Absorber pipe
09939176 ยท 2018-04-10
Assignee
Inventors
- Thomas Kuckelkorn (Jena, DE)
- Marc Moellenhoff (Waldsassen, DE)
- Christina Albers (Weiden, DE)
- Paul Eichel (Mitterteich, DE)
Cpc classification
F24S23/74
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
F24S40/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S40/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S23/79
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
F24S2025/6013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An absorber pipe for solar collectors is provided. The absorber pipe includes a metal pipe for and a cladding pipe surrounding the metal pipe to form an annular space that can be evacuated. The absorber pipe can include a wall extending between the cladding pipe and the metal pipe for sealing the annular space and a retaining device for a getter material or a container filled with getter material or inert gas. The retaining device has a receiving section for receiving the getter material or the container. The retaining device is fastened to the wall. The absorber pipe can alternately include a getter material disposed in the annular space for binding free hydrogen present in the annular space and a reflector disposed in the annular space for reflecting radiation. The reflector has a housing with a support section for fastening and protecting the getter material from the radiation.
Claims
1. An absorber pipe for solar collectors in solar-thermal power plants having at least one collector mirror, the absorber pipe comprising: a metal pipe for conducting and heating a heat transfer medium; a cladding pipe surrounding the metal pipe to form an annular space; a wall running between the cladding pipe and the metal pipe, the wall sealing the annular space, wherein the wall comprises an outer ring, a transition element, an expansion bellows, and a connection element; and a retaining device disposed in the annular space at least partially between the expansion bellows and the metal pipe, and having a receiving section configured to receive a getter material of a container filled with getter material, wherein the retaining device is fastened to one of the outer ring, the transition element, the expansion bellows, and the connection element.
2. The absorber pipe according to claim 1, wherein the retaining device has a first region and a second region, wherein the getter material or the container filled with the getter material is disposed in the first region, a second container filled with protective gas is disposed in the second region, and wherein the first region is turned away from the at least one collector mirror and the second region is facing the at least one collector mirror.
3. The absorber pipe according to claim 1, wherein the retaining device comprises a reflecting metal or a reflecting layer for reflecting solar radiation.
4. The absorber pipe according to claim 1, wherein the retaining device comprises a cladding for protecting the getter material from solar radiation.
5. The absorber pipe according to claim 4, wherein the cladding is wire mesh.
6. The absorber pipe according to claim 4, wherein the cladding comprises a reflecting section for reflecting solar radiation.
7. The absorber pipe according to claim 4, wherein the retaining device has a first end and a second end connected to one another by a connection element.
8. The absorber pipe according to claim 1, further comprising a reflector disposed in the annular space, wherein the reflector is configured to reflect solar radiation into the metal pipe.
9. The absorber pipe according to claim 8, wherein the wall transitions into the cladding pipe via a glass-metal connection, and wherein the reflector or the retaining device is disposed so that it protects the glass-metal connection from radiation.
10. The absorber pipe according to claim 1, wherein the retaining device is fastened to the expansion bellows.
11. The absorber pipe according to claim 1, wherein the retaining device is fastened to the transition element.
12. An absorber pipe for solar collectors in solar-thermal power plants having at least one collector mirror, the absorber pipe comprising: a metal pipe for conducting and heating a heat transfer medium; a cladding pipe surrounding the metal pipe to form an annular space; a getter material disposed in the annular space for binding free hydrogen present in the annular space; a reflector disposed in the annular space for reflecting solar radiation into the metal pipe, wherein the reflector has a housing with a storage section for fastening and for protecting getter material from the solar radiation; a wall running between the cladding pipe and the metal pipe, the wall sealing the annular space, wherein the wall comprises an outer ring, a transition element, an expansion bellows, and a connection element; and a retaining device disposed in the annular space at least partially between the expansion bellows and the metal pipe, and having a receiving section configured to receive a getter material or a container filled with getter material, wherein the retaining device is fastened to one of the outer ring, the transition element, the expansion bellows, and the connection element.
13. The absorber pipe according to claim 12 further comprising a metal wall that extends between the cladding pipe and the metal pipe, at least in sections, in order to seal the annular space, wherein the metal wall transitions into the cladding pipe via a glass-metal connection, and wherein the reflector is disposed so that it protects the glass-metal connection from the solar radiation.
14. The absorber pipe according to claim 13, wherein the housing is fastened to the metal wall.
15. The absorber pipe according to claim 14, wherein the housing is fastened to the connection element or to the expansion bellows.
16. The absorber pipe according to claim 12, further comprising getter material disposed in a portion that is turned away from the collector mirror.
17. The absorber pipe according to claim 13, wherein the metal wall comprises an outer ring and a transition element, and wherein the housing is fastened to the outer ring or to the transition element.
