Rechargeable battery assembly for a vehicle
10629934 ยท 2020-04-21
Assignee
Inventors
Cpc classification
B60L2240/36
PERFORMING OPERATIONS; TRANSPORTING
H01M8/0687
ELECTRICITY
B01D53/526
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/70
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
H01M8/04507
ELECTRICITY
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
B01D50/20
PERFORMING OPERATIONS; TRANSPORTING
H01M8/04455
ELECTRICITY
B01D53/508
PERFORMING OPERATIONS; TRANSPORTING
Y02E60/50
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
H01M8/0662
ELECTRICITY
H01M12/08
ELECTRICITY
B01D53/565
PERFORMING OPERATIONS; TRANSPORTING
H01M2250/20
ELECTRICITY
H01M8/04201
ELECTRICITY
B01D2257/404
PERFORMING OPERATIONS; TRANSPORTING
H01M2220/20
ELECTRICITY
B60L50/64
PERFORMING OPERATIONS; TRANSPORTING
Y02T90/40
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
International classification
H01M8/22
ELECTRICITY
H01M12/08
ELECTRICITY
H01M8/0662
ELECTRICITY
B60L50/64
PERFORMING OPERATIONS; TRANSPORTING
B01D50/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A rechargeable battery assembly for a vehicle has a metal-air rechargeable battery and a filter device to condition inlet air supplied to the metal-air rechargeable battery such that the inlet air exhibits predetermined inlet air values. The filter device has one or more filter elements, one or more sensor devices that determine at least one inlet air parameter, and one or more valve devices. A control system is coupled to the sensor devices so as to receive sensor signals for the at least one inlet air parameter and is coupled to the valve devices. The control system adjusts, depending on the received sensor signals, the valve devices in order to control the predetermined inlet air value in that the inlet air is guided through the filter elements; is guided past the filter elements; or is guided to an air outlet for regenerating the filter elements.
Claims
1. A rechargeable battery assembly for a vehicle, the rechargeable battery assembly comprising: a metal-air rechargeable battery; a filter device supplying conditioning inlet air to the metal-air rechargeable battery, the filter device comprising: a control system configured to receive sensor signals detecting air quality and adjust, depending on the received sensor signals and predetermined air quality values set in the control system, control and adjust valve devices controlling air quality delivered to the rechargeable battery assembly; a particle filter connected to an air inlet receiving air from the environment and having a filter medium configured to mechanically retain and remove particles from the air and discharge filter air to a filtered air path; a first valve device in communication with and controlled by the control system, the first valve device connect to the particle filter by the filtered air path to receive filter air from the particle filter, the first valve device controlled by the control system to selectively divert the received filtered air to any one of a first air path, a second air path or an air inlet to the metal-air rechargeable battery; a first sensor device arranged in the filtered air path between the particle filter and the first valve device and providing sensor readings to the control system, the sensor readings comprising: humidity level of the filtered air from the particle filter; and concentration of harmful gases in the filtered air from the particle filter, the harmful gases include at least one of sulfur oxides, ammonia, nitrogen oxides, hydrogen sulfide, carbon monoxide and carbon dioxide; a second filter device connected to the second air path of the first valve device is configured to neutralize harmful gases in the filtered air to provide chemically filtered air; a second valve device in communication with and controlled by the control system, the second valve device connect to the second filter device to receive the chemically filtered air, the second valve device controlled by the control system to selectively divert the chemically filtered air to one of: an air outlet to the environment, a third air path, or the air inlet to the metal-air rechargeable battery; a second sensor device arranged between the second filter device and the second valve device and providing sensor readings of the chemically filtered air to the control system, the sensor readings comprising: concentration of harmful gases, the harmful gases are at least one of sulfur oxides, ammonia, nitrogen oxides, hydrogen sulfide, carbon monoxide and carbon dioxide; and humidity level; a third filter device connected to the fourth air path of the second valve device, the third filter device comprising a material configured to remove humidity; wherein the first air path of the first valve device connects to the third filter device, bypassing the second filter device and the second sensor device.
2. The rechargeable battery assembly according to claim 1, further comprising: a third valve device in communication with and controlled by the control system, the third valve device connect to an outlet of the third filter device to receive the chemically filtered air, the third valve device controlled by the control system to selectively divert the chemically filtered air to one of: the air inlet to the metal-air rechargeable battery, or to a regeneration air outlet to the environment; and a third sensor device arranged between the third filter device and the third valve device and providing sensor readings of the chemically filtered air to the control system, the sensor reading comprising a humidity level.
