TEMPERATURE CONTROL DEVICE
20170284709 · 2017-10-05
Assignee
Inventors
Cpc classification
H01M10/6556
ELECTRICITY
F25B2321/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
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
H01M10/617
ELECTRICITY
F25B2321/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2321/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2321/0252
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B21/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25B21/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01M10/6556
ELECTRICITY
H01M10/617
ELECTRICITY
Abstract
A temperature control device may include a temperature control structure through which a fluid may be flowable and may have at least one first pipe wall defining an interior, and at least one thermoelectric module, which on a side facing away from the interior chamber of the temperature control structure may be arranged on the first pipe wall. The thermoelectric module may include at least two rows of elements each extending along an extension direction and with at least two thermoelectric elements. The thermoelectric elements of each of the at least two rows of elements may be electrically connected in series to forming a first and a second electric branch conductor. In at least one row of elements, an electric switch switchable between closed and opened states may be provided.
Claims
1. A temperature control device for a temperature control of at least one battery cell of a battery, comprising: a temperature control structure through which a fluid is flowable, the temperature control structure having at least one first pipe wall defining an interior; at least one thermoelectric module, which on a side facing away from the interior chamber of the temperature control structure is arranged on the at least one first pipe wall; wherein the thermoelectric module includes at least two rows of elements each with at least two thermoelectric elements; wherein the at least two rows of elements each extends along an extension direction; wherein the at least two thermoelectric elements of a first of the at least two rows of elements are electrically connected in series for forming a first electric branch conductor, and the at least two thermoelectric elements of at least a second of the at least two rows of elements are electrically connected in series for forming a second electric branch conductor; and wherein in at least one row of elements, an electric switch is provided, the electric switch being switchable between a closed state and an opened state.
2. The temperature control device according to claim 1, wherein: the at least two thermoelectric elements of a row of elements are substantially arranged linearly along a longitudinal direction; the at least two rows of elements are arranged adjacent to one another along a transverse direction running transversely to the longitudinal direction; the at least two thermoelectric elements of a row of elements are arranged along a vertical direction, which runs orthogonally to the longitudinal direction and to the transverse direction, between a first electrically insulating insulation element and a second electrically insulating insulation element; and the second electrical insulation element is arranged in the vertical direction between the thermoelectric elements and the at least one first pipe wall of the temperature control structure.
3. The temperature control device according to claim 1, wherein the at least one thermoelectric module includes at least one temperature sensor for measuring a temperature of a battery cell that is thermally coupled to the at least one thermoelectric module.
4. The temperature control device according to claim 3, further comprising an open-loop/closed-loop control unit interacting with the at least one electric switch and the at least one temperature sensor, the control unit being configured to switch the at least one electric switch between the opened state and the closed state as a function of the temperature measured by the at least one temperature sensor.
5. The temperature control device according to claim 3, wherein: the at least one temperature sensor is provided in at least one of the at least two rows of elements; and an open-loop/closed-loop control unit configured to switch the at least one electric switch between the opened state and the closed state as a function of the temperature measured by the at least one temperature sensor is designed in such a manner that the at least one switch a in the at least one of the at least two rows of elements is activated by the open-loop/closed-loop control unit as a function of the temperature measured by the at least one temperature sensor provided in the at least one of the at least two rows of elements.
6. The temperature control device according to claim 1, wherein at least one switch includes a semiconductor switch.
7. The temperature control device according to claim 3, wherein the at least one temperature sensor is an infrared sensor configured to measure the temperature of the at least one battery cell by determining a temperature an infrared radiation emitted by the at least one battery cell.
8. The temperature control device according to claim 1, wherein the at least one electric switch is provided on a side of the at least one thermoelectric module facing the temperature control structure.
9. The temperature control device according to claim 1, wherein: in the temperature control structure, a fluid duct is provided for each row of elements and is arranged in such a manner that each fluid duct is thermally coupled to the corresponding row of elements; and in at least one fluid duct, a valve is provided, the valve being adjustable between a closed position, in which the valve closes the fluid duct, and an open position, in which the valve opens the fluid duct for the fluid to flow through.
