WO2006102891A2 - Panneau solaire - Google Patents

Panneau solaire Download PDF

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Publication number
WO2006102891A2
WO2006102891A2 PCT/DK2006/000167 DK2006000167W WO2006102891A2 WO 2006102891 A2 WO2006102891 A2 WO 2006102891A2 DK 2006000167 W DK2006000167 W DK 2006000167W WO 2006102891 A2 WO2006102891 A2 WO 2006102891A2
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WO
WIPO (PCT)
Prior art keywords
panel
solar collector
air
permeable sheet
liquid
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/DK2006/000167
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English (en)
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WO2006102891A3 (fr
Inventor
Hans Jørgen CHRISTENSEN
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Individual
Original Assignee
Individual
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Filing date
Publication date
Application filed by Individual filed Critical Individual
Publication of WO2006102891A2 publication Critical patent/WO2006102891A2/fr
Publication of WO2006102891A3 publication Critical patent/WO2006102891A3/fr
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24SSOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
    • F24S10/00Solar heat collectors using working fluids
    • F24S10/25Solar heat collectors using working fluids having two or more passages for the same working fluid layered in direction of solar-rays, e.g. having upper circulation channels connected with lower circulation channels
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24SSOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
    • F24S10/00Solar heat collectors using working fluids
    • F24S10/20Solar heat collectors using working fluids having circuits for two or more working fluids
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24SSOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
    • F24S10/00Solar heat collectors using working fluids
    • F24S10/30Solar heat collectors using working fluids with means for exchanging heat between two or more working fluids
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24SSOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
    • F24S10/00Solar heat collectors using working fluids
    • F24S10/80Solar heat collectors using working fluids comprising porous material or permeable masses directly contacting the working fluids
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24SSOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
    • F24S40/00Safety or protection arrangements of solar heat collectors; Preventing malfunction of solar heat collectors
    • F24S40/50Preventing overheating or overpressure
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24SSOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
    • F24S40/00Safety or protection arrangements of solar heat collectors; Preventing malfunction of solar heat collectors
    • F24S40/50Preventing overheating or overpressure
    • F24S40/53Preventing overheating or overpressure by venting solar heat collector enclosures
    • 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

Definitions

  • the present invention relates to a solar collector panel for collection and utilization of thermal energy obtained from the sunlight.
  • Solar collector panels for heating of water for domestic use or for space heating are well known in the art, but also solar collector panels for heating of air, either to be used directly for ventilation and space heating or as a medium for conveying heat to a heat exchanger is known.
  • the French patent application FR 2500036 shows a typical, simple solar collector panel comprising a transparent front panel, a heat absorbing back panel which is thermally insulated at the back wall, and a passage between the front panel and the back panel, which has an inlet opening at the bottom for allowing cold air to flow into the passage and an outlet opening at the top for exit of the air heated by passing the back panel.
  • the back wall of the back panel facing away from the front panel is thermally insulated to prevent a heat flow from the heat absorbing back panel and out of the solar collector panel.
  • US patent No. US 4,054,124 discloses a more sophisticated solar collector panel, in which a perforated heat absorber panel is inserted between the transparent front panel and the thermally insulated back panel.
  • the inlet air flows from the side of the solar collector panel into the space between the front panel and the heat absorber panel, through the perforations at which the air is heated and out from the space between the heat collector panel and the thermally insulated back panel.
  • a much higher' heat transfer coefficient between the air and the heat absorber is obtained thereby as compared to the disclosure of FR 2500036.
  • the combination of a solar collector panel for heating of air and a photovoltaic cell panel arranged behind the transparent front panel and in front of the heat collector panel is disclosed in GB 2 214 710.
  • the heat collector plate is thermally insulated towards the exterior and a transparent panel between the photovoltaic cell panel and the heat collector panel separates airflows parallel to the panels to cool the photovoltaic cell panel and to extract heat from the heat collector panel, respectively.
  • a solar collector panel for heating of air in. which a photovoltaic cell is provided for producing power for a ventilator forcing air through the panel.
  • the traditional isolating material on the back side of the panel is replaced with an air flow through the back panel against the heat gradient inside the panel.
  • Solar heat panels for heating of liquid such as water or a mixture of water and glycerol are well known from the prior art, such as from DE 10321172.
