Receiver system for a fresnel solar plant
09726401 · 2017-08-08
Assignee
Inventors
- Andreas Sauerborn (Stadtallendorf, DE)
- Tim Gnaedig (Mitterteich, DE)
- Thomas Kuckelkorn (Jena, DE)
- Tim Brengelmann (Munich, DE)
Cpc classification
F24S23/74
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S23/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S2023/876
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S23/71
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/44
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
F24S2023/872
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S23/79
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S2023/834
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
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
F24S10/45
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S40/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A receiver system for a Fresnel solar plant is provided that includes an absorber tube defining a longitudinal direction, a mirror array that runs parallel to the longitudinal direction and is used for concentrating light beams onto the absorber tube, and a support frame for the absorber tube and the mirror array. A first suspension for holding the absorber tube and a second suspension for holding the mirror array or at least parts of the mirror array are independently mounted on the support frame. The first suspension has first compensation device while the second suspension has second compensation device. The first and second compensation devices allow for different expansions of the absorber tube and the mirror array or at least parts of the mirror array in the longitudinal direction.
Claims
1. A receiver system for a Fresnel solar plant, comprising: an absorber tube defining a longitudinal direction; a mirror array parallel to the longitudinal direction for the concentration of light beams on the absorber tube; a support frame for the absorber tube and the mirror array; a first suspension that holds the absorber tube; and a second suspension that holds or at least parts of the mirror array, the first and second suspensions being mounted on the support frame independent of one another, the first suspension having a first compensation device and the second suspension having second compensation device, and the first and second compensation devices permit different expansions of the absorber tube and at least parts of the mirror array in the longitudinal direction, wherein the mirror array has separate first and second mirror elements in the longitudinal direction with a gap lying between the first and second mirror elements, and wherein the mirror array has a first profile element and a second profile element that are associated with the first and second mirror elements, respectively, wherein the first and second profile elements housing the first and second mirror elements, respectively, on a side facing away from the absorber tube.
2. The receiver system according to claim 1, further comprising a receiver tube composed of the absorber tube and a sleeve tube disposed around the absorber tube at least in segments.
3. The receiver system according to claim 1, wherein the support frame has a longitudinal support member on which the first suspension is mounted and which runs parallel to the absorber tube and to the mirror array.
4. The receiver system according to claim 3, wherein the first suspension is guided from the longitudinal support member through an opening in the mirror array to the absorber tube.
5. The receiver system according to claim 1, wherein the first and the second profile elements are L-shaped.
6. The receiver system according to claim 1, wherein the first and second profile elements are fastened to the second suspension.
7. The receiver system according to claim 1, wherein the first and second mirror elements are fixed in place in each case by a compensation device, at least on one side, to the associated first and second profile elements, the compensation device permitting different expansions of the mirror elements and the associated profile elements in the longitudinal direction.
8. The receiver system according to claim 1, wherein the mirror array has a mirror segment, which at least partially optically closes the gap.
9. The receiver system according to claim 8, wherein the mirror segment is formed as a third mirror element.
10. The receiver system according to claim 9, wherein the mirror array has a third profile element associated with the third mirror element, the third profile element housing the third mirror element on a side facing away from the absorber tube.
11. The receiver system according to claim 10, wherein the third profile element is U-shaped.
12. The receiver system according to claim 10, wherein the third profile element is fastened to the first suspension.
13. The receiver system according to claim 10, wherein the third mirror element is fixed in place to the third profile element by a third compensation device, at least on one side, the third compensation device permitting different expansions of the third mirror element and the third profile element in the longitudinal direction.
14. The receiver system according to claim 8, further comprising a receiver tube composed of the absorber tube and a sleeve tube disposed around the absorber tube at least in segments, wherein the mirror segment is formed as a reflective surface of the sleeve tube.
15. The receiver system according to claim 8, further comprising an air gap between the first mirror element and the mirror segment and between the second mirror element and the mirror segment.
16. The receiver system according to claim 15, wherein the mirror array has a mirror-symmetrical curve profile with at least one top-lying apical point, and the air gap is disposed in a region of the apical point.
17. The receiver system according to claim 1, wherein the second suspension has, as the second compensation device, a first joint, which connects the support frame on one side to the mirror array or at least to parts of the mirror array on the other side and defines one degree of freedom in the longitudinal direction.
18. The receiver system according to claim 17, wherein the first joint is a solid joint.
19. The receiver system according to claim 1, wherein the first suspension has, as a first compensation device, a bearing arrangement that can travel along the longitudinal support member.