10. The temperature control device according to claim 9, wherein: in the row of elements corresponding to the at least one fluid duct with a valve, an electric actuator is provided, the electric actuator being electrically connected to the at least two thermoelectric elements of the corresponding row of elements; and the actuator interacts with the valve of the corresponding fluid duct in such a manner that the actuator adjusts the valve into the opened position in a first operating state and adjusts the valve into the closed position in a second operating state.
11. The temperature control device according to claim 10, wherein: the electric actuator includes an electric coil electrically connected in series with the at least two thermoelectric elements, wherein in the first operating state, the electric coil is flowed through by an electric current, but not in the second operating state.
12. The temperature control device according to claim 9, wherein the valve includes a spring-elastic element preloaded against one of the opened position or the closed position.
13. The temperature control device according to claim 9, wherein the valve is designed as a microvalve.
14. The temperature control device according to claim 10, wherein the actuator is electrically arranged between two thermoelectric elements.
15. The temperature control device according to claim 10, wherein the valve is arranged in a region of the actuator along the extension direction.
16. The temperature control device according to claim 1, wherein the electric switch is electrically arranged between two thermoelectric elements.
17. A battery arrangement, comprising: a temperature control device having: a temperature control structure through which a fluid is flowable, the temperature control structure having at least one first pipe wall defining an interior; at least one thermoelectric module, which on a side facing away from the interior chamber of the temperature control structure is arranged on the at least one first pipe wall; wherein the thermoelectric module includes at least two rows of elements each with at least two thermoelectric elements; wherein the at least two rows of elements each extends along an extension direction; wherein the at least two thermoelectric elements of a first of the at least two rows of elements are electrically connected in series for forming a first electric branch conductor, and the at least two thermoelectric elements of at least a second of the at least two rows of elements are electrically connected in series for forming a second electric branch conductor; and wherein in at least one row of elements, an electric switch is provided, the electric switch being switchable between a closed state and an opened state; and at least one battery including a battery cell, wherein the at least one battery cell is arranged on a side of the at least one thermoelectric module of the temperature control device facing away from the temperature control structure.
18. The battery arrangement according to claim 17, wherein: the at least one thermoelectric module includes at least two thermoelectric modules; the at least one battery cell includes at least two battery cells; and each battery cell includes a housing with a housing wall by which the battery cell is mechanically and thermally connected to the corresponding thermoelectric module.
19. The battery arrangement according to claim 17, wherein the at least one battery cell includes a plurality of battery cells and for each battery cell, exactly one thermoelectric module that is mechanically and thermally connected to the corresponding battery cell.
20. The battery arrangement according to claim 19, wherein for each pair of a battery cell and a thermoelectric module, at least one temperature sensor is provided.
21. The battery arrangement according to claim 17, further comprising an open-loop/closed-loop control unit configured to switch over the electric switch of each thermoelectric module between the closed state and opened state as a function of a temperature of a battery cell corresponding to the thermoelectric module as measured by at least one temperature sensor of the thermoelectric module.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0041] It shows, in each case schematically
[0042]
[0043]
[0044]
[0045]
[0046]
[0047]
DETAILED DESCRIPTION
[0048]
[0049]
[0050] The individual rows of elements 8a-8e each extend along a common extension direction E. The thermoelectric elements 9a-9e of each row of elements 8a-8e are electrically connected in series for forming a respective electric branch conductor 10a-10e. In other words, the thermoelectric elements 9a of the first row of elements 8a form a first electric branch conductor 10a, the thermoelectric elements 9b of the second row of elements 8b form a second electric branch conductor 10b etc. The individual element rows 8a-8e or branch conductors 10a-10e can, as shown in
[0051] Looking again at
[0052] Particularly preferably, the respective electric switching element 11a-11e is electrically arranged between two thermoelectric elements 9a-9e. In this way, the required electrical wiring expenditure for the thermoelectric elements 9a-9e can be kept low.
[0053] The electric switching elements 11a-11e can each be switched over between a closed and an open state, i.e. the electric switching elements 11a-11e follow the operating principle of an electric switch. In the closed state, the thermoelectric elements 9a-9e of the associated row of elements 8a-8e can be flowed through by an electric current from an external energy source (not shown), in the opened state this is not possible.