  • the well-known front panels for solar collectors including air-filled channels or spaces, such as double or triple layers of glass, plate of polycarbonate with elongated cavities defined therein to lower the weight thereof and improve the thermal insulation etc. may suffer from the drawback that in case such channels or spaces are to sufficiently closed off from the surroundings and are dehumidified, dew tend to form inside the front panel at certain situations, which reflects the sunlight and thereby lower the efficiency of the solar collector.
  • a solar collector panel for heating of air and liquid comprising a transparent or translucent front panel, a back panel, a ventilation outlet duct extending from the volume enclosed by the front panel and the back panel to the exterior of the solar collector panel, and a ventilator arranged to force air out through the air outlet opening, wherein the front panel has at least one flow channel defined therein, the flow channel or channels having an air inlet opening to the exterior of the solar collector panel and an air outlet opening to the volume enclosed by the front panel and the back panel, so that the ventilator when in operation will drive an air flow through the flow channel or channels, whereby the formation of dew inside the front panel is prevented or reduced.
  • the solar collector panel comprises one or more photovoltaic cell panels arranged in the volume enclosed by the front panel and the back panel, the photovoltaic cell panels being arranged to provide electric power to the ventilator.
  • the invention may in particular be applied to the solar collector panel disclosed in WO 03/048655, so that the solar collector panel has a back panel permeable to air and open to the surroundings over a major part of the area covered by the front panel, the solar collector panel further comprising an air permeable sheet extending between and spaced from said front panel and said back panel defining a space there between, and the ventilation outlet duct extends from the volume enclosed by the front panel and the air permeable sheet to the exterior of the solar collector panel.
  • the solar collector panel comprises a back panel that is permeable to air and open to the surroundings over a major part of the area covered by the front panel, an air permeable sheet extending between and spaced from the front panel and said back panel, a liquid heat exchanging element with an inlet and an outlet for liquid communication to the exterior of the solar collector panel, and an air outlet opening extending from between the front panel and the air permeable sheet to the exterior of the solar collector panel.
  • the air flows through the air permeable sheet and passes the liquid heat exchanger where the air is further heated or delivers further heating to the liquid, depending on the mode of operation of the panel, and out through the outlet opening to be used for ventilation and space heating for e.g. vacation cottages, yachts, cabins, storage containers, cellars, stables and caravans.
  • the liquid heat exchanger where the air is further heated or delivers further heating to the liquid, depending on the mode of operation of the panel, and out through the outlet opening to be used for ventilation and space heating for e.g. vacation cottages, yachts, cabins, storage containers, cellars, stables and caravans.
  • the space between the permeable back panel and the air permeable sheet serve as a thermal insulation while the solar collector panel is operating and thus replacing the thermal insulation material commonly used in the art, such as rock wool panels.
  • the substantially uniformly distributed airflow from the colder back panel to the warmer air permeable sheet has a direction opposite the temperature gradient and prevents a convection heat loss from the heat absorber. Heat loss due to radiation in the infrared spectrum from the air permeable sheet is effectively reduced by the back panel, which reflects a part of the radiation back to the * air permeable sheet and absorbs the remaining part as heat energy, which is returned into the solar collection panel by the cold air flowing through the permeable back panel from the surroundings.
  • the pressure drop of the airflow over the back panel promotes the homogeneity of the airflow distribution over the area spanned by the solar collector panel.
  • This provides the advantage that the airflow velocities are generally low in most of the solar collector panel, with the possible exception of the area close to the outlet, even for solar collector panels spanning a large area or more solar collector panel coupled to each other, as opposed to the traditional solar collector panels having one common air inlet and a generally high velocity of the air.
  • Low velocities means low pressure losses and low generation of noise, and the low air velocity at the intake of air into the solar collector panel, i.e.
  • a particular advantage of the construction of a solar collector panel according to the invention is that the provision of isolation by means of the substantially uniformly distributed airflow from the colder back panel to the warmer air permeable sheet, reduces the risk of excessive heating of the liquid heat exchanger in case the airflow through the solar collector panel is stopped.
  • the thermally insulating action of the airflow is halted as well and heat may now flow from the air permeable sheet out through the back panel by natural convection and to some extend heat radiation, and the excessive heating with stagnation temperatures of more than 12O 0 C known from solar collector panels with traditional thermal insulating material may be avoided, which may lead to a destructive boiling of the liquid inside the liquid heat exchanger, leading to damages of the tubing due to the excessive pressure developed due to the boiling.
