熱部5上に太陽電池セル41を所定の間隔で配列した太陽電池パネル4を配置し、さらにその上に接着部3となる樹脂シート、及び表面保護パネル2を積層する。そして、これらの構成部材が積層された積層体を、周縁に配置したパッキングを介して枠体8で封止することにより、太陽光発電集熱ユニット1を作製することができる。   When producing the solar power generation heat collecting unit 1 of this Embodiment, for example, the heat insulation part 7 and the heat collecting panel 6 obtained as mentioned above are laminated | stacked first, and high heat conductivity is carried out on the heat collecting panel 6. FIG. The heat transfer part 5 including the material is formed. Next, the solar battery panel 4 in which the solar battery cells 41 are arranged at a predetermined interval is arranged on the heat transfer part 5, and the resin sheet to be the adhesive part 3 and the surface protection panel 2 are further laminated thereon. And the photovoltaic power generation heat collecting unit 1 is producible by sealing the laminated body in which these structural members were laminated | stacked with the frame 8 through the packing arrange | positioned in the periphery.

1 太陽光発電集熱ユニット
4 太陽電池パネル
41 太陽電池セル
5 伝熱部
6 集熱パネル
61 第1の集熱板
61a 膨出部
62 第2の集熱板
63 内部通路
7 断熱部
DESCRIPTION OF SYMBOLS 1 Photovoltaic power collection unit 4 Solar panel 41 Solar cell 5 Heat transfer part 6 Heat collection panel 61 1st heat collecting plate 61a Swelling part 62 2nd heat collecting plate 63 Internal passage 7 Heat insulation part

Claims (2)

太陽光を受ける表面側から順に、
複数の太陽電池セルが配設された太陽電池パネルと、
高熱伝導性材料が充填された伝熱部と、
集熱パネルと、
断熱部とを有する太陽光発電集熱ユニットであって、
前記集熱パネルは、膨出部を有する第1の集熱板と、平板状の第2の集熱板とが積層一体化されており、前記太陽電池パネル側に凹凸面及び前記断熱部側に平坦面を有するとともに、前記第1の集熱板の膨出部と前記第2の集熱板との間に熱媒を流通させる内部通路を有する太陽光発電集熱ユニット。
From the surface side that receives sunlight,
A solar panel in which a plurality of solar cells are disposed;
A heat transfer section filled with a high thermal conductivity material;
A heat collecting panel;
A solar heat collecting unit having a heat insulating part,
In the heat collecting panel, a first heat collecting plate having a bulging portion and a flat plate-like second heat collecting plate are laminated and integrated, and the solar cell panel side has an uneven surface and the heat insulating portion side. And a solar power generation heat collecting unit having an internal passage through which a heat medium flows between the bulging portion of the first heat collecting plate and the second heat collecting plate.
前記断熱部は、真空断熱材からなる請求項1に記載の太陽光発電集熱ユニット。
The solar heat collecting unit according to claim 1, wherein the heat insulating portion is made of a vacuum heat insulating material.
JP2009274578A 2009-12-02 2009-12-02 Solar power collection unit Active JP4881996B2 (en)

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Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2015004469A (en) * 2013-06-20 2015-01-08 三菱電機株式会社 Solar cogeneration panel
JP2017022793A (en) * 2015-07-07 2017-01-26 日清紡メカトロニクス株式会社 Hybrid solar battery module
CN109539599A (en) * 2017-08-03 2019-03-29 邓泽宇 A kind of method, apparatus making full use of solar energy, control system and water heater

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2015004469A (en) * 2013-06-20 2015-01-08 三菱電機株式会社 Solar cogeneration panel
JP2017022793A (en) * 2015-07-07 2017-01-26 日清紡メカトロニクス株式会社 Hybrid solar battery module
CN109539599A (en) * 2017-08-03 2019-03-29 邓泽宇 A kind of method, apparatus making full use of solar energy, control system and water heater

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