3. The rechargeable battery assembly according to claim 2, wherein the second filter device comprises activated carbon.
4. The rechargeable battery assembly according to claim 2, wherein the humidity removing material of the third filter device comprises silica beads or silica gel.
5. The rechargeable battery assembly according to claim 2, wherein a cyclone preseparator is arranged in the air inlet before the particle filter.
6. The rechargeable battery assembly according to claim 2, further comprising: a fourth valve device in communication with and controlled by the control system, the fourth valve device arranged to open and close an air outlet discharging air from the metal-air rechargeable battery to the environment.
7. The rechargeable battery assembly according to claim 2, wherein the second filter device comprises potassium carbonate and/or calcium hydroxide configured to react with and neutralize sulfur oxides and hydrogen sulfide in the filtered air to provide chemically filtered air.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6) In the Figures, same reference characters identify same or functionally the same elements as far as nothing to the contrary is indicated.
DETAILED DESCRIPTION
(7)
(8) The second electrode 3 is constructed of mesoporous carbon C and is not directly participating in the electrochemical process. According to the definition of the International Union of Pure and Applied Chemistry (IUPAC), mesoporous solid bodies are porous materials with a pore diameter between 2 nm and 50 nm. Carbon C serves as an electrical conductor and connector; the mesoporous structure serves for maximizing the surface area in order to facilitate reaction of oxygen O.sub.2 with lithium ions Li.sup.+ in the area of the second electrode 3.
(9) The first electrode 2 is comprised of a block of metallic lithium Li. Alternatively, the first electrode 2 can be comprised of a different metal, for example, silicon. Between the two electrodes 2, 3, there is an electrolyte 4 which can be liquid or solid depending on the embodiment of the lithium-air rechargeable battery 1. In the case of a solid electrolyte, a solid state rechargeable battery is provided. Moreover, the electrolyte 4 can be an organic liquid that does not react with lithium Li.
(10)
(11)
(12) The basic function principle in all types of lithium-air rechargeable batteries 1 is substantially identical. During discharge (
(13) When charging (
(14)
(15) The rechargeable battery assembly 6 is supplied with inlet air L. The rechargeable battery assembly 6 comprises a filter device 11 which is configured to condition the inlet air L that is supplied to the lithium-air rechargeable battery 1 in such a way that the inlet air L has a predetermined relative air humidity. The filter device 11 comprises a pre-separator 12, for example, a cyclone separator, and a particle filter 13 which is arranged downstream of the pre-separator 12. The particle filter 13 is suitable for particle filtration. This means that the particle filter 13 is configured to mechanically retain particles such as dust, pollen, sand or the like contained in the inlet air L. In this way, clogging or blocking of the mesoporous second electrode 3 is prevented. For particle filtration, the particle filter 13 can comprise a filter medium manufactured of paper and/or plastic material. Moreover, the filter medium can be coated, impregnated, and/or provided with a nanofiber layer.
(16) Downstream of the particle filter 13, a filter element 14 is arranged that is configured to remove harmful gases from the inlet air L. In particular, the filter element 14 is configured to chemically filter harmful gases such as sulfur oxides SO.sub.x, ammonia NH.sub.3, nitrogen oxides NO.sub.x, hydrogen sulfide H.sub.2S, carbon monoxide CO, carbon dioxide CO.sub.2 from the inlet air L. These harmful gases can act as catalyst poisons that can permanently damage the catalyst provided at the second electrode 3. The filter element 14 can comprise, for example, activated carbon for chemical filtration. Moreover, the filter element 14 can comprise potassium carbonate K.sub.2CO.sub.3 and/or calcium hydroxide Ca(OH).sub.2 that chemically reacts with acidic harmful gases such as, for example, sulfur oxides SO.sub.x or hydrogen sulfide H.sub.2S in order to neutralize these harmful gases. In this way, the catalyst action is permanently maintained.
(17) Downstream of the filter element 14, a further filter element 15 is provided that is configured to remove humidity from the inlet air L. The filter element 15 can comprise a drying agent such as, for example, silica beads. The silica beads can be sprinkled onto a filter medium of the filter element 15 and can be glued thereto. Moreover, the filter medium can be of a layer structure, wherein, for example, a layer of silica beads can be arranged between two nonwoven layers. In addition or optionally, the filter medium can comprise an absorber material, in particular a so-called superabsorber, a functionalized membrane or the like.
