Heat transfer device having channels
10605543 · 2020-03-31
Assignee
Inventors
- Lena Schnabel (Freiburg, DE)
- Eric Laurenz (Freiburg, DE)
- Hannes Fugmann (Freiburg, DE)
- Steffen Kaina (Dresden, DE)
- Thomas Studnitzky (Dresden, DE)
- Friedrich A. Roell (Neu-Ulm, DE)
- Kurt Hattler (VS-Schwenningen, DE)
Cpc classification
F28F1/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a heat transfer device with channels for heat-absorbing media and channels for heat-emitting media, at least one of the channels having a textile structure with compressed and non-compressed regions. Whilst the compressed regions are disposed in the transition regions between the channels in order to improve the heat transfer to or across the channel wall, the non-compressed regions are disposed in the flow regions of the channels. This construction enables a large heat transfer to the heat transfer surface with simultaneously good heat conduction from the heat transfer surface to the separating surface. The invention likewise relates to heat exchangers with heat transfer devices of this type.
Claims
1. Heat transfer device comprising one or more channels for a heat-absorbing medium and one or more channels for a heat-emitting medium, at least one channel of the one or more channels for a heat-absorbing medium or the one or more channels for a heat-emitting medium having a textile structure, at least in regions, and the textile structure having compressed regions extending a width of a respective channel and being separated by spacings of a same length in a first direction, at least one of the compressed regions including multiple compressions in the respective channel, the compressed regions of the textile structure being disposed in a transition region between at least one channel of the one or more channels for a heat-absorbing medium and at least one channel of the one or more channels for a heat-emitting medium for production of a thermal contact and non-compressed regions of the textile structure being disposed in a flow region of at least one channel of the one or more channels for a heat-absorbing medium or the one or more channels for a heat-emitting medium, the textile structure including wires, technical fibres or yarns hereof, and the compressed regions having a plurality of horizontal spacings, wherein the horizontal spacings are located between the non-compressed regions, at least two of the plurality of horizontal spacings are of different lengths.
2. Heat transfer device according to claim 1, wherein the one or more channels for the heat-absorbing media are separated from the one or more channels for the heat-emitting media by a separating wall.
3. Heat transfer device according to claim 2, wherein the compressed regions in the transition region of the channels are connected integrally to the separating wall, at least in regions.
4. Heat transfer device according to claim 1, wherein the textile structure at the compressed regions has a coating which is impermeable or partially permeable for the heat-absorbing medium and the heat-emitting medium.
5. Heat transfer device according to claim 1, wherein, for separation of adjacent channels, in at least one channel, a first expandable hose or tube which is impermeable for the heat-absorbing medium and the heat-emitting medium is integrated, which enables contacting the textile structure by widening and/or shrinking, and/or, for separation of adjacent channels, around the at least one channel, a second shrinkable hose or tube which is impermeable for the heat-absorbing medium and the heat-emitting media is disposed, which enables contacting the textile structure by widening and/or shrinking.
6. Heat transfer device according to claim 1, wherein the textile structure is permeated, at least in regions, by a fluid for heat exchange.
7. Heat transfer device according to claim 1, wherein the textile structure is embedded, at least in regions, by a latently heat-storing, sorptive or catalytic stationary medium or is coated therewith on the surface.
8. Heat transfer device according to claim 1, wherein the wires, technical fibres or yarns thereof have a diameter of 10 m to 2 mm.
9. Heat transfer device according to claim 1, wherein the wires, technical fibres or yarns hereof have, in flow direction, a spacing of 20 m to 20 mm.
10. Heat transfer device according to claim 1, wherein the wires, technical fibres or yarns hereof are selected from the group consisting of metallic materials and the alloys thereof, carbon-containing materials, glass- or ceramic fibres, polymer materials, and composite materials hereof.
11. Heat transfer device according to claim 1, wherein the textile structure is a woven, knitted or warp-knitted structure or a combination hereof.
12. Heat transfer device according to claim 1, wherein, in the heat transfer device, lighting elements are integrated.
13. Heat transfer device according to claim 1, wherein, in the heat transfer device, at least one heating wire is integrated.
14. Heat exchanger comprising the heat transfer device according to claim 1.
15. Heat exchanger according to claim 14, wherein the heat exchanger is a plate heat exchanger, a tubular heat exchanger, a tubular lamellar heat exchanger, a flat tube lamellar heat exchanger or a coaxial heat exchanger.
Description
(1) The subject according to the invention is intended to be explained in more detail with reference to the subsequent Figures without wishing to restrict said subject to the specific embodiments shown here.
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10) In
(11) In the flat embodiment shown in
(12) In the tubular embodiment shown in
(13) As indicated in
(14) One possibility for use hereof is shown in the embodiment in
(15) In
(16) It is also possible, from a technical manufacturing point of view, to produce flow structures which are produced in one manufacturing step (see
(17) In
(18) In
(19) In