Solar collector unit and a method of providing such a solar collector unit
09976776 ยท 2018-05-22
Assignee
Inventors
Cpc classification
F24S25/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B10/20
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F24S23/745
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S25/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S25/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/47
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E10/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F24S30/425
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S23/81
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The solar collector unit is adapted for reflecting light onto a receiver, and comprises a reflector element, and a support structure supporting the reflector element. The reflector element is flexible and comprises a reflective surface and a substrate having a predefined length and width. The support structure comprises a predefined number of profiles per length unit connected to the reflector element at a distance from each other to provide a predefined shape of the solar collector unit. The number of profiles per length of substrate may be varied and lies in the interval 3 to 12, preferably 4 to 10, most preferred 5 to 8 per 2000 mm of length of the substrate.
Claims
1. A method of providing a solar collector unit comprising the steps of: providing a substrate, providing a reflective surface on the substrate to form a reflector element, providing a support structure comprising a predefined number of profiles, followed by the successive steps of: adapting the shape of the reflector element, and fixing the shape of the reflector element by connecting the support structure to the reflector element; wherein the predefined number of profiles is selected so as to limit the deflection for a load of 20 kg to less than 25 mm when the solar collector unit is subjected to a test comprising the steps of: providing a substrate with a length of 2000 mm and a width of 1400 mm, bending each longitudinal edge of the substrate 90 with a width of the height of the profile, and then a further 90 with a width of the rest of the plate, such about 30 mm, positioning the solar collector unit in a measuring rig by fixating one side edge and positioning a trestle having a 100 mm diameter underneath a centre of the solar collector unit, loading a corner of the other side edge by a variable force, and measuring the deflection at the opposite longitudinal edge.
2. The method of claim 1, wherein the predefined number of profiles is selected in accordance with a length unit of the substrate.
3. A method of providing a solar collector unit comprising the steps of: providing a substrate, providing a reflective surface on the substrate to form a reflector element, providing a support structure comprising a predefined number of profiles, followed by the successive steps of: adapting the shape of the reflector element, and fixing the shape of the reflector element by connecting the support structure to the reflector element; wherein the predefined number of profiles is selected so as to limit the deflection for a load of 20 kg to less than 25 mm when the solar collector unit is subjected to a test comprising the steps of: providing a substrate with a length of 2000 mm and a width of 1400 mm, bending each longitudinal edge of the substrate 90 with a width of the height of the profile, and then a further 90 with a width of the rest of the plate, such about 30 mm, positioning the solar collector unit in a measuring rig by fixating one side edge and positioning a trestle having a 100 mm diameter underneath a centre of the solar collector unit, loading a corner of the other side edge by a variable force, and measuring the deflection at the opposite longitudinal edge; wherein the bending of each longitudinal edge of the substrate 90 with a width of the height of the profile is about 20 mm and the further bending of 90 with a width of the rest of the plate is about 30 mm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In the following the invention will be described in further detail by means of examples of embodiments with reference to the schematic drawings, in which
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DETAILED DESCRIPTION
(12) Referring first to
(13) Each solar collector unit 2 is produced to have a predefined parabolic shape in a manner to be described in further detail below. In the configuration shown, in which two solar collector units 2 are positioned in juxtaposition in the height direction, one solar collector unit 2 thus constitutes one half of the parabola. In the focus line of the parabola, a receiver 4 is arranged and mounted to the carrying frame 1 by means of holding arms 3. The receiver 4 is adapted to accommodate a heat transfer fluid, such as water for consumption or for evaporation, in a manner known per se.
(14) In the embodiment shown, the solar collector unit 2 comprises a reflector element 21 formed by a substrate 211 and a reflective surface (not indicated by a separate reference numeral), and a support structure generally designated 22.
(15) The reflective surface 23 of the reflector element 21 may be provided as a coating, or as a film having reflecting properties. The film may be a multi-layer film 24, preferably having UV-protecting properties. One example of such a film is 3M Solar Mirror Film 1100, but other commercially available mirror-reflecting films are conceivable as well. The substrate 211 of the reflector element is advantageously formed by a flexible sheet of a metal selected from the group consisting of aluminum, magnesium and titanium or a combination thereof. Depending on the choice of material, the thickness of the metal sheet constituting the substrate 211 is advantageously less than 2.5 mm. In a preferred embodiment, the thickness lies in the interval 1.0 to 2.0 mm, most preferred 1.5 mm. The substrate 211 has a predefined length L and width b. The length L and width b of a single solar collector unit may be varied in accordance with the particular field of end use and of the transportation conditions. It is particularly advantageous that the solar collector unit may be handled manually. In general, the length L lies in the interval 1000 to 6000 mm, for example 1000-3000, 2000-4000, more specifically 1000, 2000, 3000, 4000, 5000 and 6000 mm and the width between 1000 and 3000 mm. The overall weight of the solar collector unit depends on a number of factors, such as the thickness and material of the plates and profiles, the number of profiles, the weight of the film or coating etc. Typical values of the specific weight are at least 1.5 kg/m.sup.2 or less than 7 kg/m.sup.2 such as in the interval 1.5 to 7 kg/m.sup.2, more preferred 2.5 to 5. Thus, it is possible to produce solar collector units of a relatively large area and still maintain the easy handling and transportation of the unit.
