Pivot and Fanning Drive for Solar Panels
20180294769 ยท 2018-10-11
Inventors
Cpc classification
F24S2030/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S30/452
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/50
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
Y02E10/47
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
F24S30/48
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16M13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02S20/30
ELECTRICITY
F24S20/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
H02S20/30
ELECTRICITY
F16M13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S20/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a swivel and fanning drive for solar panels, comprising a base support, a rotary table, which is mounted on the base support pivotingly about a substantially vertical first axis, a swivel plate, which is mounted on the rotary table pivotingly about a substantially horizontal second axis, and a fanning shaft, which is mounted on the swivel plate pivotingly about a third axis and on which the solar panels can be mounted so as to be able to be fanned in and out about the aforesaid third axis, wherein the rotary table mounts one end of the swivel plate about the aforesaid second axis and, at a distance therefrom, mounts at least one crank, which is coupled by means of a connecting rod to the other end of the swivel plate to form a crank-rocker linkage.
Claims
1. A pivot and fanning drive for solar panels, comprising: a base support, a rotary table (t, which is mounted on the base support pivotingly about a substantially vertical first axis, a swivel plate, which is mounted on the rotary table pivotingly about a substantially horizontal second axis, and a fanning shaft, which is mounted on the swivel plate pivotingly about a third axis and on which the solar panels can be mounted such that they can be fanned in and out about the aforesaid third axis, wherein the rotary table mounts one end of the swivel plate about the aforesaid second axis and, at a distance therefrom, mounts at least one crank, which is coupled by means of a connecting rod to an other end of the swivel plate to form a crank-rocker linkage, and further wherein the fanning shaft is driven via a coupling by the swivel plate or drive thereof or via a coupling by the rotary table or drive thereof.
2. The pivot and fanning drive according to claim 1, wherein a mounting axis of the crank lies lower on the rotary table than the second axis.
3. The pivot and fanning drive according to claim 1, wherein the rotary table has two upwardly protruding bearing arms, between which the aforesaid one end of the swivel plate is mounted.
4. The pivot and fanning drive according to claim 1, wherein two cranks are each provided with one connecting rod (23), between which connecting rods the aforesaid other end of the swivel plate is mounted.
5. The pivot and fanning drive according to claim 4, wherein the cranks sit on a common shaft, which is mounted in bearing tabs of the rotary table.
6. The pivot and fanning drive according to claim 1, wherein the rotary table is manufactured in one piece.
7. The pivot and fanning drive according to claim 1, wherein the at least one crank is driven via a worm gear by an electric motor mounted on the rotary table.
8. The pivot and fanning drive according to claim 1, wherein the rotary table is driven via a worm gear by an electric motor mounted on the base support.
9. The pivot and fanning drive according to claim 1, wherein the fanning shaft is driven via a coupling by the rotary table or drive thereof, and wherein the coupling is actuated by the pivoting of the swivel plate.
10. The pivot and fanning drive according to claim 9, wherein the coupling is closed in a rest position of the swivel plate and is opened in a swivel position of the swivel plate deviating from the rest position.
11. The pivot and fanning drive according to claim 10, wherein the coupling is formed by a pinion, driven by the rotary table via a gear shaft, and a gear rim sitting on the fanning shaft, which gear rim engages with the pinion as the swivel plate is pivoted into the rest position, and becomes disengaged as the swivel plate is pivoted out of the rest position.
12. The pivot and fanning drive according to claim 1, wherein the fanning shaft is driven via a coupling by the rotary table or drive thereof, and wherein the fanning shaft can be rotationally fixed relative to the swivel plate by means of a further coupling.
13. The pivot and fanning drive according to claim 12, wherein the further coupling is opened in the rest position of the swivel plate and is closed in a swivel position of the swivel plate deviating from the rest position.
14. The pivot and fanning drive according to claim 13, wherein the further coupling is a brake disc, which is rotationally fixed with the fanning shaft and is spring-loaded against a brake surface of the swivel plate, and which can be distanced from the brake surface by an actuation member of the rotary table as the swivel plate is pivoted into the rest position.
15. The pivot and fanning drive according to claim 11, wherein the fanning shaft is driven via a coupling by the rotary table or drive thereof; wherein the fanning shaft can be rotationally fixed relative to the swivel plate by means of a further coupling; wherein the further coupling is opened in the rest position of the swivel plate and is closed in a swivel position of the swivel plate deviating from the rest position; and wherein the further coupling is a spring-loaded brake pinion, which is rotationally fixed but axially movable on the swivel plate and which has brake teeth for engaging with the gear rim and, as the swivel plate is pivoted into the rest position, can be pressed against the spring loading into disengagement.
16. (canceled)
17. (canceled)
18. (canceled)
Description
[0016] The invention will be explained in greater detail hereinafter with reference to exemplary embodiments shown in the accompanying drawings, in which
[0017]
[0018]
[0019]
[0020]
[0021]
[0022] The solar panels 2 for example have the form of a segment of a circle, preferably with rounded corners (petal shape) as shown, and preferably supplement one another in their fanned-out position (
[0023] Each solar panel 2 has, on its upper side, a planar array of photovoltaic cells 8, for example in crystalline or organic form or produced using thin-film technology. The electrical connections and circuitry of the solar panels 2 and solar cells 8 are not shown, for the purpose of clarity; for example, the solar panels 2 are contacted via flexible connection cables or loop contacts and rigid contact rings on the anchoring 4 or the pivot and fanning drive 3 and are connected to the further power transmission electrics.