[0054]
[0055] The two insulation elements 12a, 12b can be conventional circuit boards, in which, for example by means of a conventional etching process, conductor tracks in the form or copper bridges 13a, 13b are formed. These are positioned on the sides of the insulation elements 12a, 12b facing the thermoelectric elements 9a-9e in such a manner that they, along the extension direction E, electrically connect adjacent thermoelectric elements 9a-9e of the same branch conductor 10a-10e (see
[0056] In order to achieve a good heat coupling of the battery cell 2 to the thermoelectric module 6, an adapter layer 29 can be provided between the first insulation element 12a and the battery cell 2 to be temperature controlled, which comprises a heat-conducting and/or electrically insulating material. Conceivable is for example using a thermoplastic or a film of a plastic. With suitable dimensioning of the adapter layer 29 it can be prevented that undesirable intermediate spaces can form between the first installation element 12a and the battery cell 2 to be temperature controlled, which diminish the thermal coupling of the battery cell 2 to the electric module 6.
[0057] According to
[0058] The thermoelectric module 1 also comprises temperature sensors 14a-14e for measuring the temperature of the battery cell 2 that is thermally coupled to the thermoelectric module 6. In the exemplary scenario of
[0059] The temperature sensors 14a-14e can be designed as conventional temperature sensors such as for example PTC sensors, which are based on an electric resistance measurement. Alternatively to this, they can, however, be also designed as infrared sensors by means of which the infrared radiation emitted by the battery cell 2 can be measured to determine the temperature.
[0060] Furthermore, the temperature control device 1 comprises an open-loop/closed-loop control unit 15 interacting both with the temperature sensors 14a-14e and also with the switching elements 11a-11e, which are roughly shown schematically in
[0061] For activating the electric switching elements 11a-11e, suitable electrical control lines—
[0062] The electric switching elements 11a-11e can comprise a semiconductor switch, in particular a thyristor. By means of such a semiconductor switch the controllability of the electric switching element that is required for realising the closed-loop temperature control explained above can be ensured by the open-loop/closed-loop control unit 15 in a simple manner. The use of a thyristor is recommended since the same is particularly suitable for controlling high electric currents which are required for operating thermoelectric elements 9a-9e.
[0063]
[0064] Particularly practically, the temperature control structure 3 can be designed as flat pipe 21 as shown in
[0065] As is further evident from
[0066] Now looking again at
[0067] According to
[0068] The electric actuator element 18a has two operating states and interacts with the valve element 17a in such a manner that it adjusts the valve element 17a into the opened position in a first operating state. Accordingly, the actuator element 18a adjusts the valve element 17a into the closed position in a second operating state. To this end, the actuator element 18 can comprise for example an electric coil element 19a which is only sketched roughly schematically in
[0069] Such an interaction of actuator element 18a and valve element 17a makes it possible to couple the thermoelectric elements 9a of the row of elements 8a to the valve element 17a of the fluid duct 16a assigned to this row of elements 8a. Accordingly, the heating or cooling performance generated by the thermoelectric elements 9a can also be coupled to the heating or cooling performance generated by the fluid flowing through the fluid duct 16a.
[0070] Switching over the actuator element 18a between its two operating states takes place indirectly by switching over the electric switching element 11a. Accordingly, the fluid duct 16a that can be “additionally switched on” by means of the valve element 17a can be included in the closed-loop temperature control explained above. In the closed state of the electric switching element 11a, an electric flow of current through the thermoelectric elements 9a and thus also through the electric actuator element 18a is possible. The electric actuator unit 18 is then in its first operating state in which it brings about adjusting of the valve element 17a into the opened position.
[0071] When the electric switching element 11a is switched over into the opened state, this leads to an interruption of the electric flow of current through the thermoelectric elements 9a of the row of elements 8a and also through the electric actuator element 18a, so that the same is switched into its first operating state. Following this, the valve element 17a is also switched over into the closed state in which flowing of a fluid through the fluid duct 16a is prevented.