  • the high stagnation temperatures may also lead to weakening or destruction of plasties materials used for the tubing, or for sealing of the tubing.
  • the total thermal efficiency rate of the panel is increased with the combined heating of air and liquid, and the possibilities of varying the flow rates of these two heated elements allows for a vide range of possible employments of panels according to the present invention.
  • the present invention relates to a solar collector panel for heating of air and liquid, comprising a transparent or translucent front panel, such as a single or double glass panel or a panel of transparent plastics material, a back panel permeable to air and open to the surroundings over a major part of the area covered by the front panel, preferably at least 75%, of the area covered by the front panel, an air permeable sheet extending between and spaced from said front panel and said back panel defining a space there between, a liquid heat exchanger arranged between said space and the front panel with an inlet and an outlet for liquid communication to the exterior of the solar collector panel, and a ventilation outlet duct extending from the volume enclosed by the front panel and the air permeable sheet to the exterior of the solar collector panel.
  • a transparent or translucent front panel such as a single or double glass panel or a panel of transparent plastics material
  • a back panel permeable to air and open to the surroundings over a major part of the area covered by the front panel, preferably at least 75%, of the area covered
  • the air permeable sheet may preferably substantially shield the back panel from the incoming light entering from the front panel.
  • a solar collector that can combine heating of both air and liquid.
  • the permeability of the air penneable sheet and of the back panel is preferably substantially homogeneous and according to one embodiment of a magnitude that allows for a convection-driven airflow through the solar collector panel due to solar radiation on the front panel.
  • the solar collector panel has heat absorber means that comprises a substantially opaque, air permeable sheet and a liquid heat exchanger separated from each other.
  • this invention comprises a solar collector panel, wherein the liquid heat exchanging element is substantially opaque, impermeable to air and substantially shielding the air permeable sheet from incoming light.
  • the solar collector panel has heat absorber means that comprises a substantially opaque, air permeable sheet and a liquid heat exchanger in heat conducting contact with each other, so that heat is transferred easily between the two, the direction of heat transfer being dependent on the mode of operation.
  • opaque is understood substantially opaque at least to infrared light in the spectrum emitted from the sun, but it may possibly be transparent to light of other wavelengths.
  • the air permeable sheet is integrated with the liquid heat exchanger in one unit, being substantially opaque and permeable to air and substantially shielding the back panel from incoming light.
  • a substantially homogeneous permeability to air may e.g. be obtained with a sheet material with a homogeneously distributed perforation or with woven or non-woven fabric.
  • the side of the air permeable sheet facing the front panel has an absorption coefficient ⁇ of the solar spectrum of radiation in the range of 0.65 to 1, preferably in the range of 0.8 to 1.
  • the front panel, the air permeable sheet and the back panel are in a preferred embodiment arranged substantially parallel.
  • the spacing between the front panel and the air permeable sheet is preferably in the range from 4 to 20 cm, largest when a photovoltaic cell panel is arranged in the spacing, more preferred in the range from 5 to 15 cm and the most preferred in the range from 6 to 10 cm.
  • the spacing between the air permeable sheet and the back panel is preferably in the range from 0.5 to 5 cm, and more preferred in the range from 1 to 3 cm.
  • the front panel may have a coating layer on the inner side facing the liquid heat absorber and the air permeable sheet that enhances the reflection of radiation in the infrared range, in particular of wavelengths in the range of 5 to 25 ⁇ m where most of the energy of the heat is radiated from the liquid heat absorber and the air permeable sheet, whereas most of the energy of the solar radiation is found at lower wavelengths.
  • Another solution is to manufacture the front panel from a plastics material that is much less transparent to the long- wave infrared radiation from the air permeable sheet than to the shorter- wave solar radiation.
  • a heat radiation trap may be applied to reduce the heat loss from the air permeable sheet by infrared radiation through the front panel.
  • Such traps and other means for limiting the heat loss due to re-radiation of heat through the front panel is discussed and disclosed in e.g. US 4,262,657.
  • the air permeable sheet may e.g. be a porous, dark or black fibrous mat, such as felt, or a woven or stamped screen, or a perforated plate material.