18. The absorber pipe according to claim 12, wherein the reflector comprises a reflecting layer on the housing.
19. The absorber pipe according to claim 12, wherein the reflector comprises a polished surface.
20. The absorber pipe according to claim 12, wherein the storage section comprises one or more cavities into which getter material can be introduced.
21. The absorber pipe according to claim 20, wherein the one or more cavities can be closed off by a closure.
22. The absorber pipe according to claim 15, wherein the expansion bellows has an inner end and an outer end and the housing is fastened to the inner end.
23. The absorber pipe according to claim 16, wherein the reflector is disposed in the portion that is turned away from the collector mirror.
24. The absorber pipe according to claim 12, wherein the reflector comprises one or more planar reflecting sections.
25. The absorber pipe according to claim 12, wherein the housing is fastened to the connection element.
26. The absorber pipe according to claim 12, wherein the housing is fastened to the expansion bellows.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will now be explained in detail based on preferred examples of embodiment with reference to the appended figures. Herein:
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DETAILED DESCRIPTION OF THE INVENTION
(19) A solar collector 10 of the known type is shown in
(20) The flow direction of the heat transfer medium is indicated by arrows P. When it flows through metal pipe 22, the heat transfer medium will be heated by reflected solar radiation 16. The temperature that can be reached amounts to approximately 400 C. The heated heat transfer medium is introduced into a process that is not shown in more detail here, in which electrical energy is obtained. Half 30 of absorber pipe 18, which is turned away from collector mirror 12, is cooled by mixed convection, thus by natural convection and by forced convection due to wind, for example, which leads to heat losses and thus adversely affects the heating process of the heat transfer medium. Thus, one attempts to reduce the heat conduction from metal pipe 22 outwardly as much as possible, this conduction being effected by means of the annular space 26 formed with cladding pipe 24. The space can either be evacuated or filled with a protective gas. A combination of the two measures is also possible. Both measures cause a reduction in the heat conduction through annular space 26, whereby heat losses are limited.
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(22) Retaining device 32.sub.1 is fastened to connection element 40 proceeding radially from longitudinal axis 20 inside expansion bellows 41 in this example, but can also be attached to transition element 36 or to outer ring 38. Expansion bellows 41 is usually manufactured from light-impermeable material such as metal. The arrangement of retaining device 32.sub.1 thus utilizes the shading effect of expansion bellows 41, so that retaining device 32.sub.1 is protected from solar radiation at least on one side, which reduces heating. In each case, retaining device 32.sub.1 is disposed in annular space 26 without the existence of a direct contact to metal pipe 22. Thus heat cannot be transported conductively in a direct way from metal pipe 22 into retaining device 32.sub.1, so that the heating of retaining device 32.sub.1 will also be reduced thereby.
(23) The example of embodiment of retaining device 32.sub.1, which is shown in
(24) Both the getter material 46 pressed into portions as well as container 48 can be placed on spacer elements 50. These spacer elements 50 serve for the purpose of preventing heat conduction to getter material 46. Receiving section 44 has a boundary section 54, which prevents getter material 46 or container 48 filled with getter material from slipping under receiving section 44.
(25) In this embodiment, retaining device 32.sub.1 is closed and configured annularly, so that it can completely enclose the metal pipe. In this case, another receiving section 44 can be provided outside receiving section 44, when viewed radially, and this can then prevent getter material 46 from falling out (not shown).
(26) In addition, retaining device 32, as shown in
(27) Further, retaining device 32.sub.1 comprises a reflecting layer 60, which points toward metal pipe 22 and is fastened to receiving section 44. Reflecting layer 60 deflects solar rays that have missed or just brushed against metal pipe 22 and fall onto reflecting layer 60, back to metal pipe 22. In this way, it is prevented, on the one hand, that retaining device 32.sub.1 absorbs solar rays, which could lead to a heating of getter material 46, and, on the other hand, the reflected rays in metal pipe 22 can contribute to the heating of the heat transfer medium. Alternatively, receiving section 44 can be formed wholly or partially as a highly reflecting metal 60.
(28) A second example of embodiment of a retaining device 32.sub.2 is shown in
(29) Since retaining device 32.sub.2 is not placed in contact with connection element 40, heat cannot conductively enter into retaining device 32.sub.2 from connection element 40 and thus to getter material 46. Here, it is also valid that retaining device 32.sub.2 is not placed in direct contact with metal pipe 22, so that heat cannot be transported conductively from metal pipe 22 directly into retaining device 32.sub.2. The lengthwise expansion of metal pipe 22 does not influence retaining device 32.sub.2.
