HEAT EXCHANGER, PARTICULARLY FOR A MOTOR VEHICLE
20170018825 · 2017-01-19
Assignee
Inventors
Cpc classification
H10N10/13
ELECTRICITY
F28F3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H2001/2275
PERFORMING OPERATIONS; TRANSPORTING
F25B2321/0252
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/143
PERFORMING OPERATIONS; TRANSPORTING
B60H1/00478
PERFORMING OPERATIONS; TRANSPORTING
Y02E60/10
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
H01M2220/20
ELECTRICITY
F28D2021/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B21/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H2001/2271
PERFORMING OPERATIONS; TRANSPORTING
F28D7/0025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B60H1/14
PERFORMING OPERATIONS; TRANSPORTING
B60H1/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a heat exchanger, particularly for a motor vehicle, comprising a first component with a first duct, a second component with a second duct and a thermoelectric element for generating a heat flow, wherein a first fluid of a first fluid circuit can be caused to flow through the first duct to control the temperature of a first external component, wherein a second fluid of a second fluid circuit can be caused to flow through the second duct, which is fluidically separated from the first duct, to control the temperature of a second external component, and wherein the at least one thermoelectric element is arranged between the first and second components, contacting same thermally.
Claims
1. A heat exchanger, particularly for a motor vehicle, comprising a first component with a first duct, a second component with a second duct and a thermoelectric element for generating a heat flow, wherein a first fluid of a first fluid circuit is able to flow through the first duct to control the temperature of a first external component, and wherein a second fluid of a second fluid circuit is able to flow through the second duct which is fluidically separated from the first duct to control the temperature of a second external component, and wherein the at least one thermoelectric element is arranged between the first and second components, in thermal contact therewith, wherein the first and second components and the thermoelectric element form a module with at least two fluid-connecting elements which are compatible with the respective fluid-connecting elements of a further such module, wherein a first fluid-connecting element is connected to the first duct and a second fluid-connecting element is connected to the second duct.
2. The heat exchanger as claimed in claim 1, wherein the module comprises four compatible fluid-connecting elements, wherein the first fluid-connecting element as the inlet duct and the second fluid-connecting element as the outlet duct for the first fluid are connected to the first duct of the first component, and wherein the third fluid-connecting element as the inlet duct and the fourth fluid-connecting element as the outlet duct for the second fluid are connected to the second duct of the second component.
3. The heat exchanger as claimed in claim 1, wherein a plurality of modules are arranged relative to one another such that the second component of a first module and the first component of a second module are arranged opposite one another.
4. The heat exchanger as claimed in claim 1, wherein a plurality of modules are arranged relative to one another such that in each case the first components and/or in each case the second components are arranged opposite one another.
5. The heat exchanger as claimed in claim 1, wherein a thermoelectric element or an insulating element is arranged between two modules arranged opposite one another, said element placing both modules in thermal contact.
6. The heat exchanger as claimed in claim 2, wherein the first, second, third and fourth fluid-connecting elements of a plurality of modules arranged in each case opposite one another, are accordingly connected, in particular plugged, together.
7. The heat exchanger as claimed in claim 1, wherein the openings of the connections of the fluid-connecting elements of one module to those of the modules arranged opposite, are arranged parallel to a plane which is formed by the surface of the first or second component.
8. The heat exchanger as claimed in claim 1, wherein the first and second components are of identical construction and/or in that the flow geometry is identical within one component.
9. The heat exchanger as claimed in claim 1, wherein the second component is rotated by 180 about a first axis, which preferably extends in a transverse dimension of the second component, relative to the first component to form the module.
10. The heat exchanger as claimed in claim 1, wherein the second component is rotated by 180 about a second axis, which is configured approximately perpendicular to the first axis and which preferably extends in a longitudinal dimension of the second component, relative to the first component to form the module.
11. The heat exchanger as claimed in claim 1, wherein the second component is rotated in parallel relative to the first component by 90 about an axis perpendicular to the surface of the first component to form the module.
12. The heat exchanger as claimed in claim 1, wherein the first and second components in each case consist of a set of pipes, made up of pipes guided in parallel to one another, preferably flat pipes, in each case an inlet collector and an outlet collector for the respective fluid being fastened to the ends thereof, wherein the inlet collector and the outlet collector have at least one respective fluid-connecting element.
13. The heat exchanger as claimed in claim 1, wherein the first and second components are configured as a cooling plate.
14. The heat exchanger as claimed in claim 1, wherein the at least one thermoelectric element is configured as a Peltier element.
15. The heat exchanger as claimed in claim 1, wherein the at least one thermoelectric element is pressed or connected by a material connection to the first and second components.
