HEAT EXCHANGER, REFRIGERATION OR HEATING SYSTEM WITH SUCH A HEAT EXCHANGER
20230003457 · 2023-01-05
Inventors
Cpc classification
F28F2250/102
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/0131
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/1646
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2009/228
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2250/106
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/1607
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28D7/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to a heat exchanger (2) having a jacket (10) through which a first medium (A) can flow and which has at least one first inlet (11) and at least one first outlet (12), at least one tube (30) through which a second medium (B) can flow, the tube (30) being guided through the jacket (10) and having at least one second inlet (31) and at least one second outlet (32), wherein a deflection segment (50) or a plurality of deflection segments (50) are arranged in a row in a longitudinal axis (X) in the jacket (10), wherein the deflection segment (50) is formed from at least two partial sections (51, 52), which are arranged so as to overlap and cross, in areas, transverse to the longitudinal axis (X).
Claims
1. A heat exchanger (2) having: a jacket (10), through which a first medium (A) can flow and which has at least one first inlet (11) and at least one first outlet (12), at least one tube (30), through which a second medium (B) can flow, the tube (30) being guided through the jacket (10) and having at least one second inlet (31) and at least one second outlet (32), wherein a deflection segment (50) or a plurality of deflection segments (50) are arranged in a row in a longitudinal axis (X) in the jacket (10), and wherein the deflection segment (50) is formed from at least two partial sections (51, 52) which are arranged so as to overlap and cross, in some areas, transverse to the longitudinal axis (X).
2. The heat exchanger (2) according to claim 1, characterized in that the two partial sections (51, 52) are fitted together and/or integrally bonded transverse to the longitudinal axis (X).
3. The heat exchanger (2) according to claim 1, characterized in that the partial sections (51, 52) of a deflection segment (50) intersect in a first mating area (60), and that the first mating area (60) is formed by a recess (62) in at least one of the two partial sections (51, 52).
4. The heat exchanger (2) according to claim 3, characterized in that the first mating area (60) is arranged on the longitudinal axis (X).
5. The heat exchanger (2) according to claim 1, characterized in that the partial sections (51, 52) are arranged to pivot from a plane perpendicular to the longitudinal axis (X) in opposite directions, and that the following applies for an angle (α) which extends on both sides of the plane between the partial sections (51, 52):
10°≤α≤150°.
6. The heat exchanger (2) according to claim 5, characterized in that the angle (α) of at least two deflection segments (50) is dimensioned differently in a row of deflection segments (50).
7. The heat exchanger (2) according to claim 1, characterized in that the at least two partial sections (51, 52) overlap with a degree of overlap (U), and that D/2≥U≥1 mm, where D is a distance between diametrical sides transverse to the longitudinal axis (X).
8. The heat exchanger (2) according to claim 1, characterized in that each partial section (51, 52) is a partial section of an oval.
9. The heat exchanger (2) according to claim 1, characterized in that the at least two partial sections (51, 52) of a deflection segment (50) are designed with mirror symmetry.
10. The heat exchanger (2) according to claim 1, characterized in that each partial section (51, 52) has a cut-out (55) which is adapted to the at least one tube (30) and through which the tube (30) can be passed.
11. The heat exchanger (2) according to claim 1, characterized in that the partial sections (51, 52) of two deflection segments (50) adjacent in the row intersect in at least one second mating area (70), and that the second mating area (70) is formed by at least one second recess (72) in at least one of the at least two partial sections (51, 52) of at least one deflection segment (50).
12. The heat exchanger (2) according to claim 1, characterized in that the jacket (10) has a deflector cover (18) and/or a collector cover (17) at one end area (14, 15).
13. The heat exchanger (2) according to claim 1, characterized in that the at least one first inlet (11) of the jacket (10) is oriented transverse to the longitudinal axis (X), and that the at least one first inlet (11) opens out between the at least two partial sections (51, 52) of a deflection segment (50), in particular oriented toward the first mating area (60).
