SORPTION MODULE
20170343262 ยท 2017-11-30
Inventors
Cpc classification
Y02A30/27
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
F28C3/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B35/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B17/086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B35/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B49/046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B17/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25B49/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B35/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A sorption module for a sorption temperature-control device may include a housing enclosing a working chamber. A sorption zone and a phase change zone may be arranged in the working chamber where a working medium is displaceable reversibly between the sorption zone and the phase change zone. A sorption structure may be arranged in the sorption zone, and a phase change structure may be arranged in the phase change zone. An outer wall of the housing may include a double-walled section that may provide a cavity between an outer wall part and an inner wall part of the double-walled section, and the phase change zone may be arranged on an inner side of the inner wall part.
Claims
1. A sorption module for a sorption temperature-control device, comprising: a housing enclosing a working chamber and including a sorption zone and a phase change zone arranged in the working chamber where a working medium is displaceable reversibly between the sorption zone and the phase change zone; a sorption structure arranged in the sorption zone and coupled to a sorption path in a heat-transmitting manner for guiding a sorption path medium; a phase change structure arranged in the phase change zone and coupled to a phase change path in a heat-transmitting manner for guiding a phase change path medium; an outer wall of the housing including a double-walled section arranged at least in a section to provide a cavity between an outer wall part and an inner wall part of the double-walled section; wherein the phase change path is guided through the cavity; and the phase change zone is arranged on an inner side of the inner wall part.
2. The sorption module according to claim 1, wherein: the sorption zone is enclosed by the phase change zone in a circumferential direction of the housing; the double-walled section of the outer wall is structured to enclose the phase change zone in the circumferential direction; and the phase change zone is enclosed by the phase change path in the circumferential direction.
3. The sorption module according to claim 1, wherein the housing is configured cylindrical and includes a jacket defining at least one of the outer wall the double-walled section of the outer wall.
4. The sorption module according to claim 1, further comprising at least one spring element provided to pre-tension the phase change structure against the inner wall part of the double-walled section.
5. The sorption module according to claim 4, wherein: the at least one spring element is a spring strap wound in a circumferential direction of the housing around a longitudinal central axis of the housing in a helical manner; or the at least one spring element is a spring plate bent in a circumferential direction of the housing about a longitudinal central axis of the housing.
6. The sorption module according to claim 4, wherein the at least one spring element is perforated to provide a fluidic connection from the sorption zone to the phase change zone through the at least one spring element.
7. The sorption module according to claim 1, wherein the phase change structure has a band shape and extends helically along the outer wall around a longitudinal central axis of the housing.
8. The sorption module according to claim 7, wherein the phase change structure having the band-shape extends in plural turns along the outer wall about the longitudinal central axis, and wherein a gap is defined axially between adjacent turns and interrupts a capillary effect of the phase change structure oriented parallel to the longitudinal central axis.
9. The sorption module according to claim 1, wherein the phase change structure includes a plurality of band-shaped strips extending in a circumferential direction of the housing, the plurality of band-shaped strips arranged adjacently along the outer wall in a longitudinal direction of the housing running parallel to a longitudinal central axis of the housing.
10. The sorption module according to claim 9, wherein a gap is defined axially between adjacent band-shaped strips of the plurality of band-shaped strips that interrupts a capillary effect of the phase change structure oriented parallel to the longitudinal central axis of the housing.
11. The sorption module according to claim 1, wherein the phase change structure includes a plurality of band-shaped strips extending parallel to a longitudinal central axis of the housing, the plurality of band-shaped strips arranged adjacently along the outer wall in a circumferential direction of the housing.
12. The sorption module according to claim 11, wherein a gap is defined extending parallel to the longitudinal central axis disposed in the circumferential direction of the housing between adjacent band-shape strips of the plurality of band-shaped strips.
13. The sorption module according claim 1, wherein the phase change structure is configured as a capillary structure.
14. The sorption module according to claim 1, wherein: the outer wall part includes a supply connection for supplying the phase change path medium to the phase change path; the outer wall part further includes a drain connection for draining the phase change path medium from the phase change path, the drain connection arranged spaced apart from the supply connection in a longitudinal direction of the housing; and at least one of a distributor channel is defined in the cavity in a region of the supply connection that extends in a circumferential direction of the housing, and a collector channel is defined in the cavity in a region of the drain connection that extends in a circumferential direction of the housing.
15. A sorption temperature-control device, comprising: at least one sorption module, the at least one sorption module including: a housing enclosing a working chamber and including a sorption zone and a phase change zone arranged in the working chamber where a working medium is displaceable reversibly between the sorption zone and the phase change zone; a sorption structure arranged in the sorption zone and coupled to a sorption path in a heat-transmitting manner for guiding a sorption path medium; a phase change structure arranged in the phase change zone and coupled to a phase change path in a heat-transmitting manner for guiding a phase change path medium; an outer wall of the housing including a double-walled section arranged at least in a section to provide a cavity between an outer wall part and an inner wall part of the double-walled section; wherein the phase change path is guided through the cavity, and the phase change zone is arranged on an inner side of the inner wall part; at least one sorption circuit, wherein the sorption path medium circulates in the at least one sorption circuit and the sorption path of the at least one sorption module is incorporated into the at least one sorption circuit; and at least one phase change circuit, wherein the phase change path medium circulates in the at least one phase change circuit and the phase change path of the at least one sorption module is incorporated into the at least one phase change circuit.