[0024]
[0025] The rotary table 12 has at one end 13 thereof two bearing arms 14, which protrude upwardly and are distanced from one another and between which one end 15 of a swivel plate 16 is mounted pivotingly about the axis 7. The swivel plate 16 could also be mounted in another way on the rotary table 12 so as to be able to pivot, for example could be mounted with the aid of a hinge. It should be noted that the terms rotary table and swivel plate do not relate literally to a table or plate form, but instead relate to the function of the particular component, i.e. the rotary table 12 could also have a form other than the form of a table, for example could have the form of a hub, a shaft connection piece, a block, etc.; and the swivel plate 16 could also have a form other than the form of a plate, for example the form of a hub, a connection piece, a block, or an arbitrarily shaped support.
[0026] A fanning shaft 18 is mounted on or in the swivel plate 16 via a ball bearing 17 such that said fanning shaft at least can be pivoted, preferably can be fully rotated, about the fan-out axis 5. Only the drive-side end of the fanning shaft 18 is shown in
[0027] The sliding of the solar panels 2 one over the other during this dragging movement can be utilised in order to clean the solar panels 2. For this purpose, each solar panel 2 (with the exception of the lowermost solar panel 2) is provided on its rear side with a sweeper lip, which sweeps the corresponding solar panel 2 arranged beneath as the solar panels are fanned out. For example, the sweeper lip can be a rubber lip or a brush lip and at the same time can form the drag rail.
[0028] The swivel plate 16 is pivoted relative to the rotary table 12 with the aid of at least one (here: two) cranks 20, which sit on a common shaft 21, and which are mounted in bearing tabs 22 of the rotary table 12, more specifically such that the axis 21 of the shaft 21 lies parallel to, and at a distance from the pivot axis 7 of the swivel plate 16. The bearing tabs 22 can be formed by the foot regions of the bearing arms 14 or separately therefrom.
[0029] The cranks 20 are each coupled at their end remote from the shaft 21 by means of a connecting rod 23 to the other end 24, opposite the end 15, of the swivel plate 16 at a hinge axis 25.
[0030] The four parts constituted by the rotary table 12, swivel plate 16, cranks 20 and connecting rod 23 form a four-bar linkage, more specifically a crank-rocker linkage, the crank of which is formed by the cranks 20, the rocker of which is formed by the swivel plate 16, the chassis of which is formed by the rotary table 2, and the coupling member of which is formed by the connecting rod 23. The chassis length between shaft axis 21 and swivel axis 7, the rocker length between swivel axis 7 and hinge axis 25, and the effective length of the crank 20 and connecting rod 23 determine the kinematics of the crank-rocker linkage, as is known in the art. The aforesaid lengths are preferablybut not necessarilyselected so that the swivel plate 16 performs an approximately 90? pivoting movement from an approximately horizontal rest position (
[0031] Here, the shaft axis 21 of the cranks 20 preferably lies offset to and beneath the swivel axis 7, so that in the rest position (
[0032] The movements of the pivot and fanning drive 3 about one or more of the axes 5, 6, 7 can be performed manually, in the simplest case. The movements about one or more of the axes 5, 6, 7, however, are preferably brought about by corresponding drives, for example hydraulic or pneumatic cylinders, servomotors, stepper motors, or the like. A first embodiment is shown in
[0033] To this end, a first electric motor 26 with flange-mounted angular gear 27 is mounted on the rotary table 12 and drives one of the cranks 20 or shaft 21 thereof by means of a first worm gear 28. The first worm gear 28 for example comprises a worm driven by the electric motor 26 by means of the angular gear 27, which worm engages in a worm wheel sitting on one crank 20 or the shaft 21.
[0034] A second electric motor 29 with flange-mounted angular gear 30 is mounted on the base support 9 and drives the rotary table 12 by means of a second worm gear 31, which for example comprises a worm engaging in a worm wheel of the rotary table 12.
[0035] A third electric motor 32 with flange-mounted angular gear 33 is mounted on the swivel plate 16 and drives the fanning shaft 18 by means of a third worm gear 34, for example again with the aid of a worm engaging in a worm wheel connected to the fanning shaft 18.
[0036] It shall be understood that instead of one or more of the worm gears, other suitable gear mechanisms, for example spur gears, planetary gear trains or angular gears, such as bevel gears, crown gears or planetary angle gears, more specifically in each case with one or more gear stages, can also be used.
[0037]
[0038] At its upper end, the gear shaft 35 carries a further pinion 41, which in the pivoted-down position of the swivel plate 16 (
[0039] The pinion 41 and the gear rim 42 thus form a coupling between the rotary table 12 or drive thereof and the fanning shaft 18, which is closed in the rest position of the swivel plate 16 shown in
[0040] As the swivel plate 16 is pivoted down or in, respectively, into the rest position (
[0041] If desired, the stacked solar panels 2 can be pivoted down in the fanned-in position by being rotated about the swivel axis 7, such that they assume the position hanging down as shown in
[0042] It shall be understood that, instead of the second electric motor 29 of the rotary table drive, also the first electric motor 26 for the swivel plate drive can be co-used for the elective driving of the fanning shaft 18, in which case a similar coupling is provided between the swivel plate 16 or drive 26 thereof and the fanning shaft 18.
[0043] When the coupling 41, 42 of the fanning shaft 18 is released in a position deviating from the rest position (
[0044] Instead of the shown brake disc/brake surface design of the coupling 43-46, any other kind of coupling which enables the shown temporary fixing of the fanning shaft 18 can also be used.
[0045] For example, in accordance with the variant shown in
[0046] It shall be understood that the couplings 41, 42 and 43-49 could also be actuated manually or by means of electric actuating members, which for example can be controlled by an electronics unit also controlling the electric motors 26 and 29 accordingly.
[0047] The invention is not limited to the presented embodiments, but encompasses all variants, modifications, and combinations thereof that fall within the scope of the appended claims.