BUFFER STORAGE ARRANGEMENT FILLED WITH PHASE CHANGE MATERIAL
20210364239 · 2021-11-25
Inventors
Cpc classification
Y02E60/14
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
F28F1/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The invention relates to a buffer storage arrangement filled with phase change material for storing heat energy, comprising a container (1) having open or sealed configuration, a heat exchanger unit (2) arranged in the container (1), and liquid-solid phase change material encompassing the heat exchanger unit (2) inside the container (1), wherein the heat exchanger unit (2) comprises pipe coils (21, 22) formed from bent pipes and heat exchanger fins (23) adapted for interconnecting the pipe coils (21, 22), wherein each pipe coil (21, 22) is situated along a respective imaginary plane, the imaginary planes being arranged parallelly beside one another, and the heat exchanger fins (23) are arranged aligned with the cross-sectional (24) direction of the pipes of the pipe coils (21, 22), substantially perpendicular to the imaginary planes of the pipe coils. The arrangement according to the invention is characterized in that the cross-sectional area of the container (1) is essentially filled by the heat exchanger fins (23) such that fluid communication between the walls (11, 12, 13, 14) of the container (1) and the heat exchanger unit (2) is provided in order to balance inhomogeneities between the spatial regions (15) separated by the heat exchanger fins (23).
Claims
1. Buffer storage arrangement filled with phase change material for storing heat energy, comprising a container (1) having open or sealed configuration, a heat exchanger unit (2) arranged in the container (1), and liquid-solid phase change material encompassing the heat exchanger unit (2) inside the container (1), wherein the heat exchanger unit (2) comprises pipe coils (21, 22) formed from bent pipes and heat exchanger fins (23) adapted for interconnecting the pipe coils (21, 22), wherein each pipe coil (21, 22) is situated along a respective imaginary plane, the imaginary planes being arranged parallel beside one another, and the heat exchanger fins (23) are arranged aligned with the direction of the cross-section of the pipes of the pipe coils (21, 22), substantially perpendicular to the imaginary planes of the pipe coils, characterized in that the cross-sectional area of the container (1) is essentially filled by the heat exchanger fins (23) such that fluid communication between the walls (11, 12, 13, 14) of the container (1) and the heat exchanger unit (2) is provided in order to balance inhomogeneities between the spatial regions (15) separated by the heat exchanger fins (23).
2. The buffer storage arrangement according to claim 1, characterized in that the walls (11, 12, 13, 14) of the container (1) and the heat exchanger fins (23) of the heat exchanger unit (2) are spaced apart with respect to each other.
3. The buffer storage arrangement according to claim 1, characterized in that the heat exchanger fins (23) of the heat exchanger unit (2) comprise through holes or cutouts that are arranged along the walls (11, 12, 13, 14) of the container (1) and extend between the spatial regions (15) separated by the fins.
4. The buffer storage arrangement according to one of the preceding claims, characterized in that the distance between adjacent pipes is identical in both substantially mutually perpendicular transverse directions.
5. The buffer storage arrangement according to one of the preceding claims, characterized in that shoulders adapted for providing a uniform distance between the fins (23) are disposed on the heat exchanger fins (23) around the pipes, the shoulders being formed of material originating from perforations made for the pipes passed therethrough.
6. The buffer storage arrangement according to one of the preceding claims, characterized in that the uniform distance between the heat exchanger fins (23) is preferably between 2.1 and 6 mm.
7. The buffer storage arrangement according to one of the preceding claims, characterized in that the heat exchanger fins (23) have an undulating surface configuration.
8. The buffer storage arrangement according to one of the preceding claims, characterized in that every second pairs of mutually parallelly arranged pipe coils (21) are interconnected to form a primary circuit (P), wherein the primary circuit (P) further comprises a primary distribution pipe (24) to which the inlets of the pipe coils (21) forming the primary circuit (P) are connected and a primary manifold (25), to which the outlets of the pipe coils (21) forming the primary circuit (P) are connected, and wherein the pipe coils (22) situated between the pipe coils (21) of the primary circuit (P) form a secondary circuit (S), the secondary circuit (S) further comprising a secondary distribution pipe (26) to which the inlets of the pipe coils (22) forming the secondary circuit (S) are connected and a secondary manifold (27) to which the outlets of the pipe coils (22) forming the secondary circuit (S) are connected, with a primary heat-transfer medium and a secondary heat-transfer medium, disposed in the primary circuit (P) and the secondary circuit (S), respectively, being circulated in a counter-flow fashion through the pipe coils (21, 22).