16. The sorption temperature-control device according to claim 15, wherein the sorption zone is enclosed by the phase change zone in a circumferential direction of the housing and the double-walled section of the outer wall is structured to enclose the phase change zone in the circumferential direction, and wherein the phase change zone is enclosed by the phase change path in the circumferential direction.
17. The sorption temperature-control device according to claim 15, wherein the housing includes a jacket defining at least the double-walled section of the outer wall.
18. The sorption temperature-control device according to claim 15, wherein the at least one sorption module further includes a spring element provided to pre-tension the phase change structure against the inner wall part of the double-walled section.
19. The sorption temperature-control device according to claim 15, wherein the phase change structure has a band shape and extends helically along the outer wall around a longitudinal central axis of the housing.
20. The sorption temperature-control device according to claim 15, wherein the phase change structure includes a plurality of band-shaped strips arranged along the outer wall of the housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0039] In the figures, in each case schematically
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
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[0047]
DETAILED DESCRIPTION
[0048] According to
[0049] Located in the sorption zone 4 is a sorption structure 6 which is coupled to a sorption path 7 indicated by arrows in a heat-transmitting manner. The sorption path 7 is used to guide a sorption path medium not shown. Located in the phase change zone 5 is a phase change structure 8 which is coupled to a phase change path 9 indicated by arrows in a heat-transmitting manner. The phase change path 9 is used to guide a phase change path medium not shown here.
[0050] The housing 2 has an outer wall 10 which is configured to be double-walled in a section 11 so that the outer wall 10 in this section 11 comprises an outer wall 12 and an inner wall 13. The outer wall 10 delimits the working chamber 3 with respect to a surroundings 14 of the housing 2 or the sorption module 1. The outer wall 12 is exposed to the surroundings 14 whilst the inner wall 13 is exposed to the working chamber 3. An intermediate space or cavity 15 is formed between the outer wall 12 and the inner wall 13. Expediently this cavity 15 extends over the entire double-walled section 11. The phase change path 9 is now guided through this cavity 15 in such a manner that during operation of the sorption module 1 the phase change path medium flows through the cavity 15 and is guided axially or laterally therein through the inner wall 13 and the outer wall 12 and is thus guided through the outer wall 10 The cavity 15 thereby forms a component of the phase change path 9. The phase change zone 5 is arranged on an inner side 16 of the inner wall 13 facing the working chamber 3. Accordingly the phase change structure 8 is located on or adjacent to the inner side 16 of the inner wall 13.
[0051] In the preferred embodiment shown here, the housing 2 is configured cylindrically so that it has a jacket 18 running around in the circumferential direction 17 and two end bases 19, 20 axially at the end faces. The axial direction is here defined by a longitudinal central axis 21 of the housing 2. The circumferential direction 17 also relates to the longitudinal central axis 21. The axial direction in this case simultaneously correspond to a longitudinal direction of the housing 2. The jacket 18 forms or contains the double-walled section 11 of the outer wall 10 of the housing 2. In this respect the cavity 15 extends cylindrically. Furthermore the sorption zone 4 is enclosed in the circumferential direction 17 by the phase change zone 5. The double-walled section 11 or the jacket 18 encloses the phase change zone 5 in the circumferential direction 17. Finally the phase change path 9 encloses the phase change zone 5 in the circumferential direction 17. According to
[0052] The outer wall 12 can have a supply connection 22 for supplying the phase change path medium to the phase change path 9. Further, the outer wall 12 has a drain connection 23 for draining the phase change path material from the phase change path 9. The drain connection 23 and the supply connection 22 are spaced apart from one another in the longitudinal direction of the housing 2. For example, the supply connection 22 is located proximally to the end base 19 whilst the drain connection 23 is located proximally to the opposite other end base 20. In the area of the supply connection 22, a distributor channel 24 can be formed in the cavity 15 which extends in an annular closed manner in the circumferential direction 17. In the area of the drain connection 23 a collector channel 25 can be formed in the cavity 15, which extends in the circumferential direction 17. It can be seen that the cavity 15 is provided axially between distributor channel 24 and collector channel 25 with a significantly smaller cross-section through which flow can take place compared with the distributor channel 24 and the collector channel 25, wherein the cross-sections through which flow can take place are measured perpendicular to the longitudinal central axis 21.
[0053] The cavity 15 can be filled with a structure (not shown) which improves the passage of heat between the phase change path medium and the inner wall 13.