16. The heat exchanger as claimed in claim 1, wherein a plurality of modules are stacked together and the stack is held together by a retaining device.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] The invention is described in more detail hereinafter on the basis of at least one exemplary embodiment with reference to the drawings, in which:
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
PREFERRED EMBODIMENT OF THE INVENTION
[0033]
[0034] In
[0035] A plurality of Peltier elements 18 of flat, preferably rectangular, configuration are adhesively bonded onto the side of the second component 17 opposing the first component 11. The first and second prefabricated components 11, 17 are pressed together via the Peltier elements 18, wherein the Peltier elements 18 are placed in thermal contact with both prefabricated components 11, 17. In addition to the pressing, an adhesive bonding of the Peltier elements 18 to the prefabricated elements 11, 17 preferably so the flat pipes 12 of the two prefabricated elements 11, .sup.17, may also be carried out.
[0036] A heat exchanger 2 thus produced forms modules 11, 17 as shown in
[0037] An insulating element 19 is incorporated between the individual modules 11.1, 17.1; 11.2, 17.2; 11.3, 17.3; 11.4, 17.4. In order to reduce the overall size-of the heat exchanger 2, such an insulating element 19 could be dispensed with from the heat technology point of view since, in the exemplary embodiment provided, only two respective warm sides or two cold sides are always directly stacked on top or one another. However, these insulating elements 19, particular if they are of flexible design, form a support for the modules 11.1, 17.1; 11.2, 17.2; 11.3, 17.3; 11.4, 17.4 so that by using an additional retaining device, not shown further, on the one hand, a fixing of the modules 11.1, 17.1; 11.2, 17.2; 11.3, 17.3; 11.4, 17.4 is ensured whilst, on the other hand, the different modules 11.1, 17.1; 11.2, 17.2; 11.3, 17.3; 11.4, 17.4 are not rigidly connected together. In the exemplary embodiment described in connection with
[0038] As the pattern of the fluid connections between the individual modules 11.1, 17.1; 11.2, 17.2; 11.3, 17.3; 11.4, 17.4 is repeated, the fluid connections of the individual fluid-connecting elements are always present on only one connection side. This has the result of reducing the cost of pipework between the fluid-connecting elements 15, 16. In all modules 11.1, 17.1; 11.2, 17.2; 11.3, 17.3; 11.4, 17.4 the flow direction of the fluids is maintained on fluid-connecting elements in the same position. This means that in the case of congruence in the z-direction, the fluid-connecting elements 15, 16, with a fixed x-y coordinate, are always an inlet duct or an outlet duct.
[0039] The fluid connections may be ensured, for example by flexible hoses, so that stresses between the modules 11.1, 17.1; 11.2, 17.2; 11.3, 17.3; 11.4, 17.4 due to the different temperatures of the cold and warm sides are minimized.
[0040] In a further embodiment of the heat exchanger 2 according to
[0041] Also, one respective thermal insulating element 19 is provided here between the modules 11.1, 17.1; 11.2, 17.2; 11.3, 17.3; 11.4, 17.4. The two different fluids flow through the heat exchanger 2 formed from a plurality of modules 11.1, 17.1; 11.2, 17.2; 11.3, 17.3; 11.4, 17.4 in the same flow direction, whilst fluid flows through the individual modules 11.1, 17.1; 11.2, 17.2; 11.3, 17.3; 11.4, 17.4 in opposing flow directions. This is revealed by arrows P1 and P2, which identify the flow direction of the fluids. This variant may be used, in particular, in the case of short flow paths in the flat pipes 12 where the individual Peltier elements 18 have a low output. The pattern of the fluid connection between the different modules 11.1, 17.1; 11.2, 17.2; 11.3, 17.3; 11.4, 17.4 is repeated, wherein the fluid connection of the individual fluid-connecting elements 15, 16 is always only on one connection side. This has the result of reducing the cost of pipework between the fluid-connecting elements 15, 16. In contrast to the exemplary embodiment according to
[0042] Generally, a fluid-conducting component 11, 17 may also be designed to be multilayered in the z-plane, as is visible in
[0043] In
[0044]
[0045] In the heat exchanger according to
[0046] The proposed solution provides a control of the temperature of the components, which is not dependent on coolant, so that an air-conditioning circuit is not required for the heating and cooling. This provides the option of an independent temperature control system. By means of the independence of the proposed thermoelectric heat exchanger 2 from an air-conditioning system operated by coolant, in a motor vehicle, undesirable effects on the air-conditioning evaporator may be avoided. The heat exchanger 2 according to the invention combines the heating and cooling function in one unit. Essential advantages are in this case the use of the same parts and the modular design for different power classes, based on the design of the modular cooling plate. Moreover, a space-saving design with efficient thermal transmission is implemented by a suitable design of the modular units. By means of the components 11, 17 and by the application of current to the Peltier elements 18, the required cooling and heating of the high voltage battery 9 may be undertaken. Additionally, COP (coefficient of performance) values of greater than 1 may be achieved during the cooling and heating.