  • the air permeable sheet may in particular be made from a plate material with opening defined therein of a general diameter or hydraulic diameter for the airflow through the plate, in the range from 0.7 to 3 millimetres arranged with a mutual spacing in the range of 8 to 20 millimetres.
  • the material of the air permeable sheet may preferably be a perforated metal plate, preferably made from aluminium but also e.g. steel plates may be employed, of a thickness in the range of 0.4 to 4 millimetres, preferably of 0.7 to 3 millimetres.
  • the side of the air permeable sheet facing the front panel and the liquid heat exchanger is dark or black and mat, so that the absorption coefficient ⁇ of the solar spectrum of radiation, i.e. the solar absorptivity ⁇ s , is high, preferably in the range of 0.65 to 1, and most preferred in the range of 0.8 to 1. It is also preferred that the side of the heat absorber sheet facing the back panel has similar properties to absorb as much as possible of the heat radiation emission, mainly reflection, from the back panel.
  • the side of the air permeable sheet facing the liquid heat absorber has a reflection coefficient p of infrared radiation in the range of 0.65 to 1, preferably in the range of 0.8 to 1.
  • the back panel may be made from a plate material with opening defined therein of a general diameter in the range from 0.7 to 3 millimetres arranged with a mutual spacing in the range of 8 to 20 millimetres.
  • the ⁇ permeability of the back panel should be substantially homogeneous throughout its extension to promote a homogeneous distribution of the airflow.
  • the back panel may preferably be a perforated metal plate, preferably made from aluminium e.g. of a thickness in the range of 0.4 to 4 millimetres, preferably of 0.7 to 3 millimetres, but other materials may alternatively be employed as well, such as steel, various plastics materials and plywood.
  • the side of the back plate facing the air permeable sheet is preferably white or of a light colour and with a reflective surface, so that is has a reflection coefficient p of infrared radiation in the range of 0.65 to 1, preferably in the range of 0.8 to 1.
  • the infrared radiation from the heat absorber is in particular of wavelengths in the range of 5 to 25 ⁇ m where most of the energy of the heat is radiated from the heat absorber, and the above reflection coefficient is mainly given for this range of wavelengths.
  • the production of the solar collector panel according to the present invention is simplified if similar plates are used for the air permeable sheet and the back panel, e.g. perforated aluminium plates with identical perforation as discussed above. However, it is preferred that the surface properties of the two plates are different in accordance with the particulars given previously.
  • a fibrous mat in particular a screen of felt that should have a dark colour or be black to absorb as much as possible of the solar radiation.
  • Other types of fibrous mats may also be employed, such as woven or non-woven cloth or stamped cloth.
  • a lower mass of the air permeable sheet may be obtained by using a fibrous mat as compared to other materials, and the insulating effect is also advantageous for preventing heat from the spacing between the air permeable sheet and the front panel from escaping through the back panel.
  • the solar collector panel comprises one or more photovoltaic cell panels arranged between the front panel and the air permeable sheet.
  • the one or more photovoltaic cell panels may in a further preferred embodiment of the present invention power the drive means of a ventilator that is arranged to force air out through the air outlet opening.
  • the present invention also relates to a solar collector panel, comprising control means for controlling flows of air and liquid through the solar collector panel.
  • the solar collector panel of the present invention is preferably used for producing and heating of a flow of air for ventilation and space heating, in which air is drawn into the panel from the surroundings through the back panel, is heated within the panel and is led from the ventilation outlet duct and into the space to be ventilated and heated, and for producing a flow of heated liquid, which is entered into the panel through the inlet and out from the panel through the outlet for liquid communication to the exterior.
  • the present invention furthermore relates to a ventilation system comprising a plurality of solar collector panels according to the above description, wherein the air outlet openings of said solar collector panels are mutually connected to a common ventilation duct with a ventilator arranged to force the airflow from said solar collector panels out through the common ventilation duct, and the liquid heat exchangers of the panels may likewise be coupled in series or in parallel.