20. The receiver system according to claim 1, wherein the second suspension has a second joint, which connects the support frame on one side to the mirror array or at least to parts of the mirror array on the other side and defines one degree of freedom crosswise to the longitudinal direction.
21. The receiver system according to claim 20, wherein the second joint is a rotating joint for swinging out the mirror array or at least parts of the mirror array.
22. The receiver system according to claim 2, wherein the sleeve tube is disposed eccentrically around the absorber tube, at least on a central longitudinal segment.
23. The receiver system according to claim 2, wherein the sleeve tube is tapered at least on a central longitudinal segment.
Description
DESCRIPTION OF THE DRAWINGS
(1) Additional features and advantages of the invention will be explained on the basis of embodiment examples, which are shown in the figures described below. Herein:
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DETAILED DESCRIPTION
(16) The initial situation in order to explain the problem that is the basis of the invention is sketched in
(17) Proceeding from here, the invention is concerned with the question of how such a receiver tube 106 and a mirror array 112 can be fastened to the support frame 114, whereby the fastening provides sufficient degrees of freedom for the compensation of different length expansions of the individual components. Up until now, both the receiver tube as well as the mirror array have been accommodated in a common housing, which is disposed like a roof over the mirror array, protecting it from weather effects. Inside the housing, common holders engage the receiver tube and the mirror array from above and fix them in place. These holders also, in fact, permit a compensation movement in the longitudinal direction, but only a common movement for both the receiver tube and the mirror array. In order to do justice to the very different longitudinal expansions, the mirrors of the mirror array are fixed only on one side and are guided only on the other side. However, this has not led to reliable movements of the components and regularly leads to an optical maladjustment.
(18) The invention will be explained first in more detail on the basis of
(19) The receiver system 204 has a receiver tube 206 of the above-described type, a mirror array 212, and also a post 216 and a crosswise support 218 as parts of the support frame 214.
(20) The support frame 214 further has a frame element 220, which connects the crosswise support 218 to a longitudinal support member 222 running above the receiver tube 206 and the mirror array 212. In addition, the support frame 214 has a first suspension 323 for holding the receiver tube 206 and a second suspension 324 for holding the mirror array or at least parts of the mirror array. The two suspensions 323 and 324 are disposed on the frame element 220, independent of one another.
(21) More precisely, the first suspension 323 has first compensation means in the form of a trolley 326, which is disposed so as to be able to travel along the longitudinal support member 222 in the longitudinal direction. In this way, the longitudinal support member forms a rail guide for the first suspension that could compensate for an almost unlimited longitudinal expansion and thus takes into account the large expansion of the greatly heated absorber tube.
(22) The second suspension 324 has second compensation means in the form of strips 328, which are joined in one piece at their fixed end to the frame element 220 of the support frame 214, and are connected on the other side at their free end to parts of the mirror array 212. The strips 328 each form a monolithic and flat solid unit in the longitudinal direction, i.e., crosswise to the plane of the illustration, thus defining one degree of freedom essentially in the longitudinal direction on their free end. In this way, the strips 328 form a first joint in the form of a solid joint, which could compensate for only a limited longitudinal expansion in the longitudinal direction, but which is sufficient for the relatively small expansion of the mirror array. Moreover, the deflection of the joint can be adjusted in principle in a simple way to the required expansion length by suitably selecting the length of the strips 328 and the distances from one another of the following two suspensions in the longitudinal direction or the length of the mirror elements disposed between them.
(23) Further details, in particular of the second suspension 324, will be explained in more detail based on
(24) In the embodiment shown here, the mirror array has separate first and second mirror elements 432 and 434 having a gap 436 running in between them in the longitudinal direction. The gaps 436 also form an opening in the mirror array through which the first suspension 323 is guided from the longitudinal support member 222 to the receiver tube 206; see
(25) Further details, particularly of the support frame, can be recognized in
(26) In addition, it can be recognized that two sequential segments also meet up at this place with L-shaped profile elements 438 and 440 that are each suspended on one side on one of the two frame elements 220 by means of strips 328 belonging thereto. A joining 544 is formed in the longitudinal direction, both between the first and second profile elements (only one of which can be recognized in the illustration) and the associated first and second mirror elements (not recognizable), this joining having the function of an expansion joint.