14. The heat exchanger (2) according to claim 1, characterized in that a baffle element (80) is arranged between the longitudinal axis (X) and the at least one first inlet (11).
15. The heat exchanger (2) according to claim 14, characterized in that the baffle element (80) is diamond-shaped in a normal plane.
16. The heat exchanger (2) according to claim 1, characterized in that the partial sections (51, 52) of a deflection segment (50) and/or the partial sections (51, 52) in the row of adjacent deflection segments (50) are rigidly connected to one another or form a part.
17. The heat exchanger (2) according to claim 1, characterized in that the at least one tube (30) has an enlarged surface, in particular a surface enlarged by ribs or knobs.
18. A deflection segment (50) for the heat exchanger (2) according to claim 1.
19. A refrigeration or heating system (1) having the heat exchanger (2) according to claim 1.
Description
[0035] An embodiment of the heat exchanger according to the invention and three further developments thereof are described in detail below with reference to the accompanying drawings. In the drawings:
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
[0047]
[0048] Identical or functionally identical components are identified with the same reference symbols. In addition, not all identical or functionally identical components are provided with a reference number in the Figures.
[0049]
[0050] The heat exchanger 2 can be used both in the refrigeration system shown in
[0051] The sectional illustration according to
[0052] A first medium A can be introduced into the jacket 10 or its jacket space 20 through the first inlet 11 and exit again through the first outlet 12, it being possible to for the first inlet 11 to be arranged adjacent to the first end area 14 and the first outlet 12 to be arranged adjacent to the second end area 15. The first inlet 11 and the first outlet 12 can be arranged on diametrical sides of the jacket 10.
[0053] Furthermore, the heat exchanger 2 comprises a bundle, formed from a plurality of tubes 30, which are guided through the jacket 10 or the jacket space 20 parallel to the longitudinal axis X and extend between the first end area 14 and the second end area 15. Each tube 30 is connected to a second inlet 31 and a second outlet 32 and a second medium B can flow through it. Each tube 30 is configured to separate the first medium A in the jacket space 20 from the second medium B in the relevant tube 30 and to transfer a heat flow {dot over (Q)} through the wall of the tube 30 between the two media A, B. The two directions in which the heat flow {dot over (Q)} can develop are shown symbolically in
[0054] The first inlet 11 and the second inlet 31 as well as the first outlet 12 and the second outlet 32 can also be arranged on diametrical sides of the jacket 10, whereby the heat exchanger 2 guides the first medium A and the second medium B in opposite directions along the longitudinal axis X past each other according to the counterflow principle.
[0055] Each tube 30 opens in the first end area 14 and in the second end area 15 in a distributor or collector cover 17 which, depending on the direction of flow of the medium B, distributes the second medium B from the second inlet 31 to the tubes 30 or collects the second medium B from the bundle of tubes 30 and guides it to the second outlet 32.
[0056] The jacket 10 or the jacket space 20 is closed in the first end area 14 and in the second end area 15 in each case by a tube base 16, whereby the second medium B in the distributor or collector cover 17 is separated from the first medium A in the jacket space 20. The tubes 30 can penetrate the tube bases 16 and are connected to them, for example, by welding, soldering, crimping or gluing.
[0057] The second inlet 31 is arranged at the second end area 15 and the second outlet 32 is arranged at the first end area 14. For a better understanding the individual flow paths of the first medium A and of the second medium B are shown in
[0058] A plurality of deflection segments 50 are arranged in a row along the longitudinal axis X in the jacket space 20. Each deflection segment 50 consists of at least one first partial section 51 and one second partial section 52, which are arranged overlapping at least in some areas transversely to the longitudinal axis X and are arranged crossed in a pivot axis Y transversely to the longitudinal axis X. In this embodiment, the first partial section 51 and the second partial section 52 are crossed in the pivot axis Y transversely to the longitudinal axis X and are arranged so as to fit into one another. Both the first partial section 51 and the second partial section 52 as well as the adjacent deflection segments 50 are connected to one another and form a cage—as will be explained in more detail below.