  • Fig. 1 shows a longitudinal section of a solar collector panel according to a first embodiment of the invention
  • Fig. 2 shows a front view of a liquid heat exchanger of a solar collector panel
  • Fig. 3a shows a longitudinal section of a solar collector panel according to a second embodiment of the present invention, wherein the liquid heat exchanger and the heat absorbing sheet constitute an integrated unit,
  • Fig. 3b shows a cross sectional view of a perforated finned tube applied in the liquid heat exchanger of fig. 3a
  • Fig. 4a shows a longitudinal section of a solar collector panel according to a third embodiment of the present invention, wherein the liquid heat exchanger and the air permeable sheet are separated,
  • Fig. 4b shows a cross sectional view of a finned tube
  • Fig. 5 shows a longitudinal section of a solar collector panel according to a particular embodiment arranged for preventing the formation of dew inside the front panel.
  • a solar collector panel 1 according to a first embodiment of the invention is shown in a longitudinal section in Fig. 1, in which an aluminium frame 2 holds a transparent front panel 3 made from a 10 millimetre plate of polycarbonate with elongated cavities defined therein to lower the weight thereof and improve the thermal insulation, a liquid heat exchanger 4 preferably made from hose or tubing, and an air permeable sheet 5 made from a screen of black felt, alternatively from a perforated aluminium sheet 0.7 millimetres of thickness, which is painted black or is anodised on both sides, and a back panel 6 made from a perforated aluminium sheet similar to the previous described that is left with a blank side facing the air permeable sheet 5.
  • a photovoltaic cell panel 7 is arranged in the spacing 8 between the front panel 3 and the air permeable sheet 5.
  • the power output from the photovoltaic cell panel 7 is connected to the motor of a ventilator 9 with a fan that is placed in the ventilation outlet duct 10, so that a combination of buoyancy forces and the ventilator 9 drives the airflow in this embodiment.
  • the buoyancy force is only of a minor magnitude as compared to the effect of the ventilator 9 and is not required for the operation of solar collector panels 1 according to the embodiment.
  • the ventilator 9 is sufficient to drive an airflow, and the ventilation outlet duct 10 may be arranged in any part of the solar collector panel, not only in the upper part of the solar collector panel 1.
  • the airflow indicated by arrows C cools the photovoltaic cell panel 7 and prevents excessive heating thereof.
  • the solar collector panel 1 is normally arranged with the back panel 6 in open air, so that outdoor air is entered through the back panel 6, heated and then may be used for ventilation and space heating.
  • the solar collector panel 1 is preferably arranged substantially vertically as shown, and the direction of the solar radiation is indicated with arrow A.
  • An outlet duct 10 is arranged at the upper part of the panel 1 to form a passageway for the heated air to flow out from the panel 1 and to the place where it is utilised, e.g. for room ventilation and heating.
  • the solar collector is equipped with an inlet and an outlet for liquid communication either to an external heat exchanger or directly e.g. to a swimming pool if chlorine resistant piping or tubing is utilized in the liquid heat exchanger 4.
  • the solar radiation, arrow A, is transmitted through the front panel 3 and reaches the liquid heat absorber 4 and the air permeable sheet 5, at which more than 80% of the energy of the solar radiation is absorbed and the remaining part is reflected out through the front panel 3.
  • the absorbed energy causes the temperature of the liquid heat exchanger 4 and the air permeable sheet 5 to rise to e.g. 40° - 9O 0 C. This will cause the liquid heat exchanger 4 and the air permeable sheet 5 to radiate heat as infrared radiation, mainly in the wavelength range of 5 to 25 ⁇ m.
  • the blank face of the back panel 6 reflects about 70 to 75% of the radiation back to the air permeable sheet 5, whereas the remaining part is absorbed by the back panel 6. Only a minor heat loss is caused by re-radiation of heat through the front panel 3 as the type of plastics used to a large extend is opaque to the long-waved radiation from the liquid heat exchanger 4 and the air permeable sheet 5.
  • Air from the surroundings is, as indicated with arrows B, drawn through the perforated back panel 6, which is cooled so that absorbed heat radiation from the air permeable sheet 5 thereby is conveyed back into the solar collector panel 1.
  • the airflow passes the spacing 11 of approximately 2 cm width between the back panel 6 and the air permeable sheet 5 in the direction against the temperature gradient and prevents thereby effectively a convection of heat out through the back panel 6.