(27) A complete segment of the support frame between two adjacent support posts is shown as 646 in
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(29) It is clear here that the receiver tube 206 also has a segmentation that is predetermined by the length of the sleeve tube 210, whereas the absorber tube 208 continues without break (almost endlessly). Of course, this must be the case, since the fluid transporting the heat can flow unhindered through the absorber tube 208 from one end to the other. A gap that serves on one side as expansion compensation for the sleeve tube and in which, on the other side, a short section of the absorber tube lies free on which the first suspension 323 engages on its free end with a clip 750 for fastening the absorber tube 208 is left each time between two adjacent sleeve tubes 210. The longitudinal support member 222, on which the first suspension 323 having a trolley 326 as the first compensation means is disposed so that it can travel in the longitudinal direction, is in turn again shown above the receiver tube 206.
(30) In this construction, the sleeve tube 210 moves relative to the longitudinal support member 222 with a longitudinal expansion of the absorber tube 208. A differential length change of the absorber tube 208 relative to the sleeve tube 210, based on different heating and different materials, is made possible by the expansion bellows 754 alone.
(31) In the comparison of
(32) In addition, a third profile element 756 for a third mirror element (which cannot be recognized here) is shown in
(33) Further details, in particular of the first suspension 323, are shown in
(34) In this illustration, the third profile element 756, which houses the third mirror element 871 on its side facing away from the receiver tube 206, can be well recognized. The third profile element 756 is configured essentially U-shaped for this purpose, whereby it has at the ends of its two legs, lateral projections 866, which form a covering with the L-shaped first and second profile elements 438 and 440. The mirror array lying thereunder, which is composed of the first, second and third mirror elements 432, 434, 871, is sufficiently protected in this way from environmental effects and dust.
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(36) The gap 936 between the first and the second mirror elements 932 and 934 serves as the opening through which the first suspension is guided from the longitudinal support member (which is not shown here) above the optical components to the receiver tube. In this way, it is possible to form the first suspension for holding the receiver tube 906 and the mirror segment 968 independently from the second suspension for holding parts of the mirror array, i.e., the first and the second mirror elements 932, 934, so that they permit different expansions of the absorber tube 908 on one side and the first and second mirror elements 932, 934 on the other side.
(37) In this embodiment, the mirror segment 968 is formed as a third mirror element 971, which is positioned without direct contact with the sleeve tube 910 and above it.
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(39) In addition, in this embodiment, air gaps 1070 can also be recognized between the first mirror element 1032 and the mirror segment 1068 as well as between the second mirror element 1034 and the mirror segment 1068.
(40) Finally, a first profile element 1038, which is associated with the first mirror element 1032, and a second profile element 1040, which is associated with the second mirror element 1034, are shown in
(41) A third embodiment of the optical components of the receiver system according to the invention is shown schematically in
(42) A difference from the example of embodiment in
(43) In addition, a first profile element 1138, which is associated with the first mirror element 1132; a second profile element 1140, which is associated with the second mirror element 1134; and a third profile element 1156, which is associated with the third mirror element 1171, are illustrated in
(44) Further, it is illustrated in
(45) It can also be recognized that the mirror array in cross section has a mirror-symmetrical curve profile with two apical points lying on top, whereby the air gaps 1170 are each found in the region of these apical points. “In the region of the apical points” also includes a region underneath the apical point, or here the apical points, of the curve profile of up to 10% of the total height of the curve profile. In any case, the air gaps 1170 disposed in the region of the apical points contribute to the fact that rising hot air does not build up in the mirror array but can be drawn off upward through the air gaps, so that the temperature fluctuations to which the individual mirror elements are subjected can be reduced.
(46) So that the rising hot air can completely exit the housing formed from the three profile elements 1138, 1140, and 1156, the gaps 1174 are provided on both sides between the profile elements. An exhaust air flow is characterized by means of arrows.
(47) Additional gaps are found between the first and second mirror elements 1132 and 1134 and the associated profile elements 1138 and 1140. Here, the gaps 1176 are found on the lower end and the gaps 1178 are found on the upper end, permitting an air circulation also on the outer side of the mirror elements 1132 and 1134, so that an optimal cooling of these mirror elements is assured.
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(49) Moreover, the connection between the absorber tube 1208 and the sleeve tube 1210 or 1210′, which is configured identically in both cases, can be recognized. It provides for a sealing of the volume enclosed by the sleeve tube 1210 or 1210′, which is usually evacuated. In addition to sealing, the connection 1282 simultaneously has the function of an expansion compensation. Thus it has an expansion bellows in a way known in and of itself.
