This application claims priority under 35 USC 119 to German Patent Application No. 10 2011 000 353.3, filed on Jan. 27, 2011 the entire disclosure of which is incorporated herein by reference.
1. Field of the Invention
The invention relates to a battery with a housing and battery cells in the housing that are temperature-controlled by a liquid temperature control system and a gas temperature control system. The invention also relates to a motor vehicle having a battery of this kind.
2. Description of the Related Art
Many measures are known for the temperature control/cooling of battery cells. For example, DE 10 2008 057 305 A1 discloses a device for cooling a heat source in a motor vehicle. The device has a cooling body through which a first fluid stream can flow for dissipating heat. At least one second fluid stream can selectively be allowed to flow through the cooling body to dissipate heat. DE 10 2009 008 222 A1 discloses a battery with a housing that has at least one heat exchanger. DE 10 2008 059 955 A1 discloses a cooling plate with an integrated cooling duct for a battery. DE 10 2008 059 954 A1 discloses a battery having a cooling device with a heat exchanger that has a cooling plate and at least one meandering cooling tube through which a coolant can flow. US Published Application 2010/0136406 A1 discloses a battery housing with an air inlet opening, an air outlet opening and an additional water cooling system. DE 10 2008 034 864 A1 discloses a battery with a heat conducting plate for controlling the temperature of the battery.
An object of the invention is to make a further improvement in the temperature control/cooling of battery cells, especially traction batteries for hybrid vehicles or electric vehicles.
The invention relates to a battery with a housing and battery cells in the housing. The battery cells are temperature-controlled/cooled by a liquid temperature control/liquid cooling system and a gas temperature control/gas cooling system. The gas temperature control/gas cooling system comprises at least one closed circuit in the housing. Air preferably is used for gas temperature control/gas cooling. The gas temperature control/gas cooling preferably creates a more homogeneous temperature distribution in the battery housing to improve the temperature control of the battery cells and/or other components in the battery housing. Thus, the battery life is increased. The battery preferably is a traction battery, which also is referred to as a drive battery, and is installed as an energy source in a vehicle that is driven electrically at least in part.
The circuit for gas temperature control/gas cooling preferably extends between the housing and the battery cells. The housing preferably is a closed housing and a cavity is formed within the battery, between the battery cells and the housing. A flow of gas, in particular air, is accommodated through the interspace or cavity for gas temperature control/gas cooling.
The circuit for gas temperature control/gas cooling may extend between the housing and further components of the battery. The further components can comprise power electronics of the battery, for example.
At least one fan may be arranged in the circuit for gas temperature control/gas cooling. The fan circulates or induces a flow of a gaseous medium, such as air, in the circuit for gas temperature control/gas cooling. The fan can be activated as required, preferably in accordance with the temperature within the battery. The energy for operating the fan preferably is provided by the battery itself.
At least one cooling and/or temperature control device may be arranged in the circuit for gas temperature control/gas cooling and may accommodate a flow of both gas and liquid therethrough. The gas preferably achieves an improved more homogeneous temperature control effect/cooling effect of the liquid.
The cooling and/or temperature control device may comprises liquid ducts and gas ducts. The liquid ducts and the gas ducts can have a rectangular, round or oval cross section. To improve heat transfer, the walls of the ducts can have an increased roughness. For the same purpose, the walls of the ducts can be fit with turbulence generators.
The cooling and/or temperature control device may comprise at least one plate having gas ducts and/or liquid ducts. The liquid ducts and the gas ducts extend through the plate.
The cooling and/or temperature control device may comprise at least one plate having liquid ducts and at least one plate having gas ducts. The gas ducts can be open on one side and closed by a wall of the battery housing. A plate having gas ducts may be disposed between two plates having liquid ducts.
The battery cells may be arranged against the cooling and/or temperature control device. The battery cells preferably are in contact with at least one plate having liquid ducts.
The battery cells may be arranged between two cooling and/or temperature control devices. The cooling and/or temperature control devices preferably rest flat against the battery cells to ensure good heat transfer.
The battery cells and/or the cooling and/or temperature control devices may be horizontal and substantially parallel to the surface of the ground or to a base of the battery housing.
The battery cells and/or the cooling and/or temperature control devices may be arranged vertically and at a right angle to the surface of the ground or to a base of the battery housing.
The invention also relates to a motor vehicle having the above-described battery. The motor vehicle may be a hybrid vehicle with an electric machine or an electric vehicle having a battery that functions as a traction battery.
Further advantages, features and details of the invention will emerge from the following description, in which various embodiments are described with reference to the drawings
A battery in accordance with a first embodiment of the invention is identified by the numeral 1 in
A liquid temperature control/liquid cooling system 10 and a gas temperature control/gas cooling system 15 are combined with one another in the battery housing 4 to improve the temperature control of the battery 1. The gas temperature control/gas cooling system 15 comprises at least one closed circuit 16 in the housing 4, and hence not communicating with ambient surroundings. The temperature control systems 10 and 15 cooperate primarily for cooling the heating generating components 5, 6, 7 in the housing 4, but can perform other temperature control functions under certain conditions.