  • the airflow passes then, as indicated with arrows C, the air permeable sheet 5 where the air is heated, passes then the liquid heat exchanger 4 where a heat convection between the airflow and the liquid takes place, depending on the operating conditions of the panel 1, and moves mainly upward, as indicated by arrows C, in the spacing 8 of approximately 5 cm between the air permeable sheet 5 and the front panel 3, towards the outlet duct 10 arranged in the upper part, preferably near or at the top end of the solar collector panel 1 and out as indicated by arrow D.
  • the tubing of the liquid heat exchanger 4 is simultaneously heated by the incoming solar radiation A, and this causes the temperature of the liquid in the liquid heat exchanger 4 to rise.
  • the flow rate of the air in the solar collector and of the liquid in the liquid heat exchanger, respectively, determines the distribution of the total amount of absorbed solar energy to the passing air and the liquid, and thus the temperature of the outlet air and the outlet liquid.
  • a high flow of air and a low flow of liquid results in a high liquid outlet temperature while a low flow of air and a high flow of liquid results in a high air outlet temperature.
  • Fig. 2 shows an embodiment of a liquid heat exchanger 4 for use in a solar collector panel according to the present invention.
  • the heat exchanger 4 comprises an inlet 12 and an outlet 13 which via manifolds 14, 15 are connected to a plurality of parallel tubes 16 extending between the two manifolds, 14, 15.
  • the tubes are preferably made from a heat-resistant plastic, such as a heat-resistant polypropylene, or from a metal, such as a cupper alloy.
  • the liquid heat exchanger 4 of the solar collector panel may be used together with a heat absorbing air permeable sheet 5 in order to improve the efficiency of the panel and for enabling a variety of operating modes, where the absorbed heat may be distributed on heated air and heated liquid as desired within a wide range of ratios between the two.
  • the liquid heat exchanger may constitute the heat absorber of the solar collector panel in itself, or the liquid heat exchanger and a heat absorbing sheet may constitute an integrated unit as shown in Fig. 3a.
  • Fig 3 a shows a longitudinal section of a solar panel 1 according to a second embodiment of the present invention, in which the air permeable sheet 5 and the liquid heat exchanger 4 are combined in one integrated heat absorbing unit 17.
  • the integrated heat absorbing unit 17 comprises a plurality of finned tubes 18, wherein the fins are perforated.
  • the fins are preferably made from a metal, such as copper or aluminium in order to have appropriate heat conduction properties.
  • a cross sectional view of the perforated finned tubes 18 comprising two perforated heat absorbing sheets 19 and a heat absorbing tube 20 is shown in detail in fig 3b.
  • the airflow from the spacing 11 between the back panel 6 and the integrated heat absorbing unit 17 is distributed uniformly over the area of the integrated heat absorbing unit 17.
  • the two sides of the integrated heat absorbing unit facing the front panel 3 and the back panel 6, respectively, are black so as to optimize the absorbance of heat radiation from the incoming sun light and from the back panel 6.
  • An alternative embodiment of the integrated heat absorbing unit could be a moulded plate of polypropylene, in which a number of grooves are formed that by means of a covering plate are turned into closed channels for the liquid, and wherein the moulded plate is perforated.
  • Fig. 4a shows a longitudinal section of a solar collector panel 1 according to a third embodiment of the present invention, in which the liquid heat exchanger 4 of the first embodiment is replaced with an opaque liquid heat absorbing unit 21 shielding the air permeable sheet 5 from the incoming light.
  • the opaque liquid heat absorbing unit 21 comprises a plurality of non-perforated finned tubes 22 covering the area of the air permeable sheet 5.
  • a cross sectional view of the finned tubes 22 comprising two heat absorbing sheets 23 and a heat absorbing tube 20 is shown in fig 4b.
  • a part of the absorbed solar energy will be transmitted through the opaque heat absorbing unit 21 into the spacing 24 between the opaque heat absorbing unit 21 and the air permeable sheet 5, and thus heat the air flowing through the air permeable sheet 5.
  • the ventilator 9 will draw the heated air out through the ventilation outlet duct 10, where it can be utilized for space heating.
  • the reflection coefficient of the side of the air permeable sheet 5 facing the opaque heat absorbing unit 21 is as high as possible in order to heat the air as efficient as possible.
  • the solar collector panels 1 according to the first embodiment as well as to the second and third embodiments may in a variant for operation in environments that are particularly polluted with particles, comprise a filter sheet releasably mounted on the outer face of the back panel 6, so that at least some of the particles in the inlet airflow, arrows B, may be captured before they enter the interior of the solar collector panel 1.