(50) It will still be noted by way of explanation that the
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(52) The support frame 1314 has a crosswise support 1318 and a frame element 1320 attached thereon. In addition, the support frame 1314 has a first suspension 1323 for holding the receiver tube 1306 and a second suspension 1324 for holding the mirror array 1312, more precisely, a first and a second mirror element 1332, 1334, and the associated first and second profile elements 1338, 1340. The two suspensions 1323 and 1324 are connected to the frame element 1320 independently from one another. Two longitudinal support members 1322 running parallel to the receiver tube 1306 and the mirror array 1312, but this time horizontally in addition, are also part of the support frame 1314.
(53) The first suspension 1323 has first compensation means in the form of a carriage, preferably with two pairs of rollers, the carriage being guided so that it can travel in the longitudinal direction by the pair of rails formed by the two longitudinal support members 1322.
(54) The second suspension 1324 has second compensation means in the form of strips 1328, which once again form solid joints between the frame element 1320 and the mirror elements 1332, 1334, but unlike the previously described examples, these run horizontally.
(55) The first and second mirror elements 1332 and 1334, which are separate in the longitudinal direction, form a gap 1336 lying between them. The gap 1336 forms an opening through which the first suspension 1323 is guided from the longitudinal support members 1322 to the receiver tube 1306 in the form of opposite-lying axes 1384.
(56) The longitudinal support members 1322 are in turn suspended on the frame element 1320, each by means of a strip 1386, so that the strips 1386 form a solid joint, which makes possible a compensation movement of the longitudinal support member in the longitudinal direction.
(57) The first suspension 1323 further has a second joint 1330, which is formed as a rotating joint for swinging out the mirror array, more precisely a third mirror element 1371 plus the U-shaped third profile element 1356 housing it, crosswise to the longitudinal direction. The third profile element 1356 and the third mirror element 1371 contact parts of the carriage and are thus guided together with the movement of the receiver tube 1306. They are shown in the operating position by means of solid lines and in the lateral and upwardly swung-out position for maintenance or revision by means of dotted lines. In the revision position, the mirror array releases the receiver tube disposed in the center for an intervention from the top.
LIST OF REFERENCE CHARACTERS
(58) 100 Fresnel solar plant 102 Primary concentrator mirror 104 Receiver system 106 Receiver tube 108 Absorber tube 110 Sleeve tube 112 Mirror array 114 Support frame 116 Support post 118 Crosswise support 204 Receiver system 206 Receiver tube 208 Absorber tube 210 Sleeve tube 212 Mirror array 214 Support frame 216 Support post 218 Crosswise support 220 Frame element 222 Longitudinal support member 323 First suspension 324 Second suspension 326 Trolley 328 Strip 430 Second joint, rotating joint 432 First mirror element 434 Second mirror element 436 Gap, opening 438 First profile element 440 Second profile element 542 Joining between adjacent elements of the longitudinal support member 544 Joining between adjacent profile elements 646 Segment of the support frame 648 Joining between adjacent mirror elements 750 Clip 752 Segment of the first suspension 754 Expansion bellows 756 Third profile element, U-profile 758 Compensation means 860 Pair of rollers 862 Bracket 866 Lateral projection 871 Third mirror element 906 Receiver tube 908 Absorber tube 910 Sleeve tube 912 Mirror array 932 First mirror element 934 Second mirror element 936 Gap, opening 968 Mirror segment 970 Air gap 971 Third mirror element 1006 Receiver tube 1008 Absorber tube 1010 Sleeve tube 1012 Mirror array 1032 First mirror element 1034 Second mirror element 1036 Gap, opening 1038 First profile element 1040 Second profile element 1068 Mirror segment 1070 Air gap 1072 Reflective surface 1106 Receiver tube 1108 Absorber tube 1110 Sleeve tube 1112 Mirror array 1132 First mirror element 1134 Second mirror element 1138 First profile element 1140 Second profile element 1156 Third profile element 1170 Air gap 1171 Third mirror element 1174 Air gap 1176 Air gap 1178 Air gap 1180 Gap between absorber tube and sleeve tube 1206 Receiver tube 1206′ Receiver tube 1208 Absorber tube 1208′ Absorber tube 1210 Sleeve tube 1210′ Sleeve tube 1280 Gap between absorber tube and sleeve tube 1280′ Gap between absorber tube and sleeve tube 1282 Connection 1304 Receiver system 1306 Receiver tube 1312 Mirror array 1314 Support frame 1318 Crosswise support 1320 Frame element 1322 Longitudinal support member 1323 First suspension 1324 Second suspension 1328 Strip, solid joint 1330 Second joint 1332 First mirror element 1334 Second mirror element 1336 Gap, opening 1338 First profile element 1340 Second profile element 1356 Third profile element 1371 Third mirror element 1384 Axis 1386 Strip, solid joint