9. The buffer storage arrangement according to claim 8, characterized in that the primary distribution pipe (24), the secondary distribution pipe (26), the primary manifold (25) and the secondary manifold (25) are configured such that there is an identical volumetric flow through all the parallel pipe coils (21, 22).
10. The buffer storage arrangement according to one of the preceding claims, characterized in that the container (2) has a rectangular block shape.
11. The buffer storage arrangement according to one of the preceding claims, characterized in that the walls (11, 12, 13, 14) of the container (2) comprise a heat-insulating layer.
12. The buffer storage arrangement according to one of the preceding claims, characterized in that the buffer storage arrangement is connected to a heat transfer system via a three-way valve.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0018] In the following the buffer storage arrangement according to the invention is described in detail referring to the accompanying drawings and reference numerals, where
[0019]
[0020]
[0021]
[0022]
BEST MODE OF CARRYING OUT THE INVENTION
[0023] The buffer storage arrangement according to the invention illustrated in
[0024] In the buffer storage arrangement according to the invention the pressure differential resulting from temperature differences can be balanced in different ways. According to a preferred aspect of the invention, the internal space and external space of the container 1 are in fluid communication, for example via a through hole or a backward bent pipe 16. The backward bent pipe 16 is disposed such that in the operating position the phase change material cannot leak out from the container 1, but air can freely escape from the container 1. The backward curve of the backward bent pipe 16 is required such that dust or contamination cannot reach the phase change material.
[0025] In
[0026] The heat exchanger fins 23 are connected to the pipe coils 21 and 22 by way of perforations disposed on the heat exchanger fins 23 that correspond in size to the diameter of the pipes of the pipe coils 21 and 22, with the pipe coils 21 and 22 being passed through the perforations. The perforations also provide that a uniform distance can be kept between the pipes.
[0027] The distance between the heat exchanger fins 23 is preferably between 2.1 and 6 mm. To maintain the distance between the heat exchanger fins 23 and also to improved heat transfer, the heat exchanger fins 23 can also be perforated such that the material is not removed from the perforations but a partial or full circumferential rim is formed therefrom that can function as a spacer shoulder adapted to keep the distance between the heat exchanger fins 23.
[0028] As can be seen in
[0029] In addition to the pipe coils 21, the primary circuit P also comprises a primary distribution pipe 24 and a primary manifold 25. The pipe coils 21 are arranged in the heat exchanger unit 2 such that the primary heat transfer medium entering through the primary distribution pipe 24 flows through the pipe coils 21 as far as the primary manifold 25, where it exits the heat exchanger unit 2. The quantity of the heat transfer medium flowing through the pipe coils 21 is essentially identical in all pipe coils 21. This is ensured in a manner known per se, by way of example applying three-way valves.
[0030] In addition to the pipe coils 22, the secondary circuit S also comprises a secondary distribution pipe 26 and a secondary manifold 27. The pipe coils 22 are arranged in the heat exchanger unit 2 such that the secondary heat transfer medium entering through the secondary distribution pipe 25 flows through the pipe coils 22 as far as the secondary manifold 27, where it exits the heat exchanger unit 2. The quantity of the heat transfer medium flowing through the pipe coils 22 is essentially identical in all pipe coils 22. This is ensured in a manner known per se, by way of example applying baffle plates.
[0031] The primary circuit P and the secondary circuit S are thus situated opposite each other, in a comb-like intertwined manner, thereby providing counter-flow heat exchange. The primary circuit P and the secondary circuit S of the heat exchanger unit of the buffer storage arrangement 2 are built into a previously selected heat transfer system in a manner know per se, applying a system of valves.
[0032] In the a preferred embodiment depicted in
[0033] The advantage of the buffer storage arrangement according to the invention is that it can be manufactured at a lower cost compared to known technical solutions with a similar purpose, while it offers a simpler solution that also improves the heat transfer efficiency of the heat storage arrangement, and can be utilized as a universally applicable, variable-size means for medium-term heat storage in heat transfer systems.
LIST OF REFERENCE NUMERALS
[0034] 1—container [0035] 11—wall [0036] 12—wall [0037] 13—wall [0038] 14—wall [0039] 16—backward bent pipe [0040] 2—heat exchanger unit [0041] 21—pipe coil [0042] 22—pipe coil [0043] 23—heat exchanger fin [0044] 24—primary distribution pipe [0045] 25—primary manifold [0046] 26—secondary distribution pipe [0047] 27—secondary manifold [0048] P—primary circuit [0049] S—secondary circuit