  • the releasable filter sheet may be replaced regularly, or the filter sheet may be removed for cleaning and remounted on the solar collector panel.
  • the solar collector panels 1 of the present invention are employed where heated air as well as heated liquid, such as water, is requested, e.g. in a pool house having an in-door swimming pool.
  • a control unit may be provided to manage the flow of heated liquid and heated air, respectively, from the solar collector panel or panels 1.
  • the air flow through the panels 1 is reduced to a minimum, sufficient to uphold the isolating effect of the air flow form the back panel 6 and to the air permeable sheet 5, and the flow of liquid is adjusted to a maximum.
  • a particular solar cell panel 1 is shown in Fig. 5.
  • the panel 1 is illustrated without a liquid heat exchanger 4 or liquid heat absorbing unit 21, but the features of the panel 1 may be employed with or without such exchanger or unit.
  • the front panel 3 has an outer wall part 25 and an inner wall part 26 defining a flow channel there between having an opening to the exterior for providing an inflow 27 of an air stream and an opening to the interior of the solar collector panel 1 in the vicinity of the air outlet opening 10, so that the ventilation 9 when operating will draw an outflow 28 from the flow channel of the front panel 3.

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Sustainable Development (AREA)
  • Physics & Mathematics (AREA)
  • Sustainable Energy (AREA)
  • Thermal Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Dispersion Chemistry (AREA)
  • Photovoltaic Devices (AREA)
  • Roof Covering Using Slabs Or Stiff Sheets (AREA)

Abstract

La présente invention concerne un panneau solaire permettant de recueillir et d'utiliser l'énergie thermique obtenue du rayonnement solaire, possédant un panneau avant transparent avec au moins un canal d'écoulement défini dans celui-ci, une ouverture d'entrée d'air arrivant de l'extérieur et se dirigeant vers le canal d'écoulement et une ouverture de sortie d'air dirigée vers l'intérieur. Lorsque le ventilateur de ce panneau solaire fonctionne, il apporte un flux d'air à travers le canal d'écoulement et réduit la formation de rosée à l'intérieur du panneau avant. Un autre mode de réalisation de l'invention concerne un panneau solaire comprenant un panneau arrière perméable à l'air et ouvert sur l'environnement extérieur, une feuille perméable à l'air s'étendant entre le panneau avant et ce panneau arrière, un échangeur thermique liquide et une ouverture de sortie d'air s'étendant du panneau avant et de la feuille perméable à l'air à l'extérieur du panneau solaire. L'air qui passe à travers le panneau arrière interagit avec l'échangeur thermique liquide afin de réchauffer davantage et apporte de la chaleur au liquide, selon le mode de fonctionnement.
PCT/DK2006/000167 2005-03-29 2006-03-24 Panneau solaire Ceased WO2006102891A2 (fr)

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DKPA200500432 2005-03-29
DKPA200500432 2005-03-29

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WO2006102891A2 true WO2006102891A2 (fr) 2006-10-05
WO2006102891A3 WO2006102891A3 (fr) 2006-12-07

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Cited By (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE202006016294U1 (de) * 2006-10-21 2008-02-28 Consolar Solare Energiesysteme Gmbh Solarkollektor mit kombiniertem Luftwärmeentzug
US8028483B2 (en) 2007-05-01 2011-10-04 Kingspan Research And Developments Limited Panel
WO2011063810A3 (fr) * 2009-11-24 2011-12-22 Christensen Hans Joergen Amélioration d'un panneau solaire
DE102011052692A1 (de) * 2011-08-12 2013-02-14 Günter Müller Sonnenkollektor
WO2013081354A1 (fr) * 2011-11-29 2013-06-06 Lg Innotek Co., Ltd. Module de cellules solaires