[0072] The opening of the fluid duct 16a by the valve element 17a which accompanies the first operating state of the actuator element 18a, in the case of the design of the actuator element 18a as electric coil element 19a shown in the example, can take place as follows: by way of the electric flow of current through the coil element 19a, a magnetic field is generated which in turn causes the valve element 17a to be adjusted into the opened position. To this end, the valve element 17 can comprise a spring-elastic element 20a in the form of a leaf spring, which is preloaded against the closed position. If the spring-elastic element 20a has magnetic properties, the spring-elastic element 20a is moved into the opened position with the help of the magnetic field generated by the actuator element 18a.
[0073] Switching off the electric current by means of the actuator element 18a by opening the electric switching element 11a also results in the magnetic field generated by the coil element 19a being switched off. The preloaded spring-elastic element then moves back again into the closed position in which it closes off the fluid duct 16a.
[0074] Obviously, a preload of the spring-elastic element 20a into the opened position is also conceivable in a version of the example.
[0075] In the scenario introduced above, the electric actuator element 18a is designed in such a manner that it interacts free of contact with the valve element 17 by means of magnetic coupling for adjusting between the opened and the closed position.
[0076] Alternatively to the design as spring-elastic element 20a it is also conceivable to realise the valve element 17a in the form of a microvalve, which is then electrically coupled to the actuator element 18a.
[0077] Preferentially, the valve element 17a-17e is arranged in the region of a respective actuator element 18a-18e in particular along the extension direction E. In this way, the desired coupling between valve element and actuator element can be realised particularly effectively.
[0078] The interaction of electric switching element 11a, electric actuator element 18a and valve element 17a explained above is not only limited to the first row of elements 8a and to the fluid duct 16a assigned to this row of elements 8a within the scope of the invention introduced here; it rather proves to be advantageous if at least two—particularly preferably all—rows of elements 8a-8e are provided with corresponding actuator elements 18a-18e, for example in the form of electric coil elements 19a-e and in the corresponding fluid ducts 16a-16e also respective valve elements 17a-17e, for example in the form of spring-elastic elements 20a-20e are provided. In other words: the above explanations to the first row of elements 18a and the associated fluid duct 16a apply, mutatis mutandis, also to the remaining rows of elements 8b-8e and the corresponding fluid ducts 16b-16e.
[0079] The temperature control device 1 introduced above is also suitable for the temperature control of a battery 23 having more than a single battery cell 2. The temperature control device 1 and at least two battery cells 2 as part of a battery 23 form a battery arrangement 24.
[0080]
[0081] It is evident that the temperature control device 1 for each battery cell 2 comprises a separate thermoelectric module 6. Like the battery cells 2, the thermoelectric modules 6 are arranged next to one another along the transverse direction Q. Each battery cell 2 comprises a housing 26 with a housing wall 27, by means of which the battery cell 2 is mechanically and thermally connected to the thermoelectric module 6 assigned to it.
[0082] From
[0083] Possible technical realisations of fluid control through the manifold 32, the flat pipes 21, the interior chambers 4 formed therein and the fluid ducts 16a-16e again formed in an interior chamber 4 are familiar to the person skilled in the art and will therefore not be discussed in more detail here.
[0084] From the detail representation of
[0085] As already mentioned, the modular concept introduced above allows the temperature control of a battery 23 with any number of battery cells 2. In a preferred version of the battery arrangement 24 introduced here, the battery 23 thus comprises a plurality of battery cells 2.
[0086] In a particularly preferred version of the battery arrangement 24, at least one temperature sensor 14a-14e can be arranged in each case for each pair of a battery cell 2 and thermoelectric module 6. This allows a particularly accurate temperature measurement of the temperature of the individual battery cells 2 and thus also an individual temperature control of the battery cells 2. To this end, the closed-loop temperature control performed by the open-loop/closed-loop control unit 15 can switch over the switching elements 11a-11e of a respective thermoelectric module 6 as a function of the temperature between its closed and opened state, which can be determined by the at least one temperature sensors 14a-14e assigned to this thermoelectric module 6. The switching over of the electric switching element 11a-11e then accompanies a switching on and switching off of the row of elements 8a-8e comprising the respective switching element 11a-11e and of the valve elements 17a-17e assigned to the rows of elements 8a-8e via respective actuator elements 18a-18e.