(18) Between the particle filter 13 and the filter element 14, a sensor device 16 and a valve device 17 are arranged, wherein the valve device 17 is positioned downstream of the sensor device 16. The sensor device 16 is configured to determine the air quality. This means that the sensor device 16 can be configured to determine loading of the inlet air L with harmful gases. Moreover, the sensor device 16 can be configured to determine the humidity of the inlet air L. Loading of the inlet air L with harmful gases and the humidity of the inlet air L are determined as inlet air parameters. The sensor device 16 is coupled by means of the signal line 18 to the control system 10. The valve device 17 is operatively connected by means of a signal line 19 to the control system 10. The valve device 17 is arranged in or on an air path 20 connecting the sensor device 16 and the filter element 14.
(19) Between the filter elements 14 and 15, a further valve device 21 and a further sensor device 22 are positioned. The valve device 21 is arranged downstream of the sensor device 22. In particular, the valve device 21 is provided in or on an air path 23 connecting the sensor device 22 and the filter element 15. The sensor device 22 serves also for determining the air quality. In particular, the sensor device 22 can be configured to determine the air humidity of the inlet air L and loading thereof with harmful gases. The sensor device 22 is connected by means of a signal line 24 to the control system 10. The valve device 21 is connected by means of a signal line 25 to the control system 10.
(20) A further sensor device 26 and a further valve device 27 are positioned between the filter element 15 and the lithium-air rechargeable battery 1, wherein the valve device 27 is arranged downstream of the sensor device 26. The sensor device 26 is operatively connected by a signal line 28 to the control system 10. The valve device 27 that is provided on or in an air path 29 connecting the sensor device 26 and the lithium-air rechargeable battery 1 is connected by means of a signal line 30 to the control system 10. Downstream of the lithium-air rechargeable battery 1, a further valve device 31 is provided which is connected by means of a signal line 32 to the control system 10. A vehicle control unit 33 of a vehicle communicates by signal lines 34, 35 with the control system 10.
(21) In operation of the rechargeable battery assembly 6, the inlet air L flows first through the pre-separator 12 and the particle filter 13, whereby coarse and fine particles are removed from it. The sensor device 16 detects loading of the inlet air L, from which particles have been removed, with harmful gases and/or humidity. When the filtered inlet air L contains no harmful gases or only a quantity of harmful gases that is below a predetermined limit value, the inlet air L is guided by means of the valve device 17 and an air path 36 past the filter element 14 and past the sensor device 22 into the air path 23. When the inlet air L contains harmful gases to be removed, the valve device 17 is switched such that the inlet air L is guided through the filter element 14 in order to remove the harmful gases from the inlet air L.
(22) Downstream of the filter element 14, the air quality of the inlet air L can be determined again by means of the sensor device 22. When loading with harmful gases is too high, the control system 10 recognizes that the filter element 14 must be regenerated. For this purpose, the valve device 21 is switched such that the inlet air L is guided into an air outlet 37. When the control system 10 detects by means of the sensor device 22 that the relative air humidity of the inlet air L already corresponds to a desired value, the valve device 21 is switched such that the inlet air L is guided via an air path 38 past the filter element 15 and past the sensor device 26 into the air path 29. In case of a lithium-air rechargeable battery 1, preferably the entire humidity is removed from the inlet air L. When using other metals, for example, silicon, as the electrode 3, it may also be required to adjust the relative air humidity of the inlet air L to a defined value. Via the air path 38, the inlet air L is guided by the valve device 17 into the air path 29 when neither harmful gas filtration nor conditioning of the humidity of the inlet air L is required. When the humidity of the inlet air L is above a predetermined limit value, the valve device 21 is switched such that the inlet air L flows through the filter element 15 and the sensor device 26.
(23) When the sensor device 26 determines too high a value of the humidity of the inlet air L even though the inlet air L has been passed through the filter element 15, the control system recognizes that the filter element 15 must be regenerated. Then the valve device 27 is switched such that the inlet air L flows to an air outlet 39. Here, the inlet air L can be heated and can be guided again through the filter element 15 in order to regenerate it. The filter element 15 with the humidity-conditioning properties, for example, silica gel, can be regenerated by heat. For this purpose, the filter element 15 is heated or the inlet air L that is flowing through the filter element 15 is heated. The valve device 31 can be switched such that the outlet air A of the lithium-air rechargeable battery 1 can flow into the environment.