(30) Retaining device 32.sub.2 is shown enlarged in
(31) A second absorber pipe 18 having a third example of embodiment of retaining device 32.sub.3 according to the invention is shown in
(32) The third example of embodiment of retaining device 32.sub.3 is shown in
(33) Cladding 62 in this example of embodiment is designed as a wire mesh 68, which is pulled over first spring 76. Wire mesh 68 protects getter material 46 by shading it against solar rays, but simultaneously guarantees that free hydrogen can easily reach getter material 46. Wire mesh 68 does not reduce heat conduction to getter material 46.
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(35) A fourth example of embodiment of a retaining device 32.sub.4 according to the invention is shown in
(36) An absorber pipe 18 having a fourth example of embodiment of retaining device 32.sub.4 according to the invention is shown in
(37) Absorber pipe 18.sub.3 according to a third embodiment, which largely corresponds to absorber pipe 18.sub.1 shown in
(38) Absorber pipe 18.sub.4, which largely corresponds to absorber pipe 18.sub.2 shown in
(39) Absorber pipe 18.sub.2 according to the second example of embodiment is shown in
(40) Housing 90 has a storage section 92, into which getter material 46 can be introduced. Storage section 92 comprises a cavity 102 and an opening 100, through which getter material 46 can be introduced into cavity 102. Opening 100 of cavity 102 is closed off with a closure 104, which can be formed as a grid, for example.
(41) The second example of embodiment of absorber pipe 18.sub.2 is shown in
(42) Arrows P.sub.3 to P.sub.6 are drawn to illustrate the beam paths of solar rays 14. The rays that run along arrows P.sub.4 and P.sub.5 strike collector mirror 12 and are reflected from it directly into metal pipe 22, where they contribute to heating the heat transfer medium. The rays that run along arrows P.sub.3 and P.sub.6 also strike collector mirror 12. These are not reflected into metal pipe 22 from collector mirror 12, but rather miss it (defocused radiation), for example, as a consequence of manufacturing imprecisions of collector mirror 12. Normally, these would pass through cladding pipe 24 on half 30 turned away from collector mirror 12 and could not contribute to heating the heat transfer medium.
(43) According to the invention, however, these rays strike reflector 94.sub.1, which is configured so that it reflects the rays back into metal pipe 22, so that they can contribute to heating the heat transfer medium and do not remain unutilized. Reflector 94.sub.1 and getter material 46 are thus positioned with respect to one another so that getter material 46 cannot be heated by the defocused radiation. According to the invention, on the one hand, it is achieved that rays that miss metal pipe 22 are reflected back through reflector 94.sub.1 into metal pipe 22 and thus do not remain unutilized, and, on the other hand, that getter material 46 is not heated by these rays, which would reduce its absorption capacity for free hydrogen.
(44) A fifth example of embodiment of an absorber pipe 18.sub.5 according to the invention is shown in
(45) Transition element 36 forms glass-metal connection 37 at its transition into cladding pipe 24. In the dimensioning of housing 90 and its arrangement inside annular space 26, taking into consideration the axial extension of expansion bellows 41, in this example of embodiment, care is to be taken that glass-metal connection 37 is shaded as much as possible. Glass-metal connection 37 is sensitive to thermal expansions for which reason a shading increases the reliability of glass-metal connection 37.
(46) The reflection of radiation 16 through reflector 94.sub.1 is indicated by arrow P.sub.7.
(47) The absorber pipe shown in
(48) Storage section 92, in which getter material 46 is found, is disposed in housing 90 of reflector 94.sub.2. Storage section 92 in turn is designed as cavity 102, which can be closed off with closure 104.
(49) Absorber pipe 18.sub.5, which largely corresponds to the one in
LIST OF REFERENCE CHARACTERS
(50) 10 Solar collector 12 Collector mirror 14 Solar irradiation 16 Reflected solar irradiation 18.sub.1-18.sub.6 Absorber pipe 20 Longitudinal axis of the absorber pipe 22 Metal pipe 24 Cladding pipe 26 Annular space 28 Half of the absorber pipe facing the collector mirror 30 Half of the absorber pipe turned away from the collector mirror 32.sub.1-32.sub.4 Retaining device 34 Wall 36 Transition element 37 Glass-metal connection 38 Outer ring 40 Connection element 41 Expansion bellows 42 Inner end 43 Outer end 44 Receiving section 46 Getter material 48 Container 50 Spacer element 54 Boundary section 60 Reflecting layer 61 Fastening means 62 Cladding 63 Radiation protection shield 64 Perforations 66 Longitudinal axis of the retaining device 68 Wire mesh 70 First end 72 Second end 73 Connection element 74 Prestressing element 76 First spring 77 Windings 78 Reflecting section 79 Third spring 80 First region 82 Second region 84 First container 86 Second container 90 Housing 92 Storage section 94 Reflector 96 Reflecting layer 100 Opening 102 Cavity 104 Closure 106 Planar section 108 Bracket 110 Polished surface P Flow direction of heat transfer medium