[0059] The tubes 30 are guided through cut-outs 55 in the deflection segments 50, the cut-outs 55 being adapted to the size of the tubes 30 and encompassing them at least in some areas.
[0060] It can be seen from the perspective representations in
[0061] The first inlet 11 is directed perpendicularly to the longitudinal axis X and is furthermore preferably arranged in the longitudinal axis X in the center of a deflection segment 50. Between the longitudinal axis X and the first inlet 11, a baffle element 80 designed as a baffle plate is arranged with a normal plane. The normal vector of the normal plane points to the first inlet 11, as a result of which the first medium A flowing in through the first inlet 11 hits the baffle element 80 and is divided into two flow paths —see
[0062] The first partial section 51 and the second partial section 52 intersect in a first mating area 60 which is arranged on the pivot axis Y. Each first mating area 60 is formed—as shown in particular in
[0063] The partial sections 51, 52 are planar—preferably made of a weldable plastic or a metal—and in
[0064] Each partial section 51, 52 is formed from a partial section of an oval or an ellipse and has an arcuate section 56 and a secant section 57. The arc length of the arcuate section 56 is greater than 0.5 times the circumference of the oval or ellipse. Furthermore, the cut-outs 55 are incorporated or molded into the partial sections 51, 52, the cut-outs 55 also being oval or elliptical.
[0065] It can also be seen from
[0066] A view in direction X of the assembled deflection segment 50 is shown in
[0067] When the two partial sections 51, 52 are fitted together, the edge areas of the recesses 62 form an angle stop 65 which can specify an angle α at which the first partial section 51 and the second partial section 52 intersect in the pivot axis Y. The angle α, see
[0068] The second recesses 72 are designed analogously to the recesses 62 and form the aforementioned connection between two adjacent deflection segments 50 in a second mating area 70. The baffle element 80 described above can be attached to the second recesses 72 in the mating area 70 and support the deflection segment 50.
[0069] The side surfaces of the arcuate section 56, the secant section 57, the recesses 62, the second recesses 72 and/or the cut-outs 55 can be formed orthogonally to the main surfaces of the partial sections 51, 52.
[0070] In the first mating area 60, the first partial section 51 and the second partial section 52 can be rigidly connected to one another and/or, in the second mating area 70, adjacent deflection segments 50 can be rigidly connected to one another. For the rigid connection, integral bonds, in particular welding or gluing, are preferably used. The connection can also be achieved by a force fit and/or form fit.
[0071] The heat exchanger 2 can be designed in different, not conclusively illustrated, variants according to
[0072] The heat exchanger 2 according to
[0073] By attaching a deflector cover 18 according to
[0074]
[0075] A so-called “U-tube” is shown in
[0076]
[0077] The deflection segment 50 according to
[0078] Alternatively, as shown in
LIST OF REFERENCE NUMERALS
[0079] 1 Refrigeration system [0080] 2 Heat exchanger [0081] 3 Compressor [0082] 4 Expansion element [0083] 10 Jacket [0084] 11 First inlet [0085] 12 First outlet [0086] 14 First end area [0087] 15 Second end area [0088] 16 Tube base [0089] 17 Collector cover [0090] 18 Deflector cover [0091] 30 Tube [0092] 31 Second inlet [0093] 32 Second outlet [0094] 50 Deflection segment [0095] 51 First partial section [0096] 52 Second partial section [0097] 53 First connection area [0098] 54 Second connection area [0099] 55 Cut-out [0100] 56 Arcuate section [0101] 57 Secant section [0102] 60 First mating area [0103] 62 Recess [0104] 65 Angle stop [0105] 70 Second mating area [0106] 72 Second recess [0107] 80 Baffle element [0108] A First medium [0109] B Second medium [0110] D Distance [0111] S Line of symmetry [0112] U Degree of overlap [0113] X Longitudinal axis [0114] Y Pivot axis