[0054] The phase change structure 8 is expediently configured as a capillary structure. In particular, a preferred orientation for the capillary effect can be provided inside this capillary structure which can expediently be oriented parallel to the longitudinal direction, i.e. parallel to the longitudinal central axis 21.
[0055] The gas chamber 35 can contain one or more (not shown) reflecting radiation shields which reduce the thermal irradiation of the sorption zone to the cooler phase change zone.
[0056] The phase change structure 8 can be pressed against the inner wall 13 with the aid of at least one spring element 26, wherein direct contact between phase change structure 8 and inner wall 13 is preferred. In principle, however heat-conducting pastes and the like can be used in order to improve the heat transfer between phase change structure 8 and inner wall 13.
[0057] In the embodiment shown in
[0058] Instead of such a sheet-metal-shaped spring element 26, band-shaped spring elements 26 can also be used. It is feasible for example that several such band-shaped spring elements 26 are used which each extend in the circumferential direction 17 and are arranged adjacently in the longitudinal direction.
[0059]
[0060] Similarly to different embodiments of the spring element 26, the phase change structures 8 can also be configured differently. In the embodiment shown in
[0061] In other embodiments, the phase change structure 8 can also comprise a plurality of band-shaped strips which each extend in the circumferential direction 17 and are arranged adjacently along the outer wall 10 in the longitudinal direction. Here also a gap 29 can expediently be provided between axially adjacent strips of the phase change structure 8 in order to interrupt the capillary effect of the phase change structure 8 in the longitudinal direction of the housing 2. Such a configuration and the configuration described previously with reference to
[0062] In contrast to this,
[0063] According to
[0064] In order to minimize the conductive heat transfer between the distributor and collector chambers of the sorption zone and the distributor and collector chambers of the phase change zone, these regions are spaced apart from one another.
[0065] According to
[0066] According to
[0067] The sorption circuit 38 can contain a pump 40 for driving the sorption path medium. Likewise at least one heat exchanger 41 can be provided via which, combined with a fluid stream 42, heat can be removed from the sorption circuit 38 or can be introduced therein. Control elements 43, for example, in the form of valve devices enable sorption path medium to be applied to the individual sorption modules 1 on the one hand independently and separately and on the other hand in a controlled manner with regard to the volume flow. Usually the sorption circuit 38 can be connected with valve means not shown here alternately to a high-temperature heat source or to a moderate-temperature heat sink according to the operating state of the sorption temperature-control device 37. In particular, at least two sorption circuits 38 can be provided for this purpose in order to simplify the coupling to the high-temperature heat source on the one hand or to the moderate-temperature heat sink on the other hand.
[0068] Similarly to this, the phase change circuit 39 can be provided with a pump 44 for driving the phase change path medium. Here also at least one heat exchanger 45 can be provided with the aid of which combined with a fluid stream 46, heat can be removed from the phase change circuit 39 or introduced therein. Control elements 47 can also be provided here, for example, in the form of valve devices in order to enable phase change path medium to be applied to the sorption modules 1 on the one hand separately and independently and on the other hand in a controlled manner with regard to the volume flow. Usually the phase change circuit 39 can also be connected with valve means not shown here alternately to a moderate-temperature heat sink or to a low-temperature heat source according to the operating state of the sorption temperature-control device 37. In particular, at least two phase change circuits 39 can be provided for this purpose in order to simplify the coupling to the low-temperature heat source on the one hand and to the moderate-temperature heat sink on the other hand.
[0069] The sorption circuit 38 and the phase change circuit 39 are each shown as closed circles in
[0070] The operating mode of the sorption temperature-control device 37 or such a sorption module 1 is briefly explained in detail hereinafter with reference to
[0071] The cyclic process generally begins with a charging phase since the working medium in the thermally compensated state is largely located in the sorption zone 4 which can be attributed to the greater affinity of the sorption zone 4 for the working medium. During the charging phase, heat is supplied to the sorption structure 6 via the sorption path 7. This heat comes from a high-temperature heat source which can thus be cooled. As a result, the working medium desorbs from the sorption structure 6 and can be displaced in gaseous form from the sorption zone 4 to the phase change zone 5. The sorption structure 6 operates as a desorber during the charging phase. In the phase change zone 5 the gaseous working medium can be deposited on the phase change structure 8 wherein the phase change structure 8 operates as a condenser. The heat thereby released can be removed via the phase change path 9. The removed heat can be received by a moderate-temperature heat sink which can thereby be warmed. The charging phase can in principle be carried out until the highest possible proportion of the working medium depending on the temperature level is displaced into the phase change zone 5.
[0072] During a subsequent discharging phase, the sorption module 1 is operated so that the working medium which at the beginning of the discharging phase is largely located in the phase change zone 5, is displaced from the phase change zone 5 to the sorption zone 4. A corresponding displacement of the working medium is indicated by a double arrow in