WO2012103858A3 (fr) * 2011-02-05 2013-11-14 Detlef Meyer Boîtier solaire mobile pour vitres de fenêtres comme aide au chauffage
WO2013156650A3 (fr) * 2012-04-18 2014-01-16 Jonay Gonzalez Ruano Élément de protection formant rideau à capacité de refroidissement pour panneaux solaires
CN105209834A (zh) * 2013-04-23 2015-12-30 徐东禛 管型太阳热暖风机
WO2016026497A1 (fr) * 2014-08-18 2016-02-25 Udlejer Hans Jørgen Christensen Panneau de collecteur solaire et procédé d'exploitation d'un panneau de collecteur solaire
DE102014219620A1 (de) * 2014-09-26 2016-03-31 Vaillant Gmbh Solarkollektoren mit Vorrichtung zur Stagnationsvermeidung
DE102015002136A1 (de) 2015-02-19 2016-08-25 Detlef Meyer Modular aufgebautes Heizsystem zur Anbringung im Fensterbereich zur Heizungsunterstützung mittels solarer Energie
EP3118539A1 (fr) * 2015-07-16 2017-01-18 Scanheat A/S Chauffage alimenté par énergie solaire et système de ventilation
WO2018233791A1 (fr) * 2017-06-20 2018-12-27 Udlejer Hans Jørgen Christensen Collecteur d'air et procédé de fourniture d'un collecteur d'air avec une unité de récupération de chaleur

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FR2351364A1 (fr) * 1976-05-11 1977-12-09 Claux Patrick Ensemble capteur d'energie solaire et son application au chauffage et a la climatisation des locaux
US4478210A (en) * 1979-04-16 1984-10-23 Sieradski Leonard M Solar heating system
FR2698682B1 (fr) * 1992-11-30 1995-01-06 Soleco Sarl Capteur solaire à air à rendement élevé.
DE19800560C1 (de) * 1998-01-09 1999-04-15 Thomas Schwertmann Solarflachkollektor zur Erhitzung von Luft oder anderen gasförmigen Fluiden
DK200100325U3 (fr) * 2001-12-01 2003-01-10

Cited By (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE202006016294U1 (de) * 2006-10-21 2008-02-28 Consolar Solare Energiesysteme Gmbh Solarkollektor mit kombiniertem Luftwärmeentzug
US8028483B2 (en) 2007-05-01 2011-10-04 Kingspan Research And Developments Limited Panel
US8172972B2 (en) 2007-05-01 2012-05-08 Kingspan Research And Developments Limited Panel
WO2011063810A3 (fr) * 2009-11-24 2011-12-22 Christensen Hans Joergen Amélioration d'un panneau solaire
WO2012103858A3 (fr) * 2011-02-05 2013-11-14 Detlef Meyer Boîtier solaire mobile pour vitres de fenêtres comme aide au chauffage
DE102011052692A1 (de) * 2011-08-12 2013-02-14 Günter Müller Sonnenkollektor
CN104081659A (zh) * 2011-11-29 2014-10-01 Lg伊诺特有限公司 太阳能电池模块
WO2013081354A1 (fr) * 2011-11-29 2013-06-06 Lg Innotek Co., Ltd. Module de cellules solaires
US9685574B2 (en) 2011-11-29 2017-06-20 Lg Innotek Co., Ltd. Solar cell module
WO2013156650A3 (fr) * 2012-04-18 2014-01-16 Jonay Gonzalez Ruano Élément de protection formant rideau à capacité de refroidissement pour panneaux solaires
CN105209834A (zh) * 2013-04-23 2015-12-30 徐东禛 管型太阳热暖风机
WO2016026497A1 (fr) * 2014-08-18 2016-02-25 Udlejer Hans Jørgen Christensen Panneau de collecteur solaire et procédé d'exploitation d'un panneau de collecteur solaire
EA031966B1 (ru) * 2014-08-18 2019-03-29 Удлайер Ханс Йерген Кристенсен Панель солнечного коллектора и способ использования панели солнечного коллектора
DE102014219620A1 (de) * 2014-09-26 2016-03-31 Vaillant Gmbh Solarkollektoren mit Vorrichtung zur Stagnationsvermeidung
DE102015002136A1 (de) 2015-02-19 2016-08-25 Detlef Meyer Modular aufgebautes Heizsystem zur Anbringung im Fensterbereich zur Heizungsunterstützung mittels solarer Energie
EP3118539A1 (fr) * 2015-07-16 2017-01-18 Scanheat A/S Chauffage alimenté par énergie solaire et système de ventilation
WO2018233791A1 (fr) * 2017-06-20 2018-12-27 Udlejer Hans Jørgen Christensen Collecteur d'air et procédé de fourniture d'un collecteur d'air avec une unité de récupération de chaleur

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