(16) The support structure 22 comprises a predefined number of profiles connected to the reflector element 21 at a distance from each other. In the embodiment shown in
(17) The entire solar collector unit 2 is connected to carrying frame 1 either by mechanical or adhesive means, or by a combination. Suitable adhesive connections include the use of for instance 3M Scotch-Weld 7271 B/A. Mechanical connection may include a clamping device 11 mounted to at least some of the profiles 221-225, as shown in the detailed drawing of
(18) In the embodiments of
(19) Thus, in
(20) Correspondingly, in
(21) In the embodiment of
(22) The U-shaped profiles of the embodiments of
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(24) Eventually, in the embodiment shown in
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(26) In a step 350, providing a substrate with a length of 2000 mm and a width of 1400 mm. In a step 351, bending each longitudinal or side edge of the substrate 90 with a width of the height of the profile, and then a further 90 with a width of the rest of the plate, such about 30 mm. In a step 352, positioning the solar collector unit in a measuring rig by fixating one longitudinal or side edge and positioning a trestle having a 100 mm diameter underneath a centre of the solar collector unit. In a step 353, loading a corner of the other side edge by a variable force 353. In a step 354, measuring the deflection at the opposite longitudinal or side edge 354.
(27) In the following, manufacture of a solar collector unit 2 according to the invention will be described in detail by means of a number of examples:
EXAMPLE
(28) Blanks of aluminum plate having the dimensions 1500 mm2000 mm were cut to a substrate having the dimension 1400 mm2000 mm. Each longitudinal edge of the substrate was bent 90 with a width of 20 mm and then a further 90 with a width of 30 mm to provide a folded edge.
(29) The bent sides of the substrate were attached to a mould by means of a tensioning device. The surface of the plate was cleaned and degreased. Profiles of the kind Prebeam 0.15 Alu/1.0 Alu were attached to the plates by 3M Scotch-Weld EPX Epoxy Adhesive DP490.
(30) The weight of the individual solar collector unit was as shown in the below Table 1.
(31) TABLE-US-00001 TABLE 1 Thickness of substrate Number of Weight [mm] profiles [kg] 1 5 8.5 1 6 9.0 1 8 9.5 1.5 5 11.0 1.5 6 11.5 1.5 8 12.0 2 8 16.0
(32) The finished solar collector unit was positioned in a measuring rig, in which one side edge was fixed, while it was resting on a trestle positioned in the centre of the solar collector unit, the trestle having a diameter of 100 mm and the corner of the other side edge was loaded by a variable force and the deflection measured as illustrated in
(33) The tests were carried out for a range of predefined numbers of profiles including 5, 6 and 8, and a thickness of the plate of 1, 1.5 and 2 mm.
(34) The results are shown in the below Table 2.
(35) TABLE-US-00002 TABLE 2 Loading 5 kg 10 kg 15 kg 20 kg 25 kg 30 kg 35 kg 40 kg 50 kg 1 mm/5 Prebeams (wooden) Deflection of 7.4 17.2 24.3 30.9 42.3 53.1 68.2 1 mm/6 Prebeams the panels/mm/ 6.7 10.6 15.3 20.4 24.4 32.6 41.5 1 mm/8 Prebeams 5.8 10.5 14.2 19.0 22.9 29.0 35.8 39.3 1.5 mm/5 Prebeams 5.6 11.5 15.3 21.7 27.1 33.8 43.3 52.8 1.5 mm/6 Prebeams 5.2 9.6 14.1 20.2 24.6 31.1 39.5 45.8 53.8 1.5 mm/8 Prebeams 4.5 7.0 10.7 13.4 18.4 21.7 26.5 29.5 40.2 2 mm/8 Prebeams 3.8 5.1 7.7 12.0 15.1 19.1 22.8 28.4 38.5