A cavity is formed in the battery 1, between the battery cells 5 or battery components 6, 7 and the housing 4, and is filled with a gas, in particular air, for the gas temperature control system 15. A fan 18 causes the gas to flow and circulate in the housing 4, as required.
The temperature control device 20 has a further plate 22 between plate 21 and the battery cells 5. The plate 22 has liquid ducts, and a liquid temperature control medium, in particular a liquid coolant or refrigerant, flows through the ducts to cool or control the temperature of the battery cells 5. The liquid is fed in from outside and discharged via liquid connections 24.
The plate 21 has a multiplicity of gas ducts 25 to accommodate a flow of gas, in particular air, as indicated by arrows 26 in
The temperature control device 20 can also have further plates arranged above the battery cells 5, for example. Further fans also can be installed in the battery housing 4 for improving the air flow.
Various embodiments of temperature control devices 20 are illustrated in
The liquid temperature control of the plates preferably is in contact with the battery cells 5 or the further battery components 6, 7 to enable effective temperature control (e.g. cooling).
A battery in accordance with a second embodiment of the invention is identified by the numeral 81 in
A liquid temperature control system 90 and a gas temperature control system 95 are combined with one another in the battery housing 84 to improve the temperature control of the battery 81. The gas temperature control system 95 comprises at least one closed circuit 96 in the housing 84.
A cavity is formed in the battery 81, between the battery cells 85, 88 or battery components 86, 87 and the housing 84, and is filled with a gas, in particular air, for the gas temperature control system 96. A fan 98 causes the gas to flow and circulate in the housing 84, as required.
The battery 81 illustrated in
The temperature control device 100 can be embodied in way similar to the embodiment illustrated in
The battery cells 85 are arranged between the temperature control device 100 and a further cooling and/or temperature control device 105. The temperature control device 105 also is arranged vertically, but comprises just two plates 106, 107.
Gas, in particular air, flows through the plate 106 and liquid flows through the plate 107. The two plates 106, 107 can be the same as or similar to the embodiments illustrated in
The battery cells 88 are arranged between the temperature control device 100 and a further temperature control device 109. The temperature control device 109 preferably is exactly the same as the temperature control device 105, with a plate (not designated specifically) through which liquid flows resting against the battery cells 88.
The rectangles 114; 115 in
A battery in accordance with a third embodiment of the invention is identified by the numeral 121 in
A liquid temperature control system 140 and a gas temperature control system 145 are combined with one another in the battery housing 124 to improve the temperature control of the battery 121. The gas temperature control system 145 comprises at least one closed circuit 146, 147 in the housing 124.
A cavity is formed in the battery 121 between the battery cells 125, 128 or battery components 126, 127, 129, 130 and the housing 124, and is filled with a gas, in particular air, for the gas temperature control system 146, 147. A fan 148 causes the gas to flow and circulate in the housing 124, as required.
The embodiment illustrated in
The temperature control device 150 comprises two plates 151, 152 through which there is a flow of liquid. A plate 153 through which gas, in particular air, flows is sandwiched between plates 151 and 152.
The underside of the battery cells 125 rests flat against the top of plate 151 and the upper side of the battery cells 128 rests flat against the bottom of plate 152. The plates 151, 152 are supplied with liquid via a liquid connection 154.
Additional battery components 126 and 127 are arranged above the battery cells 125 and additional battery components 129, 130 are arranged below the battery cells 128. The circulated air is indicated by the arrows 146 and 147.
Number | Date | Country | Kind |
---|---|---|---|
10 2011 000 353 | Jan 2011 | DE | national |
Number | Name | Date | Kind |
---|---|---|---|
5607787 | Wedlake et al. | Mar 1997 | A |
8535823 | Song et al. | Sep 2013 | B2 |
20010007728 | Ogata | Jul 2001 | A1 |
20050202315 | Sugeno | Sep 2005 | A1 |
20060222930 | Aradachi | Oct 2006 | A1 |
20090233158 | Kimura | Sep 2009 | A1 |
20100035142 | Ha | Feb 2010 | A1 |
20100119927 | Bauer | May 2010 | A1 |
20100134940 | Nguyen et al. | Jun 2010 | A1 |
20100136406 | Song et al. | Jun 2010 | A1 |
20100151307 | Naganuma | Jun 2010 | A1 |
20100307723 | Thomas et al. | Dec 2010 | A1 |
20110132580 | Herrmann et al. | Jun 2011 | A1 |
Number | Date | Country |
---|---|---|
101924259 | Dec 2010 | CN |
10 2008 057 305 | Aug 2009 | DE |
10 2008 034 864 | Jan 2010 | DE |
10 2008 059 954 | Jun 2010 | DE |
10 2008 059 955 | Jun 2010 | DE |
10 2009 008 222 | Aug 2010 | DE |
2009-140654 | Jun 2009 | JP |
2009140654 | Jun 2009 | JP |
2010-0062576 | Jun 2010 | KR |
WO 2009146876 | Dec 2009 | WO |
Number | Date | Country | |
---|---|---|---|
20120196157 A1 | Aug 2012 | US |